84 Personenschäden
Filtern
Dokumenttyp
Schlagworte
- Anfahrversuch (13) (entfernen)
Institut
- Sonstige (10)
- Abteilung Fahrzeugtechnik (8)
Falltests zur Untersuchung der Belastungen von Dummys beim Aufprall auf den Boden, Teil 1 und 2
(2010)
Beim Zusammenprall eines Motorrads mit einem Pkw unterscheidet man in der Unfallforschung sowohl den Erstanprall des Motorradfahrers an den Pkw als auch den Sekundäraufprall des Motorradfahrers auf dem Boden. So genannte Full-Scale-Crashtests mit Dummys haben beim Erstanprall gezeigt, dass Motorradfahrer durch Airbags potenziell geschützt werden können. Bei den entsprechenden Unfallsimulationen wurde jedoch im weiteren Bewegungsablauf beim nachfolgenden Sekundäraufprall auf dem Boden festgestellt, dass relativ hohe Belastungen auf den Dummy einwirken. Es stellt sich hierbei jedoch die Frage, ob die üblicherweise für Lasteinwirkungen im Falle eines Erstanpralls entwickelten und validierten Dummys die bei einem Sekundäraufprall auf einen Motorradfahrer einwirkenden Belastungen hinreichend genau wiedergeben können. Dazu wurden die Belastungen eines Dummys beim Aufprall auf den Boden untersucht, um das Verletzungsrisiko eines menschlichen Motorradfahrers einschätzen zu können. Im Dekra-Crash-Test-Center wurden vier verschiedene Aufprallsituationen mit einem Hybrid III Dummy durchgeführt, wobei diese Tests an eine andere Testreihe angelehnt sind, die bereits am US-amerikanischen Institut "Dynamic Research International" (DRI) durchgeführt worden waren. Nach der Erläuterung des Testaufbaus und seiner Durchführung wird detailliert auf die gemessenen Verzögerungsbelastungen des Dummys eingegangen. Hierbei geben zum einen Tabellen eine Übersicht über charakteristische Messwerte zur Quantifizierung der maximalen Belastung des Dummys, zum anderen veranschaulichen Bilder die zugehörigen zeitlichen Verzögerungsverläufe in Becken, Brust und Kopf des Dummys. Der Artikel schließt mit einer Interpretation der Versuchsergebnisse und gibt einen Ausblick auf den weiteren Untersuchungsbedarf.
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).
The frontal crash is still an important contributor to deaths and serious injured resulting from road accidents in Europe. As the Hybrid-III dummy used in crash tests is over two decades old, the European Enhanced Vehicle-safety Committee is studying the potential for a new test device. Key is the availability of a well-defined set of requirements that identifies the minimum level of biofidelity required for an advanced frontal dummy. In this paper, a complete set of frontal impact biofidelity requirements, consisting of references , description of test conditions and corridors, is presented.
A series of drop tests and vehicle tests with the adult head impactor according to Regulation (EC) 631/2009 and drop tests with the phantom head impactor according to UN Regulation No. 43 have been carried out by the German Federal Highway Research Institute (BASt) on behalf of the German Federal Ministry of Transport, Building and Urban Development (BMVBS). Aim of the test series was to study the injury risk for vulnerable road users, especially pedestrians, in case of being impacted by a motor vehicle in a way described within the European Regulations (EC) 78/2009 and (EC) 631/2009. Furthermore, the applicability of the phantom head drop test described in UN Regulation No. 43 for plastic glazing should be investigated. In total, 30 drop tests, thereof 18 with the adult head impactor and 12 with the phantom head impactor, and 49 vehicle tests with the adult head impactor were carried out on panes of laminated safety glass (VSG), polycarbonate (PC) and laminated polycarbonate (L-PC). The influence of parameters such as the particular material properties, test point locations, fixations, ambient conditions (temperature and impact angle) was investigated in detail. In general, higher values of the Head Injury Criterion (HIC) were observed in tests on polycarbonate glazing. As the HIC is the current criterion for the assessment of head injury risk, polycarbonate glazing has to be seen as more injurious in terms of vulnerable road user protection. In addition, the significantly higher rebound of the head observed in tests with polycarbonate glazing is suspected to lead to higher neck loads and may also cause higher injury risks in secondary impacts of vulnerable road users. However, as in all tests with PC glazing no damage of the panes was observed, the risk of skin cut injuries may be expected to be reduced significantly. The performed test series give no indication for the test procedure prescribed in UN Regulation No. 43 as a methodology to approve glass windscreen not being feasible for polycarbonate glazing, as all PC panes tested fulfilled the UN R 43 requirements. The performance of the windscreen area will not be relevant for vehicle type approval according to the upcoming UN Regulation for pedestrian protection. However, it is recommended that pedestrian protection being considered for plastic windscreens to ensure at least the same level of protection as glass windscreens.
Straßenseitige Fahrzeug-Rückhaltesysteme haben entsprechend der Richtlinie für passiven Schutz an Straßen durch Fahrzeug-Rückhaltesysteme (RPS) die Aufgabe, die Folgen von Verkehrsunfällen so gering wie möglich zu halten. Sie kommen dabei sowohl zum Schutz unbeteiligter Personen, des Gegenverkehrs bei zweibahnigen Straßen sowie schutzbedürftiger Bereiche neben der Straße als auch zum Schutz der Fahrzeuginsassen vor schweren Folgen infolge Abkommens von der Fahrbahn zum Einsatz. Vor dem Einsatz der unterschiedlichen Systeme muss die Wirksamkeit des jeweiligen Systems für den entsprechenden Anwendungsfall nachgewiesen werden. Dabei regeln die RPS, welche Anforderungen an welchen örtlichen Gegebenheiten erfüllt sein müssen. In DIN EN 1317 sind die zugehörigen Prüfverfahren beschrieben. Da ein normiertes Prüfverfahren nicht alle real auftretenden Unfallszenarien abdecken kann, stellte sich die Frage, wie sich Stahlschutzplanken und Betonschutzwände beim großwinkligen Anprall kleiner und leichter Fahrzeuge verhalten und wie es um die Insassensicherheit bestellt ist. Eine im Rahmen des resultierenden Forschungsprojektes durchgeführte Analyse des Unfallgeschehens ergab für das Jahr 2007 die Zahl von 25.038 polizeilich registrierten Unfällen mit Anprall gegen eine Schutzeinrichtung [Statistisches Bundesamt]. Angaben zu Anprallwinkel, Kollisionsgeschwindigkeit und Fahrzeugmasse können dieser Statistik nicht entnommen werden. Für die In-depth-Analyse wurden daher 69 Unfallgutachten zu Kollisionen mit großem Anprallwinkel (≥ 25-°) aus der DEKRA-Unfalldatenbank herangezogen. Der Schwerpunkt wurde dabei auf 39 Unfälle gelegt, die sich auf Bundesautobahnen ereignet hatten. Mit zunehmendem Anprallwinkel nahm die Unfallhäufigkeit ab. Der größte Winkel lag bei 60-°. Die Masse der anprallenden Fahrzeuge lag zwischen 750 kg und 1.935 kg. Auffällig war die Häufung von Schleuderunfällen. In 29 Fällen kam es zu einem prekollisionären Schleudervorgang. Die Analyse des Unfallgeschehens hat so gezeigt, dass Anpralle gegen passive Schutzeinrichtungen auf Bundesautobahnen mit zunehmendem Anprallwinkel seltener werden und dass der in der Norm für die Systemprüfung geforderte Maximalwinkel von 20-° das Gesamtunfallgeschehen sehr gut abdeckt. Auf Basis der gewonnenen Ergebnisse erfolgte die Festlegung einer Crash-Test-Konfiguration zur Erlangung von Erkenntnissen über die Insassensicherheit bei großwinkligen Anprallen. Dabei wurde als Grundlage der Anprallversuch TB 11 verwendet, wobei der Anprallwinkel von 20-° auf 45-° erhöht wurde. Die Kollisionsgeschwindigkeit von 100 km/h sowie die Fahrzeugmasse von 900 kg blieben unverändert. Die Anpralltests erfolgten gegen eine simulierte Ortbetonwand sowie gegen eine Stahlschutzplanke vom Typ Super-Rail-®. Die Versuchsfahrzeuge waren typgleich mit den Modellen, die für die ursprüngliche TB-11-Prüfung der Systeme verwendet wurden. Die Versuche haben gezeigt, dass beide Systeme die Rückhaltung der anprallenden Fahrzeuge sicher gewährleisteten. Für die Fahrer beider Fahrzeuge hätte aber keine Überlebenschance bestanden. Über das Schutzniveau der Fahrzeuginsassen entscheiden bei derartigen Anprallkonstellationen letztendlich das Niveau der passiven Sicherheit der anprallenden Fahrzeuge sowie das Energieabsorptionsvermögen der die Fahrgastzelle umschließenden Strukturen.
The United Nations Economic Commission for Europe Informal Group on GTR No. 7 Phase 2 are working to define a build level for the BioRID II rear impact (whiplash) crash test dummy that ensures repeatable and reproducible performance in a test procedure that has been proposed for future legislation. This includes the specification of dummy hardware, as well as the development of comprehensive certification procedures for the dummy. This study evaluated whether the dummy build level and certification procedures deliver the desired level of repeatability and reproducibility. A custom-designed laboratory seat was made using the seat base, back, and head restraint from a production car seat to ensure a representative interface with the dummy. The seat back was reinforced for use in multiple tests and the recliner mechanism was replaced by an external spring-damper mechanism. A total of 65 tests were performed with 6 BioRID IIg dummies using the draft GTR No.7 sled pulse and seating procedure. All dummies were subject to the build, maintenance, and certification procedures defined by the Informal Group. The test condition was highly repeatable, with a very repeatable pulse, a well-controlled seat back response, and minimal observed degradation of seat foams. The results showed qualitatively reasonable repeatability and reproducibility for the upper torso and head accelerations, as well as for T1 Fx and upper neck Fx. However, reproducibility was not acceptable for T1 and upper neck Fz or for T1 and upper neck My. The Informal Group has not selected injury or seat assessment criteria for use with BioRID II, so it is not known whether these channels would be used in the regulation. However, the ramping-up behavior of the dummy showed poor reproducibility, which would be expected to affect the reproducibility of dummy measurements in general. Pelvis and spine characteristics were found to significantly influence the dummy measurements for which poor reproducibility was observed. It was also observed that the primary neck response in these tests was flexion, not extension. This correlates well with recent findings from Japan and the United States showing a correlation between neck flexion and injury in accident replication simulations and postmortem human subjects (PMHS) studies, respectively. The present certification tests may not adequately control front cervical spine bumper characteristics, which are important for neck flexion response. The certification sled test also does not include the pelvis and so cannot be used to control pelvis response and does not substantially load the lumbar bumpers and so does not control these parts of the dummy. The stiffness of all spine bumpers and of the pelvis flesh should be much more tightly controlled. It is recommended that a method for certifying the front cervical bumpers should be developed. Recommendations are also made for tighter tolerance on the input parameters for the existing certification tests.
The European Enhanced Vehicle-safety Committee wants to promote the use of more biofidelic child dummies and biomechanical based tolerance limits in regulatory and consumer testing. This study has investigated the feasibility and potential impact of Q-dummies and new injury criteria for child restraint system assessment in frontal impact. European accident statistics have been reviewed for all ECE-R44 CRS groups. For frontal impact, injury measures are recommended for the head, neck, chest and abdomen. Priority of body segment protection depends on the ECE-R44 group. The Q-dummy family is able to reflect these injuries, because of its biofidelity performance and measurement capabilities for these body segments. Currently, the Q0, Q1, Q1.5, Q3 and Q6 are available representing children of 0, 1, 1.5, 3 and 6 years old. These Q-dummies cover almost all dummy weight groups as defined in ECE-R44. Q10, representing a 10 year-old child, is under development. New child dummy injury criteria are under discussion in EEVC WG12. Therefore, the ECE-R44 criteria are assessed by comparing the existing P-dummies and new Q-dummies in ECE-R44 frontal impact sled tests. In total 300 tests covering 30 CRSs of almost all existing child seat categories are performed by 11 European organizations. From this benchmark study, it is concluded that the performance of the Q-dummy family is good with respect to repeatability of the measurement signals and the durability of the dummies. Applying ECE-R44 criteria, the first impression is that results for P- and Q-dummy are similar. For child seat evaluation the potential merits of the Q-dummy family lie in the extra measurement possibilities of these dummies and in the more biofidelic response.
The purpose of this paper is to review injuries found in real world lateral collisions and determine the mechanisms responsible for certain kinds of biomechanical failure. During the last years the distribution of deaths among the different types of accidents has changed. Lateral collisions now are the most frequent cause of fatal and other serious injuries. Every third accident is an impact from the side, while every second fatality is the result of a lateral accident. Just a few years ago this value was no higher than 30%. This is probably the result of increasing safety standards for frontal collisions (airbags, seatbelt usage, structural improvements of cars, etc.). Although the number of registered vehicles increased, the total amount of fatalities decreased during the same period. Thus it is now necessary to pay greater attention to the lateral accident situation in order to improve road safety and decrease the number of traffic injuries. Several European organisations had decided to launch the project SID2000, which was funded by the European Commission, with the intention of gathering more knowledge on injuries occurring in lateral accidents and the mechanisms that lead to such injuries. This should enable the group to define the requirements for a new side impact dummy (SID) to be designed. Within the same project the existing TNO-EUROSID 1 was enhanced by another group and the experience gained has now enabled allowed to design a better measuring device for side impacts. The data used for this contribution came from sources from all over Europe and had to be gathered in such a manner that as many accident parameters as possible were taken into account.
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.
Automotive interiors have long been a potentially injurious impact area to occupants during accidents, especially in the absence of adequate padding. The U.S. Federal Motor Vehicle Safety Standard (FMVSS) 201, Occupant Protection in Interior Impact, outlines test procedures and performance criteria in order to mitigate potentially injurious head impacts to interior surfaces. FMVSS 201 specifies a finite set of impact locations and applies to passenger vehicles of a specified year range and with a gross vehicle weight rating less than 10,000 lb. In this paper, two head impact test methodologies are presented, a pendulum-test device and a Free Motion Headform (FMH) launching device, which allows for dynamic, repeatable impact evaluation of various vehicle interior surfaces and their impact attenuation abilities. The presented testing includes multiple series that evaluate the effect of differing vehicle upper interior padding on occupant head injury. One study in particular, analyzes a head impact to the side header of a heavy truck (not included in FMVSS 201) during a 90 degree rollover. Additionally, two other series of tests are presented which assess the injury reduction effect of side airbags to near side as well as far side occupants in a side impact scenario. Lastly, a forensic analysis is presented which evaluates two possible head impact locations experienced in a real world accident by analysis of the resulting interior compartment damage utilizing the FMH launching device test method. The data collected and presented includes accelerometer instrumentation and high speed video analysis. These studies demonstrate that adequate padding and airbags are very effective at mitigating head injury potential at impact speeds of 12-25 mph (19-40 kph).