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Main Authors: Biesenbach, Sarah, Schubert, Richard, Westdickenberg, Maria G.
Format: Preprint
Published: 2021
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Online Access:https://arxiv.org/abs/2104.14004
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_version_ 1866910714445168640
author Biesenbach, Sarah
Schubert, Richard
Westdickenberg, Maria G.
author_facet Biesenbach, Sarah
Schubert, Richard
Westdickenberg, Maria G.
contents REVISED VERSION INCORPORATING THE ERRATUM ON LEMMA 2.1 AND WITH A CORRECTION TO LEMMA 2.8 In this paper we derive optimal relaxation rates for the Cahn-Hilliard equation on the one-dimensional torus and the line. We consider initial conditions with a finite (but not small) $L^1$-distance to an appropriately defined bump. The result extends the relaxation method developed previously for a single transition layer (the ``kink'') to the case of two transition layers (the ``bump''). As in the previous work, the tools include Nash-type inequalities, duality arguments, and Schauder estimates. For both the kink and the bump, the energy gap is translation invariant and its decay alone cannot specify to which member of the family of minimizers the solution converges. Whereas in the case of the kink, the conserved quantity singles out the longtime limit, in the case of a bump, a new argument is needed. On the torus, we quantify the (initially algebraic and ultimately exponential) convergence to the bump that is the longtime limit; on the line, the bump-like states are merely metastable and we quantify the initial algebraic relaxation behavior.
format Preprint
id arxiv_https___arxiv_org_abs_2104_14004
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Optimal relaxation of bump-like solutions of the one-dimensional Cahn-Hilliard equation
Biesenbach, Sarah
Schubert, Richard
Westdickenberg, Maria G.
Analysis of PDEs
Mathematical Physics
35K55, 49N99
REVISED VERSION INCORPORATING THE ERRATUM ON LEMMA 2.1 AND WITH A CORRECTION TO LEMMA 2.8 In this paper we derive optimal relaxation rates for the Cahn-Hilliard equation on the one-dimensional torus and the line. We consider initial conditions with a finite (but not small) $L^1$-distance to an appropriately defined bump. The result extends the relaxation method developed previously for a single transition layer (the ``kink'') to the case of two transition layers (the ``bump''). As in the previous work, the tools include Nash-type inequalities, duality arguments, and Schauder estimates. For both the kink and the bump, the energy gap is translation invariant and its decay alone cannot specify to which member of the family of minimizers the solution converges. Whereas in the case of the kink, the conserved quantity singles out the longtime limit, in the case of a bump, a new argument is needed. On the torus, we quantify the (initially algebraic and ultimately exponential) convergence to the bump that is the longtime limit; on the line, the bump-like states are merely metastable and we quantify the initial algebraic relaxation behavior.
title Optimal relaxation of bump-like solutions of the one-dimensional Cahn-Hilliard equation
topic Analysis of PDEs
Mathematical Physics
35K55, 49N99
url https://arxiv.org/abs/2104.14004