Yang Xiuju, Shi Jingjing, Fu Qianying, Pu Shanshan, Lian Chunxiao, Li Kui, Yin Zhiyong, Liu Shengxiong, Wang Guixue
Key Laboratory for Biorheological Science and Technology of Ministry of Education, State and Local Joint Engineering Laboratory for Vascular Implants, College of Bioengineering, Chongqing University, Chongqing, China.
Department of Biomedical Engineering, College of Pharmacy and Bioengineering, Chongqing University of Technology, Chongqing, China.
Front Bioeng Biotechnol. 2022 Oct 20;10:965206. doi: 10.3389/fbioe.2022.965206. eCollection 2022.
To minimize injuries and protect the safety of the driver in minivan small offset collisions, an optimized pre-tensioned force-limiting seat belt was proposed herein. An accident with detailed information, such as medical reports, vehicle inspection reports, and accident scene photographs, was reconstructed using HyperMesh software. The effectiveness of both the accident model and the pre-tensioned force-limiting seat belt was evaluated. To obtain the optimal seat belt parameters for driver protection, first, force-limiting A, pre-tensioned force B, and pre-tensioned time C factors were selected in designing an orthogonal test with different factor levels. The influence laws of each factor on the injury biomechanical characteristics of the driver were analyzed the direct analysis method. Moreover, each kind of critical injury value of the human body was synthesized, and the radial basis function surrogate model was constructed. The three seat belt parameters were optimized using the NSGA-II multi-objective genetic algorithm. The results showed that the optimal balance variable parameter of the seat belt was 4751.618 N-2451.839 N-17.554 ms (A-B-C). Finally, the optimal scheme was verified in a system simulating a minivan small offset collision. The results showed that after optimization, the skull von Mises stress was reduced by 36.9%, and the stress of the cervical vertebra cortical bone and cancellous bone decreased by 29.1% and 30.8%, respectively. In addition, the strains of the ribs and lungs decreased by 31.2% and 30.7%, respectively.
为了在小型货车小偏置碰撞中减少伤害并保护驾驶员安全,本文提出了一种优化的预紧力限力安全带。利用HyperMesh软件重建了一起带有详细信息(如医学报告、车辆检查报告和事故现场照片)的事故。评估了事故模型和预紧力限力安全带的有效性。为了获得保护驾驶员的最佳安全带参数,首先,在设计具有不同因素水平的正交试验时,选择了力限A、预紧力B和预紧时间C因素。采用直接分析法分析了各因素对驾驶员损伤生物力学特性的影响规律。此外,综合人体的各种临界损伤值,构建了径向基函数代理模型。利用NSGA-II多目标遗传算法对三个安全带参数进行了优化。结果表明,安全带的最佳平衡可变参数为4751.618 N-2451.839 N-17.554 ms(A-B-C)。最后,在模拟小型货车小偏置碰撞的系统中对优化方案进行了验证。结果表明,优化后,颅骨的米塞斯应力降低了36.9%,颈椎皮质骨和松质骨的应力分别降低了29.1%和30.8%。此外,肋骨和肺部的应变分别降低了31.2%和30.7%。