
Blue Hydrogen Market Size - By Application (Petroleum Refining, Chemical and Others), By Technology (SMR, ATR, Partial Oxidation), Regional Outlook & Forecast, 2024 – 2032
Description
Blue Hydrogen Market Size - By Application (Petroleum Refining, Chemical and Others), By Technology (SMR, ATR, Partial Oxidation), Regional Outlook & Forecast, 2024 – 2032
Global Blue Hydrogen Market will witness 8.5% CAGR between 2024 and 2032, driven by a surge in acquisitions and strategic deals among companies. Blue hydrogen, produced using natural gas with carbon capture and storage (CCS) technology, represents a crucial component in the transition to cleaner energy. Companies are recognizing its potential to reduce carbon emissions while maintaining the use of existing infrastructure. For instance, in July 2024, Aramco, a global leader in integrated energy and chemicals, finalized agreements to acquire a stake in the Blue Hydrogen Industrial Gases Company (BHIG), a subsidiary of Air Products Qudra (APQ).
Strategic acquisitions and partnerships are becoming more common as firms seek to expand their capabilities and market presence. These deals often involve acquiring technology, expertise, or production facilities related to blue hydrogen, enabling companies to scale up operations and enhance their competitive edge. The drive for collaboration and consolidation reflects the growing recognition of blue hydrogen's role in achieving sustainability goals and meeting energy demands. As industries and governments invest in low-carbon technologies, the Blue Hydrogen Market is poised for significant growth, supported by these strategic moves within the sector.
The overall Blue Hydrogen Industry is classified based on the application, technology, and region.
Based on application, the blue hydrogen market revenue from the chemical segment will register a commendable CAGR from 2024 to 2032. Blue hydrogen, produced from natural gas with carbon capture and storage (CCS), provides a cleaner alternative to traditional hydrogen production methods. The chemical industry relies heavily on hydrogen for various applications, including ammonia synthesis and refining processes. As sustainability becomes a priority, companies are increasingly adopting blue hydrogen to meet regulatory requirements and enhance their environmental credentials. This shift towards blue hydrogen reflects the industry’s commitment to reducing its carbon footprint and supporting the broader transition to cleaner energy.
In terms of technology, the SMR segment will witness an appreciable growth from 2024 to 2032. SMR is a widely used method for producing hydrogen from natural gas, and when combined with carbon capture and storage (CCS), it becomes a key technology for blue hydrogen production. This approach allows for a significant reduction in carbon emissions compared to traditional hydrogen production methods. As industries seek to lower their carbon footprints and comply with stringent environmental regulations, the adoption of blue hydrogen, enabled by SMR technology, is becoming increasingly attractive. The efficiency and scalability of SMR technology drive its crucial role in expanding the blue hydrogen market.
Europe blue hydrogen market will exhibit a notable CAGR from 2024 to 2032. Blue hydrogen, produced through steam methane reforming with carbon capture and storage (CCS), aligns with Europe's strategy to transition to cleaner energy sources while leveraging existing infrastructure. European countries are investing heavily in blue hydrogen projects to meet their decarbonization targets and enhance energy security. The European Union’s supportive policies and funding initiatives further drive market growth, making blue hydrogen a pivotal element in the continent's energy transition and industrial decarbonization efforts.
Table of Contents
142 Pages
- Chapter 1 Methodology & Scope
- 1.1 Research Design
- 1.2 Base estimates & calculations
- 1.3 Forecast model
- 1.4 Primary research & validation
- 1.4.1 Primary sources
- 1.4.2 Data mining sources
- 1.5 Market Definitions
- Chapter 2 Executive Summary
- 2.1 Industry 360° synopsis, 2021 – 2032
- Chapter 3 Industry Insights
- 3.1 Industry ecosystem
- 3.2 Regulatory landscape
- 3.3 Industry impact forces
- 3.3.1 Growth drivers
- 3.3.2 Industry pitfalls & challenges
- 3.4 Growth potential analysis
- 3.5 Porter's analysis
- 3.5.1 Bargaining power of suppliers
- 3.5.2 Bargaining power of buyers
- 3.5.3 Threat of new entrants
- 3.5.4 Threat of substitutes
- 3.6 PESTEL analysis
- Chapter 4 Competitive landscape, 2023
- 4.1 Introduction
- 4.2 Strategic dashboard
- 4.3 Innovation & technology landscape
- Chapter 5 Market Size and Forecast, By Application, 2021 – 2032 (USD Billion & MT)
- 5.1 Key trends
- 5.2 Petroleum Refinery
- 5.3 Chemical
- 5.4 Others
- Chapter 6 Market Size and Forecast, By Technology, 2021 – 2032 (USD Billion & MT)
- 6.1 Key trends
- 6.2 SMR
- 6.3 ATR
- 6.4 Partial Oxidation
- Chapter 7 Market Size and Forecast, By Region, 2021 – 2032 (USD Billion & MT)
- 7.1 Key trends
- 7.2 North America
- 7.2.1 U.S.
- 7.2.2 Canada
- 7.2.3 Mexico
- 7.3 Europe
- 7.3.1 Germany
- 7.3.2 France
- 7.3.3 UK
- 7.3.4 Italy
- 7.3.5 Russia
- 7.4 Asia Pacific
- 7.4.1 China
- 7.4.2 India
- 7.4.3 Japan
- 7.4.4 Australia
- 7.5 Middle East & Africa
- 7.5.1 Saudi Arabia
- 7.5.2 Oman
- 7.5.3 UAE
- 7.5.4 Kuwait
- 7.5.5 Qatar
- 7.5.6 South Africa
- 7.6 Latin America
- Chapter 8 Company Profiles
- 8.1 Air Products Inc.
- 8.2 Air Liquide
- 8.3 Bechtel Corporation
- 8.4 BP p.l.c.
- 8.5 Eni
- 8.6 Exxon Mobil Corporation
- 8.7 Equinor ASA
- 8.8 John Wood Group PLC
- 8.9 Johnson Matthey
- 8.10 MaireTecnimont Spa
- 8.11 Saipem
- 8.12 SK E&S CO.LTD.
- 8.13 Shell plc
- 8.14 Technip Energies N.V.
- 8.15 TOPSOE
- 8.16 thyssenkrupp Industrial Solutions AG
- 8.17 Woodside
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