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Mit dem Forschungs- und Entwicklungsvorhaben sollten bestehende Wissenslücken zum Verkehrssicherheitspotenzial an innerörtlichen Haltestellen des straßen- und schienengebundenen öffentlichen Personennahverkehrs geschlossen werden. Untersuchungsgegenstand waren Haltestellen im Linienbus- und Straßenbahnverkehr mit Lage im Straßenraum. Neben einer Auswertung der Straßenverkehrsunfallstatistik des Statistischen Bundesamtes erfolgten vertiefende Unfallanalysen in vier Fallbeispielen (Städte Düsseldorf, Leipzig und Zwickau sowie Landkreis Mayen-Koblenz) als Grundlage für ein Sicherheitsranking relevanter Haltestellentypen, ergänzt um Einzelfallanalysen für ausgewählte Haltestellenbereiche unterschiedlichen Typs. Die Untersuchungen erfolgten jeweils auf der Basis von Unfalldaten aus drei Kalenderjahren. Insgesamt wurden in den vier Fallbeispielen rund 2.550 Teilhaltestellen unterschiedlichen Typs untersucht, davon 1.750 Bushaltestellen, 690 Straßenbahnhaltestellen und 110 kombiniert genutzte Haltestellen. In den Haltestellenbereichen waren in 3 Kalenderjahren rund 770 Unfälle mit Personenschaden zu verzeichnen. Rund 85 Prozent (im Landkreis Mayen-Koblenz 91 Prozent) der Bushaltestellen und 30 Prozent der Straßenbahnhaltestellen wiesen in den untersuchten drei Kalenderjahren keinen Unfall mit Personenschaden auf. Als spezifische Kenngröße für die vergleichende Beurteilung der unterschiedlichen Haltestellenformen wurden haltestellenbezogene Unfallkosten UK zugrunde gelegt, um über die Unfallanzahl hinaus auch die Unfallschwere in die Betrachtungen einzubeziehen. Im vorliegenden Falle wurde diese Kenngröße als UK(P) ermittelt, da nur Unfälle mit Personenschäden in die Untersuchungen einbezogen wurden. Verwendet wurden an die Verunglücktenstruktur angepasste Unfallkostensätze. Quantifizierte Ergebnisse konnten für die Bushaltestellentypen "Bucht" und "Fahrbahnrand/Kap" sowie die Straßenbahnhaltestellentypen "Fahrbahnrand/Kap", "Fahrbahn" (mit den Varianten "StVO" und "Zeitinsel") sowie "Seitenbahnsteig" ermittelt werden. Zusammenfassend konnte festgestellt werden: - Im Vergleich der ÖPNV-Teilsysteme sind Bushaltestellen sicherer als Straßenbahnhaltestellen und kombinierte Haltestellen. - Im Vergleich der Haltestellentypen sind Haltestellen am Fahrbahnrand (einschließlich Kaplösungen) am sichersten, gefolgt vom Typ "Bucht" und den beiden auf das ÖPNV-Teilsystem Straßenbahn bezogenen Haltestellentypen "Fahrbahn" und "Seitenbahnsteig". - Bezogen auf das ÖPNV-Teilsystem Bus schneidet der Haltestellentyp "Bucht" deutlich ungünstiger ab als der Typ "Fahrbahnrand/ Kap". - Bezogen auf das ÖPNV-Teilsystem Straßenbahn schneidet der Haltestellentyp "Fahrbahnrand/Kap" am günstigsten ab, gefolgt vom Typ "Fahrbahn". Am ungünstigsten sind die Werte für den Typ "Seitenbahnsteig". - In Bezug auf den Straßenbahnhaltestellentyp "Fahrbahn" ergaben die Ergebnisse zu den beiden Varianten "Fahrbahn, StVO" und "Fahrbahn, Zeitinsel" deutliche Unterschiede. Sowohl bei den spezifischen Unfallkosten als auch in Bezug auf die mittlere jährliche Unfallanzahl pro Teilhaltestelle und die mittleren Unfallkosten von Unfällen mit Personenschaden im Haltestellenbereich ergab die Variante "Zeitinsel" ungünstigere Werte als die Variante "StVO". Empfohlen wird insbesondere: - die Priorisierung des Typs "Fahrbahnrand/Kap" als Standardlösung für Bushaltestellen (VwV-StVO), - eine Neubewertung des Typs "Fahrbahn" und hier wiederum der Variante "StVO" in VwV-StVO und Regelwerken mit dem Ziel einer Priorisierung dieses Typs gegenüber dem Typ "Seitenbahnsteig" (bei vergleichbaren Rahmenbedingungen) sowie der Variante "StVO" gegenüber der Variante "Zeitinsel", die Konkretisierung und Weiterentwicklung der Einsatzkriterien für Zeitinseln sowie - eine verstärkte Berücksichtigung der Verkehrssicherheit von im Haltestellenbereich die Fahrbahn querenden Fußgängern.
Annually within the European Union, there are over 50,000 road accident fatalities and 2 million other casualties, of which the majority are either the occupants of cars or other road users in collision with a car. The European Commission now has competency for vehicle-based injury countermeasures through the Whole Vehicle Type Approval system. As a result, the Commission has recognised that casualty reduction strategies must be based on a full understanding of the real-world need under European conditions and that the effectiveness of vehicle countermeasures must be properly evaluated. The PENDANT study commenced in January 2003 in order to explore the possibility of developing a co-ordinated set of targeted, in-depth crash data resources to support European Union vehicle and road safety policy. Three main work activity areas (Work Packages) commenced to provide these resources. This paper describes some of the outcomes of Work Package 2 (WP2, In-depth Crash Investigations and Data Analysis). In WP2, some 1,100 investigations of crashes involving injured car occupants were conducted in eight EU countries to a common protocol based on that developed in the STAIRS programme. This paper describes the purposes, methodology and results of WP2. It is expected that the results will be used as a co-ordinated system to inform European vehicle safety policy in a systematic, integrated manner. Furthermore, the results of the data analyses will be exploited further to provide new directions to develop injury countermeasures and regulations.
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.
This study aimed to identify the occurrence, type and mechanisms of the traumatic injuries of the vulnerable road users in vehicle collisions, and to determine the effects of human, engineering, and environment factors on traffic accidents and injuries. The pedestrian accident cases were collected in the years 2000 to 2005 from Changsha Wujing hospital China and Accident Research Unit at Medical University Hannover in Germany. A statistic analysis was carried out using the collected accident data. The results from analysis of Changsha data were compared with results from analysis of GIDAS data Hannover. The injury severities were determined using AIS code and ISS values. The results were presented in terms of cause of injuries, injury distributions, injury patterns, injury severity. The factors influenced the injury outcomes were proposed and discussed for the vehicle transport environment and road users. The results were discussed with regard to accident data collection, accident sampling and injury distributions etc. In the urban area of Changsha, motorcycles and passenger cars are most frequently involved in vehicle pedestrian accidents. Head and lower extremities injuries are the predominant types of pedestrian injuries. The pedestrian accidents were identified as vital issue in urban traffic safety and therefore a high priority should be given to this road user group in research of safe urban transportation. In Hannover area, cars are most frequently involved in traffic accidents, injured pedestrians are involved in road traffic of Germany in 13% of all causalities only in 2005 and have nearly the same number as motorcyclists, but the half of bicyclists.
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.
Validation of human pedestrian models using laboratory data as well as accident reconstruction
(2007)
Human pedestrian models have been developed and improved continually. This paper shows the latest stage in development and validation of the multibody pedestrian model released with MADYMO. The biofidelity of the multibody pedestrian model has been verified using a range of full pedestrian-vehicle impact tests with a large range in body sizes (16 male, 2 female, standing height 160-192cm, weight 53.5-90kg). The simulation results were objectively correlated to experimental data. Overall, the model predicted the measured response well. In particular the head impact locations were accurately predicted, indicated by global correlation scores over 90%. The correlation score for the bumper forces and accelerations of various body parts was lower (47-64%), which was largely attributed to the limited information available on the vehicle contact characteristics (stiffness, damping, deformation). Also, the effects of the large range in published leg fracture tolerances on the predicted risk to leg fracture by the pedestrian model were evaluated and compared with experimental results. The validated mid-size male model was scaled to a range of body sizes, including children and a female. Typical applications for the pedestrian models are trend studies to evaluate vehicle front ends and accident reconstructions. Results obtained in several studies show that the pedestrian models match pedestrian throw distances and impact locations observed in real accidents. Larger sets of well documented cases can be used to further validate the models especially for specific populations as for instance children. In addition, these cases will be needed to evaluate the injury predictive capability of human models. Ongoing developments include a so-called facet pedestrian model with a more accurate geometry description and a more humanlike spine and neck and a full FE model allowing more detailed injury analysis.
This study examines the severity and types of injuries sustained by child pedestrians aged 18 years and below in order to identify the body regions at greatest risk for injury in a pedestrian accident. Detailed medical diagnoses were reviewed retrospectively for 572 child pedestrians admitted to an urban pediatric trauma center with injuries during the time period from January 2001 to December 2005. Eighty percent of these children sustained AIS 2 or greater injuries, most commonly to the lower extremity (41%) and head (34%). Fortyfour percent of admitted children had more significant AIS 3 or greater injuries primarily to the head (58%), thorax (17%) and lower extremities (14%). Testing procedures to assess the child- interaction with the motor vehicle should include injury assessment for the pediatric head, thorax and lower extremities. This understanding of how child pedestrians interact with motor vehicles may provide insight into effective countermeasures with potential for implementation in vehicle designs world-wide.
A legform impactor with biofidelic characteristics (FlexPLI) which is being developed by the Japanese Automobile Research Institute (JARI) is being considered as a test tool for legislation within a proposed Global Technical Regulation on pedestrian protection (UNECE, 2006) and therefore being evaluated by the Technical Evaluation Group (TEG) of GRSP. In previous built levels it already showed good test results on real cars as well as under idealised test conditions but also revealed further need for improvement. A research study at the Federal Highway Research Institute (BASt) deals with the question on how leg injury risks of modern car fronts can be revealed, reflected and assessed by the FlexPLI and how the impactor can be used and implemented as a legislative instrument for the type approval of cars according to current and future legislations on pedestrian protection. The latest impactor built level (GTα ) is being evaluated by a general review and assessment of the certification procedure, the knee joint biofidelity and the currently proposed injury criteria. Furthermore, the usability, robustness and durability as a test tool for legislation is examined and an assessment of leg injuries is made by a series of tests with the FlexPLI on real cars with modern car front shapes as well as under idealised test conditions. Finally, a comparison is made between the FlexPLI and the current european legislation tool, the legform impactor according to EEVC WG 17.