Teng-Fei Tian , Fu-Hao Mo , Hao-Yang Su , Can Huang , Hui Zhao , Jun Liu , Bo Shang , Kui Li , Jin-Long Qiu
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The present study aims to compare the biomechanical responses of the mainstream vehicle occupant dummies with the human body lower limb model and analyze their robustness and applicability for assessing lower limb injury risk in under-foot impact loading environments.</p></div><div><h3>Methods</h3><p>The Hybrid III model, the test device for human occupant restraint (THOR) model, and a hybrid human body model with the human active lower limb model were adopted for under-foot impact analysis regarding different impact velocities and initial lower limb postures.</p></div><div><h3>Results</h3><p>The results show that the 2 dummy models have larger peak tibial axial force and higher sensitivity to the impact velocities and initial postures than the human lower limb model. In particular, the Hybrid III dummy model presented extremely larger peak tibial axial forces than the human lower limb model. In the case of minimal difference in tibial axial force, Hybrid III's tibial axial force (7.5 KN) is still 312.5% that of human active lower limb's (2.4 KN). Even with closer peak tibial axial force values, the biomechanical response curve shapes of the THOR model show significant differences from the human lower limb model.</p></div><div><h3>Conclusion</h3><p>Based on the present results, the Hybrid III dummy cannot be used to evaluate the lower limb injury risk in under-foot loading environments. In contrast, potential improvement in ankle biofidelity and related soft tissues of the THOR dummy can be implemented in the future for better applicability.</p></div>","PeriodicalId":51555,"journal":{"name":"Chinese Journal of Traumatology","volume":"27 4","pages":"Pages 235-241"},"PeriodicalIF":1.8000,"publicationDate":"2024-07-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.sciencedirect.com/science/article/pii/S1008127524000087/pdfft?md5=7df9e04a6fbbb8a1426d0c4b99381dcc&pid=1-s2.0-S1008127524000087-main.pdf","citationCount":"0","resultStr":"{\"title\":\"Investigation on vehicle occupant dummy applicability for under-foot impact loading conditions\",\"authors\":\"Teng-Fei Tian , Fu-Hao Mo , Hao-Yang Su , Can Huang , Hui Zhao , Jun Liu , Bo Shang , Kui Li , Jin-Long Qiu\",\"doi\":\"10.1016/j.cjtee.2024.02.002\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><h3>Purpose</h3><p>Under-foot impact loadings can cause serious lower limb injuries in many activities, such as automobile collisions and underbody explosions to military vehicles. The present study aims to compare the biomechanical responses of the mainstream vehicle occupant dummies with the human body lower limb model and analyze their robustness and applicability for assessing lower limb injury risk in under-foot impact loading environments.</p></div><div><h3>Methods</h3><p>The Hybrid III model, the test device for human occupant restraint (THOR) model, and a hybrid human body model with the human active lower limb model were adopted for under-foot impact analysis regarding different impact velocities and initial lower limb postures.</p></div><div><h3>Results</h3><p>The results show that the 2 dummy models have larger peak tibial axial force and higher sensitivity to the impact velocities and initial postures than the human lower limb model. In particular, the Hybrid III dummy model presented extremely larger peak tibial axial forces than the human lower limb model. In the case of minimal difference in tibial axial force, Hybrid III's tibial axial force (7.5 KN) is still 312.5% that of human active lower limb's (2.4 KN). Even with closer peak tibial axial force values, the biomechanical response curve shapes of the THOR model show significant differences from the human lower limb model.</p></div><div><h3>Conclusion</h3><p>Based on the present results, the Hybrid III dummy cannot be used to evaluate the lower limb injury risk in under-foot loading environments. 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引用次数: 0
摘要
目的 在汽车碰撞和军用车辆车底爆炸等许多活动中,足下冲击载荷可导致严重的下肢损伤。本研究旨在比较主流车内乘员假人与人体下肢模型的生物力学响应,并分析其在足底冲击载荷环境下评估下肢损伤风险的稳健性和适用性。结果结果表明,与人体下肢模型相比,这两种假人模型的胫骨轴向力峰值更大,对冲击速度和初始姿势的敏感性更高。尤其是混合动力 III 假人模型的胫骨轴向力峰值比人体下肢模型大得多。在胫骨轴向力差异极小的情况下,Hybrid III 的胫骨轴向力(7.5 千牛)仍是人类活动下肢(2.4 千牛)的 312.5%。即使胫骨轴向力峰值更接近,THOR 模型的生物力学响应曲线形状与人类下肢模型仍有显著差异。相反,未来可以对 THOR 假人的踝关节生物保真度和相关软组织进行潜在改进,以提高其适用性。
Investigation on vehicle occupant dummy applicability for under-foot impact loading conditions
Purpose
Under-foot impact loadings can cause serious lower limb injuries in many activities, such as automobile collisions and underbody explosions to military vehicles. The present study aims to compare the biomechanical responses of the mainstream vehicle occupant dummies with the human body lower limb model and analyze their robustness and applicability for assessing lower limb injury risk in under-foot impact loading environments.
Methods
The Hybrid III model, the test device for human occupant restraint (THOR) model, and a hybrid human body model with the human active lower limb model were adopted for under-foot impact analysis regarding different impact velocities and initial lower limb postures.
Results
The results show that the 2 dummy models have larger peak tibial axial force and higher sensitivity to the impact velocities and initial postures than the human lower limb model. In particular, the Hybrid III dummy model presented extremely larger peak tibial axial forces than the human lower limb model. In the case of minimal difference in tibial axial force, Hybrid III's tibial axial force (7.5 KN) is still 312.5% that of human active lower limb's (2.4 KN). Even with closer peak tibial axial force values, the biomechanical response curve shapes of the THOR model show significant differences from the human lower limb model.
Conclusion
Based on the present results, the Hybrid III dummy cannot be used to evaluate the lower limb injury risk in under-foot loading environments. In contrast, potential improvement in ankle biofidelity and related soft tissues of the THOR dummy can be implemented in the future for better applicability.
期刊介绍:
Chinese Journal of Traumatology (CJT, ISSN 1008-1275) was launched in 1998 and is a peer-reviewed English journal authorized by Chinese Association of Trauma, Chinese Medical Association. It is multidisciplinary and designed to provide the most current and relevant information for both the clinical and basic research in the field of traumatic medicine. CJT primarily publishes expert forums, original papers, case reports and so on. Topics cover trauma system and management, surgical procedures, acute care, rehabilitation, post-traumatic complications, translational medicine, traffic medicine and other related areas. The journal especially emphasizes clinical application, technique, surgical video, guideline, recommendations for more effective surgical approaches.