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dc.creatorBrzić, Danica
dc.creatorPešić, Radojica
dc.creatorArsenijević, Zorana
dc.creatorĐuriš, Mihal
dc.creatorBošković-Vragolović, Nevenka
dc.creatorKaluđerović-Radoičić, Tatjana
dc.date.accessioned2022-09-05T23:01:21Z
dc.date.available2022-09-05T23:01:21Z
dc.date.issued2023
dc.identifier.issn0272-6351
dc.identifier.urihttps://cer.ihtm.bg.ac.rs/handle/123456789/5247
dc.description.abstractThe present work concerns an experimental study on heat transfer in gas-solid fluidized bed of coarse (Geldart D) particles to a larger immersed sphere at high superficial velocities from 2 to 5.5 Umf. The heat transfer coefficient was determined by measuring the temperature of the test sphere during its heating in a fluidized bed in the temperature range of 65–175 °C. The test spheres of different sizes and different materials were utilized. For the given gas-particles system the flow regime changes from rapidly growing bubbles to turbulent fluidization at superficial velocity Uc ≈ 3Umf. It has been found that in rapidly growing bubbles regime, the heat transfer coefficient is higher for smaller test spheres while it is almost independent of the superficial gas velocity. In turbulent regime, the heat transfer coefficient increases with increase of gas velocity while the size of the test sphere exhibits less influence. In the rapidly growing bubbles regime, experimental data for heat transfer coefficient can be predicted adequately with correlation of Scott et al.. For the turbulent flow regime a new correlation for prediction of the heat transfer coefficient has been proposed.sr
dc.language.isoensr
dc.publisherTaylor & Francissr
dc.relationinfo:eu-repo/grantAgreement/MESTD/Basic Research (BR or ON)/172022/RS//sr
dc.relationinfo:eu-repo/grantAgreement/MESTD/inst-2020/200026/RS//sr
dc.rightsrestrictedAccesssr
dc.sourceParticulate Science and Technologysr
dc.subjectheat transfersr
dc.subjectturbulent flow regimesr
dc.subjectGeldart D particlessr
dc.titleHeat transfer to a sphere immersed in a fluidized bed of coarse particles with transition from bubbling to turbulent flow regimesr
dc.typearticlesr
dc.rights.licenseARRsr
dc.citation.volume41
dc.citation.issue1
dc.citation.spage75
dc.citation.epage83
dc.citation.rankM22~
dc.identifier.doi10.1080/02726351.2022.2053015
dc.identifier.scopus2-s2.0-85127111936
dc.identifier.wos000772781800001
dc.type.versionpublishedVersionsr


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