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COMPARING THE BEHAVIOR OF HOMOGENEOUS VS. FLUID FILLED SOLID HEADFORMS UNDER BLUNT IMPACT LOADING CONDITIONS

机译:比较同质对比的行为钝性冲击载荷条件下的流体填充固体头部

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A single point acceleration measurement at the center of gravity (C.G) of the rigid headform has been typically used to assess the head injuries under the blunt loading conditions. The head protective equipment (e.g. Helmets) used in sports, vehicles and defense fields are developed and tested based on this single point acceleration. This raises two critical questions; 1) can a homogeneous rigid headform represent the heterogeneous skull-brain complex; 2) If not, which is the critical point of measurement in the compliant headform. To answer these questions, compliant (acrylic gel complex) and rigid (aluminum body) head surrogates with an identical mass are subjected to similar blunt loading conditions. Target surfaces of different stiffness and an impact velocity of 1 m/s are employed to evaluate the critical difference in the head surrogates. Acceleration (C.G) and shell strain (impact location) in the compliant surrogate and acceleration (C.G) and the impact force in the rigid surrogate are experimentally measured. Experimental and computational studies illustrate that the acceleration field in the gel-filled case varies from coup to counter-coup region; however, the acceleration field in the rigid headform is uniform. The variation in the acceleration field is influenced by the shell deformation that in turn depends on the stiffness of the target surface. In deformable target surfaces, the acceleration and head injury criterion (HIC) values are higher in the compliant surrogate than the rigid surrogate; the effect is reversed for rigid target surfaces.
机译:在刚性头部的重心(C.G)中的单点加速度测量通常用于评估钝器负载条件下的头部损伤。基于此单点加速度,开发和测试了运动,车辆和国防领域的头部防护设备(例如Helmets)。这提出了两个关键问题; 1)可以均匀的刚性头部代表异质头骨脑复合物; 2)如果没有,这是符合标题的临界测量点。为了回答这些问题,符合标准(丙烯酸凝胶复合物)和刚性(铝体)头替代品具有相同的质量的替代物经受类似的钝器负载条件。采用不同刚度和抗冲击速度的靶表面来评估头替代物的临界差异。通过实验测量兼容替代和加速度(C.g)和壳体应变(冲击位置)和刚性替代物中的冲击力。实验和计算研究表明,凝胶盒中的加速度从COUM变化到反击中区域;然而,刚性头部中的加速度是均匀的。加速度场的变化受壳变形的影响,又取决于目标表面的刚度。在可变形的目标表面中,加速度和头部损伤标准(HIC)值在兼容的替代物中比刚性替代物更高;对于刚性目标表面,效果逆转。

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