Integration of thermo-electrochemical conversion into forced convection cooling

被引:14
|
作者
Ikeda, Yutaka [1 ]
Fukui, Kazuki [1 ]
Murakami, Yoichi [1 ]
机构
[1] Tokyo Inst Technol, Sch Engn, Meguro Ku, 2-12-1 Ookayama, Tokyo 1528552, Japan
关键词
CARBON NANOTUBE ELECTRODES; IONIC LIQUIDS; THERMOELECTROCHEMICAL CELLS; POWER-GENERATION; REDOX COUPLES; HEAT; OPTIMIZATION; PERFORMANCE; BEHAVIOR; COMPLEX;
D O I
10.1039/c9cp05028k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Forced convection cooling is important in numerous technologies ranging from microprocessors in data centers to turbines and engines, and active cooling is essential in these situations. However, active transfer of heat or thermal energy under a large temperature difference promptly destroys the exergy, which is the free-energy component of the thermal energy. In this study, to partially recover presently lost exergy in such situations, thermo-electrochemical conversion is integrated into forced convection cooling. We design and fabricate a test cell in which an electrolyte liquid is forced through a channel formed between two parallel electrodes and the hot-side electrode simulates an object to be cooled. Our experimental investigations show that the narrower interelectrode channels afford higher cooling and power generation performances. The mass transfer resistance is the most dominant type of resistance for all the conditions tested and the charge transfer kinetics is found to be controlled by the electrolyte viscosity. The dependence of the generated power on the flow rate is caused by the change in the diffusion coefficient of redox species with temperature. As an evaluation measure for such forced-flow thermo-electrochemical cells, the gain (Lambda)-defined as the ratio of the generated power to the hydrodynamic pumping work required to force the liquid through the cell-is introduced. Lambda is above unity in a certain flow rate region. This demonstrates that such a system can generate more electric power than the hydrodynamic pump work required to drive the liquid through the cell.
引用
收藏
页码:25838 / 25848
页数:11
相关论文
共 50 条
  • [21] Electric Power Supply of Wireless Sensors by Thermo-Electrochemical Cells
    Artyukhov, Denis
    Burmistrov, Igor
    Artyukhov, Ivan
    2019 16TH CONFERENCE ON ELECTRICAL MACHINES, DRIVES AND POWER SYSTEMS (ELMA), 2019,
  • [22] Thermo-electrochemical study on cathode materials for lithium ion cells
    Song, Liubin
    Xiao, Zhongliang
    Li, Lingjun
    Zhou, Qingqing
    JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2015, 19 (07) : 2167 - 2175
  • [23] A global thermo-electrochemical model for SOFC systems design and engineering
    Petruzzi, L
    Cocchi, S
    Fineschi, F
    JOURNAL OF POWER SOURCES, 2003, 118 (1-2) : 96 - 107
  • [24] An aqueous vanadium complex for the superior electrolyte of a thermo-electrochemical cell
    Yamada, Teppei
    Kobayashi, Takashi
    Wakayama, Yusuke
    Matoba, Fumitoshi
    Yatsuzuka, Koichi
    Kimizuka, Nobuo
    Zhou, Hongyao
    SUSTAINABLE ENERGY & FUELS, 2024, 8 (04) : 684 - 688
  • [25] Seebeck coefficients in ionic liquids -prospects for thermo-electrochemical cells
    Abraham, Theodore J.
    MacFarlane, Douglas R.
    Pringle, Jennifer M.
    CHEMICAL COMMUNICATIONS, 2011, 47 (22) : 6260 - 6262
  • [26] Thermo-electrochemical reduction of sulfate to sulfide using a graphite cathode
    Bilal, BA
    Tributsch, H
    JOURNAL OF APPLIED ELECTROCHEMISTRY, 1998, 28 (10) : 1073 - 1081
  • [27] Thermo-electrochemical instrumentation of cylindrical Li-ion cells
    McTurk, Euan
    Amietszajew, Tazdin
    Fleming, Joe
    Bhagat, Rohit
    JOURNAL OF POWER SOURCES, 2018, 379 : 309 - 316
  • [28] Separation-Free Planar Interconnection for Thermo-electrochemical cells
    Kim, Ju Hyeon
    Han, Yusu
    Shin, Gilyong
    Jeon, Jei Gyeong
    Kim, Hyeong Jun
    So, Byeong Jun
    Yun, Sungryul
    Kang, Tae June
    ACS APPLIED ENERGY MATERIALS, 2022, 5 (10): : 13053 - 13061
  • [29] Thermo-electrochemical coupled modeling of solid-state supercapacitors
    Hedayati, Davood Peyrow
    Singh, Gita
    Schelkow, Rafael
    Kucher, Michael
    Malik, Sharali
    Keene, Tony D.
    Boehm, Robert
    JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2025,
  • [30] Multiphysics Modeling of Mass and Heat Transfer in a Thermo-Electrochemical Cell
    Yang, Wei
    Sun, Licheng
    Bao, Jingjing
    Mo, Zhengyu
    Du, Min
    Xu, Yong
    Zhang, Jun
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2023, 62 (31) : 12345 - 12355