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Optimum piezoelectric patch positioning: A strain energy-based finite element approach

机译:最佳压电贴片定位:基于应变能的有限元方法

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摘要

For the design of smart composite structures, the placement of piezoelectric patch transducers is a very important issue. For sensing and passive vibration damping applications, the electric charge and the generalized electromechanical coupling coefficient are important parameters. This article presents an approximative but efficient method for the calculation of the generalized coupling coefficient using finite element simulation results. A smart composite turbomachine blade serves as a test structure for the new method. The influence of different laminate integration layers, positions, rotation angles, patch size variations and performance benefits of increased allowable strain is tested with the new procedure. The efficient nature of the method allows for parametric placement studies or even exhaustive search to find the global positioning optimum for the structure under investigation. The proposed method is compared to state-of-the-art procedures for the calculation of the generalized electromechanical coupling factor. The 1:5 scale models of full carbon fabric/epoxy blades were manufactured with structurally integrated piezo modules. Two different piezo placement positions inside the blade were investigated experimentally. The coupling coefficient was determined and compared to the calculated values.
机译:对于智能复合结构的设计,压电贴片换能器的放置是一个非常重要的问题。对于传感和被动减振应用,电荷和广义的机电耦合系数是重要的参数。本文提出了一种使用有限元模拟结果来计算广义耦合系数的近似但有效的方法。智能复合材料涡轮机叶片用作新方法的测试结构。使用新程序测试了不同层压板集成层,位置,旋转角度,贴片尺寸变化以及允许的应变增加带来的性能优势的影响。该方法的有效性质允许进行参数放置研究,甚至进行详尽的搜索,以找到针对所研究结构的最佳全局定位。将所提出的方法与最新程序进行比较,以计算广义的机电耦合因子。全碳纤维织物/环氧树脂叶片的1:5比例模型是使用结构集成的压电模块制造的。实验研究了叶片内部两个不同的压电放置位置。确定耦合系数,并将其与计算值进行比较。

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