首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >EFFECT OF VEHICLE FRONT END PROFILE ON PEDESTRIAN KINEMATICS AND BIOMECHANICAL RESPONSES USING A VALIDATED NUMERICAL MODEL
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EFFECT OF VEHICLE FRONT END PROFILE ON PEDESTRIAN KINEMATICS AND BIOMECHANICAL RESPONSES USING A VALIDATED NUMERICAL MODEL

机译:验证数值模型的车辆前端轮廓对行人运动学和生物力学响应的影响

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Traumatic injuries and biomechanical responses of a pedestrian depend on vehicle front end characteristics as well as the pedestrian anthropometric details in vehicle-pedestrian crashes. A number of laboratory experiments were conducted using post mortem human subjects (PMHS) to understand the biomechanics behind the injuries in a pedestrian crash. However, different vehicular front ends were used in these studies making comparisons among studies impossible. The current research work focuses on validating simulated pedestrian kinematics and accelerations responses of MADYMO full body pedestrian model with the experimental results. In general, overall kinematics of the body for pedestrian models were also compared with that recorded in the video snapshots from the cadaveric experimental tests at 50 ms time intervals. Along with the validation of kinematics of pedestrian, the acceleration responses of head, chest, pelvic and lower leg of the pedestrians were also validated against the corresponding experimental data. Other responses like head angle as well as head impact velocity during primary impact with the hood were analyzed at different impact speeds. Once the responses were validated for a particular front end of the vehicle, a series of numerical parametric studies were further conducted using several front end profiles based off a mid-sized sedan. For the parametric study, different pedestrian models representing three pedestrian sizes, a 50th male, a 5th female, and a 6 years-old child, were used in the simulations. Finite element model of a vehicle front end was changed in terms of the heights of bumper, bonnet leading-edge, and bonnet rear reference-line using a mesh-morphing technique. In most simulations, primary head impact location depends on the pedestrian size, and the secondary impact with ground at the head region is affected by type of vehicle and its front end profile. Kinematics of the pedestrians as well as the angle of primary head impact varies a great deal based upon the front-end profile of the striking vehicle (e.g., raised front-end profile or lowered front-end profile). Leg and pelvis accelerations were found to be high in vehicles with raised front end profiles. Chest and head accelerations were also found to be affected by vehicle front end profile and pedestrian size. However, it should be noted that there were some front-end profiles that help in avoiding pedestrian secondary head impact with the ground.
机译:行人的创伤损伤和生物力学响应依赖于车辆前端特征以及车辆行人坠毁中的行人人体测量细节。使用后验验人员(PMHS)进行了许多实验室实验,以了解行人坠毁伤害背后的生物力学。然而,在这些研究中使用了不同的车辆前端,使得在研究中的比较是不可能的。目前的研究工作侧重于验证模拟行人运动学与实验结果的MADYMO全身行人模型的加速响应。一般而言,对于行人模型的整体运动学,也与在50 ms的时间间隔的尸体实验测试中记录在视频快照中。随着行人运动学的验证,对相应的实验数据也验证了头部,胸部,盆腔和小腿的加速响应。在不同的冲击速度下分析了在初级冲击过程中像头角度以及头部冲击速度一样的其他反应。一旦验证了车辆的特定前端的响应,就基于中型轿车的几个前端轮廓进一步进行了一系列数值参数研究。对于参数学研究,代表三个行人尺寸,50男性,第5个女性和6岁的孩子的不同行人模型被用于模拟中。使用网格形态技术,在保险杠,发动机罩前缘和发动机罩后部参考线的高度方面改变了车辆前端的有限元模型。在大多数模拟中,主要头部冲击位置取决于行人尺寸,并且在头部区域的接地的二次冲击受到车辆类型的影响及其前端轮廓。基于撞车车辆的前端轮廓(例如,凸起的前端轮廓或降低前端轮廓),行人的运动学以及主要头部冲击的角度不同变化很大。发现腿部和骨盆加速度在具有凸起前端型材的车辆中很高。还发现胸部和头部加速度受到车辆前端轮廓和行人大小的影响。然而,应该注意的是,有一些前端型材有助于避免与地面的行人次要头部冲击。

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