Ahmad M. Itani, H. Akilli, Mohamed Hmadi, M. Ghandour
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引用次数: 0
摘要
本文研究了采用冷相变材料蓄热的光伏太阳能电驱动变冷媒流量装置的性能,以达到近零制冷能耗建筑。在Adana - t rkiye,一座总占地面积为300亿美元的住宅别墅作为案例研究。使用“Design Builder”模拟程序,创建了基线常规建筑能源模型,并计算了全年每小时的冷却能量率。数学模型的各个组成部分是用Visual Basic编写的。本研究的主要目的是利用热经济的“胡克和吉夫斯”优化技术确定光伏板面积和储热体积之间的最佳组合。结果表明,在不使用任何辅助能源的情况下,70块光伏太阳能电池板、73 kW VRF机组和10.376 m3冷PCM蓄热能够全年提供制冷能源。这样一来,电能的消耗就减少了98%。不幸的是,由于基耶省的电价补贴很高,可行性研究显示,该系统的投资回收期为9年零7个月。然而,根据国家能源政策倾向于取消这些补贴并使用实际生产成本,投资回收期为4年零3个月,这促使股东进一步投资类似的系统。
Investigating the Performance of a Solar PV Driven VRF System Using Cold PCM Thermal Storage
The current paper investigates the performance of a photovoltaic solar electrical-driven variable refrigerant flow unit with cold phase change material thermal storage to reach a near-zero cooling energy building. A residential villa with a total occupied area of 300m$^{2}$ in Adana - Türkiye - was taken as a case study. Using the “Design Builder” simulation program, the baseline conventional building energy model was created, and the hourly cooling energy rate year-round was computed. The various components of the mathematical model were coded using “Visual Basic”. The main purpose of this research is to determine the optimal combination between the area of the PV panels and the thermal storage volume using the thermo-economic “Hooke and Jeeves” optimization technique. Results show that 70 PV solar panels, 73 kW VRF unit, and 10.376 m3 of cold PCM thermal storage were capable of supplying cooling energy throughout the year without the usage of any auxiliary energy sources. The amount of electrical energy consumption was then reduced by up to 98%. Unfortunately, since the electricity tariff is highly subsidized in Türkiye, the feasibility study reveals that the payback period of this system is 9 years and 7 months. However, in line with the country’s energy policy tendency toward removing these subsidies and using the real production cost, the payback period turns out to be 4 years and 3 months, triggering shareholders to make further investments in similar systems.