暨南大学国际能源学院,广东 珠海 519070
陈亿锋(2005—),男,本科生,研究方向为围护结构被动降温和空调主动降温,E-mail: 15728828407@163.com;
蔡阳,博士,副教授,研究方向为可持续能源与建筑环境,E-mail: thomascai301@163.com。
收稿:2025-11-18,
修回:2026-01-27,
纸质出版:2026-03-28
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在全球气候治理紧迫性加剧的当下,建筑领域作为能源转型的战略支柱,零碳转型已成当务之急,传统降温模式面临能效与经济性双重瓶颈。本研究针对这一问题,提出一种融合光伏相变墙体与冰蓄冷热泵的主被动协同降温系统,从系统建模与运行调控双维度突破传统技术局限,通过光伏发电、相变蓄热与冰蓄冷技术的多能互补,实现“光伏降温-相变调峰-热泵补冷”的协同运行;基于广州夏季典型气候数据与当地分时电价政策,运用TRNSYS软件构建建筑降温系统模型,并通过实验验证确保模型可靠性,进而探究相变温度/厚度、蓄冰罐容积及需求响应策略对系统热工性能与经济性的影响。结果表明:28℃相变温度、0.2 m相变厚度与0.4 m
3
蓄冰罐的组合最优,可最小化室内温度波动并降低能耗,使谷电利用率提升75.31%,分时电价下日净购电成本较传统空调系统降低61.33%;添加全局温度重设策略可进一步实现6.37% 的电费节省,且单位冷量成本低至0.182元/kWh;该系统静态投资回收期为5~7年,兼具技术可行性与商业推广价值,为亚热带地区建筑零碳设计与能源优化管理提供重要参考。
As global climate governance grows increasingly urgent
the building sector—a strategic pillar of energy transition—faces an imperative need for zero-carbon transformation
while traditional cooling models struggle with dual bottlenecks in energy efficiency and economic viability. To address this
a hybrid active-passive cooperative cooling system integrating photovoltaic phase-change (PV-PCM) walls with ice-storage heat pumps is proposed
overcoming the limitations of conventional technologies
through dual innovations in system modeling and operational control. By harnessing the multi-energy complementarity of photovoltaic power generation
phase-change thermal storage
and ice-storage technology
the system achieves coordinated operation characterized by "photovoltaic cooling
phase-change peak shaving
and heat pump supplementary cooling." Using typical summer climate data from Guangzhou and the local time-of-use electricity pricing policy
a building energy consumption prediction model was developed in TRNSYS
validated experimentally
and applied to investigate the effects of phase-change parameters (temperature/thickness)
ice-storage tank volume
and demand response strategies on the system's thermal performance and economic efficiency. Results indicate that the optimal configuration
a phase-change temperature of 28℃
a phase-change material thickness of 0.2 m
and an ice-storage tank volume of 0.4 m
3
minimizes indoor temperature fluctuations and reduces energy consumption
increasing the off-peak electricity utilization rate by 75.31%. Under time-of-use pricing
the daily net electricity purchase cost is 61.33% lower than that of conventional air-conditioning systems. Furthermore
incorporating the Global Temperature Adjustment strategy reduces electricity costs by an additional 6.37%
achieving a cooling cost coefficient as low as 0.182 CNY/kWh. With a static payback period of 5—7 years
the system demonstrates both technical feasibility and commercial potential
offering valuable insights for zero-carbon building design and energy optimization management in subtropical regions.
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