Radu Alexandru Ionut, Tolea Bogdan Adrian, Beles Horia, Scurt Florin Bogdan, Tusinean Adrian Nicolaie
Department of Automotive and Transport, Faculty of Mechanical Engineering, Transilvania University of Brasov, 500036 Brasov, Romania.
Department of Mechanical Engineering and Automotive, Faculty of Managerial and Technological Engineering, University of Oradea, 410087 Oradea, Romania.
Sensors (Basel). 2025 Jul 9;25(14):4291. doi: 10.3390/s25144291.
Rear-end collisions represent a major concern in automotive safety, particularly due to the risk of whiplash injuries among vehicle occupants. The accurate simulation of occupant kinematics during such impacts is critical for the development of advanced safety systems. This paper presents an enhanced multibody simulation model specifically designed for rear-end crash scenarios, incorporating integrated active headrest mechanisms and sensor-based activation logic. The model combines detailed representations of vehicle structures, suspension systems, restraint systems, and occupant biomechanics, allowing for the precise prediction of crash dynamics and occupant responses. The system was developed using Simscape Multibody, with CAD-derived components interconnected through physical joints and validated using controlled experimental crash tests. Special attention was given to modelling contact forces, suspension behaviour, and actuator response times for the active headrest system. The model achieved a root mean square error (RMSE) of 4.19 m/s and a mean absolute percentage error (MAPE) of 0.71% when comparing head acceleration in frontal collision tests, confirming its high accuracy. Validation results demonstrate that the model accurately reproduces occupant kinematics and head acceleration profiles, confirming its reliability and effectiveness as a predictive tool. This research highlights the critical role of integrated sensor-actuator systems in improving occupant safety and provides a flexible platform for future studies on intelligent vehicle safety technologies.
追尾碰撞是汽车安全领域的一个主要问题,尤其是因为车辆乘员有遭受颈部挥鞭伤的风险。在这种碰撞过程中准确模拟乘员运动学对于先进安全系统的开发至关重要。本文提出了一种专门为追尾碰撞场景设计的增强型多体仿真模型,该模型集成了主动式头枕机构和基于传感器的激活逻辑。该模型结合了车辆结构、悬架系统、约束系统和乘员生物力学的详细表示,能够精确预测碰撞动力学和乘员反应。该系统使用Simscape Multibody开发,通过物理关节将CAD派生的组件相互连接,并使用受控实验碰撞测试进行验证。特别关注了主动式头枕系统的接触力建模、悬架行为和执行器响应时间。在正面碰撞测试中比较头部加速度时,该模型的均方根误差(RMSE)为4.19 m/s,平均绝对百分比误差(MAPE)为0.71%,证实了其高精度。验证结果表明,该模型能够准确再现乘员运动学和头部加速度曲线,证实了其作为预测工具的可靠性和有效性。这项研究突出了集成传感器-执行器系统在提高乘员安全方面的关键作用,并为未来智能车辆安全技术的研究提供了一个灵活的平台。