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Abbiegeunfälle mit Kollisionen zwischen rechtsabbiegenden Güterkraftfahrzeugen und Fahrrädern haben in der Regel schwerwiegende Folgen für den ungeschützten Verkehrsteilnehmer. In der Vergangenheit wurde durch eine steigende Anzahl von Spiegeln das individuelle Sichtfeld des Lkw-Fahrers vergrößert und die Sicherheit für ungeschützte Verkehrsteilnehmer durch den Seitenunterfahrschutz verbessert. Da Abbiegeunfälle trotz der Vielzahl an Spiegeln auch heute noch geschehen, gleichzeitig aber Fahrerassistenzsysteme Einzug in viele Fahrzeugklassen gehalten haben, liegt es nahe, derartige Systeme für die Verhinderung von Abbiegeunfällen zu nutzen. Um entsprechende Systementwicklungen fördern zu können oder aber auch Systeme vorschreiben zu können, sind Anforderungen und passende Testmethoden für Abbiegeassistenzsysteme erforderlich. Ziel der BASt war es, solche Anforderungen und ein mögliches Testverfahren hierfür zu entwickeln. Ausgehend von Analysen des Unfallgeschehens wurden charakteristische Parameter und Begleitumstände von Unfällen zwischen Fahrrädern und rechtsabbiegenden Lkw identifiziert. Aus fahrdynamischen Überlegungen folgt bei den gegebenen Parametern, dass nur eine frühe, aber niederschwellige Fahrerinformation eine wirkungsvolle Assistenzfunktion zur Verhinderung der Unfälle sein kann. Für automatische Bremsungen gibt es bisher noch zu wenig Erfahrungen im Feld, und klassische, hochschwellige, aber sehr spät erfolgende Warnsignale würden durch die dann noch verstreichende Reaktionszeit keine rechtzeitige Bremsung des Lkw-Fahrers mehr hervorrufen. Basierend auf dem identifizierten Parameterraum, der zum komfortablen Anhalten erforderlichen Zeit und einem geeigneten Kinematikmodell lassen sich die räumlichen Bereiche um den Lkw definieren, in dem eine Umfelderkennung den Fahrradfahrer detektieren können muss, damit das Informationssignal durch das Assistenzsystem an den Lkw-Fahrer rechtzeitig ausgegeben wird. Aktuell wird davon ausgegangen, dass ein Abbiegeassistenzsystem, das die hier beschriebenen Prüfungen besteht, einen sehr positiven Einfluss auf das Unfallgeschehen zwischen rechtsabbiegenden Lkw und Fahrrädern haben wird.
A methodology to derive precision requirements for automatic emergency braking (AEB) test procedures
(2015)
AEB Systems are becoming important to increase traffic safety. Test procedures in testing for consumer information, manufacturer self-certification and technical regulations are used to ensure a certain minimum performance of these systems. Consequently, test robustness, test efficiency and finally test cost become increasingly important. The key driver for testing effort and test costs is the required repeatable accuracy in a test design - the higher the accuracy, the higher effort and test costs. On the other hand, the performance of active safety systems depends on time discretization in the environment perception and other sub-systems: for instance, typical sensors supply information with a cycle time of 50 - 150 ms. Time discretization results in an inherent spread of system performance, even if the test conditions are perfectly equal. The proposed paper shows a methodology to derive requirements for a test setup (e.g. test repeats, use of driving robots, ...) as function of AEB system generation and rating method (e.g. Euro NCAP points awarded, pass/fail, ...). While the methodology itself is applicable to AEB pedestrian and AEB Car-Car scenarios, due to the lack of sufficient test data for AEB Car-Car, the focus of this paper is on AEB pedestrian scenarios. A simulation model for the performance of AEB Pedestrian systems allows for the systematic variation of the discretization time as well as test condition accuracy. This model is calibrated with test results of 4 production vehicles for AEB Pedestrian, all fully tested by BASt according to current Euro NCAP test protocols. Selected parameters to observe the accuracy of the test setup in case of pedestrian AEB is the calculated impact position of pedestrian on the vehicle front (as if no braking would have occurred), and the test vehicle speed accuracy. These variable was shown in real tests to be repeatable in the range of ± 5 cm and ± 0,25 km/h, respectively, with a fully robotized state of the art test setup. The sensitivity of AEB performance (measured in achieved speed reduction as well as overall rating result according to current Euro NCAP rating methods) towards discretization and the sensitivity of performance towards test accuracy then is compared to identify economic yet robust test concepts. These comparisons show that the available repeatability accuracy of current test setups is more than sufficient for today's AEB system capabilities. Time discretization problems dominate the performance spread especially in test scenarios with a limited pedestrian dummy reveal time (e.g. child behind obstruction, running adult scenarios with low car speeds). This would allow to increase test tolerances to decrease test cost. A methodology which allows to derive the required tolerances in active safety tests might be valuable especially for NCAPs of emerging countries that do not have the necessary equipment (e.g. driving robots, positioning units) available for the full-scale and high tolerance EuroNCAP active safety procedures yet still want to rate active safety systems, thus improving the global safety.
Accidents between right turning trucks and straight riding cyclists often show massive consequences. Accident severity is much higher than in other accidents. The situation is critical especially due to the fact that, in spite of the six mirrors that are mandatory for ensuring a minimum field of sight for the truck drivers, cyclists in some situations cannot be seen or are not seen by the driver. Either the cyclist is overlooked or is in a blind spot area that results from the turning manoeuvre of the truck and its articulation if it is a truck trailer or truck semitrailer combination. At present driver assistance systems are discussed that can support the driver in the turning situation by giving a warning when cyclists are riding parallel to the truck just before or in the turning manoeuvre. Such systems would generally bear a high potential to avoid accidents of right turning trucks and cyclists no matter if they ride on the road or on a parallel bicycle path. However, performance requirements for such turning assist systems or even test procedures do not exist yet. This paper describes the development of a testing method and requirements for turning assist systems for trucks. The starting point of each development of test procedures is an analysis of accident data. A general study of accident figures determines the size of the problem. In-depth accident data is evaluated case by case in order to find out which are representative critical situations. These findings serve to determine characteristic parameters (e.g. boundary conditions, trajectories of truck and cyclist, speeds during the critical situation, impact points). Based on these parameters and technical feasibility by current sensor and actuator technology, representative test scenarios and pass/fail-criteria are defined. The outcome of the study is an overview of the accident situation between right turning trucks and straight driving cyclists in Germany as well as a corresponding test procedure for driver assistance systems that at this first stage will be informing or warning the driver. This test procedure is meant to be the basis for an international discussion on introducing turning assist systems in vehicle regulations.