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.
Frontal impact is still the most relevant impact direction in terms of injury causation amongst car occupants. Especially for car-to-car frontal impacts the mass ratio between the involved vehicles has a significant impact on the injury risk (the heavier the opponent car the higher the injury risk). In order to address this issue frontal Mobile Deformable Barrier test procedures have been developed world-wide (for example the MPDB procedure that was fully described during the FIMCAR Project). The objective of this study was to investigate how vehicles of different weight classes perform in a mobile barrier test procedure compared to a fixed barrier test procedure (the full width rigid and offset deformable barrier test). Beyond that, the influence of vehicle mass and vehicle deformation on injuries was evaluated based on real world accident data. Five vehicle types were selected and tested in a fixed offset test procedure (ODB), a full width rigid barrier test procedure (FWRB) and a mobile offset test procedure (MPDB). For the accident analyses data from the German In-Depth Accident Study (GIDAS) was evaluated with a focus on MAIS 2+ injured belted front row car (UN-R 94 compliant cars) occupants in frontal impact accidents. Test data indicates higher dummy loadings, in particular for the head acceleration and chest acceleration, in the MPDB test for the vehicles with a mass lighter than the trolley (1,500 kg) compared to the FWRB test. The trend of increased vehicle stiffness (especially illustrated by tests with the MPDB and small cars) shows the need of a further improvement of passive restraint systems to reduce the occupant loading and with it the injury risk. The analyzed GIDAS data confirm the higher injury risk for occupants in cars with an accident weight of less than 1,500 kg compared to those with a crash weight above 1,500 kg in car-to-car and car-to-object or car-to-HGV, respectively. Furthermore the injury risk increases with decreasing mass ratio (i.e., the opponent car is heavier) in car-to-car accidents. Independent from the higher injury risk, the risk for passenger compartment intrusion in frontal impact appears not to be independent on the crash weight of the car.
Berichtet wird über die Ergebnisse eines bei der BASt durchgeführten Expertengesprächs zu den Anforderungen von Anlage 5(2) der Fahrerlaubnisverordnung, in der die Begutachtung der psychischen Leistungsfähigkeit von Personen in der Fahrgastbeförderung geregelt ist. Es werden die bisherigen Erfahrungen in der Begutachtung wiedergegeben, Handlungsbedarf für Verwaltungspraxis und Forschung wird aufgezeigt.
Das Ziel des Forschungsprojekts "Quantifizierung der Passiven Sicherheit für Pkw-Insassen" besteht darin, Messergebnisse in Form von Dummybelastungswerten zu einem Sicherheitsindex zu verdichten. Zur Formulierung des dazu erforderlichen Bewertungsalgorithmus wurden folgende Zusammenhänge erarbeitet: 1. Beziehung zwischen Verletzungsschwere und Dummybelastungsgröße für relevante Körperteile, 2. Relevanzfaktoren zur Wichtung der Teilergebnisse und 3. Zusammenhang zwischen körperteilspezifischen Schutzkriterien und dem entsprechenden Erfüllungsgrad. Die wesentliche Aufmerksamkeit erforderte die Bereitstellung der Relevanzstruktur, da mit den einzelnen Relevanzfaktoren die gemessenen Belastungen entsprechend der Bedeutung der im realen Unfallgeschehen beobachteten Verletzungen bewertet werden sollten. Im Bereich der experimentellen Simulation lag das Hauptaugenmerk auf der Bereitstellung der Versuchsbedingungen, wobei die gesetzlich vorgeschriebenen Sicherheitsversuche zu berücksichtigen waren. Daraus ergab sich die Festlegung auf folgende Versuchskonstellationen: 1. Frontaler Wandaufprall, 2. Seitenaufprall einer fahrbaren Barriere auf den stehenden Pkw und 3. Kompatibilitätsversuch, bei dem ein Fahrzeug seitlich mit einem anderen Fahrzeug gleichen Typs kollidiert. Mit Hilfe eines erarbeiteten Bewertungsalgorithmus werden die versuchstechnisch gemessenen Belastungswerte normiert und der Bewertungsfunktion zugeführt. Die so ermittelten Erfüllungsgrade erhalten durch die Relevanzfaktoren eine unfallspezifische Wichtung und lassen sich über Teilsicherheitsindizes zu einem Gesamt-Sicherheitsindex zusammenfassen. Dieser Sicherheitsindex soll Aufschluss über das Niveau der inneren Sicherheit von Pkw geben.
Im Rahmen eines Forschungsprojektes sollten die Auswirkungen realisierter Umgestaltungen innerstädtischer Straßen auf den Betrieb von Linienbussen auf empirischer Basis untersucht werden. Dabei standen Verkehrsberuhigungsmaßnahmen im Vordergrund. Die Untersuchungen wurden an 14 Fallbeispielen durchgeführt. Im einzelnen handelte es sich dabei um Verfolgungsfahrten von Linienbussen zur Ermittlung von Geschwindigkeit und Fahrzeit auf festgelegten Routen mittels eines Fahrcomputers, Videoaufnahmen zur Erfassung von Fahrverhalten und möglichen Konflikten, der Erfassung der Ein- und Aussteiger an den Haltestellen, Fahrgastbefragungen in ausgewählten Städten sowie Verkehrszählungen bei Fallbeispielen, für die keine neueren Daten vorlagen. Daraus wurden Ergebnisse für den öffentlichen Personennahverkehr ÖPNV in Fußgängerzonen, in verkehrsberuhigten Bereichen, in Sammelstraßen sowie in Hauptverkehrsstraßen ermittelt.
In-depth road traffic accident research in Spain is a fairly recent activity. In the past, only accident data that had been retrospectively processed by the national and regional traffic police forces was available. In 1999 Applus+IDIADA set up a permanent accident research unit to carry out indepth analysis of road accidents in Spain. Since then accidents involving cars, motorcycles, coaches and vulnerable road users have been thoroughly studied. The Applus+IDIADA accident research team has carried out work for the various traffic polices in Spain and it is currently involved in several research projects in which accidentology is one of the main tasks. The working methodology of the team is presented in the first part of the paper. In the framework of the European research project "Rollover" (GRD2-2001-50086), Applus+IDIADA has collected data, inspected scenarios and performed virtual reconstructions of twenty-six of the total seventy-six rollover accidents studied. The second half of the paper describes how these accident investigations were used to develop a test procedure for identifying possible improvements to the vehicle structure which augment occupant protection in a rollover scenario. In particular, a proposal for a new drop test for rollover assessment is presented. The cases were analysed for severity, in terms of injury to the occupants and damage to the vehicle, and taking into account whether a seatbelt was worn or not. The worst possible cases were identified as those that had severe occupant injuries and sizable damage to the occupant compartment when seatbelts had been worn. The most severe cases were then analysed further for impact position (roll and pitch angles) and the impact velocity. With these parameters taken into account, the most representative combinations could be found. This resulted in a series of configurations for possible drop tests. The results of the tests indicate where passenger vehicle structures need to be improved in order to increase occupant safety in the event of a rollover crash.
Die rasche Verbreitung von Tempo 30-Gebieten seit 1985 hat in den Verkehrsbetrieben zu Widerständen geführt. Man befürchtet, dass Fahrzeitverluste und Komforteinbußen entstehen sowie für den Betreiber die Wirtschaftlichkeit verschlechtert wird. Das Vorhaben analysiert die Verbreitung der Tempo 30-Gebiete mit Buslinien sowie die Einschätzung der Verkehrsbetriebe und ermittelt mit einer detaillierten Untersuchung ausgewählter Buslinien die eigentlichen Auswirkungen. Wesentliche Untersuchungsergebnisse sind: 1. Die Verkehrsbetriebe beurteilen die Tempo 30-Gebiete überwiegend negativ, 2. Fahrzeitmessungen ergeben, dass je nach Maßnahmenintensität in den Tempo 30-Gebieten mit bis zu 30 Sekunden Fahrzeitverlusten auf 1.000 Meter zu rechnen ist. Im Vergleich zu weiteren Verlustzeiten haben die heutigen Tempo 30-Gebiete keinen wesentlichen Einfluss, 3. Befragungen der Fahrgäste und Fahrer zeigen, dass die Fahrgäste die Tempo 30-Gebiete im Linienverlauf erkennen und insbesondere die Erhöhung der allgemeinen Sicherheit als Vorteil nennen. Die Auswirkungen auf den Busverlauf werden von den Fargästen als ziemlich gering eingestuft. Die Fahrerbefragung ergab dagegen sehr widersprüchliche Antworten. Bei weiter zunehmender Einrichtung von Tempo 30-Gebieten und weiter zunehmender Maßnahmenintensität werden sich die Auswirkungen sicherlich nennenswert verstärken. Wichtig ist daher, die rechtzeitige Beteiligung der Verkehrsbetriebe sicherzustellen und ÖPNV-verträgliche Maßnahmen in diesen Gebieten vorzunehmen.
Die amtliche Straßenverkehrsunfallstatistik kann nur in begrenztem Umfang Informationen zu Unfallentstehung, Unfallablauf sowie zu den zugrunde liegenden Verletzungsmechanismen bereitstellen. Verbleibende Informationslücken lassen sich durch spezielle Erhebungsteams schließen, die Verkehrsunfälle nach wissenschaftlichen Aspekten dokumentieren. Hierzu unterhalten das Bundesministerium für Verkehr, Bau- und Wohnungswesen und die Bundesanstalt für Straßenwesen seit 30 Jahren ein Forschungsprojekt zur Unfalldatenerhebung an der Medizinischen Hochschule Hannover. Seit 1999 erfolgt eine Kooperation mit der Forschungsvereinigung Automobiltechnik (FAT), die ein weiteres Erhebungsteam an der Technischen Universität Dresden unterhält. Die Unfalldaten gehen in die gemeinsame GIDAS-Datenbank ein, aus der sich umfassende Informationen zu den breit gefächerten Forschungsfeldern "Passive und aktive Fahrzeugsicherheit", "Verkehrs- und Rettungsmedizin" und "Straßenbezogene Sicherheitsfragen" gewinnen lassen. In der Zukunft werden Unfallvermeidungsstrategien und Unfallursachenprophylaxe im Vordergrund einer prospektiven Unfallforschung stehen. Die Daten werden auch in Zukunft für die weitere Verbesserung der Verkehrssicherheit einen bedeutenden Beitrag leisten.
One main objective of the EU-Project SENIORS is to provide improved methods to assess thoracic injury risk to elderly occupants. In contribution to this task paired simulations with a THOR dummy model and human body model will be used to develop improved thoracic injury risk functions. The simulation results can provide data for injury criteria development in chest loading conditions that are underrepresented in PMHS test data sets that currently proposed risk functions are based on. To support this approach a new simplified generic but representative sled test fixture and CAE model for testing and simulation were developed. The parameter definition and evaluation of this sled test fixture and model is presented in this paper. The justification and definition of requirements for this test set-up was based on experience from earlier studies. Simple test fixtures like the gold standard sled fixture are easy to build and also to model in CAE, but provide too severe belt-only loading. On the other hand a vehicle buck including production components like airbag and seat is more representative, but difficult to model and to be replicated at a different laboratory. Furthermore some components might not be available for physical tests at later stage. The basis of the SENIORS generic sled test set-up is the gold standard fixture with a cable seat back and foot rest. No knee restraint was used. The seat pan design was modified including a seat ramp. The three-point belt system had a generic adjustable load limiter. A pre-inflated driver airbag assembly was developed for the test fixture. Results of THOR test and simulations in different configurations will be presented. The configurations include different deceleration pulses. Further parameter variations are related to the restraint system including belt geometry and load limiter levels. Additionally different settings of the generic airbag were evaluated. The test set-up was evaluated and optimized in tests with the THOR-M dummy in different test configurations. Belt restraint parameters like D-ring position and load limiter setting were modified to provide moderate chest loading to the occupant. This resulted in dummy readings more representative of the loading in a contemporary vehicle than most available PMHS sled tests reported in the literature. However, to achieve a loading configuration that exposes the occupant to even less severe loading comparable to modern vehicle restraints it might be necessary to further modify the test set-up. The new generic sled test set-up and a corresponding CAE model were developed and applied in tests and simulations with THOR. Within the SENIORS project with this test set-up also volunteer and PMHS as well as HBM simulations are performed, which will be reported in other publications. The test environment can contribute in future studies to the assessment of existing and new frontal impact dummies as well as dummy improvements and related instrumentation. The test set-up and model could also serve as a new standard test environment for PMHS and volunteer tests as well as HBM simulations.
Upcoming test procedures and regulations consider the use of Q-dummies. Especially Q6 and Q10 will be introduced to assess the safety of child occupants in vehicle rear seats. Therefore detailed knowledge of these dummies is important to improve safety. As recent studies have shown, chest deflection measurements of both dummies are influenced by parameters like belt geometry. This could lead to a non optimized design of child restraint systems (CRS) and belt systems. The objective of this study is to obtain a more detailed understanding of the sensitivity of chest measurements to restraint parameters and to investigate the possibilities of chest acceleration as an alternative for the assessment of chest injury risks. A study of frontal impact sled tests was performed with Q6 and Q10 in a generic rear seat environment on a bench. Belt parameters like modified belt attachment locations were varied. For the Q6 dummy, different positioning settings of the CRS (booster with backrest) and of the dummy itself were investigated. The Q10 dummy was seated on a booster cushion. Here the position of the upper belt anchorage point was varied. To simulate the influence of vehicle rotation in the ODB crash configuration, the bench was pre-rotated on the sled in additional tests with the Q10. This configuration was tested with and without pretensioner and load limiter. Chest deflection in Q6 showed a high sensitivity to changes in positioning of the CRS and the dummy itself. A more slouched position of the CRS or dummy resulted in a reduction of measured chest deflection, whereas chest acceleration increased for a more slouched position of the CRS. Chest deflection in Q10 is sensitive to belt geometry as already shown in other studies. In a more outboard position of the shoulder belt anchorage the measured chest deflection is higher. Chest acceleration shows the opposite tendency, which is highest for the rearmost location of the upper belt anchorage. On a pre-rotated bench the highest chest deflection within this test series was observed without load limiter/pretensioner and an outboard belt position. By optimizing the belt location and the use of pretensioner/load limier the chest deflection was significantly reduced. For the Q6 a criterion based on chest acceleration as well as deflection measured at two locations might be the most reliable approach, which requires further research with an additional upper deflection sensor. In the Q10 the measured chest deflection does not always correctly reflect the severity of chest loading. The deflection is depending on initial belt position and restraint parameters as well as test conditions, which result in different directions of belt migration. A3ms chest acceleration might be a better indicator for severity of chest loading independent of different conditions like belt geometries. However, in some cases the benefit of an optimized restraint system could only be shown by deflection. These findings suggest that further research is needed to identify a chest injury assessment method, which could be based on deflection as well as acceleration or other parameters related to belt to occupant interaction.