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Asymptotic limit and decay estimates for a class of dissipative linear hyperbolic systems in several dimensions (1707.09961v1)

Published 31 Jul 2017 in math.AP

Abstract: In this paper, we study the large-time behavior of solutions to a class of partially dissipative linear hyperbolic systems with applications in velocity-jump processes in several dimensions. Given integers $n,d\ge 1$, let $\mathbf A:=(A1,\dots,Ad)\in (\mathbb R{n\times n})d$ be a matrix-vector, where $Aj\in\mathbb R{n\times n}$, and let $B\in \mathbb R{n\times n}$ be not required to be symmetric but have one single eigenvalue zero, we consider the Cauchy problem for linear $n\times n$ systems having the form \begin{equation*} \partial_{t}u+\mathbf A\cdot \nabla_{\mathbf x} u+Bu=0,\qquad (\mathbf x,t)\in \mathbb Rd\times \mathbb R_+. \end{equation*} Under appropriate assumptions, we show that the solution $u$ is decomposed into $u=u{(1)}+u{(2)}$, where $u{(1)}$ has the asymptotic profile which is the solution, denoted by $U$, of a parabolic equation and $u{(1)}-U$ decays at the rate $t{-\frac d2(\frac 1q-\frac 1p)-\frac 12}$ as $t\to +\infty$ in any $Lp$-norm, and $u{(2)}$ decays exponentially in $L2$-norm, provided $u(\cdot,0)\in Lq(\mathbb Rd)\cap L2(\mathbb Rd)$ for $1\le q\le p\le \infty$. Moreover, $u{(1)}-U$ decays at the optimal rate $t{-\frac d2(\frac 1q-\frac 1p)-1}$ as $t\to +\infty$ if the system satisfies a symmetry property. The main proofs are based on asymptotic expansions of the solution $u$ in the frequency space and the Fourier analysis.

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