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Incorporation of Carbon Capture Techniques in Industrial Processes: Challenges and Growth Opportunities

Publisher Frost & Sullivan
Published Nov 18, 2025
Length 47 Pages
SKU # MC20580743

Description

This study presents a comprehensive analysis of advanced carbon capture technologies as key enablers of industrial decarbonization in achieving global net-zero goals. It explores the integration of pre-combustion, post-combustion, and oxy-fuel pathways—each employing distinct sub-methods such as chemical looping, gas–liquid absorption, adsorption, membrane separation, cryogenic distillation, and calcium looping—to capture CO? emissions from hard-to-abate sectors, including cement, steel, power, and refining.

This study covers the following:
• A comparative analysis of the core-carbon capture pathways by evaluating relevant technical and process parameters such as energy requirement, capture efficiency, system modularity, industrial integration, cost drivers, scalability, and retrofit potential across hard-to-abate sectors.
• An in-depth examination of the innovation ecosystem, profiling major technology providers, commercial project developers, policymakers, and collaborative industry partnerships, alongside the latest academic advancements, evolving patent landscape, and funding initiatives that are collectively driving the commercialization and industrial adoption of carbon capture and storage technologies worldwide.

Table of Contents

47 Pages
    • Why Is It Increasingly Difficult to Grow?
    • The Strategic Imperative 8
    • The Impact of the Top 3 Strategic Imperatives on Carbon Capture Techniques in Industrial Processes
    • Growth Opportunities Fuel the Growth Pipeline Engine ne
    • Research Methodology
    • Scope of Analysis
    • Segmentation
    • Growth Drivers
    • Growth Restraints
    • Understanding Carbon Capture Technologies
    • Industrial CO2 Capture Methods-Value Chain
    • Pre-Combustion Capture Provides Lower Energy Penalties at High Pressure for Cleaner Fuel Production
    • Steam Methane Reforming Maximizes Hydrogen Yield with Incorporated Carbon Capture; Gas-Liquid Absorption Drives Efficient CO2 Capture Through Targeted Solvent Interaction
    • Gas-Liquid Absorption: Chemical Absorption Technologies are Preferred over Physical Absorption for Carbon Capture
    • Chemical Looping Enables Efficient CO2 Capture Through Solid Oxygen Carriers; Autothermal Reforming Enhances Hydrogen Yield with Self-Sustaining Heat Integration
    • Post-Combustion Capture Enables Cost-Effective Retrofits and Modular Deployment in Existing Power Plants
    • Adsorption Offers High CO2 Selectivity with Regenerable Solid Sorbents; Membrane Separation Enables Compact, Modular, and Chemical-Free CO2 Capture Solutions
    • Cryogenic Distillation Achieves Ultra-High Purity CO2 Through Low- Temperature Separation; Calcium Looping Enables Efficient CO2 Capture with Recyclable Sorbents and Low Energy Demand
    • Oxy-Fuel Combustion Enables Nearly 100% CO2 Capture, Eliminating NOx Emissions
    • Comparative Pathway Analysis for Carbon Capture Methods
    • Qualitative Analysis of Various Carbon Capture Methods
    • Shell plc Leads Commercialization Efforts in the Global Carbon Capture Landscape
    • Saipem Catalyzes Industrial Decarbonization by Delivering Carbon Capture at Scale
    • Other Key Stakeholders in the Industrial Carbon Capture Space
    • China Leads IP Activity in the Industrial Carbon Capture Domain
    • Funding Initiatives by Global Stakeholders
    • Growth Opportunity 1: Scaling Industrial Carbon Capture for Hardto- Abate Sectors
    • Growth Opportunity 2: Developing Carbon Capture Hubs and Shared CO2 Infrastructure
    • Growth Opportunity 3: Accelerating CO2 Utilization into Fuels, Chemicals, and Materials
    • Benefits and Impacts of Growth Opportunities
    • Next Steps
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