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Stochastic Homogenization of Parabolic Equations with Lower-order Terms

Published 22 Aug 2024 in math.AP and math.PR | (2408.12204v1)

Abstract: The study of homogenization results has long been a central focus in the field of mathematical analysis, particularly for equations without lower-order terms. However, the importance of studying homogenization results for parabolic equations with lower-order terms cannot be understated. In this study, we aim to extend the analysis to homogenization for the general parabolic equation with random coefficients: \begin{equation*} \partial_{t}p\epsilon-\nabla\cdot\left(\mathbf{a}\left( \dfrac{x}{\epsilon},\dfrac{t}{\epsilon2}\right)\nabla p\epsilon\right)-\mathbf{b}\left( \dfrac{x}{\epsilon},\dfrac{t}{\epsilon2}\right)\nabla p\epsilon -\mathbf{d}\left( \dfrac{x}{\epsilon},\dfrac{t}{\epsilon2}\right) p\epsilon=0. \end{equation*} Moreover, we establish the Caccioppoli inequality and Meyers estimate for the generalized parabolic equation. By using the generalized Meyers estimate, we get the weak convergence of $p\epsilon$ in $H1$.

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