1887

Abstract

Summary

Impurities in CO2 streams influence the chemical reactivity in and mineral alterations of CO2 storage formations. Fluid-rock interactions have been investigated by means of reactive transport simulations using TOUGHREACT V3.0-OMG. A novel method has been established through which co-injection of SO2, NO2, O2 and H2 with temporally varying concentrations can be implemented in reactive transport model scenarios. The paper presents (i) model testing and validation against simulation results obtained by , and (ii) results acquired from 1D-radial multiphase reactive transport simulations investigating two generic Bunter Sandstone reservoir formations. Results gained applying the novel hybrid approach show that modelling-based inaccuracies have largely been eliminated and inconsistencies are minimized. For the investigated generic Bunter Sandstone reservoir formations, two major geochemical processes are apparent. While the acidifying impurities SO2 and NO2 trigger carbonate dissolution coupled to anhydrite precipitation, presence of O2 leads to dissolution of iron-rich chlorite and subsequent goethite precipitation. Absolute changes of porosity for the two generic Bunter Sandstone formations are below 1%. The total quantitative impact of SO2, NO2, O2 and H2 on mineral reactions is rather limited and their impacts on the petrophysical properties of the two investigated generic Bunter Sandstone formations are geotechnically negligible.

Loading

Article metrics loading...

/content/papers/10.3997/2214-4609.201802988
2018-11-21
2024-04-26
Loading full text...

Full text loading...

/deliver/fulltext/2214-4609/2018/Th_CO2_P07.html?itemId=/content/papers/10.3997/2214-4609.201802988&mimeType=html&fmt=ahah

References

  1. Kahlke, S.-L., Pumpa, M., Wolf, J.L., Schütz, S., Kather, A. and Rütters, H.
    [2017] Dynamics of CO2 stream composition in CCS clusters and its implications for CO2 quality specifications. TCCS-9 conference, Trondheim.
    [Google Scholar]
  2. Wolf, J.L., Niemi, A., Bensabat, J., Rebscher, D.
    [2016] Benefits and restrictions of 2D reactive transport simulations of CO2 and SO2 co-injection into a saline aquifer using TOUGHREACT V3.0-OMP. International Journal of Greenhouse Gas Control, 54, 610–626.
    [Google Scholar]
  3. Wolf, J.L.
    [2017] Methods for modelling and simulation of CO2 impurities and their reactive transport in geological storage reservoirs.–In: Wittmann, J. [Ed.]: Simulation in Umwelt- und Geowissenschaften, Workshop Berlin 2017, Shaker Verlag.
    [Google Scholar]
  4. Wolf, J.L., Fischer, S., Rütters, H. and Rebscher, D.
    [2017] Reactive transport simulations of impure CO2 injection into saline aquifers using different modelling approaches provided by TOUGHREACT V3.0-OMP, Procedia Earth Planet. Sci., 17, 480–483.
    [Google Scholar]
  5. Xu, T., Apps, J.A., Pruess, K. and Yamamoto, H.
    [2007] Numerical modeling of injection and mineral trapping of CO2 with H2S and SO2 in a sandstone formation. Chemical Geology, 242 (3–4), 319–346.
    [Google Scholar]
  6. Xu, T., Sonnenthal, E., Spycher, N. & Zheng, L.
    [2014] TOUGHREACT V3.0-OMP Reference Manual: A Parallel Simulation Program for Non-Isothermal Multiphase Geochemical Reactive Transport. LBNL-DRAFT. Lawrence Berkeley National Laboratory, University of California, Berkeley.
    [Google Scholar]
http://instance.metastore.ingenta.com/content/papers/10.3997/2214-4609.201802988
Loading
/content/papers/10.3997/2214-4609.201802988
Loading

Data & Media loading...

This is a required field
Please enter a valid email address
Approval was a Success
Invalid data
An Error Occurred
Approval was partially successful, following selected items could not be processed due to error