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Effect of heat integration method and torrefaction temperature on the performance of an integrated CHP-torrefaction plant

机译:热集成方法和焙烧温度对CHP焙烧综合工厂性能的影响

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摘要

An important factor for industrial-scale implementation of torrefaction - a thermal pre-treatment technology that enhances the fuel characteristics of biomass - is the requirement for a low-cost source of heat energy. Significant benefits can be achieved if torrefaction is integrated with a large heat producer. To study this possibility, a new model for the energy and mass balances of the torrefaction process was developed on the basis of available experimental data. The torrefaction model was then integrated into steam power plant simulations, and the performance of different integration schemes was evaluated. To investigate the effect of plant size and operating mode, the same configurations were studied for both large and small combined heat and power (CHP) plants. Large plant operates at full boiler load, and capturing a portion of heat from the plant reduces the power output for all integration cases. At the same time, higher trigeneration efficiencies in comparison with non-integrated case together with fuel consumption decrease due to torrefaction gas co-firing indicate that integration of torrefaction and CHP plant at full load could be beneficial. In case of small plant, free boiler capacity at reduced-load conditions allows to cover the torrefaction heat demand and simultaneously increase the electricity generation for almost all integration cases. Trigeneration efficiency is changing within a relatively narrow range for most of the cases, while the solid fuel consumption is higher than in design case. This work shows that integration method together with process temperature and plant operation mode are the important factors that could have an effect on CHP plant integration with torrefaction process. (C) 2015 Elsevier Ltd. All rights reserved.
机译:对于工业规模实施烘焙的重要因素-一种增强生物质燃料特性的热预处理技术-是对低成本热能来源的要求。如果将烘焙与大型生热器集成在一起,则可以实现显着的收益。为了研究这种可能性,在现有实验数据的基础上,开发了一种新的烘焙过程能量和质量平衡的模型。然后将烘焙模型集成到蒸汽电厂仿真中,并评估了不同集成方案的性能。为了研究电厂规模和运行模式的影响,对大型和小型热电联产(CHP)电厂都研究了相同的配置。大型工厂在满负荷的锅炉下运行,并且从工厂中吸收一部分热量会降低所有集成案例的功率输出。同时,与非一体化案例相比,更高的三代发电效率以及由于干馏气体共烧而导致的燃料消耗减少表明,干馏和CHP装置在满负荷下的集成可能是有益的。对于小型工厂,在负载减少的情况下,自由锅炉的容量可以满足烘焙热需求,同时几乎在所有集成案例中均可增加发电量。在大多数情况下,三代发电效率在相对狭窄的范围内变化,而固体燃料消耗高于设计情况。这项工作表明,集成方法,工艺温度和工厂操作模式是可能对热电联产工厂与焙烧工艺集成产生重要影响的重要因素。 (C)2015 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Applied Energy》 |2015年第1期|24-34|共11页
  • 作者单位

    Lappeenranta Univ Technol, Lab Sustainable Energy Syst, LUT Energy, FI-53850 Lappeenranta, Finland;

    Lappeenranta Univ Technol, Lab Sustainable Energy Syst, LUT Energy, FI-53850 Lappeenranta, Finland;

    Lappeenranta Univ Technol, Lab Sustainable Energy Syst, LUT Energy, FI-53850 Lappeenranta, Finland|Aalto Univ, Dept Energy Technol, Energy Econ & Power Plant Engn Lab, FI-00076 Aalto, Finland;

    Lappeenranta Univ Technol, Lab Sustainable Energy Syst, LUT Energy, FI-53850 Lappeenranta, Finland;

    Lappeenranta Univ Technol, Lab Sustainable Energy Syst, LUT Energy, FI-53850 Lappeenranta, 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

    Torrefaction; Biomass; Modelling; Integration; CHP;

    机译:烘焙;生物质;建模;集成;CHP;

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