CHAPTER 1: INTRODUCTION
1.1. Report description
1.2. Key market segments
1.3. Key benefits to the stakeholders
1.4. Research methodology
1.4.1. Primary research
1.4.2. Secondary research
1.4.3. Analyst tools and models
CHAPTER 2: EXECUTIVE SUMMARY
2.1. CXO Perspective
CHAPTER 3: MARKET OVERVIEW
3.1. Market definition and scope
3.2. Key findings
3.2.1. Top impacting factors
3.2.2. Top investment pockets
3.3. Porter’s five forces analysis
3.3.1. Low bargaining power of suppliers
3.3.2. Low threat of new entrants
3.3.3. Low threat of substitutes
3.3.4. Low intensity of rivalry
3.3.5. Low bargaining power of buyers
3.4. Market dynamics
3.4.1. Drivers
3.4.1.1. Increased demand for low-emission fuel
3.4.1.2. • Increased demand from various industries
3.4.2. Restraints
3.4.2.1. High cost of composite material-based tanks
3.4.3. Opportunities
3.4.3.1. Development of low weight hydrogen storage tanks
3.5. Value Chain Analysis
3.6. Patent Landscape
CHAPTER 4: HYDROGEN STORAGE MARKET, BY TYPE
4.1. Overview
4.1.1. Market size and forecast
4.2. Cylinder
4.2.1. Key market trends, growth factors and opportunities
4.2.2. Market size and forecast, by region
4.2.3. Market share analysis by country
4.3. Merchant/bulk
4.3.1. Key market trends, growth factors and opportunities
4.3.2. Market size and forecast, by region
4.3.3. Market share analysis by country
4.4. On-Site
4.4.1. Key market trends, growth factors and opportunities
4.4.2. Market size and forecast, by region
4.4.3. Market share analysis by country
4.5. On-Board
4.5.1. Key market trends, growth factors and opportunities
4.5.2. Market size and forecast, by region
4.5.3. Market share analysis by country
CHAPTER 5: HYDROGEN STORAGE MARKET, BY STORAGE
5.1. Overview
5.1.1. Market size and forecast
5.2. Material
5.2.1. Key market trends, growth factors and opportunities
5.2.2. Market size and forecast, by region
5.2.3. Market share analysis by country
5.3. Physical
5.3.1. Key market trends, growth factors and opportunities
5.3.2. Market size and forecast, by region
5.3.3. Market share analysis by country
CHAPTER 6: HYDROGEN STORAGE MARKET, BY END-USE INDUSTRY
6.1. Overview
6.1.1. Market size and forecast
6.2. Chemical
6.2.1. Key market trends, growth factors and opportunities
6.2.2. Market size and forecast, by region
6.2.3. Market share analysis by country
6.3. Oil refineries
6.3.1. Key market trends, growth factors and opportunities
6.3.2. Market size and forecast, by region
6.3.3. Market share analysis by country
6.4. Automotive and transportation
6.4.1. Key market trends, growth factors and opportunities
6.4.2. Market size and forecast, by region
6.4.3. Market share analysis by country
6.5. Metalworking
6.5.1. Key market trends, growth factors and opportunities
6.5.2. Market size and forecast, by region
6.5.3. Market share analysis by country
6.6. Others
6.6.1. Key market trends, growth factors and opportunities
6.6.2. Market size and forecast, by region
6.6.3. Market share analysis by country
CHAPTER 7: HYDROGEN STORAGE MARKET, BY REGION
7.1. Overview
7.1.1. Market size and forecast By Region
7.2. North America
7.2.1. Key market trends, growth factors and opportunities
7.2.2. Market size and forecast, by Type
7.2.3. Market size and forecast, by Storage
7.2.4. Market size and forecast, by End-use Industry
7.2.5. Market size and forecast, by country
7.2.5.1. U.S.
7.2.5.1.1. Market size and forecast, by Type
7.2.5.1.2. Market size and forecast, by Storage
7.2.5.1.3. Market size and forecast, by End-use Industry
7.2.5.2. Canada
7.2.5.2.1. Market size and forecast, by Type
7.2.5.2.2. Market size and forecast, by Storage
7.2.5.2.3. Market size and forecast, by End-use Industry
7.2.5.3. Mexico
7.2.5.3.1. Market size and forecast, by Type
7.2.5.3.2. Market size and forecast, by Storage
7.2.5.3.3. Market size and forecast, by End-use Industry
7.3. Europe
7.3.1. Key market trends, growth factors and opportunities
7.3.2. Market size and forecast, by Type
7.3.3. Market size and forecast, by Storage
7.3.4. Market size and forecast, by End-use Industry
7.3.5. Market size and forecast, by country
7.3.5.1. Germany
7.3.5.1.1. Market size and forecast, by Type
7.3.5.1.2. Market size and forecast, by Storage
7.3.5.1.3. Market size and forecast, by End-use Industry
7.3.5.2. France
7.3.5.2.1. Market size and forecast, by Type
7.3.5.2.2. Market size and forecast, by Storage
7.3.5.2.3. Market size and forecast, by End-use Industry
7.3.5.3. UK
7.3.5.3.1. Market size and forecast, by Type
7.3.5.3.2. Market size and forecast, by Storage
7.3.5.3.3. Market size and forecast, by End-use Industry
7.3.5.4. Spain
7.3.5.4.1. Market size and forecast, by Type
7.3.5.4.2. Market size and forecast, by Storage
7.3.5.4.3. Market size and forecast, by End-use Industry
7.3.5.5. Italy
7.3.5.5.1. Market size and forecast, by Type
7.3.5.5.2. Market size and forecast, by Storage
7.3.5.5.3. Market size and forecast, by End-use Industry
7.3.5.6. Rest of Europe
7.3.5.6.1. Market size and forecast, by Type
7.3.5.6.2. Market size and forecast, by Storage
7.3.5.6.3. Market size and forecast, by End-use Industry
7.4. Asia-Pacific
7.4.1. Key market trends, growth factors and opportunities
7.4.2. Market size and forecast, by Type
7.4.3. Market size and forecast, by Storage
7.4.4. Market size and forecast, by End-use Industry
7.4.5. Market size and forecast, by country
7.4.5.1. China
7.4.5.1.1. Market size and forecast, by Type
7.4.5.1.2. Market size and forecast, by Storage
7.4.5.1.3. Market size and forecast, by End-use Industry
7.4.5.2. Japan
7.4.5.2.1. Market size and forecast, by Type
7.4.5.2.2. Market size and forecast, by Storage
7.4.5.2.3. Market size and forecast, by End-use Industry
7.4.5.3. India
7.4.5.3.1. Market size and forecast, by Type
7.4.5.3.2. Market size and forecast, by Storage
7.4.5.3.3. Market size and forecast, by End-use Industry
7.4.5.4. South Korea
7.4.5.4.1. Market size and forecast, by Type
7.4.5.4.2. Market size and forecast, by Storage
7.4.5.4.3. Market size and forecast, by End-use Industry
7.4.5.5. Australia
7.4.5.5.1. Market size and forecast, by Type
7.4.5.5.2. Market size and forecast, by Storage
7.4.5.5.3. Market size and forecast, by End-use Industry
7.4.5.6. Rest of Asia-Pacific
7.4.5.6.1. Market size and forecast, by Type
7.4.5.6.2. Market size and forecast, by Storage
7.4.5.6.3. Market size and forecast, by End-use Industry
7.5. LAMEA
7.5.1. Key market trends, growth factors and opportunities
7.5.2. Market size and forecast, by Type
7.5.3. Market size and forecast, by Storage
7.5.4. Market size and forecast, by End-use Industry
7.5.5. Market size and forecast, by country
7.5.5.1. Brazil
7.5.5.1.1. Market size and forecast, by Type
7.5.5.1.2. Market size and forecast, by Storage
7.5.5.1.3. Market size and forecast, by End-use Industry
7.5.5.2. Saudi Arabia
7.5.5.2.1. Market size and forecast, by Type
7.5.5.2.2. Market size and forecast, by Storage
7.5.5.2.3. Market size and forecast, by End-use Industry
7.5.5.3. South Africa
7.5.5.3.1. Market size and forecast, by Type
7.5.5.3.2. Market size and forecast, by Storage
7.5.5.3.3. Market size and forecast, by End-use Industry
7.5.5.4. Rest of LAMEA
7.5.5.4.1. Market size and forecast, by Type
7.5.5.4.2. Market size and forecast, by Storage
7.5.5.4.3. Market size and forecast, by End-use Industry
CHAPTER 8: COMPETITIVE LANDSCAPE
8.1. Introduction
8.2. Top winning strategies
8.3. Product mapping of top 10 player
8.4. Competitive dashboard
8.5. Competitive heatmap
8.6. Top player positioning, 2022
CHAPTER 9: COMPANY PROFILES
9.1. Air Liquide
9.1.1. Company overview
9.1.2. Key executives
9.1.3. Company snapshot
9.1.4. Operating business segments
9.1.5. Product portfolio
9.1.6. Business performance
9.2. Linde Plc
9.2.1. Company overview
9.2.2. Key executives
9.2.3. Company snapshot
9.2.4. Operating business segments
9.2.5. Product portfolio
9.2.6. Business performance
9.3. Worthington Industries Inc.
9.3.1. Company overview
9.3.2. Key executives
9.3.3. Company snapshot
9.3.4. Operating business segments
9.3.5. Product portfolio
9.3.6. Business performance
9.4. Luxfer Holdings PLC
9.4.1. Company overview
9.4.2. Key executives
9.4.3. Company snapshot
9.4.4. Operating business segments
9.4.5. Product portfolio
9.4.6. Business performance
9.5. Hexagon Composites ASA
9.5.1. Company overview
9.5.2. Key executives
9.5.3. Company snapshot
9.5.4. Operating business segments
9.5.5. Product portfolio
9.5.6. Business performance
9.6. Chart Industries, Inc.
9.6.1. Company overview
9.6.2. Key executives
9.6.3. Company snapshot
9.6.4. Operating business segments
9.6.5. Product portfolio
9.6.6. Business performance
9.7. inoxcva
9.7.1. Company overview
9.7.2. Key executives
9.7.3. Company snapshot
9.7.4. Operating business segments
9.7.5. Product portfolio
9.7.6. Business performance
9.8. HBank Technologies Inc.
9.8.1. Company overview
9.8.2. Key executives
9.8.3. Company snapshot
9.8.4. Operating business segments
9.8.5. Product portfolio
9.9. Pragma Industries
9.9.1. Company overview
9.9.2. Key executives
9.9.3. Company snapshot
9.9.4. Operating business segments
9.9.5. Product portfolio
9.10. Steelhead Composites, Inc.
9.10.1. Company overview
9.10.2. Key executives
9.10.3. Company snapshot
9.10.4. Operating business segments
9.10.5. Product portfolio
| ※参考情報 水素貯蔵は、水素を効率的に保存し、必要なときに取り出せるようにする技術です。水素はクリーンなエネルギー源として注目されていますが、その低い密度と高い揮発性のため、貯蔵と輸送が課題となっています。したがって、適切な貯蔵方法の開発が重要です。 水素貯蔵にはいくつかの主要な種類があります。まず、圧縮水素貯蔵は、水素を高圧タンク内に圧縮して保存する方法です。この方法は比較的シンプルで、既存の技術を使うことができるため広く普及していますが、高圧環境下での安全性やエネルギー効率の問題が存在します。 次に、液体水素貯蔵があります。水素を極低温で液化し、液体として貯蔵するこの方法は、高いエネルギー密度を持つため、大量の水素を compact に保管することが可能です。しかし、液体水素の輸送と貯蔵には断熱が必要であり、エネルギーコストも高くなります。 さらに、固体水素貯蔵という方法もあります。これは水素を金属や化合物に吸着させたり、反応を通じて固体に貯蔵する技術です。たとえば、金属水素化物を使用することで、水素を安定した形で長期間保存することができます。この方法は通常、低圧および室温での水素貯蔵が可能なため、安全性が高い特徴がありますが、貯蔵容量や出力速度に制限がある場合があります。 水素貯蔵の用途は多岐にわたります。最も一般的な用途は燃料電池車や航空機での利用です。水素を燃料電池で電気に変換し、モーターを駆動させることで、エネルギー効率が高く、排出ガスがなくクリーンな運行が可能です。また、大型の発電所や工場などでも、再生可能エネルギーを利用して生産された水素を貯蔵し、ピークシフトやエネルギー供給の安定化に役立てることができます。 さらに、水素は化学工業や製造プロセスにおいても重要な役割を果たしています。例如、アンモニアの製造や石油精製、鉄鋼業界における還元剤としての利用が進んでおり、これにより従来の化石燃料に依存しない持続可能なプロセスが模索されています。 関連技術としては、ナノ材料やハイドライド技術が挙げられます。ナノ材料は、その大きな比表面積により、より効率的な水素吸着や解放を可能にします。ハイドライド技術は、特定の金属や合金が水素と反応して固体水素化物を形成する仕組みを利用しており、これにより高密度かつ安全な水素貯蔵が実現されます。 また、電気分解技術も水素貯蔵と密接に関連しています。再生可能エネルギーから水素を生成し、貯蔵することで、エネルギーのバランスを取の支援をすることが可能になるため、効率的なエネルギーシステムの構築が期待されます。 このように、水素貯蔵は、エネルギーの未来を支える重要な技術であり、さまざまな産業や用途に活用されています。新しい技術の進展により、より安全で効率的な水素貯蔵方法が開発されることが期待されており、持続可能な社会の実現に向けた重要なステップとなるでしょう。 |
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