Investigation on the Effects of Torque Converter Blade Thickness Based on FSI Simulation

Cheng Liu, Meng Guo, Wei Wei, Q. Yan, P. Li
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Abstract

A lot of efforts were put into the design of torque converter blade angles and the analysis of transient flow behaviors; yet little is known about the influence of the blade thickness distribution on the performance or structural response of a torque converter. This study proposed a parameterized blade thickness design model and analyzed the effects of the blade thickness on hydrodynamic performance and structural response using fluid-structure interaction (FSI) models. Both one-way FSI model and two-way FSI model were built and evaluated against test data, and it was found that the transient two-way FSI model outperformed the steady-state FSI model in terms of both flow and structure simulations. It was found that the stall torque ratio and peak efficiency exhibited positive correlations with blade thicknesses, whereas the stall capacity constant was inversely related to blade thicknesses. Both numerical and experimental results suggested that the pump-turbine interaction induced serious flow fluctuations, and FSI simulations were required in the design process to avoid potential resonance.
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基于FSI仿真的变矩器叶片厚度影响研究
在变矩器叶片角设计和瞬态流动特性分析方面做了大量工作;然而,关于叶片厚度分布对变矩器性能和结构响应的影响,目前所知甚少。提出了叶片厚度参数化设计模型,并利用流固耦合模型分析了叶片厚度对叶片水动力性能和结构响应的影响。建立了单向流固耦合模型和双向流固耦合模型,并根据试验数据进行了评估,发现瞬态双向流固耦合模型在流动和结构模拟方面都优于稳态流固耦合模型。失速转矩比和峰值效率与叶片厚度呈显著正相关,失速容量常数与叶片厚度呈显著负相关。数值和实验结果都表明,泵-水轮机相互作用引起了严重的流量波动,在设计过程中需要进行FSI模拟以避免潜在的共振。
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