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首页> 外文期刊>Journal of Cleaner Production >Integration of biofuel production into district heating - part Ⅰ: an evaluation of biofuel production costs using four types of biofuel production plants as case studies
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Integration of biofuel production into district heating - part Ⅰ: an evaluation of biofuel production costs using four types of biofuel production plants as case studies

机译:将生物燃料生产纳入区域供热-第一部分:以四种类型的生物燃料生产厂为例评估生物燃料生产成本

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摘要

This paper evaluates the effects on profitability of biofuel production if biofuel producers would sell the waste heat from the production to a local district heating system. All analyses have been performed considering four different technology cases for biofuel production. Two technology cases include ethanol production which is followed by by-production of raw biogas. This biogas can be upgraded and sold as biofuel (the first technology case) or directly used for combined heat and power production (the second technology case). The third and the fourth technology cases are Fischer-Tropsch diesel and dimethyl ether production plants based on biomass gasification. Two different district heating price levels and two different future energy market scenarios were considered. The sensitivity analyses of the discount rate were performed as well. In the case of energy market conditions, the profitability depends above all on the price ratio between biomass (used as the feedstock for biofuel production) and crude oil (used as the feedstock for fossil diesel and gasoline production). The reason for this is that the gate biofuel prices (the prices on which the biofuel would be sold) were calculated assuming that the final prices at the filling stations are the same as the prices of the replaced fossil fuel. The price ratios between biomass and district heating, and between biomass and electricity, also have an influence on the profitability, since higher district heating and electricity prices lead to higher revenues from the heat/electricity by-produced. Due to high biofuel (ethanol + biogas) efficiency, the ethanol production plant which produces upgraded biogas has the lowest biofuel production costs. Those costs would be lower than the biofuel gate prices even if the support for transportation fuel produced from renewable energy sources were not included. If the raw biogas that is by-produced would instead be used directly for combined heat and power production, the revenues from the electricity and heat would increase, but at the same time the biofuel efficiency would be lower, which would lead to higher production costs. On the other hand, due to the fact that it has the highest heat efficiency compared to the other technologies, the ethanol production in this plant shows a high sensitivity to the district heating price level, and the economic benefit from introducing such a plant into a district heating system is most obvious. Assuming a low discount rate (6%), the introduction of such a plant into a district heating system would lead to between 28% and 52% (depending on the district heating price level and energy market scenario) lower biofuel production costs. Due to the lower revenues from the heat and electricity co-produced, and higher capital investments compared to the ethanol production plants, Fischer-Tropsch diesel and dimethyl ether productions are shown to be profitable only if high support for transportation fuel produced from renewable energy sources is included. The results also show that an increase of the discount rate from 6% to 10% does not have a significant influence on the biofuel production costs. Depending on the biofuel production plant, and on the energy market and district heating conditions, when the discount rate increases from 6% to 10%, the biofuel production costs increase within a range from 2.2% to 6.8%.
机译:本文评估了如果生物燃料生产商将生产过程中产生的废热出售给当地的区域供热系统,则会对生物燃料生产的利润产生影响。考虑到四种不同的生物燃料生产技术案例,已经进行了所有分析。两个技术案例包括乙醇生产,然后是副产沼气。这种沼气可以升级并作为生物燃料出售(第一个技术案例),也可以直接用于热电联产(第二个技术案例)。第三和第四技术案例是基于生物质气化的费托柴油和二甲醚生产厂。考虑了两种不同的区域供热价格水平和两种不同的未来能源市场情景。还对折现率进行了敏感性分析。在能源市场条件下,盈利能力首先取决于生物质(用作生物燃料生产的原料)和原油(用作化石柴油和汽油生产的原料)之间的价格比。其原因是,假设加油站的最终价格与被替换的化石燃料的价格相同,则计算出门口生物燃料的价格(出售生物燃料的价格)。生物质与区域供热之间以及生物质与电之间的价格比率也影响盈利能力,因为较高的区域供热和电价会导致副产品热电的收入增加。由于高生物燃料(乙醇+沼气)效率,生产升级后沼气的乙醇生产厂的生物燃料生产成本最低。即使不包括对可再生能源生产的运输燃料的支持,这些费用也将低于生物燃料的价格。如果将副产的原始沼气改为直接用于热电联产,则电力和热能的收益将会增加,但同时生物燃料效率会降低,这将导致更高的生产成本。另一方面,由于与其他技术相比,它具有最高的热效率,因此该工厂的乙醇生产对区域供热价格水平显示出很高的敏感性,并且将这种工厂引入到当地的经济效益也很高。区域供热系统最为明显。假设折现率很低(6%),将这种植物引入区域供热系统将导致生物燃料生产成本降低28%至52%(取决于区域供热价格水平和能源市场情景)。与乙醇生产厂相比,由于热电联产的收入较低,资本投资较高,因此,只有在大力支持可再生能源生产的运输燃料的情况下,费托柴油和二甲醚生产才能获利。已经包括了。结果还表明,贴现率从6%提高到10%不会对生物燃料生产成本产生重大影响。取决于生物燃料生产厂,能源市场和区域供热条件,当贴现率从6%增加到10%时,生物燃料生产成本将在2.2%到6.8%的范围内增加。

著录项

  • 来源
    《Journal of Cleaner Production》 |2014年第15期|176-187|共12页
  • 作者单位

    Division of Energy Systems, Department of Management and Engineering, Linkoeping University, SE-581 83 Linkoeping, Sweden;

    School of Sustainable Development of Society and Technology, Maelardalen University, SE-72123 Vaesteras, Sweden;

    Division of Energy Systems, Department of Management and Engineering, Linkoeping University, SE-581 83 Linkoeping, Sweden;

    Department of Strategic Sustainable Development, School of Engineering, Blekinge Institute of Technology, Karlskrona, Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biofuel production; Polygeneration; Energy cooperation; District heating;

    机译:生物燃料生产;多联产;能源合作;区域供热;

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