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Effect of inlet temperature on flow behavior and performance characteristics of supercritical carbon dioxide compressor

机译:入口温度对超临界二氧化碳压缩机的流动性能和性能特性的影响

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Centrifugal compressors have been widely applied in supercritical carbon dioxide (SCO2) Brayton cycle because of its compactness and low power consumption. However, the dramatic change in supercritical carbon dioxide near the critical point (304.13 K, 7.38 MPa) under different inlet temperatures brings challenges to compressor operation, especially with asymmetric boundary conditions. In this study, full annular calculations of a centrifugal compressor with a volute are conducted by imposing different inlet total temperatures. The sensitivity of the performance characteristics of each component to the inlet temperature was obtained. Two-phase region, dominant flow structure in the impeller, and downstream flow field structure distortion caused by inlet temperatures were revealed. The results showed that when the inlet condition was close to the critical point of supercritical carbon dioxide, the size of the two-phase region in the impeller increased and its circumferential nonuniformity was intensified. At 309 K, the two-phase region caused an enthalpy rise fluctuation at the blade tip and a difference in enthalpy at the blade outlet. Moreover, with the decrease in inlet temperature, the size and range of the counterclockwise vortex gradually increased, leading to the transportation of low-momentum fluid from the pressure side to the suction side of the blade. In addition, the wake at the impeller outlet was accumulated and the impeller discharge flow deteriorated, resulting in local flow separation in the vaneless diffuser.
机译:由于其紧凑性和低功耗,离心式压缩机已广泛应用于超临界二氧化碳(SCO2)Brayton循环。然而,在不同入口温度下临界点(304.13k,7.38MPa)附近的超临界二氧化碳的显着变化为压缩机操作带来了挑战,特别是在不对称的边界条件下。在该研究中,通过施加不同的入口总温度来进行具有蜗壳的离心式压缩机的全环计算。获得了每个组分对入口温度的性能特性的敏感性。揭示了两相区域,叶轮中的主流结构,以及由入口温度引起的下游流场结构变形。结果表明,当入口条件接近超临界二氧化碳的临界点时,叶轮中的两相区域的尺寸增加,并加剧了其周向不均匀性。在309k处,两相区域在叶片尖端引起焓上升波动和叶片出口处的焓差异。此外,随着入口温度的降低,逆时针涡流的尺寸和范围逐渐增加,导致从压力侧运输到叶片的吸入侧的低动量流体。另外,累积叶轮出口处的唤醒并且叶轮排出流劣化,导致无差漫射器中的局部流动分离。

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