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Optimization of Local Stiffness for Reducing Off-Highway Machinery Interior Noise

机译:优化局部刚度减少越野机械内噪声

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It is common for automotive manufacturers and off-highway machinery manufacturers to gain insight into the system’s structural dynamics by evaluating the system inertance functions near the mount locations. The acoustic response of the operator’s ears is a function of the vibro-acoustic characteristics of the system structural dynamics interacting with the cavity, with the actual load applied at the mount locations. The overall vibro-acoustic characteristics can be influenced by a change in local stiffness. To analyze the response of a system, it is necessary to go beyond analyzing its transfer functions. The actual load needs to be understood and applied to the transfer function set. Finite element (FE) based analysis provides a good foundation for deterministic solutions. However the finite element method decreases in accuracy as frequency increases. Many NVH problems happen to be at the mid frequency range where solving the problem with the FE-only approach falls short [1]. This project utilizes the high definition nature of test-based frequency response function for the main structure, the flexibility of FE-based FRF synthesis for the body attachments, in conjunction with the inverse force estimation technique to address a fluid-borne noise problem in the mid frequency range. Various design options of body attachment are to be evaluated numerically to reduce interior noise at the operator’s ears.
机译:汽车制造商和非公路机械制造商是常见的,通过评估安装位置附近的系统惯性功能来深入了解系统的结构动态。操作者的耳朵的声学响应是与空腔相互作用的系统结构动力学的振动声特性的函数,其实际负载在安装位置处施加。整体振动声学特性可以受到局部刚度的变化的影响。为了分析系统的响应,有必要超越分析其传递函数。需要了解实际负载并将其应用于传递函数集。基于有限元(FE)的分析为确定性解决方案提供了良好的基础。然而,随着频率的增加,有限元方法的精度降低。许多NVH问题发生在中频范围内,其中解决了Fe-off方法的问题差异[1]。该项目利用基于测试的频率响应函数的高清晰度性质,用于主结构,Fe的Fe基FRF合成的灵活性,与逆力估计技术结合在一起解决流体传播的噪声问题中频范围。要数控地进行体外附件的各种设计选项,以降低操作员耳朵的内部噪音。

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