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Performance mapping of an open absorption thermal battery with crystallization and sorbent circulation

Energy Conversion and Management, ISSN: 0196-8904, Vol: 308, Page: 118385
2024
  • 3
    Citations
  • 0
    Usage
  • 3
    Captures
  • 1
    Mentions
  • 0
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    3
    • Citation Indexes
      3
  • Captures
    3
  • Mentions
    1
    • News Mentions
      1
      • News
        1

Most Recent News

Findings from Shanghai Jiao Tong University Update Knowledge of Energy Conversion and Management (Performance Mapping of an Open Absorption Thermal Battery With Crystallization and Sorbent Circulation)

2024 JUN 10 (NewsRx) -- By a News Reporter-Staff News Editor at Energy Daily News -- Data detailed on Energy - Energy Conversion and Management

Article Description

Sorption thermal battery is promising for long-term heat storage of renewable energy. Recent advances in three-phase sorption thermal battery using fixed sorbent pursue remarkable improvement in energy storage density. However, the synergistic change in storage capacity and discharge rate has posed a challenge for capacity regulation and large-scale application. To address this issue, a three-phase sorption thermal battery accompanied with sorbent circulation is proposed, which completes crystallization while performing falling film heat transfer. Ambient humidity is utilized as working fluid to simplify the operation. A comprehensive analysis is conducted for LiBr-H 2 O and CaCl 2 -H 2 O working pairs in terms of energy density, coefficient of performance, temperature lift, and charge/discharge rates. Simulation results reveal that both the two working pairs exhibit high energy storage density (470.8 kWh/m 3 and 525.6 kWh/m 3 ) in the fully crystallized cycle, which is around 2.9–5 times compared to the conventional two-phase cycle. Stable and controllable discharge rate could be achieved via solution circulating and re-concentrating. The stable discharge of CaCl 2 -H 2 O could be much longer, owing to larger sorption capacity difference between hydrate and saturated solution (2.2 times of LiBr-H 2 O). With collaborative promotion in storage density and discharge stability, the proposed system shows great potential for real applications.

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