The Swedish National Road Administration (SNRA), the Japanese Automobile Research Institute (JARI) and the Federal Highway Research Institute (BASt) are co-operating in the International Harmonized Research Activities on Intelligent Transportation Systems (IHRA-ITS). Under this umbrella a joint study was conducted. The overall objective of this study was to contribute to the definition and validation of a "battery of tools" which enables a prediction and an assessment of changes in driver workload due to the use of in-vehicle information systems (IVIS) while driving. In this sense \"validation\" means to produce empirical evidence from which it can be concluded that these methods reliably discriminate between IVIS which differ in terms of relevant features of the HMI-design. Additionally these methods should also be sensitive to the task demands imposed on the driver by the traffic situation and their interactions with HMI-design. To achieve these goals experimental validation studies (on-road and in the simulator) were performed in Sweden, Germany and Japan. As a common element these studies focused on the secondary task methodology as an approach to the study of driver workload. In a joint German-Swedish on-road study the Peripheral Detection Task (PDT) was assessed with respect to its sensitivity to the complexity of traffic situations and effects of different types of navigation systems. Results show that the PDT performance of both the German and the Swedish subjects reflects the task demands of the traffic situations better than those of the IVIS. However, alternative explanations are possible which will be examined by further analyses. Results of this study are supplemented by the Japanese study where informational demands induced by various traffic situations were analysed by using a simple arithmetic task as a secondary task. Results of this study show that relatively large task demands can be expected even from simple traffic situations.
The incidence of side impacts was investigated from GIDAS data. Both vehicle-fixed object and vehicle-vehicle collisions were analysed as these are enclosed within the consumer testing program. Vehicle-fixed object collisions were stratified according to ESC availability. Results indicated that vehicles equipped with ESC rarely have pure-lateral impacts. An increase in oblique collisions was seen for the vehicles with ESC whereby most vehicle were driving in left curves. The analysis of vehicle-vehicle collisions developed injury risk curves were developed at the AIS3+ injury severity for the vehicle-vehicle side impacts. Results suggested that greatest injury risk occurred when a Pre Euro NCAP vehicle was struck by a Post Euro-NCAP vehicle. The remaining curves did not show different behaviour, indicating that stiffness increased have been equally combated. This was attributable to the few Post Euro-NCAP vehicles that had a deployed curtain airbag available in the sample. The integration of Euro NCAP testing has shown to improve vehicle crashworthiness for pole collisions, as those vehicles with ESC rarely incur lateral impacts.
In the last years there has been a decline in accident figures in Germany especially for four wheeled vehicles. At the same time, accident figures for motorcycles remained nearly constant. About 17 % of road traffic fatalities in the year 2006 were motorcyclists. 33 % of these riders were killed in single vehicle crashes. This leads to the conclusion that improving driving dynamics and driving stability of powered two wheelers would yield considerable safety gains. However, the well-known measures for cars and trucks with their proven effectiveness cannot be transferred easily to motorcycles. Therefore studies were carried out to examine the safety potential of Anti Lock Braking Systems (ABS) and Vehicle Stability Control (VSC) for motorcycles by means of accident analysis, driving tests and economical as well as technical assessment of the systems. With regard to ABS, test persons were assigned braking tasks (straight and in-curve) with five different brake systems with and without ABS. Stopping distances as well as stress and strain on the riders were measured for 9 test riders who completed 105 braking manoeuvres each. Knowing the ability of ABS to avoid falls during braking in advance of a crash and taking into account the system costs, a cost benefit analysis for ABS for motorcycles was carried out for different market penetration of ABS, i.e. equipment rates, and different time horizons. The potential of VSC for motorcycles was estimated in two steps. First the kinds of accidents that could be prevented by such a system at all have been analysed. For these accident configurations, simulations and driving tests were then performed to determine if a VSC was able to detect the critical driving situation and if it was technically possible to implement an actuator which would help to stabilise the critical situation.
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.
Mit der EU-Verordnung Nummer 661/2009 zur Typgenehmigung und allgemeinen Sicherheit von Kraftfahrzeugen wird von der EU für schwere Nutzfahrzeuge der Einbau von Spurverlassenswarnsystemen und automatischen Notbremssystemen vorgeschrieben. Mit dem obligatorischen Einbau der Systeme wird eine Reduktion der Abkommens- und Auffahrunfälle von Nutzfahrzeugen aus den Klassen M2, M3, N2 und N3, die auf Grund der hohen Masse der Fahrzeuge folgenschwer sind, erwartet. Als Einführungsdaten werden der 1. November 2013 für neue Fahrzeugtypen und der 1. November 2015 für neue Fahrzeuge genannt. Leistungsanforderungen beziehungsweise technische Spezifikationen, denen die Systeme genügen müssen, liegen jedoch noch nicht vor. Diese werden derzeit von einer Expertengruppe auf UN-ECE-Ebene entwickelt. Dabei wird versucht, technologieneutrale Beschreibungen für die Ausgestaltung der Systeme zu erstellen, die gleichzeitig sowohl den gewünschten Nutzen für die Verkehrssicherheit garantieren, sich aber auch an der derzeit vorhandenen und realisierbaren Technologie orientieren. Darüber hinaus müssen die Systemkosten in einem vernünftigen Verhältnis zum Sicherheitsnutzen stehen. Ziel ist es, im Laufe des Jahres 2011 Vorschläge für die Legislative vorzulegen. Es wird über den Stand der Arbeiten, offene Fragestellungen, Herausforderungen bei der Ausgestaltung der technischen Anforderungen sowie sich abzeichnende Ergebnisse berichtet. Dabei sind die Arbeiten in Bezug auf Lane Departure Warning Systems (LDWS) bereits weiter fortgeschritten als zu Advanced Emergency Braking Systems (AEBS).
Die Bundesanstalt für Straßenwesen (BASt) ist an mehreren Forschungsvorhaben im Zusammenhang mit der Instandsetzung und Verstärkung von orthotropen Fahrbahnplatten beteiligt. Der Beitrag stellt die dabei gemachten Erfahrungen und die Entwicklungen der Verstärkungsverfahren in einem Überblick dar. Ein Großteil der Stahlbrücken wurde in Deutschland in den 1960er und 1970er Jahren nach den damals gültigen Regelwerken gebaut. Bei Erstellung dieser Regelwerke war die ermüdungswirksame Belastung durch den rasant steigenden Schwerlastverkehr nicht absehbar. Die damals erstellten Bauwerke weisen nach heutigem Kenntnisstand daher teilweise Defizite auf, die zu Schäden in Form von Schweißnaht- und Blechrissen geführt haben, die zu aufwändigen Instandsetzungen führten. Die Schäden werden in vier Kategorien eingeteilt, die sich jeweils beziehen auf die Anschlüsse am Deckblech, im Längssystem (Längssteifen), im Quersystem (Querträger) sowie im Hauptsystem (Hauptträger). Bei Anschlüssen im Hauptsystem sind bisher jedoch keine Schäden bekannt. Da das Deckblech und seine Anschlüsse infolge der direkten Lasteintragung durch die Reifen besonders gefährdet sind, konzentrieren sich die aktuellen Untersuchungen zu Instandsetzungsmethoden auf die dort aufgetretenen Schäden. Erfolgversprechend haben sich herausgestellt: direkte Deckblechverstärkung durch Stahlbleche, Aufbringen einer Sandwichplatte (Sandwich-Plate-System (SPS)) und Aufbringen von hochfestem bewehrten Stahlfaserbeton sowie die Verbesserung der Mitwirkung des Fahrbahnbelages durch erhöhte Steifigkeit des Asphaltbelags (zum Beispiel hohlraumreiches Asphaltgerüst mit nachträglichem Verguss) und bessere Haftung. Alle Varianten verringern die lokalen Spannungen und Verformungen signifikant und bewirken dadurch einen erhöhten Ermüdungswiderstand.
EEVC Status report
(2001)
Pedestrians represent about 20% of the overall fatalities in Europe- road traffic accidents. In this paper a methodology is proposed to understand why the numbers are so high, especially in the south of Europe and particularly in Portugal, . First a detailed statistical analysis using Ordinal Logistic Regression model (OLR) was applied to the gathered data from all Portuguese accidents with victims in the period 2010-2012. In a second stage accident reconstruction computational techniques using pedestrian biomechanical models are used to evaluate the accident conditions that lead to the injuries, such as the speed and the impact location. For biomechanical injury criterions, the AIS (Abbreviated Injury Scale), the HIC (Head Injury Criterion) and other injury criterions based on the resulting accelerations in the pedestrian's body are used. The statistical model reported that there were several predictors that significantly influenced the pedestrian injury severity in the event of a road accident, such as Pedestrian's age, Pedestrian's gender, Vehicle Design/Category or Driver's gender. The use of injury scales and biomechanical criterions in in-depth investigation of road accidents, such as AIS, can significantly improve the quality of the reconstruction process.
Es werden erste Ergebnisse des von der Bundesanstalt für Straßenwesen (BASt) geförderten Forschungsprojekts "Hauptstudie zur Wirksamkeit von Tunnelwänden als Träger photokatalytischer Oberflächen" (FE 9.0184/2011/ARB) vorgestellt. Ziel war die Erarbeitung von technischen Lösungen zur Stickoxidreduktion an einem Tunnelstandort durch die Konzeptionierung und den Bau abgeschlossener photokatalytischer Reaktoren (Tunnelkassetten) sowie deren Validierung im Tunnel "Rudower Höhe" an der Bundesautobahn A113 in Berlin. Dabei wird künstliches UV-Licht als Energiequelle für den Schadstoffabbau eingesetzt. Es wird speziell über die Modellierungen berichtet, mit Hilfe derer die Tunnelkassetten sowohl strömungstechnisch als auch in Hinblick auf den photokatalytischen Abbauwirkungsgrad optimiert wurden.
This paper set out to examine the possibilities for injury avoidance implications for older drivers in crashes, based on crash and injury patterns among older drivers and current trends in ageing in most western societies. A number of safety technologies were identified and discussed which have potential for improving vehicle older driver crash avoidance and crashworthiness. While there were some promising estimates available of the likely benefits of this technology for improving safety, it is evident that they need to be confirmed for older drivers, given their age-related disabilities and sensory limitations. Further research is urgently required to ensure that these technologies yield safety benefits without any disbenefits for older drivers.rn
Whiplash injuries are characterized by the high variability of its symptoms and by the subjectivity of its diagnosis, which sometimes leads to frauds perpetrated by victims of rear-end impacts. It is estimated that whiplash injuries cost annually about 10.000 million Euros in Europe. Therefore, the aim of this study was to investigate the influence of the dynamics of the accident in which the victim was involved in the probability of development of whiplash associated injuries. In the presented methodology, first an accident reconstruction is performed where the dynamics of the accident is determined. This is carried out using the software PC-Crash, police and insurance companies' data. Then biomechanical injuries criteria related with whiplash injuries are evaluated. For the evaluation of the probability of having whiplash injuries, the Neck Injury Criterion (NIC) of the victim and the mean acceleration of the vehicle were evaluated. Then, with medical reports, the results of the accident reconstruction are correlated with the reported injuries. Some examples are presented. The results obtained indicate that the study of the dynamics of the road accidents in which the victims were involved could be used as an auxiliary of the prognosis of whiplash injuries and is important for a precise diagnosis of this type of injuries.
A national initiative from the vehicle manufacturers, safety system suppliers, the road administration and universities in Sweden took off in 2007. The aim was to develop a national investigation network and a methodology focusing on all phases of a crash (pre-crash, in-crash and post-crash) as well as all parts of the road transport system (road user, vehicle and road environment). The initiative is formally run as a project with the acronym INTACT (Investigation Network and Accident Collection Techniques). It was a three year pilot with the aim to develop methodologies for an extended national crash investigation activity. During the first year the INTACT partners agreed on the aim for the investigation and methods for retrieving the data were developed. During the second and third year the methodology was tested in real-world investigations and further refinement was made. The paper describes the methodology developed to obtain high qualitative in-depth road crash data.
The overall purpose of the ASSESS project is to develop a relevant and standardised set of test and assessment methods and associated tools for integrated vehicle safety systems, primarily focussing on currently available pre-crash sensing systems. The first stage of the project was to define casualty relevant accident scenarios so that the test scenarios will be developed based on accident scenarios which currently result in the greatest injury outcome, measured by a combination of casualty severity and casualty frequency. The first analysis stage was completed using data from a range of accident databases, including those which were nationally representative (STATS19, UK and STRADA, SE) and in-depth sources which provided more detailed parameters to characterise the accident scenarios (GIDAS, DE and OTS, UK). A common analysis method was developed in order to compare the data from these different sources, and while the data sets were not completely compatible, the majority of the data was aligned in such a way that allowed a useful comparison to be made. As the ASSESS project focuses on pre-crash sensing systems fitted to passenger cars, the data selected for the analysis was "injury accidents which involved at least one passenger car". The accident data analysis yielded the following ranked list of most relevant accident scenarios: Rank Accident scenario 1 Driving accident - single vehicle loss of control 2 Accidents in longitudinal traffic (same and opposite directions) 3 Accidents with turning vehicle(s) or crossing paths in junctions 4 Accidents involving pedestrians The ranked list highlights the relatively large role played by "accidents in longitudinal traffic", and "accidents with turning vehicle(s) or crossing paths in junctions" (the second and third most prevalent accident scenarios, respectively). The pre-crash systems addressed in ASSESS propose to yield beneficial safety outcomes with specific regard to these accident scenarios. This indicates that the ASSESS project is highly relevant to the current casualty crash problem. In the second stage of the analysis a selection of these accident scenarios were analysed further to define the accident parameters at a more detailed level .This paper describes the analysis approach and results from the first analysis stage.
The SafetyNet project was formulated in part to address the need for safety oriented European road accident data. One of the main tasks included within the project was the development of a methodology for better understanding of accident causation together with the development of an associated database involving data obtained from on-scene or "nearly onscene" accident investigations. Information from these investigations was complemented by data from follow-up interviews with crash participants to determine critical events and contributory factors to the accident occurrence. A method for classification of accident contributing factors, known as DREAM 3.0, was developed and tested in conjunction with the SafetyNet activities. Collection of data and case analysis for some 1 000 individual crashes have recently been completed and inserted into the database and therefore aggregation analyses of the data are now being undertaken. This paper describes the methodology development, an overview of the database and the initial aggregation analyses.
EEVC Working Group 15 (Compatibility Between Passenger Cars) has carried out research for several years thanks to collaborative project funded by the E.C. and also by exchanging results of projects funded by national programmes. The main collaborative activity of the EEVC WG15 for the last four years was a research project partly funded by the European Commission, where the group made the first attempt to investigate compatibility between passenger cars in a comprehensive research program. Accident, crash test, and mathematical modelling data were analysed. The main result was that structural incompatibilities were frequently found and identified as the main source of incompatibility problems but were not easy to quantify. Unfortunately as little vehicle information other than mass is recorded in most accident databases, most analyses have only been able to show the effect of mass or mass ratio. Common ideas to improve compatibility have been reached by this group and from discussion with other research groups. They will be investigated in the next phase, where research work will concentrate on the development of methods to assess compatibility of passenger cars. The main idea is that the prerequisite to improve crash compatibility between cars is to improve structural interaction. The most important issue is that improved compatibility must not compromise a vehicle- self protection. Test methods should lead to vehicles which show good structural interaction in car to car accidents. Test methods to prove good compatibility may be an adaptation of existing regulatory test procedures (offset deformable barrier test or full width test like in the USA) for frontal impact or may be new compatibility tests. Additional criteria, e.g. impact force distribution, and maximum vehicle deceleration or maximum vehicle impact force should result in compatible cars. Attempts will be made to estimate the benefit of a more compatible car fleet for the European Community.
The main focus of the benefit estimation of advanced safety systems with a warning interface by simulation is on the driver. The driver is the only link between the algorithm of the safety system and the vehicle, which makes the setup of a driver model for such simulations very important. This paper describes an approach for the use of a statistical driver model in simulation. It also gives an outlook on further work on this topic. The build-up process of the model suffices with a distribution of reaction times and a distribution of reaction intensities. Both were combined in different scenarios for every driver. Each scenario has then a specific probability to occur. To use the statistical driver model, every accident scene has to be simulated with each driver scenario (combinations of reaction times and intensities). The results of the simulations are then combined regarding the probabilities to occur, which leads to an overall estimated benefit of the specific system. The model works with one or more equipped participants and delivers a range for the benefit of advanced safety systems with warning interfaces.
Millions of kilometers are driven and recorded by car manufacturers and researchers every year to gather information about realistic traffic situations. The focus of these studies is often the recording of critical situations to create test scenarios for the development of new systems before introducing them into the market. This paper shows a novel Analysis and Investigation Method for All Traffic Scenarios (AIMATS) based on real traffic scenes. It also shows how to get detailed information about speeds, trajectories and behavior of all participants without driving thousands of kilometers at the example of conflict situations with animals. Basis of the AIMATS is the identification of the most relevant locations as "Points of Interest" (POI), the recording of the critical situations and their "base lines" at these POI. This paper presents a new method to identify critical scenarios involving both vehicles and animals as well as preliminary results of a study done in Saxony using this new method.
The focus of the technical innovation in the automobile industry is currently changing to sensor based safety systems, which are operating in the pre-crash phase of an accident. To get more information about this pre-crash phase for real accidents a simulation of this phase using the GIDAS database is done. The basics for this simulation are geometrical information about the accident location and the exact accident data out of the GIDAS database. This aggregated information gives the possibility to simulate an exact motion for every accident participant, using MATLAB / SIMULINK, in the pre-crash phase. After the simulation the information about the geometrical positions, the velocities and maneuvers of the drivers to an individual TTC (time to collision) are available. With those results it is possible to develop new useful sensor geometries using pre-crash scatter plots or estimate the efficiency of implemented active safety systems in combination with sensor characteristics. This simulation can be done for every reconstructed accident included in the GIDAS database, so these results can represent a wide spread basis for the further development of active safety systems and sensor geometries and characteristics
Entgegen populären Meinungen, welche älteren Kraftfahrern ein generelles Gefahrenpotenzial für die allgemeine Verkehrssicherheit zuschreiben, weisen die Unfallstatistiken eher auf eine besondere Gefährdung dieser Gruppe von Verkehrsteilnehmern hin, woraus sich Forderungen nach einer zielgruppenspezifischen Verkehrssicherheitsarbeit begründen. Kompetentes und damit sicheres Verhalten kann als Ergebnis der Passung zwischen den individuell verfügbaren Ressourcen und den Anforderungen der Umwelt betrachtet werden. Überschreiten die Umweltanforderungen die Verhaltenspotenziale des Individuums, kann es zu Überforderung kommen. Verdeutlichen lässt sich diese Perspektive durch genaue Betrachtung von Verkehrsunfällen unter Beteiligung älterer Kraftfahrer: So spiegeln die aktuellen Unfallstatistiken aus 2008 wider, dass ein großer Teil der Unfälle von Kraftfahrern im Alter über 65 Jahren auf sogenanntes Fehlverhalten in Knoten, wie z.B. Fehler beim Abbiegen, Ein- und Ausfahren in Kreuzungen und Vorfahrtbeachtung, zurückzuführen sind. Diese im Vergleich zu jüngeren Fahrern häufigere Verwicklung Älterer in Unfälle dieser Art legt nahe, dass es in genau diesen Situationen zu einem Ungleichgewicht zwischen individuell verfügbaren Ressourcen und den Anforderungen der Verkehrsumwelt kommt. Beispielsweise könnten in diesen Situationen Beeinträchtigungen der visuellen Wahrnehmungsfähigkeit, verlangsamte Reaktionszeiten oder auch Einschränkungen der Bewegungsausführung zu einer zu langsamen oder auch falschen Entscheidungsfindung oder Handlungsausführung im Straßenverkehr führen. Dieser Perspektive folgend können Maßnahmen zur Erhöhung der Verkehrssicherheit älterer Kraftfahrer zum einen auf Seiten des Individuums ansetzen und dazu beitragen, die Kompetenzen des älteren Kraftfahrers zu erhöhen, zum anderen Bezug auf den Kontext nehmen, indem durch Anpassungen der Bedingungen der Verkehrsumwelt zur Sicherheit " nicht nur " älterer Kraftfahrer beigetragen wird. Personenzentrierte Ansätze zielen dabei auf die Ausschöpfung der individuellen Potenziale zur Aufrechterhaltung, Verbesserung oder auch Wiederherstellung einer sicheren Verkehrsteilnahme bis ins hohe Lebensalter. Diese Ansätze umfassen Trainings- und Rehabilitationsprogramme der Fahrkompetenz gleichermaßen wie verkehrspädagogische Programme, mediale Informationskampagnen oder auch Beratungsmaßnahmen und Screening-Tests. Eine Schlüsselposition kann in diesem Kontext dem (Haus)-Arzt als Experten hinsichtlich Konstitution und Lebensverhältnissen seines Patienten und Vertrauensperson zukommen. In der Regel passen ältere Kraftfahrer ihr Fahrverhalten ihren individuell verfügbaren Kompetenzen an. Auf diese Weise können altersbegleitende oder auch mit Erkrankungen oder Medikamenteneinnahmen einhergehende Veränderungen der körperlichen oder geistigen Leistungsfähigkeit zumeist erfolgreich kompensiert werden. Personenzentrierten Ansätzen kommt jedoch eine besondere Relevanz für den kleinen Anteil älterer Fahrer zu, welche keine oder nur unzureichende Kompensation aufweisen. Kontextorientierte Ansätze beziehen sich auf Maßnahmen, welche eine möglichst optimale Gestaltung der Bedingungen der Verkehrsumwelt auf die Bedürfnisse und Anforderungen älterer Kraftfahrer herbeiführen sollen. Maßnahmen dieser Art zielen zum Beispiel auf eine Entschleunigung des Straßenverkehrs durch Geschwindigkeitsbegrenzungen oder auch bauliche Maßnahmen. Auch die Potenziale moderner Fahrzeugtechnik werden unter dieser Perspektive zur Erhöhung der Verkehrssicherheit älterer Fahrer nutzbar. So können Fahrerassistenz- oder Fahrerinformationssysteme den älteren Fahrer in komplexen Situationen unterstützen. Dabei ist der Nutzen für die Verkehrssicherheit jedoch stark von der Handhabbarkeit und Bedienqualität der technischen Hilfsmittel abhängig. Technologien, welche die Komplexität der Fahrzeugbedienung erheblich erhöhen oder die Aufmerksamkeit vom Straßenverkehr ablenken, können ggf. auch zu einer weiteren Diskrepanz zwischen Anforderungssituation und verfügbaren Kompetenzen beitragen. Neben diesen eher auf die individuelle Verkehrsteilnahme als Autofahrer bezogenen Maßnahmen sind weitere wichtige kontextorientierte Ansatzpunkte in alternativen Mobilitätsvarianten zum Auto, wie in der Verbesserung der Attraktivität von Angeboten des ÖPNV oder auch den Bedingungen für Fußgänger und Radfahrer, zu finden. In diesem Sinne erscheint ein mehrdimensionaler Ansatz für die Gestaltung von Maßnahmen zur Erhöhung der Verkehrssicherheit älterer Kraftfahrer am erfolgversprechendsten. Interventionsansätze sollten sich gegenseitig ergänzen und möglichst sowohl die Ressourcen auf Seiten des älteren Menschen selbst als auch der Umwelt umfassen.
A set of recommendations for pan-European transparent and independent road accident investigations has been developed by the SafetyNet project. The aim of these recommendations is to pave the way for future EU scale accident investigation activities by setting out the necessary steps for establishing safety oriented road accident investigations in Member States. This can be seen as the start of the process for establishing road accident investigations throughout Europe which operate according to a common methodology. The recommendations propose a European Safety Oriented Road Accident Investigation Programme which sets out the procedures that need to be put in place to investigate a sample of every day road accidents. They address four sets of issues; institutional addressing the characteristics of the programme; operational describing the conditions under which data isrncollected; data storage and protection; and reports, countermeasures and the dissemination of data.rn