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Data concerning accidents involving personal injury which have been collected in the context of in-depth investigations on scene in the Hannover area since 1973 and in the Dresden area since 1999 represent an important basis for empirical traffic safety research. At national and international level various analyses and comparisons are carried out on the basis of "in-depth data" from the above mentioned investigations. In-depth data play a decisive role e.g. within the validation of EuroNCAP results on secondary safety (crashworthiness) of individual passenger car models. Thus, statistically sound methods of data analysis and population parameter estimation are of high importance. Since the 1st of August 1984 the "in-depth investigations on scene" in the Hannover area have been carried out according to a sampling plan developed by HAUTZINGER in the context of a research project on behalf of BASt. In the meantime a second region of in-depth investigation on scene was added with surveys in Dresden and the surrounding area. Internationally, the acronym GIDAS (German In-Depth Accident Study) is commonly used for the two above mentioned surveys. The objective of a current research project (topic of this contribution) is, among other things, to examine and adjust the previous weighting and expansion method for the two regional accident investigations to the current general conditions.
The data situation for quantifying the proportion of accidents avoided by the introduction of active safety systems is incomplete, since there is generally no data available on the accidents avoided by the technology in question. In this paper, a split-register approach is suggested and compared with the classical case-control approach known from epidemiologic applications. Provided a set of assumptions hold, which can reasonably be made in such data situations, the split register approach allows inferences on the population accident risk. For both approaches the benefits of basing the analysis on the results of a logistic regression to adjust for confounding factors are outlined. The biasing effects of violating key assumptions are discussed and the split-register approach is demonstrated using the example of the active safety system ESP with data from the German in-depth accident study GIDAS.
Das Emissionsmodul des PC-Berechnungsverfahrens zur Abschätzung von verkehrsbedingten Schadstoffimmissionen (MLuS 02) basiert auf dem Handbuch für Emissionsfaktoren des Umweltbundesamtes. Aufgabe war die Berechnungen mit dem neuen Handbuch kompatibel zu machen. Die Aufgabenstellung gliederte sich in 3 Teile: i) Implementierung der neuen Version des Handbuchs in das Emissionsmodul , ii) Umwandlung des Emissionsmodul von ACCESS in Delphi, gleichzeitige Beseitigung von Inkonsistenzen in der Berechnung , iii) Implementierung des neuen Emissionsmoduls, Durchführung von Systemtests und Modifikationen, Aktualisierung des Merkblatts MLuS 02. Bei der Aktualisierung des Handbuches wurden folgende redaktionelle Änderungen vorgenommen: Herausnahme der 98-Perzentile - außer für das NO2 - im tabellarischen Ausdruck, Erstellung eines Installationsprogramms, Aktualisierung des Merkblatts MLuS 02 gemäß der vorgenommenen Fortschreibung. Im Vergleich zur vorherigen Version ergeben sich folgende Änderungen: Eingangsdaten und ihre Klassifizierung: Dem Emissionsmodul wurden bisher per ASCII-Schnittstelle die folgenden Eingangsdaten übergeben: Bezugsjahr, Gebiets-ID, Straßenkategorie-ID, Fahrbahnlängsneigungs-ID, Anzahl der Fahrspuren, DTV, DTV-ID, Lkw-Anteil, Lkw-Anteil-ID, Kraftstoffszenario-ID, Stop+Go-ID, Das Bezugsjahr wurde rückwirkend auf das Jahr 2000 begrenzt, so dass die Gebietsunterscheidung Ost/West entfallen kann. Längsneigungsklassen: Hinsichtlich der Längsneigungsklassen enthält das Modell die in Tabelle2 (siehe Längsneigungsklassen im Abschlussbericht) dargestellte Klassifizierung. Fahrzeugkategorien: Das Emissionsmodul unterscheidet intern folgende Fahrzeugkategorien: Pkw, Leichte Nutzfahrzeuge (Gesamtmasse bis 3,5 t), LNfz genannt, Schwere Nutzfahrzeuge (Gesamtmasse über 3,5 t), im folgenden SNfz genannt. Umwandlung des Emissionsmodul von ACCESS in Delphi: Nachdem die Änderungen im Emissionsmodul durchgeführt worden waren, wurden alle Visual Basic Codes von ACCESS nach Delphi verlagert. Implementierung des neuen Emissionsmoduls in das MLuS 02: Das Emissionsmodul wurde in das MLuS 02 Programm implementiert. Ruß wird aus dem MLuS entfernt (Außerkraftsetzung der 23. BImSchV).
The need for improved EU level accident information and data was identified in the EU White Paper on Transport Policy (2001)1 and detailed in the Road Safety Action Plan (2003)2. The plan specifies that the EC will develop a road safety observatory to coordinate data collection within an integrated framework.
In order to improve the protection of children transported in cars, within the CHILD programme (GR3D-CT2002-00791) real world road accidents are thoroughly analysed and then reconstructed in laboratory. Prior to comparing injury severities of real victims to physical parameter values measured on the dummies, the quality of the reconstructions is evaluated by experts who use their experience based on the investigation of numerous and various accidents. This paper presents a new tool aiming at better evaluating and validating accident reconstructions. It is based on statistical evaluation of vehicle deformations which gives weighing factors for every part of the car body structure finally leading to a specific Reconstruction Quality Score (RQS indicator). Furthermore, the reliability of this score, depending on the number of measured points, can be established. This tool includes a function aiming at adjusting the speed for a further reconstruction and at defining the launching speed and the pulse shape for complementary sled tests. Finally, the functions of the RQS software and database are presented.
This study is aimed to investigate the correlations of impact conditions and dynamic responses with the injuries and injury severity of child pedestrians by accident reconstruction. For this purpose, the pedestrian accident cases were selected from Sweden and Germany with detailed information about injuries, accident cars, and accident environment. The selected accident cases were reconstructed using mathematical models of pedestrian and passenger car. The pedestrian models were generated based on the height, weight, and age of the pedestrian involved in accidents. The car models were built up based on the corresponding accident car. The impact speeds in simulations were defined based on the reported data. The calculated physical quantities were analyzed to find the correlation with injury outcomes registered in the accident database. The reconstruction approaches are discussed in terms of data collection, estimating vehicle impact speeds, pedestrian moving speeds and initial posture, secondary ground impact, validity of the mathematical models, as well as impact biomechanics.
This paper describes the methodology of In-Depth Investigation in Germany on the example of GIDAS (German In-Depth Accident Study). Since 1999 in Germany a joint project between FAT (Forschungsvereinigung Automobiltechnik or Automotive Industry Research Association) and BASt (Bundesanstalt für Straßenwesen or the Federal Road Research Institute) is being carried out in Hannover and Dresden. The methodology of this project is based on a statistically orientated procedure of data sampling (sampling plan, weighting factors). The paper describes the possibilities of such in-depth investigation on the results of the offered title. The accident cases were collected randomly within GIDAS at Hannover. There are more cases existing from previous investigation started in 1985 under the same methodology. The portion of rollovers can be established at 3.7% of all accidents with casualties in the year 2000. For the study 434 cases of car accidents with rollovers are used for a detail comprehensive analysis. The accidents happened in the years 1994 to 2000 in the Hannover area. The injury distribution will report about 741 occupants with rollover accident event. The presented paper will give an overview of the accident situations following in rollover movements of cars. The distributions of injury frequencies, injury severity AIS for the whole body and for the body regions of occupants will be presented and compared to technical details like the impact speed and the deformation pattern. The speed of the car was determined at the point of rollover and on the point of accident initiency. The characteristics of the kinematics followed in a rollover movement are analyzed and the major defined types of rollover will be shown in the paper. The paper will describe the possibilities of In-Depth Investigation methods for the approach of finding countermeasures on the example of car accidents with rollover and explaining the biomechanics of injuries in rollover movements.
This paper reviews briefly the evolution of the investigation of transport accidents from the early beginnings when individual events were studied but systematic data was not collected. In the transport modes other than on the roads, accident investigation early on, even of single events, was important in introducing safety improvements. Road accidents, however, evolved enormously with the growth of car ownership without any comparable political response to the consequent deaths and injuries, equivalent to what happened with the other modes. From the 1950s data bases started to contribute to our knowledge of the epidemiology of road traffic injuries, and in-depth sample studies have contributed much to the body of knowledge in the last 30 years. However, even the basic input and output variables of a crash, its severity and the seriousness of the outcomes in terms of injuries and their consequences are not complete or agreed upon. Issues of experimental design and sampling are discussed. It is proposed that the most important area for current research to address is the effect of population variations on injury outcomes. The need for the establishment of good data bases for active safety issues is emphasised with the consequent need for better links between the research community and the police.