Affiliation:
1. Metharc ApS (Corresponding author)
2. Department Chemical Engineering, University of Manchester (Corresponding author)
Abstract
Summary
There is a critical need to balance economic prosperity, energy security, and environmental protection. Instead of the conventional production of methane (or CH4), these valuable energy reserves can be exploited in a climate-beneficial way. Exploiting (not producing) methane eliminates the carbon value chain and the associated damage these greenhouse gases (GHGs) cause to the climate. When no carbon is produced to the surface, carbon capture requirements become significantly reduced, and their huge budgets are better used elsewhere.
This paper discusses the viability of a wellbore natural gas gasification process, within a downhole completion tool, that converts methane wells into hydrogen (or H2) production wells. The process-generated carbon is simultaneously captured downhole, reinjecting the carbon dioxide (or CO2) into the surrounding geology and potentially gaining reservoir enhanced oil recovery (EOR) as a bonus. The proposed process is for natural gas fields and not for use in the gasification of heavy oils (which is covered by other “combustion type” reservoir management processes performed deep within the reservoir geology).
The multiple revenue streams created by the process, together with process energy, feedstock (methane), and cost savings, make it climate-positive and financially viable. This provides a net-zero win-win that is mutually beneficial for the natural gas industry and the environment. Without enormous technical effort, competitive use of commodities, and huge capital costs, it could be possible to convert the natural gas industry directly into a hydrogen and carbon capture industry.
Publisher
Society of Petroleum Engineers (SPE)
Reference16 articles.
1. Numerical Investigation of Hydrogen Production via Autothermal Reforming of Steam and Methane over Ni/Al2O3 and Pt/Al2O3 Patterned Catalytic Layers;Cherif;Int J Hydrog Energy,2021
2. Hydrogen Production from Biomass via Supercritical Water Gasification;Demirbas;Energy Sources, Part A: Recovery, Utilization, & Env Effects,2010
3. Equinor
. 2017. Report from Based on Songa Endurance Platform, G4 Well in the Troll Field near Troll B. https://www.equinor.com/content/dam/statoil/documents/statoil-investigation-report-songa-endurance.pdf (accessed8 December 2023).
4. Hydrogen Production by Methanol Reforming in Supercritical Water: Catalysis by in-Situ-Generated Copper Nanoparticles;Gadhe;Int J Hydrog Energy,2007
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