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Established in 1997, the European New Car Assessment Programme (Euro NCAP) provides consumers with a safety performance assessment for the majority of the most popular cars in Europe. Thanks to its rigorous crash tests, Euro NCAP has rapidly become an important driver safety improvement to new cars. After ten years of rating vehicles, Euro NCAP felt that a change was necessary to stay in tune with rapidly emerging driver assistance and crash avoidance systems and to respond to shifting priorities in road safety. A new overall rating system was introduced that combines the most important aspects of vehicle safety under a single star rating. The overall rating system has allowed Euro NCAP to continue to push for better fitment and higher performance for vehicles sold on the European market. In the coming years, the safety rating is expected to play an important role in the support of the roll-out of highly automated vehicles.
During the last 5 years, the number of cars fitted with side airbags has dramatically increased. They are now standard equipment, even on many smaller cars or less luxurious vehicles. While some side airbags offer thoracic protection alone, there are those that combine thoracic and head protection (of which most deploy from the seat). Other systems employ separate airbags for head and thorax protection, which are designed to be effective noticeably in a crash against a pole. This paper proposes an evaluation of the effectiveness of side airbags in preventing thoracic injuries to passenger car occupants involved in side crashes. First, the target population (who can take benefit of side airbag deployment and in what circumstances) is defined. Side airbags can be especially effective in cases of impacts on the door with intrusion at a certain impact speed. Then, an example case of a side impact with side airbag deployment is given were side airbag deployment is thought to have had a positive effect on injury outcome. A further case is presented where the impact configuration is likely to have reduced the effect of side airbag deployment on injury outcome. Finally, the estimation of side airbag effectiveness (in terms of additional occupant protection brought exclusively by the airbag) is proposed by comparing injury risk sustained by occupants in (more or less) similar cars (fitted or non fitted with airbags) because, during these years, car structure, and side airbag conception have considerably evolved. In-depth accident data from France, the UK and Germany has been collected. Out of 2,035 side impact accident cases available in the databases, we selected 435 occupants of passenger cars (built from 1998 onwards) involved in an injury accident between year 1998 and year 2004 for EES (Energy Equivalent Speed) values between 20km/h and 50km/h. The occupants, belted or not, were sat on the struck side, whatever the obstacle and type of accidents (intersection, loss of control, etc.). For multiple impact crashes, the side impact is assumed to be the more severe one. Passenger cars were fitted with (96) or without (339) side airbags. Most of the potential risk explanatory variables were correctly and reliably reported in the databases (velocity " impact zone " impact angle " occupant characteristics, etc.). The analysis compared injury risks for different levels of EES and different types of side airbags. A logistic regression model was also computed with injury variables (such as thoracic AIS 2+ or AIS 3+) as the dependant variable and other variables (including airbag type and EES) as explanatory injury risk factors. Results revealed statistically non-significant reductions in thoracic AIS 2+ and AIS 3+ injury risk in side airbag equipped cars in the impact violence range selected (odds ratio between 0.84 and 0.98 depending on types of airbags). The results are discussed. The non-significance is assumed to be due to a low number of cases. Statistical analysis for head injuries was not possible due to the low number of accident cases with passenger cars fitted with head airbags in the databases. Moreover, the discrepancies between the data coming from different countries (especially calculation of EES) might have introduced instability in the analysis.
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.
The current Brussels EU Regulation No. 1235/2011, valid from May 30, 2012, has introduced an European Tyre Label with wet grip index G classes from A to G for passenger car tyres C1, light commercial vehicles tyres C2 and heavy truck- and bus tyres C3. Every wet grip class for each vehicle category has a defined band of numerical values for the wet grip index G. The legislated wet grip values G in this EU- Regulation are very low. The measured braking distances and corresponding impact speeds of the test vehicles are showing very critical results. Regulation No. 1235/2011 of the European Parliament and the Council for Type Approval of Vehicles (EU) should be changed in such a way, that for C1-tyres (normal passenger cars tyres) the minimum wet grip index G is 1.25. All C2-tyres (light commercial vehicles tyres) should at least meet a minimum wet grip index of G = 1.1. All C3-tyres (heavy trucks and buses tyres) should at least meet a minimum wet grip index of G = 0.95. Due to the missing lower limits for G in the wet grip class F for C1, C2 and C3 tyres according to Commission Regulation (EU) No. 1235/2011, officially valid from 30 May 2012, a tyre-to-road coefficient of adhesion in the extreme of 0 (zero) is legally permitted. This is an apparent flaw in above cited EU Regulation, which causes a potential danger to the road traffic safety for all motor vehicles in Europe with such tyres. The wet grip class F has to be removed urgently from said EURegulation, since a direct liability of the responsible EU-Commission can not be excluded.
Past European collaborative research involving government bodies, vehicle manufacturers and test laboratories has resulted in a prototype barrier face called the Advanced European Mobile Deformable Barrier (AE-MDB) for use in a new side impact test procedure . This procedure offers a better representation of the current accident situation and, in particular, the barrier concept is a better reflection of front-end stiffness seen in today- passenger car fleet compared to that of the current legislative barrier face. Based on the preliminary performance corridors of the prototype AE-MDB, a refined AE-MDB specification has been developed. A programme of barrier to load cell wall testing was undertaken to complete and standardise the AE-MDB specification. Barrier faces were supplied by the four leading manufacturers to demonstrate that the specification could be met by all. This paper includes background, specification and proof of compliance.
Rear-end collisions are the most frequent same and opposite-direction crashes. Common causes include momentary inattention, inadequate speed or inadequate distance. While most rear-end collisions in urban traffic only result in vehicle damage or slight injuries, rear-end collisions outside built-up areas or on motorways usually cause fatal or serious injuries. Driver assistance systems that detect dangerous situations in the longitudinal vehicle direction are therefore an essential safety plus. In view of this, for ADAC, systems that alert drivers to dangerous situations and initiate autonomous braking complement ESC as one of the most important active safety features in modern vehicles. The aim of ADAC is to provide consumers with technical advice and competent information about the systems available on the market. Reliable comparative tests that are based on standardised test criteria may provide motorists with important information and help them make a buying decision. In addition, they raise consumer awareness of the systems and speed up their market penetration. The assessment must focus on as many aspects of effectiveness as possible and include not only autonomous braking but also collision warning and autonomous brake assist. The work of the ADAC accident research is the development of the testing scenarios with direct link to accident situations and the identification of useful test criteria for testing.
Impact severity is a fundamental measure for all in-depth crash investigation projects. One methodology used in the UK is based on the US Calspan software package CRASH3. The UK- in-depth crash investigation studies routinely use AiDamage3 a software package which is based on an updated version of the original CRASH3 algorithm, including enhancements to the vehicle stiffness coefficients. Real world accident-damaged vehicles are measured and their crush is correlated with a library of stiffness coefficients. These measurements are then used, along with other parameters, to calculate the crash energy and equivalent changes of velocity of the vehicles (delta-v), which is a measure of the impact severity. UK in-depth accident studies routinely validate the crash severity methodologies applied as the vehicle fleet changes. This is achieved by analysing crash test data and using the appropriate residual crush damage and other inputs to AiDamage3 and checking the program- outputs with the known crash severity parameters. This procedure checks, at least in part, the default stiffness values in the data libraries and the reconstruction methods used.
Testverfahren zur Bewertung und Verbesserung von Kinderschutzsystemen beim Pkw-Seitenaufprall
(2003)
Die gegenwärtige europäische Regelung zur Prüfung und Zulassung von Kinderschutzsystemen (KSS) für Pkw (ECE-R44-03) beinhaltet dynamische Tests zur Frontal- und Heckaufprallsimulation. Der Seitenaufprall ist bisher nicht berücksichtigt, obwohl die Verletzungsschwere und die Folgekosten groß sind. Im Gegensatz zum Frontal- und Heckaufprall ist der Seitenaufprall gekennzeichnet durch eine direkte Lasteinleitung durch intrudierende Strukturen. Das Kinderschutzsystem und das Kind werden durch große Kontaktkräfte direkt beaufschlagt. Verletzungen des Kopfes und Halsbereichs von Kindern in KSS sind hierbei häufig und schwer. Seit 1993 beschäftigt sich daher eine ISO-Arbeitsgruppe (International Standardization Organisation) mit der Entwicklung eines Testverfahrens zur Prüfung von KSS beim Seitenaufprall. Die Ziele und entsprechende Ideen sowie Konzepte beteiligter Parteien sind bis heute kontrovers, so dass bisher keine endgültige Einigung im Rahmen der Arbeitsgruppe erzielt werden konnte. Ziel der vorliegenden Arbeit als Abschluss eines Projekts der BASt (Bundesanstalt für Straßenwesen) und dem Fachgebiet Kraftfahrzeuge der TU Berlin ist es, die komplexe Problematik zu dem Thema umfassend darzustellen und gleichzeitig einen ganzheitlichen Lösungsvorschlag anzubieten. Hierzu sind die Teilergebnisse der ISO-Arbeitsgruppe im ersten Schritt strukturiert und analysiert worden. Wissenslücken wurden detektiert und in einem weiteren Schritt beseitigt. Alle Teilergebnisse wurden im Rahmen der ISO-Arbeitsgruppe präsentiert, diskutiert und größtenteils auch akzeptiert. Der aktuelle Stand der ISO-WG1 ist somit maßgeblich von den hier erzielten Ergebnissen beeinflusst. Als Kern der vorliegenden Arbeit ist an der TU Berlin das Konzept für ein Testverfahren entwickelt, umgesetzt und geprüft worden. Die wesentlichen Parameter des realen Seitenaufpralls wie: - Beschleunigungsniveau des gestoßenen Pkw, - Delta-v des gestoßenen Pkw, - Maximalintrusion beim gestoßenen Pkw sowie - die maximale Intrusionsgeschwindigkeit im Kopfbereich sind wiedergegeben. In Abgrenzung zu aktuellen, komplexen Schlittentestverfahren, die z.B. zur Entwicklung von Seitenairbags dienen, ist die statische und dynamische Intrusionsgestalt einer realen Pkw-Seitenstruktur hingegen stark vereinfacht, aber ausreichend dargestellt. Die Ergebnisse zeigen, dass es prinzipiell möglich ist, das Schutzpotential von rückwärtsgerichteten sowie vorwärtsgerichteten KSS mit dieser Prozedur zu analysieren. Die Seitenaufprallabbildungsgüte ist hoch bei einer gleichzeitig sehr guten Reproduzierbarkeit der Messergebnisse. So zeigen die Tests, dass die Kinematik des Kopf- und Halsbereichs im Wesentlichen von der Gestalt des KSS im Seitenbereich abhängig ist. Ausreichend große Seitenwangen können den Kopf flächig stützen und vermeiden so den direkten Kontakt zu intrudierenden Strukturen. Gleichzeitig wird die starke laterale Inklination der Halswirbelsäule reduziert. Die Belastungen am Kopf sind aber bei allen getesteten KSS hoch und liegen deutlich oberhalb diskutierter Grenzwerte. Bei genauer Betrachtung der KSS-Seitenwangenpolsterung fällt auf, dass diese entweder gar nicht oder nur rudimentär vorhanden ist. Modifikationen, die abschließend an KSS vorgenommen wurden, zeigen aber auf, dass bereits durch einfache technische Maßnahmen die Belastungen im Kopfbereich signifikant gesenkt werden können. Das mit dieser Arbeit vorgelegte Testverfahren bietet KSS-Herstellern wie auch dem Gesetzgeber die Möglichkeit, Schwächen von KSS aufzudecken und Modifikationen zielgerichtet durchzuführen. Durch die Berücksichtigung des realen Seitenaufpralls ist gewährleistet, dass alle Optimierungen seitens der KSS-Hersteller auch positiven Einfluss auf die passive Sicherheit von Kindern in Pkw haben können. Eine maximale Reduktion der schwer bzw. tödlich verletzten Kinder als Pkw-Insassen in Höhe von ca. 10% ist bei 100%-iger Marktdurchdringung mit optimal gestalteten Produkten realistisch. Dies entspricht einer Verringerung der Anzahl getöteter Kinder um ca. 10 sowie schwerverletzter Kinder um ca. 200 pro Jahr in Deutschland.
Side-impact safety of passenger cars is assessed in Europe in a full-scale test using a moving barrier. The front of this barrier is deformable and represents the stiffness of an 'average' car. The EU Directive 96/27/EC on side impact protection has adopted the EEVC Side Impact Test Procedure, including the original performance specification for the barrier face when impacting a flat dynamometric rigid wall. The requirements of the deformable barrier face, as laid down in the Directive, are related to geometrical characteristics, deformation characteristics and energy dissipation figures. Due to these limited requirements, many variations are possible in designing a deformable barrier face. As a result, several barrier face designs are in the market. However, research institutes and car manufacturers report significant difference in test results when using these different devices. It appears that the present approval test is not able to distinguish between the different designs that may perform differently when they impact real vehicles. Therefore, EEVC Working Group 13 has developed a number of tests to evaluate the different designs. In these tests the barrier faces are loaded and deformed in a specific and/or more representative way. Barrier faces of different design have been evaluated. In the paper the set-up and the reasoning behind the tests is presented. Results showing specific differences in performance are demonstrated.