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PUBLISHER: Global Market Insights Inc. | PRODUCT CODE: 1535881

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PUBLISHER: Global Market Insights Inc. | PRODUCT CODE: 1535881

High Voltage Direct Current Power Supply Market - By Installation Type (Overhead, Underground, Subsea), By Voltage Level (<1,000V, 1,000-4,000V, >4,000V), By Technology, By End Use & Forecast, 2024 - 2032

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Global High Voltage Direct Current Power Supply Market will witness over 8.2% CAGR between 2024 and 2032, driven by rising orders and significant technology upgrades from leading companies. HVDC technology is essential for long-distance and efficient power transmission, reducing losses and improving grid stability. The growing need for reliable and efficient energy solutions, coupled with the expansion of renewable energy sources and interconnected grids, is fueling market growth. For instance, in November 2023, Hitachi Energy secured a contract to upgrade the world-record high-voltage direct current (HVDC) transmission system. The global technology leader, committed to advancing a sustainable energy future, will enhance the Garabi HVDC converter station for Taesa, one of Brazil's major private electric energy transmission companies.

Leading companies are responding by introducing advanced HVDC systems that offer improved efficiency, higher capacity, and enhanced control capabilities. These advancements are making HVDC systems more viable and attractive for large-scale projects. As energy demands rise and infrastructure evolves, the market for HVDC power supplies continues to expand, driven by technological progress and the increasing need for efficient power transmission solutions.

The overall High Voltage Direct Current Power Supply Industry is classified based on the installation type, voltage level, technology, end-use, and region.

Based on installation type, the high voltage direct current power supply market revenue from the overhead segment will register a commendable CAGR from 2024 to 2032. HVDC systems are particularly advantageous for overhead transmission due to their efficiency in long-distance power delivery and reduced line losses. Overhead HVDC lines can span vast distances without significant power degradation, making them ideal for connecting remote renewable energy sources to urban centers. Additionally, advancements in HVDC technology have enhanced the reliability and capacity of these systems, further boosting their adoption. As the need for efficient and expansive energy transmission solutions grows, overhead HVDC installations are becoming a critical component of modern power infrastructure.

The line commutated converters (LCC) segment will witness a noteworthy growth from 2024 to 2032. LCC technology is renowned for its efficiency in long-distance power transmission and its ability to manage large power flows with high reliability. As energy infrastructure expands and the integration of renewable energy sources becomes more critical, LCC systems offer a robust solution for stabilizing and transmitting electricity across extensive networks. Consequently, the demand for HVDC power supplies incorporating LCC technology is growing, driven by the need for efficient and reliable energy transmission.

Europe high voltage direct current power supply market will exhibit a notable CAGR from 2024 to 2032. Europe's commitment to reducing carbon emissions and enhancing grid stability drives the adoption of HVDC systems, which efficiently transmit power over long distances and interconnect diverse energy networks. Recent investments in HVDC technology, such as advancements in converter stations and improved system efficiency, further support market demand. As Europe continues to prioritize sustainable energy solutions and grid modernization, the need for advanced HVDC power supplies is expected to rise, fueling market expansion.

Product Code: 9948

Table of Contents

Chapter 1 Methodology & Scope

  • 1.1 Market scope & definition
  • 1.2 Base estimates & calculations
  • 1.3 Forecast calculation
  • 1.4 Data sources
    • 1.4.1 Primary
    • 1.4.2 Secondary
      • 1.4.2.1 Paid sources
      • 1.4.2.2 Public sources

Chapter 2 Executive Summary

  • 2.1 Industry 360º synopsis, 2021 - 2032

Chapter 3 Industry Insights

  • 3.1 Industry ecosystem analysis
  • 3.2 Vendor matrix
  • 3.3 Profit margin analysis
  • 3.4 Technology & innovation landscape
  • 3.5 Patent analysis
  • 3.6 Key news and initiatives
  • 3.7 Regulatory landscape
  • 3.8 Impact forces
    • 3.8.1 Growth drivers
      • 3.8.1.1 Renewable energy integration
      • 3.8.1.2 Intercontinental power transmission
      • 3.8.1.3 Remote and offshore wind energy
      • 3.8.1.4 Electric vehicle (EV) charging infrastructure
      • 3.8.1.5 Cross-border energy trading
    • 3.8.2 Industry pitfalls & challenges
      • 3.8.2.1 Complexity and technological challenges
      • 3.8.2.2 Regulatory and permitting hurdles
  • 3.9 Growth potential analysis
  • 3.10 Porter's analysis
    • 3.10.1 Supplier power
    • 3.10.2 Buyer power
    • 3.10.3 Threat of new entrants
    • 3.10.4 Threat of substitutes
    • 3.10.5 Industry rivalry
  • 3.11 PESTEL analysis

Chapter 4 Competitive Landscape, 2023

  • 4.1 Introduction
  • 4.2 Company market share analysis
  • 4.3 Competitive positioning matrix
  • 4.4 Strategic outlook matrix

Chapter 5 Market Estimates & Forecast, By Installation Type, 2021 - 2032 (USD Billion)

  • 5.1 Overhead
  • 5.2 Underground
  • 5.3 Subsea

Chapter 6 Market estimates & forecast, By Voltage Level, 2021 - 2032 (USD Billion)

    • 6.1.1000 V
  • 6.2. 1000-4000 V
  • 6.3. 4000 V

Chapter 7 Market estimates & forecast, By Technology, 2021 - 2032 (USD Billion)

  • 7.1 Line commutated converters (LCC)
  • 7.2 Voltage source converters (VSC)
  • 7.3 Ultra-High voltage direct current (UHVDC)

Chapter 8 Market estimates & forecast, By End-use Industry, 2021 - 2032 (USD Billion)

  • 8.1 Telecommunication
  • 8.2 Medical
  • 8.3 Oil & gas
  • 8.4 Industrial
  • 8.5 Others

Chapter 9 Market Estimates & Forecast, By Region, 2021 - 2032 (USD Billion)

  • 9.1 Key trends
  • 9.2 North America
    • 9.2.1 U.S.
    • 9.2.2 Canada
  • 9.3 Europe
    • 9.3.1 UK
    • 9.3.2 Germany
    • 9.3.3 France
    • 9.3.4 Italy
    • 9.3.5 Spain
    • 9.3.6 Rest of Europe
  • 9.4 Asia Pacific
    • 9.4.1 China
    • 9.4.2 India
    • 9.4.3 Japan
    • 9.4.4 South Korea
    • 9.4.5 ANZ
    • 9.4.6 Rest of Asia Pacific
  • 9.5 Latin America
    • 9.5.1 Brazil
    • 9.5.2 Mexico
    • 9.5.3 Rest of Latin America
  • 9.6 MEA
    • 9.6.1 UAE
    • 9.6.2 South Africa
    • 9.6.3 Saudi Arabia
    • 9.6.4 Rest of MEA

Chapter 10 Company Profiles

  • 10.1 ABB Ltd.
  • 10.2 Siemens AG
  • 10.3 General Electric (GE)
  • 10.4 Hitachi Energy (formerly Hitachi ABB Power Grids)
  • 10.5 Toshiba Corporation
  • 10.6 Mitsubishi Electric Corporation
  • 10.7 Nexans
  • 10.8 Prysmian Group
  • 10.9 NR Electric Co., Ltd.
  • 10.10 C-EPRI Electric Power Engineering Co., Ltd.
  • 10.11 Alstom (now part of GE Grid Solutions)
  • 10.12 Schneider Electric
  • 10.13 Siemens Gamesa Renewable Energy
  • 10.14 NKT A/S
  • 10.15 LS Cable & System
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Christine Sirois

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