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Design and analysis of energy-harvesting shock absorber with electromagnetic and fluid damping

机译:具有电磁阻尼和流体阻尼的能量吸收减振器的设计与分析

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The design and numerical simulation of a linear generator for use in an automobile shock absorber are presented in this paper. The conceived linear generator employs high-performance rare earth permanent magnets with compact size to ensure efficient energy recovery. Finite element analysis and Matlab simulation are utilized to derive the generator configurations for the satisfactory utilization of magnets and optimized functioning. Experimentation was performed on a linear generator prototype and electromagnetic shock absorber to validate the numerical analysis. The numerical model is then utilized in the design of a full-scale energy-harvesting shock absorber with fluid damping and a linear generator. A novel feature of the presented work is the use of fluid amplification to simultaneously achieve energy dissipation and velocity amplification. Fluid amplification does not affect the dynamics of the system and increases the coil velocity by approximately eight times. Smooth variation in damping force, improved fail-safe characteristics, and absence of transmission elements, such as mechanical gears, are additional advantages of the system. Matlab Simscape evaluation is employed to analyze comfort, safety, and energy-harvesting characteristics, which are then compared with that of the conventional fluid shock absorber. Simulation with actual road excitation data indicates that the presented system harvests 15 W of the average power from each wheel. Lastly, the layout for integrating the presented shock absorber in McPherson suspension is discussed.
机译:本文介绍了一种用于汽车减震器的线性发电机的设计和数值模拟。设想的线性发电机采用高性能的稀土永磁体,尺寸紧凑,可确保高效的能量回收。利用有限元分析和Matlab仿真来得出发电机配置,以令人满意地利用磁铁并优化功能。对线性发电机原型和电磁减震器进行了实验,以验证数值分析。然后,将数值模型用于带有流体阻尼和线性发电机的全尺寸能量收集减震器的设计中。提出的工作的新颖特征是使用流体放大来同时实现能量耗散和速度放大。流体放大不会影响系统的动力学,并且会使线圈速度增加大约八倍。阻尼力的平稳变化,改进的故障安全特性以及没有诸如机械齿轮之类的传动元件,是该系统的其他优点。 Matlab Simscape评估用于分析舒适性,安全性和能量收集特性,然后将其与常规流体减震器进行比较。用实际的道路激励数据进行的仿真表明,所提出的系统从每个车轮获得15 W的平均功率。最后,讨论了将提出的减震器集成到McPherson悬架中的布局。

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