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市场调查报告书
商品编码
1874441
变压式吸附(PSA)技术:全球市场份额和排名、总收入和需求预测(2025-2031 年)Pressure Swing Adsorption (PSA) Technology - Global Market Share and Ranking, Overall Sales and Demand Forecast 2025-2031 |
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2024 年全球变压式吸附(PSA) 技术市场规模估计为 12.9 亿美元,预计到 2031 年将达到 20.82 亿美元,2025 年至 2031 年的复合年增长率为 6.9%。
变压式吸附(PSA) 是一种利用气体分子特性及其对吸附剂的亲和性,在压力下从混合气体(通常为大气)中分离特定气体组分的技术。它与常用的气体分离方法——低温蒸馏——有着显着的不同,其操作温度接近常温温度。 PSA 使用选择性吸附剂(例如沸石(又称分子筛)或活性碳)作为捕集材料,在高压下优先吸附目标气体组分。然后,该过程切换到较低压力,以解吸吸附的气体。
全球变压式吸附(PSA)技术的主要企业包括林德、昊华化工科技、霍尼韦尔旗下UOP、空气产品公司和北京先锋。前五大厂商约占44%的市占率。北美市占率最大,约占33%,其次是亚太和欧洲,各占31%。依产品类型划分,氢气纯化系统是最大的细分市场,占51%的市场。按应用领域划分,石油化学工业是最大的应用领域,约占55%的市场。
变压式吸附(PSA)技术的市场驱动因素包括:
1. 技术进步与创新:性能提升、成本优化的两轮驱动
吸附剂创新
新型吸附剂(例如锂分子筛和碳分子筛)的研发显着提高了变压吸附(PSA)技术的分离效率和选择性。例如,成都亿智科技有限公司开发的LIX锂基氧气吸附剂可在低压条件下实现高纯度氧气分离,能耗降低10%至50%。这些材料的应用也延长了吸附剂的使用寿命,减少了更换频率,进一步降低了运作成本。
设备和製程优化
自动化控制:PLC自动控制系统可实现无人操作和远端监控,提高操作便利性,并降低人事费用。
高效率发电厂:客製化的脉衝离心鼓风机和真空帮浦可降低系统消费量10%-15%,并减少噪音污染。
模组化设计:设备的生产能力可根据需求灵活调整,可用于各种场景,从小型医用氧气产生器到大型工业设备。
跨领域技术集成
PSA技术与物联网和人工智慧的融合,实现了远端故障预警和智慧优化,从而提升了系统稳定性和用户体验。例如,在医疗领域,物联网可用于监测家用氧气浓缩器的状态,并及时发出设备异常预警,保障病人安全。
2. 市场需求成长:工业进步与新兴领域的扩张
传统工业部门需求稳定成长
冶金和化学工业:钢铁业对氧气的需求持续成长,因为高炉和电炉炼钢製程需要喷吹富氧碳。化学工业对氢气纯化(例如变压吸附式氢气生产技术)的需求,也因清洁能源转换的需求而不断扩大。
能源生产:随着全球对氢能的兴趣日益浓厚,以低能耗和高效率为特点的PSA製氢技术已成为从石化燃料中生产氢气和从工业产品烟气中提取氢气的首选解决方案。
新兴领域需求的快速成长
医疗健康领域:人口老化和慢性呼吸系统疾病患者数量的增加正在推动家用氧气浓缩机市场的扩张。 「健康中国2030」等政策支持进一步加速了医用PSA制氧机的普及。
环境保护与节能:PSA技术应用于废气处理(去除氧气和杂质等)和工业副产品气体回收,有助于企业向低碳社会转型,符合全球环境保护的趋势。
3. 政策支持:同步推动碳中和目标和产业奖励
推广「两碳」策略
世界各国都在实施碳中和政策(例如中国的「2030年前碳达峰行动计画」),以鼓励企业采用PSA等低碳技术。例如,由于PSA制氮技术无化学污染且能耗低,已成为钢铁、化学等产业替代传统低温空气分离装置的首选方案。
财政和税收优惠
政府透过补贴、税收减免等方式支持PSA技术的研究、开发与应用。例如,中国的氢能产业扶持政策直接促进了PSA氢气生产技术的市场应用。
行业标准和标准
严格的环境保护保护条例(例如废气排放标准)促使企业选择 PSA 技术来满足合规要求,间接推动了市场需求。
4. 成本效益优势:兼顾长期经济效益与环境保护价值
初始投资和长期收益
虽然PSA系统的初始成本较高,但其营业成本远低于传统方法。例如,由于PSA制氮机可在现场製取氮气,因此避免了运输和储存液态氮的成本,长期运作成本可望降低40%以上。
提高资源效率
变压吸附(PSA)技术能够回收工业副产品气体(例如氢气和二氧化碳),减少资源浪费。例如,西南化学研究所的「工业副产品气体变压式吸附」已应用于数百个装置,实现了高效、环保和节能的目标。
将环境效益转化为经济价值
随着碳排放交易市场的发展,采用PSA技术的企业减少的碳排放可转化为排碳权收入,进一步提高该技术的经济吸引力。
变压吸附(PSA)技术市场的成长是由技术进步、市场需求、政策支援和成本效益等因素的协同效应所驱动的。未来,随着清洁能源转型加速和环境保护要求日益严格,PSA技术将在工业气体分离、氢能产业链、医疗健康等领域发挥更重要的作用,其市场潜力也将持续释放。
本报告旨在按地区/国家、类型和应用对全球变压式吸附(PSA) 技术市场进行全面分析,重点关注总收入、市场份额和主要企业的排名。
以收益为准,以2024年为基准年,对变压式吸附(PSA)技术市场规模、估算和预测进行了阐述,并涵盖了2020年至2031年的历史数据和预测数据。定量和定性分析将帮助读者制定变压式吸附(PSA)技术的业务和成长策略,评估市场竞争,分析自身在当前市场中的地位,并做出明智的商业决策。
市场区隔
公司
按类型分類的细分市场
应用领域
按地区
The global market for Pressure Swing Adsorption (PSA) Technology was estimated to be worth US$ 1290 million in 2024 and is forecast to a readjusted size of US$ 2082 million by 2031 with a CAGR of 6.9% during the forecast period 2025-2031.
Pressure swing adsorption (PSA) is a technique used to separate some gas species from a mixture of gases (typically air) under pressure according to the species' molecular characteristics and affinity for an adsorbent material. It operates at near-ambient temperature and significantly differs from the cryogenic distillation commonly used to separate gases. Selective adsorbent materials (e.g., zeolites, (aka molecular sieves), activated carbon, etc.) are used as trapping material, preferentially adsorbing the target gas species at high pressure. The process then swings to low pressure to desorb the adsorbed gas.
Global key players of Pressure Swing Adsorption (PSA) Technology include Linde, Haohua Chemical Science & Technology, UOP (Honeywell), Air Products, PKU PIONEER, etc. The top five players hold a share about 44%. North America is the largest market, and has a share about 33%, followed by Asia-Pacific and Europe with share 31% and 31%, separately. In terms of product type, Hydrogen Purification System is the largest segment, occupied for a share of 51%. In terms of application, Petrochemical Industry is the largest field with a share about 55 percent.
The market drivers of pressure swing adsorption (PSA) technology include the following:
1. Technological progress and innovation: dual-wheel drive of performance improvement and cost optimization
Adsorption material innovation
The research and development of new adsorbents (such as lithium-based molecular sieves and carbon molecular sieves) have significantly improved the separation efficiency and selectivity of PSA technology. For example, the LIX lithium-based oxygen adsorbent developed by Chengdu Yizhi Technology can achieve high-purity oxygen separation under low pressure conditions, reducing energy consumption by 10%-50%. The application of such materials also extends the service life of the adsorbent, reduces the frequency of replacement, and further reduces operating costs.
Equipment and process optimization
Automation control: Unmanned operation and remote monitoring are achieved through the PLC automatic control system, which improves the convenience of operation and reduces labor costs.
High-efficiency power equipment: Customized pulse centrifugal blowers and vacuum pumps reduce system energy consumption by 10%-15% and reduce noise pollution.
Modular design: The equipment can flexibly adjust production capacity according to demand, adapting to multiple scenarios from small medical oxygen generators to large industrial devices.
Cross-domain technology integration
The combination of PSA technology with the Internet of Things and artificial intelligence has achieved remote fault warning and intelligent optimization operation, improving system stability and user experience. For example, in the medical field, the status of home oxygen concentrators can be monitored through the Internet of Things to timely warn of equipment abnormalities and ensure patient safety.
2. Market demand growth: industrial upgrading and expansion of emerging fields
Demand in traditional industrial fields has grown steadily
Metallurgy and chemical industry: The demand for oxygen in blast furnace oxygen-enriched coal injection and electric furnace steelmaking processes in the steel industry continues to grow; hydrogen purification in the chemical industry (such as PSA hydrogen extraction technology) has expanded its application due to the demand for clean energy transformation.
Energy production: As the world pays more attention to hydrogen energy, PSA hydrogen extraction technology has become the preferred solution for hydrogen production from fossil fuels and hydrogen extraction from industrial by-product tail gas due to its low energy consumption and high efficiency.
Demand explosion in emerging fields
Medical and health: The aging population and the increase in patients with chronic respiratory diseases have driven the expansion of the home oxygen concentrator market. Policy support (such as the "Healthy China 2030" Planning Outline) has further accelerated the popularization of medical PSA oxygen generation equipment.
Environmental protection and energy saving: The application of PSA technology in waste gas treatment (such as removing oxygen and impurities) and industrial by-product gas recovery helps enterprises achieve low-carbon transformation, which is in line with the global environmental protection trend.
3. Policy support: Carbon neutrality goals and industrial incentives in parallel
"Dual carbon" strategy promotion
Many countries around the world have introduced carbon neutrality policies (such as China's "Carbon Peak Action Plan before 2030") to encourage enterprises to adopt low-carbon technologies such as PSA. For example, PSA nitrogen production technology has become the preferred solution for steel, chemical and other industries to replace traditional deep cold air separation units due to its chemical pollution-free and low energy consumption.
Fiscal and tax incentives
The government supports the research and development and application of PSA technology through subsidies, tax exemptions and other measures. For example, China's support policy for the hydrogen energy industry has directly promoted the market promotion of PSA hydrogen extraction technology.
Industry standards and specifications
Strict environmental protection regulations (such as waste gas emission standards) have prompted companies to choose PSA technology to meet compliance requirements, indirectly promoting market demand.
4. Cost-effectiveness advantage: balance between long-term economic efficiency and environmental protection value
Initial investment and long-term benefits
Although the initial cost of PSA equipment is high, its operating cost is significantly lower than that of traditional methods. For example, PSA nitrogen generators avoid the cost of liquid nitrogen transportation and storage by producing gas on site, and the long-term use cost can be reduced by more than 40%.
Improved resource utilization efficiency
PSA technology can recycle industrial by-product gases (such as hydrogen and carbon dioxide) and reduce resource waste. For example, the "pressure swing adsorption method for recycling industrial by-product gas" of Southwest Chemical Research Institute has been applied in hundreds of units, achieving the goals of high efficiency, environmental protection and energy saving.
Transformation of environmental benefits into economic value
With the development of the carbon trading market, the carbon emissions reduced by enterprises through PSA technology can be converted into carbon credit income, further enhancing the economic attractiveness of the technology.
The growth of the PSA technology market is the result of the combined effect of technological progress, market demand, policy support and cost-effectiveness. In the future, with the acceleration of clean energy transformation and stricter environmental protection requirements, PSA technology will play a more critical role in industrial gas separation, hydrogen energy industry chain, medical health and other fields, and its market potential will continue to be released.
This report aims to provide a comprehensive presentation of the global market for Pressure Swing Adsorption (PSA) Technology, focusing on the total sales revenue, key companies market share and ranking, together with an analysis of Pressure Swing Adsorption (PSA) Technology by region & country, by Type, and by Application.
The Pressure Swing Adsorption (PSA) Technology 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 Pressure Swing Adsorption (PSA) Technology.
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 Pressure Swing Adsorption (PSA) Technology 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 Pressure Swing Adsorption (PSA) Technology 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 Pressure Swing Adsorption (PSA) Technology 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.