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Interdisciplinary accident research and research projects of AARU Audi Accident Research Unit
(2017)
AARU (Audi Accident Research Unit) is an interdisciplinary research project of the University Hospital Regensburg in cooperation with AUDI AG. Specific objective is to comprehend the respective accident scenario and retrieve generally applicable findings as to technical, medical and psychological processes. In order to prevent traffic accidents and to alleviate vehicle accident consequences, postulates of general traffic safety, human-machine interaction, technical design and function of new vehicles and occupant as well as third party protection shall be inferred from these findings. Specifically, each accident with new Audi, Lamborghini and Ducati vehicles involved is analyzed interdisciplinary, discussed in a case meeting and anonymously documented with more than 2,000 parameters. The database is continually used for solving safety relevant issues. Parallel to accident analysis, research projects are performed in the fields medicine, psychology and engineering in order to gain comprehensive insight and identify potential additional areas of activity of accident research.
Die Schätzung der Fahrleistung von Kraftfahrzeugen auf dem deutschen Straßennetz 2014 (Inlandsfahrleistung) basiert auf einer bundesweiten, automatisierten Verkehrszählung an 520 zufällig ausgewählten Straßenabschnitten während jeweils etwa 24 Stunden. In der Verkehrszählung werden alle Tages- und Jahreszeiten abgedeckt. Die Stichprobe der Straßenabschnitte ist nach Straßenklasse und Ortslage (inner-/außerorts) geschichtet, dabei werden alle Straßenklassen in der Erhebung berücksichtigt. Mithilfe der Abschnittslängen werden die empirisch erhobenen Verkehrsstärkewerte in Fahrleistungen transformiert und auf die Grundgesamtheit aller Abschnitte, d. h. das gesamte Straßennetz und das Gesamtjahr 2014 hoch gerechnet. Durch den kombinierten Einsatz von Detektoren und Videotechnik liegen die gezählten Verkehrsstärken nach Fahrzeugart und -nationalität untergliedert vor, sodass Fahrleistungen für 9 Fahrzeugarten ("8+1-Messung") und 38 Nationalitäten geschätzt werden können. Der Totalwert der Inlandsfahrleistung wird für das Jahr 2014 auf 743,82 Mrd. Fahrzeugkilometer (Fzgkm) geschätzt. Rund 81 % der Inlandsfahrleistung (ca. 601 Mrd. Fzgkm) entfallen auf Personenkraftwagen bzw. Pkw mit Anhänger. Die zweithöchste Fahrleistung findet sich bei Lieferwagen mit 51,8 Mrd. km. Im Schwerverkehr dominieren die Sattelzüge mit 26,2 Mrd. km. Aus der Hochrechnung der Daten der Verkehrszählung ergibt sich für 2014 ein Totalwert der Fahrleistung ausländischer Kraftfahrzeuge auf dem deutschen Straßennetz von knapp 42 Mrd. Fahrzeugkilometern. Der Ausländeranteil an der Inlandsfahrleistung 2014 liegt damit bei 5,6 %. Im Jahr 2002 lag die km-Summe der ausländischen Kfz auf dem deutschen Straßennetz noch bei 27,4 Mrd. km. Der aktuelle Wert von 41,8 Mrd. km entspricht somit einem Zuwachs um 53 %. Werden die amtlichen Unfallzahlen aus dem Jahr 2014 auf die entsprechenden Jahrestotale der Fahrleistungen von Kraftfahrzeugen bezogen, so lassen sich dadurch Risikokennziffern berechnen. Zum einen ist dies das Risiko der Unfallbeteiligung von Kraftfahrzeugen und zum anderen das Risiko von Kraftfahrzeugbenutzern, bei einem Unfall verletzt oder getötet zu werden. Beide Risikokennziffern lassen sich weiter nach Fahrzeuggruppe und Unfallschwere bzw. Verletzungsschwere differenzieren. Hierbei zeigt sich, dass Busse und vor allem motorisierte Zweiräder ein besonders hohes Risiko aufweisen. Eine Unterscheidung nach Straßenklasse erlaubt die Schlussfolgerung, dass die Unfallrisiken auf Bundesautobahnen mit Abstand am niedrigsten sind. Ein Vergleich der Unfallrisikokennziffern des Jahres 2014 mit denjenigen aus dem Jahr 2002 zeigt, dass zum Teil deutliche Verringerungen festzustellen sind. So ist die Gefahr einer Beteiligung an einem Unfall mit Personenschaden über alle Kraftfahrzeuge um 26 % zurückgegangen. Sogar noch stärker ist das Risiko gesunken, als Fahrzeugbenutzer in einem Straßenverkehrsunfall verletzt oder gar getötet zu werden (-29 %).
Ziel des Forschungsprojektes war die Erarbeitung eines webbasierten Verfahrens für die Verkehrssicherheitsarbeit, welches dem Anwender bei der Bearbeitung von Unfallhäufungen potenziell geeignete Maßnahmen in Abhängigkeit der örtlichen Randbedingungen vorschlägt, deren Sicherheitswirkung abschätzt sowie die Möglichkeit bietet, die Maßnahmenwirkung in einer retroperspektiven Betrachtung zu evaluieren. Dabei stellt das Verfahren eine Weiterentwicklung und Ergänzung des Merkblatts "Auswertung von Straßenverkehrsunfällen, Teil 2: Maßnahmen gegen Unfallhäufungen" (FGSV 2002) dar. Grundgerüst der Maßnahmensammlung bilden neben dem Merkblatt der FGSV (2002) aktuelle Erkenntnisse verschiedener Forschungsarbeiten (SPAHN 2012, GERLACH et al. 2009, MAIER et al. 2010, u. w.) zu Maßnahmen gegen Unfallhäufungen, die einer Prüfung und Kategorisierung unterzogen wurden. Der Hauptbestandteil des webbasierten Verfahrens umfasst Schritte zur Unfallanalyse, Maßnahmenfindung und Wirksamkeitsprüfung nach dem "Merkblatt zur örtlichen Unfalluntersuchung in Unfallkommissionen " M UKo" (FGSV 2012). Mit der Übermittlung der Unfallinformationen zu Unfallhäufungen aus den EDV-Systemen der Unfalldatenhaltung in das Programm ist eine spezifische Bearbeitung von Unfallhäufungen möglich. Darüber hinaus wird die Möglichkeit von Rangfolgebildungen zur zielgerichteten Priorisierung von Arbeitsprogrammen angeboten. Die Vorschläge geeigneter Maßnahmen zur Bekämpfung einer Unfallhäufung stuetzen sich im Verfahren auf die Analyse typischer Konfliktsituationen, welche aus den Unfalldatensätzen bestimmt werden. Zur Überprüfung der Angemessenheit und Durchsetzbarkeit von Maßnahmen (-paketen) steht dem Anwender eine Abschätzung des Nutzen-Kosten-Verhältnisses auf Basis des fallbezogenen Unfallgeschehens zur Verfügung. Die kontinuierliche Anwendung des Verfahrens erlaubt dem Nutzer die Dokumentation der Arbeitsschritte. Diese beinhaltet über die Umsetzungskontrolle hinaus wiederum eine fallbezogene Wirksamkeitsprüfung (Evaluierung) der realisierten Maßnahmen. Die stetige Aktualisierung der Maßnahmen und ihrer Kenngrößen (u. a. Wirkungsgrad, Kosten) stellt einen wesentlichen Bestandteil des webbasierten Verfahrens dar, um einen zielorientierten Beitrag zur Bekämpfung von Unfallhäufungen zu leisten.
An die Lichtsignalsteuerung richten sich hohe Qualitätsanforderungen, da ihr für einen sicheren und flüssigen Verkehrsablauf im Straßennetz eine wichtige Rolle zukommt. Um eine hohe Qualität der Lichtsignalsteuerung auch im wachsenden Altbestand von Anlagen zu gewährleisten, liegt es nahe, eine regelmäßige, systematische Überprüfung vorzunehmen, um Mängel frühzeitig erkennen und beheben zu können. Ziel des Forschungsvorhabens war es, eine aufwandsoptimierte Verfahrensweise und die notwendigen Hilfsmittel für ein systematisches Qualitätsmanagement für Lichtsignalanlagen (LSA) zu entwickeln. Hierzu wurde zunächst die Lichtsignalsteuerung als Gegenstand des Qualitätsmanagements eingehend erörtert. Auf dieser Grundlage wurden Verfahrensweisen und EDV-gestützte Hilfsmittel entwickelt, mit denen die Güte des Verkehrsablaufs und die Verkehrssicherheit im Straßennetz und an einzelnen Knotenpunkten mit geringem Aufwand überprüft werden kann. Zur Qualitätsbewertung werden Unfalldaten, Prozessdaten und Betriebsdaten analysiert sowie der Verkehrsablauf vor Ort beobachtet. Der Aufbau einer Wissensbasis diente dazu, den Kenntnisstand zu Möglichkeiten der Qualitätsverbesserung an Lichtsignalanlagen für die Anwendung verfügbar zu machen. Hierin sind typische Qualitätsmaengel an Lichtsignalanlagen mit Möglichkeiten der Abhilfe verknüpft. Ferner sind Prüfbedingungen der Eignung und Umsetzbarkeit der Maßnahmen hinterlegt. Mit Hilfe dieses Expertensystems können Maßnahmen identifiziert und bewertet werden. Die Anwendung des Verfahrens an verschiedenen Knotenpunkten zeigt, dass der systematische und modulare Aufbau gut geeignet ist, aussagekräftige Informationen zur Qualität der Lichtsignalsteuerung zu erlangen und geeignete Maßnahmen zur Qualitätsverbesserung zu identifizieren. Das Verfahren kann mit geringem Aufwand durchgeführt werden und kann daher einen Beitrag für die verbreitete Anwendung des Qualitätsmanagements für Lichtsignalanlagen leisten.
Die europäischen Länder, die ein Programm zur Erhöhung der Verkehrssicherheit eingeführt haben, weisen in der Regel einen gesteigerten Rückgang an Getöteten und Verletzten auf. Im Vordergrund dieser Programme stehen neben der Reduktion der Unfälle die Umsetzbarkeit, die Finanzierbarkeit, die politische und soziale Akzeptanz sowie die Kosteneffizienz. Im Anschluss an die Erörterung der Merkmale einer erfolgreichen Verkehrssicherheitsarbeit werden zunächst beispielhaft die Planziele der Programme in Finnland (im Jahr 2010 weniger als 250 Getötete) und in Österreich (Reduktion der Getöteten um 50 % und eine Verminderung der Unfälle mit Personenschaden um 20 % bis 2010) vorgestellt. Die bisherige Entwicklung der Unfallzahlen wird auf je einer Grafik veranschaulicht. Anschließend werden das Hauptziel der Europäischen Kommission, die Halbierung der Zahl der Verkehrstoten 2001 bis 2010, sowie die Entwicklung der Zahlen von 1990 bis 2005 beziehungsweise 2010 (Zielvorgabe) dargestellt. Eine weitere vergleichende Grafik gibt die Zahl der Verkehrstoten in den Jahren 1995 und 2004 in allen Ländern der Europäischen Union (EU) wieder. Schließlich werden noch verschiedene Bemühungen der World Health Organisation (WHO) erwähnt.
Das Fahrverhalten ändert sich mit zunehmendem Alter. Damit ändern sich auch die Risiken. Neben den jungen Fahranfängern im Alter von 18 bis etwa 25 Jahren stellen Fahrer über 75 Jahre eine besondere Problemgruppe dar. Mit zunehmender Zahl alter Fahrer (demographische Entwicklung plus Zunahme der Fahrerlaubnisinhaber in dieser Altersgruppe) besteht hier in naher Zukunft akuter Handlungsbedarf. Ansatzpunkte gibt es im gesamten Mensch-Maschine-Umwelt-System. Fahrzeuge müssen vermehrt im Hinblick auf alte Fahrer konstruiert und optimiert werden. Die Infrastruktur muss den Bedürfnissen einer eindeutigen Verkehrsführung angepasst werden. Aber nur, wenn der Mensch selbst geeignet ist, als Fahrer am Straßenverkehr teilzunehmen, ist ein Gewinn bei der Verkehrssicherheit zu erwarten. Dies muss gewährleistet werden. Wichtig ist, dass die Problematik der alten Fahrer als solche erkannt wird und schnell eine tragfähige Lösung für die Zukunft gefunden wird.
Die Klinik für Frührehabilitation und Geriatrie, Westküstenklinikum Heide ist Bestandteil eines Kooperationsnetzwerks und wirkt am Erhalt der Mobilität und Autonomie älterer Verkehrsteilnehmer im Landkreis Dithmarschen mit. Die Zusammenarbeit mit Seniorenbeiräten, Landesverkehrswacht, Fachdiensten, Polizei-Dienststellen, Ärzten und Psychologen sowie Fahrlehrern ermöglicht eine breite Datenerfassung zum Thema ältere Kraftfahrer, insbesondere zu ihrem Unfallgeschehen.
Der Beitrag setzt sich mit folgenden Fragestellungen auseinander: 1. Stellen ältere Kraftfahrer ein Sicherheitsrisiko für den Straßenverkehr dar? 2. Wie wurden diese Frage und die "Fahreignung und Fahrtüchtigkeit älterer Kraftfahrer" in den vergangenen 50 Jahren wissenschaftlich bewertet - insbesondere bei Kongressen der Deutschen Gesellschaft für Verkehrsmedizin und den Deutschen Verkehrsgerichtstagen? 3. Wie haben in den vergangenen 50 Jahren Juristen, Behörden und Gesetzgeber die "Fahreignung älterer Kraftfahrer" gesehen und umgesetzt? 4. Werden morbiditäts- und altersbedingte Beeinträchtigungen der Leistungsfähigkeit rechtzeitig und richtig durch ältere Kraftfahrer erkannt? 5. Wie gehen ältere Kraftfahrer mit erkannten Leistungsmängeln um? 6. Benötigen ältere Verkehrsteilnehmer Aufklärung, Beratung, Fortbildung und Vorsorge- oder Kontrolluntersuchungen? Insgesamt kann festgestellt werden, dass allein aus normalem Altersabbau und hohem Alter kein Rückschluss auf die Fahruntauglichkeit gezogen werden kann. Das wichtigste gesellschaftliche Ziel für die Teilnahme älterer Menschen am Straßenverkehr ist - angesichts der demographischen Entwicklung - die Einsichtsfähigkeit in das altersbedingt verminderte Leistungsvermögen und den Veränderungswillen zu Kompensationsmechanismen bei älteren Verkehrsteilnehmern zu schärfen. Der behandelnde Arzt, Angehörige und sonstige Bezugspersonen sollten alles tun, um den bejahrten Kraftfahrer zu motivieren, sich seiner Selbstverantwortung bewusst zu werden und demgemäß zu handeln.
Although the annual traffic accident statistics published by the national police is available in public, the detailed traffic accident data has not been released in Korea. Recently the Ministry of Land, Infrastructure and Transport recognized the importance of in-depth accident data to enhance road traffic safety and initiated a research project to establish a collection of the detailed accident data. The main objective of the project is a feasibility study to establish KIDAS (Korea In-Depth Accident Study). Within this project, three university hospitals which are located in mid-size cities have been selected to collect accident data. Annually, more than 500 cases of accidents have been collected from the in-patient's interviews and diagnosis. Unlike GIDAS (German In-Depth Accident Study), currently on-site investigation can"t be performed by the Korean police. The only available data is patient medical records, patient's description of accident circumstances and the damaged vehicle. Occasionally the police provide the accident investigation reports containing very brief information on accident causation and vehicle safety. In a first step, the concept of KIDAS is to adopt the format of iGLAD (Initiative for the Global Harmonization of Accident Data) for harmonization. Since the currently collected accident information is extremely limited compared with GIDAS, the other sources of data and calculations such as KNCAP vehicle data, pc-crash simulations, vehicle registration information, insurance company data are utilized to complete the iGLAD template. Results from KIDAS_iGLAD and the cases of assessment of active safety devices such as AEBS, ESC, and LDWS will be evaluated.
Road accidents are typically analyzed to address influences of human, vehicle, and environmental (primarily infrastructure) factors. A new methodology, based on a "Venn diagram" analysis, gives a broader perspective on the probable factors, and combinations of factors, contributing both to the occurrence of a crash and to sustaining injuries in that crash. The methodology was applied to 214 accidents on the Mumbai-Pune expressway. Factors contributing to accidents and injuries were addressed. The major human factors influencing accidents on this roadway were speeding (30%) and falling asleep (29%), while injuries were primarily due to lack of seat belt use (46%). The leading infrastructure factor for injuries was impact with a roadside manmade structure (28%), and the main vehicle factor for injuries was passenger compartment intrusion (73%). This methodology can help identify effective vehicle and infrastructure-related solutions for preventing accidents and mitigating injuries in India.
Injury severity of e.g. pedestrians or bikers after crashes with cars that are reversing is almost unknown. However, crash victims of these injuries can frequently be seen in emergency departments and account for a large amount of patients every year. The objective of this study is to analyze injury severity of patients that were crashed into by reversing cars. The Hannover Medical School local accident research unit prospectively documented 43,000 road traffic accidents including 234 crashes involving reversing cars. Injury severity including the abbreviated injury scale (AIS) and the maximum abbreviated injury scale (MAIS) was analyzed as well as the location of the accident. As a result 234 accidents were included into this study. Pedestrians were injured in 141 crashes followed by 70 accidents involving bikers. The mean age of all crash victims was 57 -± 23 years. Most injuries took place on straight stretches (n = 81) as well as parking areas (n = 59), entries (n = 36) or crossroads (n = 24). The AIS of the lower extremities was highest followed by the upper extremities. The AIS of the neck was lowest. The mean MAIS was 1.3 -± 0.6. The paper concludes that the lower extremities show the highest risk to become injured during accidents with reversing cars. However, the risk of severe injuries is likely low.
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.
The study aimed at estimating the impact of pedelecs (with an assumed higher speed than bicycles) on the traffic accident severity in Germany for different penetration rates. The analysis shows that in many real situations (68%) an electrical support of bicycles has no influence on the sequence of accident events. Taking into account a number of unreported "single bicycle accidents", the adoption of similar traffic behavior and similar age distribution, the authors determined a shift of 400 former slightly to seriously injured cyclists in Germany per year. Overall this would be an increase of approximately 2.3% in case of 10% of pedelec penetration with the pessimistic assumption of 10 km/h speed increase although first natural driving studies predict a much lower average speed increase of pedelecs. The hypothesis verbalized in the initial question whether a higher distribution of pedelecs will result in more severe accidents in Germany is not verified. The study shows that electrical support didn"t result in higher collision speed in general. In many accident situations, the speed of pedelecs has only a minor influence on the accident severity. Further research focusing on a possible change of driver behavior especially in new target groups (elderly people) will be needed.
Analysis of pedestrian leg contacts and distribution of contact points across the vehicle front
(2015)
Determining the risk to pedestrians that are impacted by areas of the front bumper not currently regulated in type-approval testing requires an understanding of the target population and the injury risk posed by the edges of the bumper. National statistics show that approximately 10% of all accident casualties are pedestrians, with 20% to 30% of these pedestrian casualties being killed or seriously injured. However, the contact position across the front of the bumper is not recorded in national statistics and so in-depth accident databases (OTS, UK and GIDAS, Germany) were used to examine injury risk in greater detail. The results showed that some injury types and severities of injuries appear to peak around the bumper edges. Although there are sometimes inconsistencies in the data, generally there is no evidence to suggest that the edges of the bumper are less likely to be contacted or cause injury.
This study aimed at prediction of long bone fractures and assessment of lower extremity injury mechanisms in real world passenger car to pedestrian collision. For this purpose, two pedestrian accident cases with detail recorded lower limb injuries were reconstructed via combining MBS (Multi-body system) and FE (Finite element) methods. The code of PC Crash was used to determine the boundary conditions before collision, and then MBS models were used to reproduce the pedestrian kinematics and injuries during crash. Furthermore, a validated lower limb FE model was chosen to conduct reconstruction of injuries and prediction of long bone fracture via physical parameters of von Mises stress and bending moment. The injury outcomes from simulations were compared with hospital recorded injury data and the same long bone fracture patterns and positions can be observed. Moreover, the calculated long bone fracture tolerance corresponded to the outcome from cadaver tests. The result shows that FE model is capable to reproduce the dynamic injury process and is an effective tool to predict the risk of long bone fractures.
Cycling supports the independence and health of the aging population. However, elderly cyclists have an increased injury risk. The majority of injured cyclists is victim of a single-sided accident, an accident in which there is no other party involved. The aim of the project "Safe and Aware on the bicycle" is to develop guidelines for an advisory system that is useful in preventing single-sided accidents. This system is able to support the elderly cyclist; enabling the cyclist to timely adapt his cycling behaviour and improve cycling safety and comfort. For the development of such advisory system the causes of singles accidents and the wishes of the elderly cyclist must be known. First step to obtain this insight was a literature survey and an GIDAS research. Unfortunately accidentology research with GIDAS did not give the full understanding of the pre-crash situations and (especially the behaviour related) factors leading to the accident. The second step was consultation of elderly cyclist through a questionnaire (n=800), in-depth interviews (n=12) and focus group sessions (n=15). This offered complementary information and a much better understanding of the behavioural aspects. Results concern the behaviour in traffic and identify specific physical (i.e. problems looking backwards over the shoulder) and mental issues. Furthermore, the needs and wishes for support in specific cycling situations were identified. In conclusion; The GIDAS results together with the information obtained contacting the elderly cyclists enabled setting up requirements for an advisory system, which is useful in preventing single-sided accidents.
This study aimed at comparing head Wrap Around Distance (WAD) of Vulnerable Road User (VRU) obtained from the German in-depth Accident Database (GIDAS), the China in-depth Accident Database (CIDAS) and the Japanese in-depth Accident Database (ITARDA micro). Cumulative distribution of WAD of pedestrian and cyclist were obtained for each database (AIS2+) showing that WAD of cyclists were larger than the ones of pedestrians. Comparing three regions, the 50%tile WAD of GIDAS was larger than that of both Asian accident databases. Using linear regression that might predict WAD of pedestrians and cyclists from Impact speed and VRU height, WADs were calculated to be 206cm/219cm (Pedestrian/Cyclist) for GIDAS, 170cm/192cm for CIDAS and 211cm/235cm for ITARDA. In addition, this study may be helpful for reconsideration of WAD measurement alignment between accident reconstruction and test procedures.
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.
The declining trend since 1991 in the number of killed people was broken in 2011 when overall 4 009 people died in traffic accidents in Germany. The question arises if there is a stagnating trend of fatalities in Germany in future? By breaking down the accidents with casualties towards a monthly view one can see a decreasing trend of fatalities in the warmer months especially since 2009. When comparing against winter months higher deviations are observed. In December 2011 an increase of 191 traffic deaths were registered (181 in 2010 compared to 372 in 2011). Further analyses of different accident influences were evaluated and their possibility of drastic change from one year to the other was determined. As seen weather- and environmental conditions are one of the major contributing factors and are one of the causes for the increased number of fatalities. To support the underlying assumption a model had been created to calculate the number of traffic deaths on a daily basis approach. As an input, road conditions projected through weather parameters and also different driving behaviors on weekdays or holidays were used. As a result, estimates of daily fatality with up to 75% precision can be achieved out of the 2009, 2010 and 2011 data. Further on it shows that weather and street conditions have a high influence on the overall resulting number of traffic accidents with casualties, and especially to the number of fatalities. Hence it is estimated that approximately 3 300 people were killed in traffic accidents in Germany in 2013 which would be again a reduction of another 13% compared to 2012. Therefore an answer to the question will be that the decreasing trend in traffic fatalities in Germany somehow is not broken when environmental conditions are included in national statistics. Their effects will become more visible in future accident statistics and it is estimated variances of 5% to 8% of the annual number of traffic fatalities in Germany will be seen.
The changed focus in vehicle safety technology from secondary to primary safety systems need to evolve new methods to investigate accidents, high critical, critical and normal driving situations. Current Naturalistic Driving Studies mostly use vehicles that are highly equipped with additional measuring devices, video cameras, recording technology, and sensors. These equipped fleets are very expensive regarding the setup and administration of the study. Due to the great rarity of crashes it is additionally necessary to have a high distribution and a homogeneous distribution of subject groups. At the end all these facts are leading to a very expensive study with a manageable number of data. Smartphones are becoming more and more popular not only for younger people. Contrary to traditional mobile phones they are mostly equipped with sensors for acceleration and yaw rates, GPS modules as well as cameras in high definition resolution. Additionally they have high-performance processors that enable the execution of CPU-intensive tools directly on the phone. The wide distribution of these smartphones enables researchers to get high numbers of users for such studies. The paper shows and demonstrates a software app for smartphones that is able to record different driving situations up to crashes. Therefore all relevant parameter from the sensors, camera and GPS device are saved for a given duration if the event was triggered. The complete configuration is independently adjustable to the relevant driver and all events were sent automatically to the research institute for a further process. Direct after the event, interviews with the driver can be done and important data regarding the event itself are documented. The presentation shows the methodology and gives a demonstration of the working progress as well as first results and examples of the current study. In the discussion the advantages of this method will be discussed and compared with the disadvantages. The paper shows an alternative method to investigate real accident and incident data. This method is thereby highly cost efficient and comparable with existing methods for benefit estimation.
The evaluation of the expected benefit of active safety systems or even ideas of future systems is challenging because this has to be done prospectively. Beside acceptance, the predicted real-world benefit of active safety systems is one of the most important and interesting measures. Therefore, appropriate methods should be used that meet the requirements concerning representativeness, robustness and accuracy. The paper presents the development of a methodology for the assessment of current and future vehicle safety systems. The variety of systems requires several tools and methods and thus, a common tool box was created. This toolbox consists of different levels, regarding different aspects like data sources, scenarios, representativeness, measures like pre-crash-simulations, automated crash computation, single-case-analyses or driving simulator studies. Finally, the benefit of the system(s) is calculated, e.g. by using injury risk functions; giving the number of avoided/mitigated accidents, the reduction of injured or killed persons or the decrease of economic costs.
Within the COST Action TU1101 the working group WG 1 is dealing with acceptance criteria and problems in helmet use while bicycling concerning conspicuity, thermal stress, ventilation deficits and other potential confounding. To analyze the helmet usage practice of bicyclists in Europe a questionnaire was developed in the scope of working group 1 to collect relevant information by means of a field study. The questionnaire consists of some 66 questions covering the fields of personal data of the cyclist, riding und helmet usage habits, information concerning the helmet model and the sensation of the helmet, as well as information on previous bicycle accidents. A second complementary study is conducted to analyze if the use of a bicycle helmet influences the seating geometry and the posture of cyclists when riding a bicycle and if the if the helmet vertically limits the vision. For this purpose cyclists with and without helmets were photographed in real world situations and relevant geometrical values such as the decline of the torso, the head posture of the upper vertical vision limit due to the helmet were established from the photos. The interim results of the field studies which were conducted in Germany by the Hannover Medical School are presented in this study. Some 227 questionnaires were filled out, of which 67 participants had used a helmet and 42 of the 227 participants have had a bicycle accident before. For the analysis of the riding position and posture of the cyclist over 40 pictures of riders with a helmet and over 240 pictures of riders without a helmet were measured concerning the seating geometry to describe the influence of using a bicycle helmet. Some results in summary: From the riders interviewed with the questionnaire only 11% of the city bike riders and 12% of the mountain bike riders always used the helmet, while 38% of the racing bike riders and 88% of the e-bike-riders always used the helmet. The helmet use seems not to change the sensation of safety of cycling compared to the use of a car. The arguments for not wearing a helmet are mostly stated to be the short distance of a trip, high temperatures or carelessness and waste of time. The reasons for using a helmet are stated to be the feeling of safety and being used to using a helmet. Being a role model for others was also stated to be a reason for helmet use. Concerning the sensation of the helmet 9% of the riders reported problems with the field of vision when using a helmet, 57% saw the problem of sweating too much, and 10% reported headaches or other unpleasant symptoms like pressure on the forehead when using the helmet. The analysis of the seating posture from the pictures taken of cyclists revealed that older cyclists generally have a riding position where the handle bar is higher than the seat (0-° to 10-° incline from seat to handlebar), while younger riders had a higher variance (between -10-° decline and 20-° incline). Further, elderly riders and riders with helmets seem to have a more upright position of the upper body when cycling. The vertical vision limit due to the helmet is determined by the front rim of the helmet (mostly the sun shade). Typical values here range from 0-° (horizontal line from the eye to the sun shade) to 75-° upwards, in which elderly riders tend to have a slightly higher vertical vision limit possibly due to the helmet being worn more towards the face.
The paper gives an overview of the recent (mostly 2012) figures of killed bus/coach occupants (drivers and passengers) in 27 Member States of the European Union as reported by CARE. The Evolution of the figures of bus/coach occupants killed in road accidents urban, rural without motorway and on motorways from 1991 to 2010 in 15 Member States of the EU supplements this information. More detailed are the figures reported for Germany by the Federal Statistics. The paper displays long-term evaluations (1957 to 2012) for killed, seriously and slightly injured occupants in all kinds of buses/coaches. Midterm evaluations (1995 to 2012) of the figures of fatalities and casualties are displayed for different busses according to their identification of road using as coaches, urban buses, school buses, trolley buses and "other buses". To be able to compare the evolutions of the safety of vehicle occupants it is customary to use different risk indicators. Calculations and illustrations for three often used indicators with their development over time are given: fatalities, seriously injured and slightly injured per 100,000 vehicles registered, per 1 billion (109) vehicle-kilometres travelled and per 1 billion (109) person-kilometres. These indicators are shown for occupants of cars, goods vehicles and buses/coaches. For the period from 1957 until 2012 it is obvious, that for all three vehicle categories analysed there was a clear long-term trend towards more occupant safety in terms of casualties per vehicles registered and per vehicle mileage. This was most significant for car occupants but it can be seen for bus/coach occupants and goodsvehicle occupants as well. Figures of killed occupants and of casualties related to person-kilometres are calculated and displayed for the shorter period 1995 to 2012. Here it becomes obvious that the bus/coach is still the safest mode of transport for the occupants of road vehicles. Graphs for the casualty risk indices still show significantly higher risks for car occupants despite the corresponding curve moved sustainable downwards. It is remarkable, that the risks of being killed or injured for the occupants of urban buses is growing whereas the corresponding risk for the occupants of coaches in line traffic tends downwards. The article ends with a short comparison and discussion of the risk indicators which are actually published for the occupants (driver and passengers) of cars and the passengers of buses/coaches, railroads, trams and airplanes. The interpretation of such information depends on the perception and it seems that for a complete view not only one indicator should be used and the evolutions of the indicator values during longer periods (as displayed with examples in the paper) should also be taken into account.
Introduction: The method of causation analysis applied under the German accident survey GIDAS, which is based on Accident Causation Analysis System (ACAS) focuses on an on-scene data collection of predominantly directly event-related causation factors which were crucial in the accident emergence as situational resulting events and influences. The paradigm underlying this method refers to the findings of the psychological traffic accident research that most causally relevant features of the system components human, infrastructure and vehicle technology are found directly in the situation shortly before the accident. This justifies the survey method which is conducted directly at the accident (on-scene), shortly after the accident occurrence (in-time) with the detection of human-related causes (in-depth). Human aspects of the situation analysis that interact and influence the risk situations shortly before the collision are reported as errors, lapses, mistakes and failures in ACAS in specific categories and subcategories. Thus methodically ACAS is designed primarily for the collection of accident features on the level of operational action, which certainly leads to valid findings and behavioral causes of accidents. The enhancement by means of Moderating Conditions concerns the pre-crash phase in different levels: strategical, tactical and operational.
Accident simulation and reconstruction for enhancing pedestrian safety: issues and challenges
(2015)
The enhancement of pedestrian safety represents a major challenge in traffic accidents. This study allows a better understanding of the issues in pedestrian protection. It highlights the potential of in-depth studies in identifying relevant crash parameters interfering in the pedestrian safety. A computational simulation tool was developed to reconstruct pedestrian real-world crashes. A sample of 100 in-depth accident cases was reconstructed from two sources: 40 crashes provided by IFSTTAR-LMA and 60 crashes from CASR. To exemplify the methodology, two accident cases from each database were illustrated. A description of the sample of crashes was presented including the travel and impact speed of the vehicle, the driver reaction, the pedestrian walking speed, the scene configuration with the eventual obstacles, etc. This detailed description is pointing to the major factors affecting the limits of pedestrian safety systems.