首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Measurements of the Rotordynamic Response of a Rotor Supported on Porous Type Gas Bearing
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Measurements of the Rotordynamic Response of a Rotor Supported on Porous Type Gas Bearing

机译:多孔气轴承支承转子的转子动力响应的测量

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A test rig is built in this study to measure the rotordynamic response of a rotor supported on porous-type gas bearings. A rotor with a double impulse turbine at one end is driven by compressed air and supported on two porous type journal gas bearings and a pair of bump-type thrust gas bearings. The rotor is accelerated to ∼25 krpm and coasted down in the test. The rotor dynamic response is measured for different bearing supply pressures (i.e., 0.40 MPa, 0.45 MPa, and 0.50 MPa) and imbalance masses (i.e., 85 mg, 150 mg, and 215 mg). Synchronous and subsynchronous amplitudes are extracted from the rotor responses. The critical speed increases as the bearing supply pressure increases, but the damping ratio decreases. The onset speed of subsynchronous motion increases, and the subsynchronous amplitude decreases as the bearing supply pressure increases. The deceleration time is more than 5 min for a bearing supply pressure of 0.5 MPa, which reveals the very low drag friction of the porous gas bearings. The synchronous amplitude increases as the imbalance increases for all the tested bearing supply pressures. The critical speeds for different imbalances are almost the same, except for the out-of-phase imbalance condition under a bearing supply pressure of 0.50 MPa, in which the critical speed increases as the imbalance increases. The normalized synchronous amplitude shows the rotor-bearing system behaves almost in a linear fashion for all in-phase imbalance conditions. Nonlinear behavior is shown around the critical speed for the 215 mg out-of-phase imbalance condition under a bearing supply pressure of 0.50 MPa. The onset speed of the subsynchronous motion decreases as the imbalance increases under the in-phase imbalance condition. The predominant mode of vibration changes from cylindrical to conical and then back to cylindrical as the rotor speed decreases during the coast down test for the in-phase imbalance conditions. However, the rotor vibration mode is predominantly conical during the whole coast down test for the out-of-phase imbalance conditions.
机译:在这项研究中建立了一个试验台,以测量支撑在多孔型气体轴承上的转子的转子动力响应。一端具有双脉冲涡轮的转子由压缩空气驱动,并支撑在两个多孔型轴颈气体轴承和一对凸点型推力气体轴承上。在测试中,转子加速至〜25 krpm并滑行。针对不同的轴承供应压力(即0.40 MPa,0.45 MPa和0.50 MPa)和不平衡质量(即85毫克,150毫克和215毫克)测量转子动态响应。从转子响应中提取同步和次同步幅度。临界速度随着轴承供应压力的增加而增加,但阻尼比却降低。次同步运动的开始速度增加,并且次同步振幅随着轴承供应压力的增加而减小。轴承供应压力为0.5 MPa时,减速时间超过5分钟,这表明多孔气体轴承的阻力很低。对于所有测试的轴承供应压力,同步振幅随着不平衡的增加而增加。除了轴承供应压力为0.50 MPa的异相不平衡状态(临界速度随着不平衡度的增加而增加)以外,不同不平衡度的临界速度几乎相同。归一化的同步振幅表明,在所有同相不平衡条件下,转子轴承系统的行为几乎都是线性的。在轴承供气压力为0.50 MPa的情况下,对于215 mg的不平衡不平衡状态,在临界转速附近显示了非线性行为。在同相不平衡条件下,随着不平衡的增加,次同步运动的开始速度降低。在同相不平衡条件下的惯性下降测试中,随着转子速度的降低,振动的主要模式从圆柱形变为圆锥形,然后又回到圆柱形。但是,对于异相不平衡状况,在整个滑行测试期间,转子振动模式主要是圆锥形的。

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