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dc.contributor.advisorStephenson, Uwe Martin-
dc.contributor.authorPohl, Alexander-
dc.date.accessioned2020-09-23T21:23:56Z-
dc.date.available2020-09-23T21:23:56Z-
dc.date.created2014-04-22-
dc.date.issued2014-
dc.identifier.urihttps://repos.hcu-hamburg.de/handle/hcu/401-
dc.description.abstractIn both room and city acoustics, the simulation of sound propagation is still challenging. The handling of diffraction is still topic of current research, especially the diffraction of higher orders. Due to the large scale of the environment compared to the typical wavelengths of sound, Geometrical Acoustic (GA) simulation methods are used rather than exact wave theoretical simulation methods. These GA methods handle sound as particles instead of waves (waveparticle dualism as known from optics). Based on this restriction, wave effects such as diffraction have to be modelled explicitly. In this work, a diffraction formulation called Uncertainty relation Based Diffraction (UBD) by Stephenson is investigated and extended. The UBD is based on Heisenbergs uncertainty relation and the Fraunhofer diffraction theory. The great advantage of this formulation is that the straight forward propagation technique of particles can be used and integrated as a module in the simulation. However, it will be shown that some assumptions of former publications are not well founded, such that alternative formulations are presented. Good agreements with the wave theoretical reference methods are shown in almost all cases. In addition to former publications, the UBD method is extended to 3D. Unfortunately, the usage of the UBD diffraction module causes a split-up of particles, such that the computation time increases exponentially. To overcome this split-up, the reunification of particles is aspired. Quantized Pyramidal Beam Tracing (QPBT) and the Sound Particle Radiosity (SPR) aim at this reunification. It will be shown that SPR is both more efficient and more accurate than QPBT. However, the memory effort of the SPR yields a major bottleneck. First optimizations to decrease the memory effort will be presented to overcome this issue.en
dc.language.isoenen_US
dc.rightsinfo:eu-repo/semantics/openAccess-
dc.subjectAcousticen
dc.subjectDiffractionen
dc.subjectUncertainty Relationen
dc.subjectSound Propagationen
dc.subject.ddc530: Physik-
dc.titleSimulation of Diffraction Based on the Uncertainty Relationen
dc.title.alternativeSimulation von Schallbeugung basierend auf der Unschärferelationde
dc.typeThesisen_US
dcterms.dateAccepted2013-07-05-
dc.type.thesisdoctoralThesisen_US
dc.type.dinidoctoralThesis-
dc.subject.gndAkustiken_US
dc.subject.gndBeugungen_US
dc.subject.gndSchallausbreitungen_US
dc.type.driverdoctoralThesis-
dc.type.casraiDissertation-
dcterms.DCMITypeText-
tuhh.identifier.urnurn:nbn:de:gbv:1373-opus-1167-
tuhh.opus.id116-
tuhh.gvk.ppn783564635-
tuhh.oai.showtrueen_US
tuhh.publication.instituteBauingenieurwesenen_US
tuhh.type.opusDissertation-
tuhh.contributor.refereeSvensson, Ulf Peter-
tuhh.type.rdmfalse-
thesis.grantor.universityOrInstitutionHafenCity Universität Hamburgen_US
thesis.grantor.placeHamburgen_US
thesis.grantor.departmentBauingenieurwesen-
dc.type.statusinfo:eu-repo/semantics/publishedVersion-
item.grantfulltextopen-
item.languageiso639-1en-
item.openairecristypehttp://purl.org/coar/resource_type/c_46ec-
item.fulltextWith Fulltext-
item.cerifentitytypePublications-
item.advisorGNDStephenson, Uwe Martin-
item.creatorOrcidPohl, Alexander-
item.creatorGNDPohl, Alexander-
item.openairetypeThesis-
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