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. Increase in concern toward reducing carbon emissions
3.4.1.2. Decline in costs of renewable energy
3.4.2. Restraints
3.4.2.1. Limited technological advances
3.4.2.2. High initial costs coupled with privacy concerns and data security threat.
3.4.3. Opportunities
3.4.3.1. Growing market for IoT, smart cities, and energy as a service
3.5. Value Chain Analysis
3.6. Regulatory Guidelines
3.7. Patent Landscape
3.8. Pricing Analysis
CHAPTER 4: ELECTROLYZER MARKET, BY APPLICATION
4.1. Overview
4.1.1. Market size and forecast
4.2. Power Generation
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. Transportation
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. Industry Energy
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. Industry Feedstock
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
4.6. Building Heat and Power
4.6.1. Key market trends, growth factors and opportunities
4.6.2. Market size and forecast, by region
4.6.3. Market share analysis by country
4.7. Others
4.7.1. Key market trends, growth factors and opportunities
4.7.2. Market size and forecast, by region
4.7.3. Market share analysis by country
CHAPTER 5: ELECTROLYZER MARKET, BY CAPACITY
5.1. Overview
5.1.1. Market size and forecast
5.2. Less than 500 kW
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. 500 kW to 2 MW
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
5.4. Above 2 MW
5.4.1. Key market trends, growth factors and opportunities
5.4.2. Market size and forecast, by region
5.4.3. Market share analysis by country
CHAPTER 6: ELECTROLYZER MARKET, BY PRODUCT
6.1. Overview
6.1.1. Market size and forecast
6.2. Alkaline Electrolyzer
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. Proton Exchange Membrane Electrolyzer
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. Solid Oxide (SOE) Electrolyzer
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. Anion Exchange Membrane (AEM) Electrolyzer
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
CHAPTER 7: ELECTROLYZER 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 Application
7.2.3. Market size and forecast, by Capacity
7.2.4. Market size and forecast, by Product
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 Application
7.2.5.1.2. Market size and forecast, by Capacity
7.2.5.1.3. Market size and forecast, by Product
7.2.5.2. Canada
7.2.5.2.1. Market size and forecast, by Application
7.2.5.2.2. Market size and forecast, by Capacity
7.2.5.2.3. Market size and forecast, by Product
7.2.5.3. Mexico
7.2.5.3.1. Market size and forecast, by Application
7.2.5.3.2. Market size and forecast, by Capacity
7.2.5.3.3. Market size and forecast, by Product
7.3. Europe
7.3.1. Key market trends, growth factors and opportunities
7.3.2. Market size and forecast, by Application
7.3.3. Market size and forecast, by Capacity
7.3.4. Market size and forecast, by Product
7.3.5. Market size and forecast, by country
7.3.5.1. Germany
7.3.5.1.1. Market size and forecast, by Application
7.3.5.1.2. Market size and forecast, by Capacity
7.3.5.1.3. Market size and forecast, by Product
7.3.5.2. UK
7.3.5.2.1. Market size and forecast, by Application
7.3.5.2.2. Market size and forecast, by Capacity
7.3.5.2.3. Market size and forecast, by Product
7.3.5.3. France
7.3.5.3.1. Market size and forecast, by Application
7.3.5.3.2. Market size and forecast, by Capacity
7.3.5.3.3. Market size and forecast, by Product
7.3.5.4. Italy
7.3.5.4.1. Market size and forecast, by Application
7.3.5.4.2. Market size and forecast, by Capacity
7.3.5.4.3. Market size and forecast, by Product
7.3.5.5. Spain
7.3.5.5.1. Market size and forecast, by Application
7.3.5.5.2. Market size and forecast, by Capacity
7.3.5.5.3. Market size and forecast, by Product
7.3.5.6. Rest of Europe
7.3.5.6.1. Market size and forecast, by Application
7.3.5.6.2. Market size and forecast, by Capacity
7.3.5.6.3. Market size and forecast, by Product
7.4. Asia-Pacific
7.4.1. Key market trends, growth factors and opportunities
7.4.2. Market size and forecast, by Application
7.4.3. Market size and forecast, by Capacity
7.4.4. Market size and forecast, by Product
7.4.5. Market size and forecast, by country
7.4.5.1. China
7.4.5.1.1. Market size and forecast, by Application
7.4.5.1.2. Market size and forecast, by Capacity
7.4.5.1.3. Market size and forecast, by Product
7.4.5.2. Japan
7.4.5.2.1. Market size and forecast, by Application
7.4.5.2.2. Market size and forecast, by Capacity
7.4.5.2.3. Market size and forecast, by Product
7.4.5.3. India
7.4.5.3.1. Market size and forecast, by Application
7.4.5.3.2. Market size and forecast, by Capacity
7.4.5.3.3. Market size and forecast, by Product
7.4.5.4. South Korea
7.4.5.4.1. Market size and forecast, by Application
7.4.5.4.2. Market size and forecast, by Capacity
7.4.5.4.3. Market size and forecast, by Product
7.4.5.5. Australia
7.4.5.5.1. Market size and forecast, by Application
7.4.5.5.2. Market size and forecast, by Capacity
7.4.5.5.3. Market size and forecast, by Product
7.4.5.6. Rest of Asia-Pacific
7.4.5.6.1. Market size and forecast, by Application
7.4.5.6.2. Market size and forecast, by Capacity
7.4.5.6.3. Market size and forecast, by Product
7.5. LAMEA
7.5.1. Key market trends, growth factors and opportunities
7.5.2. Market size and forecast, by Application
7.5.3. Market size and forecast, by Capacity
7.5.4. Market size and forecast, by Product
7.5.5. Market size and forecast, by country
7.5.5.1. Brazil
7.5.5.1.1. Market size and forecast, by Application
7.5.5.1.2. Market size and forecast, by Capacity
7.5.5.1.3. Market size and forecast, by Product
7.5.5.2. Saudi Arabia
7.5.5.2.1. Market size and forecast, by Application
7.5.5.2.2. Market size and forecast, by Capacity
7.5.5.2.3. Market size and forecast, by Product
7.5.5.3. South Africa
7.5.5.3.1. Market size and forecast, by Application
7.5.5.3.2. Market size and forecast, by Capacity
7.5.5.3.3. Market size and forecast, by Product
7.5.5.4. Rest of LAMEA
7.5.5.4.1. Market size and forecast, by Application
7.5.5.4.2. Market size and forecast, by Capacity
7.5.5.4.3. Market size and forecast, by Product
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. Cummins, Inc.
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
9.1.7. Key strategic moves and developments
9.2. Nel ASA
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
9.2.7. Key strategic moves and developments
9.3. Siemens AG.
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
9.3.7. Key strategic moves and developments
9.4. Toshiba Corporation.
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
9.4.7. Key strategic moves and developments
9.5. Air Liquide
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
9.5.7. Key strategic moves and developments
9.6. Plug Power 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. McPhy Energy
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. ITM Power
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
9.8.6. Key strategic moves and developments
9.9. Iberdrola S.A.
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
9.9.6. Business performance
9.10. Bloom Energy
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
9.10.6. Business performance
| ※参考情報 電解槽(Electrolyzer)は、電気分解を用いて物質を分解する装置であり、主に水を水素と酸素に分解するために使用されます。電解槽は、再生可能エネルギーを利用した水素製造の重要な技術となっており、クリーンエネルギーの普及に貢献しています。その基本的な動作原理としては、電源から供給される電流が電解質に作用し、化学反応を引き起こします。これにより、水分子が水素イオンと酸素に分解され、水素ガスが負極に、酸素ガスが正極に集まります。 電解槽の種類には、主にアルカリ電解槽とPEM(プロトン交換膜)電解槽の2つがあります。アルカリ電解槽は、一般的に水酸化カリウムなどのアルカリ性電解質を使用し、比較的安価で広く利用されています。一方、PEM電解槽は、プロトン交換膜を用いており、高効率かつコンパクトな設計が特徴です。PEM電解槽は、迅速な応答性を持ち、可変な電力供給に対しても柔軟に対応できるため、再生可能エネルギー源と組み合わせた利用に適しています。 電解槽の主な用途は、水素の製造ですが、それに限らず、様々な化学物質の合成や水処理、電気化学的な分析などにも利用されています。特に水素がエネルギーキャリアとしての役割を果たすことが期待されており、水素燃料電池車や水素発電所の支援技術として重要です。さらに、電解槽によって生成された水素は、産業用の化学製品やバイオ燃料の原料としても利用されています。 関連技術としては、再生可能エネルギーの発電技術が挙げられます。太陽光や風力などの再生可能エネルギーを用いて生み出された電力を、電解槽に供給することで、持続可能な形で水素を生産することができます。また、電解槽の効率を向上させるために、触媒技術や新しい材料の開発が進められています。高性能な触媒を利用することで、電気分解の効率を高めることが可能となり、エネルギー消費を抑えることができます。 また、電解槽の運用に際しては、コストの低減が重要な課題です。これには、電解槽自体の製造コストの削減や、運用時に必要な電力コストの低減が含まれます。特に、再生可能エネルギーの価格が下がることで、電解槽の競争力が向上し、水素製造の経済性が高まることが期待されています。今後、技術革新により電解槽の性能が向上し、コストが削減されることで、より多くの分野での利用が進むと考えられます。 さらに、電解槽は国際的なエネルギー転換の中心的な役割を果たすと見込まれています。脱炭素社会を目指す中で、再生可能エネルギー由来の水素の利用が、化石燃料に依存しないエネルギー供給の実現につながります。水素経済の進展とともに、電解槽技術はますます重要性を増しており、研究開発が進められています。国家や地域のエネルギー政策としても、水素の利用促進が一つの柱となっていることが多く、電解槽の導入が加速しています。 電解槽を用いた水素製造は、環境への負担を減らしながら、新しいエネルギーシステムの構築を支える技術として期待されています。今後の技術革新と市場の動向を注視し、持続可能なエネルギーの未来に向けた重要な一歩を踏み出すことが求められています。 |
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