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To elucidate the risk of pedestrians, bicycle and motorbike users, data of two accident research units from 1999 to 2014 were analysed in regard to demographic data, collision details, preclinical and clinical data using SPSS. 14.295 injured vulnerable road users were included. 92 out of 3610 pedestrians ("P", 2.5%), 90 out of 8307 bicyclists ("B", 1.1%) and 115 out of 4094 motorcycle users ("M", 2.8%) were diagnosed with spinal fractures. Thoracic fractures were most frequent ahead of lumbar and cervical fractures. Car collisions were most frequent mechanism (68, 62 and 36%). MAIS was 3.8, 2.8 and 3.2 for P, B and A with ISS 32, 16 and 23. AIS-head was 2.2, 1.3 and 1.5). Vulnerable road users are at significant risk for spine fractures. These are often associated with severe additional injuries, e.g. the head and a very high overall trauma severity (polytrauma).
Although ATV accidents account for numerous deaths in the US and Australia, the role in traffic accidents and hospital admissions in Germany is unknown. At a level I trauma centre, hospital and crash charts were analysed for medical and technical parameters of ATV accidents. ATV drivers were 0.1% of emergency trauma patients. The mean total hospital stayrnwas 15 days; there were 1.5 stays per patients with 2.0 surgical procedures needed. One patient died, only two recovered fully. 14 cases of ATV accidents out of 18990 (0.1%) were documented within 10 years. The mean impact velocity was 35 km/h. Car collisions were predominant. The upper extremity was the predominant injured region (AIS 0.7), Mean maximum AIS was 1.4. ATV accidents in Germany are rare but pose high risk for severe injuries. Possible reasons are low active and passive security, limited experience and risky driving behaviour. Preventive measures are discussed.rn
The purpose of this work is to investigate the association between the injuries in motorcycle accident and the main accident configurations. The data were provided by a multicentric case-control study MAIDS regarding the risk of crash and injuries of motorcyclists. Chi-square test was used to evaluate the relationship between the variables and a logistic regression was performed to evaluate the association of injury severity with some variables supposed to be predictive factors. Lesive patterns characterized by internal haemorrhages are mainly associated with fronto-lateral crashes, above all in urban areas. Lacerations or abrasions, mainly reported in torso and lower extremities, are mostly associated with single crashes or accidents in queue also for crashes occurred to low speed (< 50 km/h). The severity of injuries is highly associated with impact speed, regardless of the crash configuration. Fractures and haemorrhages play an important role in determining the severity of injuries. The upper extremities are the most frequently traumatised anatomic areas.
Powered Two Wheelers (PTWs) accidents constitute one of the road safety problems in Europe. PTWs fatalities represent 22% at EU level in 2006, having increased during last years, representing an opposite trend compared to other road users" figures. In order to reduce these figures it is necessary to investigate the accident causation mechanisms from different points of view (e.g.: human factor, vehicle characteristics, influence of the environment, type of accident). SAFERIDER project ("Advanced telematics for enhancing the SAFEty and comfort of motorcycle RIDERs", under the European Commission "7th Framework Program") has investigated PTW accident mechanisms through literature review and statistical analyses of National and In-depth accident databases; detecting and describing all the possible PTW's accident configurations where the implementation of ADAS (Advanced Driver Assistance Systems) and IVIS (In-Vehicle Information Systems) could contribute to avoid an accident or mitigate its severity. DIANA, the Spanish in-depth database developed by CIDAUT, has been analyzed for that purpose. DIANA comprises of accident investigation teams, in close cooperation with police forces, medical services, forensic surgeons, garages and scrap yards. An important innovation is the fact that before injured people arrive to hospitals, photographs and explanations about the possible accident injury mechanisms are sent to the respective hospitals (via 3G GPRS technology). By this, additional information to medical staff can be provided in order to predict in advance possible internal injuries and select the best medical treatment. This methodology is presented in this paper. On the other hand, the main results (corresponding to road, rider and PTW characteristics; pre and post-accident manoeuvres; road layout; rider behaviour; impact points; accident causations;...) from the analyses of the PTW accidents used for SAFERIDER are shown. Only accident types relevant to ADAS and IVIS devices have been considered.
The following paper presents the nature and mechanism of injuries sustained in frontal impacts, focusing on car to car impacts. It was found that the body regions most frequently sustaining severe to fatal injuries were the legs and the thorax. The nature and mechanism of the injury sustained was investigated only for the thorax injuries, due to their potentially life threatening nature. The analysis revealed that the most frequent cause of the injury recorded was the seatbelt for low severity injuries and the front structure of the vehicle for higher severity injuries. An analysis of the effect of load limiter technology in the restraint system showed that the proportion of occupants who sustained "no thorax injury" did not increase when a load limiter was fitted to the restraint system. However, a decrease in the "organ" and "organ and skeletal" injuries was observed in the load limiter sample. Sample size and variation mean that these findings are not conclusive.
Die Bundesanstalt für Straßenwesen (BASt) bringt zum Ende jeden Jahres eine Prognose der Unfall- und Verunglücktenzahlen des noch laufenden Jahres heraus, um so über die Entwicklung der Verkehrssicherheit in Deutschland Bilanz ziehen zu können. Dabei wird das Unfallgeschehen nach dem Schweregrad der Konsequenzen, der Ortslage sowie Alter und Art der Verkehrsbeteiligung der Verunglückten in 27 Zeitreihen unterteilt. Zu diesem Zeitpunkt sind die Daten lediglich für die ersten acht oder neun Monate erhältlich. Um Bilanz zu ziehen, werden die Anzahlen der letzten drei oder vier Monate prognostiziert. Gesamtziel des hier beschriebenen Forschungsvorhabens ist die Optimierung der jährlichen Unfallprognosen durch Anwendung von strukturellen Zeitreihenmodellen, bei denen die Vorhersagen aus dem Trend der vorliegenden Monate, und der Dynamik der vorhergehenden Jahre abgeleitet werden. Um dem Einfluss der Witterungsverhältnisse Rechnung zu tragen, werden dabei meteorologische Variablen in das Vorhersagemodell aufgenommen. Um die Modelle zu testen, werden die endgültigen Daten der letzten 15 Jahre jeweils aus den vorläufigen Daten der ersten Monate vorhergesagt und mit den tatsächlich beobachteten endgültigen Unfall- und Verunglücktenzahlen verglichen. Die Resultate zeigen, dass im Vergleich zu den bisherigen Vorhersagen mithilfe der hier vorgestellten Modelle die Vorhersagen für 25 der 27 Reihen präziser werden. Lediglich zwei Reihen zeigen einen leichten Anstieg des Vorhersagefehlers. Beim Vergleich von Modellen mit und ohne meteorologischen Variablen zeigt sich, dass 23 der 27 Reihen besser vorhergesagt werden können, wenn man das Wetter berücksichtigt. Neben der verbesserten Vorhersage ermöglicht die Aufnahme der Wettervariablen auch eine Einschätzung, wie groß der Einfluss der Witterungsgegebenheiten auf das Unfallgeschehen ist. Es zeigt sich also, dass die Anwendung von strukturellen Zeitreihenmodellen und die Berücksichtigung von meteorologischen Variablen zu einer deutlichen Verbesserung der Vorhersagegenauigkeit führen. Die Verbesserung der Vorhersagen durch die Aufnahme von Wettervariablen bestätigt nochmals den Einfluss der Witterungsumstände auf das Unfallgeschehen.
Motorcycle riders are one of the most vulnerable road users. Annually, on estimate 6000 people are killed in motorcycle accidents in the former 15 EU countries. The objective of this research was to investigate and analyze the main aspects and causes of this vulnerability and the accidents in general. For this aim around 70 accidents in The Netherlands were investigated in the framework of an international research program (MAIDS). Also a control group of motorcycles with riders was investigated so that exposure could be taken into account. An important result is that human failure is in 82% of the cases the main cause of the accident, in 52% this is due the other vehicle driver. Perception and decision failures are the most common failures. The most injuries are caused by the environment but they are typically only less severe (AIS1). Injuries caused by the car (front and side) are typically severe injuries (AIS4+). Previous convictions of the MC rider seem to be related to the chance to get involved in an accident. It was shown that the Dutch and the total MAIDS accident sample are comparable.
While many medical studies have dealt with the incidence, nature and treatment of polytrauma the injury-causing accident mechanisms are rarely discussed in detail, mostly due to the lack of documentation of the technical aspects. The present prospective study was started in late 2007 and collects data from traffic accidents with most severely injured in six south- German counties and two larger cities for the duration of one year. It is aimed at identifying and documenting all polytrauma cases (ISS ≥ 16) caused by traffic accidents and their crash circumstances. The data collection is based on an interdisciplinary concept to include both the police, emergency dispatch centers, hospitals and fire departments in the region and is completely anonymous. Potentially relevant cases where an emergency physician was called to the scene of a traffic accident are provided by the dispatch center. All three hospitals in the region suited for the treatment of polytraumatised patients record injuries, major diagnostic and surgery data. Data and images from the accident scene are provided by the police and by fire departments. The latter provide information which is usually not available from the police, like deployed airbags, vehicle extrication measures and detailed views of car interiors. The main objective of the study is to determine the structure of road users who sustain a polytrauma, their crash opponents and the injury patterns found in relation to the collision configuration and the protection by seat belts, air bags and other devices. With detailed documentation of vehicle damage and extrication measures the study is also intended to support the development of injury predictors for pre-hospital treatment and provide field data regarding further improvement of technical rescue.
A total survey of road traffic accidents involving most severely injured, defined as sustaining a polytrauma or severe monotrauma (ISS > 15) or being killed, was conducted over 14 months in a large study region in Germany. Data on injuries, pre-clinical and clinical care, crash circumstances and vehicle damage were obtained both prospectively and retrospectively from trauma centers, dispatch centers, police and fire departments. 149 patients with a polytrauma and eight with a severe monotrauma were recorded altogether. 22 patients died in hospital. Another 76 victims had deceased at the accident scene. In 2008, 49 % of patients treated with life-threatening injuries were car or van occupants, 21 % motorcyclists, 18 % cyclists and 10 % pedestrians. Among fatalities at the scene, vehicle occupants constituted an even larger portion. The number of road users with life-threatening trauma in the region was extrapolated to the German situation. It suggests that 10 % among the "seriously injured" as defined in national accident statistics are surviving accident victims with a polytrauma or severe monotrauma.
Pelvic fracture, cracking or breaking of a portion of the pelvis are extremely common injuries in the side impact collisions of motor vehicles. Due to both its shape and structural architecture, mechanics of the pelvic bone is complicated. There is a lack of knowledge regarding the dynamic behavior of the pelvis and its biomechanical tolerance under impact environment. Hence this study is aimed at the understanding of the mechanical response of the human pelvis with three-dimensional finite element (FE) models, under side impact load, applied through a structure, equivalent to a car door. The door structure was modeled, considering few layers, consisting of foam (Styrodur®, 3035 CS), plastic (UHMWPE), steel, glass and steel, putting them in series. A soft tissue layer (equivalent to fat) was also considered on the greater trochanter location. These FE models (with and without the car door structure) were analyzed with ANSYS-LS-DYNA-® dynamic finite element software to compare the effect of the car door padding system for shock absorption. It was observed that with proper combination of shock absorbing material (foam, etc.) and its thickness, the transmission of impact load to the body part (pelvis, etc.) from the outer surface of the car door could be reduced.
This paper reviews briefly the evolution of the investigation of transport accidents from the early beginnings when individual events were studied but systematic data was not collected. In the transport modes other than on the roads, accident investigation early on, even of single events, was important in introducing safety improvements. Road accidents, however, evolved enormously with the growth of car ownership without any comparable political response to the consequent deaths and injuries, equivalent to what happened with the other modes. From the 1950s data bases started to contribute to our knowledge of the epidemiology of road traffic injuries, and in-depth sample studies have contributed much to the body of knowledge in the last 30 years. However, even the basic input and output variables of a crash, its severity and the seriousness of the outcomes in terms of injuries and their consequences are not complete or agreed upon. Issues of experimental design and sampling are discussed. It is proposed that the most important area for current research to address is the effect of population variations on injury outcomes. The need for the establishment of good data bases for active safety issues is emphasised with the consequent need for better links between the research community and the police.
This study aimed at developing an injury estimation algorithm for AACN technologies for Germany and compared them to findings based on Japanese data. The data to build and to verify the algorithm was obtained from the German in-depth Accident Database (GIDAS) and split into a training and a validation dataset. Significant input variables and the generalized linear regression model to predict severe injuries (ISS>15) were selected to maximize area under the receiver operating characteristic curve (AUC). Probit regression with the input parameter multiple impact, delta v, seatbelt use and impact direction gave the largest AUC of 0.91. Sensitivity of the algorithm was validated at 90% and specificity at 76% for an injury risk threshold of 2%. It appears that no major differences between Japan and Germany exist for injury estimation based on delta v and impact direction. However, far side impact and multiple crash events appear to be associated with a larger risk increase in the German data.
The main objective of EC CASPER research project is to reduce fatalities and injuries of children travelling in cars. Accidents involving children were investigated, modelling of human being and tools for dummies were advanced, a survey for the diagnosis of child safety was carried out and demands and applications were analysed. From the many research tasks of the CASPER project, the intention of this paper is to address the following: • In-depth investigation of accidents and accident reconstruction. These will provide important points for the injury risk curve, in order to improve it. Different accident investigation teams collected data from real road accidents, involving child car passengers, in five different European countries. Then, a selection of the most appropriate cases for the injury risk curve and the purposes of the project was made for an in-depth analysis. The final stage of this analysis was to conduct an accident reconstruction to validate the results obtained. The in-depth analysis included on-scene accident investigation, creating virtual simulations of the accident/possible reconstruction, and conducting the reconstruction. In the cases of successful reconstructions, new points were introduced to the injury risk curves. Accident reconstructions of selected cases were carried out in test laboratories as the next step following in-depth road accident investigation. These cases were reconstructed using similar child restraint systems (CRS) and the same type make and model as in the real accidents. Reconstructing real cases has several limitations, such as crash angle, cars" approximation paths and crash speed. However, a few changes and applications on the testing conditions were applied to reduce the limitations and improved the representations of the real accidents. After conducting the reconstructions, a comparison between the deformations of the cars on the real accident and the vehicles from the reconstructions was made. Additionally, a correlation between the data captured from the dummies and the injury data from the real accident was sought. This finalises an in-depth analysis of the accident, which will provide new relevant points to the injury risk curve. The CASPER project conducted a large research programme on child safety. On technical points, a promising research area is the developing injury risk curves as a result of in-depth accident investigations and reconstructions. This abstract was written whilst the project was not yet finished and final results are not yet known, but they will be available by the time of the conference. All the works and findings will not necessarily be integrated in the industrial versions of evaluation tools as the CASPER project is a research program.
Injury probability functions for pedestrians and bicyclists based on real-world accident data
(2017)
The paper is focusing on the modelling of injury severity probabilities, often called as Injury Risk Functions (IRF). These are mathematical functions describing the probability for a defined population and for possible explanatory factors (variables) to sustain a certain injury severity. Injury risk functions are becoming more and more important as basis for the assessment of automotive safety systems. They contribute to the understanding of injury mechanisms, (prospective) evaluation of safety systems and definition of protection criteria or are used within regulation and/or consumer ratings. In all cases, knowledge about the correlation between mechanical behavior and injury severity is needed. IRFs are often based on biomechanical data. This paper is focusing on the derivation of injury probability models from real world accident data of the GIDAS database (German In-depth Accident Study). In contrast to most academic terms there is no explicit term definition or definition of creation processes existing for injury probability models based on empirical data. Different approaches are existing for such kind of models in the field of accident research. There is a need for harmonization in terms of the used methods and data as well as the handling with the existing challenges. These are preparation of the dataset, model assumptions, censored/unknown data, evaluation of model accuracy, definition of dependent and independent variable, and others. In the presented study, several empirical, statistical and phenomenological approaches were analyzed regarding their advantages and disadvantages and also their applicability. Furthermore, the identification of appropriate prediction parameters for the injury severity of pedestrians has been considered. Due to its main effect on injuries of pedestrians and bicyclists, the importance of the secondary impact has also been analyzed. Finally, the model accuracy, evaluated by several criteria, is the rating factor that gives the quality and reliability for application of the resulting models. After the investigation and evaluation of statistical approaches one method was chosen and appropriate prediction variables were examined. Finally, all findings were summarized and injury risk functions for pedestrians in real world accidents were created. Additionally, the paper gives instructions for the interpretation and usage of such functions. The presented results include IRFs for several injury severity levels and age groups. The presented models are based on a high amount of real world accidents and describe very well the injury severity probability of pedestrians and bicyclists in frontal collisions with current vehicles. The functions can serve as basis for the evaluation of effectiveness of systems like Pedestrian-AEB or Bicycle-AEB.
The paper presents a methodology for the benefit estimation of several secondary safety systems for pedestrians, using the exceptional data depth of GIDAS. A total of 667 frontal pedestrian accidents up to 40kph and more than 500 AIS2+ injuries have been considered. In addition to the severity, affected body region, exact impact point on the vehicle, and the causing part of every injury, the related Euro NCAP test zone was determined. One results of the study is a detailed impact distribution for AIS2+ injuries across the vehicle front. It can be stated, how often a test zone or vehicle part is hit by pedestrians in frontal accidents and which role the ground impact plays. Basing on that, different secondary safety measures can be evaluated by an injury shift method concerning their real world effectiveness. As an example, measures concerning the Euro NCAP pedestrian rating tests have been evaluated. It was analysed which Euro NCAP test zones are the most effective ones. In addition, real test results have been evaluated. Using the presented methodology, other secondary safety like the active bonnet (pop-up bonnet) or a pedestrian airbag measures can be evaluated.
The paper aims to study the injury risk and kinematics of pedestrians involved in different passenger vehicle collisions. Furthermore, the difference of pedestrian kinematics in the accidents involved minivan and sedan was analyzed. The 18 sample cases of passenger car to pedestrian collisions were selected from the database of In-depth Investigation of Vehicle Accident in Changsha of China (IVAC),of which the 12 pedestrian accidents involved in a minivan impact for each case, and the 6 accidents in a sedan impact for each. The selected cases were reconstructed by using mathematical models of pedestrians and accident vehicles in a multi-body dynamic code MADYMO environment. The logistic regression models of the risks for pedestrian AIS 3+ injuries and fatalities were developed in terms of vehicle impact speed by analyzing the minivan-pedestrian and sedan-pedestrian accidents. The difference of pedestrian kinematics was identified by comparing the results from reconstructed pedestrian accidents between the minivans and sedans collisions. The result shows that there is a significant correlation among the impact speed and the severity of pedestrian injuries. The minivan poses greater risk to pedestrian than sedan at the same impact speed. The kinematics of pedestrian was greatly influenced by vehicle front shape.
Sowohl die Zahl der im Straßenverkehr Getöteten wie auch die der Schwerverletzten sind nach Angaben der amtlichen Statistiken in Deutschland seit Jahren rückläufig. Die Gruppe der Schwerverletzten ist allerdings sehr heterogen und umfasst alle Unfallopfer, die für mindestens 24 Stunden in einem Krankenhaus behandelt wurden. Die vorliegende Untersuchung versucht, mit Hilfe von Daten des Traumaregisters der Deutschen Gesellschaft für Unfallchirurgie (DGU) die Frage zu beantworten, ob auch bei den besonders schwer verletzten Verkehrsunfallopfern ein Rückgang der Zahlen zu beobachten ist. Dazu wurden "schwerstverletzte" Patienten definiert als solche, die im Injury Severity Score (ISS) mindestens 9 Punkte erreicht haben und zudem intensivmedizinisch behandelt werden mussten. Der Zeitraum der Untersuchung umfasst zehn Jahre von 1997 bis 2006, der für einige Fragestellungen zusätzlich in zwei je 5-jährige Phasen unterteilt wurde. Ab 2002 (Phase 2) ist auch eine separate Auswertung für Fahrrad- und Motorradfahrer möglich. Die erste Fragestellung richtete sich auf die Veränderung der Anzahl schwerstverletzter Verkehrsunfallopfer über die Zeit. Dafür wurden die Daten von über 11.000 Patienten aus 67 verschiedenen Kliniken betrachtet. Pro Klinik wurde ein Durchschnittswert für die Anzahl von Verkehrsunfallopfern bestimmt, der dann mit der tatsächlich beobachteten Zahl verglichen wurde. Im Ergebnis zeigte sich, dass die relativen Abweichungen vom Durchschnitt insgesamt nur etwa -±10% betragen und dass kein deutlicher Trend einer Abnahme oder Zunahme der Schwerstverletztenzahlen in den vergangenen 10 Jahren erkennbar ist. In der zweiten Fragestellung wurde untersucht, ob und wie stark ein Rückgang der Letalität zu einem Anstieg der Schwerstverletztenzahlen geführt haben könnte. Es konnte gezeigt werden, dass in den letzten beiden Jahren deutlich weniger Patienten im Krankenhaus verstorben sind, als dies nach ihrer Prognose zu erwarten gewesen wäre. Dieser Rückgang der Letalitätsrate von absolut bis zu 5 (in 2006: Prognose 18% versus beobachtet 13%) trägt damit auch zu einer Zunahme bei der Zahl der Schwerstverletzten bei. Zur Abschätzung der Prognose wurde ein im Traumaregister entwickeltes und validiertes Scoresystem (RISC) eingesetzt. In der letzten Fragestellung sollte geklärt werden, ob sich das Verletzungsmuster bei den Schwerstverletzten in den vergangenen zehn Jahren und abhängig von der Art der Verkehrsteilnahme verändert hat. Insgesamt konnte gezeigt werden, dass der relative Anteil der Autofahrer rückläufig war, von 60% auf 50%. Bei den verletzten Körperregionen zeigt das Schädel-Hirn-Trauma den deutlichsten Rückgang von 69 % auf 60% insgesamt. Dieser Trend ist bei allen Verkehrsbeteiligten erkennbar. Lediglich Verletzungen der Wirbelsäule werden häufiger gesehen, was aber auch ein Effekt der verbesserten CT-Diagnostik sein kann, zum Beispiel beim Ganzkörper-CT. Je nach Art der Verkehrsbeteiligung zeigen sich sehr unterschiedliche Verletzungsmuster. Verletzungen des Kopfes sind bei Radfahrern und Fußgängern dominierend (über 70%), während Motorradfahrer hier die günstigsten Raten zeigen (45%). Motorrad- und Autofahrer haben die höchsten Raten für Verletzungen des Brustkorbs und im Bauchraum, bedingt durch die im Mittel höheren einwirkenden Kräfte auf den Körper. Insgesamt lassen sich die Daten des DGU-Traumaregisters gut nutzen, um typische Verletzungsmuster zu beschreiben und um relative Veränderungen bei der Zahl der Schwerstverletzten über die Zeit nachzuweisen. Beobachtungszeiträume von zehn Jahren und mehr, wie im vorliegenden Fall, ermöglichen auch aktuelle Trendaussagen. Epidemiologische Aussagen wie in den amtlichen Statistiken sind aber nur sehr eingeschränkt möglich, da das Traumaregister bisher nur auf freiwilliger Basis Daten sammelt.
Abschätzung der Gesamtzahl Schwerstverletzter in Folge von Straßenverkehrsunfällen in Deutschland
(2010)
Die Zahlen der im Straßenverkehr Getöteten, Schwer- und Leichtverletzten werden in Deutschland seit Jahren in amtlichen Statistiken geführt. Über die Gruppe der besonders schwer betroffenen Patienten liegen jedoch nur vage Schätzungen vor. Auch werden unterschiedliche Kriterien zur Definition dieser so genannten Schwerstverletzten verwendet, die zumeist auf einer Beschreibung der Art und der Schwere der Verletzungen beruhen. In der vorliegenden Arbeit sollen mit Daten aus dem Trauma-Register der DGU sowohl die unterschiedlichen Definitionen dargestellt werden, als auch über verschiedene Methoden die Gesamtzahl dieser Personen in Deutschland geschätzt werden. Das TraumaRegister DGU (TR-DGU) ist eine freiwillige Dokumentation von Unfallopfern, die lebend eine Klinik erreichen, dort behandelt werden und intensivmedizinisch betreut werden müssen. Das Register besteht seit 1993 und erfasst derzeit etwa 6.000 Fälle pro Jahr aus über 100 Kliniken. Pro Patient werden ca. 100 Angaben einschließlich der Codierung seiner Verletzungen gemäß Abbreviated Injury Scale (AIS) erfasst. Dieser Codierung erlaubt die Berechnung des Injury Severity Score (ISS) und des New ISS (NISS). Zum Vergleich werden folgende Definitionen eines Schwerstverletzten betrachtet: Maximum AIS ≥ 3; Maximum AIS ≥ 4; ISS ≥ 9; ISS ≥ 16; NISS ≥ 16, Polytrauma sowie die Notwendigkeit der Intensivtherapie. Am Beispiel des Kriteriums "ISS ≥ 16" werden schließlich auf drei verschiedene Arten die Gesamtzahl Schwerstverletzter Verkehrsunfallopfer geschätzt: 1.) in fünf ausgewählten Regionen werden die Schwerstverletzten aus dem TR-DGU mit der Anzahl Schwerverletzter aus der amtlichen Statistik verglichen, um den Anteil der besonders schwer betroffenen Patienten zu bestimmen. 2.) Aus dem TR-DGU wird je nach Versorgungsstufe des Krankenhauses (lokales, regionales oder überregionales Zentrum) die durchschnittliche Anzahl Schwerstverletzter ermittelt und dann über die Anzahl solcher Kliniken in Deutschland hochgerechnet. 3.) Die Zahl der Schwerstverletzten wird aus der Zahl der Getöteten Verkehrsunfallopfer geschätzt. Dazu nutzt man das Verhältnis von in der Klinik verstorbenen zu überlebenden Schwerstverletzten aus dem TR-DGU. Mit Literaturangaben zum Anteil von präklinisch Verstorbenen wird dann auf der Basis der Anzahl der Getöteten aus der amtlichen Statistik die Gesamtzahl Schwerstverletzter geschätzt. Je nach Definition eines Schwerstverletzten konnten zwischen 9.213 und 17.425 Fälle aus dem TR-DGU der letzten 10 Jahre berücksichtigt werden. Von diesen Patienten sind zwischen 12,7% und 20,2% im Krankenhaus verstorben. Die Krankenhaus Liegedauer der Überlebenden liegt zwischen 30 und 35 Tagen. Nimmt man die Definition "ISS -³ 16" als Basis (n=13.467), so reduziert sich die Zahl Schwerstverletzter um 37%, wenn man stattdessen den Begriff des Polytraumas wählt; betrachtet man hingegen die Intensivpflichtigkeit als Kriterium so erhöht sich die Zahl um 22%. Der erste Schätzansatz kommt zum Ergebnis, dass etwa 8-10% der Schwerverletzten zu den besonders schwer Verletzten zählen. Für ganz Deutschland erhält man damit Schätzwerte zwischen 6.300 und 7.900 Fälle pro Jahr. Die zweite Methode ergab, dass die Krankenhäuser der drei unterschiedlichen Versorgungsstufen jeweils 30,2, 11,5 oder 3,3 Fälle pro Jahr behandeln. Bezogen auf die 874 deutschen Kliniken ergeben sich geschätzte Gesamtzahlen von 6.800 bis 10.400 Fälle. Die dritte Methode zeigt, dass pro Patient, der im Krankenhaus verstirbt, 6,3 Schwerstverletzte überleben. Im Krankenhaus versterben jedoch etwa nur 25% bis 40% der insgesamt Getöteten; der Großteil der Getöteten verstirbt unmittelbar an der Unfallstelle. Damit müssen noch 1,5 bis 3 Todesfälle hinzugerechnet werden, was schließlich zu einem Verhältnis von 6,3 Schwerstverletzten zu 2,5 bis 4 Todesfällen führt. Bei einer Gesamtzahl von 5.595 Getöteten (Mittelwert 2002-2008) ergeben sich so Gesamtzahlen von 8.800 bis 14.000 Schwerstverletzte pro Jahr. Die Ergebnisse der angewendeten Schätzmethoden variieren stark und lassen auf eine Gesamtzahl von etwa 10.000 schwerstverletzten Verkehrsunfallopfern pro Jahr in Deutschland schließen. Bei Anwendung der Definition Intensivtherapie ergeben sich sogar etwa 12.500 Fälle. Alle Schätzmethoden sind gewissen Unsicherheiten ausgesetzt, die wenn möglich in Variationsrechnungen berücksichtigt wurden. Eine deutlich verbesserte Schätzung dieser Zahl ist jedoch erst möglich, wenn in wenigen Jahren vollzählige Erfassungen aus den derzeit entstehenden regionalen TraumaNetzwerken der DGU im TraumaRegister vorliegen.
In this study, we compared the injury severity of occupants according to the seating position and the crashing direction in motor vehicle accidents. In the driver's point of view, it was separated the seating position as "Near-side" and "Far-side". The study subjects were targeted by people who visited 4 regional emergency centers following motor vehicle accidents. Real-world investigation was performed by direct and indirect methods after patient- consent. The information of the damaged vehicle was informed by Collision Deformation Classification (CDC) code and the information of the injury of patients was informed by using the Abbreviated Injury Score (AIS) and Injury Severity Score (ISS). When the column 3 in CDC code was P, damaged at the middle part of lateral side, the average point of AIS 3 was 1.91-±1.72 in near-side and 1.02-±1.31 in far-side (p<0.01). The average point of maximum AIS (MAIS) was 2.78-±1.39 in near-side and 2.02-±1.11 in far-side (p<0.01). The average point of ISS was 15.74-±14.71 in near-side and 8.11-±8.39 in far-side (p<0.01). Also, when the column 3 in CDC code was D, damaged at the whole part of lateral side, it was significant that the average point of AIS 3 and MAIS in near-side was bigger than in far-side (p=0.02).
Side impacts, both nearside and farside, have been indicated by research to be responsible for a large proportion of serious injuries from road crashes. This study aimed to compare and contrast the characteristics of nearside and farside crashes in Australia, Germany and the U.S., using the ANCIS, GIDAS and NASS/CDS in-depth-databases, in order to establish the impact and injury severity associated with these crashes, and the types of injuries sustained. The analyses revealed some interesting similarities, as well as differences, between both nearside and farside crashes, and the emergent trends between the three investigated countries. More specifically, it was indicated that whilst the severity of injury sustained in nearside crashes was slightly greater overall than that found for farside crashes, careful consideration of struck and nonstruck side occupants must be made when considering aspects such as vehicle design and occupant protection.