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Institut
NASS: the glass is half full
(2007)
The National Accident Sampling System (NASS) was born in the late 1970s. It was based on a substantial amount of experience and analysis of what was needed in the United States to understand the safety challenges of our highways. This work also showed how to collect high quality and useful crash data efficiently. Unfortunately, when Ronald Reagan - a President who believed in limited government - was elected, any hope of full funding for NASS was lost. The concept of 75 teams investigating about 18,000 serious crashes in detail annually was never realized. The system got up to 50 teams, then was cut to 36, and finally to 24 teams investigating fewer than a quarter of the originally anticipated number of crashes per year. Despite this, the NASS investigations provide a rich source of data, collected according to a sophisticated statistical sampling system to facilitate detailed national estimates of road casualties on our nation- highways and their causes. In addition, changes have been made in recent years to increase the number of more serious crashes of recent model vehicles to make the results more relevant to improving vehicle safety. A recent, detailed examination of hundreds of rollovers has provided considerable insight into rollover casualties and into what can be done to reduce them. Some of these results will be presented that show the value of the NASS system. Our experience with NASS and the Fatal Accident Reporting System (FARS) suggests a number of improvements that could be made in the United States" crash data systems. It also provides justification for a doubling or tripling of our national expenditures on crash data collection.
Der zweite Kinderunfallatlas der Bundesanstalt für Straßenwesen beschreibt die Unfallbelastung der bei Straßenverkehrsunfällen verunglückten Kinder für alle Kreise, Städte und Gemeinden in Deutschland. Für die Jahre 2006 bis 2010 wird die regionale Verteilung der Kinderverkehrsunfälle analysiert; darüber hinaus werden die Daten mit denen der Jahre 2001 bis 2005 in Beziehung gesetzt. Dadurch ist es möglich, die Verkehrssicherheitssituation von Kindern vor Ort mit der in anderen Kreisen und Gemeinden gleicher Größe zu vergleichen und somit einen Hinweis darüber zu erhalten, ob und wie sich die Unfallbelastung vor Ort von anderen unterscheidet.
Kinderverkehrsunfälle sind über die Bundesrepublik Deutschland nicht gleichverteilt, vielmehr gibt es je nach Verkehrsteilnahmeart Regionen mit mehr oder weniger Unfällen. Eine regionale Analyse der Daten ist wichtig, um regionale Unfallschwerpunkte zu erkennen, analysieren und gegebenenfalls entfernen beziehungsweise entschärfen zu können. Insbesondere in Zeiten begrenzter finanzieller Mittel ist eine solche Fokussierung sinnvoll. Ein Überblick der regionalen Verteilung von Unfällen erlaubt zudem eine Abschätzung, über besonders wirksame Maßnahmen. Aber auch für Verbände, die sich mit Verkehrssicherheit beschäftigen, Eltern und Lehrer ist eine Positionsbestimmung, wie sich die Situation vor Ort im Vergleich zu anderen Gebieten darstellt, zur Orientierung wichtig. Hierdurch wird auch diesem Personenkreis eine Argumentationshilfe für die Einforderung entsprechender Maßnahmen an die Hand gegeben. In vorliegendem Kinderunfallatlas wurden die Unfalldaten der zwischen 2001 bis 2005 im Straßenverkehr verunglückten Kinder je 1.000 der Altersgruppe für alle 439 Landkreise und kreisfreien Städte berechnet. Zudem erfolgte eine Analyse der Daten von 2003 bis 2005 auf Gemeindeebene. Basierend auf der Einwohnerzahl der Gemeinden in Bezug auf die Anzahl der verunglückten Kinder/1.000 der Altersgruppe wurden 6 Gruppen von Gemeinden gebildet. Die erste Gruppe setzt sich aus den 15 Großstädten der Bundesrepublik zusammen. Die letzte Gruppe umfasst 1.705 Orte unter 10.000 Einwohnern. Die Auswertung zeigt, dass Kinderunfälle in der Bundesrepublik nicht gleichmäßig verteilt sind, vielmehr zeigt die bevölkerungsbezogene Analyse auf Kreisebene ein deutliches Nord-Süd-Gefälle. Dennoch trifft diese Aussage nicht für alle Arten der Verkehrsteilnahme zu. Während Kinder als Fußgänger besonders häufig in Nordrhein-Westfalen und großen Städten der Bundesrepublik verunglücken, sind sie als Radfahrer in den Regionen in Schleswig-Holstein, Niedersachen, Mecklenburg-Vorpommern und Brandenburg besonders gefährdet. Als Mitfahrer in Pkw verunglücken die meisten Kinder in den ländlichen Gebieten Bayerns und den östlichen Regionen der Bundesrepublik. Zusätzlich lässt sich auf Gemeindeebene zeigen, dass das auf die Altersgruppe bezogene Risiko für Fußgänger mit der Größe einer Stadt zunimmt, während Radfahrer in sogenannten Mittelstädten besonders häufig verunglücken. Als Mitfahrer in Pkw tragen Kinder in sehr kleinen Orten unter 10.000 Einwohnern ein deutlich erhöhtes Risiko. Auf der Grundlage dieses Berichtes ist es erstmals möglich die spezifische Verkehrssicherheitssituation von Kindern nicht nur im Vergleich zu anderen Kreisen sondern auch im Vergleich zu anderen Gemeinden gleicher Größe zu analysieren. Abgesehen davon, dass die Verantwortlichen vor Ort erstmals in die Lage versetzt werden, die spezifische Situation einzustufen, lassen sich auf dieser Grundlage Maßnahmen erheblich gezielter und ökonomisch sinnvoller einsetzen. Eine entsprechende Wiederholung der Berechnungen sollte in fünf Jahresabständen erfolgen.
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.
A lot of factors are related to a road traffic accident; particularly human factors such as road use characteristic, driving maneuver characteristic and safety attitude are the major ones. As a random factor is also included, so it is necessary to minimize the contribution of a random factor to identify human factors related to a road traffic accident. There are several standpoints for traffic accident analysis, such as vehicle-based, location-based and driver-based. And it is effective to analyze driver-based traffic accident data for discussion on the relation between human factors and accidents. An integrated traffic accident database system was developed for analysis considering driver- accident and violation records by ITARD, and several studies were carried out for the evaluation. Useful data for discussion on the relation between types of collision and traffic violations, and the effect of accident experience to the following accident were obtained.
This report gives an overview of pedestrian accidents on Japanese roads. Database used for the analysis is national traffic accident data based on police reports. Relevant measures and background information ranging from vehicle safety, engineering and education are briefly reviewed, and area for further improvement is discussed.rn
The National Highways Development Project in India is aimed at upgrading over 12,000 km of national highways from 2-lane undivided roads to 4-lane divided roads. With nearly 40% of fatal crashes being reported on national highways, the effect of this project on road safety needs to be assessed. Researchers carried out on-site crash investigations and in-depth crash data collection for a period of 45 to 60 days on four 2-lane undivided highways and a 4-lane divided highway. Based on 76 crashes examined, researchers found a shift of crash pattern from head-on collisions on undivided 2- lane highways to front-rear collisions on divided 4-lane highways. This paper presents the methodology, analysis of crashes examined, and the critical safety problems identified for greater consideration in future highway development projects. This paper also highlights the need and significance of in-depth crash investigations to understand local traffic conditions and problems in India.
Electronic Stability Program (ESP) aims to prevent the lateral instability of a vehicle. Linked to the braking and powertrain systems, it prevents the car from running wide on a corner or the rear from sliding out. It also helps the driver control his trajectory, without replacing him, in the case of loss of control where the driver is performing an emergency manoeuvrer (confused and exaggerated steering wheel actions). A new ESP function optimizes ESP action in curves with hard under steering (situations in which the front wheels lose grip and the vehicle slides towards the outside of the curve). A complementary feature prevents the wheels from spinning when pulling away and accelerating. The name given to the ESP system varies according to the vehicle manufacturer, but other terms include: active stability control (ASC), automotive stability management system (ASMS), dynamic stability control (DSC), vehicle dynamic control (VDC), vehicle stability control (VSC) or electronic stability Control (ESC). This paper proposes an evaluation of the effectiveness of ESP in terms of reduction of injur accidents in France. The method consists of 3 steps: - The identification, in the French National injury accident census (Gendarmerie Nationale only), of accident-involved cars for which the determination of whether or not the car was fitted with ESP is possible. A sample of 1 356 cars involved in injury accidents occurred in 2000, 2001, 2002 and 2003 was then selected. But we had to restrict the analysis to only 588 Renault Lagunas. - The identification of accident situations for which we can determine whether or not ESP is pertinent (for example ESP is pertinent for loss of control accidents whilst it is not for cars pulling out of a junction). - The calculation, via a logistic regression, of the relative risk of being involved in an ESPpertinent accident for ESP equipped cars versus unequipped cars, divided by the relative risk of being involved in a non ESP-pertinent accident for ESP equipped cars versus unequipped cars. This relative risk is assumed to be the best estimator of ESP effectiveness. The arguments for such a method, effectiveness indicator and implicit hypothesis are presented and discussed in the paper. Based on a few assumptions, ESP is proved to be highly effective. Currently, the relative risk of being involved in an ESP pertinent accident for ESP-equipped cars is lower (-44%, although not statistically significant)rnthan for other cars.rn
Today, Euro NCAP is a well established rating system for passive car safety. The significance of the ratings must however be evaluated by comparison with national accident data. For this purpose accidents with involvement of two passenger cars have been taken from the German National Road Accident Register (record years 1998 to 2004) to evaluate the results of the NCAP frontal impact test configuration. Injury data from both drivers involved in frontal car to car collisions have been sampled and have been compared, using a "Bradley Terry Model" which is well established in the area of paired comparisons. Confounders " like mass ratio of the cars involved, gender of the driver, etc. " have been accounted for in the statistical model. Applying the Bradley Terry Model to the national accident data the safety ranking from Euro NCAP has been validated (safety level: 1star <2 star <3 star <4 star). Significant safety differences are found between cars of the 1 and 2 star category as compared to cars of the 3 and 4 star category. The impact of the mass ratio was highly significant and most influential. Changing the mass ratio by an amount of 10% will raise the chance for the driver of the heavier car to get better off by about 18%. The impact of driver gender was again highly significant, showing a nearly 2 times lower injury risk for male drivers. With regard to the NCAP rating drivers of a high rated car are more than 2 times more probable (70% chance) to get off less injured in a frontal collision as compared to the driver of a low rated car.