• 中国科技核心期刊
  • JST收录期刊
LIN Xuan, HU Qiao, WANG Chao-hui. Thermoelectric Waste Heat Recovery Method of Undersea Vehicle Based on Thermoelectric Effect[J]. Journal of Unmanned Undersea Systems, 2019, 27(6): 680-687. doi: 10.11993/j.issn.2096-3920.2019.06.012
Citation: LIN Xuan, HU Qiao, WANG Chao-hui. Thermoelectric Waste Heat Recovery Method of Undersea Vehicle Based on Thermoelectric Effect[J]. Journal of Unmanned Undersea Systems, 2019, 27(6): 680-687. doi: 10.11993/j.issn.2096-3920.2019.06.012

Thermoelectric Waste Heat Recovery Method of Undersea Vehicle Based on Thermoelectric Effect

doi: 10.11993/j.issn.2096-3920.2019.06.012
  • Received Date: 2019-03-21
  • Rev Recd Date: 2019-04-25
  • Publish Date: 2019-12-31
  • In respect of the problems of low energy utilization and heat generation during navigation of a thermal-powered undersea vehicle, a new energy recovery method for undersea vehicles was proposed, which directly converts the waste heat into electric energy. Based on the Seebeck effect in thermoelectric effect and the heating characteristics of undersea vehicle, the structure of the waste heat recovery device was designed. The structure of thermoelectric device was simplified by the simulation software Comsol, and then an experimental platform of the thermoelectric waste heat recovery device was built according to the simplified model. Finally, thermoelectric waste heat recovery experiment with the navigation parameters of undersea vehicle was carried out. Experimental results verify the feasibility and effectiveness of the proposed waste heat recovery method based on thermoelectric effect. This method may provide new idea and technical support for the waste heat recovery of undersea vehicles.

     

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  • [1]
    于剑昆. 热动力鱼雷中使用的贮备化学能推进系统[J]. 化学推进剂与高分子材料, 2001(3): 4-6, 38.
    [2]
    李阳, 陆文俊, 范靖华, 等. 燃料电池用于鱼雷动力装置的设想[J]. 四川兵工学报, 2013 , 34(10): 44-45.
    [3]
    Wu W, You T, Wang B L, et al. Simulation of a Combined Heating, Cooling and Domestic Hot Water System Based on Ground Source Absorption Heat Pump[J]. Applied Energy, 2014, 126: 113-122.
    [4]
    Omid N, Zahra H, Hadi H, et al. An Evaluation of Wind Turbine Waste Heat Recovery Using Organic Rankine Cycle[J]. Journal of Cleaner Production, 2019, 214: 705-716.
    [5]
    Sebastian S, Georg U, Ludger O. Thermoelectric Power Supply of Wireless Sensor Nodes in Marine Gearboxes[J]. Energy Harvesting and Systems, 2015, 2(1-2): 81-93.
    [6]
    Murat E D, Ibrahim D. Development and Heat Transfer Analysis of a New Heat Recovery System with Thermoelectric Generator[J]. International Journal of Heat and Mass Transfer, 2017, 108: 2002-2010.
    [7]
    Jang J Y, Tsai Y C. Optimization of Thermoelectric Generator Module Spacing and Spreader Thickness Used in a Waste Heat Recovery System[J]. Applied Thermal Engineering, 2013, 51: 667-689.
    [8]
    Goldsmid H J. Introduction to Thermoelectricity[M]. German: Springer, 2016.
    [9]
    万荣华, 何长富, 彭博. 鱼雷热动力系统工作温度整体计算模型及有限元法应用研究[J]. 船舶工程, 2005, 27(6): 32-36.

    Wan Rong-hua, He Chang-fu, Peng Bo. Study of Entire Mathematical Model for Working Temperature of Torpedo Thermal Power System and Application of Finite Element Method[J]. Ship Engineering, 2005, 27(6): 32-36.
    [10]
    Leavitt F A, Elsner N B, Bass J C. Use, Application and Testing of the HZ-14 Thermoelectric Module[C]//Fifteenth International Conference on Thermoelectrics. Proceedings ICT’96. Pasadena, CA, USA: IEEE, 1996.
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