Hydrogen-rich gas as a fuel for the gas turbines: A pathway to lower CO2 emission

被引:63
|
作者
Pashchenko, Dmitry [1 ,2 ]
机构
[1] Guangdong Technion Israel Inst Technol, Dept Mech Engn Robot, 241 Daxue Rd, Shantou 515063, Guangdong, Peoples R China
[2] Technion Israel Inst Technol, Fac Mech Engn, IL-3200003 Haifa, Israel
关键词
Hydrogen-rich fuel; Gas turbine; Natural gas; Thermodynamic analysis; Reforming; THERMODYNAMIC-EQUILIBRIUM ANALYSIS; RENEWABLE ENERGY-SOURCES; NATURAL-GAS; THERMOCHEMICAL RECUPERATION; HEAT RECUPERATION; MEMBRANE REACTOR; METHANE; COMBUSTION; CAPTURE; STORAGE;
D O I
10.1016/j.rser.2022.113117
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Hydrogen-rich fuel for the gas turbines can be considered as a transient way from hydrocarbon fuel to zero-carbon hydrogen fuel. In this paper, thermodynamic analysis of a combined cycle power plant (CCPP) fired with a hydrogen-rich fuel obtained via various ways is performed to understand the effect of a transient to this fuel on the CO2 emission as well as the efficiency of a power plant. Hydrogen-rich fuel with different content of hydrogen is analyzed. Two types of hydrogen-rich fuel are considered: fuel obtained via methane dilution with hydrogen (hydrogen from internal fuel supply infrastructure) - first case; fuel obtained via steam methane reforming (on-board hydrogen production technology) - second case. The first case showed that hydrogen addition to methane non-linearly leads to a decrease in CO2: hydrogen-rich fuel with 20% of H2 volume fraction gives a reduction in CO2 emission of 7.2%; 50% of H2 gives 23.5% reduction; 75% of H2 gives 51.1% reduction. The second case is considering hydrogen-rich fuel obtained via steam methane reforming using a renewable energy source. Hydrogen volume fraction up to 75% in hydrogen-rich fuel can be obtained after the reforming process. When 100% of methane is reformed, the reduction in CO2 emission up to 27% can be achieved. The minimum achievable level in CO2 emission is 75.17 gCO2/kW for an on-board hydrogen production technology via steam methane reforming which is corresponding to a hydrogen-rich fuel obtained via H2 dilution up to 53%.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Preferential oxidation of CO in a hydrogen-rich gas through Au/NaY catalytic membranes
    Zhu Z.
    Liu Y.
    Yang Z.
    Gu X.
    Xu N.
    Tsinghua Science and Technology, 2010, 15 (04) : 397 - 403
  • [32] Comparative Study on Coke Oven Gas and Refined Hydrogen-Rich Gas Injection in Blast Furnace: Effects on Tuyere and Raceway Behavior
    Ren, Mengmeng
    Zhang, Jianliang
    Xu, Runsheng
    Hao, Liangyuan
    Ji, Heng
    He, Xiaoxia
    Pei, Yue
    Zhao, Junxue
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2025, 56 (01): : 197 - 211
  • [33] Impact of hydrogen fuel for CO2 emission reduction in power generation sector in Japan
    Parnbudi, Nugroho Agung
    Itaoka, Kenshi
    Kurosawa, Atsushi
    Yamakawa, Natsuki
    8TH INTERNATIONAL CONFERENCE ON APPLIED ENERGY (ICAE2016), 2017, 105 : 3075 - 3082
  • [34] In-situ CO2 utilization for dual production of hydrogen-rich gas and syngas via sorption-enhanced steam methane reforming chemical looping
    Hemsap, Napasrapee
    Wongsakulphasatch, Suwimol
    Yong, Nararat
    Maneeprakorn, Weerakanya
    Tongnan, Vut
    Assabumrungrat, Suttichai
    Hinrichsen, Olaf
    CHEMICAL ENGINEERING JOURNAL, 2025, 509
  • [35] Hydrogen-Rich Gas Production by Sorption Enhanced Steam Reforming of Woodgas Containing TAR over a Commercial Ni Catalyst and Calcined Dolomite as CO2 Sorbent
    Sisinni, Mario
    Di Carlo, Andrea
    Bocci, Enrico
    Micangeli, Andrea
    Naso, Vincenzo
    ENERGIES, 2013, 6 (07) : 3167 - 3181
  • [36] Numerical Simulation of Hydrogen-Rich Fuel (Biomass, Coke Oven Gas) and Coal Co-Combustion in the Raceway of Blast Furnace
    Bae, Yoon-Ho
    Oh, Han Sang
    Kim, Gaeon
    Kwon, Jae Hong
    Lee, Yubin
    Cho, Junhee
    Lee, Juwon
    Park, Joonbeom
    Lee, Jong Hyup
    Kim, Gyosoon
    Kim, Taihyun
    Kim, Tae-Yoon
    JOURNAL OF SUSTAINABLE METALLURGY, 2025, 11 (01) : 264 - 277
  • [37] Autothermal Reforming of Volatile Organic Compounds to Hydrogen-Rich Gas
    Bian, Chao
    Huang, Jiazhun
    Zhong, Biqi
    Zheng, Zefeng
    Dang, Dai
    Okafor, Obiefuna C.
    Liu, Yujia
    Wang, Tiejun
    MOLECULES, 2023, 28 (02):
  • [38] Gas Hydrate Process for Recovery of CO2 from Fuel Gas
    Kang, Seong-Pil
    Seo, Yutaek
    Jang, Wonho
    Seo, Yongwon
    ICHEAP-9: 9TH INTERNATIONAL CONFERENCE ON CHEMICAL AND PROCESS ENGINEERING, PTS 1-3, 2009, 17 : 1449 - +
  • [39] Performance and emissions of a supercharged dual-fuel engine fueled by hydrogen-rich coke oven gas
    Roy, Murari Mohon
    Tomita, Eiji
    Kawahara, Nobuyuki
    Harada, Yuji
    Sakane, Atsushi
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2009, 34 (23) : 9628 - 9638
  • [40] Structured catalysts for the conversion of liquefied petroleum gas to hydrogen-rich gas and for anode off-gas afterburning
    Rogozhnikov, V. N.
    Potemkin, D. I.
    Pakharukova, V. P.
    Belyaev, V. D.
    Nedolivko, V. V.
    Glotov, A. P.
    Sobyanin, V. A.
    Snytnikov, P. V.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (72) : 35853 - 35865