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IDTechEx Forecasts the Global Blue Hydrogen Market to Reach US$34 Billion by 2033
In the new report, "Blue Hydrogen Production and Markets 2023-2033: Technologies, Forecasts, Players", IDTechEx forecasts that the global blue hydrogen market will grow to reach US$34 billion by 2033, driven by demand from these hard-to-abate sectors. Future blue hydrogen demand will be mainly driven by industrial clusters, encompassing many industries in one area, refining, ammonia, and methanol. Other applications, such as steel production and mobility, will also begin to emerge. IDTechEx expects that the majority of blue hydrogen capacity installations will come from Europe , particularly from countries like the UK that want to decarbonize their large industrial clusters with blue hydrogen and CCUS. Significant growth will also come from North America , mainly due to an increase in the pace of development in the US driven by the Inflation Reduction Act and the development of many large-scale projects.
There are different routes to producing blue hydrogen, each with their own benefits and drawbacks. Below is a brief outline of these processes.
Steam-methane reforming (SMR) creates grey hydrogen and is today's most developed and widely used hydrogen production process. Coal gasification produces black/brown hydrogen and is particularly popular in China , which has some of the world's greatest reserves of coal. There is a significant business and technological development opportunity in retrofitting existing SMR and coal gasification plants through carbon capture to produce blue hydrogen. The report discusses the pre- and post-combustion capture technologies that can be used for retrofitting, an example of the latter being the industry-standard amine scrubbing process.
SMR is an energy-intensive process emitting considerable amounts of CO . Various technologies and materials, such as heat-integrated pre-reformers and structured catalysts, have been developed to improve this process. However, other hydrogen processes, namely partial oxidation (POX) and autothermal reforming (ATR) may be more attractive for greenfield hydrogen projects due to their higher energy efficiencies and easier integration with carbon capture. IDTechEx believes that the self-heating ATR process will be the main process option for large-scale greenfield projects due to its many advantages over SMR, while POX may be more useful in converting low-value waste products from refineries to blue hydrogen. The comparisons between these processes were considered when forecasting the blue hydrogen capacity up to 2033.
Methane pyrolysis is an emerging process that creates turquoise hydrogen and solid carbon compounds, usually in the form of carbon black. While major process and technology developers like Air Liquide and Topsoe dominate conventional processes, the methane pyrolysis field is dominated by start-ups and smaller-to-medium enterprises (SMEs), some of which are rapidly commercializing their solutions. Pyrolysis processes can be subdivided into several categories, but plasma pyrolysis stands out as the most advanced and promising technology.
The report also identifies and describes novel thermochemical and biomass-based processes for blue hydrogen production. Although IDTechEx predicts that these processes will not account for a substantial portion of future production, their assessment is still valuable because it provides insight into the technologies that could further innovate blue hydrogen production.
As previously mentioned, there are various methods for producing blue hydrogen, each with its own set of benefits and drawbacks. The new IDTechEx report, "Blue Hydrogen Production and Markets 2023-2033: Technologies, Forecasts, Players", evaluates these different blue hydrogen processes, as well as their supply chains, key players, materials, major innovations, and projects. It compares the six main blue hydrogen technologies and determines which will be the most successful and promising for the blue hydrogen sector. IDTechEx also provides 10-year market predictions for those technologies, as well as seven application sectors and three adoption regions. The research also investigates relevant carbon capture, utilization, and storage (CCUS) methods for blue hydrogen generation and considers the more general prospects and challenges of blue hydrogen production.
To find out more about this IDTechEx report, including downloadable sample pages, please visit www.IDTechEx.com/BlueHydrogen.
IDTechEx guides your strategic business decisions through its Research, Subscription and Consultancy products, helping you profit from emerging technologies. For more information, contact research@IDTechEx.com or visit www.IDTechEx.com.
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Lucy Rogers
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