Abteilung Fahrzeugtechnik
The 2BeSafe project (2-Wheeler Behaviour and Safety) is a collaborative project (co financed by the European Commission) that aims to study the naturalistic behaviour of Powered-Two-Wheeler (PTW) riders in normal and critical riding situations. That includes the interaction between PTW riders and other road users and possible conflicts between them. One of the predominant causes of accidents involving PTWs is that PTWs are often overlooked by other road users. One task of the project lead by BASt therefore deals with possible improvements in conspicuity and the development of recommendations. Particularly using the findings of the studies on conflict situations, promising lighting arrangements to enhance conspicuity of PTWs during the day and at night are selected. An abstract recognizing pattern for PTWs is defined, enabling other road users (e.g. car drivers) to clearly identify riders. Lamps and outfit like lighting configurations of different colours, different helmet lights, reflect / luminescent clothing parts and retro-reflective markings are designed and manufactured. Then, the different solutions are tested in a laboratory setting using experimental motorcycles together with riders to which the equipment is fitted. As result a proposal for a uniform signal pattern or lamp configuration in the front of all motorcycles and riders will be outlined. The contribution first gives a short overview of the topics of the research project that deal with conflicts and their connection with poor conspicuity and then presents in detail the methods used in the activities concerning solutions for the improvement of conspicuity together with first results.
To improve vehicle safety in frontal collisions, the crash compatibility between the colliding vehicles is crucial. Compatibility aims to improve both the self and partner protection properties of vehicles. Although compatibility has received worldwide attention for many years, no final assessment approach has been defined. Within the Frontal Impact and Compatibility Assessment Research (FIMCAR) project, different frontal impact test procedures (offset deformable barrier [ODB] test as currently used for Economic Commission for Europe [ECE] R94, progressive deformable barrier test as proposed by France for a new ECE regulation, moveable deformable barrier test as discussed worldwide, full-width rigid barrier test as used in Federal Motor Vehicle Safety Standard [FMVSS] 208, and full-width deformable barrier test) were analyzed regarding their potential for future frontal impact legislation. The research activities focused on car-to-car frontal impact accidents based on accident investigations involving newer cars. Test procedures were developed with both a crash test program and numerical simulations. The proposal from FIMCAR is to use a full-width test procedure with a deformable element and compatibility metrics in combination with the current offset test as a frontal impact assessment approach that also addresses compatibility. By adding a full-width test to the current ODB test it is possible to better address the issues of structural misalignment and injuries resulting from high acceleration accidents as observed in the current fleet. The estimated benefit ranges from a 5 to 12 percent reduction of fatalities and serious injuries resulting from frontal impact accidents. By using a deformable element in the full-width test, the test conditions are more representative of real-world situations with respect to acceleration pulse, restraint system triggering time, and deformation pattern of the front structure. The test results are therefore expected to better represent real-world performance of the tested car. Furthermore, the assessment of the structural alignment is more robust than in the rigid wall test.
Within the automotive context camera monitor systems (CMS) can be used to present views of the traffic situation behind the vehicle to the driver via a monitor mounted inside the cabin. This offers the opportunity to replace classical outside rearview mirrors and therefore to implement new design concepts, aerodynamically optimized vehicle shapes and to reduce the width of the vehicle. Further, the use of a CMS offers the potential to implement functionalities like warnings or situation-adaptive fields of view that are not feasible with conventional rearview mirrors. Despite these potential advantages, it is important to consider the possible technical constraints of this technology and its effect on driver perception and behavior. On the technical side next to the field of view and die robustness of die system, aspects as its functionality at day and night as well as under varying weather conditions should be object to scientific investigation. Concerning human machine interaction, it has to be considered, that the perception of velocities and distances of approaching vehicles might be different for CMS as compared to conventional rearview mirrors and potential influences of factors as the Position of the displays or drivers' age should be taken into account. In order to shed light on these and further open issues, BASt is currently conducting a study that will cover the use of CMS under controlled conditions as well in real traffic. The first part of the study will focus on passenger cars, while in a second step the empirical investigation will be extended to heavy goods vehicles, where the potentials as well as the limitations of CMS might differ considerably. The presentation will cover the first part, with regard to the experimental design, implementation and initial results if already available.
In Germany the number of casualties in passenger car to pedestrian crashes has been reduced by a considerable amount of 40% as regards fatalities and 25% with regard to seriously injured pedestrians since the year 2001. Similar trends can be seen in other European countries. The reasons for that positive development are still under investigation. As infrastructural or behavioral changes do in general take a longer time to be effective in real world, explanations related to improved active and passive safety of passenger vehicles can be more relevant in providing answers for this trend. The effect of passive pedestrian protection " specified by the Euro NCAP pedestrian test result " is of particular interest and has already been analyzed by several authors. However, the number of vehicles with some valid Euro NCAP pedestrian score (post 2002 rating) was quite limited in most of those studies. To overcome this problem of small datasets German National Accident Records have been taken to investigate a similar objective but now based on a much bigger dataset. The paper uses German National Accident Records from the years 2009 to 2011. In total 65.140 records of pedestrian to passenger car crashes have been available. Considering crash parameters like accident location (rural / urban areas) etc., 27.143 of those crashes have been classified to be relevant for the analysis of passive pedestrian safety. In those 27.143 records 7.576 Euro NCAP rated vehicles (post 2002 rating) have been identified. In addition it was possible to identify vehicles which comply with pedestrian protection legislation (2003/102/EG) where phase 1 came into force in October 2005. A significant correlation between Euro NCAP pedestrian score and injury outcome in real-life car to pedestrian crashes was found. Comparing a vehicle scoring 5 points and a vehicle scoring 22 points, pedestrians" conditional probability of getting fatally injured is reduced by 35% (from 0.58% to 0.37%) for the later one. At the same time the probability of serious injuries can be reduced by 16% (from 27.4% to 22.9%). No significant injury reducing effect, associated with the introduction of pedestrian protection legislation (phase 1) was detected. Considerable effects have also been identified comparing diesel and gasoline cars. Higher engine displacements are associated with a lower injury risk for pedestrians. The most relevant parameter has been "time of accident", whereas pedestrians face a more than 2 times higher probability to be fatally injured during night and darkness as compared to daytime conditions.
It is commonly agreed that active safety will have a significant impact on reducing accident figures for pedestrians and probably also bicyclists. However, chances and limitations for active safety systems have only been derived based on accident data and the current state of the art, based on proprietary simulation models. The objective of this article is to investigate these chances and limitations by developing an open simulation model. This article introduces a simulation model, incorporating accident kinematics, driving dynamics, driver reaction times, pedestrian dynamics, performance parameters of different autonomous emergency braking (AEB) generations, as well as legal and logical limitations. The level of detail for available pedestrian accident data is limited. Relevant variables, especially timing of the pedestrian appearance and the pedestrian's moving speed, are estimated using assumptions. The model in this article uses the fact that a pedestrian and a vehicle in an accident must have been in the same spot at the same time and defines the impact position as a relevant accident parameter, which is usually available from accident data. The calculations done within the model identify the possible timing available for braking by an AEB system as well as the possible speed reduction for different accident scenarios as well as for different system configurations. The simulation model identifies the lateral impact position of the pedestrian as a significant parameter for system performance, and the system layout is designed to brake when the accident becomes unavoidable by the vehicle driver. Scenarios with a pedestrian running from behind an obstruction are the most demanding scenarios and will very likely never be avoidable for all vehicle speeds due to physical limits. Scenarios with an unobstructed person walking will very likely be treatable for a wide speed range for next generation AEB systems.
The GRSP informal group on child restraint systems (CRS) finalised phase 1 of a new regulation for the homologation of CRS . This regulation is the subject of several discussions concerning the safety benefits and the advantages and disadvantages that certain specific points may bring. However, these discussions are sometimes not based on scientific facts and do not consider the whole package but only single items. Based on the experience of the CASPER partners in the fields of human behaviour, accident analysis, test procedures and biomechanics in the area of child safety, a consideration of the safety benefits of phase 1 of the new regulation and recommendations for phase 2 will be given.
Aufgrund des demografischen Wandels werden in der Zukunft immer mehr ältere Menschen ein Kraftfahrzeug führen. Das vorliegende Projekt soll Erkenntnisse dazu liefern, wie unter Berücksichtigung der Verkehrssicherheit die Mobilität der älteren Fahrer so lange wie möglich erhalten werden kann. Unfallanalysen zeigen, dass ältere Kraftfahrer typische Fahrfehler bzw. Unfälle begehen. Unklar ist derzeit die genaue Ursache hierfür, vor allem vor dem Hintergrund der langjährigen Erfahrung älterer Kraftfahrer, welche eher eine äußerst geringe Unfallrate vermuten ließe. Ziel der vorliegenden Untersuchung war es, tiefere Erkenntnisse äber die Ursache von Fahrfehlern älterer Kraftfahrer zu gewinnen, um daraus Anforderungen an die technische Weiterentwicklung von Fahrerassistenzsystemen ableiten zu können. Diese Fahrerassistenzsysteme sollen speziell älteren Autofahrern Hilfestellung zum sicheren Führen von Kraftfahrzeugen bieten. In dem folgenden Laborexperiment wurde ein Doppeltätigkeits-Paradigma verwendet, indem eine Spurhalteaufgabe mit einer peripheren Lichtreizaufgabe kombiniert wurde. Die peripheren Lichtreize wurden den Probanden bilateral in zwei verschiedenen Abständen vom zentralen Punkt des Sehens (20 Grad und 60 Grad) präsentiert. Die Aufgaben wurden von älteren (65+) und jüngeren Kraftfahrern (22-45) zuerst einzeln, dann in Kombination durchgeführt. Um Aufschluss über mögliche Ursachen von Leistungsbeeinträchtigungen erhalten zu können, wurde neben der Erfassung von Verhaltensdaten (Spurabweichungen, Reaktionszeit, Anzahl der Auslassungen) ein Elektroenzephalogramm abgeleitet, welches Einblicke in die zugrunde liegenden neuronalen Verarbeitungsmechanismen ermöglicht. Wie erwartet, zeigten Ältere in der Spurhalteaufgabe schlechtere Leistungen als Jüngere, besonders bei gleichzeitiger Durchführung der Lichtreizaufgabe (Doppel-Aufgabe). In der Lichtreizaufgabe unterschieden sich die Leistungen der Altersgruppen nur bei Lichtreizen, die im 60 Grad Sehwinkel auftraten. Die Älteren reagierten hier langsamer und zeigten mehr Auslassungen als die Jüngeren. Überraschenderweise zeigten alle Versuchspersonen weniger Auslassungen in der Doppel-Aufgabe. Mittels Elektroenzephalogramm wurde anhand der ereigniskorrelierten Potenziale (EKP) deutlich, dass die Defizite Älterer nicht in einer Einschränkung der frühen Verarbeitung peripherer Reize (P1) liegen, da die P1 Amplitude bei Älteren sogar höher war als bei Jüngeren. Die N2 Amplitude, welche Hinweise auf die Verschiebung der Aufmerksamkeit gibt, war bei Jüngeren hingegen bei weiter peripher liegenden Reizen (60 Grad Sehwinkel) erhöht, was einen fronto-zentral fokussierten Kontrollprozess widerspiegelt. Die Orientierung auf den peripheren Reiz (P3a) war bei Älteren geringer ausgeprägt sowie auch die Zuordnung von Verarbeitungsressourcen (P3b) vor allem bei peripheren Lichtreizen. Es liegen zudem Hinweise darauf vor, dass Ältere verlängerte Reaktionszeiten aufgrund einer verzögerten Reaktionsaktivierung aufweisen. Mit dem vorliegenden Experiment konnte also gezeigt werden, dass die schlechteren Leistungen der älteren Versuchspersonen nicht auf periphere Sehleistungsmängel zurückzuführen sind, sondern einem späteren kognitiven Verarbeitungsprozess zuzuschreiben sind. Die Ergebnisse werden vor dem Hintergrund der Literatur und der Erfordernisse technischer Unterstützungen älterer Kraftfahrer diskutiert.
Um die zukünftige Entwicklung von Fahrzeugen mit alternativem Antrieb in Deutschland verfolgen, analysieren und mögliche negative Auswirkungen auf die Verkehrssicherheit zeitnah identifizieren zu können, hat die Bundesanstalt für Straßenwesen (BASt) im Jahr 2010 die Einrichtung einer langfristigen Beobachtung des Fahrzeugmarktes und des Unfallgeschehens von Pkw mit alternativen Antriebsarten initiiert. Die Daten des vorliegenden Berichtes dokumentieren die Marktdurchdringung von Personenkraftwagen mit alternativen Antriebsarten und informieren über die Unfallbeteiligung von Fahrzeugen mit alternativem Antrieb bis 2011. Es hat sich gezeigt, dass Fahrzeuge mit Hybridantrieb nach wie vor ein starkes Marktwachstum aufweisen. Die Zuwachsrate ist nahezu auf dem gleichen hohen Niveau wie in den Vorjahren (ca. 28%, getypter Bestand). Bei den reinen Elektrofahrzeugen ist die Anzahl getypter Fahrzeuge sehr stark angestiegen, von 212 im Jahr 2010 auf 1880 im Jahr 2011. Der reale Bestand an Elektrofahrzeugen (inklusive ungetypter Fahrzeuge) hat sich demgegenüber von 2010 auf 2011 auf 4.541 Pkw verdoppelt. Dies deutet auf eine zunehmende Serienreife von Elektro-Kfz hin. Pkw mit alternativem Antrieb weisen 2011 (bis auf Gas) einen höheren Anteil an Unfällen innerorts auf als Pkw mit herkömmlichem Antrieb. Hybrid Fahrzeuge haben dabei eine erhöhte Beteiligungsquote innerorts von ca. 76%. Der relativ hohe Anteil von Innerortsunfällen von alternativ betriebenen Fahrzeugen ist vor allem vor dem Hintergrund der Nutzung der Fahrzeuge zu interpretieren.
The goal of the project FIMCAR (Frontal Impact and Compatibility Assessment Research) was to define an integrated set of test procedures and associated metrics to assess a vehicle's frontal impact protection, which includes self- and partner-protection. For the development of the set, two different full-width tests (full-width deformable barrier [FWDB] test, full-width rigid barrier test) and three different offset tests (offset deformable barrier [ODB] test, progressive deformable barrier [PDB] test, moveable deformable barrier with the PDB barrier face [MPDB] test) have been investigated. Different compatibility assessment procedures were analysed and metrics for assessing structural interaction (structural alignment, vertical and horizontal load spreading) as well as several promising metrics for the PDB/MPDB barrier were developed. The final assessment approach consists of a combination of the most suitable full-width and offset tests. For the full-width test (FWDB), a metric was developed to address structural alignment based on load cell wall information in the first 40 ms of the test. For the offset test (ODB), the existing ECE R94 was chosen. Within the paper, an overview of the final assessment approach for the frontal impact test procedures and their development is given.
The off-set assessment procedure potentially contributes to the FIMCAR objectives to maintain the compartment strength and to assess load spreading in frontal collisions. Furthermore it provides the opportunity to assess the restraint system performance with different pulses if combined with a full-width assessment procedure in the frontal assessment approach. Originally it was expected that the PDB assessment procedure would be selected for the FIMCAR assessment approach. However, it was not possible to deliver a compatibility metric in time so that the current off-set procedure (ODB as used in UNECE R94) with some minor modifications was proposed for the FIMCAR Assessment Approach. Nevertheless the potential to assess load spreading, which appears not to be possible with any other assessed frontal impact assessment procedure was considered to be still high. Therefore the development work for the PDB assessment procedure did not stop with the decision not to select the PDB procedure. As a result of the decisions to use the current ODB and to further develop the PDB procedure, both are covered within this deliverable. The deliverable describes the off-set test procedure that will be recommended by FIMCAR consortium, this corresponds to the ODB test as it is specified in UN-ECE Regulation 94 (R94), i.e. EEVC deformable element with 40% overlap at a test speed of 56 km/h. In addition to the current R94 requirements, FIMCAR will recommend to introduce some structural requirements which will guarantee sufficiently strong occupant compartments by enforcing the stability of the forward occupant cell. With respect to the PDB assessment procedure a new metric, Digital Derivative in Y direction - DDY, was developed, described, analysed, and compared with other metrics. The DDY metric analyses the deformation gradients laterally across the PDB face. The more even the deformation, the lower the DDY values and the better the metric- result. In order analyse the different metrics, analysis of the existing PDB test results and the results of the performed simulation studies was performed. In addition, an assessment of artificial deformation profiles with the metrics took place. This analysis shows that there are still issues with the DDY metric but it appears that it is possible to solve them with future optimisations. For example the current metric assesses only the area within 60% of the half vehicle width. For vehicles that have the longitudinals further outboard, the metric is not effective. In addition to the metric development, practical issues of the PDB tests such as the definition of a scan procedure for the analysis of the deformation pattern including the validation of the scanning procedure by the analysis of 3 different scans at different locations of the same barrier were addressed. Furthermore the repeatability and reproducibility of the PDB was analysed. The barrier deformation readings seem to be sensitive with respect to the impact accuracy. In total, the deliverable is meant to define the FIMCAR off-set assessment procedure and to be a starting point for further development of the PDB assessment procedure.