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首页> 外文期刊>International journal of crashworthiness >Vector model of vehicle collisions for inferring velocity from loss of kinetic energy with restitution on residual crush surface
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Vector model of vehicle collisions for inferring velocity from loss of kinetic energy with restitution on residual crush surface

机译:车辆碰撞的矢量模型,用于从动能损失和残余挤压面的恢复中推断出速度

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摘要

In the standard mathematical model that underpins the inference of velocity change from vehicle damage in road accident reconstruction, the point where the colliding bodies engage is taken to lie in the same location as the point of application of the average impact force, usually in the central region of the crush zone or on the residual crush surface. Mathematical and physical reasons suggest the fidelity of the model could be deepened by allowing for a separation of these points, for example by locating the impulse or average force in the central region of the crush zone and defining engagement (common velocity or rebound) relative to the crush surface. Refinement of the theory revealed that the solutions for the change of linear and angular velocity are unaffected. For long-running in-depth research studies, this means that historical calculations of velocity change (delta-V) and related analyses on such topics as injury risk curves, countermeasure effectiveness and accident scenarios are not potentially undermined. Relative and absolute velocity are however affected. This was illustrated using crash test data where adjustments of 6 and 12 cm resulted in changes of up to 4% in road speed.
机译:在基于数学模型的道路交通事故重建中,速度是从车辆损坏中推论得出的,在这种数学模型中,碰撞体的接合点与平均冲击力的施加点位于同一位置,通常位于中心破碎区的区域或残余破碎表面上的区域。数学和物理方面的原因表明,可以通过允许分离这些点来加深模型的逼真度,例如,通过在挤压区的中央区域定位脉冲或平均力并定义相对于其的接合(共同速度或回弹)挤压表面。对理论的完善表明,线速度和角速度变化的解决方案不受影响。对于长期的深入研究而言,这意味着速度变化的历史计算(delta-V)和有关伤害风险曲线,对策有效性和事故场景等主题的相关分析不会受到潜在破坏。但是,相对速度和绝对速度会受到影响。使用碰撞测试数据可以说明这一点,其中6厘米和12厘米的调整可导致最高4%的行车速度变化。

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