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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Unsteady numerical investigation on viscous shear loss caused by rim seal purge flow
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Unsteady numerical investigation on viscous shear loss caused by rim seal purge flow

机译:轮缘密封件吹扫流引起的粘性剪切损失的非定常数值研究

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One of the most important loss sources is viscous shear caused by interaction between the turbine stator-rotor cavity rim seal purge flow and main flow and has not yet been studied systematically. To assess viscous shear loss, numerical simulations under different purge flow rate are presented. Results show that interaction between the purge flow and main flow causes three high viscous dissipation regions: two regions are located in the main passage resulting from interaction between egress flow and main flow and a third region is situated inside the cavity, mainly induced by the mixing between ingress main flow and purge flow. For both ingress and egress, the circumferential velocity difference between the purge flow and main flow is responsible for most of the viscous dissipation. Furthermore, the velocity difference and viscous shear loss increase as purge flow rate is increased. On average, relative to the design condition, viscous shear loss increases by approximately 127% per 1% increase in purge flow rate. Viscous dissipation continues to decrease as the swirl ratio is increased. Moreover, the influence on viscous shear loss of cavity angle of inclination, cavity location, and cavity exit width are negligible because these three parameters do not significantly affect the circumferential velocity difference.
机译:最重要的损失来源之一是由涡轮定子-转子腔边缘密封件吹扫流与主流之间的相互作用引起的粘性剪切,尚未进行系统的研究。为了评估粘性剪切损失,提出了不同吹扫流速下的数值模拟。结果表明,吹扫流与主流之间的相互作用会导致三个高粘性耗散区域:两个区域位于主通道中,这是由于出口流与主流之间的相互作用而引起的,而第三个区域位于空腔内部,这主要是由混合引起的在入口主流和吹扫气之间。对于入口和出口,吹扫流和主流之间的圆周速度差是造成大部分粘性耗散的原因。此外,速度差和粘性剪切损耗随着吹扫流量的增加而增加。平均而言,相对于设计条件,每增加1%的吹扫流速,粘性剪切损失就会增加大约127%。随着涡流比的增加,粘性耗散持续降低。而且,由于这三个参数不会显着影响圆周速度差,因此对腔倾角,腔位置和腔出口宽度对粘性剪切损失的影响可以忽略。

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