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Hydraulic Hose Modal Behavior to Investigate Structure-Borne Energy Transfer

机译:液压软管模态行为调查结构 - 传播能量转移

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High pressure hydraulic fluid lines tend to cause significant structure borne energy transfer at clipping points that can result in vibrations and noise. The hydraulic noise and vibration can be an annoyance or serious hearing risk for workers and may contribute to fatigue failure of components. Optimization of hose clamping points is suggested as a passive method to reduce energy transfer from the hose to supporting structural components. By examining the fluid operating deflection shape, regions of high and low structure-borne noise can be predicted at dominant pump orders. A test bench has been developed to compare these assumptions with experimental data. An energy balance method was developed to predict the fluid-borne noise (FBN) energy at hose clipping points. Measurement of the energy at a clipping point presented a challenge because structure-borne noise and fluid-borne noise could not be measured simultaneously. Hose pressure ripple frequency response functions (FRFs) were generated and used to predict the local pressure ripple at a location where it is desired to measure structure borne noise and fluid borne noise. The results of the generated pressure ripple FRFs are discussed and compared with measured pressure FRFs. Preliminary results from the energy balance method are discussed as well as possible sources of error.
机译:高压液压流体管线倾向于引起显着的结构在剪切点处的能量转移,这可能导致振动和噪音。液压噪音和振动可能是工人的烦恼或严重的听证风险,可能有助于疲劳的组件失败。建议用软管夹紧点的优化作为一种​​被动方法,从软管降低从软管到支撑结构部件的无源方法。通过检查流体操作偏转形状,可以在主导泵订单中预测高和低结构噪声的区域。已经开发了一种测试台来将这些假设与实验数据进行比较。开发了一种能量平衡方法以预测软管夹点的流体噪声(FBN)能量。裁减点的能量测量呈现出挑战,因为无法同时测量结构 - 传承噪声和流体传播的噪声。生成软管压力纹波频率响应函数(FRF)并用于预测所希望测量结构噪声和流体传承噪声的位置处的局部压力纹波。讨论产生的压力纹波FRF的结果,并与测量的压力FRF进行比较。讨论了能量平衡方法的初步结果以及可能的误差源。

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