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  1. B200 工学部/工学研究科
  2. B200b 紀要
  3. Memoirs of the School of Engineering, Nagoya University
  4. 51(1)

BEHAVIOR OF MULTISTAGE MIXER-SETTLER EXTRACTION COLUMN

https://doi.org/10.18999/memsenu.51.1.1
https://doi.org/10.18999/memsenu.51.1.1
df9c7011-9c24-4523-9c46-d4c50367ba56
名前 / ファイル ライセンス アクション
51_1_1.pdf 51_1_1.pdf (895.8 kB)
Item type 紀要論文 / Departmental Bulletin Paper(1)
公開日 2020-10-26
タイトル
タイトル BEHAVIOR OF MULTISTAGE MIXER-SETTLER EXTRACTION COLUMN
言語 en
著者 TAKAHASHI, Katsuroku

× TAKAHASHI, Katsuroku

WEKO 101882

en TAKAHASHI, Katsuroku

Search repository
NII, Susumu

× NII, Susumu

WEKO 101883

en NII, Susumu

Search repository
アクセス権
アクセス権 open access
アクセス権URI http://purl.org/coar/access_right/c_abf2
キーワード
主題Scheme Other
主題 extraction
キーワード
主題Scheme Other
主題 extraction column
キーワード
主題Scheme Other
主題 maximum throughput
キーワード
主題Scheme Other
主題 holdup
キーワード
主題Scheme Other
主題 drop size
キーワード
主題Scheme Other
主題 mass transfer coefficients
抄録
内容記述 A counter-current multistage extraction column having high performance (i.e., highextraction efficiency and large maximum throughput) has been developed. The hydrodynamic behavior and the mass transfercharacteristics of the column were ana-lyzed experimentally. Each stage of the column consists of lower mixer part, upper settler partand a drop coalescer between them. Both of the continuous and the dis-persed phases rise from the mixer into the settler and areseperated into two phases within the settler. The continuous phase goes down to the lower stage mixer through the downspout pipes and the dispersed phase rises to the upper stage mixer through the riser pipes. The maximum throughput in the column is independent of the drop size because the counter-current flow in the dispersion situation is avoided. Then the column can be operated at a strongagitation where the extraction efficiency is high due to large interfacial area with small drops. As the hydrodynamic behavior, the maximum throughput, the holdup of dispersed phase and the drop size were ex-amined. The maximum throughput can be determined from the balance between the pressure drop within the downspout and the sum of the suction pressure induced by the impeller and the buoyant force of dispersed phase. The holdup of the dis-persed phase in the mixer is given by a model of dispersed phase leaving the mixer, including the diffusional flow of dispersed phase. The drop size in the mixer de-pends on the residence time of the dispersed phase as well as the Weber number. The mass transfer characteristics can be expressed by a rigid sphere model of drop because the drop diameter is small at a strong agitation in the mixer. A theoretical model of diffusion within a rigid sphere gives the mass transfer coefficient in the dispersed phase, and the correlation by Ranz-Marshall for the mass transfer around a rigid sphere gives the mass transfer coefficient in the continuous phase. The ex-traction of copper with the five-stage mixer settler extraction column was represented by the calculation with the above hydrodynamic and mass transfer characteristics as well as the extraction reaction rate at the interface.
言語 en
内容記述タイプ Abstract
出版者
言語 en
出版者 School of Engineering, Nagoya University
言語
言語 eng
資源タイプ
資源 http://purl.org/coar/resource_type/c_6501
タイプ departmental bulletin paper
出版タイプ
出版タイプ VoR
出版タイプResource http://purl.org/coar/version/c_970fb48d4fbd8a85
ID登録
ID登録 10.18999/memsenu.51.1.1
ID登録タイプ JaLC
ISSN(print)
収録物識別子タイプ PISSN
収録物識別子 0919-0805
書誌情報 en : Memoirs of the School of Engineering, Nagoya University

巻 51, 号 1, p. 1-51, 発行日 1999-10-31
著者版フラグ
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