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The accident research of Hanover and (from 1999 on) Dresden registered 736 leg injuries (AIS ≥ 2) from 1983 to March 2007. 174 of these injuries (23.6 %) were fractures or dislocations of foot and ankle. 149 feet of 141 front seat car occupants in 140 cars were affected. Of these 117 were drivers, 24 were front seat passengers. The mean age of occupants was 38.5 -± 16.8 years. Ankle fractures were the most frequent injury (n = 82; 80 malleolar fractures, 2 pilon fractures). 34 fractures and dislocations affected the hindfoot (5 talus and 26 calcaneal fractures, 2 subtalar dislocations and 1 subtotal amputation) , 16 to midfoot (4 navicular fractures, 5 cuboid fractures, 3 fractures of cuneiformia, 2 dislocations of chopart joint, 1 subtotal amputation, and one severe decollement) and 39 the forefoot (metatarsal fractures). Open fractures were seldom seen (2 malleolar fractures, 1 metatarsal fracture). Both feet were injured in 10 cases. 33 occupants (23.4 %) were polytaumatic had a polytrauma, 17 of them died. 81 percent of the occupants were belted. The cars were divided in pre EuroNCAP (year of manufacture 1997 and older) and post EuroNCAP cars (year of manufacture 1998 and newer). Most of the foot injuries were seen in pre EuroNCAP cars. Most of the occupants sat in compact cars (40 drivers and 9 front seat passengers) and large family cars (27 drivers and 7 co-drivers). 49 of 140 accidents occurred on country roads, 26 on main roads and 13 on motorways. The crash direction was mostly frontal. Generally were found no differences of delta v- and EES-level between the injured foot regions, but divided into pre- and post-EuroNCAP cars there was a tendency to higher delta v- and EES-levels in newer cars. The frequency of foot injuries increased linearly with increasing delta v-level; but above delta v-level of 55 km/h the linear increase only was seen in pre-EuroNCAP cars, post-EuroNCAP cars showed no further increase of injuries. The footwell intrusion showed no difference between the injured foot regions but pre-EuroNCAP cars had a tendency to higher footwell intrusion. There were no differences in footwell intrusion between the car types. Only 29 of 174 fractures or dislocations of foot were seen in post-EuroNCAP cars, the predominate number of these injuries (n = 145) were noticed in pre-EuroNCAP cars. A lower probability of long-term impairment was found in post-EuroNCAP cars for equal delta v levels, using the AIS2008 associated Functional Capacity Index (FCI) for the foot region.
Real world accident reconstruction with the Total Human Model for Safety (THUMS) in Pam-Crash
(2013)
Further improvement of vehicle safety needs detailed analysis of real world accidents. According to GIDAS (German In-Depth Accident Study) most car to car front accidents occur at mid-crash severity. In this range thoracic injuries already occur. In this study a real world frontal crash with mid-crash severity out of the AARU database was reconstructed. The selected car to car accident was reconstructed by AARU by means of pc-crash software in order to get the initial dynamic accident conditions. These initial conditions were used to reconstruct the complete accident in more detail using FE models for the car structure and the occupants. Occupant simulations were performed with FE HIII-dummy models and the THUMS using Pam-Crash code. An initial THUMS validation was performed in order to verify the model-´s biofidelity by means of table-top test simulations. THUMS bone stiffness values were modified to match the real word occupant age. A comparison between driver and passenger restraint system loading was done, as well as an injury prediction comparison between the HIII-dummy model and THUMS response for both cases. Detailed comparison between the HIII-dummy models and THUMS regarding thoracic loading are discussed.
Small overlap frontal crashes are defined by a damage pattern with most of the vehicle deformation concentrated outboard of the main longitudinal structures. These crashes are prominent among frontal crashes resulting in serious and fatal injuries, even among vehicles that perform well in regulatory and consumer information crash tests. One of the critical aspects of understanding these crashes is knowing the crash speeds that cause the types of damage associated with serious injuries. Laboratory crash tests were conducted using 12 vehicles in three small overlap test conditions: pole, vehicle-to-vehicle collinear, and vehicle-to-vehicle oblique (15-degree striking angle). Field reconstruction techniques were used to estimate the delta V for each vehicle, and these results were compared with actual delta V values based on vehicle accelerometer data. Estimated delta Vs were 50% lower than actual values. Velocity change estimates for small overlap frontal crashes in databases such as NASS-CDS significantly underestimate actual values.
Sedan type vehicles in which adult rear seat passengers were present and which were involved in frontal collisions were investigated, and the influence of unbelted rear seat passengers on the injuries of front seat occupants was studied. Unbelted rear seat passengers move forward during impact. It was observed that there were not only cases in which front seat occupants sustained injuries caused by direct contact with rear seat passengers, but also cases where front seat occupants received severe injuries due to additional force from rear seat passengers, either impacting directly or indirectly as a result of deformation of the front seat. Severe injuries of front seat occupants were observed in the latter cases. This research validates the importance of seat-belt use for rear seat passengers, not only to protect themselves but also to mitigate injuries of front seat occupants.
Cycle helmets have continued to increase in popularity since their introduction half a century ago. Many studies indicate that overall, head injury can be significantly reduced by wearing them. This study was conducted using two distinct sets of real-world cycling collision data from Ireland, namely cases involving police collision reports and cases involving admission to a hospital emergency department. The analyses sought to simulate and analyse the protective performance of cycle helmets in such collision scenarios, by comparing the Head Injury Criterion score and peak head accelerations, both linear and angular. Cycle collisions were simulated using the specialised commercial software MADYMO. From the simulation results, these key metrics were compared between the same-scenario helmeted and unhelmeted cyclist models. Results showed that the inclusion of bicycle helmets reduced linear accelerations very significantly, but also increased angular accelerations significantly compared to unhelmeted situations. Given the modest protective performance of cycle helmets against angular accelerations, it is recommended that cycle helmet manufacturers and international test standards need to pay more attention to head angular accelerations.
Aim of the study was to evaluate the protective effect of bicycle helmets particularly considering injuries to the head and to the face. Accidents with the participation of bicyclists which occurred from 2000 to 2007 were chosen from GIDAS. We observed that injuries to the head and face were more severe in the group of non-helmeted riders. There seems to be no significant difference in injuries with AIS 3-6. Altogether 26 cyclists were killed. 2 of them wore a helmet (1% of helmeted cyclists), 24 did not (1% of non-helmeted cyclists). Only one killed rider (without helmet) did not suffer from polytrauma (only head injuries recorded). The findings seem to support the thesis of a preventive effect of the bicycle helmet, however the two groups are different in their characteristics related to riding speed. Necessarily we need a multivariate model to evaluate the effect of helmets.
Die Elektromobilität ist nicht erst seit dem Nationalen Entwicklungsplan Elektromobilität der Bundesregierung, der u.a. als Zielsetzung hat, dass eine Million Elektrofahrzeuge bis 2020 auf deutschen Straßen fahren sollen, ein allgegenwärtiges Thema. Eine zu lösende Aufgabe auf dem Weg zu diesem Ziel ist die Betrachtung der Abhängigkeiten der Systeme Elektrofahrzeug, Ladeverbindungseinheit und Ladesystem, welche bisher weitgehend autonom normiert sind. Um Personen- und Sachschäden beim Laden von Fahrzeugen zu vermeiden, ist es möglicherweise erforderlich, Anforderungen an die Sicherheit dieses Gesamtsystems zu definieren. Zu diesem Zweck beauftragte die Bundesanstalt für Straßenwesen die SGS-TÜV Saar GmbH, Competence Center Funktionale Sicherheit mit der Durchführung einer Risikoanalyse, mit dem Ziel die Sicherheitsaspekte beim Laden eines Elektrofahrzeuges zu untersuchen. Bisher nicht bzw. unzureichend betrachtete Gefährdungen während des Ladevorganges sollten aufgezeigt werden. Nötige Maßnahmen sollten definiert und punktuell mittels Tests validiert werden, um identifizierte Risiken auf ein ausreichend geringes Maß zu senken. Im Kern wurde untersucht, welche potenziellen Risiken (Das Risiko definiert sich als die Beschreibung eines Ereignisses mit der Möglichkeit negativer Auswirkungen. Das Risiko wird allgemein als Produkt aus Eintrittswahrscheinlichkeit eines Ereignisses und dessen Konsequenz angesehen. (Quelle: Wikipedia)) beim Laden eines Elektrofahrzeugs auftreten. Auf Basis einer Normenrecherche wurde die Frage beantwortet, an welchen Stellen normativer und gesetzlicher Handlungsbedarf besteht. Dazu wurden die nachfolgenden Schwerpunkte erarbeitet: - Darstellung möglicher sicherheitskritischer Bedingungen beim Laden; - Zuordnung der sicherheitskritischen Bedingungen zu den Subsystemen Infrastruktur, Kabel und Fahrzeug; - Definition von Maßnahmen zur Erhöhung der Sicherheit beim Laden; - Aufzeigen der Zuständigkeiten für die Gewährleistung der Sicherheit; - Offenlegung des regelungsseitigen Bedarfs. Im ersten Schritt wurde eine Risikoanalyse durchgeführt, um die potenziellen Risiken beim Laden eines Elektrofahrzeugs aufzuzeigen. Die Risikoanalyse wurde zunächst ohne Berücksichtigung bereits normativ oder gesetzlich festgelegter Schutzmaßnahmen durchgeführt. Anschließend erfolgte eine iterative Weiterführung der Betrachtung der Risiken in zweierlei Hinsicht: a) Berücksichtigung existierender normativer und/ oder gesetzlicher Anforderungen, welche parallel zur Risikoanalyse recherchiert wurden; b) Beschreibung ergänzender technischer und/ oder organisatorischer Maßnahmen, um nicht abgedeckte Risiken weiter zu reduzieren. Danach wurde eine erneute Beurteilung der Risiken vorgenommen, um aufzuzeigen, ob die vorhandenen bzw. neu definierten Maßnahmen in der Lage sind, das identifizierte Risiko in ausreichendem Maß zu reduzieren. Generell zeigte sich im Rahmen der Risikoanalyse eine breite, durch Normen und Richtlinien bzw. gesetzlichen Regelungen, vorhandene Abdeckung der möglichen Risiken. Derzeit nicht abgedeckte Risiken konnten adressiert und wirksame Lösungsmöglichkeiten vorgeschlagen werden. Bei Umsetzung aller aufgezeigten Lösungsansätze bleiben somit keine relevanten Risiken offen. Jedoch zeigt sich auch, dass zu bestimmten Themen dringender Handlungsbedarf besteht. Als Ergebnis ließ sich zu folgenden Punkten ein konkreter Handlungsbedarf ableiten: - Als eines der Hauptrisiken wurde das Laden an einer haushaltsüblichen Schukosteckdose, ohne die Nutzung einer zusätzlichen in der Ladeleitung integrierten Schutzeinrichtung, identifiziert. Bei Ladeleitungen mit Schutzeinrichtung hängt deren Schutzwirkung nicht zuletzt von einer regelmäßigen technischen Überprüfung ab; - Als relevant wurden weiterhin die elektromagnetischen Felder, die von einer Ladeleitung bei hohen Strömen ausgehen (zukünftige Schnellladesysteme), identifiziert, hier sind tiefergehende Untersuchungen erforderlich; Im Sinne der Risikominimierung sollte auch das maximal zulässige Gewicht der Ladegarnitur limitiert sein; - Auch Risiken, die sich durch die Bedienung ergeben, wurden untersucht. Mit entsprechenden Hinweisen im Bedienungshandbuch des Elektrofahrzeuges kann hier bereits einigen möglichen Gefahren begegnet werden. Dies betrifft unter anderem die Handhabung der Ladegarnitur beim Laden im öffentlichen Raum. Aus den ermittelten, noch umzusetzenden Maßnahmen geht hervor, dass der derzeitige Stand der Normung und gesetzlichen Regelungen noch nicht vollkommen ausreichend ist, um alle ermittelten und aufgezeigten Risiken in ausreichendem Maße zu reduzieren. Aus den Ergebnissen der Studie wird aber auch deutlich, dass die Sicherheit nicht alleine von einem Teilsystem alleine, sondern vielmehr durch das sichere Zusammenwirken aller Teile, auch in Kombination mit dem Verhalten der Nutzer und partizipierender Personen, gewährleistet wird.
This study aimed at prediction of long bone fractures and assessment of lower extremity injury mechanisms in real world passenger car to pedestrian collision. For this purpose, two pedestrian accident cases with detail recorded lower limb injuries were reconstructed via combining MBS (Multi-body system) and FE (Finite element) methods. The code of PC Crash was used to determine the boundary conditions before collision, and then MBS models were used to reproduce the pedestrian kinematics and injuries during crash. Furthermore, a validated lower limb FE model was chosen to conduct reconstruction of injuries and prediction of long bone fracture via physical parameters of von Mises stress and bending moment. The injury outcomes from simulations were compared with hospital recorded injury data and the same long bone fracture patterns and positions can be observed. Moreover, the calculated long bone fracture tolerance corresponded to the outcome from cadaver tests. The result shows that FE model is capable to reproduce the dynamic injury process and is an effective tool to predict the risk of long bone fractures.
Europe has benefited from a decreasing number of road traffic fatalities. However, the proportion of older road users increases steadily. In an ageing society, the SENIORS project aims to improve the safe mobility of older road users by determining appropriate requirements towards passive vehicle safety systems. Therefore, the characteristics of road traffic crashes involving the elderly people need to be understood. This paper focuses on car occupants and pedestrians or cyclists in crashes with modern passenger cars. Ten crash databases and four hospital statistics from Europe have been analysed to answer the questions on which body regions are most frequently and severely injured in the elderly, and specific injuries sustained by always comparing older (65 years and above) with midâ€aged road users (25â€64 years). It was found that the body region thorax is of particularly high importance for the older car occupant with injury severities of AIS2 or AIS3+, where as the lower extremities, head and the thorax need to be considered for older pedestrians and cyclists. Further, injury risk functions were provided. The hospital data analysis showed less difference between the age groups. The linkage between crash and hospital data could only be made on a general level as their inclusion criteria were quite different.
A reduction of around 48% of all road fatalities was achieved in Europe in the past years including a reduced number of fatalities with an older age. However, among all road fatalities, the proportion of elderly is steadily increasing. In an ageing society, the European (Horizon2020) project SENIORS aims to improve the safe mobility of older road users, who have different transportation habits compared to other age groups. To increase their level of safe mobility by determining appropriate requirements for vehicle safety systems, the characteristics of current road traffic collisions involving the elderly and the injuries that they sustain need to be understood in detail. Hereby, the paper focuses on their traffic participation as pedestrian, cyclist or passenger car occupant. Following a literature review, several national and international crash databases and hospital statistics have been analysed to determine the body regions most frequently and severely injured, specific injuries sustained and types of crashes involved, always comparing older road users (65 years and more) with mid-aged road users (25-64 years). The most important crash scenarios were highlighted. The data sources included European statistics from CARE, data on national level from Germany, Sweden, Italy, United Kingdom and Spain as well as in-depth crash information from GIDAS (Germany), RAIDS (UK), CIREN and NASS-CDS (US). In addition, familiar hospital data from Germany (TraumaRegister DGU-®), Italy (Italian Register of Acute Traumas) and UK hospital statistics (TARN) were included in the study to gain further insight into specific injury patterns. Comprehensive data analyses were performed showing injury patterns of older road users in crashes. When comparing with mid-aged road users, all databases showed that the thorax body region is of particularly high importance for the older car occupant with injury severities of AIS 2 or AIS 3+, whereas the body regions lower extremities, head and thorax need to be considered for the older pedestrians and cyclists. Besides these comparisons, the most frequent and severe top 5 injuries were highlighted per road user group. Further, the most important crash configurations were identified and injury risk functions are provided per age group and road user group. Although several databases have been analysed, the picture on the road safety situation of older road users in Europe was not complete, as only Western European data was available. The linkage between crash data and hospital data could only be made on a general level as their inclusion criteria were quite different.