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市場調查報告書
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2104724

全球資料中心以小型模組化核能(SMR)市場:按反應器類型、配置、產品和最終用戶分類-市場規模、產業動態、機會分析和預測(2026-2035 年)

Global Behind-the-Meter Nuclear (SMR for Data Centers) Market By Reactor Type, Configuration, Offering, End User - Market Size, Industry Dynamics, Opportunity Analysis and Forecast for 2026-2035

出版日期: | 出版商: Astute Analytica | 英文 260 Pages | 商品交期: 最快1-2個工作天內

價格
簡介目錄

表後小型模組化反應器(SMR)正成為電力消耗量人工智慧(AI)資料中心的一種創新能源解決方案,旨在應對日益嚴峻的挑戰,例如電力可用性、電網可靠性和碳減排目標。 2025年,該市場規模約為5億美元,預計到2035年將達到近201.21億美元,在2026年至2035年的預測期內,複合年成長率(CAGR)將達到44.7%。

生成式人工智慧、機器學習、雲端運算和進階分析技術的加速應用正在從根本上改變全球電力需求模式。由於部署了大規模GPU叢集、專用人工智慧加速器以及持續運作的運算工作負載,人工智慧專用資料中心所需的電力密度遠高於傳統運算設施。隨著各組織機構不斷擴展其人工智慧能力,資料處理、模型訓練和推理過程所需的電力消耗量也急劇增加。

顯著的市場趨勢

在資料中心小型核能反應器(SMR)等表後核能市場,隨著科技公司、公用事業公司和基礎設施投資者尋求可靠的無碳能源解決方案以支持人工智慧、雲端運算和高效能核子反應爐設施的快速發展,領先的反應器開發商之間的競爭日益激烈。 Oklo專注於為分散式和專用能源應用設計的緊湊型快裂變微型反應堆,已在新興的表後核能市場佔據了穩固的地位。

Kairos Power正透過開發氟化物鹽冷卻高溫核子反應爐技術以及與領先技術公司建立策略合作夥伴關係來鞏固其市場地位。 X-energy也是表後(BTM)核能市場的主要參與企業之一,主要透過開發高溫氣冷式反應爐技術來實現這一目標。

NuScale Power憑藉其良好的監管記錄和早期商業化進展,在小型模組化反應器(SMR)行業中確立了獨特的地位。該公司開發了首批獲得美國美國核能管理委員會(NRC)認證的SMR設計之一,使其在眾多競爭對手的先進反應器開發商中擁有顯著的監管優勢。西屋電氣利用其在核能工業領域數十年的專業經驗,開發專為分散式和用戶側(BTM)能源應用而設計的先進微型反應器解決方案。

主要成長要素

電網飽和和基礎設施限制正成為推動表後核能(資料中心以小型模組化反應器)市場成長的關鍵促進因素。人工智慧、雲端運算和高效能運算(HPC)應用的快速發展,使得超大規模資料中心對電力的需求空前高漲,給現有電網帶來了巨大壓力。在許多地區,由於發電能力有限、輸電基礎設施老化以及併網流程繁瑣,傳統電網難以滿足新增需求。這些挑戰促使科技公司和基礎設施開發商探索專用電力解決方案,包括表後小型模組化反應器(SMR),以確保可靠的電力供應,而無需完全依賴受限的電網系統。

新機會的趨勢

第四代核子反應爐的引入代表著一種新趨勢,可能會對資料中心以小型核能(SMR)市場的長期成長軌跡產生重大影響。隨著人工智慧、雲端運算和高效能運算的快速發展,對可靠、低碳電力的需求持續成長,開發商和能源消費者越來越傾向於尋求超越傳統設計的先進核子反應爐技術。第四代核子反應爐因其更高的安全性、更佳的運作效率、更高的燃料利用率以及與高能耗工業應用(例如超大規模資料中心)更柔軟性的整合能力而備受關注。

最佳化障礙

監管阻力預計仍將是阻礙用戶側(BTM)核能(資料中心小型模組化反應堆,SMR)市場成長的主要障礙之一。儘管超大規模資料中心日益成長的電力需求推動了人們對專用核能發電解決方案的興趣,但用戶側(BTM)和託管式發電配置的快速發展也帶來了複雜的監管、經濟和市場設計挑戰。政策制定者和能源監管機構正日益密切地關注這些項目如何與現有電力市場、輸電基礎設施和公用事業收費系統相互作用。隨著監管審查的日益全面,專案核准所需時間可能會延長,這給計劃大規模部署SMR的開發商、投資者和技術公司帶來了不確定性。

目錄

第1章執行摘要:全球表後(BTM)核能(資料中心小型模組化反應器)市場

第2章:調查方法與研究框架

  • 研究目標
  • 產品概述
  • 市場區隔
  • 定性研究
    • 一手和二手資訊
  • 量化研究
    • 一手和二手資訊
  • 主要調查受訪者組成:按地區分類
  • 本研究的前提
  • 市場規模估算
  • 數據三角測量

第3章:全球表後(BTM)核能(資料中心以小型模組化反應器)市場概述

  • 產業價值鏈分析
  • 產業展望
    • 全球表後(BTM)核能(資料中心以小型模組化反應器)產業概覽
    • 增加人工智慧負載、電網旁路以及可靠的無碳核心負載全天候 (24/7/365)運作。
    • 美國核能管理委員會許可製度現代化(ADVANCE法案)、高濃縮鈾供應以及世界首個核子反應爐經濟性
  • PESTLE分析
  • 波特五力分析
  • 市場成長及前景
    • 2020-2035年市場收入估算與預測
    • 價格趨勢分析:依反應器類型分類

第4章:全球表後核能(資料中心小型模組化反應器)市場分析

  • 競爭對手儀錶板
    • 市場集中度
    • 企業市場占有率分析,2025 年
    • 競爭對手分析與基準測試

第5章:全球表後核能(資料中心小型模組化反應器)市場分析

  • 市場動態和趨勢
    • 成長要素
    • 抑制因子
    • 機會
    • 主要趨勢
  • 市場規模及預測,2020-2035年
    • 按反應器類型
      • 關鍵見解
        • 輕水SMR
        • 高溫氣冷式
        • 熔鹽/高級型
        • 微型反應器(<50兆瓦)
    • 透過配置
      • 關鍵見解
        • 儀表背面/獨立式
        • 共址型/併網型
    • 報價
      • 關鍵見解
        • 核子反應爐設備
        • EPC/施工
        • 燃料和維運服務
        • 購買電力協議(PPA)
    • 最終用戶
      • 關鍵見解
        • 超大規模資料中心業者
        • 託管服務提供者
        • 資料中心的獨立支付處理器
    • 按地區
      • 關鍵見解
        • 北美洲
          • 美國
          • 加拿大
          • 墨西哥
        • 歐洲
          • 西歐
            • 英國
            • 德國
            • 法國
            • 義大利
            • 西班牙
            • 其他西歐國家
          • 東歐
            • 波蘭
            • 俄羅斯
            • 其他東歐國家
        • 亞太地區
          • 中國
          • 印度
          • 日本
          • 澳洲和紐西蘭
          • 韓國
          • ASEAN
          • 其他亞太國家
        • 中東和非洲(MEA)
          • 沙烏地阿拉伯
          • 南非
          • UAE
          • 其他中東和非洲國家
        • 南美洲
          • 阿根廷
          • 巴西
          • 其他南美國家

第6章:北美市場分析

第7章:歐洲市場分析

第8章:亞太市場分析

第9章:中東和非洲市場分析

第10章:南美市場分析

第11章:公司簡介

  • NuScale Power
  • X-energy
  • Oklo
  • TerraPower
  • Kairos Power
  • Westinghouse(eVinci)
  • Holtec International
  • GE Vernova(BWRX-300)
  • Rolls-Royce SMR
  • Radiant
  • Aalo Atomics
  • Constellation Energy
  • Talen Energy
  • Standard Power
  • Deep Fission
  • Other Prominent Players

第12章附錄

簡介目錄
Product Code: AA07261894

Behind-the-meter (BTM) Small Modular Reactors (SMRs) are emerging as a transformative energy solution for power-intensive artificial intelligence (AI) data centers, addressing the growing challenges of electricity availability, grid reliability, and carbon-reduction targets. The market was valued at approximately USD 500 million in 2025 and is projected to reach nearly USD 20,121 million by 2035, expanding at a compound annual growth rate (CAGR) of 44.7% during the forecast period from 2026 to 2035.

The accelerating adoption of generative AI, machine learning, cloud computing, and advanced analytics is fundamentally reshaping global electricity demand patterns. AI-focused data centers require significantly higher power densities than traditional computing facilities due to the deployment of large-scale GPU clusters, specialized AI accelerators, and continuously operating computational workloads. As organizations expand AI capabilities, the scale of electricity consumption required for data processing, model training, and inference operations is rising dramatically.

Noteworthy Market Developments

The behind-the-meter nuclear (SMR for data centers) market is witnessing increasing competition among advanced reactor developers as technology companies, utilities, and infrastructure investors seek reliable, carbon-free energy solutions to support the rapid expansion of artificial intelligence, cloud computing, and high-performance computing facilities. Oklo has established a prominent position in the emerging behind-the-meter nuclear market through its focus on compact fast-fission microreactors designed for distributed and dedicated energy applications.

Kairos Power has strengthened its market position through the development of fluoride salt-cooled high-temperature reactor technology and strategic partnerships with major technology companies. X-energy is another major participant in the behind-the-meter nuclear market, primarily through its development of high-temperature gas-cooled reactor technology.

NuScale Power holds a unique position in the SMR industry due to its regulatory achievements and early progress toward commercialization. The company developed one of the first SMR designs to receive certification from the U.S. Nuclear Regulatory Commission, providing it with an important regulatory advantage compared with many competing advanced reactor developers. Westinghouse Electric Company is leveraging its decades of nuclear industry expertise to develop advanced microreactor solutions designed specifically for decentralized and behind-the-meter energy applications.

Core Growth Drivers

Grid saturation and infrastructure constraints have emerged as major factors accelerating the growth of the behind-the-meter nuclear (SMR for data centers) market. The rapid expansion of artificial intelligence, cloud computing, and high-performance computing applications has created unprecedented electricity demand from hyperscale data centers, placing significant pressure on existing utility networks. Traditional power grids in many regions are struggling to accommodate the pace and scale of new electricity requirements due to limited generation capacity, aging transmission infrastructure, and lengthy interconnection processes. These challenges are encouraging technology companies and infrastructure developers to explore dedicated power solutions, including behind-the-meter small modular reactors (SMRs), to secure reliable electricity supplies without relying solely on constrained grid systems.

Emerging Opportunity Trends

Gen IV reactor adoption represents an emerging opportunity trend that could significantly influence the long-term growth trajectory of the behind-the-meter nuclear (SMR for data centers) market. As demand for reliable, low-carbon electricity continues to accelerate due to artificial intelligence, cloud computing, and high-performance computing expansion, developers and energy consumers are increasingly exploring advanced reactor technologies beyond conventional designs. Generation IV reactors are gaining attention because of their potential to deliver improved safety characteristics, higher operating efficiencies, enhanced fuel utilization, and greater flexibility for integration with energy-intensive industrial applications such as hyperscale data centers.

Barriers to Optimization

Regulatory pushback is expected to remain one of the key challenges that could hamper the growth of the behind-the-meter nuclear (SMR for data centers) market. Although the increasing electricity demands of hyperscale data centers have accelerated interest in dedicated nuclear power solutions, the rapid emergence of behind-the-meter (BTM) and co-located power configurations has introduced complex regulatory, economic, and market design questions. Policymakers and energy regulators are increasingly examining how these projects interact with existing electricity markets, transmission infrastructure, and utility rate structures. As regulatory reviews become more comprehensive, project approvals may face longer timelines, creating uncertainty for developers, investors, and technology companies planning large-scale SMR deployments.

Detailed Market Segmentation

By reactor type, Light-Water Small Modular Reactors (SMRs) accounted for the largest share of the behind-the-meter nuclear (SMR for data centers) market in 2025, primarily due to their technological maturity, well-established regulatory pathways, and extensive operational track record. As the market transitions from concept development to commercial deployment, project developers and hyperscale data center operators have demonstrated a strong preference for reactor technologies that offer proven performance, predictable licensing processes, and lower execution risks.

By configuration, the co-located (grid-intertied) segment accounted for the largest share of the behind-the-meter nuclear (SMR for data centers) market, driven by its ability to combine the reliability of dedicated nuclear generation with the operational security of an interconnected electricity grid. As hyperscale data centers continue to expand their artificial intelligence (AI), cloud computing, and high-performance computing capabilities, uninterrupted power availability has become a fundamental operational requirement. Co-located grid-intertied SMR configurations address this need by allowing reactors to directly supply electricity to data center campuses while maintaining a connection to the regional transmission network.

By offering, reactor equipment, the largest share of the behind-the-meter nuclear (SMR for data centers) market is reflected, reflecting the capital-intensive nature of deploying small modular reactors (SMRs) to support next-generation data center infrastructure. During the early stages of market development, investment activity is heavily concentrated on establishing the core physical assets required for reactor construction and operation. Since commercial deployment of SMRs is still in its initial growth phase, the majority of project expenditure is directed toward acquiring and installing reactor equipment rather than ongoing operational or maintenance services.

By end user, hyperscalers accounted for the dominant share of the behind-the-meter nuclear (SMR for data centers) market in 2025, driven by their rapidly expanding investments in artificial intelligence (AI), cloud computing, and high-performance computing infrastructure. The accelerating adoption of generative AI applications has fundamentally transformed data center power requirements, as large language models, AI training clusters, and inference workloads require significantly greater computational capacity than conventional cloud services. These advanced workloads operate continuously and demand highly reliable, uninterrupted electricity, making energy availability a critical factor in hyperscaler infrastructure planning.

Segment Breakdown

By Reactor Type

  • Light-Water SMR
  • High-Temperature Gas-Cooled
  • Molten Salt/Advanced
  • Microreactor <50 MW

By Configuration

  • Behind-the-Meter/Islanded
  • Co-Located/Grid-Intertied

By Offering

  • Reactor Equipment
  • EPC/Construction
  • Fuel & O&M Services
  • Power Purchase Agreements

By End User

  • Hyperscalers
  • Colocation Providers
  • IPPs Serving Data Centers

By Region

  • North America
  • The U.S.
  • Canada
  • Mexico
  • Europe
  • Western Europe
  • The UK
  • Germany
  • France
  • Italy
  • Spain
  • Rest of Western Europe
  • Eastern Europe
  • Poland
  • Russia
  • Rest of Eastern Europe
  • Asia Pacific
  • China
  • India
  • Japan
  • Australia & New Zealand
  • South Korea
  • ASEAN
  • Rest of Asia Pacific
  • Middle East & Africa (MEA)
  • Saudi Arabia
  • South Africa
  • UAE
  • Rest of MEA
  • South America
  • Argentina
  • Brazil
  • Rest of South America

Geography Breakdown

  • North America is expected to hold the largest share of the behind-the-meter nuclear (SMR for data centers) market in 2026, supported by a combination of strong investment activity, advanced nuclear infrastructure, and a well-established regulatory environment. The region has emerged as the preferred destination for deploying small modular reactors (SMRs) to power data centers, particularly as artificial intelligence, cloud computing, and high-performance computing applications drive unprecedented growth in electricity demand.
  • The United States represents the overwhelming majority of the regional market, accounting for more than 85% of North America's total revenue. This dominance is driven by aggressive investments from hyperscale technology companies that are rapidly expanding AI-focused data center capacity across the country. Canada also plays a significant role in reinforcing North America's market leadership through its proactive approach to advanced nuclear development. The Canadian Nuclear Safety Commission (CNSC) has established progressive regulatory frameworks that encourage innovation while maintaining rigorous safety standards.

Leading Market Participants

  • NuScale Power
  • X-energy
  • Oklo
  • TerraPower
  • Kairos Power
  • Westinghouse (eVinci)
  • Holtec International
  • GE Vernova (BWRX-300)
  • Rolls-Royce SMR
  • Radiant
  • Aalo Atomics
  • Constellation Energy
  • Talen Energy
  • Standard Power
  • Deep Fission
  • Other Prominent Players

Table of Content

Chapter 1. Executive Summary: Global Behind-the-Meter Nuclear (SMR for Data Centers) Market

Chapter 2. Research Methodology & Research Framework

  • 2.1. Research Objective
  • 2.2. Product Overview
  • 2.3. Market Segmentation
  • 2.4. Qualitative Research
    • 2.4.1. Primary & Secondary Sources
  • 2.5. Quantitative Research
    • 2.5.1. Primary & Secondary Sources
  • 2.6. Breakdown of Primary Research Respondents, By Region
  • 2.7. Assumption for Study
  • 2.8. Market Size Estimation
  • 2.9. Data Triangulation

Chapter 3. Global Behind-the-Meter Nuclear (SMR for Data Centers) Market Overview

  • 3.1. Industry Value Chain Analysis
    • 3.1.1. HALEU Fuel, Forging & Nuclear-Grade Component Suppliers
    • 3.1.2. SMR / Microreactor Equipment (Pressure Vessel, Steam Generator) Manufacturers
    • 3.1.3. EPC, Modular / Shipyard Assembly & Construction Providers
    • 3.1.4. Fuel Cycle, O&M, Licensing & Power-Purchase-Agreement Partners
    • 3.1.5. End Users (Hyperscalers, Colocation Providers, IPPs Serving Data Centers)
  • 3.2. Industry Outlook
    • 3.2.1. Overview of the Global Behind-the-Meter Nuclear (SMR for Data Centers) Industry
    • 3.2.2. AI Load Growth, Grid-Interconnection Bypass & 24/7 Firm Carbon-Free Baseload
    • 3.2.3. NRC Licensing Modernization (ADVANCE Act), HALEU Supply & First-of-a-Kind Economics
  • 3.3. PESTLE Analysis
  • 3.4. Porter's Five Forces Analysis
    • 3.4.1. Bargaining Power of Suppliers
    • 3.4.2. Bargaining Power of Buyers
    • 3.4.3. Threat of Substitutes
    • 3.4.4. Threat of New Entrants
    • 3.4.5. Degree of Competition
  • 3.5. Market Growth and Outlook
    • 3.5.1. Market Revenue Estimates and Forecast (US$ Mn), 2020-2035
    • 3.5.2. Price Trend Analysis, By Reactor Type

Chapter 4. Global Behind-the-Meter Nuclear (SMR for Data Centers) Market Analysis

  • 4.1. Competition Dashboard
    • 4.1.1. Market Concentration Rate
    • 4.1.2. Company Market Share Analysis (Value %), 2025
    • 4.1.3. Competitor Mapping & Benchmarking

Chapter 5. Global Behind-the-Meter Nuclear (SMR for Data Centers) Market Analysis

  • 5.1. Market Dynamics and Trends
    • 5.1.1. Growth Drivers
    • 5.1.2. Restraints
    • 5.1.3. Opportunity
    • 5.1.4. Key Trends
  • 5.2. Market Size and Forecast, 2020-2035 (US$ Mn)
    • 5.2.1. By Reactor Type
      • 5.2.1.1. Key Insights
        • 5.2.1.1.1. Light-Water SMR
        • 5.2.1.1.2. High-Temperature Gas-Cooled
        • 5.2.1.1.3. Molten Salt/Advanced
        • 5.2.1.1.4. Microreactor <50 MW
    • 5.2.2. By Configuration
      • 5.2.2.1. Key Insights
        • 5.2.2.1.1. Behind-the-Meter/Islanded
        • 5.2.2.1.2. Co-Located/Grid-Intertied
    • 5.2.3. By Offering
      • 5.2.3.1. Key Insights
        • 5.2.3.1.1. Reactor Equipment
        • 5.2.3.1.2. EPC/Construction
        • 5.2.3.1.3. Fuel & O&M Services
        • 5.2.3.1.4. Power Purchase Agreements
    • 5.2.4. By End User
      • 5.2.4.1. Key Insights
        • 5.2.4.1.1. Hyperscalers
        • 5.2.4.1.2. Colocation Providers
        • 5.2.4.1.3. IPPs Serving Data Centers
    • 5.2.5. By Region
      • 5.2.5.1. Key Insights
        • 5.2.5.1.1. North America
          • 5.2.5.1.1.1. The U.S.
          • 5.2.5.1.1.2. Canada
          • 5.2.5.1.1.3. Mexico
        • 5.2.5.1.2. Europe
          • 5.2.5.1.2.1. Western Europe
            • 5.2.5.1.2.1.1. The UK
            • 5.2.5.1.2.1.2. Germany
            • 5.2.5.1.2.1.3. France
            • 5.2.5.1.2.1.4. Italy
            • 5.2.5.1.2.1.5. Spain
            • 5.2.5.1.2.1.6. Rest of Western Europe
          • 5.2.5.1.2.2. Eastern Europe
            • 5.2.5.1.2.2.1. Poland
            • 5.2.5.1.2.2.2. Russia
            • 5.2.5.1.2.2.3. Rest of Eastern Europe
        • 5.2.5.1.3. Asia Pacific
          • 5.2.5.1.3.1. China
          • 5.2.5.1.3.2. India
          • 5.2.5.1.3.3. Japan
          • 5.2.5.1.3.4. Australia & New Zealand
          • 5.2.5.1.3.5. South Korea
          • 5.2.5.1.3.6. ASEAN
          • 5.2.5.1.3.7. Rest of Asia Pacific
        • 5.2.5.1.4. Middle East & Africa (MEA)
          • 5.2.5.1.4.1. Saudi Arabia
          • 5.2.5.1.4.2. South Africa
          • 5.2.5.1.4.3. UAE
          • 5.2.5.1.4.4. Rest of MEA
        • 5.2.5.1.5. South America
          • 5.2.5.1.5.1. Argentina
          • 5.2.5.1.5.2. Brazil
          • 5.2.5.1.5.3. Rest of South America

Chapter 6. North America Market Analysis

  • 6.1. Market Dynamics and Trends
    • 6.1.1. Growth Drivers
    • 6.1.2. Restraints
    • 6.1.3. Opportunity
    • 6.1.4. Key Trends
  • 6.2. Market Size and Forecast, 2020-2035 (US$ Mn)
    • 6.2.1. Key Insights
      • 6.2.1.1. By Reactor Type
      • 6.2.1.2. By Configuration
      • 6.2.1.3. By Offering
      • 6.2.1.4. By End User
      • 6.2.1.5. By Country

Chapter 7. Europe Market Analysis

  • 7.1. Market Dynamics and Trends
    • 7.1.1. Growth Drivers
    • 7.1.2. Restraints
    • 7.1.3. Opportunity
    • 7.1.4. Key Trends
  • 7.2. Market Size and Forecast, 2020-2035 (US$ Mn)
    • 7.2.1. Key Insights
      • 7.2.1.1. By Reactor Type
      • 7.2.1.2. By Configuration
      • 7.2.1.3. By Offering
      • 7.2.1.4. By End User
      • 7.2.1.5. By Country

Chapter 8. Asia Pacific Market Analysis

  • 8.1. Market Dynamics and Trends
    • 8.1.1. Growth Drivers
    • 8.1.2. Restraints
    • 8.1.3. Opportunity
    • 8.1.4. Key Trends
  • 8.2. Market Size and Forecast, 2020-2035 (US$ Mn)
    • 8.2.1. Key Insights
      • 8.2.1.1. By Reactor Type
      • 8.2.1.2. By Configuration
      • 8.2.1.3. By Offering
      • 8.2.1.4. By End User
      • 8.2.1.5. By Country

Chapter 9. Middle East & Africa Market Analysis

  • 9.1. Market Dynamics and Trends
    • 9.1.1. Growth Drivers
    • 9.1.2. Restraints
    • 9.1.3. Opportunity
    • 9.1.4. Key Trends
  • 9.2. Market Size and Forecast, 2020-2035 (US$ Mn)
    • 9.2.1. Key Insights
      • 9.2.1.1. By Reactor Type
      • 9.2.1.2. By Configuration
      • 9.2.1.3. By Offering
      • 9.2.1.4. By End User
      • 9.2.1.5. By Country

Chapter 10. South America Market Analysis

  • 10.1. Market Dynamics and Trends
    • 10.1.1. Growth Drivers
    • 10.1.2. Restraints
    • 10.1.3. Opportunity
    • 10.1.4. Key Trends
  • 10.2. Market Size and Forecast, 2020-2035 (US$ Mn)
    • 10.2.1. Key Insights
      • 10.2.1.1. By Reactor Type
      • 10.2.1.2. By Configuration
      • 10.2.1.3. By Offering
      • 10.2.1.4. By End User
      • 10.2.1.5. By Country

Chapter 11. Company Profile (Company Overview, Financial Matrix, Key Product landscape, Key Personnel, Key Competitors, Contact Address, and Business Strategy Outlook)

  • 11.1. NuScale Power
  • 11.2. X-energy
  • 11.3. Oklo
  • 11.4. TerraPower
  • 11.5. Kairos Power
  • 11.6. Westinghouse (eVinci)
  • 11.7. Holtec International
  • 11.8. GE Vernova (BWRX-300)
  • 11.9. Rolls-Royce SMR
  • 11.10. Radiant
  • 11.11. Aalo Atomics
  • 11.12. Constellation Energy
  • 11.13. Talen Energy
  • 11.14. Standard Power
  • 11.15. Deep Fission
  • 11.16. Other Prominent Players

Chapter 12. Annexure

  • 12.1. List of Secondary Sources
  • 12.2. Key Country Markets- Macro Economic Outlook/Indicators