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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Leakage and Rotordynamic Characteristics for Three Types of Annular Gas Seals Operating in Supercritical CO_2 Turbomachinery
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Leakage and Rotordynamic Characteristics for Three Types of Annular Gas Seals Operating in Supercritical CO_2 Turbomachinery

机译:超临界CO_2涡轮机械运行三种环形气体密封的泄漏和旋转动力学特性

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摘要

The balance piston seal in multiple-stage centrifugal compressors and axial turbines sustains the largest pressure drop through the machines and therefore plays an important role in successful full load operation at high rotational speed. This is especially true for power dense turbomachines in supercritical CO_2 power cycles that generate or expend higher fluid pressures (above the critical value 7.3 MPa) and density (close to water 1000kg/m~3), because the fluid forces generated by the balance piston seals are directly proportional to the fluid density and the pressure drop across the seal. This paper presents a comprehensive assessment and comparison on the leakage and rotordynamic performance of three types of annular gas seals for application in a 14 MW supercritical CO_2 turbine. These three seals represent the main seal types used in high-speed rotating machines at the balance piston location in efforts to limit internal leakage flow and achieve rotordynamic stability, including a labyrinth seal (LABY), a fully partitioned pocket damper seal (FPDS), and a hole-pattern damper seal (HPS). These three seals were designed to have the same sealing clearance and similar axial lengths. To enhance the seal net damping capability at high inlet preswirl condition, a straight swirl brake was also designed and employed at seal entrance for each type seal to reduce the seal inlet preswirl velocity. Numerical results of leakage flow rates, rotordynamic force coefficients, cavity dynamic pressure, and swirl velocity developments were analyzed and compared for three seal designs at high positive inlet preswirl (in the direction of shaft rotation), using a proposed transient computational fluid dynamic (CFD)-based perturbation method based on the multiple-frequency elliptical-orbit rotor whirling model and the mesh deformation technique. To take into account of real gas effect with high accuracy, a table look-up procedure based on the National Institute of Standards and Technology reference fluid properties database was implemented, using an in-house code, for the fluid properties of CO_2 in both supercritical and subcritical conditions. Results show that the inlet swirl brake can significantly reduce the preswirl velocity at seal entrance, lowering the effective damping crossover frequency f_(co) (or even f_(co) = 0) to maximize the full operational frequency range of the machines. In stability analysis phase of a MW-scale supercritical CO_2 turbine/compressor, the seal stiffness effects on the rotor mode shape must be evaluated carefully, where the seal stiffness is sufficiently large (comparable to the bearing stiffness). From a rotordynamic viewpoint, the HPS seal with entrance swirl brake is a better seal concept for the balance piston seal in supercritical CO_2 turbomachinery, which possesses the largest positive effective damping throughout the entire subsynchronous frequency range.
机译:多级离心式压缩机和轴向涡轮机中的平衡活塞密封件通过机器维持最大的压力下降,因此在成功的全负载运行中以高转速起到重要作用。这对于超临界CO_2功率循环中的功率密集涡轮机尤其如此,该电源循环产生或消耗更高的流体压力(高于临界值7.3MPa)和密度(接近水1000kg / m〜3),因为平衡活塞产生的流体力密封件与流体密度成正比,横跨密封件的压降成比例。本文介绍了在14MW超临界CO_2涡轮机中应用三种环形气密封的泄漏和旋转动力学性能的综合评估和比较。这三个密封件代表了在余额活塞位置的高速旋转机器中使用的主要密封类型,以限制内部泄漏流动并实现旋转动力稳定性,包括迷宫式封印(Laby),一个完全分区的口袋阻尼密封(FPD),和一个孔图案阻尼密封(HPS)。这三个密封件被设计成具有相同的密封间隙和相似的轴向长度。为了提高高进入漩涡条件下的密封净阻尼能力,还在每种型密封件的密封入口处设计并采用直旋制动器,以减小密封入口预旋速度。分析漏流量速率的数值结果,分析了旋转力系数,腔体压力和旋流速度发展,并使用所提出的瞬态计算流体动力学(CFD基于多频椭圆轨道转子旋转模型的基于多频椭圆形轨道转子旋转模型和网状变形技术的基于扰动方法。要考虑到高精度的实际气体效果,使用内部代码实现基于国家标准和技术参考流体属性数据库的表查找程序,用于超临界中的CO_2的流体特性和亚临界条件。结果表明,入口旋流制动器可以显着降低密封入口处的预先生速度,降低有效阻尼交叉频率f_(甚至f_(co)= 0)以最大化机器的全部运行频率范围。在MW级超临界CO_2涡轮机/压缩机的稳定性分析阶段,必须小心地评估对转子模式形状的密封刚度效应,其中密封刚度足够大(与轴承刚度相当)。从旋转动力学观点来看,带入口旋流制动器的HPS密封是超临界CO_2涡轮机的平衡活塞密封件更好的密封概念,其具有整个频率范围内的最大积极有效阻尼。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2021年第10期|101002.1-101002.16|共16页
  • 作者单位

    Institute of Turbomachinery School of Energy and Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

    Institute of Turbomachinery School of Energy and Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

    Institute of Turbomachinery School of Energy and Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

    Institute of Turbomachinery School of Energy and Power Engineering Xi'an Jiaotong University Xi'an 710049 China;

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