PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
October 10, 2025Processes2 citationsOpen Access

Towards Carbon-Neutral Hydrogen: Integrating Methane Pyrolysis with Geothermal Energy

View Full Paper
ATAyann TiamMWMarshall WatsonTGTalal Gamadi

Key Points

  • The hybrid geothermal pyrolysis configuration improves hydrogen yields and reduces CO2 emissions, increasing sustainability.
  • Key factors influencing the economics of hydrogen production include electrical duty, carbon intensity of power, and the price of carbon co-products.
  • The study assesses scalability through advanced reactor design and thermal management to optimize the pyrolysis process.
  • Maintaining carbon quality and optimizing heat integration may accelerate the deployment of this low-carbon hydrogen pathway.

Abstract

Methane pyrolysis produces hydrogen (H2) with solid carbon black as a co-product, eliminating direct CO2 emissions and enabling a low-carbon supply when combined with renewable or low-carbon heat sources. In this study, we propose a hybrid geothermal pyrolysis configuration in which an enhanced geothermal system (EGS) provides base-load preheating and isothermal holding, while either electrical or solar–thermal input supplies the final temperature rise to the catalytic set-point. The work addresses four main objectives: (i) integrating field-scale geothermal operating envelopes to define heat-integration targets and duty splits; (ii) assessing scalability through high-pressure reactor design, thermal management, and carbon separation strategies that preserve co-product value; (iii) developing a techno-economic analysis (TEA) framework that lists CAPEX and OPEX, incorporates carbon pricing and credits, and evaluates dual-product economics for hydrogen and carbon black; and (iv) reorganizing state-of-the-art advances chronologically, linking molten media demonstrations, catalyst development, and integration studies. The process synthesis shows that allocating geothermal heat to the largest heat-capacity streams (feed, recycle, and melt/salt hold) reduces electric top-up demand and stabilizes reactor operation, thereby mitigating coking, sintering, and broad particle size distributions. High-pressure operation improves the hydrogen yield and equipment compactness, but it also requires corrosion-resistant materials and careful thermal-stress management. The TEA indicates that the levelized cost of hydrogen is primarily influenced by two factors: (a) electric duty and the carbon intensity of power, and (b) the achievable price and specifications of the carbon co-product. Secondary drivers include the methane price, geothermal capacity factor, and overall conversion and selectivity. Overall, geothermal-assisted methane pyrolysis emerges as a practical pathway to turquoise hydrogen, if the carbon quality is maintained and heat integration is optimized. The study offers design principles and reporting guidelines intended to accelerate pilot-scale deployment.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Tiam et al. (2025) studied this question.

synapsesocial.com/papers/68e861a57ef2f04ca37e472ahttps://doi.org/10.3390/pr13103195
Ask AI
Helpful
Bookmark
Share
View Full Paper