Crust:: CO2 reuse through underground storage

被引:0
|
作者
Grootheest, W [1 ]
Dijk, JW [1 ]
Stollwerk, P [1 ]
Schreurs, H [1 ]
机构
[1] CO2 Reduct Plan Project Off, NL-8000 GB Zwolle, Netherlands
关键词
D O I
暂无
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
The Dutch government has initiated a very ambitious plan targeted towards CO2 reduction through underground storage (= CRUST). This paper emphasises the first step, namely the realisation of a demonstration project. With regard to CO2 reduction within the Netherlands, the Energy Policy of the Dutch Government is based on three tracks: saving energy, including energy efficiency measures - the introduction of renewable energy as a substitution for fossil fuels, and the introduction of the so-called Clean Fossil Fuels. It is obvious that all three tracks will be needed to achieve the Set CO2 reduction target. The use of Clean Fossil Fuels is seen as a transition to a future energy system based on sustainable energy. As changes will take time to implement, it is a fact of life that for the coming decades, fossil fuels will be our main energy source. Existing energy conversion technologies, but also new conversion technologies, provide only small possibilities for the reuse of CO2. Therefore, at this time, storage seems to be the best way (i.e. fastest, cheapest and the technology with the highest potential) of taking CO2 out of the environment. The Dutch government has decided to start an underground CO2 storage project (minimum of 3 million tons Of CO2) in the Netherlands with the potential of reusing the stored CO2. Considering the high population density and Dutch public awareness, the theme is not only to solve the technical aspects, but also to consider social aspects such as the acceptance of the storage in an urban region. After an extensive consultation with the 'stakeholders' including the oil and gas industry, industry has been asked to formulate their boundary conditions to make the demonstration feasible through a feasibility study. Fifty percent of their costs will be subsidised by the "CO2 Reduction Plan" of the Dutch government. These feasibility studies have to be finished by the end of 2002. After these studies, the investment and construction phases will be entered into as soon as possible. Depending on the type of project, realisation is anticipated between 2003 and 2005. Besides working closely together with the industries performing the feasibility studies, our activities are now in setting up a legal and financial framework for the demo. In addition, an advisory group has been formed to help with the social aspects. The participants will come from industry, so-called Non-Governmental Organisations (NGOs) and politics. A roadmap with an analysis of all safety and monitoring features has now been formulated and will be finished mid 2002. The Dutch government has asked the "CO2 Project Office" (a liaison of Novem and Senter, both governmental organisations) to help with the realisation of this demonstration project.
引用
收藏
页码:589 / 593
页数:5
相关论文
共 50 条
  • [41] Industrial sources of CO2 emissions in Poland in the light of underground storage possibilities
    Tarkowski, R
    [J]. COMPTES RENDUS GEOSCIENCE, 2005, 337 (09) : 799 - 805
  • [42] Ethical attitudes to underground CO2 storage: Points of convergence and potential faultlines
    Gough, Clair
    Boucher, Philip
    [J]. INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2013, 13 : 156 - 167
  • [43] Multicomponent gas rising through water with dissolution in stratified porous reservoirs - Application to underground storage of H2 and CO2
    Hagemann, Birger
    Panfilov, Mikhail
    Ganzer, Leonhard
    [J]. JOURNAL OF NATURAL GAS SCIENCE AND ENGINEERING, 2016, 31 : 198 - 213
  • [44] STORING EXCESS CO2 UNDERGROUND
    Ray, H. S.
    [J]. EVERYMANS SCIENCE, 2006, 41 (01): : 65 - 66
  • [45] Regulating the underground injection of CO2
    Keith, DW
    Giardina, JA
    Morgan, MG
    Wilson, EJ
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2005, 39 (24) : 499A - 505A
  • [46] Plans to drive CO2 underground
    Dorey, Emma
    [J]. CHEMISTRY & INDUSTRY, 2007, (04) : 10 - 10
  • [47] TOPS: Technology options for coupled underground coal gasification and CO2 capture and storage
    Durucan, Sevket
    Korre, Anna
    Shi, Ji-Quan
    Idiens, Matthew
    Stanczyk, Krzysztof
    Kapusta, Krzysztof
    Rogut-Dabrowska, Anna
    Kempka, Thomas
    Wolf, Karl-Heinz
    Younger, Paul
    Zavsek, Simon
    Poulsen, Niels Erik
    Bojda, Dariusz
    Franzsen, Sebastian
    Muresan, Mihai
    Gao, Jianliang
    Beath, Andrew
    Mastalerz, Maria
    [J]. 12TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, GHGT-12, 2014, 63 : 5827 - 5835
  • [48] Exergetic efficiency and CO2 intensity of hydrogen supply chain including underground storage
    Baghirov, Boyukagha
    Voskov, Denis
    Farajzadeh, Rouhi
    [J]. ENERGY CONVERSION AND MANAGEMENT-X, 2024, 24
  • [49] Investigation of Geomechanical and Rock Physics Aspects Related to Underground Storage and Monitoring of CO2
    Cerasi, P.
    Holt, R. M.
    Lavrov, A.
    Stenebraten, J. F.
    [J]. JOURNAL OF INDIAN GEOPHYSICAL UNION, 2016, : 26 - 29
  • [50] Laboratory Studies on Permeability of Coals Using Briquettes: Understanding Underground Storage of CO2
    Kudasik, Mateusz
    Skoczylas, Norbert
    Braga, Leticia Teixeira Palla
    [J]. ENERGIES, 2022, 15 (03)