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Optimization of actuator configuration for the reduction of structure-borne noise in automobiles.

机译:优化执行器配置,以减少汽车中的结构噪声。

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摘要

In this thesis, a strategy is proposed for the optimization of actuator configuration in the implementation of Active Structural Acoustic Control (ASAC) of road noise in an automobile suspension.; First, a laboratory test bench consisting of a quarter-car suspension consisting of a wheel/suspension/lower A-arm assembly is modeled. A 12 degrees-of-freedom discrete element model of the rigid parts of the suspension is first used to produce global suspension resonances. Equivalent rigidity models of flexible components are then measured experimentally or identified with the help of genetic algorithms. The discrete element model and the equivalent rigidity models are combined to reproduce test bench Frequency Response Functions (FRFs) measured on the test bench.; Second, the impedance of the test bench tire table is corrected using experimental measurements and analytical road profiles to reproduce a realistic road excitation. Afterward, a Chevrolet EPICA LS automobile is instrumented and operated on a concrete test track to observe the relative importance of road-induced vibrations compared to other noise sources in a moving car at 50 km/h. FRFs between the road excitation ant the car interior pressure level at the driver's head are measured and compared to a complete car transmission path tool (composed of the quarter-car test bench and a car frame finite element model). The FRF analysis between reference sensors and error microphones reveals the difficulty of obtaining sufficient experimental coherence to realise the active control of a suspension.; Finally, an algorithm is implemented to find optimal actuator locations and orientations in the ASAC, using the suspension model and the filtered road excitation. Genetic algorithm tools are used with the suspension model for actuator positioning: the tire, the coil spring & the car panels control volumes are included into the model to constrain the evolution of the algorithm. For a given actuator configuration, the optimal control command is obtained by quadratic minimization of specific cost function (displacement at suspension links, force transmissibility & sound pressure level). Optimal actuator configurations are then suggested for future studies.
机译:本文提出了一种在汽车悬架中实现道路噪声的主动结构声控制(ASAC)的过程中,优化执行器配置的策略。首先,对由四分之一汽车悬架组成的实验室测试台进行建模,该悬架由车轮/悬架/下部A臂组件组成。悬架刚性部件的12自由度离散元模型首先用于产生整体悬架共振。然后,通过实验测量柔性组件的等效刚度模型,或者借助遗传算法对其进行识别。离散元素模型和等效刚度模型结合在一起,以重现在试验台上测得的试验台频率响应函数(FRF)。其次,使用实验测量值和分析性道路轮廓来校正测试台轮胎工作台的阻抗,以再现真实的道路激励。之后,对一辆Chevrolet EPICA LS汽车进行了检测,并在混凝土测试轨道上进行了操作,以观察以50 km / h速度行驶的汽车中道路引起的振动与其他噪声源相比的相对重要性。测量道路激励与驾驶员头部的汽车内部压力水平之间的FRF,并将其与完整的汽车传输路径工具(由四分之一汽车测试台和汽车框架有限元模型组成)进行比较。参考传感器和误差传声器之间的FRF分析表明难以获得足够的实验相干性来实现对悬架的主动控制。最后,使用悬架模型和滤波后的道路激励,实现了一种算法,以在ASAC中找到最佳的执行器位置和方向。悬架模型使用遗传算法工具进行执行器定位:模型中包括轮胎,螺旋弹簧和轿厢控制体积,以约束算法的发展。对于给定的执行器配置,通过将特定成本函数(悬架连杆的位移,力传递性和声压级)的二次最小化来获得最佳控制命令。然后建议最佳执行器配置,以供将来研究。

著录项

  • 作者

    Choquette, Patrice.;

  • 作者单位

    Universite de Sherbrooke (Canada).;

  • 授予单位 Universite de Sherbrooke (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 M.Sc.A.
  • 年度 2006
  • 页码 126 p.
  • 总页数 126
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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