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市場調查報告書
商品編碼
1866718
PSA氫氣精煉:全球市佔率及排名、總收入及需求預測(2025-2031年)PSA Hydrogen Purification - Global Market Share and Ranking, Overall Sales and Demand Forecast 2025-2031 |
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2024 年全球 PSA 氫氣精煉市場規模估計為 6.76 億美元,預計到 2031 年將達到 11.62 億美元,在預測期(2025-2031 年)內以 8.4% 的複合年成長率成長。
氫氣變壓式吸附(H2PSA) 是一種利用氫氣的揮發性和其對沸石的非極性/低親和性來淨化受污染氣流的製程。氫氣生產過程通常會產生污染物和副產物,這些物質必須被移除,本報告將重點放在解決這些問題的方法。
全球PSA氫氣生產市場的主要企業包括UOP(Honeywell)、林德、SWRDICI、液化空氣集團、空氣產品公司、PKU Pioneer、Ally Hi-Tech、Caloric和Quadrogen。前五大公司佔了約66%的市場佔有率,市場集中度相對較高。按銷售區域分類,北美、歐洲和亞太地區佔據了大部分市場佔有率。依產品類型分類,PSA氫氣市場分為石化燃料衍生原料氣及廢氣衍生原料氣,其中石化燃料衍生原料氣約佔52%,廢氣衍生原料氣約佔48%。按應用領域分類,化學加工和製造業佔據主導地位,約佔市場佔有率的70%。
PSA氫氣市場的主要促進因素包括:
1. 全球能源轉型和碳中和目標正在推動氫能需求激增。
加速清潔能源轉型:全球已有超過 130 個國家設定了碳中和目標,因此,在交通、工業和發電等領域,對氫這種零碳燃料的需求正在激增。
工業脫碳壓力:鋼鐵、化工、煉油等產業正面臨嚴格的碳排放限制。 PSA製氫技術能夠有效率地從工業產品氣(如氯鹼化工煙氣和煉廠氣)中回收氫氣,幫助企業實現循環經濟和碳減排目標。
燃料電池汽車的普及:全球燃料電池汽車銷售持續成長(預計到2025年將超過50萬輛),帶動了對高純度氫氣的需求。成本低廉、反應迅速的變壓吸附(PSA)氫氣生產技術已成為主要的氫氣供應方式。 2. 技術進步和成本最佳化將增強PSA氫氣生產技術的競爭力。
吸附劑創新:新型多孔材料(如金屬有機框架(MOF)和共用有機框架(COF))顯著提高了吸附容量和選擇性,從而降低了消費量並提高了氫氣純度(高達 99.999%)。
智慧流程改善:人工智慧演算法與物聯網技術的結合,實現了吸附塔的動態切換和精確的壓力控制,縮短了循環時間(從 10 分鐘到 5 分鐘),並將生產能力提高了 30% 以上。
模組化和緊湊型設計:PSA 系統正在發展成為分散式和移動式系統(例如貨櫃單元),可適應加氫站和工業場所,從而降低初始投資和營運成本。
3. 透過政策支持與產業鏈合作拓展市場
政府補貼與標準制定:中國《氫能產業中長期發展計畫(2021-2035年)》將變壓吸附(PSA)氫氣製造成關鍵技術,為特定工業產品的氫氣回收計劃提供30%的設備成本補貼。歐盟《可再生能源指令II》要求工業氫氣中必須包含可再生氫,促進了PSA技術的進步。加速產業鏈整合:上游吸附劑生產商(如BASF和Honeywell)正與下游設備生產商(如林德和空氣產品公司)合作開發客製化解決方案,縮短技術的採用週期。
新興市場成長:隨著印度和東南亞等國家鋼鐵和化工產能的擴張,PSA氫氣生產技術因其成本效益(比水電電解便宜40%)而成為首選技術。預計到2030年,新興市場將佔據35%的市場。
PSA氫氣市場受到能源轉型需求快速成長、技術進步和成本最佳化、政策支援和產業鏈整合的推動,其中工業產品專用氫氣和分散式氫氣生產是關鍵促進因素。
本報告旨在對全球 PSA 氫氣市場進行全面分析,重點關注總收入、市場佔有率和主要企業的排名,並按地區/國家、類型和應用分析 PSA 氫氣市場。
本報告以銷售收入為指標,對PSA制氫市場規模、估算和預測進行了呈現,以2024年為基準年,並涵蓋了2020年至2031年的歷史數據和預測數據。定量和定性分析將幫助讀者制定PSA制氫業務和成長策略,評估市場競爭,分析自身在當前市場中的地位,並做出明智的商業決策。
市場區隔
公司
按類型分類的細分市場
應用領域
按地區
The global market for PSA Hydrogen Purification was estimated to be worth US$ 676 million in 2024 and is forecast to a readjusted size of US$ 1162 million by 2031 with a CAGR of 8.4% during the forecast period 2025-2031.
Hydrogen pressure swing adsorption (H2PSA) is a process that capitalizes on the volatility of hydrogen and its overall lack of polarity and affinity for zeolites to purify contaminated gas streams. Hydrogen generation typically involves the production of contaminants or side products that need to be removed. This report will focus on the solution.
Major companies in global PSA Hydrogen Purification include UOP (Honeywell), Linde, SWRDICI, Air Liquide, Air Product, PKU PIONEER, Ally Hi-Tech, CALORIC, Quadrogen and so on. The global top five companies occupy the market share of about 66%, with a relatively concentrated market. From the sales side, North America, Europe and Asia Pacific occupy the majority of the market. In terms of its product type, the PSA hydrogen purification market can be segmented into feed gas from fossil fuels and feed gas from waste gases, feedstock gas from fossil fuels accounts for about 52% and feedstock gas from waste gas accounts for about 48%. In terms of its application, chemical processing and production occupies a significant position with a share of about 70%.
The PSA hydrogen extraction market is primarily driven by the following factors:
1. Global energy transition and carbon neutrality goals are driving a surge in hydrogen demand.
Accelerating clean energy transition: With over 130 countries worldwide adopting carbon neutrality goals, demand for hydrogen as a zero-carbon fuel is exploding in transportation, industry, power generation, and other sectors.
Industrial decarbonization pressure: Industries such as steel, chemicals, and oil refining face stringent carbon emission limits. PSA hydrogen extraction technology can efficiently recover hydrogen from industrial by-product gases (such as chlor-alkali chemical exhaust and refinery gas), helping companies achieve circular economy and carbon reduction goals.
Fuel cell vehicle adoption: Global fuel cell vehicle sales continue to grow (expected to exceed 500,000 units in 2025), driving demand for high-purity hydrogen. PSA hydrogen extraction technology, with its low cost and rapid response, has become a key hydrogen supply method. 2. Technological advancement and cost optimization enhance the competitiveness of PSA hydrogen production.
Adsorption material innovation: New porous materials (such as metal-organic frameworks (MOFs) and covalent organic frameworks (COFs)) significantly improve adsorption capacity and selectivity, reduce energy consumption, and increase hydrogen purity (up to 99.999%).
Intelligent process upgrades: Combining AI algorithms with IoT technology enables dynamic switching of adsorption towers and precise pressure control, shortening cycle times (from the traditional 10 minutes to 5 minutes) and increasing production capacity by over 30%.
Modular and miniaturized design: PSA systems are evolving towards distributed and mobile systems (such as containerized units), adapting to hydrogen refueling stations and industrial sites, reducing initial investment and operating costs.
3. Policy support and industry chain collaboration drive market expansion.
Government subsidies and standard development: China's "Medium- and Long-Term Plan for the Development of the Hydrogen Energy Industry (2021-2035)" lists PSA hydrogen production as a key technology and provides a 30% equipment subsidy for industrial by-product hydrogen recovery projects. The EU's "Renewable Energy Directive II" mandates a renewable hydrogen content in industrial hydrogen, forcing PSA technology upgrades. Accelerating industry chain integration: Upstream adsorption material companies (such as BASF and Honeywell) are collaborating with downstream equipment manufacturers (such as Linde and Air Products) to develop customized solutions, shortening technology implementation cycles.
Emerging market growth: With steel and chemical production capacity expanding in regions like India and Southeast Asia, PSA hydrogen production has become the preferred technology due to its cost-effectiveness (40% lower than hydrogen production by water electrolysis). Emerging markets are expected to account for 35% of the market share by 2030.
The PSA hydrogen production market is driven by a surge in energy transition demand, technological advancements and cost optimization, and policy support and industry chain collaboration. Industrial by-product hydrogen recovery and distributed hydrogen production will be key growth drivers.
This report aims to provide a comprehensive presentation of the global market for PSA Hydrogen Purification, focusing on the total sales revenue, key companies market share and ranking, together with an analysis of PSA Hydrogen Purification by region & country, by Type, and by Application.
The PSA Hydrogen Purification market size, estimations, and forecasts are provided in terms of sales revenue ($ millions), considering 2024 as the base year, with history and forecast data for the period from 2020 to 2031. With both quantitative and qualitative analysis, to help readers develop business/growth strategies, assess the market competitive situation, analyze their position in the current marketplace, and make informed business decisions regarding PSA Hydrogen Purification.
Market Segmentation
By Company
Segment by Type
Segment by Application
By Region
Chapter Outline
Chapter 1: Introduces the report scope of the report, global total market size. This chapter also provides the market dynamics, latest developments of the market, the driving factors and restrictive factors of the market, the challenges and risks faced by manufacturers in the industry, and the analysis of relevant policies in the industry.
Chapter 2: Detailed analysis of PSA Hydrogen Purification company competitive landscape, revenue market share, latest development plan, merger, and acquisition information, etc.
Chapter 3: Provides the analysis of various market segments by Type, covering the market size and development potential of each market segment, to help readers find the blue ocean market in different market segments.
Chapter 4: Provides the analysis of various market segments by Application, covering the market size and development potential of each market segment, to help readers find the blue ocean market in different downstream markets.
Chapter 5: Revenue of PSA Hydrogen Purification in regional level. It provides a quantitative analysis of the market size and development potential of each region and introduces the market development, future development prospects, market space, and market size of each country in the world.
Chapter 6: Revenue of PSA Hydrogen Purification in country level. It provides sigmate data by Type, and by Application for each country/region.
Chapter 7: Provides profiles of key players, introducing the basic situation of the main companies in the market in detail, including product revenue, gross margin, product introduction, recent development, etc.
Chapter 8: Analysis of industrial chain, including the upstream and downstream of the industry.
Chapter 9: Conclusion.