首页> 外文会议>ASME turbo expo >COMPUTATIONAL MODELING AND VALIDATION TESTING OF DYNAMIC BLADE STRESSES IN A ROTATING CENTRIFUGAL COMPRESSOR USING A TIME DOMAIN COUPLED FLUID-STRUCTURE COMPUTATIONAL MODEL
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COMPUTATIONAL MODELING AND VALIDATION TESTING OF DYNAMIC BLADE STRESSES IN A ROTATING CENTRIFUGAL COMPRESSOR USING A TIME DOMAIN COUPLED FLUID-STRUCTURE COMPUTATIONAL MODEL

机译:时域耦合流固耦合计算模型在旋转离心压缩机动态叶片应力计算建模与验证试验中的应用

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This work develops a time domain coupled fluid-structure computational model that predicts dynamic blade stresses in a rotating centrifugal compressor. Although, much research has been performed on axial flow turbomachinery, little has been published for radial machines such as centrifugal compressors and radial inflow turbines. This research develops a time domain coupled fluid-structure computational model using commercially available codes. The model couples the codes unidirectionally, where pressures are transferred to the structural code during the transient solution, and the fluid mesh remains unaffected by the structural displacements. Models are developed for the compressor at blade resonant conditions. The model is then validated with a rotating test of a centrifugal compressor instrumented with blade mounted strain gauges. The test rig is an open loop rig that utilizes an unshrouded centrifugal compressor with a vaneless diffuser. The strain gauge signals are passed through a high gain, low noise amplifier that is mounted on the compressor rotor. This work not only develops a unidirectionally coupled fluid-structure model capable of predicting dynamic strains, but also provides valuable experimental data that can be used for future research and validation cases of fluid-structure interaction (FSI) models.
机译:这项工作建立了时域耦合的流体结构计算模型,该模型可预测旋转式离心压缩机中的动态叶片应力。尽管已经对轴流式涡轮机械进行了大量研究,但对于诸如离心式压缩机和径向入流式涡轮机等径向机械的研究却很少。这项研究使用可商购的代码开发了时域耦合的流体结构计算模型。该模型是单向耦合代码的,在瞬态求解过程中压力被传递到结构代码,并且流体网格不受结构位移的影响。针对叶片共振条件下的压缩机开发了模型。然后,通过对装有叶片式应变片的离心压缩机的旋转测试进行验证,以验证模型。该试验装置是一个开环装置,它使用了无叶离心式压缩机和无叶扩压器。应变仪信号通过安装在压缩机转子上的高增益,低噪声放大器传递。这项工作不仅开发了能够预测动态应变的单向耦合流体结构模型,而且还提供了有价值的实验数据,可用于将来对流体结构相互作用(FSI)模型的研究和验证案例。

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