Algorithm Improvement of Transfer Matrix Method for Vibration Propagation of Periodic Pipeline Structure

Qingna Zeng, Donghui Wang, F. Zang, Yixion Zhang
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Abstract

This paper proposes an improved transfer matrix method (TMM) algorithm to calculate frequency response function (FRF) for finite periods of periodic composite pipelines structures. Traditional TMM usually generate instable matrix and inaccurate calculation results for Phononic crystals (PCs) pipeline. Under the assumption that periodic distribution of pipeline structure with no intermediate excitation, the main idea of the improved algorithm is to reasonably divide finite periodic pipeline into several effective segments, then the transfer relationship of state vector for each connected pipe part could be expressed individually, thereby realizing the calculation order reduction by expanding the dimension of overall stiffness matrix. This improved algorithm could effectively avoid cumulative error caused by diagonal sparse matrix operations, thus getting true dynamic response to calculate exact FRF curves. Moreover, this algorithm could fundamentally improve the accuracy and stability of traditional TMM calculations. The transverse FRF for finite periods calculated by improved TMM shows excellent consistency with corresponding band gap structures (BGs), validate the correctness of derived theory and algorithm. This improved TMM algorithm supplies an effective method for FRF calculation of finite pipeline periods, and also provide effective verification of BGs for infinite structures, which could guide the vibration and noise reduction design of pipeline system.
周期管道结构振动传播传递矩阵法的算法改进
提出了一种改进的传递矩阵法(TMM)算法,用于计算周期复合材料管道结构有限周期的频响函数。传统的TMM计算声子晶体管道时,通常会产生不稳定的矩阵和不准确的计算结果。在假设管道结构具有周期性分布且无中间激励的情况下,改进算法的主要思想是将有限周期管道合理划分为若干有效段,然后将每个连接管道部件的状态向量传递关系单独表示出来,从而通过扩大整体刚度矩阵的维数来实现计算降阶。该改进算法可以有效避免对角稀疏矩阵运算带来的累积误差,从而获得真实的动态响应,从而计算出精确的频响曲线。该算法可以从根本上提高传统TMM计算的精度和稳定性。改进TMM计算的有限周期横向频响与相应的带隙结构(BGs)具有良好的一致性,验证了推导的理论和算法的正确性。改进的TMM算法为有限周期管道频响计算提供了一种有效的方法,也为无限结构提供了有效的bp验证,可以指导管道系统的减振降噪设计。
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