首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >EFFECT OF AXIAL SHORT SLOT CASING TREATMENT AND ITS CENTER DEVIATION ON STABILITY OF A TRANSONIC AXIAL FLOW COMPRESSOR
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EFFECT OF AXIAL SHORT SLOT CASING TREATMENT AND ITS CENTER DEVIATION ON STABILITY OF A TRANSONIC AXIAL FLOW COMPRESSOR

机译:轴向短槽套管处理的影响及其中心偏差对横向轴流压缩机稳定性的影响

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In order to increase the stability margin of axial compressor with low efficiency losses, this paper studies the influence of axial short slot casing treatment and its axial position on compressor performance. A transonic axial compressor rotor, NASA rotor 37, is taken as the research object, and the solid wall case and three axial slot casing treatments with different axial positions are studied by numerical simulation. The results show that the configuration with a center deviation of 0 (CT_C) has the best effect, with a margin improvement of 7.6% and an efficiency reduction of 0.09%; the configuration with an upstream positioned axial slot (CT_L) is the second, with a margin improvement of 5.4% and an efficiency reduction of 0.28%; the configuration with a downstream positioned axial slot (CT_T) is the worst, with a margin improvement of 3.6% and an efficiency reduction of 0.3%. A shift of the slot in downstream direction is not effective because it only affects the extent of boundary layer separation and has little effect on the development of the tip leakage flow. The upstream positioned axial slot with unsatisfactory effect affects the tip leakage flow trajectory and weakens the radial vortex at the blade tip, but it cannot affect the subsequent development of the leakage vortex. The short slot casing treatment in the central position effectively inhibits the development of the vortex. At the same time, it affects the development of the boundary layer to some extent and ensures the lower efficiency reduction while obtaining better stability margin.
机译:为了提高具有低效率损失的轴向压缩机的稳定性余量,本文研究了轴向短槽套管处理的影响及其对压缩机性能的轴向位置。横向轴向压缩机转子,NASA转子37作为研究对象,通过数值模拟研究了具有不同轴向位置的实心壁壳和具有不同轴向位置的三个轴向槽壳处理。结果表明,具有0(CT_C)的中心偏差的配置具有最佳效果,边距为7.6%,效率降低0.09%;具有上游定位的轴向槽(CT_L)的配置是第二个,边距为5.4%,效率降低0.28%;具有下游定位的轴向槽(CT_T)的配置是最差的,边距为3.6%,效率降低0.3%。下游方向的槽的偏移是无效的,因为它只影响边界层分离的程度,并且对尖端泄漏流的发展几乎没有影响。具有令人满意的上游定位的轴向槽,效果不令人满意地影响了尖端泄漏流动轨迹,削弱了刀片尖端的径向涡流,但不能影响泄漏涡流的随后发展。中央位置的短槽套管处理有效地抑制了涡旋的发展。同时,它影响边界层的发展到一定程度,并确保在获得更好的稳定性边缘的同时降低效率降低。

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