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用于深度热能利用的大温升储能型热变换器
Large-temperature-lift energy storage heat transformer for deep thermal energy utilization
| 作者 | Zhixiong Ding · Wei Wu |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 384 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | Two-stage experiment has been conducted to demonstrate the feasibility. |
语言:
中文摘要
摘要 可再生能源普遍具有品位低和不稳定性等特点,限制了其广泛利用。需要通过能量升级技术将不可直接利用的可再生能源转化为可用能源,同时还需要配备储能系统以解决能源供给与终端用户需求之间的时间与强度错配问题。因此,基于解吸-吸收循环的储能型热变换器(ESHT)被提出,并被视为一种有前景的解决方案。为进一步降低热输入温度并提升循环性能,实现对可再生能源的深度利用,本文提出并研究了一种新型两级ESHT循环。首先开展了初步实验,并利用实验结果验证了所建立的动态模型的准确性。随后,对比分析了基本型ESHT循环与两级ESHT循环在不同工况下的性能表现。结果表明,在相同的30°C温升条件下,两级ESHT中的一个溶液储罐可达到更高的溶液浓度,浓度由基本型ESHT的55.7%提升至65%。在相近的能量储存效率(ESE)和㶲效率(EXE)水平下,储能密度(ESD)显著提高,由51.0 kWh/m³提升至96.1 kWh/m³。在60°C的输入温度下,最大可实现50°C的温升;当温升为35°C时,最低热输入温度可降至55°C。本研究旨在为基于吸收式循环的储能型热变换器的性能优化提供参考依据和技术建议。
English Abstract
Abstract The features of low grade and instability hinder the extensive utilization of renewable energy. Energy upgrading technology is needed to turn unusable renewable energy into usable energy, and energy storage systems are also required to solve the mismatch problem between energy sources and end users. Therefore, the energy storage heat transformer (ESHT) based on the desorption-absorption cycle has been proposed and regarded as a promising solution. To further reduce the heat input temperature and improve the cycle performance for deep utilization of renewable energy, a novel two-stage ESHT cycle is proposed and investigated. Preliminary experiments are conducted and used to validate the established dynamic model. Then, the performance under different working conditions are compared between the basic and two-stage ESHT cycles. Results show that one of the two solution tanks in the two-stage ESHT achieves a higher concentration compared to basic ESHT, increasing from 55.7 % to 65 % with the same temperature lift of 30 °C. The energy storage density (ESD) is significantly improved from 51.0 kWh/m 3 to 96.1 kWh/m 3 with similar energy storage efficiency (ESE) and exergy efficiency (EXE). A maximum temperature lift of 50 °C is reached under an input temperature of 60 °C. A minimum heat input temperature of 55 °C is achieved with a temperature lift of 35 °C. This work aims to provide references and suggestions for the improvement of absorption-based ESHT.
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SunView 深度解读
该两级储能热变压器技术对阳光电源ST系列储能系统具有重要参考价值。研究实现了55-60°C低温热源下35-50°C温升,储能密度从51提升至96.1 kWh/m³,为PowerTitan等大型储能系统的热管理优化提供新思路。可探索将吸收式热泵技术集成到PCS热管理中,利用系统余热实现温度提升,降低冷却能耗。该技术与光储充一体化场景中的废热回收利用高度契合,可提升iSolarCloud平台的能效管理维度,为工商业储能系统开发热电联供解决方案提供技术储备。