Filtern
Erscheinungsjahr
Dokumenttyp
Schlagworte
- Dummy (28) (entfernen)
Institut
- Abteilung Fahrzeugtechnik (27)
- Sonstige (15)
Thorax injury is one of main causes of serious injury in frontal collisions, especially for elderly car occupants. The anthropometric test device (ATD) THOR‐M provides chest deflection measurements at multiple locations, to assess the risk of thorax injury. For this purpose e, risk functions are needed that relate the potential criteria based on multipoint chest deflection measurement to in jury risk. Different thorax injury criteria and risk functions for THOR have been proposed [2‐3]. The criteria and functions are based on the traditional approach to developing injury risk functions using matched ATD and PMHS tests by relating the injury (number of fractures) to injury criteria. Regarding these studies, some limitations have been identified, in particular concerning the loading conditions of the data used (mainly 3‐point‐belt loading, high loading severity, out‐of‐date ATD versions. To extend the data set and overcome these limitations, a new approach for improved thorax injury criteria was applied within the EC‐funded project SENIORS. The new approach is based on matched frontal impact sled computer simulations with a model representing the latest THOR‐M ATD version, and matching simulations with a human body model (HBM) representing an elderly car occupant.
Internationale Aktivitäten der Forschung auf dem Gebiet "Passive Sicherheit von Kraftfahrzeugen"
(2000)
Eine Fülle von Aktivitäten ist derzeit auf den Gebieten Frontal- und Seitenstoß zu beobachten, die in Europa auf den beiden entsprechenden EG-Richtlinien aufbauen. Das EEVC führt seine Arbeiten, an denen die Automobilindustrie beteiligt ist, fort; hier sind insbesondere die Arbeiten zum Seitenstoß (Kopfaufprall und Barrierenvergleich) zu nennen. Auf weltweiter Ebene beginnen die Arbeiten der IHRA (International Harmonised Research Activities) in ein konkretes Stadium der Zusammenarbeit einzutreten. Auf dem Gebiet der Seitenkollision ist längerfristig ein neues Testverfahren geplant, in das der von ISO entwickelte WORLD-SID einbezogen werden soll. Es gibt derzeit viele ernsthafte Bemühungen der Forschung um Harmonisierung. Auch wenn es nicht zu einer weltweiten Harmonisierung kompletter Regelungen kommt, so gibt es doch Hoffnung auf eine weltweite Harmonisierung von definierten Teilbestimmungen in speziellen Regelungen, so zum Beispiel bezüglich der Testmethode, der Versuchspuppen und der Bewertung der Schutzkriterien. Der Name des EEVC, European Enhanced Vehicle-safety Committee, steht für die Weiterentwicklung der Fahrzeugsicherheit. Die beteiligten Regierungen sind überzeugt, dass moderne Technologien neue Möglichkeiten eröffnen, um die Sicherheit der Kraftfahrzeuge weiter zu verbessern.
Bewertung der Fahrzeug-Fußraumintrusionen beim Offset Frontaltest gegen das Verformungselement
(1998)
In den Tests nach dem neuen Frontaltestverfahren (Entwürfe ECE R.94 sowie Richtlinie 96/79/EG und Ergänzung zu RL 70/156/EWG) entstehen hohe Verformungen der Fußräume der Versuchsfahrzeuge. Die Bewertung der Gefährdung der Insassen durch Intrusion, vorwiegend der Spritzwand begleitet von heftigen Bewegungen der Pedale, soll durch am Dummy zu messende Schutzkriterien erfolgen. Es ist vorgesehen, an den Dummies die Verschiebung des Schienbeins gegen das Knie, die Längskraft im Unterschenkel und den sogenannten Tibia Index zu messen. Um dieses zu ermöglichen, mussten an den vorhandenen Dummy-Unterschenkeln konstruktive Änderungen vorgenommen werden. Über die Herleitung der Schutzkriterien, Fragen bei der Anwendung dieser Kriterien sowie die technischen Einzelheiten und die Zertifizierung der neuen Dummy-Unterschenkel, welche die erforderlichen Messungen erlauben, wird berichtet.
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.
To assess occupant safety in a crash test, criteria associating the measurements made with a crash test dummy to injury risk are necessary. To enable better protection of elderly car occupants the objective of this study was to develop improved thoracic injury criteria for the THOR average male dummy. The development of these criteria is usually based on matched dummy and Post Mortem Human Surrogate (PMHS) tests by relating the obtained PMHS injuries to dummy measurements. This approach is limited, since only a few tests in relevant loading conditions are available and any new test series requires high efforts to be performed due to their complexity and costs. To overcome these limitations and to extend the dataset for the development of THOR dummy chest injury risk functions a simulation-based approach was applied within the EC funded project SENIORS (Safety Enhanced Innovations For older Road Users - www.seniors-project.eu). Within this study frontal impact sled simulations with an FE model representing a THOR average male dummy and matched simulations with a human body model (HBM) representing an elderly car occupant were carried out. The HBM used for this study was the THUMS TUC with modified rib cage, which was developed in SENIORS. The modifications included material and geometry changes aiming to represent an elderly car occupant. The rib fracture risk was predicted with a deterministic approach whereby a rib was considered broken when the strain exceeded an age-dependent threshold. Furthermore, a probabilistic method was applied to predict the probability of sustaining a certain number of fractured ribs by comparing local strain values to the distribution of cortical rib ultimate strain. By relating the output from the HBM simulations to a multi-point dummy injury criterion, injury risk curves were calculated by statistical methods. The wide range of loading conditions resulted in the desired range of injuries and THOR ATD output. The number of fractured ribs predicted by the HBM based on the deterministic prediction method was between 0 and 15. Furthermore, the probabilistic risk for the number of rib fractures equal or greater than two, three or four was calculated for each load case. The THOR rib deflection criterion Rmax was between 18 and 56 mm, while the PC Score was in the range of 2.5 to 7.2. Based on these outputs new risk curves for the predicted deterministic (AIS2+/3+) and probabilistic injury risk were calculated. The new curves show reasonable shapes and significance that provide trust in their application. The new risk curves are compared to risk curves obtained by traditional methods. The results were found similar to previous injury risk functions based on physical tests, which gives a high level of confidence in the chosen approach. The simulation-based approach of matched ATD model vs. HBM simulation was successfully applied. Rmax curves show a slightly better quality than the injury criterion PC Score.
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.
In the European Project FIMCAR, a proposal for a frontal impact test configuration was developed which included an additional full width deformable barrier (FWDB) test. Motivation for the deformable element was partly to measure structural forces as well as to produce a severe crash pulse different from that in the offset test. The objective of this study was to analyze the safety performance of vehicles in the full width rigid barrier test (FWRB) and in the full width deformable barrier test (FWDB). In total, 12 vehicles were crashed in both configurations. Comparison of these tests to real world accident data was used to identify the crash barrier most representative of real world crashes. For all vehicles, the airbag visible times were later in the FWDB configuration. This was attributed to the attenuation of the initial acceleration peak, observed in FWRB tests, by the addition of the deformable element. These findings were in alignment with airbag triggering times seen in real world crash data. Also, the dummy loadings were slightly worse in FWDB compared to FWRB tests, which is possibly linked to the airbag firing and a more realistic loading of the vehicle crash structures in the FWDB configuration. Evaluations of the lower extremities have shown a general increasing of the tibia index with the crash pulse severity.
The United Nations Economic Commission for Europe Informal Group on GTR No. 7 Phase 2 are working to define a build level for the BioRID II rear impact (whiplash) crash test dummy that ensures repeatable and reproducible performance in a test procedure that has been proposed for future legislation. This includes the specification of dummy hardware, as well as the development of comprehensive certification procedures for the dummy. This study evaluated whether the dummy build level and certification procedures deliver the desired level of repeatability and reproducibility. A custom-designed laboratory seat was made using the seat base, back, and head restraint from a production car seat to ensure a representative interface with the dummy. The seat back was reinforced for use in multiple tests and the recliner mechanism was replaced by an external spring-damper mechanism. A total of 65 tests were performed with 6 BioRID IIg dummies using the draft GTR No.7 sled pulse and seating procedure. All dummies were subject to the build, maintenance, and certification procedures defined by the Informal Group. The test condition was highly repeatable, with a very repeatable pulse, a well-controlled seat back response, and minimal observed degradation of seat foams. The results showed qualitatively reasonable repeatability and reproducibility for the upper torso and head accelerations, as well as for T1 Fx and upper neck Fx. However, reproducibility was not acceptable for T1 and upper neck Fz or for T1 and upper neck My. The Informal Group has not selected injury or seat assessment criteria for use with BioRID II, so it is not known whether these channels would be used in the regulation. However, the ramping-up behavior of the dummy showed poor reproducibility, which would be expected to affect the reproducibility of dummy measurements in general. Pelvis and spine characteristics were found to significantly influence the dummy measurements for which poor reproducibility was observed. It was also observed that the primary neck response in these tests was flexion, not extension. This correlates well with recent findings from Japan and the United States showing a correlation between neck flexion and injury in accident replication simulations and postmortem human subjects (PMHS) studies, respectively. The present certification tests may not adequately control front cervical spine bumper characteristics, which are important for neck flexion response. The certification sled test also does not include the pelvis and so cannot be used to control pelvis response and does not substantially load the lumbar bumpers and so does not control these parts of the dummy. The stiffness of all spine bumpers and of the pelvis flesh should be much more tightly controlled. It is recommended that a method for certifying the front cervical bumpers should be developed. Recommendations are also made for tighter tolerance on the input parameters for the existing certification tests.
Das Ziel der Untersuchung war, die Grenzen der Belastbarkeit eines Rollstuhl- und Personenrückhaltesystems mit Kraftknoten nach DIN 75078-2 zu ermitteln. Dazu wurden dynamische Schlittenversuche durchgeführt, bei denen die Verzögerungspulse sowie das Gesamtgewicht von Rollstuhl und Prüfpuppe variiert wurden. Für die Untersuchungen kamen ein Prüfrollstuhl, definiert nach ISO 10542, und Rückhaltesysteme mit Kraftknoten gemäß DIN 75078-2 zum Einsatz. Das Rückhaltesystem bestand aus einem Rollstuhl- und einem Personenrückhaltesystem, wobei das Rollstuhlrückhaltesystem (RRS) mit vier bzw. sechs Gurten und entsprechenden Retraktoren an einem dynamischen Schlittenaufbau befestigt wurde. Das Personenrückhaltesystem (PRS) bestand aus einem am Rollstuhl integrierten Beckengurt sowie einem Schulterschräggurt, der am Beckengurt und am Schlittenaufbau befestigt wurde. Ferner wurden bei den Versuchen Prüfpuppen verschiedener Alters- und Gewichtsklassen (P6, HIII 5 %, HIII 50 % und HIII 95 %) eingesetzt Die Belastungsanforderungen für das Rückhaltesystem wurden sukzessiv erweitert, indem einerseits das Gesamtgewicht (Rollstuhl und Prüfpuppe) und andererseits auch die Verzögerungspulse bis zur Versagensgrenze erhöht wurden. Das Vier-Gurt-Rückhaltesystem konnte bei einem Verzögerungspuls von 10 g einem Gesamtgewicht von bis zu 221 kg standhalten. Bei einem Verzögerungspuls von 20 g und einem Gesamtgewicht von 134 kg wurde das Vier-Gurt-System bis über die Grenzen belastet. Das Sechs-Gurt-Rückhaltesystem hat Belastungen bis 221 kg standgehalten. Infolgedessen ist bei einer Erhöhung der Verzögerungspulse auf 20 g und einem Gesamtgewicht von mehr als 109 kg ein Sechs-Gurt-System zu empfehlen.
Ziel dieser Arbeit war die Entwicklung eines numerischen Modells des menschlichen knöchernen Thorax, das insbesondere altersabhängige geometrische Faktoren berücksichtigt. Dieses Modell soll sowohl die männliche als auch die weibliche Population der über 64-Jährigen repräsentieren und eine an diese Altersgruppe angepasste Verletzungssimulation ermöglichen. Die vorliegende Studie identifiziert zunächst an Hand eines Kollektivs aus 126 postmortem und 40 klinischen computertomografischen Schnittbildaufnahmen eine ganze Reihe geometrischer Parameter, die sich mit dem Alter verändern. Zu den untersuchten Parametern gehören sowohl Winkel der Rippen im Raum und innerhalb des Rippenbogens, eine detaillierte Erfassung von Parametern der einzelnen Rippe (Querschnittsfläche, Krümmung, Longitudinale Verdrillung), Parameter der Wirbelsäule als Ganzes (Skoliose, Kyphose, Rotation) und einzelner Wirbel sowie des Brustbeins. Weiterhin wurden die Grundmasse des ganzen Thorax (Thoraxtiefe, Thoraxbreite) untersucht. Die hier gefundenen Altersabhängigkeiten dienten als Eingabeparameter zur Erstellung von insgesamt neun aus dem Menschmodell THUMS 3 gemorphter alter und junger Finite-Elemente Thoraxmodelle. Implementiert wurden hierbei sowohl Durchschnittsmaße als auch extreme Maße. Die Ergebnisse zeigen mehrere sich im Alter signifikant verändernde Parameter. Als wichtigste unter ihnen sind eine Zunahme der Thoraxtiefe und Thoraxbreite im Alter, die signifikante Veränderung einiger Rippenwinkel im Raum sowie der Krümmung der sechsten und siebten Rippe zu nennen. Zudem wird die Wirbelsäulenform kyphotischer und das Sternum am Übergang zwischen Manubrium und Corpus sternii gewinkelter. Die Menschmodelle THUMS 3, THUMS 4 und HUMOS 2 sind weder als typisch alt, noch typisch jung einzuordnen, dies unterscheidet sich teils von Parameter zu Parameter. Die auf Basis der Geometrie-Inputdaten durchgeführten Finite-Elemente Simulationen zeigen einen deutlichen Einfluss der zunehmenden Thoraxtiefe im Alter auf die posteriore Kraft an der Auflagefläche der Rippen sowie die Spannungsverteilung entlang der Rippen. Sie wirkt sich jedoch entgegen der Erwartungen protektiv aus und dominiert andere Faktoren wie die unterschiedlichen Rippenwinkel. Abschließend betrachtet wird ein Menschmodell, welches das 75. Perzentil der alten Bevölkerung repräsentiert, als ausreichend aussagekräftig hinsichtlich der im Alter veränderten Geometrie klassifiziert und gleichzeitig als mit angemessenem Aufwand realisierbar angesehen. Es wird daher für die Bewertung von Sicherheitssystemen empfohlen.