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Response of a shell structure subject to distributed harmonic excitation

机译:壳结构对分布式谐波激励的响应

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Previously, a coupled, two-dimensional structural-acoustic ring model was constructed to simulate the dynamic and acoustical behavior of pneumatic tires. Analytical forced solutions were obtained and were experimentally verified through laser velocimeter measurement made using automobile tires. However, the two-dimensional ring model is incapable of representing higher order, in-plane modal motion in either the circumferential or axial directions. Therefore, in this paper, a three-dimensional pressurized circular shell model is proposed to study the in-plane shearing motion and the effect of different forcing conditions. Closed form analytical solutions were obtained for both free and forced vibrations of the shell under simply supported boundary conditions. Dispersion relations were calculated and different wave types were identified by their different speeds. Shell surface mobility results under various input distributions were also studied and compared. Spatial Fourier series decompositions were also performed on the spatial mobility results to give the forced dispersion relations, which illustrate clearly the influence of input force spatial distribution. Such a model has practical application in identifying the sources of noise and vibration problems in automotive tires.
机译:以前,构造了一个耦合的二维结构 - 声学环模型以模拟充气轮胎的动态和声学行为。获得分析强制解决方案,并通过使用汽车轮胎制造的激光Vemimeter测量实验验证。然而,二维环模型不能代表圆周或轴向的平面内平面的平面模态运动。因此,在本文中,提出了一种三维加压圆形壳模型,用于研究面内剪切运动和不同迫使条件的效果。在简单地支持的边界条件下,为壳体的自由和强制振动获得封闭的形式分析溶液。计算分散关系,并通过其不同的速度识别不同的波形类型。还研究了各种输入分布下的壳表面迁移率结果。还对空间迁移率结果进行了空间傅里叶串联分解,以提供强制分散关系,这显然地说明了输入力空间分布的影响。这种模型具有实际应用在识别汽车轮胎中的噪声和振动问题的源。

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