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Mixing mass transfer mechanism and dynamic control of gas-liquid-solid multiphase flow based on VOF-DEM coupling

Author

Listed:
  • Li, Lin
  • Gu, Zeheng
  • Xu, Weixin
  • Tan, Yunfeng
  • Fan, Xinghua
  • Tan, Dapeng

Abstract

Mixing mass transfer process of the gas-liquid-solid multiphase flow is a crucial manufacturing technology in some industrial applications, such as the material mixing of the high-end chemical industry and the lithium electric homogenate dispersion of the new energy. The complicated multiphase mass transfer mechanism is a fluid-structure coupling mechanic problem with intensive shear and nonlinear characteristics, making the flow field face challenges in regulating. Here, a fluid-structure coupling-based mechanic model is set up based on the coupled volume-of-fluid and discrete element model (VOF-DEM) to explore the multiphase mixing mass transfer mechanism. A porous interphase optimization and dynamic mesh technique are proposed to reveal flow pattern regularities under the inflating disturbance. Then, an experimental observation platform is built, and the fractal geometric analysis method is utilized to reveal the chaotic evolution property. Research results illustrate that the presented modelling method can well obtain the multiphase mixing mass transfer regularities. The appropriate inflation rate can improve particle suspension effects, and promote interphase mixing mass transfer, and achieve the dynamic control of the multiphase flow filed. The results can provide a valuable reference for mass transfer and flow pattern identification and support technical support for lithium electric homogenate mixing and chemical extraction.

Suggested Citation

  • Li, Lin & Gu, Zeheng & Xu, Weixin & Tan, Yunfeng & Fan, Xinghua & Tan, Dapeng, 2023. "Mixing mass transfer mechanism and dynamic control of gas-liquid-solid multiphase flow based on VOF-DEM coupling," Energy, Elsevier, vol. 272(C).
  • Handle: RePEc:eee:energy:v:272:y:2023:i:c:s0360544223004097
    DOI: 10.1016/j.energy.2023.127015
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    References listed on IDEAS

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    1. Yang, Fan & Li, Zhongbin & Yuan, Yao & Lin, Zhikang & Zhou, Guangxin & Ji, Qingwei, 2022. "Study on vortex flow and pressure fluctuation in dustpan-shaped conduit of a low head axial-flow pump as turbine," Renewable Energy, Elsevier, vol. 196(C), pages 856-869.
    2. Auguste, Christelle & Nader, Jean-Roch & Marsh, Philip & Penesis, Irene & Cossu, Remo, 2022. "Modelling the influence of Tidal Energy Converters on sediment dynamics in Banks Strait, Tasmania," Renewable Energy, Elsevier, vol. 188(C), pages 1105-1119.
    3. Li, Lin & Tan, Dapeng & Wang, Tong & Yin, Zichao & Fan, Xinghua & Wang, Ronghui, 2021. "Multiphase coupling mechanism of free surface vortex and the vibration-based sensing method," Energy, Elsevier, vol. 216(C).
    4. Zhang, Baoshou & Li, Boyang & Fu, Song & Mao, Zhaoyong & Ding, Wenjun, 2022. "Vortex-Induced Vibration (VIV) hydrokinetic energy harvesting based on nonlinear damping," Renewable Energy, Elsevier, vol. 195(C), pages 1050-1063.
    5. Soto-Rivas, Karina & Richter, David & Escauriaza, Cristian, 2022. "Flow effects of finite-sized tidal turbine arrays in the Chacao Channel, Southern Chile," Renewable Energy, Elsevier, vol. 195(C), pages 637-647.
    6. Zhou, Zhiyong & Qin, Weiyang & Zhu, Pei & Du, Wenfeng, 2021. "Harvesting more energy from variable-speed wind by a multi-stable configuration with vortex-induced vibration and galloping," Energy, Elsevier, vol. 237(C).
    7. Du, Xiaozhen & Zhang, Mi & Chang, Heng & Wang, Yu & Yu, Hong, 2022. "Micro windmill piezoelectric energy harvester based on vortex-induced vibration in tunnel," Energy, Elsevier, vol. 238(PA).
    8. Fan, Xiantao & Guo, Kai & Wang, Yang, 2022. "Toward a high performance and strong resilience wind energy harvester assembly utilizing flow-induced vibration: Role of hysteresis," Energy, Elsevier, vol. 251(C).
    9. Li, Lin & Tan, Dapeng & Yin, Zichao & Wang, Tong & Fan, Xinghua & Wang, Ronghui, 2021. "Investigation on the multiphase vortex and its fluid-solid vibration characters for sustainability production," Renewable Energy, Elsevier, vol. 175(C), pages 887-909.
    10. Zheng, Mingrui & Han, Dong & Peng, Tao & Wang, Jincheng & Gao, Sijie & He, Weifeng & Li, Shirui & Zhou, Tianhao, 2022. "Numerical investigation on flow induced vibration performance of flow-around structures with different angles of attack," Energy, Elsevier, vol. 244(PA).
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