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Granular Dynamics in a Vertical Bladed Mixer: Secondary Flow Patterns.

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    SYSNO ASEP0497842
    Document TypeJ - Journal Article
    R&D Document TypeJournal Article
    Subsidiary JČlánek ve WOS
    TitleGranular Dynamics in a Vertical Bladed Mixer: Secondary Flow Patterns.
    Author(s) Havlica, Jaromír (UCHP-M) RID, ORCID, SAI
    Jirounková, K. (CZ)
    Trávníčková, Tereza (UCHP-M) RID, ORCID, SAI
    Stanovský, Petr (UCHP-M) RID, ORCID, SAI
    Petrus, P. (CZ)
    Kohout, M. (CZ)
    Source TitlePowder Technology. - : Elsevier - ISSN 0032-5910
    Roč. 344, FEB 15 (2019), s. 79-88
    Number of pages10 s.
    Languageeng - English
    CountryNL - Netherlands
    Keywordsgranular mixing ; granular flow ; granular dynamics
    Subject RIVCI - Industrial Chemistry, Chemical Engineering
    OECD categoryChemical process engineering
    R&D ProjectsGAP105/12/0664 GA ČR - Czech Science Foundation (CSF)
    GA15-05534S GA ČR - Czech Science Foundation (CSF)
    Method of publishingLimited access
    Institutional supportUCHP-M - RVO:67985858
    UT WOS000461262200009
    EID SCOPUS85057626636
    DOI10.1016/j.powtec.2018.11.094
    AnnotationThis article deals with numerical simulations and experimental measurements of the granular mixing process in a vertical cylindrical mixer with two opposed flat blades with a 45° rake angle. The computer simulations were conducted via discrete element method. The experimental measurements were recorded by a color high-speed camera. Both approaches describe the mixing process in the same way with significant agreement in observations. Even though the geometry and operating conditions are simple, the dynamics of the system is often very complex and a variety of flow structures can be created. For that reason, the behavior of individual flows patterns was analyzed and discussed. The effect of the centrifugal force on deformation of the free level of the granular material and the formation of empty spaces behind the stirrer blades was described. In addition, the behavior of individual particles in specific regions was characterized. At low rotational speed of the blades, particles tend to move close to the bottom of the vessel behind the stirrer blade towards the shaft. At high values, particles are moving in the exact opposite direction. Described movements near the base of the vessel create secondary flow in the form of recirculation zones. Presence of the secondary flow during the mixing process was also confirmed by the experimental measurements. Based on the acquired knowledge, two competing mechanisms of secondary flow formation were presented: (i) the different contact time of the particles with the blade, (ii) the different magnitude of inertial forces acting on the particles around the stirrer blade.
    WorkplaceInstitute of Chemical Process Fundamentals
    ContactEva Jirsová, jirsova@icpf.cas.cz, Tel.: 220 390 227
    Year of Publishing2020
    Electronic addresshttp://hdl.handle.net/11104/0294052
Number of the records: 1  

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