白俄罗斯统一能源系统中电力能力过剩条件下当地燃料小型热电联产运行模式的分析与优化》。第一部分

Q3 Energy
R. S. Ignatovich, V. Sednin, Ye. S. Zuyeva
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引用次数: 0

摘要

本文介绍了一项研究的结果,该研究旨在确定使用当地燃料类型(LFT)的小型热电联产(Cogeneration Heat and Power Plant)的合理结构,以便在发电能力过剩、进口能源(天然气和核燃料)在燃料平衡中占主导地位的情况下作为白俄罗斯联合能源系统(UES)的一部分运行。在优化与发电能力严重过剩的联合能源系统并行运行的使用 LFT 的小型热电联产的运行模式时,有必要将现有发电站的方案与新建发电站的方案区分开来。在第一种情况下,由于设备功率已知,最好考虑两个极端方案,即根据电力或热负荷计划运行供热装置。在这种情况下,为了保持每天的消耗流量,必须分别提供热能或电能的积累。在新建工程中,优化参数是发电设备的功率,因此最好优先选择额定功率使用小时数最多的方案。为了提高小型热电联产的经济吸引力,考虑了在向多发电技术过渡的过程中使用 LFT 发展小型热电联产结构的方案,以及适应白俄罗斯公用事业局现有运行条件的方案。根据当前和预计(到 2030 年)的成本和运行指标,介绍了对现有商业化过剩电能储存技术的分析结果。为了使小型热电联产在电力容量过剩的情况下在公用电网中运行,使用氢作为中间能源载体的电能存储系统最有意义。为了利用带有加热 ORC 装置的小型热电联产在每日骤降期间的多余电能消耗,我们提出了一种使用碱性电解模块制氢的结构图配置。能源存储和使用技术的效率取决于各种电能存储技术的具体能源强度。建议使用两种能源密集度最高的储能技术:基于电化学电池的蓄能技术和 "电-氢 "类型。在研究过程中,对 ORC 装置 Turboden 14 CHP ORC 装置的运行情况进行了分析,该装置是使用 LFT 的小型热电联产的一部分。结果表明,目前该设备的运行负荷变化范围很广(从额定功率的 17% 到 87%),而热能消耗产生的电能变化范围为 0.20 到 0.026 MW/MW。由于所研究的 ORC 设备是装机峰值热功率较高的能源组件,因此在当前情况下,外部空气温度与 ORC 设备的发电功率之间没有直接关联。这种情况表明,有必要继续研究热负荷趋势,以便根据一天中的时间和每小时平均室外空气温度建立中短期热负荷预测功能模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis and Optimization of Operating Modes of Mini-CHP on Local Fuels in Conditions of Surplus Electric Power Capacities in the Unified Energy System of Belarus. Part 1
The paper presents the results of a study to determine the rational structure of mini-CHP (Cogeneration Heat and Power Plant) using local fuels types (LFT) for operation as part of the United Energy System (UES) of Belarus with a surplus of electricity generating capacity and dominance of imported types of energy resources (natural gas and nuclear fuel) in the fuel balance. When optimizing the operating modes of mini-CHPs using LFT and operating in parallel with the UES, which has a significant surplus of electricity generating capacity, it is necessary to separate options for existing stations and options for newly built ones. In the first case, due to the fact that  the power of the equipment is known, it is advisable to consider two extreme options, i.e., the operation of the heating unit according to an electrical or thermal load schedule. In this case, in order to maintain the daily consumption traffic it is necessary to provide for the accumulation of thermal or electrical energy, respectively. In the case of new construction, the optimized parameter is the power of the generating equipment, so it is advisable to give preference to the option with the maximum number of hours of use of the rated power. In order to increase the economic attractiveness of mini-CHP, options for developing the structure of mini-CHP using LFT with the transition to multi-generation technologies and adaptation to the existing operating conditions of the UES of Belarus have been considered. The results of an analysis of commercially available technologies for storing excess electrical energy are presented in accordance with current and projected (until 2030) cost and operational indicators. For adapting mini-CHP to operate in the UES in conditions of a surplus of electrical power capacity, an electrical energy storage system using hydrogen as an intermediate energy carrier is of greatest interest. To utilize the excess electrical energy consumption from a mini-CHP with a heating ORC unit during the daily dips, a structural diagram configuration using an alkaline electrolysis module for hydrogen production is proposed. The efficiency of energy storage and use technology is considered depending on the specific energy intensity for various electrical energy storage technologies. The use of the two most energy-intensive energy storage technologies is proposed: accumulation based on electrochemical batte-ries and the “electricity-hydrogen” type. During the study, an analysis of the functioning of the ORC-installation Turboden 14 CHP ORC-installation operating as part of a mini-CHP using LFT was carried out. It was revealed that today the installation operates in a wide range of load changes (from 17 to 87 % of the rated electrical power), while the generation of electrical energy from thermal consumption varied in the range from 0.20 to 0.026 MW/MW. Due to the fact that the ORC installation under study is a component of  the energy source with a high installed peak thermal power, in the current state there is no direct correlation between the outside air temperature and the generation power of the ORC installation. This circumstance indicates the need to continue the study of heat load trends to build functional models for short- and medium-term forecasting of heat load depending on the time of day and average hourly outside air temperature, which was implemented in the second part of the work.
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来源期刊
CiteScore
1.60
自引率
0.00%
发文量
32
审稿时长
8 weeks
期刊介绍: The most important objectives of the journal are the generalization of scientific and practical achievements in the field of power engineering, increase scientific and practical skills as researchers and industry representatives. Scientific concept publications include the publication of a modern national and international research and achievements in areas such as general energetic, electricity, thermal energy, construction, environmental issues energy, energy economy, etc. The journal publishes the results of basic research and the advanced achievements of practices aimed at improving the efficiency of the functioning of the energy sector, reduction of losses in electricity and heat networks, improving the reliability of electrical protection systems, the stability of the energetic complex, literature reviews on a wide range of energy issues.
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