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基于熵產理論的多級液力透平能量耗散機理分析
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國家自然科學基金項目(52169019)、甘肅省杰出青年基金項目(20JR10RA203)和中國博士后科學基金項目(2022M712676)


Analysis of Energy Dissipation Mechanism of Multistage Hydraulic Turbine Based on Entropy Production Theory
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    摘要:

    液力透平作為一種液體余壓能回收裝置,,在小水電建設和能量回收領域得到廣泛應用,,但其內部能量損失特性不清。以兩級徑流式液力透平為研究對象,,基于熵產理論和Omega渦識別準則分析了各過流部件內能量耗散機理,。結果表明:速度脈動和壁面效應是能量損失的主要來源,設計工況下二者總占比為98.03%,。葉輪和導葉是透平內能量耗散的主要區(qū)域;小流量工況,,葉輪損失占比較高,;大流量工況下,導葉損失占比較高,。葉輪內的能量損失源于葉片前緣分離渦,、吸力面回流渦以及葉片尾緣渦等不穩(wěn)定流動現(xiàn)象,而相對液流角與葉片進口安放角的不匹配是導致葉輪內產生不穩(wěn)定流動的根本原因,;在導葉和導葉Ⅱ-反導葉中,,不同流量下導致其能量耗散的因素基本保持一致,葉片前緣失速渦和流動分離等劣態(tài)流動引起的動量交換是導致能量損失的主要原因,。環(huán)形吸水室內流動的非對稱性導致導葉Ⅰ各流道內熵產率分布不均勻,,而導葉Ⅱ-反導葉通過正導葉的整流減小了沖擊效應,各流道內熵產率分布均勻且高熵區(qū)較小,。

    Abstract:

    As a liquid residual pressure energy recovery device, hydraulic turbine is widely used in the field of small hydropower construction and energy recovery, but its internal energy loss characteristics are unclear. The two-stage radial hydraulic turbine was taken as the research object. Based on the entropy production theory, the energy loss in each flow component was quantitatively analyzed, and the energy dissipation mechanism in the turbine was further revealed by combining the Omega vortex identification criterion and flow field distribution. The results showed that velocity pulsation and wall effect were the primary sources of energy dissipation. The total proportion of the two was 98.03% under the design condition. The impeller and the guide vane were the main areas of energy dissipation in the turbine; the impeller loss accounted for a higher percentage in the small flow condition, while the guide vane loss accounted for a higher percentage in the large flow condition. The energy loss in the impeller originated from the unstable flow phenomena such as vortex separation at the leading edge of the blade, return vortex at the suction surface, and vortex at the trailing edge of the blade, and the matching of the relative liquid flow angle and the angle of placement of the inlet of the blade was the fundamental reason for the unstable flow in the impeller; in the guide vane Ⅰ and the guide vane Ⅱ-anti-guide vane, the factors leading to the dissipation of their energy at different flow rates were basically the same, and the poor flow such as the stagnation vortex at the leading edge of the blade and the flow separation. The momentum exchange caused by the blade leading edge stall vortex and flow separation was the main cause of energy loss. Due to the asymmetry of the flow inside the annular suction chamber, the entropy yield distribution in each channel of the guide vane Ⅰ was not uniform, while the guide vane Ⅱ-anti-guide vane reduced the shock effect through the rectification of the positive guide vane, and the entropy yield distribution in each channel was uniform and the high entropy area was small.

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王曉暉,蔣虎忠,苗森春,白小榜,祁炳.基于熵產理論的多級液力透平能量耗散機理分析[J].農業(yè)機械學報,2024,55(3):162-172. WANG Xiaohui, JIANG Huzhong, MIAO Senchun, BAI Xiaobang, QI Bing. Analysis of Energy Dissipation Mechanism of Multistage Hydraulic Turbine Based on Entropy Production Theory[J]. Transactions of the Chinese Society for Agricultural Machinery,2024,55(3):162-172.

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  • 收稿日期:2023-08-05
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  • 在線發(fā)布日期: 2023-10-17
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