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Vibration modeling and modification of cutting platform in a harvest combine by means of operational modal analysis (OMA)

机译:采伐联合收割机中切割平台的振动建模和修改,通过操作模式分析(OMA)

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摘要

Vibration in combine cutting platform causes increase in grain loss, reduction of vehicle lifetime and driver's comfort, and also affects the machine working precision. In order to determine vibration behavior of a mechanical structure, the model which relates acting forces on the structure with the resulting responses of it plays a significant role. For a great deal of mechanical structures, only response data are measurable while the actual loading conditions are unknown. Therefore, the system identification process will need to build on the output-only data. The use of such processes allows the identification of modal models of structures which are excited by unknown ambient vibration. In this contribution, controlled vibration experiments were conducted on cutting platform of a combine in order to recognize and reduce its vibration problem. A finite element model is constructed representing the vibration behavior of the cutting platform. Also, the frequency domain decomposition (FDD) technique is used to estimate the modal parameters of vibrating structures in operational conditions. Then, the finite element model is successfully updated by comparing the estimated results of the operational modal analysis. It is found that there is a resonance condition around 50 Hz. Then, the mass change strategy is used to estimate the scaling-factor and frequency response function (FRF) matrix. Finally, the resonance condition and subsequently vibration of cutting platform is reduced by the structural modification technique. As a result of this modification, natural frequency of fifth mode shape (50 Hz) of the combine cutting platform is shifted to 48 Hz.
机译:联合收割机切割平台的振动会导致谷物损失增加,车辆寿命缩短和驾驶员舒适度下降,并且还会影响机器的工作精度。为了确定机械结构的振动行为,将作用在结构上的作用力与其产生的响应相关联的模型起着重要作用。对于大量的机械结构,只有响应数据是可测量的,而实际负载条件是未知的。因此,系统识别过程将需要基于仅输出的数据。这样的过程的使用允许识别由未知环境振动激发的结构的模态模型。在此贡献中,在联合收割机的切割平台上进行了受控的振动实验,以识别并减少其振动问题。构建表示切割平台振动行为的有限元模型。此外,频域分解(FDD)技术用于估计运行条件下振动结构的模态参数。然后,通过比较操作模态分析的估计结果,成功更新了有限元模型。发现在50Hz附近存在共振条件。然后,使用质量变化策略来估计缩放因子和频率响应函数(FRF)矩阵。最终,通过结构修改技术减少了切割平台的共振条件和随后的振动。作为该修改的结果,联合切割平台的第五模式形状的固有频率(50Hz)被移动到48Hz。

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