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Bus or heavy vehicle passenger accidents are rare events, compared with car accidents, but sometimes leads to a large number of victims especially in rollover crash scenarios. Two accidents occurred in Portugal in 2007 and 2013 in which 28 people died and more than 50 are injured, shown the importance of the investigation of such accidents. For the investigation of these accidents multidisciplinary teams are constituted with engineers and police officers. All the factors involved are taken into consideration including road design, traffic signs, maintenance and hardware, human factors, and vehicle factors. In this work a methodology to an accurate collection of the data is proposed. From the information collected the accident is reconstructed using the PC-CrashTM software. From this all the contribution factors are determined and recommendations to mitigate these crashes are listed. These two accidents are rollover accidents and the analysis of the injuries and its correlation with the use of retention systems is very important. From the medical data and with the dynamics of the accident determined simulations of the occupants with biomechanical models are carried out in order to evaluate the effect of the retention systems in the injuries. This analysis is based on injury criteria (such as Abbreviated Injury Score (AIS) or Injury Severity Scale (ISS)). With this it is possible to determine if the seat belt was worn or not.
Since its creation in 2011 the Pre-Crash-Matrix (PCM) offers the possibility to observe the pre-crash phase until five seconds before crash for a wide range of accidents. Currently the PCM contains more than 8.000 reconstructed accidents out of the GIDAS (German In-Depth Accident Study) database and is enlarged continuously by more than 1.000 cases per year. Hence, a detailed investigation of active safety systems in real accident situations has been made feasible. The PCM contains all relevant data in database format to simulate the pre-crash phase until the first collision of the accident for a maximum of two participants. This includes the definition of the participants and their characteristics, the dynamic behavior of the participants as time-dependent course for five seconds before crash as well as the geometry of the traffic infrastructure. The digital sketch of the accident and information from GIDAS as well as from supplementary databases represent the main input for the simulation of the pre-crash phase of an accident with the VUFO simulation model VAST (Vufo Accident Simulation Tool). This simulation in turn embodies the foundation of the PCM. The PCM underlies continual improvements and enhancements in consultation with its users. In addition to collisions of cars with other cars, pedestrians, bicycles and motorcycles the PCM now also covers car to object and car to truck collisions. The paper illustrates car to truck collisions as a showcase and explains perspectives for further developments. In 2016 a more detailed definition of the contour of the vehicle was added. Furthermore, the geometrical surroundings of the accident site will be provided in a new structure with a higher level of detail. Thus, a precise classification of road marks and objects is possible to further improve the support of developing and evaluating ADAS. This paper gives an overview about the latest developments of the PCM with its innovations and provides an outlook to upcoming enhancements. Besides potential areas of application for the development of ADAS are shown.
This work describes the results of the experimental activity, illustrating the driving behavior observed in different conditions, relating them to the different methods of ADAS intervention and comparing the driver behavior without ADAS. In the present study, driver behavior was studied in road accidents involving elderly pedestrians, with different ADAS HMIs, as a base to develop a driver model in near missing pedestrian accidents. A literature research was conducted with the aim of finding out the main influencing factors, including environment, boundary conditions, configuration of impact, pedestrian and driver information, when pedestrian fatalities occur and an analysis of frequent road accidents was conducted to get more detailed information about the driver- behavior. In order to obtain more detailed information about pedestrian accidents, real road accidents were reconstructed with multibody simulations on PC-Crash and, by the comparison between literature findings and reconstructions, a generic accident scenario was defined. The generic accident scenario was implemented on the full scale dynamic driving simulator in use at the Laboratory for Safety and Traffic Accident Analysis (LaSIS, University of Florence, Italy) in order to analyse the driving behaviors of volunteers, also considering the influence of ADAS devices. Forty-five young volunteers were enrolled for this study, resulting in forty valid tests on different testing scenarios. Two different scenarios consisted in driving with or without ADAS in the vehicle. Different kinds of ADAS, acoustic and optical, with different time of intervention were tested in order to study the different reactions of the driver. The tests showed some interesting differences between driver's behavior when approaching the critical situation. Drivers with ADAS reacted earlier, but more slowly, depending also on the type of alarm, and often with double reaction when braking. In fact, the results of the activity showed that with ADAS intervention the time to collision (TTC) increases, but the reaction time and braking modality change: a) there is a sort of "latency" time between the accelerator pedal release and the brake pressure; b) the brake pressure is initially less intense. So the driver only partially takes advance from the TTC increase. These differences were valued not only qualitatively, but quantitatively as well. This work revealed to be useful to improve the knowledge of drivers" behavior, in order to realize a driver model that can be implemented to help attaining and assessing higher levels of automation through new technology.
The advent of active safety systems calls for the development of appropriate testing methods. These methods aim to assess the effectivity of active safety systems based on criteria such as their capability to avoid accidents or lower impact speeds and thus mitigate the injury severity. For prospective effectivity studies, simulation becomes an important tool that needs valid models not only to simulate driving dynamics and safety systems, but also to resolve the collision mechanics. This paper presents an impact model which is based on solving momentum conservation equations and uses it in an effectivity study of a generic collision mitigation system in reconstructed real accidents at junctions. The model assumes an infinitely short crash duration and computes output parameters such as post-crash velocities, delta-v, force directions, etc. and is applicable for all impact collision configurations such as oblique, excentric collisions. Requiring only very little computational effort, the model is especially useful for effectivity studies where large numbers of simulations are necessary. Validation of the model is done by comparison with results from the widely used reconstruction software PC-Crash. Vehicles involved in the accidents are virtually equipped with a collision mitigation system for junctions using the software X-RATE, and the simulations (referred to as system simulations) are started sufficiently early before the collision occurred. In order to assess the effectivity, the real accident (referred to as baseline) is compared with the system simulations by computing the reduction of the impact speeds and delta-v.
For more than a decade, ADAC accident researchers have analysed road accidents with severe injuries, recording some 20,000 accidents. An important task in accident research is to determine the causative factors of road accidents. Apart from vehicle engineering and human factors, accident research also focuses on infrastructural and environmental aspects. To find out what accident scenarios are the most common in ADAC accident research and what driver assistance systems can prevent them, our first task was to conduct a detailed accident analysis. Using CarMaker, we performed a realistic simulation of accident scenarios, including crashes, with varying parameters. To begin with, we made an initial selection of driver assistance systems in order to determine those with the greatest accident prevention potential. One important finding of this study is that the safety potential of the individual driver assistance systems can actually be examined. It also turned out that active safety offers even much more potential for development and innovation than passive safety. At the same time, testing becomes more demanding, too, as new systems keep entering the market, many of them differing in functional details. ADAC will continue to test all driver assistance systems as realistically as possible so as to be able to provide advice to car buyers. Therefore, it will be essential to develop and improve test conditions and criteria.
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.
This study investigates the protection offered by passive head-restraints with different stiffness and energy dissipation properties. For this purpose, computational multi-body models of a generic car seat and a biofidelic 50thpercentile male human for rear impact are used to study different seat designs and passive head-restraints. The validated seat-occupant model is also used in the design of two different car-seat models which are shown to effectively mitigate whiplash by utilising a crash-energy distribution technique. Five different passive head-restraints with varying stiffness (low-medium-high) and energy dissipation percentages (low-high) are successively attached to four different car-seat models. The simulation results indicate that the protection offered by head restraints is strongly dependent on the seat design. It has also been shown that the stiffness of the passive head-restraint has much more influence on whiplash-risk in comparison to its energy dissipation capacity.
Ziel der Untersuchung war es, eine Methodik für die HBS-konforme Durchführung und Auswertung von Simulationsstudien zu erarbeiten. Dazu wurden HBS-konforme Standardelemente in den Simulationsprogrammen BABSIM, VISSIM, Aimsun, Paramics und SUMO modelliert und an den Bemessungswerten des HBS kalibriert. Die Ermittlung der Kapazität erfolgte anhand der Identifikation von Zusammenbrüchen des Verkehrsflusses, die durch Steigerung der Verkehrsstärke auf bis zu 120 % der Kapazität nach HBS in der Simulation erzeugt wurden. An Teilknotenpunkten wurden sechs Verhältnisse der Verkehrsstärke auf der Hauptfahrbahn zur Verkehrsstärke des ein- bzw. ausfahrenden Stroms untersucht. Als Kriterium für die Übereinstimmung der in der Simulation ermittelten Kapazität und q-v-Beziehung mit dem HBS wurde eine maximale Abweichung von 5 % festgelegt. Die Fehlergrenze konnte mit den Simulationsprogrammen BABSIM, VISSIM, Aimsun und Paramics in der Regel eingehalten werden, während sich in SUMO größere Abweichungen ergaben. Die Übertragbarkeit der Parametersätze auf nicht HBS-konforme Bemessungssituationen wurde anhand der Daten realer Untersuchungsobjekte überprüft. Im Ergebnis werden Empfehlungen und Standardparameterkombinationen für die HBS-konforme Simulation des Verkehrsablaufs auf Autobahnen bereitgestellt, die als Ausgangsparameter für die Simulation nicht HBS-konformer Untersuchungsobjekte herangezogen werden können.
In der Untersuchung wurde der Einfluss des Schwerverkehrs auf den Verkehrsablauf an planfreien Knotenpunkten analysiert. Als Grundlage dienten Daten von Dauerzählstellen für die Analyse auf makroskopischer Ebene, ergänzt durch Messungen an hochbelasteten Knotenpunkten für eine mikroskopische Analyse des Schwerverkehrs. Für die Untersuchung hoher Schwerverkehrsanteile wurden außerdem Verkehrsflusssimulationen an ausgewählten Knotenpunkten mit dem Programm BABSIM durchgeführt. Makroskopisch wurden die Daten von Dauerzählstellen und aus der Simulation mit den Verfahren des HBS (2015) verglichen und vor allem bezüglich der Umrechnung in Pkw-Einheiten ausgewertet. Dabei zeigte sich, dass die bestehenden Verfahren auch für hohe Schwerverkehrsanteile anwendbar sind, der Einfluss des Schwerverkehrs auf die Kapazität mit dem bislang angesetzten Pkw-Gleichwert von 2,0 aber bei Schwerverkehrsanteilen größer oder gleich 20 % eher überschätzt wird. Weiterhin wurden Regressionsanalysen durchgeführt, die dazu dienten, eine Funktion der für die Einfahrt maßgebenden Belastung des rechten Fahrstreifens zu identifizieren. Diese Funktion diente als Eingangsgröße für die Kalibrierung und Erweiterung eines analytischen Modells, mit dem die Veränderung der Fahrstreifenaufteilung im Bereich von Ein- und Ausfahrten nachgebildet werden kann. Als weiterer Ansatz wurden die Verfahren der stochastischen Kapazitätsanalyse für die Untersuchung von planfreien Knotenpunkten erweitert. Für die Anwendung des Verfahrens ist eine sehr umfangreiche Datengrundlage erforderlich, die nicht immer verfügbar ist. Im Rahmen der mikroskopische Analyse des Schwerverkehrs an planfreien Knotenpunkten wurden empirisch erhobene Einzelfahrzeugdaten hinsichtlich des Fahrstreifenwechselverhaltens der Schwerverkehrsfahrzeuge im Bereich der Knotenpunkte und der Zeitlückenverteilungen in verschiedenen Abständen von der Trenninselspitze analysiert. Mithilfe dieser Auswertungen wurden die um den Aspekt des Schwerverkehrs erweiterten analytischen Modelle kalibriert.
Im Rahmen des Forschungsprojektes wurden für verschiedene Tunnel mit Rechteck- und Gewölbequerschnitt mit dem Regelquerschnitt RG 31t (bzw. RQ 10,5), die orts- und zeitabhängigen Verteilungen der Gastemperatur, der Gasgeschwindigkeit und Gaszusammensetzung, der adiabaten Decken- und Wandtemperaturen sowie der zeitliche Verlauf der Wärmefreisetzungsrate und des Durchwärmungsverhaltens bestimmt werden. Betrachtet wurden Tunnel mit konstanter Längsneigung von 3 % sowie ein Tunnel mit muldenfoermigem Längsprofil (Richtungs- und Gegenverkehr). Bezüglich der Austrittgeschwindigkeit wurden die Szenarien 20,6 kg/s und 300 kg/s unterschieden. Zusätzlich im Fall A ein mit Holzpaletten beladenen LKW und im Fall B zusätzlich noch weitere PKW und LKW berücksichtigt. In einem originalmaßstäblichen Großbrandversuch wurde zur Klärung offener, aus der Modellierung resultierender Fragen ein Unfall in einem Richtungsverkehrstunnel zwischen einem LKW, der mit ca. 3,7 t Europoolpaletten beladen war, und einem PKW nachgebildet. Insgesamt wurden 3 Mittelklasse-PKW im Versuchstunnel positioniert. Die Brandlast betrug ca. 123 GJ. Anhand durchgeführter Plattenbrandversuche wurde festgestellt, dass die Schichten aus spritzbarem Faserbeton des Systems RUB sowie die Fertigteilschutzschichten des Systems HOCHTIEF ein relativ geringes bzw. kein Abplatzverhalten aufweisen und bei Brandbeanspruchung jeweils einen signifikanten thermischen Schutz der Stahlbetonkonstruktion gewährleisten können. Es konnte gezeigt werden, dass Auswirkungen auf die Tragstruktur nicht größer sind als infolge eines Brands, dessen Temperatur-Zeit-Verlauf dem ZTV-ING-Verlauf entspricht. Es sei aber angemerkt, dass aus den Szenarien unter noch ungünstigeren Bedingungen (z.B. im Falle eingeschränkt funktionsfähiger Schlitzrinnen) Auswirkungen entstehen könnten, die nur durch den verlängerten ZTV-ING-Temperatur-Zeit-Verlauf abgedeckt wären.