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首页> 外文期刊>Journal of Zhejiang University. Science, A >Three-dimensional numerical simulation of a vertical axis tidal turbine using the two-way fluid structure interaction approach*
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Three-dimensional numerical simulation of a vertical axis tidal turbine using the two-way fluid structure interaction approach*

机译:双向流体结构相互作用方法垂直轴线涡轮机的三维数值模拟*

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The objective of this study was to develop, as well as validate the strongly coupled method (two-way fluid structural interaction (FSI)) used to simulate the transient FSI response of the vertical axis tidal turbine (VATT) rotor, subjected to spatially varying inflow. Moreover, this study examined strategies on improving techniques used for mesh deformation that account for large displacement or deformation calculations. The blade’s deformation for each new time step is considered in transient two-way FSI analysis, to make the design more reliable. Usually this is not considered in routine one-way FSI simulations. A rotor with four blades and 4-m diameter was modeled and numerically analyzed. We observed that two-way FSI, utilizing the strongly coupled method, was impossible for a complex model; and thereby using ANSYS-CFX and ANSYS-MECHANICAL in work bench, as given in ANSYS-WORKBENCH, helped case examples 22 and 23, by giving an error when the solution was run. To make the method possible and reduce the computational power, a novel technique was used to transfer the file in ANSYS-APDL to obtain the solution and results. Consequently, the results indicating a two-way transient FSI analysis is a time- and resource-consuming job, but with our proposed technique we can reduce the computational time. The ANSYS STRUCTURAL results also uncover that stresses and deformations have higher values for two-way FSI as compared to one-way FSI. Similarly, fluid flow CFX results for two-way FSI are closer to experimental results as compared to one-way simulation results. Additionally, this study shows that, using the proposed method we can perform coupled simulation with simple multi-node PCs (core i5).
机译:本研究的目的是开发,以及验证强烈耦合的方法(双向流体结构相互作用(FSI))用于模拟垂直轴潮汐涡轮机(Vatt)转子的瞬态FSI响应,经受空间变化流入。此外,该研究检查了改进用于网格变形的技术的策略,该技术考虑了大的位移或变形计算。每个新时步骤的刀片的变形被认为是瞬态双向FSI分析,使设计更可靠。通常,这不考虑在常规单向FSI模拟中。建模具有四个叶片和4米直径的转子,并进行数值分析。我们观察到使用强烈耦合方法的双向FSI是不可能的复杂模型;从而在工作台中使用ANSYS-CFX和ANSYS-MOCHINE,如ANSYS-WORKBENCH,通过在运行解决方案时给出错误时,帮助案例示例22和23。为了使方法可以实现和降低计算能力,使用一种新颖的技术来将文件传输到ANSYS-APDL中以获得解决方案和结果。因此,表明双向瞬态FSI分析的结果是一个时间和资源的工作,但是通过我们的提出技术,我们可以减少计算时间。与单向FSI相比,ANSYS结构结果也揭示了双向FSI的应力和变形。类似地,与单向仿真结果相比,双向FSI的流体流量CFX结果更接近实验结果。此外,本研究表明,使用所提出的方法,我们可以通过简单的多节点PC(核心I5)执行耦合仿真。

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