首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Forced Response Prediction Of Constrained And Unconstrained Structures Coupled Through Frictional Contacts
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Forced Response Prediction Of Constrained And Unconstrained Structures Coupled Through Frictional Contacts

机译:摩擦接触耦合的受约束和无约束结构的强迫响应预测

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In this paper, a forced response prediction method for the analysis of constrained and unconstrained structures coupled through frictional contacts is presented. This type of frictional contact problem arises in vibration damping of turbine blades, in which dampers and blades constitute the unconstrained and constrained structures, respectively. The model of the unconstrained/free structure includes six rigid body modes and several elastic modes, the number of which depends on the excitation frequency. In other words, the motion of the free structure is not artificially constrained. When modeling the contact surfaces between the constrained and free structure, discrete contact points along with contact stiffnesses are distributed on the friction interfaces. At each contact point, contact stiffness is determined and employed in order to take into account the effects of higher frequency modes that are omitted in the dynamic analysis. Depending on the normal force acting on the contact interfaces, quasistatic contact analysis is initially employed to determine the contact area as well as the initial preload or gap at each contact point due to the normal load. A friction model is employed to determine the three-dimensional nonlinear contact forces, and the relationship between the contact forces and the relative motion is utilized by the harmonic balance method. As the relative motion is expressed as a modal superposition, the unknown variables, and thus the resulting nonlinear algebraic equations in the harmonic balance method, are in proportion to the number of modes employed. Therefore the number of contact points used is irrelevant. The developed method is applied to a bladed-disk system with wedge dampers where the dampers constitute the unconstrained structure, and the effects of normal load on the rigid body motion of the damper are investigated. It is shown that the effect of rotational motion is significant, particularly for the in-phase vibration modes. Moreover, the effect of partial slip in the forced response analysis and the effect of the number of harmonics employed by the harmonic balance method are examined. Finally, the prediction for a test case is compared with the test data to verify the developed method.
机译:本文提出了一种用于分析通过摩擦接触耦合的受约束和无约束结构的强制响应预测方法。这种类型的摩擦接触问题出现在涡轮机叶片的振动阻尼中,其中,阻尼器和叶片分别构成无约束和受约束的结构。无约束/自由结构的模型包括六个刚体模式和几个弹性模式,其数量取决于激励频率。换句话说,自由结构的运动不是人为约束的。在对约束结构和自由结构之间的接触面进行建模时,离散的接触点以及接触刚度会分布在摩擦界面上。在每个接触点,确定并采用接触刚度,以便考虑动态分析中忽略的高频模式的影响。根据作用在接触界面上的法向力,首先采用准静态接触分析来确定接触面积以及由于法向载荷而在每个接触点处的初始预载荷或间隙。采用摩擦模型确定三维非线性接触力,利用谐波平衡法利用接触力与相对运动之间的关系。由于相对运动表示为模态叠加,因此未知变量以及谐波平衡法中所得的非线性代数方程与采用的模数成正比。因此,所使用的触点数量无关紧要。将该方法应用于带楔形减振器的叶片盘系统,其中减振器构成无约束结构,并研究了法向载荷对减振器刚体运动的影响。结果表明,旋转运动的影响是显着的,特别是对于同相振动模式。此外,还研究了部分滑移在强制响应分析中的影响以及谐波平衡方法所采用的谐波数的影响。最后,将测试用例的预测与测试数据进行比较,以验证所开发的方法。

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