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.
Es wurden Unfälle, die im Rahmen des Forschungsprojektes "Erhebungen am Unfallort" dokumentiert wurden, hinsichtlich der Häufigkeit und der Charakteristik von Pkw-Mehrfachkollisionen analysiert. Beschrieben wurden bei einer vergleichenden Gegenüberstellung von Einfach- und Mehrfachkollisionen die Besonderheiten, die die Mehrfachkollisionen prägen, und zwar im Vorfeld des Unfallgeschehens wie auch im Unfallgeschehen selbst. Mit allen beobachteten Unterschieden der Merkmalsausprägungen ist eine Steigerung der Ausgangsgeschwindigkeit, also der Geschwindigkeit, die vor dem Unfallgeschehen gefahren wurde, verbunden. Die Entstehungswahrscheinlichkeit von Mehrfachkollisionen steigt mit der Zunahme der Fahrgeschwindigkeiten. Geschlechtsspezifische Unterschiede sind lediglich für die Wahl der Ausgangsgeschwindigkeiten vor dem Unfallereignis von Bedeutung. Keine Rolle spielen Fahrzeugeigenschaften bei der Entstehung von Mehrfachkollisionen. Bei Mehrfachkollisionen wurde häufig beobachtet, dass Pkw seitlich mit Objekten am Straßenrand (Leitplanke, Bäume etc.) zusammenstoßen. Bei Seitenkollisionen treten überdurchschnittlich schwere Fahrzeugdeformationen sowie schwere Verletzungen am Kopf, im Thoraxbereich und an den oberen Extremitäten auf. Die Rekonstruktion von Mehrfachkollisionen wird durch ein oftmals komplexes Spuren- und Deformationsbild erschwert. Hilfreich erweisen sich fotogrammetrische Verfahren wie Stereoaufnahmen und Draufsichtfotografie.
Pedestrian and cyclist are the most vulnerable road users in traffic crashes. One important aspect of this study was the comparable analysis of the exact impact configuration and the resulting injury patterns of pedestrians and cyclists in view of epidemiology. The secondary aim was assessment of head injury risks and kinematics of adult pedestrian and cyclists in primary and secondary impacts and to correlate the injuries related to physical parameters like HIC value, 3ms linear acceleration, and discuss the technical parameter with injuries observed in real-world accidents based documented real accidents of GIDAS and explains the head injuries by simulated load and impact conditions based on PC-Crash and MADYMO. A subsample of n=402 pedestrians and n=940 bicyclists from GIDAS database, Germany was used for preselection, from which 22 pedestrian and 18 cyclist accidents were selected for reconstruction by initially using PC-Crash to calculate impact conditions, such as vehicle impact velocity, vehicle kinematic sequence and throw out distance. The impact conditions then were employed to identify the initial conditions in simulation of MADYMO reconstruction. The results show that cyclists always suffer lower injury outcomes for the same accident severity. Differences in HIC, head relative impact velocity, 3ms linear contiguous acceleration, maximum angular velocity and acceleration, contact force, throwing distance and head contact timing are shown. The differences of landing conditions in secondary impacts of pedestrians and cyclists are also identified. Injury risk curves were generated by logistic regression model for each predicting physical parameters.
Introduction: Spine injuries pose a considerable risk to life and quality of life. The total number of road deaths in developed countries has markedly decreased, e.g. in Germany from over 20000 in 1970 to less than 4000 in 2010, but little is known how this is reflected in the burden of spine fractures of motor vehicle users. In this study, we aimed to show the actual incidence of spine injuries among drivers and front passengers and elucidate possible dependencies between crash mechanisms and types of injuries.
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.