← 返回
用于需求侧管理的配备热虹吸热能蓄冷装置的冷藏展示柜性能分析
Analysis of the performance of a refrigerated display cabinet fitted with a thermosiphon thermal accumulator for demand-side management
| 作者 | Maria Aurely Yedme · Anthony Delahay · Denis Leduc |
| 期刊 | Energy Conversion and Management |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 346 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 | Thermosiphon thermal accumulator (TTA) is integrated into a display cabinet VCS. |
语言:
中文摘要
摘要 需求侧管理(DSM)是调节电力需求的关键策略,尤其适用于整合可再生能源的电网系统。与电化学电池类似,热能储存可作为灵活负荷,缓解电网压力。因此,为支持需求响应计划,研究人员开发了一种创新的热虹吸热能蓄冷装置(TTA),并将其集成至蒸气压缩制冷系统中,以便在断电期间向蒸发器储存和供应冷能。本文采用五个关键性能指标,研究了该TTA在不同运行条件下,集成于封闭式冷藏展示柜中时,在持续1.5小时的DSM事件期间的性能表现。结果表明,在断电期间,蓄冷装置成功地向蒸发器供应了冷能,同时有效抑制了DSM期间产品温度的上升,在所有测试条件下均满足监管规定的温度限值要求。在所有实验中,DSM期间伴随蓄冷装置放电的能量消耗与常规运行相当,甚至略有降低(某些情况下最多降低7%)。能耗的减少归因于DSM相关节能效应的持续影响,其作用超过了短期反弹效应。涉及高热负荷的实验在DSM结束后需要长达8小时才能完成蓄冷装置的再充电,原因在于除霜循环的影响。在部分情况下还观察到门开启、除霜周期与温控器设定之间的相互作用。当环境温度为19°C、温控器设定为−1°C且产品装载率为50%时,TTA可在24小时内支持两到三次每次1.5小时的DSM事件。
English Abstract
Abstract Demand-side management (DSM) is a key strategy for regulating electricity demand, especially in grids incorporating renewable energy sources. Like electrical batteries, thermal energy storage acts as a flexible load to alleviate grid stress. Therefore, to support demand response programs, an innovative Thermosiphon Thermal Accumulator (TTA) has been developed and integrated into vapour compression refrigeration systems to store and supply cold energy to the evaporator during power cuts. This article examines the performance of the TTA, integrated into a closed-door refrigerated display cabinet, during a 1.5-hour DSM event under varying operating conditions, using five key performance indicators. The results show that the accumulator successfully supplied cold energy to the evaporator during power cuts, while also mitigating product temperature rise during DSM event, ensuring compliance with regulatory temperature limits under all tested conditions. For all experiments, energy consumption during DSM with accumulator discharge was comparable to regular operation, with even a slight reduction (up to 7 % lower in some cases). This decrease in energy consumption is attributed to the lasting impact of DSM-related savings, which outweigh the short-term rebound effect. Experiments involving high thermal loads required up to 8 h to recharge the accumulator after DSM due to defrosting cycles. Interactions between door openings, defrost cycles, and thermostat settings were observed in some cases. With an ambient temperature of 19 °C, a thermostat setting of −1 °C, and 50 % product occupancy, the TTA can sustain two to three 1.5-hour DSM events in 24 h.
S
SunView 深度解读
该热虹吸蓄冷技术为阳光电源储能系统提供需求侧管理新思路。可与ST系列PCS和PowerTitan储能系统协同,通过冷链负荷柔性调控降低电网峰值压力。技术验证了1.5小时削峰能力且能耗降低7%,与阳光电源GFM控制策略结合可优化工商业储能场景的多时段调度。iSolarCloud平台可集成此类热储能监控,实现电-热混合储能的智能运维,拓展需求响应解决方案边界,特别适用于冷链物流配套的分布式光储充一体化项目。