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Squeal analysis of thin-walled lattice brake disc structure

机译:薄壁点阵制动盘结构的尖叫声分析

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This paper presents a dynamic stability study of a novel brake disc design consisting of periodic lattice truss substructures. An integrated approach of theoretical modeling, experimental modal analysis, and finite elements methods is employed in this investigation to understand the squeal characteristics. The brake system is analytically modeled by a rotating annular disc subjected to in-plane frictional loads. Natural frequencies and forced response of the brake disc are obtained and validated by finite elements results. Experimentalmodal analysis of the lattice brake rotor/pad systemwith free-free boundary conditions is performed to obtain the modal properties of the brake rotor as inputs to the finite elements model. The FEA also includes models for the heat convection during braking and the non-linear contact forces between the rotor and the pads obtained from simulations of the SAE J2521 drag braking noise test matrix. The likelihood of squeal noise occurrence or squeal propensity for both the lattice and conventional vanned type brake discs are examined. The propensity is quantified by the standard deviation of the statistical occurrence of brake instability. It is shown that the lattice brake disc design has a lower propensity in the low frequency range of about 4 to 8 kHz. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文提出了一种新型的由周期性格子桁架子结构组成的制动盘设计的动态稳定性研究。本研究采用理论建模,实验模态分析和有限元方法的综合方法来理解尖叫声特征。制动系统通过承受平面内摩擦载荷的旋转环形盘进行分析建模。通过有限元结果获得并验证了制动盘的固有频率和强制响应。对具有自由边界条件的晶格制动转子/制动片系统进行了实验模态分析,以获取制动转子的模态特性作为有限元模型的输入。 FEA还包括制动过程中的热对流模型,以及通过SAE J2521阻力制动噪声测试矩阵的仿真获得的转子和制动衬块之间的非线性接触力的模型。检查了格栅和常规的带叶片的制动盘的尖叫声或尖叫倾向的可能性。倾向通过制动不稳定性统计发生的标准偏差进行量化。结果表明,晶格制动盘设计在大约4至8 kHz的低频范围内具有较低的倾向。 (C)2018 Elsevier Ltd.保留所有权利。

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