首页> 外文会议>ASME international mechanical engineering congress and exposition >ESTIMATED FLUID FORCE AND DAMPING CHARACTERISTICS OF A THIN FILM DAMPER COMPARISON BETWEEN CLOSED-FORM SOLUTIONS AND NUMERICAL ANALYSIS
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ESTIMATED FLUID FORCE AND DAMPING CHARACTERISTICS OF A THIN FILM DAMPER COMPARISON BETWEEN CLOSED-FORM SOLUTIONS AND NUMERICAL ANALYSIS

机译:薄膜阻尼器的估计流体力和阻尼特性闭式解与数值分析的比较

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Analytical solutions of thin film dampers are useful for determining critical speeds and stability of rotor systems. Most thin film dampers in use are of short axial length, and closed-form solutions to the Reynolds equations exist for estimating pressure, forces, and damping for these types of dampers. This article compares the fluid film forces and damping estimated bv the short film bearing model form of the Reynolds equations to the calculated forces and damping of a transient computational fluid dynamic simulation. For this comparison, the fluid was assumed to be incompressible, laminar, and isoviscous. The fluid film forces and damping are calculated from integrating the pressure distribution over the surface of the damper due to small amplitude motions about a steady state static off-center circular orbit. In this case, no cavitation is assumed, and the journal has no angular velocity, so direct stiffness cannot be calculated from the closed-form solution. Radial clearance, journal length, and journal eccentricity have a significant effect on fluid force and damping within a thin film damper. Fluid density does not affect fluid force or damping substantially, while fluid viscosity does. Both the closed-form solutions and computational fluid dynamics simulation compare well with each other and reflect these trends.
机译:薄膜阻尼器的分析溶液可用于确定转子系统的临界速度和稳定性。使用中的大多数薄膜阻尼器具有短的轴向长度,并且存在于雷诺方程的闭合溶液,以估计这些类型的阻尼器的压力,力和阻尼。本文将流体膜力和阻尼估计的BV估计的BV轴承模型形式与雷诺方程的短膜轴承模型形式进行比较到瞬态计算流体动态模拟的计算力和阻尼。对于这种比较,假设流体是不可压缩的,层状和脱脂。由于围绕稳态静态偏离中心圆形轨道的小幅度动作,计算流体膜力和阻尼的压力分布从集成阻尼器的表面上。在这种情况下,不假设空化,并且轴颈没有角速度,因此不能从闭合溶液计算直接刚度。径向间隙,轴颈长度和轴颈偏心对薄膜阻尼器内的流体力和阻尼具有显着影响。流体密度不会影响流体力或基本上阻尼,而流体粘度确实如此。封闭式解决方案和计算流体动力学模拟均相互比较,反映了这些趋势。

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