Proper Orthogonal Decomposition Analysis and Braking Control on Hydrodynamic Retarders by Bionic Iris Effective Diameter Regulation

Xiuqi Chen, Wei Wei, Tangzhu Liu, Wenhao Xie, Yi-Fen Li, Wang Zhuo, Wang Ruolin, Qindong Yan
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Abstract

AIris, a flat circular membrane in the middle layer of human eyeball, is controlled by sympathetic nerve and can automatically adjust pupil size according to light intensity to limit the amount of light entering the eyeball. This paper attempts to introduce the artificial iris diameter changing mechanism into hydrodynamic machinery, that is, to control the hydrodynamic retarder without filling fluid by changing the inner diameter of iris and changing the flow path of retarder. Through the decomposition and reconstruction of the intrinsic flow field, the flow field characteristics of the iris retarder are deeply understood, and the fast prediction of the braking torque is realized. At the same time, the close-loop controller is designed to control the iris opening that realizing the adaptive adjustment of the output torque of the retarder, thus overcoming the difficulty on-line observation of actual filling rate of oil problem and the inaccurate tracking of braking torque on traditional hydrodynamic retarder with filling rate control. Our work prove that the nonlinear controller can achieve fast and accurate torque closed-loop torque control in various braking conditions compared with the hydrodynamic rate control retarder, and the potential of iris mechanism for adaptive control of hydrodynamic retarder is verified.
基于仿生虹膜有效直径调节的液力缓速器正交分解分析及制动控制
AIris是人体眼球中间层的扁平圆形膜,由交感神经控制,可以根据光线强度自动调节瞳孔大小,限制进入眼球的光线量。本文试图将人工虹膜变径机构引入流体动力机械,即通过改变虹膜内径和改变缓速器流道来控制液力缓速器不充液。通过对固有流场的分解与重构,深入了解了缓速器的流场特性,实现了制动转矩的快速预测。同时,设计了闭环控制器对缓速器的虹膜开度进行控制,实现了缓速器输出转矩的自适应调节,从而克服了传统液力缓速器充油率控制难以在线观察实际充油率和制动转矩跟踪不准确的问题。研究结果表明,与液力缓速器相比,该非线性控制器在各种制动工况下均能实现快速、准确的转矩闭环控制,验证了虹膜机构在液力缓速器自适应控制中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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