Acid gas removal in geothermal power plant in Iceland

被引:3
|
作者
Berstad, David [1 ]
Nord, Lars O. [2 ]
机构
[1] SINTEF Energy Res, Trondheim, Norway
[2] Norwegian Univ Sci & Technol, Dept Energy & Proc Engn, N-7034 Trondheim, Norway
关键词
CO2; capture; H2S removal; Cryogenic separation; Amine absorption; Process simulation;
D O I
10.1016/j.egypro.2016.01.004
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A large part of the energy covering the electricity and heating demands in Iceland is generated in geothermal power plants. The Hellisheidi power plant, designed for 300 MWe and 133 MWth, is located in close proximity to Reykjavik. The concept of the plant is to co-generate power for energy-intensive industry and hot water for district heating. The steam at Hellisheidi is not pure H2O, but also contains H2S, CO2, H-2, N-2, and CH4. These gases have, for the most part, been emitted to the atmosphere after separation from the steam. New, emerging environmental regulations in Iceland will limit the emission of H2S. Additionally, the long-term goal is to decrease CO2 emissions. Therefore, separation of CO2 and H2S from the non-condensable gases in the steam will be necessary, followed by some measure to store these. In this work, four different acid gas capture systems were selected and subsequently modelled and simulated: water absorption, amine absorption with MDEA, amine/low temperature hybrid concept, and stand-alone low-temperature separation. For co-removal of H2S and CO2, low-temperature separation seems to be an attractive alternative to the conventional water absorption process due to the low power penalty. (C) 2015 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:32 / 40
页数:9
相关论文
共 50 条
  • [1] Energy Optimization and Gas Removal Selection of Geothermal Power Plant
    Sinaga, R. Horas Manahan
    Darmanto, Prihadi Setyo
    Trirakhmadi, Andy
    [J]. PROCEEDINGS OF 2017 INTERNATIONAL CONFERENCE ON SUSTAINABLE ENERGY ENGINEERING AND APPLICATION (ICSEEA), 2017, : 25 - 33
  • [2] Geothermal power in Iceland
    Gunnarsson, A
    [J]. 2002 IEEE POWER ENGINEERING SOCIETY SUMMER MEETING, VOLS 1-3, CONFERENCE PROCEEDINGS, 2002, : 6 - 6
  • [3] Life cycle assessment of the Theistareykir geothermal power plant in Iceland
    Kjeld, Alexandra
    Bjarnadottir, Helga Johanna
    Olafsdottir, Ragnheidur
    [J]. GEOTHERMICS, 2022, 105
  • [4] Life cycle assessment of the Theistareykir geothermal power plant in Iceland
    Kjeld, Alexandra
    Bjarnadottir, Helga Johanna
    Olafsdottir, Ragnheiður
    [J]. Geothermics, 2022, 105
  • [5] Sulfur gas emissions from geothermal power plants in Iceland
    Kristmannsdóttir, H
    Sigurgeirsson, M
    Armannsson, H
    Hjartarson, H
    Olafsson, M
    [J]. GEOTHERMICS, 2000, 29 (4-5) : 525 - 538
  • [6] Optimization of an integrated gas turbine geothermal power plant
    Bidini, G
    Desideri, U
    Di Maria, F
    Baldacci, A
    Papale, R
    Sabatelli, F
    [J]. ENERGY CONVERSION AND MANAGEMENT, 1998, 39 (16-18) : 1945 - 1956
  • [7] CFD Analysis of Nozzle Exit Position Effect in Ejector Gas Removal System in Geothermal Power Plant
    Nugroho, Setyo
    Citrahardhani, Ciptananda
    [J]. EMITTER-INTERNATIONAL JOURNAL OF ENGINEERING TECHNOLOGY, 2015, 3 (01) : 68 - 80
  • [8] Life cycle inventory of a flash geothermal combined heat and power plant located in Iceland
    Marta Rós Karlsdóttir
    Ólafur Pétur Pálsson
    Halldór Pálsson
    Larisa Maya-Drysdale
    [J]. The International Journal of Life Cycle Assessment, 2015, 20 : 503 - 519
  • [9] Life cycle inventory of a flash geothermal combined heat and power plant located in Iceland
    Karlsdottir, Marta Ros
    Palsson, Olafur Petur
    Palsson, Halldor
    Maya-Drysdale, Larisa
    [J]. INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2015, 20 (04): : 503 - 519
  • [10] Gas chemistry of the Krafla Geothermal Field, Iceland
    Arnorsson, S
    Fridriksson, T
    Gunnarsson, I
    [J]. WATER-ROCK INTERACTION, 1998, : 613 - 616