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首页> 外文期刊>Computer methods in biomechanics and biomedical engineering >Development and validation of a human biomechanical model for rib fracture and thorax injuries in blunt impact
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Development and validation of a human biomechanical model for rib fracture and thorax injuries in blunt impact

机译:钝器撞击肋骨骨折和胸部损伤的人类生物力学模型的开发和验证

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From 1990 to approximately 50,000-120,000 people die annually of road traffic accidents in China. Traffic accidents are the main cause of death of Chinese adults aged 15 -45 years. This study aimed to determine the biomechanical response and injury tolerance of the human body in traffic accidents. The subject was a 35-year-old male with a height of 170 cm, weight of 70 kg and Chinese characteristics at the 50th percentile. Geometry was generated by computed tomography and magnetic resonance imaging. A human-body biomechanical model was then developed. The model featured in great detail the main anatomical characteristics of skeletal tissues, soft tissues and internal organs, including the head, neck, shoulder, thoracic cage, abdomen, spine, pelvis, pleurae and lungs, heart, aorta, arms, legs, and other muscle tissues and skeletons. The material properties of all tissues in the human body model were obtained from the literature. Material properties were developed in the LS-DYNA code to simulate the mechanical behaviour of the biological tissues in the human body. The model was validated against cadaver responses to frontal and side impact. The predicted model response reasonably agreed with the experimental data, and the model can further be used to evaluate thoracic injury in real-world crashes. We believe that the transportation industry can use numerical models in the future to simultaneously reduce physical testing and improve automotive safety.
机译:从1990年到中国,每年约有50,000-120,000人死于道路交通事故。交通事故是造成15 -45岁中国成年人死亡的主要原因。这项研究旨在确定交通事故中人体的生物力学响应和伤害耐受性。受试者是一名35岁的男性,身高170厘米,体重70公斤,具有50%的中国特色。通过计算机断层扫描和磁共振成像产生几何形状。然后建立了人体生物力学模型。该模型非常详细地描述了骨骼组织,软组织和内部器官(包括头部,颈部,肩膀,胸廓,腹部,脊柱,骨盆,胸膜和肺,心脏,主动脉,手臂,腿和骨骼)的主要解剖特征。其他肌肉组织和骨骼。人体模型中所有组织的材料特性均从文献中获得。用LS-DYNA代码开发了材料特性,以模拟人体中生物组织的机械行为。该模型针对尸体对正面和侧面撞击的反应进行了验证。预测的模型响应与实验数据合理地吻合,并且该模型可以进一步用于评估实际碰撞中的胸部伤害。我们相信,运输行业将来可以使用数值模型来同时减少物理测试并提高汽车安全性。

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