Wave analysis in the complex Fourier transform domain: A new method to obtain the Green's functions of dispersive linear partial differential equations

数学分析 数学 偏微分方程 傅里叶变换 分步法 边值问题 反射(计算机编程)
作者
Minjiang Zhu
出处
期刊:Journal of Sound and Vibration [Elsevier]
卷期号:: 117175-117175
标识
DOI:10.1016/j.jsv.2022.117175
摘要

1 Derived the complex infinite domain Green's function of Euler Bernoulli beam 2 Developed a new analytical method: Reflection and Transmission Analysis in the Complex Fourier transform domain 3 The new method is suitable for many systems, including beam equation and dissipation equation 4 Perfectly linked infinite domain, semi-infinite domain, and finite domain Green's functions 5 The new solutions converge better at short times, which compensates for the truncation errors of traditional solutions This paper provides a new analytical method to obtain Green's functions of linear dispersive partial differential equations. The Euler-Bernoulli beam equation and the one-dimensional heat conduction equation (dissipation equation) under impulses in space and time are solved as examples. The complex infinite-domain Green's function of the Euler-Bernoulli beam is derived. A new approach is proposed to obtain the finite-domain Green's function from the infinite-domain Green's function by the reflection and transmission analysis in the Complex Fourier transform domain. It is found that the solution obtained by this approach converges much better at short response times compared with the traditional modal analysis. Besides, by applying the geometric summation formula for matrix series, a new modal expansion solution requiring no calculation of each mode's inner product is derived, which analytically proves the wave-mode duality and simplifies the calculation. The semi-infinite-domain cases and the coupled-domain cases are also derived by the newly developed method to show its validity and simplicity. It is found that the ‘non-propagating waves’ also possess wave speed, and heat conduction can also be treated as propagating waves.
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