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Investigation on sound transmission through thick-wall cylindrical shells using 3D- theory of elasticity in the presence of external and mean air-gap flow

机译:在外部和平均气隙流动存在下使用厚壁圆柱形壳体通过厚壁圆柱形壳体进行调查

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This paper studies the effects of an external mean flow and an internal air-gap mean flow on sound transmission through a double-wall thick cylindrical shell. Due to the major influence of some effective terms such as membrane, bending, transverse shearing and rotational inertia on thick-walled shell, three-dimensional theory of elasticity is used to obtain the governing equations of motion. Therefore, Newton’s second law is utilized to develop the equilibrium equations for an infinitesimal element in cylindrical coordinates. Then, the equations of motion related to the circular hollow cylinders are solved using Helmholtz potentials for arbitrary values of physical and geometrical parameters. In addition, by coupling of both inner and outer shells, a modal transfer matrix is created. This modal matrix stands for the global dynamic equilibrium of the double-wall cylinder. Moreover, the sound transmission Loss of the double-wall cylinder excited by an acoustic oblique plane wave with two angles of incident (i.e. elevation and azimuth angles) is predicted. Due to lack of studies in the field of sound transmission through the thick-walled shell, the results obtained in this study are compared with those from other researchers for a thin cylindrical shell. These results indicate an excellent agreement in comparison with each other. Furthermore, the results reveal that with thickening of the shell, critical and coincidence frequencies are getting closer to ring frequency. Moreover, the effects of external and air-gap flows on TL behave in similar way whereas the Mach number is positive. In addition, an improvement of transmission loss can be found whereas the Mach number is negative; particularly this enhancement is more specified for the external flow. Finally, the results indicate that where both external and air-gap fluids simultaneously flow in opposite directions ( M o > 0 , M g 0 ) the TL is significantly enhanced. However, for the case where these two fluids flow
机译:本文研究了外部平均流量和内部气隙平均流动通过双壁厚圆柱壳对声音传递的影响。由于诸如膜,弯曲,横向剪切和旋转惯性等一些有效术语的主要影响,厚壁壳体上的旋转惯性,使用三维弹性理论来获得动作的控制方程。因此,利用牛顿的第二律用于开发圆柱形坐标中的无限元素的平衡方程。然后,使用Helmholtz电位来解决与圆形空心圆柱体相关的运动方程,用于物理和几何参数的任意值。另外,通过耦合内壳和外壳,产生模态传递矩阵。这种模态矩阵代表双壁圆筒的全局动态平衡。此外,预测了具有两个入射角(即升高和方位角)的声学倾斜平面波激发的双壁圆筒的声音传输损失。由于通过厚壁壳体的声音传输领域缺乏研究,将本研究中获得的结果与来自薄圆柱壳的其他研究人员的结果进行比较。这些结果表明与彼此相比的良好协议。此外,结果表明,随着壳体的增厚,临界和符合频率越来越接近环频率。此外,外部和空气间隙流对TL的影响表现得类似的方式,而马赫数是正的。此外,可以发现传输损耗的改善,而马赫数是负的;特别是对外部流程的更具增强功能。最后,结果表明外部和气隙流体同时沿相反方向流动(M O> 0,M G 0),TL显着增强。但是,对于这两个流体流动的情况

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