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Internationally, the need is expressed for harmonized traffic accident data collection (PSN, PENDANT, etc.). Together with this effort of harmonization, traffic accident investigation moves more and more in the direction of accident causation. As current methods only partly address these needs, a new method was set up. The main characteristics of this method are: • Accident/injury causation (associated) factors can objectively be identified and quantified, by comparison with exposure information from a normal population. • All relevant accident and exposure data can be included: human-, vehicle-, and environmental related data for the pre-crash, crash and postcrash situation (the so-called Haddon matrix). The level of detail can be chosen depending on interest and/or budget, which makes the method very flexible. In this paper the accident collection and control group method are presented, including some of the achieved results from a pilot study on 30 truck accidents and 30 control locations. The data were analyzed by using cross-tabulations and classification-tree analysis. The method proved useful for the identification of statistically significant causational aspects.
Portugal has the highest rate of road fatalities in Europe (2002 and for Eur-15 - CARE database). For this highest rate, the accidents involving pedestrians and motorcycle occupants have a higher contribution than the European average. In the last years, especially accidents involving motorcycles have been investigated and currently two different projects are being carried out, one related with motorcycles accidents and the other with pedestrian accidents. In these projects, countermeasures among others to reduce the fatalities between these two types of road users are being studied. These accidents are investigated with the commercial accident reconstruction software PCCRASH but also new methodologies based on multibody dynamics are in development in order to more accurately study these two types of accidents. In this paper, the methodologies in use for accident reconstruction and new methodologies in development are presented. Speeding his found to be one of the major causes of road fatalities for pedestrians and motorcycle occupants. In the case of motorcycle accidents, these involve mainly young drivers. Aspects as social behavior are also important to understand the causes of some of these accidents. Some examples of accidents occurring in Portugal, involving especially motorcycles and pedestrians are presented and discussed.
Accidents involving two wheels vehicles represent one of the more important types of accidents in Europe. These accidents are usually not easy to reconstruct specially for the analysis of the injuries and its correlation with accident dynamics and evidences. Different methodologies are applied in this work for the reconstruction of two wheeler accidents, especially accident involving motorcycles. From the typologies of road evidences like skid marks, to the use of Pc-Crash and the use of Madymo models, different reconstruction of real accidents are presented. One of the questions that sometimes arise for legal purposes when some type of head injuries arise is if the occupant was wearing or not a helmet. The correlation of head injuries with the use of the helmet is a very important issue, therefore an important legal aspect. One of the key questions for the reconstructions that is difficult to analyze, is if the vehicle occupant, was or not, wearing the helmet. Based on the previously collected information, a generic model of a helmet was developed on CAD 3D, followed by its conversion into finite elements, all in order to perform impact tests using the Madymo software that would help improve the helmet- safety, but that also can be used as a tool in accident reconstruction.
One of the major problems of road safety in Europe is the powered two wheelers accidents. One of the European countries with one of the highest rates is Portugal where in 2006, mopeds and motorcycles fatalities represented 27% of all road users deaths. In this work, a deep analysis and overview of the current state of mopeds and motorcycles accidents for the 2004-2006 period is presented. Within this period 830 PTW occupants die, 2958 have been severely injured and 25000 suffer slight injuries. A detailed analysis of the conditions of these accidents has been carried out, using the data of the national accident database. This analysis provides global information, about geographic environmental conditions, driver- characteristics among others. From this data detailed information is obtained allowing to know when, where and who. In order to answer the question why more a widely collection of data has been collect for 70 accidents. The data has been collected using OECD methodology. For these accidents a detailed reconstruction has been carried out, what is especially important for fatal accidents where for instance speed in an important factor. From these collection and analysis of data a wider overview of facts and measures are extracted. Among them, some are emphasized such as that the quality and non-use of helmets plays an important role in severe and fatal accidents especially for accidents involving moped vehicles, or speed is the most important factor in fatal accidents involving motorcycles. Concerning motorcycle accident reconstruction, different tools can be used depending of the accident scenario and complexity. For simple cases, with specific characteristics, analytical formulation based in vehicle crash dynamics can be use in order to determine the impact speed of the vehicles impact, analysing the skid marks, deformations, victims rest position and considering parameters (EES, vehicle deceleration, etc). Aspects such as the energy absorption capability of motorcycles are also discussed. In the general cases the accident reconstruction software Pc-Crash has been used for the reconstruction of the accident. In very complex cases, has for instance the impact between motorcyclist and barriers, Madymo software is used especially to determine speed from injuries. An example of the impact of a motorcyclist and a motorcyclist-friendly barrier is present to illustrate the benefits and limitations of such systems.
An analysis of NASS and FARS was conducted to determine crash conditions that involved injuries that are not currently being directly addressed by vehicle safety standards or by consumer information test protocols. Analysis of both field data and US NCAP tests were conducted to determine the relative safety provided by seating position and by vehicle model year. Opportunities for improvements were determined by crash categories with large populations of injuries that were not addressed by safety tests or smaller numbers that were increasing in frequency. Areas of opportunities include improved occupant restrain in rollovers, improved frontal protection for rear seat occupants and improved fire prevention in frontal and rollover crashes.
This paper gives an overview of the in-depth crash investigation activity conducted by the Centre for Automotive Safety Research (CASR) at the University of Adelaide, in South Australia. Recent changes in method include: an expansion in on-call hours for the crash investigation team, providing the option of a phone interview for crash participants to discuss the crash, and downloading objective crash data from vehicle airbag control modules. These changes have resulted in: increased representativeness of crashes by hour of day; a decrease in the over-representation of fatal crashes in our sample; an increase in the proportion of crashes that involved a pedestrian, bicycle or scooter (moped); an increase in the proportion of crash participants consenting to an interview; and an increase in the objective data available, through airbag control module downloads. Our in-depth crash investigations enabled research into road departures that found barriers were a more feasible solution than clear zones for eliminating serious and fatal injury resulting from run off road crashes.
Ziel der Untersuchung war es, ein standardisiertes Verfahren zur Abschätzung der Auswirkungen von Ortsumgehungen auf die Verkehrssicherheit zu entwickeln. Dieses Verfahren soll den Netzzusammenhang berücksichtigen und eine Bilanzierung der Verkehrssicherheitswirkungen von Ortsumgehungen ermöglichen. Dabei sind auch Umbaumaßnahmen und veränderte Verkehrsregelungen in den Ortsdurchfahrten, sofern diese im Zusammenhang mit der Ortsumgehung realisiert werden, zu berücksichtigen. Damit soll eine verbesserte Entscheidungsgrundlage für die Bewertung von Ortsumgehungen aus Verkehrssicherheitssicht zur Verfügung gestellt werden. Das standardisierte Verfahren wurde anhand von konkreten Beispielen auf seine Aussagegenauigkeit hin überprüft. Hierfür wurden die realen Verkehrssicherheitswirkungen von 21 umgesetzten Ortsumgehungen in einem definierten relevanten Straßennetz erhoben und bilanziert. Bei der Bilanzierung der Verkehrssicherheitswirkungen der 21 Beispiele im Vorher-Nachher-Vergleich zeigte sich, dass die Knotenpunkte im Zuge der Ortsumgehungen wesentlich dazu beitragen, ob der Vorher-Nachher-Vergleich positiv oder negativ ausfällt. Resümierend kann festgehalten werden, dass über das (neue) Berechnungsverfahren die Möglichkeit besteht, die Auswirkungen von Ortsumgehungen auf die Verkehrssicherheit mit relativ geringem Aufwand abzuschätzen, wenn die Verkehrsbelastungen für den Vorher-Fall (ohne Ortsumgehung) und für den Nachher-Fall (mit Ortsumgehung) zur Verfügung stehen. Das Verfahren weist die voraussichtlichen Verkehrssicherheitswirkungen, die durch den Bau einer Ortsumgehung im Straßennetz entstehen, in ihrer Tendenz und den Absolutzahlen genauer aus als das derzeit angewendete Verfahren nach EWS.
Das Fahrverhalten ändert sich mit zunehmendem Alter. Damit ändern sich auch die Risiken. Neben den jungen Fahranfängern im Alter von 18 bis etwa 25 Jahren stellen Fahrer über 75 Jahre eine besondere Problemgruppe dar. Mit zunehmender Zahl alter Fahrer (demographische Entwicklung plus Zunahme der Fahrerlaubnisinhaber in dieser Altersgruppe) besteht hier in naher Zukunft akuter Handlungsbedarf. Ansatzpunkte gibt es im gesamten Mensch-Maschine-Umwelt-System. Fahrzeuge müssen vermehrt im Hinblick auf alte Fahrer konstruiert und optimiert werden. Die Infrastruktur muss den Bedürfnissen einer eindeutigen Verkehrsführung angepasst werden. Aber nur, wenn der Mensch selbst geeignet ist, als Fahrer am Straßenverkehr teilzunehmen, ist ein Gewinn bei der Verkehrssicherheit zu erwarten. Dies muss gewährleistet werden. Wichtig ist, dass die Problematik der alten Fahrer als solche erkannt wird und schnell eine tragfähige Lösung für die Zukunft gefunden wird.
A set of recommendations for pan-European transparent and independent road accident investigations has been developed by the SafetyNet project. The aim of these recommendations is to pave the way for future EU scale accident investigation activities by setting out the necessary steps for establishing safety oriented road accident investigations in Member States. This can be seen as the start of the process for establishing road accident investigations throughout Europe which operate according to a common methodology. The recommendations propose a European Safety Oriented Road Accident Investigation Programme which sets out the procedures that need to be put in place to investigate a sample of every day road accidents. They address four sets of issues; institutional addressing the characteristics of the programme; operational describing the conditions under which data isrncollected; data storage and protection; and reports, countermeasures and the dissemination of data.rn
The main focus of the benefit estimation of advanced safety systems with a warning interface by simulation is on the driver. The driver is the only link between the algorithm of the safety system and the vehicle, which makes the setup of a driver model for such simulations very important. This paper describes an approach for the use of a statistical driver model in simulation. It also gives an outlook on further work on this topic. The build-up process of the model suffices with a distribution of reaction times and a distribution of reaction intensities. Both were combined in different scenarios for every driver. Each scenario has then a specific probability to occur. To use the statistical driver model, every accident scene has to be simulated with each driver scenario (combinations of reaction times and intensities). The results of the simulations are then combined regarding the probabilities to occur, which leads to an overall estimated benefit of the specific system. The model works with one or more equipped participants and delivers a range for the benefit of advanced safety systems with warning interfaces.