开发太阳能光伏系统,为铝型材加工厂减少用电提供成本效益

C. Z. Yee, L. H. Saw, W. Yeo, K. H. Chua, W. W. Loo, H K Lim, Y. P. Lim
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引用次数: 0

摘要

多年来,在减少二氧化碳排放和电费以建设可持续发展世界这一共同目标的推动下,对太阳能光伏系统的需求一直在稳步增长。高能耗行业,尤其是制造业,都在积极寻求建立更可持续的工厂,以实现净零排放目标。本项目的主要目的是为一家铝制造厂量身设计太阳能光伏系统,旨在通过利用光伏系统产生的能量,减少电力消耗,最大限度地减少二氧化碳排放。综合分析包括气象数据、每日负荷需求配置、光伏阵列评估,以及利用 PVsyst 软件模拟并网逆变器的大小。根据模拟结果,太阳能光伏系统的总运行容量达到 5240 kWp,可有效满足工厂 85% 的最大需求。要满足工厂的要求,总共需要 12780 块电池板。分析表明,该太阳能系统每年可发电 7609690 千瓦时,约占 2022 年总电费的 26.10%,即 29146841.28 千瓦时。据估计,实施这一太阳能解决方案每年可节省约 2,701,518 令吉。此外,太阳能系统每年还可大幅减少 4,224.467 吨的二氧化碳排放量,为营造更健康的周边环境做出贡献。根据 PVsyst 的预测,预计投资回报将在大约 3.4 年内实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Developing a solar PV system for cost-effective electricity reduction in an aluminium extrusion plant
The demand for solar photovoltaic systems has been steadily increasing over the years, driven by the collective goal to reduce both CO2 emissions and electricity bills in order to foster a sustainable world. Industries with high energy consumption, particularly manufacturing, are actively pursuing the establishment of more sustainable plants to align with net-zero objectives. The primary aim of this project is to design a solar photovoltaic system tailored for an aluminium manufacturing plant, with the intent to curtail electricity consumption and minimize CO2 emissions by harnessing and utilizing energy generated from the photovoltaic system. The comprehensive analysis encompasses meteorological data, daily load demand configuration, photovoltaic array assessment, and simulation of grid-connected inverter sizing through the utilization of PVsyst software. According to the simulation results, the collective operational capacity of the solar photovoltaic system reaches 5240 kWp, effectively meeting 85% of the factory’s maximum demand. To fulfil the plant’s requirements, a total of 12780 panels are necessary. The analysis reveals that this solar system can generate a total of 7,609,690 kWh annually, constituting approximately 26.10% of the total electricity bill for the year 2022, amounting to 29,146,841.28 kWh. The estimated savings from implementing this solar solution amount to around RM 2,701,518 per year. Moreover, the solar system significantly reduces CO2 emissions by an annual total of 4,224.467 tons, contributing to a healthier surrounding environment. The anticipated return on investment, as per the PVsyst projections, is expected to occur within approximately 3.4 years.
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