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    Loss Mechanisms in Shear Force Pump With Multiple Corotating Disks

    Source: Journal of Fluids Engineering:;2014:;volume( 136 ):;issue: 008::page 81101
    Author:
    Wang, Baotong
    ,
    Okamoto, Koji
    ,
    Yamaguchi, Kazuo
    ,
    Teramoto, Susumu
    DOI: 10.1115/1.4026585
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: In a shearforce pump with multiple corotating disks, the pressure gain is obtained by utilizing the shear force produced on the surfaces of the rotating disks. Thus, it is expected to have advantages as a microfluid device compared to a conventional bladed compressor or pump, which suffers greatly from viscous loss. However, in previous studies, a shearforce pump could not achieve high efficiency in experiments, even though very good efficiencies were predicted in numerical and analytical studies on the flow field between corotating disks. Therefore, the objective of the present work was to investigate the internal flow dynamics and clarify the loss mechanisms in a complete shearforce pump device consisting of both rotor and stationary components. In order to achieve this goal, a numerical simulation using an independent rotor analysis was first performed on the internal flow field between two corotating disks to evaluate the isentropic efficiency and pressure coefficient that could be achieved. Then, an experimental test rig for a shearforce pump was designed and built, and an experiment was carried out to determine the performance of a complete pump device with the same corotating disk design as the independent rotor analysis. In addition, a numerical simulation was executed for the flow field of a pump system consisting of both rotor and stationary components based on the present test rig to investigate the flow field and loss factors of this device. The results of this independent rotor analysis showed that the corotating disks can achieve a fairly high efficiency at a low flow coefficient with a high dynamic pressure, and the flow direction is extremely close to the tangential direction at the disk outlet, which caused difficulties in the design of the diffuser and scroll. In the experimental test, the high total pressure loss in the parallel diffuser and scroll parts was observed. This was found to be the result of the significant friction loss caused by the long flow path due to strong recirculation in the diffuser and scroll volute, which was found in the simulation results for the internal flow in the whole pump system. In addition, a reverse flow appeared in the rotor part at a low flow coefficient, which significantly deteriorated the rotor performance. These conclusions provided some clues for improving the performance of a shearforce pump device in future work.
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      Loss Mechanisms in Shear Force Pump With Multiple Corotating Disks

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    http://yetl.yabesh.ir/yetl1/handle/yetl/155024
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    contributor authorWang, Baotong
    contributor authorOkamoto, Koji
    contributor authorYamaguchi, Kazuo
    contributor authorTeramoto, Susumu
    date accessioned2017-05-09T01:08:39Z
    date available2017-05-09T01:08:39Z
    date issued2014
    identifier issn0098-2202
    identifier otherfe_136_08_081101.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/155024
    description abstractIn a shearforce pump with multiple corotating disks, the pressure gain is obtained by utilizing the shear force produced on the surfaces of the rotating disks. Thus, it is expected to have advantages as a microfluid device compared to a conventional bladed compressor or pump, which suffers greatly from viscous loss. However, in previous studies, a shearforce pump could not achieve high efficiency in experiments, even though very good efficiencies were predicted in numerical and analytical studies on the flow field between corotating disks. Therefore, the objective of the present work was to investigate the internal flow dynamics and clarify the loss mechanisms in a complete shearforce pump device consisting of both rotor and stationary components. In order to achieve this goal, a numerical simulation using an independent rotor analysis was first performed on the internal flow field between two corotating disks to evaluate the isentropic efficiency and pressure coefficient that could be achieved. Then, an experimental test rig for a shearforce pump was designed and built, and an experiment was carried out to determine the performance of a complete pump device with the same corotating disk design as the independent rotor analysis. In addition, a numerical simulation was executed for the flow field of a pump system consisting of both rotor and stationary components based on the present test rig to investigate the flow field and loss factors of this device. The results of this independent rotor analysis showed that the corotating disks can achieve a fairly high efficiency at a low flow coefficient with a high dynamic pressure, and the flow direction is extremely close to the tangential direction at the disk outlet, which caused difficulties in the design of the diffuser and scroll. In the experimental test, the high total pressure loss in the parallel diffuser and scroll parts was observed. This was found to be the result of the significant friction loss caused by the long flow path due to strong recirculation in the diffuser and scroll volute, which was found in the simulation results for the internal flow in the whole pump system. In addition, a reverse flow appeared in the rotor part at a low flow coefficient, which significantly deteriorated the rotor performance. These conclusions provided some clues for improving the performance of a shearforce pump device in future work.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleLoss Mechanisms in Shear Force Pump With Multiple Corotating Disks
    typeJournal Paper
    journal volume136
    journal issue8
    journal titleJournal of Fluids Engineering
    identifier doi10.1115/1.4026585
    journal fristpage81101
    journal lastpage81101
    identifier eissn1528-901X
    treeJournal of Fluids Engineering:;2014:;volume( 136 ):;issue: 008
    contenttypeFulltext
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