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Today, Euro NCAP is a well established rating system for passive car safety. The significance of the ratings must however be evaluated by comparison with national accident data. For this purpose accidents with involvement of two passenger cars have been taken from the German National Road Accident Register (record years 1998 to 2004) to evaluate the results of the NCAP frontal impact test configuration. Injury data from both drivers involved in frontal car to car collisions have been sampled and have been compared, using a "Bradley Terry Model" which is well established in the area of paired comparisons. Confounders " like mass ratio of the cars involved, gender of the driver, etc. " have been accounted for in the statistical model. Applying the Bradley Terry Model to the national accident data the safety ranking from Euro NCAP has been validated (safety level: 1star <2 star <3 star <4 star). Significant safety differences are found between cars of the 1 and 2 star category as compared to cars of the 3 and 4 star category. The impact of the mass ratio was highly significant and most influential. Changing the mass ratio by an amount of 10% will raise the chance for the driver of the heavier car to get better off by about 18%. The impact of driver gender was again highly significant, showing a nearly 2 times lower injury risk for male drivers. With regard to the NCAP rating drivers of a high rated car are more than 2 times more probable (70% chance) to get off less injured in a frontal collision as compared to the driver of a low rated car.
The fact that ADAC Air Rescue handles approximately 4,000 road accident missions every year gave rise to set up an accident research programme for which ADAC Air Rescue provides its data. This data is of initial informational quality and will be supplemented by data from the police, experts, fire brigades as well as hospitals and forensic institutes. Although the number of cases is still rather low, certain tendencies can be identified. The causes for most accidents occur when joining or intersecting traffic, followed by speeding in road bends and tailgating. Many accidents involve HGV rear end collisions, often causing serious injuries, considerable damage and technical problems for the rescue operations. With regard to the various impact types, it has become obvious that most of the extremely serious injuries are inflicted during a passenger car side impact. In addition, access to and removal of trapped passengers is becoming more and more complicated, partly due to the increasing use of high-strength materials, and rescue operations tend to be more time consuming.
In recent years special attention has been paid to reducing the number of fatalities resulting from road traffic accidents. The ambitious target to cut in half the number of road users who are killed each year by 2010 compared with the 2001 figures, as set out in the European White Paper "European Transport Policy for 2010: Time to Decide" implies a general approach covering all kinds of road users. Much has been achieved, e.g. in relation to the safety of car passengers and pedestrians but PTW accidents still represent a significant proportion of fatal road accidents. More than 6,000 motorcyclists die annually on European roads which amounts to 16% of the EU-15 road fatalities. The European Commission therefore launched in 2004 a Sub- Project dealing with motorcycle accidents within an Integrated Project called APROSYS (Advanced PROtection SYStems) forming part of the 6th Framework Programme. In a first step, the combined national statistical data collections of Germany, Italy, the Netherlands and Spain were analysed. Amongst other things parameters like accident location, road conditions, road alignment and injury severity have been explored. The main focus of the analysis was on serious and fatal motorcycle accidents and the results showed similar trends in all four countries. From these results 7 accident scenarios were selected for further investigation via such in-depth databases as the DEKRA database, the GIDAS 2002 database, the COST 327 database and the Dutch element of the MAIDS database. Three tasks, namely the study of PTW collisions with passenger cars, PTW accidents involving road infrastructure features, and motorcyclist protective devices have been assessed and these will concentrate inter alia on accident causes, rider kinematics and injury patterns. A detailed literature review together with the findings of the in-depths database analysis is presented in the paper. Conclusions are drawn and the further stages of the project are highlighted.
Empirical vehicle crashworthiness studies are usually based on national or in-depth traffic accident surveys: Data on accident-involved cars/drivers are analysed in order to quantify the chance of driver injury and to assess certain risk factors like car make and model. As the cars/drivers involved in the same accident form a "cluster", where the size of the cluster equals the number of accident-involved parties, traffic accident survey data are typical multi-level data with accidents as first-level or primary and cars/drivers as secondlevel or secondary units (car occupants in general are to be considered as third level units). Consequently, appropriate statistical multi-level models are to be used for driver injury risk estimation purposes as these models properly account for the cluster structure of traffic accident survey data. In recent years various types of regression models for clustered data have been developed in the statistical sciences. This paper presents multi-level statistical models, which are generally applicable for vehicle crashworthiness assessment in the sense that data on single and multiple car crashes can be analysed simultaneously. As a special case of multi-level modelling driver injury risk estimation based on paired-by-collision car/driver data is considered. It is demonstrated that assessment results may be seriously biased, if the cluster structure inherent in traffic accident survey data is erroneously ignored in the data analysis stage.
Internationally, the need is expressed for harmonized traffic accident data collection (PSN, PENDANT, etc.). Together with this effort of harmonization, traffic accident investigation moves more and more in the direction of accident causation. As current methods only partly address these needs, a new method was set up. The main characteristics of this method are: • Accident/injury causation (associated) factors can objectively be identified and quantified, by comparison with exposure information from a normal population. • All relevant accident and exposure data can be included: human-, vehicle-, and environmental related data for the pre-crash, crash and postcrash situation (the so-called Haddon matrix). The level of detail can be chosen depending on interest and/or budget, which makes the method very flexible. In this paper the accident collection and control group method are presented, including some of the achieved results from a pilot study on 30 truck accidents and 30 control locations. The data were analyzed by using cross-tabulations and classification-tree analysis. The method proved useful for the identification of statistically significant causational aspects.
During the last 5 years, the number of cars fitted with side airbags has dramatically increased. They are now standard equipment, even on many smaller cars or less luxurious vehicles. While some side airbags offer thoracic protection alone, there are those that combine thoracic and head protection (of which most deploy from the seat). Other systems employ separate airbags for head and thorax protection, which are designed to be effective noticeably in a crash against a pole. This paper proposes an evaluation of the effectiveness of side airbags in preventing thoracic injuries to passenger car occupants involved in side crashes. First, the target population (who can take benefit of side airbag deployment and in what circumstances) is defined. Side airbags can be especially effective in cases of impacts on the door with intrusion at a certain impact speed. Then, an example case of a side impact with side airbag deployment is given were side airbag deployment is thought to have had a positive effect on injury outcome. A further case is presented where the impact configuration is likely to have reduced the effect of side airbag deployment on injury outcome. Finally, the estimation of side airbag effectiveness (in terms of additional occupant protection brought exclusively by the airbag) is proposed by comparing injury risk sustained by occupants in (more or less) similar cars (fitted or non fitted with airbags) because, during these years, car structure, and side airbag conception have considerably evolved. In-depth accident data from France, the UK and Germany has been collected. Out of 2,035 side impact accident cases available in the databases, we selected 435 occupants of passenger cars (built from 1998 onwards) involved in an injury accident between year 1998 and year 2004 for EES (Energy Equivalent Speed) values between 20km/h and 50km/h. The occupants, belted or not, were sat on the struck side, whatever the obstacle and type of accidents (intersection, loss of control, etc.). For multiple impact crashes, the side impact is assumed to be the more severe one. Passenger cars were fitted with (96) or without (339) side airbags. Most of the potential risk explanatory variables were correctly and reliably reported in the databases (velocity " impact zone " impact angle " occupant characteristics, etc.). The analysis compared injury risks for different levels of EES and different types of side airbags. A logistic regression model was also computed with injury variables (such as thoracic AIS 2+ or AIS 3+) as the dependant variable and other variables (including airbag type and EES) as explanatory injury risk factors. Results revealed statistically non-significant reductions in thoracic AIS 2+ and AIS 3+ injury risk in side airbag equipped cars in the impact violence range selected (odds ratio between 0.84 and 0.98 depending on types of airbags). The results are discussed. The non-significance is assumed to be due to a low number of cases. Statistical analysis for head injuries was not possible due to the low number of accident cases with passenger cars fitted with head airbags in the databases. Moreover, the discrepancies between the data coming from different countries (especially calculation of EES) might have introduced instability in the analysis.
In Germany, in-depth accident investigations are carried out in the Hannover area since 1973. In 1999 a second region was added with surveys in Dresden and the surrounding area. Internationally, the acronym GIDAS (German In-Depth Accident Study) is commonly used for these surveys. Compared to many other countries, the sample sizes of the GIDAS surveys are much larger. The goal is to collect 1.000 accidents involving personal injuries per year and region. Data collection takes place by using a sampling procedure, which can be interpreted as a two-stage process with time intervals as primary units and accidents as secondary units. An important question is, to what extend these samples are representative for the target population from which they are drawn. Analyses show, for example, that accidents with persons killed or seriously injured are overrepresented in the samples compared to accidents with slightly injured persons. This means, that these data are subject to biases due to uncontrolled variation of sample inclusion probability. Therefore, appropriate weighting and expansion methods have to be applied in order to adjust or correct for these biases. The contribution describes the statistical and methodological principles underlying the GIDAS surveys with respect to sampling procedure, data collection and expansion. In addition, some suggestions regarding potential improvements of study design are made from a methodological point of view.
Annually within the European Union, there are over 50,000 road accident fatalities and 2 million other casualties, of which the majority are either the occupants of cars or other road users in collision with a car. The European Commission now has competency for vehicle-based injury countermeasures through the Whole Vehicle Type Approval system. As a result, the Commission has recognised that casualty reduction strategies must be based on a full understanding of the real-world need under European conditions and that the effectiveness of vehicle countermeasures must be properly evaluated. The PENDANT study commenced in January 2003 in order to explore the possibility of developing a co-ordinated set of targeted, in-depth crash data resources to support European Union vehicle and road safety policy. Three main work activity areas (Work Packages) commenced to provide these resources. This paper describes some of the outcomes of Work Package 2 (WP2, In-depth Crash Investigations and Data Analysis). In WP2, some 1,100 investigations of crashes involving injured car occupants were conducted in eight EU countries to a common protocol based on that developed in the STAIRS programme. This paper describes the purposes, methodology and results of WP2. It is expected that the results will be used as a co-ordinated system to inform European vehicle safety policy in a systematic, integrated manner. Furthermore, the results of the data analyses will be exploited further to provide new directions to develop injury countermeasures and regulations.
Validation of human pedestrian models using laboratory data as well as accident reconstruction
(2007)
Human pedestrian models have been developed and improved continually. This paper shows the latest stage in development and validation of the multibody pedestrian model released with MADYMO. The biofidelity of the multibody pedestrian model has been verified using a range of full pedestrian-vehicle impact tests with a large range in body sizes (16 male, 2 female, standing height 160-192cm, weight 53.5-90kg). The simulation results were objectively correlated to experimental data. Overall, the model predicted the measured response well. In particular the head impact locations were accurately predicted, indicated by global correlation scores over 90%. The correlation score for the bumper forces and accelerations of various body parts was lower (47-64%), which was largely attributed to the limited information available on the vehicle contact characteristics (stiffness, damping, deformation). Also, the effects of the large range in published leg fracture tolerances on the predicted risk to leg fracture by the pedestrian model were evaluated and compared with experimental results. The validated mid-size male model was scaled to a range of body sizes, including children and a female. Typical applications for the pedestrian models are trend studies to evaluate vehicle front ends and accident reconstructions. Results obtained in several studies show that the pedestrian models match pedestrian throw distances and impact locations observed in real accidents. Larger sets of well documented cases can be used to further validate the models especially for specific populations as for instance children. In addition, these cases will be needed to evaluate the injury predictive capability of human models. Ongoing developments include a so-called facet pedestrian model with a more accurate geometry description and a more humanlike spine and neck and a full FE model allowing more detailed injury analysis.
The need for improved EU level accident information and data was identified in the EU White Paper on Transport Policy (2001)1 and detailed in the Road Safety Action Plan (2003)2. The plan specifies that the EC will develop a road safety observatory to coordinate data collection within an integrated framework.
This study is aimed to investigate the correlations of impact conditions and dynamic responses with the injuries and injury severity of child pedestrians by accident reconstruction. For this purpose, the pedestrian accident cases were selected from Sweden and Germany with detailed information about injuries, accident cars, and accident environment. The selected accident cases were reconstructed using mathematical models of pedestrian and passenger car. The pedestrian models were generated based on the height, weight, and age of the pedestrian involved in accidents. The car models were built up based on the corresponding accident car. The impact speeds in simulations were defined based on the reported data. The calculated physical quantities were analyzed to find the correlation with injury outcomes registered in the accident database. The reconstruction approaches are discussed in terms of data collection, estimating vehicle impact speeds, pedestrian moving speeds and initial posture, secondary ground impact, validity of the mathematical models, as well as impact biomechanics.
The data situation for quantifying the proportion of accidents avoided by the introduction of active safety systems is incomplete, since there is generally no data available on the accidents avoided by the technology in question. In this paper, a split-register approach is suggested and compared with the classical case-control approach known from epidemiologic applications. Provided a set of assumptions hold, which can reasonably be made in such data situations, the split register approach allows inferences on the population accident risk. For both approaches the benefits of basing the analysis on the results of a logistic regression to adjust for confounding factors are outlined. The biasing effects of violating key assumptions are discussed and the split-register approach is demonstrated using the example of the active safety system ESP with data from the German in-depth accident study GIDAS.
Active safety systems are aimed at accident prevention, hence the knowledge required for their development is different from that required for passive safety systems aimed at injury prevention. Particularly, knowledge about accident causation is required. When looking at existing accident causation data, it is argued it fails to explain in sufficient detail how and why the accidents occur. Therefore, there is a need for detailed micro-level descriptions of accident causation mechanisms, and also of methodologies suitable for creating such descriptions. One study addressing these needs is the Swedish project FICA (Factors Influencing the Causation of Accidents and Incidents), where an accident investigation methodology suitable for active safety is developed, and in-depth accident investigations following this methodology are carried out on-scene in the area of Gothenburg by a multidisciplinary team. A preliminary aggregated analysis of different cases shows that the methodology developed is adequate for pointing out common contributing factors and devising principal countermeasures.
Electronic Stability Program (ESP) aims to prevent the lateral instability of a vehicle. Linked to the braking and powertrain systems, it prevents the car from running wide on a corner or the rear from sliding out. It also helps the driver control his trajectory, without replacing him, in the case of loss of control where the driver is performing an emergency manoeuvrer (confused and exaggerated steering wheel actions). A new ESP function optimizes ESP action in curves with hard under steering (situations in which the front wheels lose grip and the vehicle slides towards the outside of the curve). A complementary feature prevents the wheels from spinning when pulling away and accelerating. The name given to the ESP system varies according to the vehicle manufacturer, but other terms include: active stability control (ASC), automotive stability management system (ASMS), dynamic stability control (DSC), vehicle dynamic control (VDC), vehicle stability control (VSC) or electronic stability Control (ESC). This paper proposes an evaluation of the effectiveness of ESP in terms of reduction of injur accidents in France. The method consists of 3 steps: - The identification, in the French National injury accident census (Gendarmerie Nationale only), of accident-involved cars for which the determination of whether or not the car was fitted with ESP is possible. A sample of 1 356 cars involved in injury accidents occurred in 2000, 2001, 2002 and 2003 was then selected. But we had to restrict the analysis to only 588 Renault Lagunas. - The identification of accident situations for which we can determine whether or not ESP is pertinent (for example ESP is pertinent for loss of control accidents whilst it is not for cars pulling out of a junction). - The calculation, via a logistic regression, of the relative risk of being involved in an ESPpertinent accident for ESP equipped cars versus unequipped cars, divided by the relative risk of being involved in a non ESP-pertinent accident for ESP equipped cars versus unequipped cars. This relative risk is assumed to be the best estimator of ESP effectiveness. The arguments for such a method, effectiveness indicator and implicit hypothesis are presented and discussed in the paper. Based on a few assumptions, ESP is proved to be highly effective. Currently, the relative risk of being involved in an ESP pertinent accident for ESP-equipped cars is lower (-44%, although not statistically significant)rnthan for other cars.rn
Rollover scenarios in Europe
(2005)
Rollover accidents seem to be a rising problem in Europe and therefore the systematic of this accident scenario should be investigated. Based on statistical investigations on major European accident databases for different countries a series of 73 real world rollover accidents was analysed. These cases were reconstructed using PC-Crash and preliminary categorised using a modified USbased rollover classification. In a first step, the rollover events were reconstructed from the point of conflict to the vehicle- rest position. The vehicles kinematics as well as its linear and rotational velocities were derived. In a second step typical velocity characteristics as well as kinematics were identified and the events categorised according to these criteria. Based on these results four main categories were defined, covering all reconstructed accidents. This categorisation was based on mechanical parameters (rotatory and translator kinematical data of the vehicle). Significant differences can be seen for different scenarios for the "first phase of rollover".
This paper describes the methodology of In-Depth Investigation in Germany on the example of GIDAS (German In-Depth Accident Study). Since 1999 in Germany a joint project between FAT (Forschungsvereinigung Automobiltechnik or Automotive Industry Research Association) and BASt (Bundesanstalt für Straßenwesen or the Federal Road Research Institute) is being carried out in Hannover and Dresden. The methodology of this project is based on a statistically orientated procedure of data sampling (sampling plan, weighting factors). The paper describes the possibilities of such in-depth investigation on the results of the offered title. The accident cases were collected randomly within GIDAS at Hannover. There are more cases existing from previous investigation started in 1985 under the same methodology. The portion of rollovers can be established at 3.7% of all accidents with casualties in the year 2000. For the study 434 cases of car accidents with rollovers are used for a detail comprehensive analysis. The accidents happened in the years 1994 to 2000 in the Hannover area. The injury distribution will report about 741 occupants with rollover accident event. The presented paper will give an overview of the accident situations following in rollover movements of cars. The distributions of injury frequencies, injury severity AIS for the whole body and for the body regions of occupants will be presented and compared to technical details like the impact speed and the deformation pattern. The speed of the car was determined at the point of rollover and on the point of accident initiency. The characteristics of the kinematics followed in a rollover movement are analyzed and the major defined types of rollover will be shown in the paper. The paper will describe the possibilities of In-Depth Investigation methods for the approach of finding countermeasures on the example of car accidents with rollover and explaining the biomechanics of injuries in rollover movements.
This paper reviews briefly the evolution of the investigation of transport accidents from the early beginnings when individual events were studied but systematic data was not collected. In the transport modes other than on the roads, accident investigation early on, even of single events, was important in introducing safety improvements. Road accidents, however, evolved enormously with the growth of car ownership without any comparable political response to the consequent deaths and injuries, equivalent to what happened with the other modes. From the 1950s data bases started to contribute to our knowledge of the epidemiology of road traffic injuries, and in-depth sample studies have contributed much to the body of knowledge in the last 30 years. However, even the basic input and output variables of a crash, its severity and the seriousness of the outcomes in terms of injuries and their consequences are not complete or agreed upon. Issues of experimental design and sampling are discussed. It is proposed that the most important area for current research to address is the effect of population variations on injury outcomes. The need for the establishment of good data bases for active safety issues is emphasised with the consequent need for better links between the research community and the police.
Traffic accidents were ranked the third among the major causes of death in Thailand. About 13,438 deaths and the death rate from traffic accident was 21.5 per 100,000 of population in 2002. The deaths and death rate varied upon the economic situation. After the economic crisis, traffic accidents were increased as well as the period of the bubble economy. In the Central region of Thailand numbers of road traffic crashes were lower than Bangkok Metropolis, but the highest in the number of deaths, death rate and serious injuries in 2002. Men aged 15"29 years old had higher numbers of deaths than men in other age groups and higher than women. Deaths and injuries from road traffic crashes were the highest in April and January, because there was a long weekend in those months. About 80 percent of road traffic crashes were caused by private car and motorcycle. In 2000 about 51 percent of traffic accidents took place on the straight way, followed by the junction and curves. In 2002, about 97 percent of road traffic crashes were caused by human factors including improper passing, speeding and disregarding to traffic signal, however, the identification of causes of traffic accident needed to improve. Drunk driving, disregarding on safety equipment usage, inefficiency of law enforcement and discontinuing of road safety programs were the deepest causes of traffic accidents. Research based information, a broad coalition of stakeholder and urban planning policy were needed to incorporate for a comprehensive road safety policy formulation and actions.
This report gives an overview of pedestrian accidents on Japanese roads. Database used for the analysis is national traffic accident data based on police reports. Relevant measures and background information ranging from vehicle safety, engineering and education are briefly reviewed, and area for further improvement is discussed.rn
Road safety is a major preoccupation of the European Commission and the road transport industry and depends on numerous significant factors. In order to improve road safety and to plan effective safety improvement actions for truck transport, we must first identify the problems to be addressed, i.e. what are the main causes of truck accidents. The ETAC project, initiated by the European Commission and the IRU, was launched in order to set up a heavy goods vehicle accident causation study across European countries to identify future actions which could contribute to the improvement of road safety. The results will be based on a detailed analysis of truck accident data collected in seven European countries according to a common methodology which has been elaborated through numerous national and European projects. This paper describes the common methodology used to collect the information on the scene of the accident and to analyse the data so that the reconstruction of the crash events may be carried out. CEESAR proposes a methodology using its experience gained from over 10 years of accident data collection. This methodology is based on an in-depth investigation of the parameters involved in-an accident and linked to the driver, the vehicle, the road and their environment. In-depth investigation requires accident investigator presence on the scene of the accident in order to collect volatile information such as marks on the road, weather conditions, visibility, state and equipment of the vehicle, driver interview. Later, passive and active information is gathered, either at the hospital for the driver, at the garage for the vehicle or on the spot for the road geometry. A reconstruction carried out with the help of specific software and the analysis of the data collected and calculated enables the identification of the main causes of the accident and the future actions to plan in order to improve road safety as regards truck traffic.
Motorcycle riders are one of the most vulnerable road users. Annually, on estimate 6000 people are killed in motorcycle accidents in the former 15 EU countries. The objective of this research was to investigate and analyze the main aspects and causes of this vulnerability and the accidents in general. For this aim around 70 accidents in The Netherlands were investigated in the framework of an international research program (MAIDS). Also a control group of motorcycles with riders was investigated so that exposure could be taken into account. An important result is that human failure is in 82% of the cases the main cause of the accident, in 52% this is due the other vehicle driver. Perception and decision failures are the most common failures. The most injuries are caused by the environment but they are typically only less severe (AIS1). Injuries caused by the car (front and side) are typically severe injuries (AIS4+). Previous convictions of the MC rider seem to be related to the chance to get involved in an accident. It was shown that the Dutch and the total MAIDS accident sample are comparable.
Nigeria ranks one of the highest countries in the world with the largest accident, especially when measured by whiplash associated disorders, whereas, traffic safety education rate, data and information been widely known as preventive indicators have been grossly neglected. In Nigeria, traffic safety enlightenment, awareness, political understanding and appreciation of the problem's magnitude are lacking. This study, therefore, seeks to understand and document the fact that accident causation factors in Nigeria relate more to the problem of development, poverty, knowledge and education as evidenced in most other developing countries. Among the primary accident causation factors on Nigerian roads are: - lack of a transportation system or multi-model integration - sub-standard and obsolete vehicles and road furniture - poor road maintenance, investment and engineering management - paucity of road users' and drivers' knowledge, skill, enlightenment and education of the road Use This paper submits that Nigeria being a developing nation requires purely primitive strategies being cost effective (health wise) than curative measures. It is in this light that an enduring, comprehensive and sustainable traffic safety educational programmes information base and data inventory, analysis and implementations form the focus of this study. This effort will provide basic guidelines framework and implementation procedure for a successful prevention of whiplash associated disorder resulting from road traffic crashes in Nigeria and other parts of the world.
Portugal has the highest rate of road fatalities in Europe (2002 and for Eur-15 - CARE database). For this highest rate, the accidents involving pedestrians and motorcycle occupants have a higher contribution than the European average. In the last years, especially accidents involving motorcycles have been investigated and currently two different projects are being carried out, one related with motorcycles accidents and the other with pedestrian accidents. In these projects, countermeasures among others to reduce the fatalities between these two types of road users are being studied. These accidents are investigated with the commercial accident reconstruction software PCCRASH but also new methodologies based on multibody dynamics are in development in order to more accurately study these two types of accidents. In this paper, the methodologies in use for accident reconstruction and new methodologies in development are presented. Speeding his found to be one of the major causes of road fatalities for pedestrians and motorcycle occupants. In the case of motorcycle accidents, these involve mainly young drivers. Aspects as social behavior are also important to understand the causes of some of these accidents. Some examples of accidents occurring in Portugal, involving especially motorcycles and pedestrians are presented and discussed.
This contribution introduces a number of psychological methods of analysis that are based on the practice-oriented collection of information directly at the site of an accident and that allow for an analysis and coding of the accident causes. Investigation examples and examples of the data combinations with basic medical and technical data are outlined. Objective of the collection is the inter-disciplinary investigation of human factors in the causes of accidents ("human-factor-analysis"). The psychological data are incorporated according to an integrative model for accident causes based on empiric algorithms in the data base of the accident research, where the clustered evaluation potential of comprehensive factors of the accident development can be illustrated. The central theoretical concept for the basic model of the progress of the accident from a psychological point of view comprises psychological indicators for the evaluation of the site of the accident for the analysis of the perception conditions as well as a classification of the gleaned data into the accident progress model according to chronological and local criteria. Perception conditions, action intentions and executions as well as conditions limiting perception and actions are acquired, using a questionnaire for persons involved in an accident, and are also integrated into the data structure concerning weighted feature characteristics as well as combined with other relevant features. Suitable systematization tools for the collection and coding of psychological accident development parameters have to be provided, which require primarily a model image of the corresponding processes from the persons involved in the accident (perceptions, expectations, decisions, actions). The interactive accident model contains components of the models by KÜTING 1990, MC DONALD 1972, SURREY 1969 and RASMUSSEN 1980. Based on the inter-action of the three partial systems "person", "vehicle" and "environment", the first step is the assessment of the situation by the persons involved in the accident. This is dependent on the personal attitudes and motives, on experiences and expectations concerning the progress of the situation. Subsequently, data concerning the manner of the coping with the ambiguous state as well as with the instable state (emergency reaction immediately before the accident occurs) are collected. The factors relating to the persons involved in the accident are gathered on several levels using corresponding questionnaires. The coding of the found and collected characteristics is conducted in a multidimensional evaluation relating to the technical results of the accident reconstruction and of the psychological classification, which are subsequently integrated in coded form into the data base of the accident research. The result of this analysis is a description of the development of the accident depicted on a chronological vector from a perception and decision theoretical perspective. This is explained in detail using exemplary cases.
Detailed investigations and reconstructions of real accidents involving vulnerable road users
(2005)
The aim of this research is to improve knowledge about vulnerable road users accidents and more specifically pedestrians or cyclists. This work has been based on a complete analysis of real accidents. From accidents chosen from an in-depth multidisciplinary investigation (psychology, technical, medical), we have tried to identify the configuration of the impact: car speed, pedestrian or cyclist orientations. Then, we have made a numerical modelling of the same configuration with a multibody software. In particular, we have reproduced the anthropometry of the victim and the front shape of the car. A first simulation has been performed on this starting configuration. Next, effects of some parameters such as car velocity or victim position at impact have been numerically studied in order to find the best correlations with all indications produced by the in-depth analysis. Finally, the retained configuration was close to the presumed real accident conditions because it reproduces in particular the same impact points on the car, the same injuries, and is according to the driver statement. This double approach associating an in-depth accident analysis and a numerical simulation has been applied on pedestrian-to-car and bicyclist-tocar accidents. It has allowed us to better understand the real kinematics of such impacts. Even if this method is based on a case to case study, it underlines which parameters are relevant on a vulnerable road user accident investigation and reconstruction.
Because of actual developments and the continuous increase in the field of drive assistant systems, representative and detailed investigations of accident databases are necessary. This lecture describes the possibility to estimate the potential of primary and secondary safety measures by means of a computerized case by case analysis. Single primary or secondary safety measures as well as a combination of both are presented. The method is exemplarily shown for the primary safety measure "Brake Assist" in pedestrian accidents. Regarding accident prevention only the primary safety measure is determined.
Data concerning accidents involving personal injury which have been collected in the context of in-depth investigations on scene in the Hannover area since 1973 and in the Dresden area since 1999 represent an important basis for empirical traffic safety research. At national and international level various analyses and comparisons are carried out on the basis of "in-depth data" from the above mentioned investigations. In-depth data play a decisive role e.g. within the validation of EuroNCAP results on secondary safety (crashworthiness) of individual passenger car models. Thus, statistically sound methods of data analysis and population parameter estimation are of high importance. Since the 1st of August 1984 the "in-depth investigations on scene" in the Hannover area have been carried out according to a sampling plan developed by HAUTZINGER in the context of a research project on behalf of BASt. In the meantime a second region of in-depth investigation on scene was added with surveys in Dresden and the surrounding area. Internationally, the acronym GIDAS (German In-Depth Accident Study) is commonly used for the two above mentioned surveys. The objective of a current research project (topic of this contribution) is, among other things, to examine and adjust the previous weighting and expansion method for the two regional accident investigations to the current general conditions.
In-depth road traffic accident research in Spain is a fairly recent activity. In the past, only accident data that had been retrospectively processed by the national and regional traffic police forces was available. In 1999 Applus+IDIADA set up a permanent accident research unit to carry out indepth analysis of road accidents in Spain. Since then accidents involving cars, motorcycles, coaches and vulnerable road users have been thoroughly studied. The Applus+IDIADA accident research team has carried out work for the various traffic polices in Spain and it is currently involved in several research projects in which accidentology is one of the main tasks. The working methodology of the team is presented in the first part of the paper. In the framework of the European research project "Rollover" (GRD2-2001-50086), Applus+IDIADA has collected data, inspected scenarios and performed virtual reconstructions of twenty-six of the total seventy-six rollover accidents studied. The second half of the paper describes how these accident investigations were used to develop a test procedure for identifying possible improvements to the vehicle structure which augment occupant protection in a rollover scenario. In particular, a proposal for a new drop test for rollover assessment is presented. The cases were analysed for severity, in terms of injury to the occupants and damage to the vehicle, and taking into account whether a seatbelt was worn or not. The worst possible cases were identified as those that had severe occupant injuries and sizable damage to the occupant compartment when seatbelts had been worn. The most severe cases were then analysed further for impact position (roll and pitch angles) and the impact velocity. With these parameters taken into account, the most representative combinations could be found. This resulted in a series of configurations for possible drop tests. The results of the tests indicate where passenger vehicle structures need to be improved in order to increase occupant safety in the event of a rollover crash.
Interaction of road environment, vehicle and human factors in the causation of pedestrian accidents
(2005)
The UK On-the-Spot project (OTS) completed over 1500 in-depth investigations of road accidents during 2000-2003 and is continuing for a further 3 years. Cases were sampled from two regions of England using rotating shifts to cover all days of the week and all hours of the day and night. Research teams were dispatched to accidents notified to police during the shifts; arrival time to the scene of the accident was generally less than 20 minutes. The methodology of OTS includes sophisticated systems for describing accident causation and the interaction of road, vehicle and human factors. The purpose of this paper is to describe and illustrate these systems by reference to pedestrian accidents. This type of analysis is intended to provide an insight into how and why pedestrian accidents occur in order to assist the development of effective road, vehicle and behavioural countermeasures.
76 severe traffic accidents had been investigated in depth in an ongoing Volkswagen-Tongji University joint accident research project in JiaDing district, Shanghai, PR China since June 2005. With a methodology similar to German accident research units in Dresden and Hannover, a research team proceeds to the scene immediately after the incident to investigate and collect various data on environment, accident occurrence, vehicle state and deformations as well as injuries. The data combined with the results of accident reconstruction will be stored in a database for further statistical and casuistic analysis. The first outcome of the project supports the hypothesis that a main causation for the large number of traffic accidents in China is the lacking of risk awareness in Chinese driver behaviour. Low seat-belt use and the high proportion of vulnerable and poorly protected two-wheelers in traffic are reasons for the high injury and fatality rate in China. The research work shows that accident research in China is feasible and able to give support to tackle one of the urging problems in Chinese development.
The "Seven Steps Method" is an analysis and classification system, which describes the human participation factors and their causes in the temporal sequence (from the perceptibility to concrete action errors) taking into consideration the logical sequence of individual basic functions. By means of the "seven steps" it is possible to describe the relevant human causes of accidents from persons involved in the accident in an economic way with a sufficient degree of exactitude, because the causes can be further differentiated in their value (e.g. diversion as external diversion with regard to impact due to surroundings) and their sub values (e.g. external diversion with regard to impact due to surroundings in the shape of a "capture" of the perception by a prominent object of the traffic environment). Theoretically it is possible that one or more causing moments can be assigned to a person involved in an accident in each of the "seven steps"; however it is also possible to sufficiently clarify the cause in only one level (examples for this are described). In the practice of accident investigation at the site of the accident, the sequence chart is also relevant. With its assistance the questioning of the people involved in an accident can be accomplished in a structured way by assigning a set of questions to each step.
The European Union has set a target to reduce all road fatalities (over 40,000) with 50% in 2010. This target percentage remained unchanged with the introduction of the ten new member states within the EU as by May 1st, 2004. According to Eurostat, 34% of all fatalities in 1998 in the, then, fifteen states of the European Union were the result of single vehicle collisions. This represents over 14,000 lives lost each year of which many can likely be saved through better roadside infrastructure design. The challenge for road safety professionals is to find methods and design strategies that help to reduce these casualties. Procedures for full-scale vehicle crash testing of guard rails were first published in the US in 1962. Present European regulation is mainly based on these procedures and later developments. Since then the vehicle fleet has changed considerably. Due to the complexity of the actual safety problem the numerical simulation approach offers a good opportunity to evaluate the different parameters involved in road safety, such as infrastructure properties, vehicle type, vehicle occupants and injuries. The ideal situation would be that simulation tools are coupled or integrated and all involved effects would be related. At the moment this is not the case yet, but initiatives are taken and a new virtual era has started. This paper offers a method looking at two components that encompass the driving environment: the car and the guardrail. As part of the EC-funded project, RISER (Roadside Infrastructure for Safer European Roads) a multi body simulation program study is carried out to determine sensitivities of some parameters in car to guardrail collisions and gives insides in performance of the car with passive safety equipment, the guardrail and the interaction of these objects with each other. By offering a set of methods that includes these two aspects and their intertwining relations, more confidence can be gained in actually reducing fatalities due to single vehicle collisions with, or due to, roadside furniture. Reducing the number of fatalities of single vehicle crashes would contribute greatly to the stated goal of reducing casualties altogether.
Due to recent years accident avoidance and crashworthiness on Austrian roads were mostly developed on national statistics and on-scene investigation respectively. Identification and elimination of black spots were main targets. In fact many fatal accidents do not occur on such black spots and black-spot investigation has reached a limit. New methods are required and therefore the Austrian Road Safety Programme was introduced by the Austrian Ministry of Transport, Innovation and Technology. The primary objective is the reduction of fatalities and severe injuries. Graz University of Technology initiated the project ZEDATU (Zentrale Datenbank tödlicher Unfälle) with the goal to identify similarities in different accident configurations. A matrix was established which categorizes risk and key factors of participating parties. Based on this information countermeasures were worked out.
NASS: the glass is half full
(2007)
The National Accident Sampling System (NASS) was born in the late 1970s. It was based on a substantial amount of experience and analysis of what was needed in the United States to understand the safety challenges of our highways. This work also showed how to collect high quality and useful crash data efficiently. Unfortunately, when Ronald Reagan - a President who believed in limited government - was elected, any hope of full funding for NASS was lost. The concept of 75 teams investigating about 18,000 serious crashes in detail annually was never realized. The system got up to 50 teams, then was cut to 36, and finally to 24 teams investigating fewer than a quarter of the originally anticipated number of crashes per year. Despite this, the NASS investigations provide a rich source of data, collected according to a sophisticated statistical sampling system to facilitate detailed national estimates of road casualties on our nation- highways and their causes. In addition, changes have been made in recent years to increase the number of more serious crashes of recent model vehicles to make the results more relevant to improving vehicle safety. A recent, detailed examination of hundreds of rollovers has provided considerable insight into rollover casualties and into what can be done to reduce them. Some of these results will be presented that show the value of the NASS system. Our experience with NASS and the Fatal Accident Reporting System (FARS) suggests a number of improvements that could be made in the United States" crash data systems. It also provides justification for a doubling or tripling of our national expenditures on crash data collection.
This study aimed to identify the occurrence, type and mechanisms of the traumatic injuries of the vulnerable road users in vehicle collisions, and to determine the effects of human, engineering, and environment factors on traffic accidents and injuries. The pedestrian accident cases were collected in the years 2000 to 2005 from Changsha Wujing hospital China and Accident Research Unit at Medical University Hannover in Germany. A statistic analysis was carried out using the collected accident data. The results from analysis of Changsha data were compared with results from analysis of GIDAS data Hannover. The injury severities were determined using AIS code and ISS values. The results were presented in terms of cause of injuries, injury distributions, injury patterns, injury severity. The factors influenced the injury outcomes were proposed and discussed for the vehicle transport environment and road users. The results were discussed with regard to accident data collection, accident sampling and injury distributions etc. In the urban area of Changsha, motorcycles and passenger cars are most frequently involved in vehicle pedestrian accidents. Head and lower extremities injuries are the predominant types of pedestrian injuries. The pedestrian accidents were identified as vital issue in urban traffic safety and therefore a high priority should be given to this road user group in research of safe urban transportation. In Hannover area, cars are most frequently involved in traffic accidents, injured pedestrians are involved in road traffic of Germany in 13% of all causalities only in 2005 and have nearly the same number as motorcyclists, but the half of bicyclists.
In recent years the boundaries between active and passive safety blurred more and more. Passive safety in the traditional term includes all safety aspects to prevent occupants to be injured or at least injury severity should be reduced. Passive Safety starts with the collision (first vehicle contact) and ends with rescue (open vehicle doors). Within this phase the occupant has to be protected by the passenger compartment whereby no intrusion should occur. Active safety on the other side was developed to interact prior to the collision whereby the goal is to prevent accidents. The extensive interaction between active and passive safety led to the terminologies "Primary" and "Secondary" safety whereas the expression Integrated Safety Concept was generated. Within this study the most well documented single vehicle accidents with cars not equipped with ESP were identified from the PENDANT database and reconstructed. Additional cases were found in the database ZEDATU of TU Graz. In comparison each case was simulated with the assumption that the cars were equipped with ESP. The differences regarding accident avoidance or crash severity as well as reduction of injury risk were analysed.
There is a need for detecting characteristics of pedestrian movement before car-pedestrian collisions to trigger a fully reversible pedestrian protection system. For this purpose, a pedestrian sensor system has been developed. In order to evaluate the effectiveness of the sensor system, the in-depth knowledge of car-pedestrian impact scenarios is needed. This study aims at the evaluation of the sensor system. The accident data are selected from the STRADA database. The accident scenarios available in this database were evaluated and the knowledge of the most common scenarios was developed in terms of the pedestrian trajectory, the pedestrian speed, the car trajectory, the car velocity, etc. A mathematical model was then established to evaluate the sensor system with different detective angles. It was found that in order to detect all the pedestrians in the most common scenarios on time the sensor detective angle must be kept larger than 60 degrees.
Since 2005 the German In-Depth Accident Study (GIDAS) also records aspects of active vehicle safety. This is done because vehicles are fitted with an increasing number of active safety devices which have undoubtedly an influence on the number, severity and course of accidents. Accident researchers expect that collecting active safety data will facilitate to assess and quantify the impact of these and future devices. It is the aim of this paper to outline benefits and limitations associated with the recording of active safety aspects within indepth studies. An overview about possible areas where active safety data can be useful will be given. For that purpose single safety or comfort systems will be selected to estimate the effects of an accident database which includes variables associated with these systems. Questions with regard to the limitations of collecting active safety data will be addressed. Possible items are for example the usability of the data recorded, the real accident cause, the small number of relevant accidents, the time span needed to gather a sufficient dataset, the small share of vehicles equipped with a certain system or different functionalities of systems that are supposed to fall in the same category. As a result user needs for a reasonable data collection of active safety elements will be elaborated.
The accident research project in Dresden was founded in July 1999. To date over 6.000 crash investigations have been undertaken. About 10.000 vehicles have been documented and over 13.000 participants have been debriefed. But there is much more than this scientific success. Because of the interdisciplinary character between the medical and technical focus, the project affords an important contribution for the education of the involved students. Over 200 students of different fields of study have got experiences not only for the occupational career. This lecture describes the additional effects of the accident research project regarding the education of the students, the capacity for teamwork and learning about dealing with accident casualties.
Description of road traffic related knee injuries in published investigations is very heterogeneous. The purpose of this study was to estimate the risk of knee injuries in real world car impacts in Germany focusing vulnerable road users (pedestrians, bicyclists and motorcyclists) and restrained car drivers. The accident research unit analyses technical and medical data collected shortly after the accident at scene. Two different periods (years 1985-1993 and 1995-2003) were compared focusing on knee injuries (Abbreviated Injury Scale (AISKnee) 2/3). In order to determine the influences type of collision, direction and speed as well as the injury pattern and different injury scores (AIS, MAIS, ISS) were examined. 1.794 pedestrians, 742 motorcyclists, 2.728 bicyclists and 1.116 car drivers were extracted. 2% had serious ligamentous or bony injuries in relation to all injured. The risk of injury is higher for twowheelers than for pedestrians, but knee injury severity is higher for the latter group. Overall the current knee injury risk is low and significant reduced comparing both time periods (27%, p<0,0001). Severe injuries (AISKnee 2/3) were below 1%). Improved aerodynamic design of car fronts reduced the risk for severe knee injuries significantly (p=0,0015). Highest risk of injury is for motorcycle followed by pedestrians, respectively. Knee protectors could prevent injuries by reducing local forces. The classically described dashboard injury was rarely identified. The overall injury risk for knee injuries in road traffic is lower than estimated and reduced comparing both periods. The aerodynamic shape of current cars compared to older types reduced the incidence and severity of knee injuries. Further modification and optimization of the interior and exterior design could be a proper measurement. Classic described injury mechanisms were rarely identified. It seems that the AIS is still underestimating extremity injuries and their long term results.
The present report is a compilation of the evaluation results obtained by the end of 2009 in respect of the experimental novice driver training models "Voluntary further training seminars for novice drivers" (here: "VFT" model"). The models were initially introduced by the legislator on a trial basis in 2003 and 2005 respectively, and were to be evaluated and tested with regard to their road safety effectiveness prior to making a decision on the permanent integration into the driver licensing system. Alongside the question of road safety effectiveness (summative evaluation), the evaluation studies also analysed the experience gained from practical implementation of the individual concepts (process/formative evaluation). Whereas the safety impact is of direct significance for the decision on permanent adoption of the models, the results of the process evaluation are important independently of this decision for considerations of the possibilities for concept optimisation. The evaluation studies conducted by the Federal Highway Research Institute (BASt) were spread over a total of six sub-projects; complete and conclusive results are available for five of these sub-projects. The evaluation of the VFT model was unable to confirm the road safety effectiveness of this approach. It is especially disturbing to learn that participants in the VFT model display a significantly greater risk of accident involvement and traffic offences compared to novice drivers of the same age and with similar driving experience who have not attended a VFT seminar. Possible causes, insofar as a directly causal effect of the VFT participation is excluded, can most reasonably be assumed to lie in the curtailed effectiveness of the probationary licence rules in the case of VFT participants (participation is honoured with a shortening of the probationary period by up to one year) and self-selection effects in conjunction with VFT participation (model may attract above all those novice drivers with a tendency to conspicuous driving behaviour, as a means to achieve a shortening of the probationary period). In view of the significantly poorer driving behaviour of the VFT participants, and against the background of the aforementioned plausibility considerations regarding the underlying causes, however, it seems expedient to already now remove the incentive of a shorter probationary period in case of VFT participation. The evaluation of practical implementation of the VFT model revealed the need for further development of several points. This refers to the quality of the active, attitude-building training forms to be applied by the seminar leaders and moderators, as well as questions concerning optimised seminar organisation in the interest of training quality. It is here recommended that the seminar concept be subjected to a thorough review, and that the conditions for concept-adequate implementation be improved.
Die vom Bundesministerium für Verkehr, Bau und Stadtentwicklung (BMVBS) beauftragte Studie zu den Auswirkungen neuartiger Lastzugkombinationen auf die Infrastruktur, den Verkehrsablauf und die Verkehrssicherheit liegt jetzt vor. Die Untersuchungen der Arbeitsgruppe der Bundesanstalt für Straßenwesen (BASt) konzentrieren sich ausschließlich auf die technischen Fragestellungen. Die wesentlichen Ergebnisse: - Eine erhöhte Straßenschädigung ist wegen der zugrunde gelegten neuen Fahrzeugtypen mit acht Achsen nicht zu erwarten. Infolge der prognostizierten allgemeinen Transportleistungssteigerung ist dieser Effekt jedoch von begrenzter Dauer. - Die Beanspruchung der Brücken wird durch 60-Tonnen-Lastzugkombinationen deutlich erhöht, was Ersatz oder Verstärkungen erforderlich machen wird. - Für die Tunnel der Bundesfernstraßen können sich wegen des deutlich größeren Ladevolumens höhere Brandlasten ergeben, mit der Folge erhöhter Anforderungen an die Sicherheitsausstattung. - Probleme bei der Befahrbarkeit von Kreisverkehren, Straßenkreuzungen und -einmündungen sowie Parkplätzen auf Rastanlagen werden sich infolge der größeren Fahrzeuglängen ergeben. Durch zusätzliche fahrzeugtechnische Einrichtungen - wie Lenkachse oder zusätzliche Gelenke - können diese gemindert werden. - Nach den vorliegenden Erfahrungen aus dem Ausland sind für ausreichend motorisierte und mit zuverlässigen Bremsanlagen ausgerüstete Transportfahrzeuge keine gravierenden Probleme hinsichtlich des Verkehrsablaufs und der Verkehrssicherheit auf Autobahnen zu erwarten. Im nachgeordneten Straßennetz (insbesondere Landes-, Kreis- und Gemeindestraßen) ist mit negativen Auswirkungen der Lastzugkombinationen sowohl auf die Verkehrssicherheit als auch auf die Leistungsfähigkeit der Straßen zu rechnen. So muss beispielsweise mit längeren Überholwegen und längeren Räumzeiten - etwa beim Abbiegen und an Bahnübergängen - gerechnet werden. - Die derzeitigen Schutz- und Rückhaltesysteme sind nicht für 60-Tonnen-Lastzugkombinationen ausgelegt. Derartige Rückhaltesysteme müssten erst entwickelt werden. Aufgrund der höheren Fahrzeuggewichte könnte die Unfallschwere bei Auffahrunfällen deutlich zunehmen. Moderne Fahrerassistenzsysteme (Spurhalteassistent sowie Bremsassistent mit Abstandsradar) könnten jedoch grundsätzlich dazu beitragen, sowohl Unfallrisiko als auch Unfallschwere zu verringern.
In Deutschland werden jährlich über 300.000 Unfälle mit Personenschaden und weitere knapp 2 Mio. Unfälle mit Sachschaden von der Polizei registriert. Maßnahmen zur Verbesserung der Verkehrssicherheit und damit zur Unfallprävention sowie zur Verringerung der Unfallfolgen werden auf unterschiedlichen Aktivitätsfeldern und unterschiedlichen administrativen Ebenen umgesetzt. Bezüglich der Straßeninfrastruktur zielen Verbesserungsmaßnahmen darauf ab, Sicherheitsdefizite der Straße zu erkennen und zu beheben. Die Anstrengungen der vergangenen Jahre und Jahrzehnte galten und gelten der Entwicklung von Verfahren, um dies auf alle Phasen des Lebenszyklus einer Straße zu übertragen, sowohl auf die Planung, den Entwurf, den Bau sowie den Betrieb von Straßen. Um den Verwaltungen für die Sicherheitsanalyse von Straßennetzen ein Instrument an die Hand zu geben, wurden die Empfehlungen für die Sicherheitsanalysen von Straßennetzen (ESN) entwickelt und im Jahre 2003 veröffentlicht. Das Verfahren beruht auf der Analyse des Unfallgeschehens im betrachteten Straßennetz. Die Berechnung von Sicherheitspotenzialen nach den ESN wird von der BASt für das Netz der Bundesautobahnen seit 2004 regelmäßig durchgeführt. In dem hier durchgeführten Projekt wurde die Machbarkeit einer ESN-Anwendung auf dem Netz der Bundesstraßen auf Grundlage der Daten der amtlichen Unfallstatistik und der Abschnittsbildung nach der Netzstruktur untersucht. Insgesamt gesehen kann das Verfahren nach ESN auffällige Bereiche im Straßennetz identifizieren, auf denen sicherheitsverbessernde Maßnahmen die größte Wirksamkeit erwarten lassen. Damit steht ein Werkzeug zur Verfügung, das die bereits etablierte örtliche Unfallanalyse ergänzt. Die Anwendung auf dem Bundesstraßennetz zeigt, dass für eine flächendeckende Anwendung des Verfahrens sowohl bei den notwendigen Datengrundlagen als auch bei Fragen der Methodik Verbesserungsbedarf besteht.
Transportable Schutzeinrichtungen werden in Deutschland im Bereich von Autobahnbaustellen eingesetzt, um entgegengesetzt gerichtete Verkehrsströme zu trennen und Arbeitsstellen gegenüber dem laufenden Verkehr zu sichern. Bei schweren Unfällen kann es erforderlich werden, dass Schutzeinrichtungen geöffnet werden müssen, um den Rettungskräften den Zugang zur Unfallstelle zu erleichtern. Die deutschen Regelwerke sehen bislang keinen Einsatz von Notöffnungsmöglichkeiten in transportablen Schutzeinrichtungen vor. Ziel des Projektes war es, zu ermitteln, ob und wo durch die Verwendung von Öffnungsmöglichkeiten die Zugänglichkeit zum Unfallort erleichtert werden kann. Im zweiten Schritt sollten Vorgaben für eine einheitliche Gestaltung von Notöffnungen erarbeitet werden, die mit den marktgängigen Schutzeinrichtungen umsetzbar sind, und die es den Einsatzkräften ermöglichen, ohne Vorkenntnisse und ohne Werkzeuge die Öffnungen schnell und einfach zu bedienen. Dazu sollten sowohl Verschlussmechanismen wie auch eine visuelle Kennzeichnung betrachtet werden. Die Untersuchungen haben gezeigt, dass Notöffnungen mit sehr vielen marktgängigen Schutzeinrichtungen realisiert werden können. Das größte Problem bei der Umsetzung stellt für die meisten Systeme das hohe Eigengewicht der Elemente dar. Von einer grundsätzlichen Verwendung von Notöffnungen an Arbeitsstellen auf Autobahnen ist abzuraten. Jedoch können unter bestimmten Voraussetzungen, die in einem Kriterienkatalog zusammengefasst wurden, durch den Einsatz von Notöffnungen die Zugriffsmöglichkeiten bei Unfällen verbessert werden. Aus Gründen der Verkehrssicherheit empfiehlt es sich, Notöffnungen jeweils am Beginn und am Ende einer Baustelle zu platzieren. Sind zusätzliche Öffnungspunkte dazwischen erforderlich, muss sehr gut abgewägt werden zwischen dem Faktor Zeitgewinn und dem erhöhten Risiko für Einsatzkräfte und den nachfolgenden Verkehr.
Um die zukünftige Entwicklung von Fahrzeugen mit alternativem Antrieb, z.B. Hybrid-, Elektro- und Brennstoffzellenfahrzeuge, in Deutschland verfolgen und analysieren zu können, hatte die Bundesanstalt für Straßenwesen (BASt) im Jahr 2010 die Einrichtung einer langfristigen Beobachtung des Fahrzeugmarktes und einer konzentrierten Beobachtung des Unfallgeschehens initiiert, mit den Zielen, die tatsächliche Umsetzung des technologischen Fortschritts in marktgängige Produkte zu verfolgen, frühzeitig genaue Kenntnis über die sich der technologischen Entwicklung anschließenden tatsächlichen Marktentwicklung zu gewinnen, und mögliche Fehlentwicklungen - insbesondere mit Blick auf die Verkehrssicherheit zeitnah zu identifizieren. Auf Basis der bisherigen Marktentwicklung ist die Analyse des Unfallgeschehens naturgemäß noch wenig aussagekräftig. Die deutliche Zunahme der Unfallbeteiligung von Hybridfahrzeugen um 95% von 2007 bis 2010 wird durch einen Bestandsanstieg von 117% in diesem Zeitraum relativiert und deutet daher eher auf ein unterdurchschnittliches Risiko, wobei keine Informationen über die durchschnittliche Fahrleistung in die Interpretationen einbezogen werden können. Der relativ hohe Anteil von Innerortsunfällen ist vor allem vor dem Hintergrund der Nutzung der Fahrzeuge zu interpretieren.
Für einige fahrfremde Tätigkeiten ist durch Labor- und Feldstudien gut belegt, dass diese das Fahren beeinträchtigen können. Weitgehend unbekannt ist aber, wie häufig und bei welchen Gelegenheiten diese Tätigkeiten während des Fahrens durchgeführt werden. Erst aus der Integration von Auftretenshäufigkeit und Gefährlichkeit einer fahrfremden Tätigkeit lässt sich abschätzen, inwieweit sie das Unfallrisiko erhöht. Im Wesentlichen eignen sich vier Studientypen zur Untersuchung von Häufigkeit und Gefährlichkeit fahrfremder Tätigkeiten. Die Frage nach der Gefährlichkeit lässt sich effektiv im Simulatorexperiment beantworten, allerdings ist hier die Übertragbarkeit auf reales Fahren problematisch. Mit Naturalistic Driving Studies können sowohl Häufigkeit als auch Gefährlichkeit fahrfremder Tätigkeiten im Realverkehr untersucht werden. Ergebnisse solcher Studien haben die beste Gültigkeit. Demgegenüber steht ein extrem hoher finanzieller und zeitlicher Aufwand. Informationen über die Häufigkeit fahrfremder Tätigkeiten können alternativ durch Befragungsstudien erfasst werden. Dabei können zum einen Fahrer direkt nach einer Fahrt aufgesucht und mit Face-to-Face-Interviews befragt werden. Zum anderen kann eine repräsentative Auswahl von Fahrern gebeten werden, an einem Tag ein Fahrttagebuch zu führen, in dem fahrfremde Tätigkeiten registriert werden. Beides ermöglicht einen effektiven Zugang zu einer repräsentativen Stichprobe. Zentrales Problem beider Studientypen ist die Frage, inwieweit fahrfremde Tätigkeiten überhaupt berichtbar sind und auch tatsächlich berichtet werden. Alle Ansätze setzen voraus, dass eine umfassende, eindeutige Definition fahrfremder Tätigkeiten vorliegt. Mit Hilfe einer Literaturstudie wurde ein Katalog relevanter fahrfremder Tätigkeiten entwickelt. In der untersuchten Literatur fanden sich zwei unterschiedliche Arten von Studien: Die erste Gruppe von Studien basiert auf Unfallstatistiken und -datenbanken aus verschiedenen Ländern. Die zweite Gruppe von Studien sind Beobachtungen der Fahrer während der Fahrt. Fasst man die Unfallstudien zusammen, so erscheint eine Häufigkeit zwischen 10% und 30% fahrfremder Tätigkeiten bei allen Unfällen als wahrscheinlich. Für die Beobachtungsstudien bei unfallfreien Fahrten findet sich insgesamt ein Anteil von ca. 30% der Fahrzeit, die mit fahrfremden Tätigkeiten verbracht wird. Die Ergebnisse weisen darauf hin, dass nicht jede fahrfremde Tätigkeit das Unfallrisiko erhöht, aber dass sich für bestimmte fahrfremde Tätigkeiten unter bestimmten Umständen sehr deutliche Erhöhungen des Unfallrisikos zeigen lassen. Allerdings sind die vorliegenden Ergebnisse sehr heterogen und fehlen für Deutschland weitgehend. Vor diesem Hintergrund wurde mit einer Machbarkeitsstudie mit knapp 300 Fahrern untersucht, inwieweit ein Face-to-Face-Interview geeignet ist, um die Häufigkeit fahrfremder Tätigkeiten durch eine Befragung direkt nach der Fahrt in Deutschland zu erfassen. Die dabei befragten fünf Fahrergruppen unterscheiden sich in einer Reihe von Merkmalen, die wiederum die Häufigkeit fahrfremder Tätigkeiten beeinflussen können. Insgesamt gaben 80% der befragten Fahrer an, dass sie zwischen einer und drei fahrfremde Tätigkeiten in der letzten halben Stunde ausgeführt haben. Den zeitlich größten Teil der fahrfremden Tätigkeiten machen die Interaktionen mit Beifahrern und die Bedienung fahrzeugfremder Geräte aus. Den Fahrern ist zwar prinzipiell bewusst, dass fahrfremde Tätigkeiten gefährlich sein könnten, für die von ihnen durchgeführten Tätigkeiten sind sie aber der Meinung, dass diese eher nicht gefährlich oder ablenkend gewesen sind. Damit wird deutlich, warum die Fahrer so häufig und über so einen langen Zeitraum fahrfremde Tätigkeiten ausführen. Sie sind offensichtlich davon überzeugt, dass dies zwar prinzipiell gefährlich sein kann, dies aber in der speziellen Situation für sie nicht zutrifft. Unter methodischen Gesichtspunkten hat sich dieser Zugang bewährt. Mit Hilfe von Face-to-Face- Interviews direkt nach der Fahrt sind mit einem sehr überschaubaren Aufwand Schätzungen der Häufigkeit und Dauer fahrfremder Tätigkeiten innerhalb der letzten halben Stunde der Fahrt zu erhalten. Die hohe Teilnahmequote und die Auskunftsfreudigkeit der Teilnehmer sprechen dafür, dass diese die von ihnen durchgeführten fahrfremden Tätigkeiten ehrlich und vollständig berichten. Es zeigt sich, dass fahrfremde Tätigkeiten sowohl in der Häufigkeit also auch in ihrer Dauer auch in Deutschland ein großes Problemfeld darstellen. Allerdings sollten diese Befunde mit größeren Stichproben repliziert werden, bei denen der Anteil anderer Fahrten (nachts, andere Jahreszeiten, andere Fahrziele) und Fahrer (Lkw-Fahrer in der Stadt) zu erhöhen wäre. Mit der beschriebenen Art des Vorgehens wäre dies mit einem begrenzten Aufwand gut möglich.
Das Ziel der vorliegenden Arbeit war der Vergleich verschiedener Stauendewarnungen hinsichtlich ihrer Effekte auf die Fahrsicherheit. Hierfür wurden im Rahmen einer Fahrsimulatorstudie mit N = 32 Probanden mit Bewegungssystem on-trip Warnungen vor Stauenden auf Autobahnen untersucht. Es wurden in zwei Verkehrsbedingungen ("mit Verkehr" vs. "ohne Verkehr": Stauenden werden mit oder ohne Umgebungsverkehr erreicht) jeweils zwei Stauendearten simuliert: (1) Umgebungsverkehr bremst kurz vor dem Stauende plötzlich ab ("hartes Stauende") bzw. Stauende ist durch die Streckengeometrie nicht einsehbar ("verdecktes Stauende") vs. (2) Umgebungsverkehr reduziert die Geschwindigkeit vor dem Stauende graduell ("weiches Stauende") bzw. Stauende ist einsehbar ("unverdecktes Stauende"). Zudem wurde der erstmalige Zeitpunkt der Warnung ("3.5 km" vs. "1.5 km" vs. "0.3 km" vor Stauende) und die Warnpräzision ("präzise Warnung": Distanz zum Stauende wird angezeigt und regelmäßig aktualisiert vs. "unpräzise Warnung" ohne konkrete Distanzangabe) variiert. Außerdem wurden Stauenden in einer nicht-gewarnten Kontrollfahrt angefahren. Es wurde ein Bewertungskonzept für die Fahrsicherheit entwickelt, anhand dessen die eingeführten Warnkonzepte mittels Indikatoren für Längs- und Querregelung, Ereigniserkennung und Probandenbefragung verglichen werden können: (1) Die Rohdaten verschiedenartiger Indikatoren wurden in einem deskriptiven, graphischen und inferenzstatistischen Vorgehen interpretiert und (2) die so ermittelten Kennwerte wurden in eine integrierte statistische Auswertung mittels TOPSIS (Technique for Order Preference by Similarity to Ideal Solution), das einen standardisierten Vergleich verschiedener Warnalternativen ermöglicht, überführt. Dieses Bewertungskonzept wurde auf die in der Fahrsimulation aufgezeichneten Daten angewendet, so dass für die eingeführten Variationen der Stauendearten (Warnpräzision und Warndistanz) in Abhängigkeit der Verkehrsbedingung eine vergleichende Bewertung der Sicherheitswirkungen ermöglicht wurde. Durch eine ergänzende kritische Einordnung der Ergebnisse und des Versuchsaufbaus dienen die Ergebnisse als Entscheidungsunterstützung bei der Entwicklung und Einführung von Stauendewarnungen.
Ziel des Forschungsprojektes war die quantitative Vorausschätzung des Straßenverkehrsunfallgeschehens der Jahre 2015 und 2020 in Deutschland mit Hilfe eines eigens entwickelten Prognoseverfahrens. Das Verfahren sollte eine größtmögliche Differenzierung des zukünftigen Unfallgeschehens nach Schweregrad, Art der Verkehrsbeteiligung und Alter der Verkehrsteilnehmer erlauben. Das Modell sollte grundsätzlich in der Lage sein, Ursache - Wirkungszusammenhänge differenzierter als in herkömmlichen Ansätzen der Zeitreihenanalyse und deren Trendfortschreibung abzubilden. Den Prognosehorizont bilden die Jahre 2015 und 2020. Im Rahmen des vorliegenden Projekts erfolgte für Deutschland erstmals eine Prognose der Unfall- und Verunglücktenzahlen über eine Risikoanalyse maßgebender Unfallkonstellationen. Dabei wurde sowohl nach Ortslagen, Unfallbeteiligten und Alter der Verkehrsteilnehmer unterschieden. Mit Hilfe des vorgestellten Prognosemodells lässt sich der künftige Grad der Straßenverkehrssicherheit differenziert beurteilen. Auswirkungen der sich ändernden Rahmenbedingungen auf das Unfallgeschehen werden sowohl auf der Ebene der Unfallentstehung als auch auf der Ebene der Unfallschwere berücksichtigt. Dabei kann insbesondere der Einfluss aus Demografie und sich verändernder Zugangsvoraussetzungen zu Verkehrsmitteln auf das Unfallgeschehen abgebildet werden. Der vorgestellte erste Entwicklungsstand des Modells bietet daher bereits sehr gute Möglichkeiten, Wirkungsanalysen bei veränderten Einflussgrößen durchzuführen. Das Unfallprognosemodell wurde modular aufgebaut. Dadurch konnte eine logische und hierarchische Modellstruktur realisiert werden. In der Folge werden die einzelnen Module im Gesamtmodell sequentiell durchlaufen, sind in sich geschlossen und folgen eigenen Berechnungsvorschriften. Eine Umsetzung des Modells erfolgte auf Basis verknüpfter Excel-Dateien mit Hilfe von VBA-Makros. Hierbei wurde auf eine stark getrennte Struktur der einzelnen Berechnungsschritte Wert gelegt, um die einzelnen Dateien übersichtlich und nachvollziehbar zu gestalten. Gleichzeitig erfüllt das Modell die Forderung einer größtmöglichen Variabilität. So können sowohl geänderte Eingangsdaten zugrundegelegt werden als auch die Auswahl der differenzierten Trendberechnung beliebig getroffen werden. Im Ergebnis ist auf Basis der getroffenen Annahmen, der historischen Entwicklung und der konstellationenfeinen Fortschreibung der Risikofaktoren ein deutlicher Rückgang der Unfall- und Verunglücktenzahlen in Deutschland für den Prognosezeitraum gegenüber 2006 zu erwarten. Bei den Unfällen mit Personenschaden ist bis 2020 mit einer Abnahme um nahezu 30 % zu rechnen, bei den Verunglückten kann von einer Reduzierung um 13 % ausgegangen werden. Die Zahl getöteter Personen sinkt dabei voraussichtlich von ca. 5.100 Personen (2006) auf 2.700 Personen (2020). In Bezug auf die Schwerverletzten ist im gleichen Zeitraum mit einem Rückgang um ca. 33.000 Personen zu rechnen (2006: 74.500 Personen). Ebenso sinkt gegenüber dem Analysejahr 2006 die Anzahl Leichtverletzter um etwa 6 % auf etwa 326.000 Personen. Die Rückgänge der Verunglücktenzahlen liegen zwischen 2006 und 2015 sowie zwischen 2015 und 2020 zahlenmäßig auf einem vergleichbaren Niveau (55.000 bzw. 58.000 V). Somit wird etwa die Hälfte der Gesamtrückgänge im Prognosezeitraum allein in den letzten fünf Jahren der insgesamt fünfzehnjährigen Zeitspanne erreicht.
Die steigende Lebenserwartung sowie die geringe Geburtenrate führen zu einer Alterung der Gesellschaft, die sich schon heute bemerkbar macht und sich in den nächsten Jahrzehnten noch verstärkt auswirken wird. Damit verbunden ist eine relative Zunahme von Auto fahrenden Senioren. Immer mehr ältere Menschen orientieren sich an einem aktiven Lebens- und Freizeitstil. Dabei spielt der Pkw eine herausragende Rolle - ermöglicht er doch oft erst die Aufrechterhaltung von Mobilität und Unabhängigkeit. Gleichzeitig kann es jedoch mit fortschreitendem Alter zu verschiedenen körperlichen oder geistigen Leistungseinbußen kommen, die möglicherweise die Fahrleistung beeinflussen. Vor diesem Hintergrund rückt die Frage nach den Unfallrisiken älterer Kraftfahrer weiter in den Mittelpunkt des Interesses. Das von der Bundesanstalt für Straßenwesen geförderte Projekt PROSA (Profile von Senioren mit Autounfällen) setzte sich zum Ziel, den Einfluss altersbedingter Leistungseinbußen auf das Unfallrisiko differenzierter zu betrachten. Am Zentrum für Alternskulturen der Universität Bonn wurden Profile von Senioren untersucht, die in einen Autounfall verwickelt waren, und es wurde der Frage nachgegangen, welche Bedeutung diese für die Ableitung von Interventionsmaßnahmen haben. Im Großraum Bonn wurden dazu 180 Senioren mit einem Mindestalter von 65 Jahren interviewt, die in den letzten fünf Jahren als Fahrer eines Pkws in einen Unfall verwickelt waren. Die Teilnehmer wurden zu individuellen Leistungsbeeinträchtigungen und Persönlichkeitsmerkmalen sowie zu ihrer Fahrbiographie und Unfallgeschichte befragt. Darüber hinaus wurde eine Teilstichprobe von 50 Teilnehmern einer internistisch-verkehrspsychologischen Untersuchung sowie einer Fahrverhaltensprobe unterzogen. Die Ergebnisse verdeutlichen, dass das Alter allein kein Prädiktor für individuelle Leistungsfähigkeit und Unfallrisiko darstellt. Vielmehr scheinen spezifische Kombinationen aus alterskorrelierten Einbußen und Krankheit zu einem erhöhten Risiko zu führen. Diese Heterogenität sollte vor allem bei interventiven Maßnahmen und bei künftigen Forschungen berücksichtigt werden.
Ziel der Untersuchung war es, ein standardisiertes Verfahren zur Abschätzung der Auswirkungen von Ortsumgehungen auf die Verkehrssicherheit zu entwickeln. Dieses Verfahren soll den Netzzusammenhang berücksichtigen und eine Bilanzierung der Verkehrssicherheitswirkungen von Ortsumgehungen ermöglichen. Dabei sind auch Umbaumaßnahmen und veränderte Verkehrsregelungen in den Ortsdurchfahrten, sofern diese im Zusammenhang mit der Ortsumgehung realisiert werden, zu berücksichtigen. Damit soll eine verbesserte Entscheidungsgrundlage für die Bewertung von Ortsumgehungen aus Verkehrssicherheitssicht zur Verfügung gestellt werden. Das standardisierte Verfahren wurde anhand von konkreten Beispielen auf seine Aussagegenauigkeit hin überprüft. Hierfür wurden die realen Verkehrssicherheitswirkungen von 21 umgesetzten Ortsumgehungen in einem definierten relevanten Straßennetz erhoben und bilanziert. Bei der Bilanzierung der Verkehrssicherheitswirkungen der 21 Beispiele im Vorher-Nachher-Vergleich zeigte sich, dass die Knotenpunkte im Zuge der Ortsumgehungen wesentlich dazu beitragen, ob der Vorher-Nachher-Vergleich positiv oder negativ ausfällt. Resümierend kann festgehalten werden, dass über das (neue) Berechnungsverfahren die Möglichkeit besteht, die Auswirkungen von Ortsumgehungen auf die Verkehrssicherheit mit relativ geringem Aufwand abzuschätzen, wenn die Verkehrsbelastungen für den Vorher-Fall (ohne Ortsumgehung) und für den Nachher-Fall (mit Ortsumgehung) zur Verfügung stehen. Das Verfahren weist die voraussichtlichen Verkehrssicherheitswirkungen, die durch den Bau einer Ortsumgehung im Straßennetz entstehen, in ihrer Tendenz und den Absolutzahlen genauer aus als das derzeit angewendete Verfahren nach EWS.