首页> 外文会议>ASME turbo expo: turbomachinery technical conference and exposition >INVESTIGATION OF FLOW-INDUCED RADIAL FORCE AND ITS INFLUENCE ON ROTOR DYNAMICS FOR A CRYOGENIC LIQUID TURBINE EXPANDER
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INVESTIGATION OF FLOW-INDUCED RADIAL FORCE AND ITS INFLUENCE ON ROTOR DYNAMICS FOR A CRYOGENIC LIQUID TURBINE EXPANDER

机译:低温液体涡轮膨胀机的流动径向力研究及其对转子动力学的影响

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摘要

To improve the operating stability of a cryogenic liquid turbine expander, the influence of flow behavior on rotor radial force and critical speed is investigated numerically. At both design and off-design conditions, unsteady flow simulation is conducted in the entire expander environment where the physical model is constituted by a volute, nozzle, impeller and diffuser duct. The asymmetric flow characteristics are captured at both design and off-design conditions and they are responsible for the significant radial force on rotor. The radial component of flow-induced resultant force is calculated with direct integration approach and it is significant due to apparent asymmetric impeller flow. The influence of such radial component of flow-induced resultant force on the rotor critical speed is further investigated, where the flow-induced radial force is considered as an equivalent mass and superposed on the impeller mass integrity to obtain a resultant mass of impeller, which is used in the prediction of rotor critical speed. To predict rotor critical speed, a finite element method is developed and incorporated into a FORTRAN code, and it is validated and then used to predict the rotor critical speed with and without consideration of the radial component of flow-induced resultant force respectively. The following is described: at both design condition and off-design conditions, the predicted critical speeds with consideration of flow-induced radial force are significantly below that without flow-induced radial force. The influence of impeller flow behavior on rotor dynamics of the turbine expander is not negligible.
机译:为了提高低温液体涡轮膨胀机的运行稳定性,数值研究了流动特性对转子径向力和临界速度的影响。在设计和非设计条件下,都在整个膨胀机环境中进行非恒定流模拟,在该环境中,物理模型由蜗壳,喷嘴,叶轮和扩散管组成。在设计和非设计条件下都可以捕获非对称流动特性,它们是作用在转子上的巨大径向力的原因。流动引起的合力的径向分量是使用直接积分法计算的,由于叶轮表面明显不对称,因此径向分量很重要。进一步研究了这种流动引起的合力的径向分量对转子临界速度的影响,其中将流动引起的径向力视为等效质量并叠加在叶轮质量完整性上,以获得叶轮的合质量,用于预测转子的临界转速。为了预测转子的临界转速,开发了一种有限元方法并将其合并到FORTRAN代码中,并进行了验证,然后将其用于预测转子的临界转速,分别考虑和不考虑流动引起的合力的径向分量。描述以下内容:在设计条件和非设计条件下,考虑到流动引起的径向力的预测临界速度显着低于没有流动引起的径向力的临界速度。叶轮流动特性对涡轮膨胀机转子动力学的影响不可忽略。

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