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Powered Two Wheeler (Motorcycle) crashes are overrepresented in EU, England, and United States casualty statistics for both fatal and serious injuries. While regional geographic differences are evident for motorcycle size, type, and engine displacement, the casualty statistics consistently indicate significantly higher injury rates for all motorcycle riders when compared to car occupants. Accident analysis and reconstruction of these motorcycle crashes is a necessary process to gain further understanding of potential injury mitigation strategies. This paper focuses on the analysis of the rider post impact trajectory in the immediate moments following a crash. The rider and motorcycle, while loosely coupled by seating position leading up to a crash, quickly decouple as the crash forces develop. As a result, the rider moves relative to the motorcycle and relative to the collision partner. This movement, or trajectory, is primarily influenced by the type and configuration of the impact, the type and configuration of the motorcycle and collision partner, and the speeds involved. Understanding the rider's post impact trajectory will assist in the development of injury mitigation strategies. Both the free flight trajectory of the rider and the rider's trajectory as influenced by interaction with the motorcycle and collision partner are examined. Rider trajectories in full scale crash testing and real world motorcycle crashes are both studied and presented. The resulting physical evidence that can be observed by an accident analyst is discussed. The application of projectile motion physics is analyzed and the necessary input parameters, such as initial launch angle, are studied. This study will assist in understanding the post-impact dynamics of a motorcyclist, and will provide useful information to analysts evaluating real world crashes.
Detailed anthropometric data of pregnant women have been collected and used in the development of a computational model of the pregnant occupant model "Expecting". The model is complete with a finite element uterus and multi-body fetus, which is a novel feature in the models of this kind. The computational pregnant occupant model has been validated and used to simulate a range of impacts. The strains developed in the utero-placental interface are used as the main criteria for fetus safety. Stress distributions due to inertial loading of the fetus on the utero-placental interface play a role on the strain levels. Inclusion of fetus model is shown to significantly affect the strain levels in the utero-placental interface. This series of studies has led to the design of seatbelt features specifically for the pregnant women to enable them use the seatbelt correctly and comfortably.
Since a number of human models have been developed it appears sensible to use these models also in the accident analysis. Especially the understanding of injury mechanisms and probably even injury risk curves can be significantly improved when interesting accidents are reconstructed using human body models. However, an important limitation for utilising human models for accident reconstruction is the effort needed to develop detailed FE models of the accident partners or to prepare the human model reconstruction by running physical accident reconstructions. The proposed approach for using human models for accident reconstruction is to use simplified and parametric car models. These models can be adapted to the crash opponents in a fast and cost effective way. Although, accuracy is less compared to detailed FE models, the relevant change in velocity can be simulated well, indicating that the computation of a detailed crash pulse is not needed. Two frontal impact test accidents that were reconstructed experimentally and using the parametric car models are indicating sufficient correlation of the adapted parametric car models with the full scale crash reconstructions. However, further developments of the parametric models to be capable for the use in lateral impacts and rear impacts are needed. For the PC Crash simulation runs the output sampling rate is too large to allow sufficient analysis. In addition the performance appears to be too general.
In North America, frontal crash tests in both the regulatory environment and consumer-based safety rating schemes have historically been based on full-width and moderate-overlap (40%) vehicle to barrier impacts. The combination of improved seat-belt technologies, notably belt tensioning and load limiting systems, together with advanced airbags, has proven very effective in providing occupant protection in these crash modes. Recently, however, concern has been raised over the contribution of narrower frontal impacts, involving primarily the vehicle corners, to the incidence of fatality and serious injury as a result of the potential for increased occupant compartment intrusion and performance limitations of current restraint systems. Drawing on data documented in the National Automotive Sampling System (NASS)/ Crashworthiness Data System (CDS) for calendar years 1999 to 2012, the present study examines the characteristics of existing and proposed corner crash test configurations, and the nature of real-world collisions that approximate the test environments. In this analysis, particular emphasis is placed on crash pulse information extracted from vehicle-based event data recorders (EDR's).
Event data recorders (EDRs) are a valuable tool for in-depth investigation of traffic accidents. EDRs are installed on the airbag control module (ACM) to record vehicle and occupant information before, during, and after a crash event. This study evaluates EDR characteristics and aims at better understanding EDR performance for the improvement of accident reconstruction with more reliable and accurate information regarding accidents. The analysis is based on six crash tests with corresponding EDR datasets.
The utilisation of secondary-safety systems to protect occupants has attained a very high level over the past decades. Further improvements are still possible, but increasingly minor progress is only to be had with a high degree of effort. Thus, a key aspect must be the impact to overall safety in an accident. If reliable information is available on an imminent crash, measures already taken in the pre-crash phase can result in a significantly great influence on the outcomes of the crash. With this background preventive measures are the key to a sustainable further reduction of the figures of crash victims on our roads. This paper aims to show a preventive approach that can contribute to lessening the consequences of a crash by creating an optimum interaction of measures in the fields of primary and secondary safety. To further enhance vehicle safety, driver assistant systems are already available that warn the driver of an imminent front-to-rear-end crash. The next step is to support him in his reactions or if he fails to react sufficiently, to even initiate an automatic braking when the crash becomes unavoidable. Automatic pre-crash braking can, in an ideal situation, fully prevent a crash or can significantly reduce the impact speed and thus the impact energy (and the severity of the accident). If a vehicle is being braked in the pre-crash phase, the occupants are already being pre-stressed by the deceleration. The information available about the imminent crash can be used to activate the belt tensioners and likewise other secondary safety systems in the vehicle right before the impact. The pre-crash deceleration also causes the front of the vehicle to dip. Conventional crash tests do not take this specific impact situation into consideration. This is why, for example, the influences of the pre-crash displacements of the occupants are not recorded in the test results. Furthermore, a reproducible representation of the benefit of the vehicle safety systems which prepare the occupants for the imminent impact is not possible. In order to demonstrate the functions of automated pre-crash braking and to investigate the differences during the impact as a consequence of the altered occupant positions as well as the initiation of force and deformations of the vehicle front, DEKRA teamed up with BMW to carry out a joint crash test with the latest BMW 5 series vehicle. It involved the vehicle braking automatically from a starting test speed of 64 km/h (corresponding to the impact speed set by Euro NCAP) down to 40 km/h. The test was still run by the intelligent drive system of the crash test facility. This required several modifications to be made to the test facility as well as to the vehicle. The paper will describe and discuss some relevant results of the crash test. In addition, the possible benefits of such systems will also be considered. The test supplemented the work of the vFSS working group (vFSS stands advanced Forward-looking Safety Systems).
Past European collaborative research involving government bodies, vehicle manufacturers and test laboratories has resulted in a prototype barrier face called the Advanced European Mobile Deformable Barrier (AE-MDB) for use in a new side impact test procedure . This procedure offers a better representation of the current accident situation and, in particular, the barrier concept is a better reflection of front-end stiffness seen in today- passenger car fleet compared to that of the current legislative barrier face. Based on the preliminary performance corridors of the prototype AE-MDB, a refined AE-MDB specification has been developed. A programme of barrier to load cell wall testing was undertaken to complete and standardise the AE-MDB specification. Barrier faces were supplied by the four leading manufacturers to demonstrate that the specification could be met by all. This paper includes background, specification and proof of compliance.
The main objective of EC CASPER research project is to reduce fatalities and injuries of children travelling in cars. Accidents involving children were investigated, modelling of human being and tools for dummies were advanced, a survey for the diagnosis of child safety was carried out and demands and applications were analysed. From the many research tasks of the CASPER project, the intention of this paper is to address the following: • In-depth investigation of accidents and accident reconstruction. These will provide important points for the injury risk curve, in order to improve it. Different accident investigation teams collected data from real road accidents, involving child car passengers, in five different European countries. Then, a selection of the most appropriate cases for the injury risk curve and the purposes of the project was made for an in-depth analysis. The final stage of this analysis was to conduct an accident reconstruction to validate the results obtained. The in-depth analysis included on-scene accident investigation, creating virtual simulations of the accident/possible reconstruction, and conducting the reconstruction. In the cases of successful reconstructions, new points were introduced to the injury risk curves. Accident reconstructions of selected cases were carried out in test laboratories as the next step following in-depth road accident investigation. These cases were reconstructed using similar child restraint systems (CRS) and the same type make and model as in the real accidents. Reconstructing real cases has several limitations, such as crash angle, cars" approximation paths and crash speed. However, a few changes and applications on the testing conditions were applied to reduce the limitations and improved the representations of the real accidents. After conducting the reconstructions, a comparison between the deformations of the cars on the real accident and the vehicles from the reconstructions was made. Additionally, a correlation between the data captured from the dummies and the injury data from the real accident was sought. This finalises an in-depth analysis of the accident, which will provide new relevant points to the injury risk curve. The CASPER project conducted a large research programme on child safety. On technical points, a promising research area is the developing injury risk curves as a result of in-depth accident investigations and reconstructions. This abstract was written whilst the project was not yet finished and final results are not yet known, but they will be available by the time of the conference. All the works and findings will not necessarily be integrated in the industrial versions of evaluation tools as the CASPER project is a research program.
Although the number of road accident casualties in Europe (EU27) is falling the problem still remains substantial. In 2011 there were still over 30,000 road accident fatalities. Approximately half of these were car occupants and about 60 percent of these occurred in frontal impacts. The next stage to improve a car's safety performance in frontal impacts is to improve its compatibility. The objective of the FIMCAR FP7 EU-project was to develop an assessment approach suitable for regulatory application to control a car's frontal impact and compatibility crash performance and perform an associated cost benefit analysis for its implementation. This paper reports the cost benefit analyses performed to estimate the effect of the following potential changes to the frontal impact regulation: • Option 1 " No change and allow current measures to propagate throughout the vehicle fleet. • Option 2 " Add a full width test to the current offset Deformable Barrier (ODB) test. • Option 3 " Add a full width test and replace the current ODB test with a Progressive Deformable Barrier (PDB) test. For the analyses national data were used from Great Britain (STATS 19) and from Germany (German Federal Statistical Office). In addition in-depth real word crash data were used from CCIS (Great Britain) and GIDAS (Germany). To estimate the benefit a generalised linear model, an injury reduction model and a matched pairs modelling approach were applied. The benefits were estimated to be: for Option 1 "No change" about 2.0%; for Option 2 "FW test" ranging from 5 to 12% and for Option 3 "FW and PDB tests" 9 to 14% of car occupant killed and seriously injured casualties.
Teil 1: Ziel des vorliegenden Forschungsprojektes ist es, Schutzeinrichtungen auf Brücken mit einem sehr hohen Aufhaltevermögen nach DIN EN 1317 zu testen und dabei die auftretenden Kräfte zu messen. Gleichzeitig sollen Erkenntnisse über das Verhalten der Schutzeinrichtungen mit einem sehr hohen Aufhaltevermögen bei begrenzten Platzverhältnissen gewonnen werden. In diesem Forschungsprojekt haben sechs Schutzeinrichtungen den Nachweis ihrer Funktionsfähigkeit gemäß DIN EN 1317 erbracht. Anhand der insgesamt durchgeführten 27 Anprallprüfungen an 14 Systemen zeigt sich, dass die Entwicklung von Schutzeinrichtungen mit einem sehr hohen Aufhaltevermögen bei gleichzeitig begrenztem Wirkungsbereich schwierig ist. Kommen weitere Randbedingungen, wie z.B. Lärmschutz oder Fortführung auf der Strecke hinzu, so zeigt sich, dass derzeit keines der geprüften Systeme universell einsetzbar ist. Für die Verwendung muss vielmehr im Einzelfall geprüft werden, ob und welches System eingesetzt werden kann. Vor diesem Hintergrund wird empfohlen, dass möglichst frühzeitig eine enge Abstimmung der Brückenplanung mit der Streckenplanung erfolgt, um sinnvolle und verkehrssichere Lösungen zu bekommen. Daher sollte nach Möglichkeit bereits in der Planung eines Brückenbauwerkes die Schutzeinrichtung unter Berücksichtigung aller anderen Randbedingungen einbezogen werden. Eine separate Planung der Schutzeinrichtung im Anschluss oder gar die Berücksichtigung als letztes Element des Bauwerks kann dazu führen, dass keine geeignete Schutzeinrichtung zur Verfügung steht. Die Kraftmessungen beruhen auf Einzelereignissen, zeigen aber dennoch die Größenordnung der beim Anprallvorgang entstehenden Einwirkungen und bestätigen damit die vorherigen Untersuchungen. Aus den Messwerten wurden Vorschläge erarbeitet, für welche Einwirkungen Brücken bemessen werden sollen, auf denen die hier diskutierten Schutzeinrichtungen installiert werden sollen. Die Größenordnung der Werte zeigt, dass die Einwirkungen bei H4b-Systemen um bis zu sechsmal höher liegen als der seinerzeitige Lastansatz des DIN-Fachberichts 101 "Einwirkungen" Ausgabe 2003. Damit wurden wichtige Eckwerte für die zukünftige Bemessung neuer Brücken beziehungsweise für das Nachrüsten bestehender Brücken gewonnen. Die Ergebnisse wurden bereits in der Fortschreibung des neuen DIN-Fachberichtes von 2009 berücksichtigt. Die untersuchten und hier vorgestellten Schutzeinrichtungen erfüllen die Anforderungen an Aufhaltefähigkeit und Insaßenschutz und weisen Kraftmessungen auf. Wünschenswert wären weitergehende Entwicklungen, die auch weitere Anforderungen erfüllen, die in diesem Bericht aufgeführt sind. Da die Anforderungen an die Verkehrssicherheit nicht gleichbleibend sind, sondern sich den Anforderungen der Entwicklung anpassen, wird auch zukünftig eine Weiterentwicklung der Schutzeinrichtungen mit sehr hohem Aufhaltevermögen erforderlich sein. So werden die Anforderungen an das Aufhaltevermögen steigen, wenn zum Beispiel Schwerfahrzeuge mit höheren Lasten auf den Straßen fahren werden. rnTeil 2: Die Untersuchungen haben das Ziel, Schutzeinrichtungen bereitzustellen, die in der Lage sind, auch sehr schwere LKW vor dem Absturz von Brücken zu bewahren. Dazu galt es, technische Randbedingungen für die Entwicklung von Schutzeinrichtungen durch die Industrie vorzugeben und geeignete Prüfverfahren zur Sicherstellung der Einsatzfähigkeit auf deutschen Brückenbauwerken zu entwickeln. Im Rahmen des vorliegenden Projektes konnte erstmals gezeigt werden, dass Schutzeinrichtungen, die in einer realen Anprallprüfung der höchsten Aufhaltestufe entsprechend DIN EN 1317 für sehr schwere LKW nachgewiesen haben, auf Brückenbauwerken in Deutschland installiert werden können, ohne inakzeptable Schäden an den Brückenkappen befürchten zu müssen. Darüber hinaus konnten erstmals die Kräfte gemessen werden, die beim Anprallvorgang auf das Bauwerk einwirken. Eine Anprallprüfung stellt zwar ein Einzelergebnis dar. Dennoch zeigen diese Messungen die Größenordnung der beim Anprallvorgang entstehenden Einwirkungen. Aus den Messwerten wurde ein Vorschlag zur Festlegung der bei der statischen Auslegung eines Brückenbauwerks anzusetzenden Einwirkungen (Kräfte und Momente) erarbeitet, wenn auf dem Bauwerk Schutzeinrichtungen mit sehr hohem Aufhaltevermögen installiert werden sollen. Die genauen Werte der ermittelten Einwirkungsgrößen gelten spezifisch für die untersuchte Schutzeinrichtung. Die Größenordnung der Werte lässt sich jedoch auf andere Schutzeinrichtungen mit sehr hohem Aufhaltevermögen auf Brücken übertragen. Der Vorschlag sieht Einwirkungen vor, die etwa 3 bis 4 mal höher liegen, als der derzeitige Lastansatz des DIN-Fachberichts 101 "Einwirkungen".