为偏远鱼塘供电供热混合系统的优化设计和技术经济分析

Milan V. Tomovic, D. Klimenta, Milos J. Milovanovic, Bojan D. Perovic, Nikolay L. Hinov
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摘要

本文论述了为塞尔维亚东部偏远鱼塘供电的发电和供热混合系统的设计。拟议的混合系统由一个微型水电站 (MHPP)、一个光伏 (PV) 发电机、一个热电联产 (CHP) 装置和一个柴油发电机、电池、一个变流器、一个热负荷控制器 (TLC) 和一个锅炉组成。利用 HOMER Pro 软件进行了全面的技术经济分析,评估并比较了 12 种可能的系统组件组合。结果表明,最优系统的总净现值成本(NPC)最低,平准化能源成本(COE)最低,分别为 284421.0 美元和 0.178 美元/千瓦时。与柴油/电池/变流器/锅炉混合系统相比,拟议系统产生的温室气体(GHG)排放量减少了 65.4%,而发电、供热和可再生能源发电的比例分别增加了 31.1%、5.0% 和 51.2%。研究表明,通过再生柴油发电机的余热和可再生能源的过剩电力来满足对热能的需求,有助于降低系统的总成本和温室气体排放量。这一发现最终强调了在离网混合系统中应用热电联产的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Design and Techno-Economic Analysis of a Hybrid System to Supply a Remote Fishpond with Electricity and Heat
This paper deals with the design of a hybrid system for the generation of electricity and heat that will supply a remote fishpond in eastern Serbia. The proposed hybrid system consists of a micro-hydro power plant (MHPP), a photovoltaic (PV) generator, a combined heat and power (CHP) unit with one diesel generator, batteries, a converter, a thermal load controller (TLC), and a boiler. A comprehensive techno-economic analysis is performed in the HOMER Pro software, which evaluated and compared 12 possible configurations with different combinations of system components. The results show that the optimal system has the lowest total net present cost (NPC) and the lowest levelized cost of energy (COE) amounting to 284421.0 $ and 0.178 $/kWh, respectively. Compared to a diesel/batteries/converter/boiler hybrid system, the proposed system produces 65.4 % less greenhouse gas (GHG) emissions, while the shares of electricity, heat, and renewable energy generation are increased by 31.1 %, 5.0 %, and 51.2 %, respectively. It is shown that covering the demand for heat by regenerating the waste heat from the diesel generator and excess electricity from renewables contributes to reducing the total cost of the system and the GHG emissions. This finding finally emphasised the necessity of applying TLCs in off-grid hybrid systems.
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