Description of road traffic related knee injuries in published investigations is very heterogeneous. The purpose of this study was to estimate the risk of knee injuries in real world car impacts in Germany focusing vulnerable road users (pedestrians, bicyclists and motorcyclists) and restrained car drivers. The accident research unit analyses technical and medical data collected shortly after the accident at scene. Two different periods (years 1985-1993 and 1995-2003) were compared focusing on knee injuries (Abbreviated Injury Scale (AISKnee) 2/3). In order to determine the influences type of collision, direction and speed as well as the injury pattern and different injury scores (AIS, MAIS, ISS) were examined. 1.794 pedestrians, 742 motorcyclists, 2.728 bicyclists and 1.116 car drivers were extracted. 2% had serious ligamentous or bony injuries in relation to all injured. The risk of injury is higher for twowheelers than for pedestrians, but knee injury severity is higher for the latter group. Overall the current knee injury risk is low and significant reduced comparing both time periods (27%, p<0,0001). Severe injuries (AISKnee 2/3) were below 1%). Improved aerodynamic design of car fronts reduced the risk for severe knee injuries significantly (p=0,0015). Highest risk of injury is for motorcycle followed by pedestrians, respectively. Knee protectors could prevent injuries by reducing local forces. The classically described dashboard injury was rarely identified. The overall injury risk for knee injuries in road traffic is lower than estimated and reduced comparing both periods. The aerodynamic shape of current cars compared to older types reduced the incidence and severity of knee injuries. Further modification and optimization of the interior and exterior design could be a proper measurement. Classic described injury mechanisms were rarely identified. It seems that the AIS is still underestimating extremity injuries and their long term results.
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.
The objective of the study is to measure the risk of pedestrian and bicyclist in urban traffic through an analysis of real-world accident data. The kinematics and injury mechanisms for both pedestrian and bicyclists are investigated to find the correlation of injury risks with injury related parameters. For this purpose, firstly 338 cases are selected as a sample from an IVAC accident database based on the In-depth Investigation of Vehicle Accident in Changsha of China. A statistic measurement of the fatality and serious injury risks with respect to impact speed was carried out by logistic regression analysis. Secondly, 12 pedestrian and 12 bicyclist accidents were further selected for reconstruction with MADYMO program. A comparative analysis was conducted based on the results from accident analysis and computer reconstructions for the injury risk, head impact conditions and dynamic response of pedestrians and bicyclists. The results indicate that bicyclists suffered lower risks of severe injuries and fatalities compared with pedestrians. The risks of AIS 3+ injury and fatality are 50% for pedestrians at impact speeds of 53.2 km/h and 63.3 km/h, respectively, while that for bicyclists at 62.5 km/h and 71.1 km/h, respectively. The findings could have a contribution to get a better understanding of pedestrians" and bicyclists" exposures in urban traffic in China, and provide background knowledge to generate strategies for pedestrian protection.
The paper aims to study the injury risk and kinematics of pedestrians involved in different passenger vehicle collisions. Furthermore, the difference of pedestrian kinematics in the accidents involved minivan and sedan was analyzed. The 18 sample cases of passenger car to pedestrian collisions were selected from the database of In-depth Investigation of Vehicle Accident in Changsha of China (IVAC),of which the 12 pedestrian accidents involved in a minivan impact for each case, and the 6 accidents in a sedan impact for each. The selected cases were reconstructed by using mathematical models of pedestrians and accident vehicles in a multi-body dynamic code MADYMO environment. The logistic regression models of the risks for pedestrian AIS 3+ injuries and fatalities were developed in terms of vehicle impact speed by analyzing the minivan-pedestrian and sedan-pedestrian accidents. The difference of pedestrian kinematics was identified by comparing the results from reconstructed pedestrian accidents between the minivans and sedans collisions. The result shows that there is a significant correlation among the impact speed and the severity of pedestrian injuries. The minivan poses greater risk to pedestrian than sedan at the same impact speed. The kinematics of pedestrian was greatly influenced by vehicle front shape.
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.
Airbag-Systeme können, wie frühere Untersuchungen gezeigt haben, die passive Sicherheit von Motorrädern wirksam verbessern. Der vorliegende Forschungsbericht betrachtet die Übertragbarkeit von Pkw-Airbag-Konzepten auf das Motorrad und befasst sich vor allem mit dem Problem der motorradgerechten und sicheren Auslösung des Airbags. Die Funktion des Motorradairbags unterscheidet sich von der des Pkw-Airbags in entscheidender Weise durch die Möglichkeit, die Flugbahn des Fahrers bei einem Zusammenstoß mit einem rechtwinklig vor dem Motorrad befindlichen Pkw so zu beeinflussen, dass dieser das Hindernis ohne einen harten Anprall überfliegen kann. Der Abbau der kinetischen Energie des Fahrers geschieht so nicht in der kurzen Knautschzone vor dem Kollisionsobjekt, sondern in der meist ausreichend langen Auslaufzone dahinter. Der Motorradairbag kann am vorderen Tankbereich angebracht sein. Fülltechnik und Gewebematerial können vom Pkw direkt übernommen werden; jedoch ist die Nahtführung zu verstärken, da der Motorradairbag vorwiegend auf Scherung beansprucht wird. Gravierende Unterschiede ergeben sich in der Sensierung eines Crashs, da durch das an der Telegabel geführte Vorderrad signifikante Verzögerungsanstiege des Motorrades erst sehr spät erfolgen. Es ist daher nicht möglich, wie beim Pkw den Airbag allein über Beschleunigungsaufnehmer zu zünden. Schwerpunkt des Berichtes sind daher verschiedene Vorschläge, bei heute üblichen Motorradkonstruktionen einen Crash für eine Airbagauslösung rechtzeitig und sicher sensieren zu können. Zu charakteristischen Unfall-Ereignissen werden Sensoren nach verschiedenen Wirkprinzipien geordnet vorgestellt. Nach einer technischen Bewertung erweisen sich zwei Sensorvarianten als geeignet für eine zuverlässige Zündung des Airbag; gleichzeitig kann mit einer logischen Verknüpfung ihrer Signale eine Fehlauslösung sicher vermieden werden. Die ausgewählten und näher beschriebenen Sensoren registrieren den Druckanstieg im Vorderradreifen und die plastische Verformung der Telegabel. Damit ist eine Sensierung des Aufpralls rechtzeitig möglich. Je nach Größe und Dauer der Verzögerung kann der Druck des Luftkissens verändert werden, so dass der Motorradairbag in Abhängigkeit der Fahrgeschwindigkeit nur aufpralldämpfend oder flugbahnbeeinflussend wirkt. Testprogramme zur weiteren Entwicklung von Airbagsensoren für Motorräder werden als Forschungsbedarf näher erläutert.
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.
There is a need for detecting characteristics of pedestrian movement before car-pedestrian collisions to trigger a fully reversible pedestrian protection system. For this purpose, a pedestrian sensor system has been developed. In order to evaluate the effectiveness of the sensor system, the in-depth knowledge of car-pedestrian impact scenarios is needed. This study aims at the evaluation of the sensor system. The accident data are selected from the STRADA database. The accident scenarios available in this database were evaluated and the knowledge of the most common scenarios was developed in terms of the pedestrian trajectory, the pedestrian speed, the car trajectory, the car velocity, etc. A mathematical model was then established to evaluate the sensor system with different detective angles. It was found that in order to detect all the pedestrians in the most common scenarios on time the sensor detective angle must be kept larger than 60 degrees.
The proportion of older road users is increasing because of demographic change (in the group 65+ from current 18% to about 24% by 2030). The mobility needs of people 65+ often differ from those of younger people. Seniors (65+) are already more involved in fatal accidents than younger road users. According to the age development, the senior share of road deaths in the EU of today is increasing nearly one-fifth to one-third. From the in-depth analysis of accidents generic simulation models were developed. Attention has been paid both to psycho-physical characteristics as well as on the social and physical environment and their specifics in conjunction with seniors. By simulating the defined scenarios and varying the defined relevant parameters, accident influencing factors were examined as a basis for avoidance. In addition, the parameters were varied to show the influence from the vehicle, the pedestrian and the infrastructure to avoid the accident or to characterize the conditions for which the accident is inevitable.
Straßenseitige Fahrzeug-Rückhaltesysteme haben entsprechend der Richtlinie für passiven Schutz an Straßen durch Fahrzeug-Rückhaltesysteme (RPS) die Aufgabe, die Folgen von Verkehrsunfällen so gering wie möglich zu halten. Sie kommen dabei sowohl zum Schutz unbeteiligter Personen, des Gegenverkehrs bei zweibahnigen Straßen sowie schutzbedürftiger Bereiche neben der Straße als auch zum Schutz der Fahrzeuginsassen vor schweren Folgen infolge Abkommens von der Fahrbahn zum Einsatz. Vor dem Einsatz der unterschiedlichen Systeme muss die Wirksamkeit des jeweiligen Systems für den entsprechenden Anwendungsfall nachgewiesen werden. Dabei regeln die RPS, welche Anforderungen an welchen örtlichen Gegebenheiten erfüllt sein müssen. In DIN EN 1317 sind die zugehörigen Prüfverfahren beschrieben. Da ein normiertes Prüfverfahren nicht alle real auftretenden Unfallszenarien abdecken kann, stellte sich die Frage, wie sich Stahlschutzplanken und Betonschutzwände beim großwinkligen Anprall kleiner und leichter Fahrzeuge verhalten und wie es um die Insassensicherheit bestellt ist. Eine im Rahmen des resultierenden Forschungsprojektes durchgeführte Analyse des Unfallgeschehens ergab für das Jahr 2007 die Zahl von 25.038 polizeilich registrierten Unfällen mit Anprall gegen eine Schutzeinrichtung [Statistisches Bundesamt]. Angaben zu Anprallwinkel, Kollisionsgeschwindigkeit und Fahrzeugmasse können dieser Statistik nicht entnommen werden. Für die In-depth-Analyse wurden daher 69 Unfallgutachten zu Kollisionen mit großem Anprallwinkel (≥ 25-°) aus der DEKRA-Unfalldatenbank herangezogen. Der Schwerpunkt wurde dabei auf 39 Unfälle gelegt, die sich auf Bundesautobahnen ereignet hatten. Mit zunehmendem Anprallwinkel nahm die Unfallhäufigkeit ab. Der größte Winkel lag bei 60-°. Die Masse der anprallenden Fahrzeuge lag zwischen 750 kg und 1.935 kg. Auffällig war die Häufung von Schleuderunfällen. In 29 Fällen kam es zu einem prekollisionären Schleudervorgang. Die Analyse des Unfallgeschehens hat so gezeigt, dass Anpralle gegen passive Schutzeinrichtungen auf Bundesautobahnen mit zunehmendem Anprallwinkel seltener werden und dass der in der Norm für die Systemprüfung geforderte Maximalwinkel von 20-° das Gesamtunfallgeschehen sehr gut abdeckt. Auf Basis der gewonnenen Ergebnisse erfolgte die Festlegung einer Crash-Test-Konfiguration zur Erlangung von Erkenntnissen über die Insassensicherheit bei großwinkligen Anprallen. Dabei wurde als Grundlage der Anprallversuch TB 11 verwendet, wobei der Anprallwinkel von 20-° auf 45-° erhöht wurde. Die Kollisionsgeschwindigkeit von 100 km/h sowie die Fahrzeugmasse von 900 kg blieben unverändert. Die Anpralltests erfolgten gegen eine simulierte Ortbetonwand sowie gegen eine Stahlschutzplanke vom Typ Super-Rail-®. Die Versuchsfahrzeuge waren typgleich mit den Modellen, die für die ursprüngliche TB-11-Prüfung der Systeme verwendet wurden. Die Versuche haben gezeigt, dass beide Systeme die Rückhaltung der anprallenden Fahrzeuge sicher gewährleisteten. Für die Fahrer beider Fahrzeuge hätte aber keine Überlebenschance bestanden. Über das Schutzniveau der Fahrzeuginsassen entscheiden bei derartigen Anprallkonstellationen letztendlich das Niveau der passiven Sicherheit der anprallenden Fahrzeuge sowie das Energieabsorptionsvermögen der die Fahrgastzelle umschließenden Strukturen.