Biomass-based negative emission technology options with combined heat and power generation

被引:0
作者
Tobias Pröll
Florian Zerobin
机构
[1] University of Natural Resources and Life Sciences,Department of Material Sciences and Process Engineering
[2] Vienna,undefined
来源
Mitigation and Adaptation Strategies for Global Change | 2019年 / 24卷
关键词
Biomass; Carbon capture and storage; Bioenergy; Biochar; Chemical looping combustion; Pyrolysis; Combined heat and power; Negative emission technologies;
D O I
暂无
中图分类号
学科分类号
摘要
Biomass-based combined heat and power (CHP) generation with different carbon capture approaches is investigated in this study. Only direct carbon dioxide (CO2) emissions are considered. The selected processes are (i) a circulating fluidized bed boiler for wood chips connected to an extraction/condensation steam cycle CHP plant without carbon capture; (ii) plant (i), but with post-combustion CO2 capture; (iii) chemical looping combustion (CLC) of solid biomass connected to the steam cycle CHP plant; (iv) rotary kiln slow pyrolysis of biomass for biochar soil storage and direct combustion of volatiles supplying the steam cycle CHP plant with the CO2 from volatiles combustion escaping to the atmosphere; (v) case (iv) with additional post-combustion CO2 capture; and (vi) case (iv) with CLC of volatiles. Reasonable assumptions based on literature data are taken for the performance effects of the CO2 capture systems and the six process options are compared. CO2 compression to pipeline pressure is considered. The results show that both bioenergy with carbon capture and storage (BECCS) and biochar qualify as negative emission technologies (NETs) and that there is an energy-based performance advantage of BECCS over biochar because of the unreleased fuel energy in the biochar case. Additional aspects of biomass fuels (ash content and ash melting behavior) and sustainable soil management (nutrient cycles) for biomass production should be quantitatively considered in more detailed future assessments, as there may be certain biomass fuels, and environmental and economic settings where biochar application to soils is indicated rather than the full conversion of the biomass to energy and CO2.
引用
收藏
页码:1307 / 1324
页数:17
相关论文
共 79 条
  • [1] Abanades JC(2015)Emerging CO2 capture systems Int J Greenh Gas Control 40 126-166
  • [2] Arias B(2018)Chemical looping combustion of solid fuels Prog Energy Combust Sci 65 6-66
  • [3] Lyngfelt A(2014)Carbon capture and storage update Energy Environ Sci 7 130-189
  • [4] Mattisson T(2012)Carbon dioxide capture from air: a simple analysis Energy Environ 23 19-28
  • [5] Wiley DE(2007)Black carbon sequestration as an alternative to bioenergy Biomass Bioenergy 31 426-432
  • [6] Li H(2015)A comparative review of biochar and hydrochar in terms of production, physico-chemical properties and applications Renew Sust Energ Rev 45 359-378
  • [7] Ho MT(2012)Rotary kiln pyrolysis of straw and fermentation residues in a 3 MW pilot plant - influence of pyrolysis temperature on pyrolysis product performance J Anal Appl Pyrolysis 97 1-10
  • [8] Mangano E(2018)Chemical looping combustion of different types of biomass in a 0.5kWth unit Fuel 211 868-875
  • [9] Brandani S(2017)Fast growing research on negative emissions Environ Res Lett 12 035007-185
  • [10] Adánez J(2014)Chemical-looping combustion of raw syngas from biomass steam gasification - coupled operation of two dual fluidized bed pilot plants Fuel 127 178-6066