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- Passives Sicherheitssystem (38) (entfernen)
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Neben der zunehmenden Bedeutung der aktiven Sicherheit bleiben Maßnahmen der passiven Sicherheit bei der Entwicklung moderner Kraftfahrzeuge unabdingbar. Die Weiterentwicklung von Maßnahmen zum passiven Fußgängerschutz war zunächst größtenteils durch Verbraucherschutztests wie zum Beispiel Euro NCAP oder JNCAP getrieben und ist nun auch durch gesetzliche Regelungen verpflichtend geworden. Im vorangegangenen Forschungsprojekt der BASt FE 82.229/2002 Schutz von Fußgängern beim Scheibenaufprall ist die Grundlage eines modularen Prüfverfahrens für den Kopfaufprall im Bereich der Windschutzscheibe, bestehend aus einem Versuchs- und einem Simulationsteil, erarbeitet worden. Im Rahmen dieses Projektes wurde ein hybrides Testverfahren bestehend aus Versuch und Simulation ausgearbeitet, das den Bereich der Windschutzscheibe und dabei auch crashaktive Systeme wie Airbags berücksichtigt. Das Testverfahren kombiniert Komponentenversuche mit einem Simulationsteil, in dem Fahrzeug-Fußgänger-Simulationen und lmpaktorsimulationen durchgeführt werden. Zusätzliche Dummyversuche dienten zur Bewertung des Testverfahrens. Alle erarbeiteten virtuellen und realen Testmethoden wurden an einem Referenzfahrzeug (Opel Signum), welches repräsentativ für eine durchschnittliche Mittelklasselimousine steht, durchgeführt. Das Fahrzeug wurde mit einem Airbagsystem ausgerüstet und der Testprozedur mit und ohne diesem System vergleichend unterzogen. Innerhalb dieser Untersuchungen konnte gezeigt werden, dass neue Testmethoden unter Ausnutzung von Simulationen und Komponententests es erlauben, realistischere Versuchsbedingungen unter Berücksichtigung von potenziellen Kopfaufprallpositionen und -zeiten zu definieren. Dabei können sehr gute Übereinstimmungen zwischen Fußgängersimulation und Dummyversuch erreicht werden. Die Randbedingungen für den Kopfaufprall und die Aufprallzeit wurden durch den Einsatz von Fußgängermodellen ermittelt. Weiterhin ermöglichen die Simulationen, zusätzliche Einflussdaten wie Vektoren mit den Kopfaufprallgeschwindigkeiten und -winkeln zu bestimmen.
Test and assessment procedures for passive pedestrian protection based on developments by the European Enhanced Vehicle-safety Committee (EEVC) have been introduced in world-wide regulations and consumer test programmes, with considerable harmonization between these programmes. Nevertheless, latest accident investigations reveal a stagnation of pedestrian fatality numbers on European roads running the risk of not meeting the European Union- goal of halving the number of road fatalities by the year 2020. The branch of external road user safety within the EC-funded research project SENIORS under the HORIZON 2020 framework programme focuses on investigating the benefit of modifications to pedestrian test and assessment procedures and their impactors for vulnerable road users with focus on the elderly. Injury patterns of pedestrians and cyclists derived from the German In-Depth Accident Study (GIDAS) show a trend of AIS 2+ and AIS 3+ injuries getting more relevant for the thorax region in crashes with newer cars (Wisch et al., 2017), while maintaining the relevance for head and lower extremities. Several crash databases from Europe such as GIDAS and the Swedish Traffic Accident Data Acquisition (STRADA) also show that head, thorax and lower extremities are the key affected body regions not only for the average population but in particular for the elderly. Therefore, the SENIORS project is focusing on an improvement of currently available impactors and procedures in terms of biofidelity and injury assessment ability towards a better protection of the affected body regions, incorporating previous results from FP 6 project APROSYS and subsequent studies carried out by BASt. The paper describes the overall methodology to develop revised FE impactor models. Matched human body model and impactor simulations against generic test rigs provide transfer functions that will be used for the derivation of impactor criteria from human injury risk functions for the affected body regions. In a later step, the refined impactors will be validated by simulations against actual vehicle front-ends. Prototyping and adaptation of test and assessment procedures as well as an impact assessment will conclude the work of the project at the final stage. The work will contribute to an improved protection of vulnerable road users focusing on the elderly. The use of advanced human body models to develop applicable assessment criteria for the revised impactors is intended to cope with the paucity of actual biomechanical data focusing on elderly pedestrians. In order to achieve optimized results in the future, the improved test methods need to be implemented within an integrated approach, combining active with passive safety measures. In order to address the developments in road accidents and injury patterns of vulnerable road users, established test and assessment procedures need to be continuously verified and, where needed, to be revised. The demographic change as well as changes in the vehicle fleet, leading to a variation of accident scenarios, injury frequencies and injury patterns of vulnerable road users are addressed by the work provided by the SENIORS project, introducing updated impactors for pedestrian test and assessment procedures.
Seit Anfang der 70er Jahre kann im Bereich der passiven Sicherheit eine stetige Verbesserung durch die Abnahme der im Verkehr verletzten und getöteten Personen beobachtet werden. Weitere fahrzeugtechnische Optimierungen zur Verbesserung von Selbst- und Partnerschutz, unterstützt und forciert durch flankierende legislative Maßnahmen, sind durchzuführen, wobei parallel die Effizienz bereits getroffener Maßnahmen zu prüfen ist. In der Pilotstudie wird der Versuch gemacht, ausgehend von bekannten Erkenntnissen der Unfallanalyse, das Gesamtunfallgeschehen Pkw zu realitätsbezogenen, in ihren Wirkungsmechanismen gleichartigen Unfallkonstellationen zusammenzufassen. Die Reduzierung auf wenige Kollisionstypen schafft die Möglichkeit zur Erarbeitung von Testbedingungen. Die im Test nachzufahrenden Unfallkonstellationen und die statisch/dynamische Untersuchung einzelner Fahrzeugkomponenten dokumentieren sich in physikalischen Messwerten und fahrzeugbezogenen Größen. Ein Bewertungssystem addiert die Messwerte auf und versieht sie mit relevanzproportionalen Wichtungsfaktoren zu einem Sicherheitsgrad. Praktische Bedeutung hat das Projekt zum Beispiel für die quantitative Ermittlung des Sicherheitsfortschrittes innerhalb eines Zeitraumes von 10 bis 15 Jahren, der Untersuchung von Sicherheitskomponenten und der Effizienzüberprüfung legislativer Sicherheitsverordnungen etc.
Die Verordnungsgeber haben länderübergreifende Normen und Vorschriften für die Durchführung und Auswertung von Crashversuchen mit Personenkraftwagen bei verschiedenen Aufprallarten entwickelt, die im Rahmen der Entwicklung und Zulassung neuer Fahrzeuge Anwendung finden. Verbraucherschutzorganisationen, Automobilclubs und Fachzeitschriften tragen mit der Durchführung und Publikation eigener Tests dazu bei, dass die passive Sicherheit von Personenkraftwagen in der breiten Öffentlichkeit mehr und mehr beachtet wird. Im Gegensatz dazu ist die Durchführung von Crashtests zur Untersuchung und Bewertung der passiven Sicherheit von Motorrädern relativ neu. Vor diesem Hintergrund hat die Bundesanstalt für Straßenwesen das vorliegende Forschungsprojekt vergeben. Hierbei waren unter Verwendung geeignet erscheinender Prüfverfahren reale Unfallsituationen nachzubilden. Unter Beachtung der Vielfalt der motorisierten Zweiräder mit ihrer Einteilung in verschiedene Zulassungs-Kategorien und zugehöriger Unfalldaten wurde das reale Unfallgeschehen analysiert. Neben Daten aus der amtlichen Unfallstatistik wurden dabei Informationen aus der Literatur und eigene Erhebungen ausgewertet. Ergänzend ist der aktuelle Kenntnisstand zur Biomechanik aufbereitet worden. Eine Beschreibung des Status quo der passiven Motorradsicherheit erfolgte unter Analyse der hierbei relevanten Elemente, Baugruppen und Eigenschaften des Motorrades. Dazu gehören Lenker, Sitzbank, Fußrasten, Tank, Verkleidung, Airbag (noch nicht im Hersteller-Angebot), Vorderradgabel und Standrohre sowie die Aufsassen-Kopfhöhe. Weiterhin gingen die Ergebnisse von Full-Scale-Crashtests, die im internationalen Standard ISO 13232 beschrieben sind, mit Anstößen von Motorrädern an der Seite von Personenkraftwagen in die Darstellung des Status quo der passiven Motorradsicherheit ein. Zusätzlich wurden im Rahmen des Forschungsprojektes Schlittenversuche durchgeführt. Ein zur Darstellung des rechtwinkligen Motorradanpralles an der Seite eines stehenden Personenkraftwagens geeigneter Schlitten ist im Rahmen des Projektes entworfen, realisiert und eingesetzt worden. In der Literatur beschriebene Motorrad-Sicherheitskonzepte und Vorschläge für besondere Motorrad-Sicherheitselemente sind ebenfalls dargestellt worden. Im Rahmen des Forschungsprojektes wurde ein umfassender Ansatz verfolgt. Er enthält die Bewertung von Sicherheitsmerkmalen, die aus technischen Beschreibungen entnommen und am stehenden Fahrzeug ermittelt werden können (Primärdaten) sowie die Ergebnisse von dynamischen Crash- und Schlittentests (Sekundärdaten). Dabei erfolgt stets die Orientierung am realen Unfallgeschehen (Tertiärdaten). Der internationale Standard ISO 13232 wird als geeigneter Ausgangspunkt eines umfassenden Prüf- und Bewertungsverfahrens für die passive Sicherheit motorisierter Zweiräder erkannt. Zur Erweiterung der bereits definierten Testverfahren werden Schlittentests vorgeschlagen. Außerdem werden Alleinunfälle des Motorrades zu beachten sein. Die Ergebnisse des Forschungsprojektes tragen dazu bei, die Aspekte der passiven Sicherheit von motorisierten Zweirädern zu objektivieren.
According to the German road traffic regulations children up to the age of 12 or a height below 150 cm have to use approved and appropriate child restraint systems (CRS). CRS must be approved according to UN-ECE Regulation No. 44. The regulation classifies CRS in 5 weight categories. The upper weight group is approved for children from 22 to 36 kg. However, studies show that already today many children weigh more than 36 kg although they have not reached a height of 150 cm. Therefore, no ECE R44 approved CRS is available for these overweight children. In conclusion, today's sizes and weights of children are no longer represented by the current version of the ECE R44. The heaviest used dummy (P10) weighs just 32.6 kg and has a height of 137.9 cm. Statistical data of German children show that already 5% of the children at a height of 137.9 cm have a weight above 45.3 kg. Regarding children at a height of 145 cm, the 95th percentile limit is at a weight of 53.3 kg. Based on these data 4 dummies with different heights and weights were defined and produced. Two of them are overweight. Up to now, there is no experience how current child restraint systems perform in a car crash if they are used by children with a weight above 36 kg and a height smaller than 150 cm. In the future, different child restraint systems will be tested with respect to the ECE R44 regulation using these overweight dummies.
The use of proper child restraint systems (CRS) is mandatory for children travelling in cars in most countries of the world. The analysis of the quantity of restrained children shows that more than 90% of the children in Germany are restrained. Looking at the quality of the protection, a large discrepancy between restrained and well protected children can be seen. Two out of three children in Germany are not properly restrained. In addition, considerable difference exists with respect to the technical performance of CRS. For that reason investigations and optimisations on two different topics are necessary: The technical improvement of CRS and the ease of use of CRS. Consideration of the knowledge gained by the comparison of different CRS in crash tests would lead to some improvements of the CRS. But improvement of child safety is not only a technical issue. People should use CRS in the correct way. Misuse and incorrect handling could lead to less safety than correct usage of a poor CRS. For that reason new technical issues are necessary to improve the child safety AND the ease of use. Only the combination of both parts can significantly increase child safety. For the assessment of the safety level of common CRS, frontal and lateral sled tests simulating different severity levels were conducted comparing pairs of CRS which were felt to be good and CRS which were felt to be poor. The safety of some CRS is currently at a high level. All well known products were not damaged in the performed tests. The performance of non-branded CRS was mostly worse than that of the well known products. Although the branded child restraint systems already show a high safety level it is still possible to further improve their technical performance as demonstrated with a baby shell and a harness type CRS.
Detailed anthropometric data of pregnant women have been collected and used in the development of a computational model of the pregnant occupant model "Expecting". The model is complete with a finite element uterus and multi-body fetus, which is a novel feature in the models of this kind. The computational pregnant occupant model has been validated and used to simulate a range of impacts. The strains developed in the utero-placental interface are used as the main criteria for fetus safety. Stress distributions due to inertial loading of the fetus on the utero-placental interface play a role on the strain levels. Inclusion of fetus model is shown to significantly affect the strain levels in the utero-placental interface. This series of studies has led to the design of seatbelt features specifically for the pregnant women to enable them use the seatbelt correctly and comfortably.
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.
From an automotive safety occupant protection standpoint, effective occupant restraint requires a system capable of providing non-injurious occupant ride down of anticipated crash forces. This is not only the case for frontal collisions, where occupant restraint is provided primarily by seatbelts and airbags, but is also critical for other crash modes such as side impacts, rear impacts, rollovers, as well as multiple impact events. In the rear impact crash mode, occupant restraint is provided primarily by the seatbacks and to some extent the seatbelts. Foundationally, therefore, what becomes fundamental to the seatback's role in rear occupant protection is its ability to contain the occupant within the seat, preventing occupant ramping, as well as preventing the seat's, and/or its occupant's, dangerous intrusion into the rear occupant's survival space where contact with rear compartment components and/ or rear seated occupants can present a significant injury risk. An analysis is presented of a series of rear impact sled testing conducted by the authors that evaluates the timing, position and extent of the front seatback's reward displacement toward and into the rear occupant compartment as well as consideration of the front seat occupant' ramping potential and its injury potential relative to the rear compartment. Additionally, three other series of testing are presented which assess various seat designs occupant retention capabilities. Lastly, a matched-pair comparison test series is presented which evaluates occupant motion in rear impact with and without use of a typical vehicle body mounted 3-point seatbelt. Discussion of restraint system performance observed in all the testing is included along with ATD biofidelity and thigh-gap considerations. The data collected and presented includes accelerometer instrumentation and high speed video analysis.
Motorcycle safety research
(2007)
Honda- global motorcycle sales exceeded the 10 million units mark since 2004, and further expansion is expected. As a responsibility for a company to provide mobility, Honda is focusing on motorcycle safety as top priority and has been working on various activities for both aspects of hardware and software. Here, we present Honda- activity for the safety technology of motorcycles. At present, Honda is promoting motorcycle safety in the four themes of prevention and collision safety such as safety education, recognition assistance, accident prevention and injury reduction. First, in the area of the safety education, the "Honda Safety Driving Promotion Center" was established in 1970, and motorcycle riders and vehicle driver trainings have been organized, and the traffic training centers are used as an actual practice field not only in Japan but also in many other regions in the world. Through our training activities, the new area of safety training with hardware assistance was developed and Honda- unique technology was accumulated such as the riding simulator which can provide experience of potentially dangerous situations without risk. Especially, the "riding trainer", the popular version of the riding simulator, was introduced at several motor shows in various countries and launched in September 2005. It was distributed first in Europe and is expected to expand globally aiming at 3000 units worldwide.. And in Europe, the newest version, which includes the suburban roads program, jointly developed with ADAC, will be released in near future. In the area of recognition assistance, "vehicle to vehicle communication technology" is under development using the advantage of being a manufacturer of both motorcycles and cars. This technology is under research as Honda "ASV-3" in Japan, and as part of C2C activity in Europe. As for the accident prevention, advanced brake systems for motorcycles to assist more effective brake operation have been expanded, Honda signed the European Road Safety Charter in April 2004 with the advanced brake systems commitment and furthermore, they are expanding according to vehicle characteristics and region. Then all models above 250 cc will have a version of the system by 2010. And as the last theme, "motorcycle airbag system" is introduced which is equipped on a mass production motorcycle for the first time in the world. It has been researched and developed for a long time as an injury reduction technology for collision accidents. Honda automobile technology was used for the research and development of the motorcycle airbag, and many specific issues such as the analysis of the collision conditions particular to motorcycles have been solved to realize today- success. It might be known that ADAC in-house crash test held in August this year confirmed the high effectiveness of the airbag system and showed a positive result. This motorcycle airbag system is equipped to the Honda Gold Wing and launched in North America in August, 2006. Also in Europe, it will be sold by the end of this year. Each theme of Honda motorcycle safety technology can be seen at the Honda booth.