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1. | EXECUTIVE SUMMARY |
1.1. | Introduction to gas separation membranes |
1.2. | Key developments in the gas separation market |
1.3. | Opportunity for gas separation membranes in energy and decarbonization applications |
1.4. | Material overview for gas separation membranes |
1.5. | Main gas separation polymer membrane manufacturers |
1.6. | Commercial status of emerging materials |
1.7. | Application overview for gas separation membranes |
1.8. | Biogas upgrading presents a large opportunity |
1.9. | CCS membrane summary |
1.10. | Potential roles of gas separation membranes in the hydrogen economy |
1.11. | Gas Separation Membrane Market Forecast: Energy and Carbon Capture |
1.12. | Company Profiles |
2. | INTRODUCTION |
2.1. | Understanding the key developments in the gas separation market |
2.2. | Overview |
2.3. | Membranes: Operating principles |
2.4. | Why use membranes for gas separation |
2.5. | Understanding a Robeson plot |
2.6. | Polymeric membrane module design |
2.7. | Material developments for next-generation membranes |
2.8. | Polymeric-based membranes for gas separation: Overview |
2.9. | Ceramic-based membranes for gas separation: Overview |
2.10. | Metallic-based membranes for gas separation: Overview |
2.11. | Composite membranes for gas separation: Overview |
3. | GAS SEPARATION MEMBRANE MANUFACTURERS |
3.1. | History of gas separation membranes |
3.2. | Air Liquide |
3.3. | Air Products |
3.4. | Honeywell UOP |
3.5. | UBE |
3.6. | Evonik |
3.7. | SLB |
3.8. | BORSIG |
3.9. | MTR |
3.10. | AIRRANE |
3.11. | Main gas separation polymer membrane manufacturers |
4. | RENEWABLE NATURAL GAS (UPGRADING BIOGAS): CO2/CH4 |
4.1. | Key biomethane/RNG market developments |
4.2. | Renewable Natural Gas: Membrane Outlook |
4.3. | Biomethane: Overview |
4.4. | The biomethane market |
4.5. | Biomethane: Main plant players |
4.6. | Main membrane players in biogas upgrading |
4.7. | Upgrading biogas: Overview |
4.8. | Upgrading strategy: Size and feedstock matters |
4.9. | Major biogas upgrading projects using membranes |
4.10. | Membrane separation and cryogenic distillation |
4.11. | Membrane properties for biogas upgrading |
4.12. | Mixed Matrix Membranes (MMM): CO2/CH4 |
4.13. | Thermally rearranged polymer membranes |
4.14. | CMS membranes: CO2/CH4 |
4.15. | Porous carbon fiber for CO2/CH4 |
4.16. | 3-stage membrane for biogas upgrading |
4.17. | Polymer membrane start-ups for biogas upgrading |
4.18. | Key competitive commercial developments for biogas upgrading |
4.19. | Key competitive commercial developments for biogas upgrading: MOFs |
4.20. | Key competitive commercial developments for biogas upgrading: ZIFs |
5. | CCUS AND HYDROGEN |
5.1. | Carbon Capture Utilisation and Storage Overview |
5.1.1. | What is Carbon Capture, Utilization and Storage (CCUS)? |
5.1.2. | Why CCUS and why now? |
5.1.3. | The CCUS value chain |
5.1.4. | Main CO₂ capture systems |
5.1.5. | Carbon capture: Technology summary |
5.1.6. | The momentum behind CCUS is building up |
5.1.7. | Trends in CO₂ capture sources |
5.1.8. | Outlook for CCUS by CO₂ source sector |
5.1.9. | Mixed performance from deployed CCUS projects |
5.1.10. | Main CO₂ capture technologies |
5.1.11. | Comparison of CO₂ capture technologies |
5.1.12. | CO₂ capture: Technological gaps |
5.1.13. | Metrics for CO₂ capture agents |
5.1.14. | 99% capture rate: Suitability of different PSCC technologies |
5.1.15. | CCS membrane summary |
5.1.16. | Membrane-based CO₂ separation |
5.2. | Post-Combustion Carbon Capture: CO2/N2 |
5.2.1. | Post-combustion CO₂ capture |
5.2.2. | Post-combustion CCS membrane targets |
5.2.3. | The challenges facing membranes for post-combustion carbon capture |
5.2.4. | Air Liquide hybrid technology for CCUS: Overview |
5.2.5. | Air Liquide hybrid technology for CCUS: Post-combustion |
5.2.6. | Post-combustion carbon capture: Lotte Chemical |
5.2.7. | Thin-film composite membranes |
5.2.8. | Thin-film composite membranes: Challenges |
5.2.9. | MTR: Post-combustion carbon capture |
5.2.10. | MTR: CCUS Progression |
5.2.11. | Hereon: TFCM for carbon capture |
5.2.12. | FSC membranes: Post-combustion carbon capture overview |
5.2.13. | FSC membranes - commercial developments |
5.2.14. | FSC membranes - research advancements |
5.2.15. | EU MEMBER project for CCUS |
5.2.16. | Post-combustion capture: Dual-phase membranes |
5.2.17. | Gas-liquid membrane contactor development for CCUS |
5.2.18. | Membrane contactor development for CCUS |
5.2.19. | Membrane-sorption hybrid system for CCUS |
5.3. | Pre-combustion carbon capture |
5.3.1. | Pre-combustion CO₂ capture- introduction |
5.3.2. | Challenges for membranes with syngas separation |
5.3.3. | Opportunity in IGCC plants for gas separation membranes: TFC |
5.3.4. | Opportunity in IGCC plants for gas separation membranes: PBI |
5.3.5. | Opportunity in IGCC plants for gas separation membranes: Metals and Ceramics |
5.4. | Hydrogen |
5.4.1. | Hydrogen separation membranes: application overview |
5.4.2. | Polymer membrane developments for hydrogen separation |
5.4.3. | Polymer membrane developments for hydrogen separation (2) |
5.4.4. | CMS membranes for hydrogen separation |
5.4.5. | MMM developments for hydrogen separation |
5.4.6. | Blue hydrogen production |
5.4.7. | Hydrogen carriers |
5.4.8. | Deblending hydrogen |
5.5. | Oxygen-separation |
5.5.1. | Oxy-fuel combustion CO₂ capture |
5.5.2. | Oxygen separation: membranes for oxy-fuel combustion |
5.5.3. | Oxygen separation: membranes for oxy-fuel combustion |
5.5.4. | Oxygen separation: membranes for CO2 utilisation |
5.6. | Natural Gas Processing and EOR |
5.6.1. | Membranes for NG processing and EOR |
5.6.2. | Challenges for membranes in natural gas processing |
5.6.3. | Overview of major gas processing with CCS projects |
5.6.4. | Overview of major gas processing with CCS projects (2) |
5.6.5. | What is CO₂ Enhanced oil recovery (EOR)? |
5.6.6. | Global status of CO₂-EOR: US dominates but other regions arise |
5.6.7. | Operational anthropogenic CO₂-EOR facilities worldwide |
5.6.8. | CO₂-EOR potential |
5.6.9. | CO₂-EOR main players in the US |
5.6.10. | CO₂-EOR main players in North America |
5.6.11. | CO₂-EOR in China |
5.6.12. | Honeywell: Membranes for NG processing and EOR |
5.6.13. | SLB: Membranes for NG processing and EOR |
5.6.14. | Key membrane players for NG processing |
5.6.15. | Membranes for Enhanced Oil Recover (EOR) |
6. | HELIUM SEPARATION |
6.1. | Helium market: Overview |
6.2. | Helium separation and purification membranes: Overview |
6.3. | Helium separation: Main Players |
6.4. | Helium purification: North American Helium |
6.5. | Helium purification: Gazprom |
6.6. | Helium purification: Commercial activity |
6.7. | Helium recovery: Fiber Optic and Leak Detection |
6.8. | Helium recovery: Diving |
7. | MARKET FORECASTS AND OUTLOOK |
7.1. | Application Overview |
7.2. | Gas Separation Membrane Market Forecast: Energy and Carbon Capture |
7.3. | Gas Separation Membrane Market Discussion: Energy and Carbon Capture |
7.4. | Gas Separation Membrane Market Forecast: Energy and Carbon Capture |
슬라이드 | 190 |
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