首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >ON THE EFFECT OF SUPPLIED FLOW RATE TO THE PERFORMANCE OF A TILTING-PAD JOURNAL BEARING: STATIC LOAD AND DYNAMIC FORCE MEASUREMENTS
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ON THE EFFECT OF SUPPLIED FLOW RATE TO THE PERFORMANCE OF A TILTING-PAD JOURNAL BEARING: STATIC LOAD AND DYNAMIC FORCE MEASUREMENTS

机译:关于供应流量对倾斜垫轴颈轴承性能的影响:静电负荷和动力测量

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Rotating machinery relies on engineered tilting-pad journal bearings (TPJB) to provide static load support with minimal drag power losses, safe pad temperatures, and ensuring a rotor-dynamic stable rotor operation. End users focus on reducing the supplied oil flow rate into a bearing to both lower operational costs and to increase drive power efficiency. This paper presents measurements of the steady-state and dynamic forced performance of a TPJB whilst focusing on the influence of supplied oil flow rate, below and above a nominal condition (50% and 150%). The test bearing has five pads, slenderness ratio L/D = 0.4, spherical pivots with pad offset = 50% and a preload ~ 0.40, with a clearance to radius ratio (C_r/R) ≈ 0.001 at room temperature. The bearing is installed under a load-between-pads (LBP) orientation and has a flooded housing with end seals. The test conditions include operation at various shaft surface speeds (32 m/s-85 m/s) and specific static loads from 0.17 MPa to 2.1 MPa. A turbine oil lubricates the bearing with a speed-dependent flow rate delivered at a constant supply temperature. Measurements obtained at a steady thermal equilibrium include the journal static eccentricity and attitude angle, the oil exit temperature rise, and the pads' subsurface temperatures at various locations, circumferential and axial. The rig includes measurement of the drive torque and shaft speed to produce the bearing drag power loss. Dynamic force coefficients include stiffness, damping, and virtual-mass coefficients. As expected, the drag power and the lubricant temperature rise depend mainly on shaft speed rather than on applied load. A reduction in oil flow rate to 50% of its nominal magnitude causes a modest increase in journal eccentricity, a 15% reduction in drag power loss, a moderate raise (6°C) in pads' subsurface temperatures, a slight increase (up to 6%) in the direct stiffnesses, and a decrease (up to 7%) in direct damping coefficients. Conversely, a 1.5 times increase in oil flow rate causes a slight increase (up to 9 %) in drag power loss, a moderate reduction of pads' temperatures (up to 3°C), a maximum 5% reduction in direct stiffnesses, and a maximum 10% increase in direct damping. The paper also presents comparisons of the test results against predictions from a thermo-elasto-hydrodynamic lubrication model. In conclusion, a 50% reduced oil flow rate only causes a slight degradation in the test bearing static and dynamic force performance and does not make the bearing operation unsafe for tests with surface speed up to 74 m/s. As an important corollary, the measured bearing drag power differs from the conventional estimate derived from the product of the supplied flow rate, the lubricant specific heat and the oil exit temperature rise.
机译:旋转机械依赖于工程倾斜垫轴颈轴承(TPJB),为静电负载支撑提供最小的阻力损耗,安全垫温度,确保转子动态稳定转子操作。最终用户专注于将供应的油流量降低到轴承率较低的运营成本并提高驱动功率效率。本文介绍了TPJB的稳态和动态强制性性能的测量,同时关注提供的油流量,低于标称条件(50%和150%)的供应流量的影响。试验轴承具有五个焊盘,细长比L / D = 0.4,带焊盘偏移的球形枢轴= 50%和预加载〜0.40,在室温下的半径比(C_R / R)≈0.001间隙。轴承安装在负载 - 焊盘(LBP)方向上,并具有带末端密封件的溢流壳体。测试条件包括以0.17MPa至2.1MPa的各种轴表面速度(32m / s-85m / s)和特定静载荷的操作。涡轮机油具有在恒定供应温度下输送的速度依赖性流速的轴承。在稳定的热平衡下获得的测量包括轴颈静偏心和姿态角度,油出口温度升高,以及各个位置,圆周和轴向的焊盘的地下温度。钻机包括测量驱动扭矩和轴速以产生轴承阻力损耗。动态力系数包括刚度,阻尼和虚拟质量系数。正如预期的那样,拖曳力和润滑油温度升高主要取决于轴速而不是施加的载荷。石油流速的降低到其标称幅度的50%导致轴颈偏心的较大增加,减少阻力减少15%,垫子地下温度的中等提高(6°C),略有增加(最多6%)在直接刚度中,直接阻尼系数下降(高达7%)。相反,油流量增加1.5倍导致阻力损失略微增加(高达9%),垫的温度适度减少(最多3°C),直接刚度的最大减少5%,直接阻尼最大增加10%。本文还呈现了对来自热弹性 - 流体动力润滑模型的预测的测试结果的比较。总之,油流量减少50%,仅导致试验轴承静态和动态力性能的略微降解,并且不会使轴承操作不安全地具有高达74米/秒的表面速度。作为一个重要的推论,测量的轴承阻力与来自供应流速的乘积,润滑剂特异性热量和油出口温度升高的常规估计不同。

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