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In September 2004 the first international symposium called ESAR (Expert Symposium on Accident Research) was carried out at the University of Hannover (Germany). The idea for such international conference was to bring together experts from the fields of accident investigation teams worldwide to present their results for a common audience of people from government, industry and other universities. The first conference was a really sufficient one and followed by the second symposium also at the Hannover Medical School two years later in 2006. This two year rhythm was now continued with the third conference in Hannover again in 2008. It is planned to carry out ESAR every two years also in the future. ESAR is a scientific colloquium and can be seen as a platform for exchange of information on accident research issues based on methodologies of investigation, injury mechanisms and injury assessment, accident causation and other issues of statistical accident data analysis. Representatives from authorities as well as from medical and technical institutions come together to discuss new research issues and exchange experiences on accident prevention and the complex field of accident reconstruction. Special focus was given to the target the European Union set for itself in 2000 which stipulates that within 10 years the number of person killed in road traffic accidents must be cut in half. To reach this goal, optimized measures, comprehensive research and analysis are necessary. A key hurdle comes from the European Union extension to 27 member states, each featuring different levels of traffic safety standards and different accident scenarios. Existing results from long term research projects in Europe, the USA, Australia and Japan including analyses of infrastructure, population, vehicle fleet and driver behaviour offer an excellent basis for understanding and improving countermeasures and research support needs in underdeveloped countries. ESAR's goal is to bring together researchers from all parts of the world, who will report on their methods and recommendations to improve traffic safety based on "In-Depth-Investigations" of real world accidents. These In-depth-investigations of accidents require thorough documentation and an accident data analysis on multidisciplinary levels which must be carried out immediately after it occurs. ESAR presents scientists the opportunity to present their studies on a common basis of research level.
Im Jahresbericht 2007/2008 wird das 25-jährige Standortjubiläum der Bundesanstalt für Straßenwesen in Bergisch Gladbach-Bensberg zum Anlass genommen, auf die Arbeitsergebnisse der vergangenen Jahre zurückzublicken und den Blick in die Zukunft zu richten. Ausgewählte Beiträge aus allen Fachdisziplinen der BASt zeigen, welche Themen von den Mitarbeiterinnen und Mitarbeitern der BASt in den letzten Jahren bearbeitet wurden, wo die Schwerpunkte heute liegen und wie die Aufgaben der Zukunft aussehen.rnAußerdem wird ein kurzer Rückblick auf den Bau der Dienstgebäude in Bensberg und die Entwicklung der BASt in den letzten 25 Jahre gegeben sowie über den Tag der offenen Tür berichtet, an dem das Standortjubiläum in Bensberg zusammen mit etwa 4.000 Gästen gefeiert wurde.rnDie letzten Jahre waren altersbedingt geprägt von vielen personellen Wechseln " auch in der Leitungsebene. Der Generationswechsel ist damit in der BASt nahezu abgeschlossen. Das Kapitel "Mitarbeiterinnen und Mitarbeiter" informiert über die personellen Entwicklungen und Auszeichnungen der Beschäftigten sowie über den Wechsel des Präsidenten im Jahr 2008.rnAbgerundet wird der Jahresbericht mit den Aktivitäten der Öffentlichkeitsarbeit, der Internationalen Zusammenarbeit, einer Zusammenstellung der Publikationen der Jahre 2007 und 2008 sowie Datenbanken und -sammlungen. rn
According to the German road traffic regulations children up to the age of 12 or a height below 150 cm have to use approved and appropriate child restraint systems (CRS). CRS must be approved according to UN-ECE Regulation No. 44. The regulation classifies CRS in 5 weight categories. The upper weight group is approved for children from 22 to 36 kg. However, studies show that already today many children weigh more than 36 kg although they have not reached a height of 150 cm. Therefore, no ECE R44 approved CRS is available for these overweight children. In conclusion, today's sizes and weights of children are no longer represented by the current version of the ECE R44. The heaviest used dummy (P10) weighs just 32.6 kg and has a height of 137.9 cm. Statistical data of German children show that already 5% of the children at a height of 137.9 cm have a weight above 45.3 kg. Regarding children at a height of 145 cm, the 95th percentile limit is at a weight of 53.3 kg. Based on these data 4 dummies with different heights and weights were defined and produced. Two of them are overweight. Up to now, there is no experience how current child restraint systems perform in a car crash if they are used by children with a weight above 36 kg and a height smaller than 150 cm. In the future, different child restraint systems will be tested with respect to the ECE R44 regulation using these overweight dummies.
Studien zeigen, dass vom Fahren mit Licht am Tag ein Verkehrssicherheitsgewinn erwartet wird. Daher wird in Deutschland seit Oktober 2005 empfohlen, dass alle mehrspurigen Kraftfahrzeuge am Tag mit eingeschaltetem Abblendlicht oder speziellen Tagfahrleuchten (nach ECE-R87) fahren sollen. Tagfahrleuchten für mehrspurige Kraftfahrzeuge sind speziell auf die Erkennbarkeit des Kraftfahrzeuges ausgelegt und haben eine andere Abstrahlcharakteristik als Abblendlicht. Bei einer vermehrten Verbreitung von Tagfahrleuchten bei mehrspurigen Kraftfahrzeugen ist nicht ausgeschlossen, dass Motorräder im Vergleich zur heutigen Situation schlechter erkennbar sein werden, da Motorräder derzeit nicht mit Tagfahrleuchten ausgerüstet werden dürfen. Aus diesem Grund wurde in der vorliegenden Studie untersucht, inwieweit sich die Erkennbarkeit von Motorrädern gegenüber der derzeitigen Situation steigern lässt. Gleichzeitig sollte geklärt werden, ob Motorräder mit dem heutigen Signalbild am Tag (Abblendlicht) zukünftig schlechter erkennbar sein könnten. Folgende unterschiedliche Leuchtenkonfigurationen, die die Motorräder mit einem gesonderten oder angepassten Signalbild besser sichtbar und erkennbar machen sollen, wurden dafür an zwei verschiedenen Motorrädern montiert: Abblendlicht, Abblendlicht mit dauerhaft leuchtenden vorderen Fahrtrichtungsanzeigern, Tagfahrleuchten in Weiß, selective Yellow und Amber sowie weiße Tagfahrleuchten als Paar beziehungsweise mit größerer Lichtstärke. Im statischen Versuch wurden diese dann durch Probanden in verschiedenen realitätsnahen Verkehrssituationen vergleichend bewertet. Abschließend wurden Vorschläge für ein optimiertes vorderes Signalbild von Motorrädern und damit verbundene notwendige Vorschriftenänderungen erarbeitet. Die wichtigsten Ergebnisse für die Verbesserung des vorderen Signalbildes am Motorrad sind: • Eine Tagfahrleuchte nach ECE-R87 ist besser erkennbar als Abblendlicht. • Zwei Tagfahrleuchten sind besser erkennbar als eine Tagfahrleuchte. • Lichtstärkere Tagfahrleuchten sind auf größere Entfernung besser erkennbar als lichtschwächere Tagfahrleuchten, während Erkennbarkeitsunterschiede durch verschiedene Farben beziehungsweise Farbbereiche mit zunehmender Beobachtungsentfernung abnehmen. • Mehrspurige Fahrzeuge und ihre Beleuchtung hatten keinen Einfluss auf die Erkennbarkeitsbewertung der Motorräder. Als Konsequenz der Untersuchungsergebnisse zur Erkennbarkeit von Motorrädern sollte der Anbau von einer oder zwei Tagfahrleuchten nach ECER87 an Motorrädern erlaubt werden, um tagsüber mit eingeschalteten Tagfahrleuchten anstelle des Abblendlichts fahren zu können. Dadurch ist eine Verbesserung der Erkennbarkeit von Motorrädern am Tag möglich und zusätzlich kann der Energieverbrauch durch die Beleuchtung gemindert werden.
The head impact of pedestrians in the windscreen area shows a high relevance in real-world accidents. Nevertheless, there are neither biomechanical limits nor elaborated testing procedures available. Furthermore, the development of deployable protection systems like pop-up bonnets or external airbags has made faster progress than the corresponding testing methods. New requirements which are currently not considered are taken into account within a research project of BASt and the EC funded APROSYS (Advanced PROtection SYStems) integrated project relating to passive pedestrian protection. Testing procedures for head impact in the windscreen area should address these new boundary conditions. The presented modular procedure combines the advantages of virtual testing, including full-scale multi-body and finite element simulations, as well as hardware testing containing impactor tests based on the existing procedures of EEVC WG 17. To meet the efforts of harmonization in legislation, it refers to the Global Technical Regulation of UNECE (GTR No. 9). The basis for this combined hardware and virtual testing procedure is a robust categorization covering all passenger cars and light commercial vehicles and defining the testing zone including the related kinematics. The virtual testing part supports also the choice of the impact points for the hardware test and determines head impact timing for testing deployable systems. The assessment of the neck rotation angle and sharp edge contact in the rear gap of pop-up bonnets is included. For the demonstration of this procedure, a hardware sedan shaped vehicle was modified by integrating an airbag system. In addition, tests with the Honda Polar-II Dummy were performed for an evaluation of the new testing procedure. Comparing these results, it was concluded that a combination of simulation and updated subsystem tests forms an important step towards enhanced future pedestrian safety systems considering the windscreen area and the deployable systems.
It has been pointed that most of the accidents on the roads are caused by driver faults, inattention and low performance. Therefore, future active safety systems are required to be aware of the driver status to be able to have preventative features. This probe study gives a system structure depending on multi-channel signal processing for three modules: Driver Identification, Route Recognition and Distraction Detection. The novelty lies in personalizing the route recognition and distraction detection systems according to particular driver with the help of driver identification system. The driver ID system also uses multiple modalities to verify the identity of the driver; therefore it can be applied to future smart cars working as car-keys. All the modules are tested using a separate data batch from the training sets using eight drivers" multi-channel driving signals, video and audio. The system was able to identify the driver with 100% accuracy using speech signals of length 30 sec or more and a frontal face image. After identifying the driver, the maneuver/ route recognition was achieved with 100% accuracy and the distraction detection had 72% accuracy in worst case. In overall, system is able to identify the driver, recognize the maneuver being performed at a particular time and able to detect driver distraction with reasonable accuracy.
Impact severity is a fundamental measure for all in-depth crash investigation projects. One methodology used in the UK is based on the US Calspan software package CRASH3. The UK- in-depth crash investigation studies routinely use AiDamage3 a software package which is based on an updated version of the original CRASH3 algorithm, including enhancements to the vehicle stiffness coefficients. Real world accident-damaged vehicles are measured and their crush is correlated with a library of stiffness coefficients. These measurements are then used, along with other parameters, to calculate the crash energy and equivalent changes of velocity of the vehicles (delta-v), which is a measure of the impact severity. UK in-depth accident studies routinely validate the crash severity methodologies applied as the vehicle fleet changes. This is achieved by analysing crash test data and using the appropriate residual crush damage and other inputs to AiDamage3 and checking the program- outputs with the known crash severity parameters. This procedure checks, at least in part, the default stiffness values in the data libraries and the reconstruction methods used.
In the EC FP6 Integrated Project Advanced Protection Systems, APROSYS, the first WorldSID small female prototype was developed and evaluated by BASt, FTSS, INRETS, TRL and UPM-INSIA during 2006 and 2007. Results were presented at the ESV 2007 conference (Been et al., 2007). With the prototype dummy scoring a biofidelity rating higher than 6.7 out of 10 according to ISO/TR9790, the results were very promising. Also opportunities for further development were identified by the evaluation group. A revised prototype, Revision1, was subsequently developed in the 2007-2008 period to address comments from the evaluation group. The Revision1 dummy includes changes in the half arms and the suit (anthropometry and arm biomechanics), the thorax and abdomen ribs and sternum (rib durability), the abdomen/lumbar area and the lower legs (mass distribution). Also a two-dimensional chest deflection measurement system was developed to measure deflection in both lateral and anterior-posterior direction to improve oblique thorax loading sensitivity. Two Revision1 prototype dummies have now been evaluated by FTSS, TRL, UPM-INSIA and BASt. The updated prototype dummies were subjected to an extensive matrix of biomechanical tests, such as full body pendulum tests and lateral sled impact tests as specified by Wayne State University, Heidelberg University and Medical College of Wisconsin. The results indicated a significant improvement of dummy biofidelity. The overall dummy biofidelity in the ISO rating system has significantly improved from 6.7 to 7.6 on a scale between 0-10. The small female WorldSID has now obtained the same biofidelity rating as the WorldSID mid size male dummy. Also repeatability improved with respect to the prototype. In conclusion the recommended updates were all executed and all successfully contributed in achieving improved performance of the dummy.
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
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.