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基于过冷储热的海洋温差发电系统研究

鲁恒林 沙浩男 姜东岳

鲁恒林, 沙浩男, 姜东岳. 基于过冷储热的海洋温差发电系统研究[J]. 水下无人系统学报, xxxx, x(x): x-xx doi: 10.11993/j.issn.2096-3920.2025-0155
引用本文: 鲁恒林, 沙浩男, 姜东岳. 基于过冷储热的海洋温差发电系统研究[J]. 水下无人系统学报, xxxx, x(x): x-xx doi: 10.11993/j.issn.2096-3920.2025-0155
LU Henglin, SHA Haonan, JIANG Dongyue. Research on Ocean Thermal Energy Conversion System Based on Supercooled Thermal Energy Storage[J]. Journal of Unmanned Undersea Systems. doi: 10.11993/j.issn.2096-3920.2025-0155
Citation: LU Henglin, SHA Haonan, JIANG Dongyue. Research on Ocean Thermal Energy Conversion System Based on Supercooled Thermal Energy Storage[J]. Journal of Unmanned Undersea Systems. doi: 10.11993/j.issn.2096-3920.2025-0155

基于过冷储热的海洋温差发电系统研究

doi: 10.11993/j.issn.2096-3920.2025-0155
详细信息
    通讯作者:

    姜东岳(), 教授, 主要研究方向为海洋温差发电、储热技术.

  • 中图分类号: TK123

Research on Ocean Thermal Energy Conversion System Based on Supercooled Thermal Energy Storage

  • 摘要: 针对水下滑翔机(UG)等水下无人系统续航受限的问题, 提出并实验验证了一种基于过冷相变材料(EPCM)与热电模块(TEM)耦合的海洋温差发电系统。该系统利用 EPCM 在下潜过程中保持过冷液态、在低温海水环境中自发结晶释放潜热的特性, 在 TEM 冷、热端之间建立稳定温差, 实现海洋温差能向电能的直接转换。制备了三种不同配比、质量为 2.5 kg 的 EPCM, 并在模拟海表-深海温度环境下测试其过冷稳定性和发电性能。结果表明, 98% 六水氯化钙(CCH)+2% PEG200 的 EPCM过冷和释放潜热行为更稳定, 在深海工况下最大开路电压为 15.2 V、最大短路电流为 43.06 mA, 单次发电持续约 2640 s, 输出电能为 518.09 J; 在完整下潜–上浮剖面中累计输出电能达 821.44 J, 对应系统体积能量密度为 547.63 kJ·m−3。研究结果表明, 该系统可在单个潜浮剖面内实现稳定能量输出, 具有良好的工程应用潜力。

     

  • 图  1  基于过冷储热的海洋温差发电系统原理示意图

    Figure  1.  Schematic diagram of the supercooling thermal-storage-based ocean thermoelectric power generation system

    图  2  单对PN结热电偶温差发电原理

    Figure  2.  Principle of thermoelectric power generation by a single pair of PN junction thermocouple

    图  3  温敏热管在海表工作的原理

    Figure  3.  Principle of the temperature-sensitive heat pipe operating at the sea surface

    图  4  温敏热管在海底工作的原理

    Figure  4.  Principle of the temperature-sensitive heat pipe operating on the seabed

    图  5  温敏热管在2种工作情况下的测试

    Figure  5.  Heat pipes tested in two operating conditions

    图  6  实验系统结构

    Figure  6.  Experimental system structure

    图  7  温差发电装置实物

    Figure  7.  Image of EPCM based thermoelectric power generation system

    图  8  测温点在实验装置中的分布

    Figure  8.  Distribution of temperature measurement points in the experimental setup

    图  9  3种 EPCM 与温差发电片热端在3次循环中的温度-时间响应

    Figure  9.  Temperature-time responses of three EPCMs and the hot side of the thermoelectric generator during three cycles

    图  10  样品2单次过冷-结晶成核循环实验的温度-时间响应

    Figure  10.  Temperature-time response of Sample 2 during a single supercooling-crystallization nucleation cycle

    图  11  电路海底输出的开路电压和短路电流

    Figure  11.  The open-circuit voltage and short-circuit current at the subsea circuit output

    图  12  海底和海表温差发电功率随时间变化

    Figure  12.  Power output of the thermoelectric power generation varying with time between the seabed and the sea surface

    图  13  温差发电装置模拟由海底上浮海表的温度变化

    Figure  13.  Temperature variation of the thermoelectric power generation device during the simulated ascent of the submersible from the seabed to the sea surface

    图  14  海底上浮海表过程中输出的开路电压和短路电流

    Figure  14.  The output open-circuit voltage and short-circuit current during the ascent from the seabed to the sea surface

    图  15  TEM热端温度随时间变化的拟合曲线

    Figure  15.  Fitted curves of TEM hot end temperature versus time

    表  1  3种不同配比的EPCM质量分数

    Table  1.   Three different ratios of EPCM quality scores %

    EPCMCCHPEG200CaCl2
    样品197.03.000
    样品298.02.000
    样品388.92.228.88
    下载: 导出CSV

    表  2  实验电压和电流测试不确定度

    Table  2.   Experimental uncertainty of voltage and current measurements

    序号UA/VUVI/mAIA
    116.56±0.102 843.06±0.104
    213.45±0.087 332.70±0.103
    310.50±0.072 521.91±1.030
    47.06±0.055 316.30±0.102
    54.95±0.044 810.28±0.101
    下载: 导出CSV

    表  3  实验EPCM触发释放最高温度测量不确定度

    Table  3.   Experimental measurement uncertainty of the peak temperature during EPCM triggering and release

    样品Tmax/℃$ u\left(x\right) $$ x\pm u\left(x\right) $
    125.70.1225.7±0.12
    225.90.1225.9±0.12
    326.30.1226.3±0.12
    下载: 导出CSV
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  • 收稿日期:  2025-11-12
  • 修回日期:  2025-12-27
  • 录用日期:  2025-12-30
  • 网络出版日期:  2026-03-17
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