基于结构和生物力学分析的一级方程式赛车座椅材料优化设计

B.V.S Vishwakiran, G. Nallavan
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引用次数: 0

摘要

F1 赛车手报告说,由于 "俯冲 "效应,他们的腰部长期疼痛,这是空气动力下压力产生的一系列反弹。这种下压力是减少阻力原理的一部分,它将空气拉到车辆下方,从而创造出 200 至 230 英里/小时的惊人速度。此外,在 200 英里/小时的速度下,驾驶员在比赛中会经历多达六次的高 G 力。增加车辆的离地间隙可以简单地避免这种情况,但同时也会降低车辆的最大速度。因此,在不影响速度的前提下,我们通过生物力学建模和模拟计算方法对驾驶员座椅进行了优化设计,以确定符合姿势人体工学的最佳座椅角度。作为座椅材料的额外加固和减震措施,以保护驾驶员的脊柱免受由此产生的动力影响,通过选择石墨烯作为替代现有碳纤维材料的合适材料,对材料进行了优化。对座椅模型进行了有限元结构分析。与碳纤维相比,石墨烯模型的应力、应变和变形值较小。模拟结果将为消除运动员脊柱受伤或病变的高风险提供解决方案,从而提高运动成绩。关键字赛车运动、计算生物力学、人体工程学、设计优化、材料优化、有限元分析、脊柱损伤预防
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Material Optimization in Formula One Seat Fit Based on Structural and Biomechanical Analysis
F1 drivers have reported that they suffer a long-term lower back pain due to ‘Porpoising’ effect, it is a series of bounce that is generated due to Aerodynamic downforce. This downforce is part of drag reduction principle that pulls the air underneath the vehicle, thereby creating an incredible speed of 200 to 230 mph. Also at 200 mph speed, the driver experiences a high amount G-forces up to six times during the race. This can be simply avoided by increasing the ground clearance of vehicle but at the same time it also reduces the max speed of the vehicle. Hence, without compromising the speed, Design optimization is done for driver’s seat-fit through Computational methods of Biomechanical modelling and simulation for determining the optimum Seat Angle for Postural Ergonomics. As an additional Reinforcement and Shock absorption in seat material to protect driver’s spine from the resulting dynamics, Material optimization is done by selecting Graphene as the suitable material over the existing Carbon fiber material. Finite element method was carried out for structural analysis of seat-fit model. The stress, strain and deformation values were found to be lesser in Graphene model when compared to Carbon fiber. The simulation results will provide a solution for eliminating the higher risk of spine injury or pathological condition of a sportsman and thereby improves the sporting performance. Key Word: Motorsports, Computational Biomechanics, Ergonomics, Design optimization, Material optimization, Finite element analysis, Spine Injury prevention
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