1. 方法論と範囲
1.1. 調査方法
1.2. 調査目的と調査範囲
2. 定義と概要
3. エグゼクティブ・サマリー
3.1. フェーズ別スニペット
3.2. タイプ別スニペット
3.3. 定格電圧別スニペット
3.4. 製品別スニペット
3.5. エンドユーザー別スニペット
3.6. 地域別スニペット
4. ダイナミクス
4.1. 影響要因
4.1.1. 推進要因
4.1.1.1. 送配電近代化の世界的な推進
4.1.1.2. 拡大するエネルギー情勢と送電インフラ強化の需要
4.1.2. 阻害要因
4.1.2.1. 従来型からフレキシブルなACおよびHVDCシステムへのシフト
4.1.3. 機会
4.1.4. 影響分析
5. 産業分析
5.1. ポーターのファイブフォース分析
5.2. サプライチェーン分析
5.3. 価格分析
5.4. 規制分析
5.5. ロシア・ウクライナ戦争の影響分析
5.6. DMI意見
6. フェーズ別
6.1. はじめに
6.1.1. フェーズ別市場規模分析と前年比成長率分析(%)
6.1.2. 市場魅力度指数、フェーズ別
6.2. 単相*市場
6.2.1. 序論
6.2.2. 市場規模分析と前年比成長率分析(%)
6.3. 三相
7. タイプ別
7.1. 導入
7.1.1. 市場規模分析および前年比成長率分析(%), タイプ別
7.1.2. 市場魅力度指数:材料タイプ別
7.2. オイル浸漬*市場
7.2.1. 序論
7.2.2. 市場規模分析と前年比成長率分析(%)
7.3. エアーコア
8. 定格電圧別
8.1. はじめに
8.1.1. 定格電圧別市場規模分析および前年比成長率分析 (%)
8.1.2. 市場魅力度指数(定格電圧別
8.2. 200kV未満
8.2.1. 序論
8.2.2. 市場規模分析と前年比成長率分析(%)
8.3. 200kV-400kV
8.4. 400kV 以上
9. 製品別
9.1. 製品紹介
9.1.1. 市場規模分析および前年比成長率分析(%), 製品別
9.1.2. 市場魅力度指数, 製品別
9.2. 固定*市場
9.2.1. 導入
9.2.2. 市場規模分析と前年比成長率分析(%)
9.3. 変数
10. エンドユーザー別
10.1. はじめに
10.1.1. 市場規模分析および前年比成長率分析(%), 技術別
10.1.2. 市場魅力度指数、技術別
10.2. 電気事業
10.2.1. 序論
10.2.2. 市場規模分析と前年比成長率分析(%)
10.3. 再生可能エネルギー
11. 地域別
11.1. はじめに
11.1.1. 地域別市場規模分析および前年比成長率分析(%)
11.1.2. 市場魅力度指数、地域別
11.2. 北米
11.2.1. 序論
11.2.2. 主な地域別ダイナミクス
11.2.3. 市場規模分析および前年比成長率分析(%)、フェーズ別
11.2.4. 市場規模分析および前年比成長率分析 (%)、タイプ別
11.2.5. 市場規模分析および前年比成長率分析 (%)、定格電圧別
11.2.6. 市場規模分析および前年比成長率分析 (%)、製品別
11.2.7. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.2.8. 市場規模分析および前年比成長率分析 (%)、国別
11.2.8.1. 米国
11.2.8.2. カナダ
11.2.8.3. メキシコ
11.3. ヨーロッパ
11.3.1. はじめに
11.3.2. 主な地域別動向
11.3.3. 市場規模分析および前年比成長率分析(%), 製品仕様別
11.3.4. 市場規模分析および前年比成長率分析 (%)、フェーズ別
11.3.5. 市場規模分析および前年比成長率分析(%)、タイプ別
11.3.6. 市場規模分析および前年比成長率分析 (%)、定格電圧別
11.3.7. 市場規模分析および前年比成長率分析 (%)、製品別
11.3.8. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.3.9. 市場規模分析および前年比成長率分析 (%)、国別
11.3.9.1. ドイツ
11.3.9.2. イギリス
11.3.9.3. フランス
11.3.9.4. イタリア
11.3.9.5. スペイン
11.3.9.6. その他のヨーロッパ
11.4. 南米
11.4.1. はじめに
11.4.2. 地域別主要市場
11.4.3. 市場規模分析および前年比成長率分析(%), 製品仕様別
11.4.4. 市場規模分析および前年比成長率分析 (%)、フェーズ別
11.4.5. 市場規模分析および前年比成長率分析(%)、タイプ別
11.4.6. 市場規模分析および前年比成長率分析 (%)、定格電圧別
11.4.7. 市場規模分析および前年比成長率分析 (%)、製品別
11.4.8. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.4.9. 市場規模分析および前年比成長率分析 (%)、国別
11.4.9.1. ブラジル
11.4.9.2. アルゼンチン
11.4.9.3. その他の南米地域
11.5. アジア太平洋
11.5.1. はじめに
11.5.2. 主な地域別ダイナミクス
11.5.3. 市場規模分析および前年比成長率分析(%), 製品仕様別
11.5.4. 市場規模分析および前年比成長率分析 (%)、フェーズ別
11.5.5. 市場規模分析および前年比成長率分析(%)、タイプ別
11.5.6. 市場規模分析および前年比成長率分析 (%)、定格電圧別
11.5.7. 市場規模分析および前年比成長率分析 (%)、製品別
11.5.8. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
11.5.9. 市場規模分析および前年比成長率分析 (%)、国別
11.5.9.1. 中国
11.5.9.2. インド
11.5.9.3. 日本
11.5.9.4. オーストラリア
11.5.9.5. その他のアジア太平洋地域
11.6. 中東・アフリカ
11.6.1. 序論
11.6.2. 主な地域別ダイナミクス
11.6.3. 市場規模分析および前年比成長率分析(%), 製品仕様別
11.6.4. 市場規模分析および前年比成長率分析 (%)、フェーズ別
11.6.5. 市場規模分析および前年比成長率分析(%)、タイプ別
11.6.6. 市場規模分析および前年比成長率分析 (%)、定格電圧別
11.6.7. 市場規模分析および前年比成長率分析 (%)、製品別
11.6.8. 市場規模分析および前年比成長率分析 (%)、エンドユーザー別
12. 競合情勢
12.1. 競争シナリオ
12.2. 市場ポジショニング/シェア分析
12.3. M&A分析
13. 企業プロフィール
13.1. GE *
13.1.1. Company Overview
13.1.2. Product Portfolio and Description
13.1.3. Financial Overview
13.1.4. Key Developments
13.2. Siemens
13.3. Toshiba Corporation
13.4. CG Power and Industrial Solutions Limited
13.5. Hitachi Energy
13.6. Hyosung Corporation
13.7. ABB Ltd
13.8. Nissin Electric Co Ltd
13.9. Fuji Electric Co., Ltd.
13.10. GBE SpA
リストは網羅的ではありません
14. 付録
14.1. 会社概要とサービス
14.2. お問い合わせ
Global Shunt Reactor Market reached US$ 2.86 billion in 2023 and is expected to reach US$ 5.22 billion by 2031, growing with a CAGR of 7.81% during the forecast period 2024-2031.
The necessity to enhance system efficiency and ensure dependable power is escalating the demand for a shunt reactor. The necessity for protective measures against abrupt voltage surges and investments in enhancing current transmission and distribution networks is increasing the demand for shunt reactors. The rising need for energy will stimulate the need for products, solutions and services related to the energy sector.
The Ministry of Energy of the Republic of Lithuania has initiated a project to synchronize its power network with the Western European grid. This initiative will diminish electric power transmission capacities with Belarus and obstruct the future flow of electricity from the hazardous Astravets Nuclear Power Plant (NPP).
The North-East Lithuanian rebuilding project entails the reconstruction of two 330 kV transformer substations located in Ignalina and Utena. A 330 kV shunt reactor will be relocated from the Ignalina substation to the 330 kV switchyard in Elektrėnai.
The increasing global demand for a reliable and secure power supply, along with governmental efforts to diminish carbon emissions, is expected to significantly enhance the expansion of the renewable energy sector. Since 2020, the global energy business has had remarkable expansion in the renewable energy industry, notwithstanding the pandemic. In 2020, renewable project deployments accelerated as policy deadlines in significant markets increased by 45% compared to 2019, according to statistics from the International Energy Agency.
Policy deadlines in China and US catalyzed an extraordinary surge in renewable capacity expansions in 2020, notwithstanding the pervasive pandemic. China alone increased its renewable capacity by 137 GW, whereas US augmented its renewable capacity by 36.6 GW. The swiftly growing renewable energy sector is expected to create profitable prospects for the market.
Dynamics
The Global Push for Transmission and Distribution Modernization
The worldwide increase in transmission line development and modernization initiatives is anticipated to elevate the need for transmission and distribution apparatus, especially shunt reactors. With the growing complexity of grids and the integration of renewable energy sources, utilities are implementing equipment such as transformers and reactors to regulate voltage levels and stabilize systems. Therefore, as the demand for power and generation escalates, there is an imperative necessity to enhance and modernize transmission and distribution infrastructure.
In January 2022, US Department of Energy initiated the 'Building a Better Grid' program to promote the establishment of new high-capacity transmission lines. In April 2022, Hitachi Energy India Ltd. obtained a US$ 19.7 million contract to enhance the transmission infrastructure in rural regions of Madhya Pradesh. The initiatives and escalating investments to satisfy growing energy demands are anticipated to propel market expansion in the forthcoming years.
Expanding Energy Landscape and the Demand for Enhanced Transmission Infrastructure
Recent fast urbanization and industrialization, especially in emerging economies, have markedly heightened energy demand. Consequently, governments globally are concentrating on augmenting their power producing capacities to guarantee a dependable electricity supply. India has achieved a significant 70% augmentation in its power generation capacity from 2014 to 2023. The country has evolved from an electricity deficit to a surplus, incorporating approximately 97,500 MW of renewable energy in the last ten years, achieving a total generation capacity of 425,536 MW by October 2023.
Significant nations such as China, the US and India have had considerable expansions in their power generation capacities in recent years. India intends to augment its infrastructure by including 27,000 circuit kilometers of power transmission networks by 2024 and aims for 500 GW of electricity generation from non-fossil fuels. The Central Electricity Authority (CEA) projects a requirement for an extra 228,541 MW to satisfy peak electricity demand by 2027.
The Shift from Conventional to Flexible AC and HVDC Systems
Flexible AC Transmission Systems (FACTS), HVDC systems and other innovative technologies have emerged in response to the increasing emphasis on grid stability and reducing energy loss during transmission. Conventional grid stabilization methods, which rely on capacitors and reactors, face performance and speed limitations. These constraints are driving the shift toward more efficient solutions like FACTS and HVDC systems.
FACTS devices are power electronic systems that are becoming increasingly prevalent in power transmission networks. They enhance power transfer capacity, improve grid stability and provide rapid reactive power and voltage support. Reactive power transmission can cause significant voltage fluctuations, limiting the active power capacity and increasing losses. Implementing Fixed Series Capacitors (FSC) can boost the dynamic power capacity of existing lines, leading to greater efficiency and reduced fuel consumption.
As a result, more active power can be transmitted and the growing adoption of these advanced technologies is expected to diminish the need for traditional transmission and distribution equipment in the near future.
Segment Analysis
The global shunt reactor market is segmented based on phase, type, rated voltage, product, end-user and region.
Variable Advancement in High-Voltage Transmission with Renewable Energy Integration
Variable Shunt Reactors (VSR) are employed in high-voltage energy transmission networks to regulate voltage fluctuations during load changes. A conventional shunt reactor has a fixed rating and is continuously connected to the power line or switched in and out based on the load requirements. The rating of a VSR may be adjusted incrementally.
The maximal regulation range is contingent upon the capacity of the on-load tap changer utilized alongside the regulation winding employed for the shunt reactor. The maximum regulation range has increased over the years, from 50% to 80% at certain voltage levels. The variability offers greater advantages than a conventional fixed shunt reactor. The VSR can consistently adjust reactive power in response to load fluctuations, hence ensuring voltage stability.
Numerous countries worldwide are progressively prioritizing the renewable energy industry to decrease their power consumption expenses. In 2019, UK's renewable energy sector surpassed fossil fuel plants for 137 days, marking the country's most environmentally sustainable year. Due to the increasing investments in renewable energy in the region, shunt reactor providers are aligning their products with industry demands. Siemens in UK has constructed a notable variable shunt reactor with a rating of 120-300 MVAr, a rated voltage of 220 kV, a weight of 317 metric tons and dimensions of around 10x8.5x8 meters.
Geographical Penetration
Investments in Asia-Pacific Transmission and Distribution Infrastructure
Investments in enhancing Transmission and Distribution infrastructure in Asia-Pacific are rising due to sustained growth in power demand from residential and commercial sectors. To satisfy the electrical requirements of urban and industrial areas in China, the State Grid Corporation of China (SGCC) is constructing 12 transmission lines connecting coal production and hydropower facilities, with a project cost of US$ 33.7 billion. China's state grid organization reports that the line can transmit a maximum of 12 gigawatts, sufficient to supply power to 50 million households in China.
The March 2020 study from the South Asia Regional Initiative for Energy Integration indicates that the South Asian power grid necessitates an investment of INR 45,000 by 2030, as cross-border energy commerce is anticipated to rise in the region. In April 2019, with the assistance of Development Bank of Kazakhstan JSC, a subsidiary of “Baiterek” NMH” JSC, the production of high-voltage transformers and shunt reactors commenced in Shymkent. The products will be distributed to the markets of the CIS nations, Iran, Afghanistan and Pakistan.
The significant investments in transmission and distribution infrastructure throughout Asia-Pacific underscore a strategic response to rising electricity demand, facilitating improved energy security and cross-border electricity trade that can greatly benefit the entire region.
Competitive Landscape
The major global players in the market include GE, Siemens, Toshiba Corporation, CG Power and Industrial Solutions Limited, Hitachi Energy, Hyosung Corporation, ABB Ltd, Nissin Electric Co Ltd, Fuji Electric Co., Ltd. and GBE SpA.
Russia-Ukraine War Impact Analysis
The Russia-Ukraine conflict profoundly impacts the shunt reactor market, chiefly because to its repercussions on the semiconductor supply chain. Shunt reactors depend on multiple semiconductor components for functionality and the current dispute intensifies pre-existing shortages of vital raw materials like neon and palladium, which are crucial for semiconductor production.
Although the short-term effects on semiconductor production may be controllable, the unpredictability of raw material costs and supply chains presents a concern for the medium to long term. Companies in the shunt reactor industry must proactively evaluate their supply chains and formulate contingency plans to alleviate problems resulting from the war and associated sanctions. Investigating alternate sources for essential minerals and investing in recycling technology may be vital solutions to guarantee sustainability and stability amid any supply issues.
Phase
● Single Phase
● Three Phase
Type
● Oil Immersed
● Air Core
Rated Voltage
● Less than 200 kV
● 200kV-400kV
● Above 400kV
Product
● Fixed
● Variable
End-User
● Electric Utility
● Renewable Energy
By Region
● North America
o US
o Canada
o Mexico
● Europe
o Germany
o UK
o France
o Italy
o Spain
o Rest of Europe
● South America
o Brazil
o Argentina
o Rest of South America
● Asia-Pacific
o China
o India
o Japan
o Australia
o Rest of Asia-Pacific
● Middle East and Africa
Key Developments
● In February 2024, GE Vernova's Grid Solutions division obtained substantial multi-million-dollar contracts with the Power Grid Corporation of India (PGCIL) for the provision of 765 kV Shunt Reactors. These reactors are essential for improving the stability and efficiency of India's electrical transmission system, especially as the nation strives to include additional renewable energy sources into its grid.
● In April 2022, Hitachi Energy launched OceaniQ transformers and shunt reactors specifically engineered for offshore applications. This effort seeks to improve the efficacy and sustainability of offshore activities, especially within the renewable energy sector. OceaniQ specializes in new solutions that enhance the administration of offshore assets, ensuring superior performance and reliability.
● In September 2022, ABB announced the execution of an agreement with Hitachi Ltd. to dispose its remaining 19.9% ownership in the joint venture Hitachi ABB Power Grids, established in 2020.
● In March 2022, Siemens Energy divested its 35% interest in the joint venture Voith Hydro, previously known as Voith Siemens Hydro Power Generation. This acquisition renders Voith Group the sole owner of the Voith Hydro Group Division.
● In January 2022, Trench Group, a subsidiary of Siemens Energy, launched a 500kV Dry-Type Reactor. The company asserts it is the world's inaugural 500kV Dry-Type Reactor and possesses technology enabling the production of high-voltage dry-type reactors up to 550 kV.
Why Purchase the Report?
● To visualize the global shunt reactor market segmentation based on phase, type, rated voltage, product, end-user and region, as well as understand key commercial assets and players.
● Identify commercial opportunities by analyzing trends and co-development.
● Excel data sheet with numerous data points of the shunt reactor market-level with all segments.
● PDF report consists of a comprehensive analysis after exhaustive qualitative interviews and an in-depth study.
● Product mapping available as excel consisting of key products of all the major players.
The global shunt reactor market report would provide approximately 78 tables, 68 figures and 224 pages.
Target Audience 2024
• Manufacturers/ Buyers
• Industry Investors/Investment Bankers
• Research Professionals
• Emerging Companies
1. Methodology and Scope
1.1. Research Methodology
1.2. Research Objective and Scope of the Report
2. Definition and Overview
3. Executive Summary
3.1. Snippet by Phase
3.2. Snippet by Type
3.3. Snippet by Rated Voltage
3.4. Snippet by Product
3.5. Snippet by End-User
3.6. Snippet by Region
4. Dynamics
4.1. Impacting Factors
4.1.1. Drivers
4.1.1.1. The Global Push for Transmission and Distribution Modernization
4.1.1.2. Expanding Energy Landscape and the Demand for Enhanced Transmission Infrastructure
4.1.2. Restraints
4.1.2.1. The Shift from Conventional to Flexible AC and HVDC Systems
4.1.3. Opportunity
4.1.4. Impact Analysis
5. Industry Analysis
5.1. Porter's Five Force Analysis
5.2. Supply Chain Analysis
5.3. Pricing Analysis
5.4. Regulatory Analysis
5.5. Russia-Ukraine War Impact Analysis
5.6. DMI Opinion
6. By Phase
6.1. Introduction
6.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Phase
6.1.2. Market Attractiveness Index, By Phase
6.2. Single Phase*
6.2.1. Introduction
6.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
6.3. Three Phase
7. By Type
7.1. Introduction
7.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
7.1.2. Market Attractiveness Index, By Material Type
7.2. Oil Immersed*
7.2.1. Introduction
7.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
7.3. Air Core
8. By Rated Voltage
8.1. Introduction
8.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Rated Voltage
8.1.2. Market Attractiveness Index, By Rated Voltage
8.2. Less than 200 kV*
8.2.1. Introduction
8.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
8.3. 200kV-400kV
8.4. Above 400kV
9. By Product
9.1. Introduction
9.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product
9.1.2. Market Attractiveness Index, By Product
9.2. Fixed*
9.2.1. Introduction
9.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
9.3. Variable
10. By End-User
10.1. Introduction
10.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Technology
10.1.2. Market Attractiveness Index, By Technology
10.2. Electric Utility*
10.2.1. Introduction
10.2.2. Market Size Analysis and Y-o-Y Growth Analysis (%)
10.3. Renewable Energy
11. By Region
11.1. Introduction
11.1.1. Market Size Analysis and Y-o-Y Growth Analysis (%), By Region
11.1.2. Market Attractiveness Index, By Region
11.2. North America
11.2.1. Introduction
11.2.2. Key Region-Specific Dynamics
11.2.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Phase
11.2.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.2.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Rated Voltage
11.2.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product
11.2.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.2.8. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.2.8.1. US
11.2.8.2. Canada
11.2.8.3. Mexico
11.3. Europe
11.3.1. Introduction
11.3.2. Key Region-Specific Dynamics
11.3.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product Specification
11.3.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Phase
11.3.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.3.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Rated Voltage
11.3.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product
11.3.8. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.3.9. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.3.9.1. Germany
11.3.9.2. UK
11.3.9.3. France
11.3.9.4. Italy
11.3.9.5. Spain
11.3.9.6. Rest of Europe
11.4. South America
11.4.1. Introduction
11.4.2. Key Region-Specific Dynamics
11.4.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product Specification
11.4.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Phase
11.4.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.4.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Rated Voltage
11.4.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product
11.4.8. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.4.9. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.4.9.1. Brazil
11.4.9.2. Argentina
11.4.9.3. Rest of South America
11.5. Asia-Pacific
11.5.1. Introduction
11.5.2. Key Region-Specific Dynamics
11.5.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product Specification
11.5.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Phase
11.5.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.5.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Rated Voltage
11.5.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product
11.5.8. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
11.5.9. Market Size Analysis and Y-o-Y Growth Analysis (%), By Country
11.5.9.1. China
11.5.9.2. India
11.5.9.3. Japan
11.5.9.4. Australia
11.5.9.5. Rest of Asia-Pacific
11.6. Middle East and Africa
11.6.1. Introduction
11.6.2. Key Region-Specific Dynamics
11.6.3. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product Specification
11.6.4. Market Size Analysis and Y-o-Y Growth Analysis (%), By Phase
11.6.5. Market Size Analysis and Y-o-Y Growth Analysis (%), By Type
11.6.6. Market Size Analysis and Y-o-Y Growth Analysis (%), By Rated Voltage
11.6.7. Market Size Analysis and Y-o-Y Growth Analysis (%), By Product
11.6.8. Market Size Analysis and Y-o-Y Growth Analysis (%), By End-User
12. Competitive Landscape
12.1. Competitive Scenario
12.2. Market Positioning/Share Analysis
12.3. Mergers and Acquisitions Analysis
13. Company Profiles
13.1. GE *
13.1.1. Company Overview
13.1.2. Product Portfolio and Description
13.1.3. Financial Overview
13.1.4. Key Developments
13.2. Siemens
13.3. Toshiba Corporation
13.4. CG Power and Industrial Solutions Limited
13.5. Hitachi Energy
13.6. Hyosung Corporation
13.7. ABB Ltd
13.8. Nissin Electric Co Ltd
13.9. Fuji Electric Co., Ltd.
13.10. GBE SpA
LIST NOT EXHAUSTIVE
14. Appendix
14.1. About Us and Services
14.2. Contact Us
❖ 世界の分路リアクター市場に関するよくある質問(FAQ) ❖
・分路リアクターの世界市場規模は?
→DataM Intelligence社は2023年の分路リアクターの世界市場規模を28.6億米ドルと推定しています。
・分路リアクターの世界市場予測は?
→DataM Intelligence社は2031年の分路リアクターの世界市場規模を52.2億米ドルと予測しています。
・分路リアクター市場の成長率は?
→DataM Intelligence社は分路リアクターの世界市場が2024年~2031年に年平均7.8%成長すると予測しています。
・世界の分路リアクター市場における主要企業は?
→DataM Intelligence社は「GE, Siemens, Toshiba Corporation, CG Power and Industrial Solutions Limited, Hitachi Energy, Hyosung Corporation, ABB Ltd, Nissin Electric Co Ltd, Fuji Electric Co., Ltd. and GBE SpA.など ...」をグローバル分路リアクター市場の主要企業として認識しています。
※上記FAQの市場規模、市場予測、成長率、主要企業に関する情報は本レポートの概要を作成した時点での情報であり、納品レポートの情報と少し異なる場合があります。