Structural Analysis of Small Scale Radial Turbine for Solar Powered Brayton Cycle Application

Ahmed M. Daabo, S. Mahmoud, R. AL-Dadah
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引用次数: 6

Abstract

Developing small scale turbines pauses challenges in terms of increased stresses due to high rotational speed leading to increase in component thicknesses and turbine overall weight. Therefore this study assesses both; the structural and aerodynamic performance of a Small Scale Radial Turbine SSRT by integrating finite-element methods FEM and Computational Fluid Dynamic CFD. Using Vista preliminary design model in ANSYS and detailed 3D CFD optimization, SSRT with 1–5 kW power for solar powered Brayton cycle was developed with high efficiency of 89.2%. Then both; the turbine’s hub and blades were structurally analysed under various loading conditions to investigate the effect of various rotational speeds and blade shapes on the stress distribution and deformation of the blades. The results of the current study showed that a maximum increment of 65% stress and 57% deformation was noticed when reaching the maximum studied rotational speed at inlet air temperature of 450 K.
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太阳能布雷顿循环小型径向水轮机结构分析
由于高转速导致组件厚度和涡轮机整体重量增加,因此开发小型涡轮机在增加应力方面暂停了挑战。因此,本研究对两者都进行了评估;采用有限元法(FEM)和计算流体动力学(CFD)相结合的方法对某小型径向涡轮SSRT的结构和气动性能进行了分析。利用ANSYS中的Vista初步设计模型和详细的3D CFD优化,开发出功率为1 ~ 5kw的太阳能Brayton循环用SSRT,效率高达89.2%。然后两个;对汽轮机轮毂和叶片进行了不同载荷条件下的结构分析,研究了不同转速和叶片形状对叶片应力分布和变形的影响。本研究结果表明,在进口温度为450 K时,达到研究的最大转速时,应力增加了65%,变形增加了57%。
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