Three pathways towards elimination of CO2 emissions from industrial plants that use hydrocarbon fuels

被引:12
作者
Li, Tianyue [1 ]
Long, Jian [1 ]
Du, Wenli [1 ]
Qian, Feng [1 ]
Mahalec, Vladimir [2 ]
机构
[1] East China Univ Sci & Technol, Key Lab Smart Mfg Energy Chem Proc, Minist Educ, Shanghai 200237, Peoples R China
[2] McMaster Univ, Dept Chem Engn, 1280 Main St West, Hamilton, ON L8S 1A8, Canada
基金
中国国家自然科学基金;
关键词
Carbon capture and utilization; Carbon reduction; Combine heat and power system; Methane pyrolysis; Net zero-carbon refinery; HYDROGEN-PRODUCTION; TECHNOECONOMIC ANALYSIS; METHANE DECOMPOSITION; DEEP DECARBONIZATION; CARBON STORAGE; CAPTURE; PYROLYSIS; TECHNOLOGY; ABSORPTION; DESIGN;
D O I
10.1016/j.jclepro.2023.136159
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Many industrial plants burn hydrocarbon fuels to generate electricity and high-temperature thermal energy required in their processes. This work proposes a novel system for generation of such thermal energy while eliminating CO2 emissions. The system produces electricity, thermal energy, methanol, and carbon black. Combined heat and power (CHP) unit generates high-temperature thermal energy and electricity required by the industrial plant; CO2 produced by CHP and by the plant itself is converted to methanol by using hydrogen produced via pyrolysis of methane, which has recently advanced to the first industrial scale plant. Thermal energy contained in the CHP flue gas replaces utility plant boilers or furnaces of the industrial plant (e.g. a refinery or a petrochemical plant). Two pathways are based on two different methane pyrolysis methods and CO2 removal via MEA absorption. The third pathway replaces MEA absorption with a novel in situ CO2 conversion reactor. Proposed pathways are examined as ways of eliminating CO2 emissions from a 5 million ton of crude oil per annum refinery. The study includes operational costs, capital costs, and material prices in USA, EU, and China. The results show that the proposed pathways are profitable for USA and EU, while for China they are not. The proposed pathways provide CO2 free energy generation from natural gas as an alternative to energy gen-eration from either solar, wind or hydro energy sources. In addition, they enable capture and conversion of CO2 emissions from industrial process units.
引用
收藏
页数:14
相关论文
共 72 条
  • [1] Technological challenges for industrial development of hydrogen production based on methane cracking
    Abanades, A.
    Rubbia, C.
    Salmieri, D.
    [J]. ENERGY, 2012, 46 (01) : 359 - 363
  • [2] Solid-gas reactors driven by concentrated solar energy with potential application to calcium looping: A comparative review
    Alvarez Rivero, M.
    Rodrigues, D.
    Pinheiro, C. I. C.
    Cardoso, J. P.
    Mendes, L. F.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 158
  • [3] BASF, 2021, CLEAN HYDR METH PYR
  • [4] A review of technology and policy deep decarbonization pathway options for making energy-intensive industry production consistent with the Paris Agreement
    Bataille, Chris
    Ahman, Max
    Neuhoff, Karsten
    Nilsson, Lars J.
    Fischedick, Manfred
    Lechtenboehmer, Stefan
    Solano-Rodriquez, Baltazar
    Denis-Ryan, Amandine
    Stiebert, Seton
    Waisman, Henri
    Sartor, Oliver
    Rahbar, Shahrzad
    [J]. JOURNAL OF CLEANER PRODUCTION, 2018, 187 : 960 - 973
  • [5] Assessing deployment pathways for greenhouse gas emissions reductions in an industrial plant - A case study for a complex oil refinery
    Berghout, Niels
    Meerman, Hans
    van den Broek, Machteld
    Faaij, Andre
    [J]. APPLIED ENERGY, 2019, 236 : 354 - 378
  • [6] Can methane pyrolysis based hydrogen production lead to the decarbonisation of iron and steel industry?
    Bhaskar, Abhinav
    Assadi, Mohsen
    Somehsaraei, Homam Nikpey
    [J]. ENERGY CONVERSION AND MANAGEMENT-X, 2021, 10
  • [7] Methanol-to-hydrocarbons conversion: The alkene methylation pathway
    Brogaard, Rasmus Y.
    Henry, Reynald
    Schuurman, Yves
    Medford, Andrew J.
    Moses, Poul Georg
    Beato, Pablo
    Svelle, Stian
    Norskov, Jens K.
    Olsbye, Unni
    [J]. JOURNAL OF CATALYSIS, 2014, 314 : 159 - 169
  • [8] Plasma reforming of methane
    Bromberg, L
    Cohn, DR
    Rabinovich, A
    O'Brien, C
    Hochgreb, S
    [J]. ENERGY & FUELS, 1998, 12 (01) : 11 - 18
  • [9] Review on the Development of Sorbents for Calcium Looping
    Chen, Jian
    Duan, Lunbo
    Sun, Zhenkun
    [J]. ENERGY & FUELS, 2020, 34 (07) : 7806 - 7836
  • [10] Continuous production of H2 at low temperature from methane decomposition over Ni-containing catalyst followed by gasification by steam of the carbon on the catalyst in two parallel reactors operated in cyclic manner
    Choudhary, VR
    Banerjee, S
    Rajput, AM
    [J]. JOURNAL OF CATALYSIS, 2001, 198 (01) : 136 - 141