Decay rate estimates for the wave equation with subcritical semilinearities and locally distributed nonlinear dissipation

buir.contributor.authorÖzsarı, Türker
buir.contributor.orcidÖzsarı, Türker|0000-0003-4240-5252
dc.citation.epage76en_US
dc.citation.issueNumber2
dc.citation.spage1
dc.citation.volumeNumber87
dc.contributor.authorCavalcanti, M. M.
dc.contributor.authorDomingos Cavalcanti, V. N.
dc.contributor.authorGonzalez Martinez, V. H.
dc.contributor.authorÖzsarı, Türker
dc.date.accessioned2024-03-13T12:37:01Z
dc.date.available2024-03-13T12:37:01Z
dc.date.issued2023-11-07
dc.departmentDepartment of Mathematics
dc.description.abstractWe study the stabilization and the wellposedness of solutions of the wave equation with subcritical semilinearities and locally distributed nonlinear dissipation. The novelty of this paper is that we deal with the difficulty that the main equation does not have good nonlinear structure amenable to a direct proof of a priori bounds and a desirable observability inequality. It is well known that observability inequalities play a critical role in characterizing the long time behaviour of solutions of evolution equations, which is the main goal of this study. In order to address this, we truncate the nonlinearities, and thereby construct approximate solutions for which it is possible to obtain a priori bounds and prove the essential observability inequality. The treatment of these approximate solutions is still a challenging task and requires the use of Strichartz estimates and some microlocal analysis tools such as microlocal defect measures. We include an appendix on the latter topic here to make the article self contained and supplement details to proofs of some of the theorems which can be already be found in the lecture notes of Burq and Gérard (http://www.math.u-psud.fr/~burq/articles/coursX.pdf, 2001). Once we establish essential observability properties for the approximate solutions, it is not difficult to prove that the solution of the original problem also possesses a similar feature via a delicate passage to limit. In the last part of the paper, we establish various decay rate estimates for different growth conditions on the nonlinear dissipative effect. We in particular generalize the known results on the subject to a considerably larger class of dissipative effects.
dc.description.provenanceMade available in DSpace on 2024-03-13T12:37:01Z (GMT). No. of bitstreams: 1 Decay_rate_estimates_for_the_wave_equation_with_subcritical_semilinearities_and_locally_distributed_nonlinear_dissipation.pdf: 965135 bytes, checksum: 27fa604712350698c5ecc75e57d56481 (MD5) Previous issue date: 2023-11-07en
dc.identifier.doi10.1007/s00245-022-09918-4
dc.identifier.issn00954616
dc.identifier.urihttps://hdl.handle.net/11693/114694
dc.language.isoen
dc.publisherSpringer
dc.relation.isversionofhttps://dx.doi.org/10.1007/s00245-022-09918-4
dc.source.titleApplied Mathematics and Optimization
dc.subjectWave equation
dc.subjectNonlinear damping
dc.subjectDecay rates
dc.subjectMicrolocal analysis
dc.subjectMicrolocal defect measures
dc.titleDecay rate estimates for the wave equation with subcritical semilinearities and locally distributed nonlinear dissipation
dc.typeArticle

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