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首页> 外文期刊>Journal of Dynamic Systems, Measurement, and Control >Elimination of Bias Errors Due to Suspension Effects in FRF-Based Rigid Body Property Identification
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Elimination of Bias Errors Due to Suspension Effects in FRF-Based Rigid Body Property Identification

机译:消除了基于FRF的刚体特性识别中由于悬架效应引起的偏差误差

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The prediction of a mechanical structure's rigid dynamic behavior requires knowledge of ten inertia parameters. In cases where no accurate models of the structure's geometry and mass distribution are available, the ten inertia parameters must be determined experimentally. Experimental methods based on measurements of frequency response functions (FRFs) are subject to bias errors due to suspension effects. This paper proposes a method for eliminating these errors by using a single-wire suspension condition and modeling the suspension's effect on the FRFs. The suspension model depends only on the unknown rigid body properties and on three easy-to-measure parameters. The rigid body properties are determined by fitting FRFs derived from the suspension model and from the rigid body mass matrix directly to the experimental FRF data. Eliminating the suspension bias makes it possible to use low-frequency FRF data, which in turn justifies the assumption of rigid behavior. In this way, bias-free rigid body property identification can be achieved without modal curve fitting. Simulation and experimental results are presented showing the effectiveness of the approach.
机译:机械结构的刚性动态行为的预测需要十个惯性参数的知识。如果没有精确的结构几何形状和质量分布模型,则必须通过实验确定十个惯性参数。基于频率响应函数(FRF)的测量的实验方法会因悬挂效应而产生偏差误差。本文提出了一种通过使用单线悬架条件并模拟悬架对FRF的影响来消除这些误差的方法。悬架模型仅取决于未知的刚体属性和三个易于测量的参数。刚体特性是通过将源自悬架模型和刚体质量矩阵的FRF直接拟合到实验FRF数据来确定的。消除悬架偏置可以使用低频FRF数据,这反过来又证明了刚性行为的合理性。这样,无需模态曲线拟合就可以实现无偏差的刚体特性识别。仿真和实验结果表明了该方法的有效性。

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