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Revisiting the feasibility of biomass-fueled CHP in future energy systems - Case study of the Aland Islands

机译:重新审视以生物质为燃料的热电联产在未来能源系统中的可行性-奥兰群岛的案例研究

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摘要

Biomass has been widely recognized as a sustainable fuel for balancing energy systems with high amounts of varying renewable energy production, mainly from wind or solar power. Combined heat and power (CHP) is an efficient technology for biomass utilization and energy system balancing. Currently, the increasing amount of renewable power production often reduces the price of electricity, which makes CHP plants uneconomical. However, this might not be the case in the future, when the subsidies for developing renewable energy sources are reduced or removed. This paper presents a feasibility analysis of the potential for operational flexibility in a bio-fueled CHP plant in a real-life environment using a spreadsheet model. Three different renewable power production schemes for the Aland Islands were analyzed: the present system, a balanced scenario and a high wind scenario. The analysis was conducted for three different-sized CHP plants run in modes which followed either the heat or the power load. Moreover, in one case two more parameters affecting the magnitude and rate of the flexibility were thoroughly examined: the start-up time and the minimum plant load.The results showed that biomass does have a place in future energy systems, and the spreadsheet tool can effectively be used for a CHP feasibility assessment in different operational environments; both for existing CHP plants and for planning new investments. The results indicate that the availability of inexpensive fuel and sufficient income from heat sales have to be secured as the operational environment of the CHP plant changes. The examination of the operational mode revealed that in the power-following mode, where the CHP plant can offer flexibility services, the plant's profitability depends on the rate of compensation for the excess heat or spinning hours.
机译:生物质已被广泛认为是一种可持续燃料,用于平衡能源系统与大量不同的可再生能源生产,主要来自风能或太阳能。热电联产(CHP)是用于生物质利用和能源系统平衡的有效技术。当前,可再生能源发电量的增加通常会降低电价,这使得热电联产电厂不经济。但是,将来减少或取消开发可再生能源的补贴时,情况可能并非如此。本文使用电子表格模型,对在现实环境中生物燃料热电联产工厂的运营灵活性潜力进行了可行性分析。分析了奥兰群岛的三种不同的可再生能源生产方案:当前系统,平衡方案和强风方案。对三种不同规模的热电联产电厂进行了分析,这些电厂按照热负荷或电力负荷运行。此外,在一种情况下,还彻底检查了影响柔韧性大小和速率的另外两个参数:启动时间和最小工厂负荷。结果表明,生物质确实在未来的能源系统中占有一席之地,而电子表格工具可以有效地用于不同运营环境中的CHP可行性评估;既适用于现有的热电联产工厂,也适用于计划新的投资。结果表明,随着CHP工厂运行环境的变化,必须确保廉价燃料的可用性和来自热销的足够收入。对运行模式的检查表明,在热电联产工厂可以提供灵活性服务的功率跟随模式下,工厂的盈利能力取决于对多余热量或纺丝时间的补偿率。

著录项

  • 来源
    《Energy Conversion & Management》 |2019年第5期|66-75|共10页
  • 作者

    Paakkonen Anna; Joronen Tero;

  • 作者单位

    Tampere Univ, Fac Engn & Nat Sci, Korkeakoulunkatu 8, Tampere 33720, Finland;

    Tampere Univ, Fac Engn & Nat Sci, Korkeakoulunkatu 8, Tampere 33720, Finland|Valmet Technol Tampere, Tampere, Finland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biomass; Operational flexibility; Bio-CHP profitability;

    机译:生物质;运营灵活性;生物CHP盈利能力;

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