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Research on Mechanism of Drag Reduction and Efficiency Improvement of Hydrodynamic Torque Converter with Bionic Non-smooth Surfaces

机译:仿生非光滑表面的液压动力变矩器减阻和效率提高机理研究

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Inspired by the successful applications of biological non-smoothness, the bionic non-smooth surface was integrated into the design of hydrodynamic torque converter (TC) to conduct the research on the drag reduction and efficiency improvement, the concaves model on non-smooth surface were established according to our analysis with the mechanisms underlying non-smooth unit mediated fluid drag reduction. The friction, shear and turbulent viscous in the concaves and adjacent areas on bionic non-smooth pump surface were found to decline after TC was subjected to transient numerical simulation tests using computational fluid dynamics (CFD) analysis method. The results showed that the head and efficiency of bionic pump was improved, compared with the original model, as well as the over performance of TC, the availability of the proposed design method could be thereby confirmed. As a kind of "green drag reduction" method, the bionic non-smooth surface was firstly applied to TC in this paper, the correlation reflected from non-smooth shell surface of pump can be provided for the design involving the drag reduction on surfaces of other internal components in TC.
机译:灵感来自生物非光滑度的成功应用,仿生非光滑表面集成到流体动力变矩器(TC)的设计中进行了对减阻和效率改进的研究,非光滑表面上的凹版模型根据我们的分析建立了非平滑单元介导的液体阻力减少的机制。在使用计算流体动力学(CFD)分析方法的瞬态数值模拟试验之后,发现脱硫非光滑泵表面上的凹槽和相邻区域的摩擦,剪切和湍流粘性下降。结果表明,仿生泵的头部和效率得到了改善,与原始模型相比,以及TC的过度性能,因此可以确认所提出的设计方法的可用性。作为一种“绿色阻力减少”方法,首先将仿生非光滑表面施加到本文中,可以为泵的非光滑壳表面反射的相关性用于涉及阻力减少的设计TC中的其他内部组件。

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