1 序文
2 調査範囲と方法論
2.1 調査の目的
2.2 ステークホルダー
2.3 データソース
2.3.1 一次情報源
2.3.2 二次情報源
2.4 市場推定
2.4.1 ボトムアップアプローチ
2.4.2 トップダウンアプローチ
2.5 予測方法
3 エグゼクティブ・サマリー
4 はじめに
4.1 概要
4.2 主要産業動向
5 計器用変圧器の世界市場
5.1 市場概要
5.2 市場パフォーマンス
5.3 COVID-19の影響
5.4 市場予測
6 種類別市場内訳
6.1 変流器
6.1.1 市場動向
6.1.2 市場予測
6.2 ポテンシャルトランス
6.2.1 市場動向
6.2.2 市場予測
6.3 複合計器用変圧器
6.3.1 市場動向
6.3.2 市場予測
7 電圧別市場
7.1 配電電圧
7.1.1 市場動向
7.1.2 市場予測
7.2 副送電電圧
7.2.1 市場動向
7.2.2 市場予測
7.3 高圧送電
7.3.1 市場動向
7.3.2 市場予測
7.4 超高圧送電
7.4.1 市場動向
7.4.2 市場予測
7.5 超高圧送電
7.5.1 市場動向
7.5.2 市場予測
8 エンクロージャ種類別市場内訳
8.1 屋内用
8.1.1 市場動向
8.1.2 市場予測
8.2 屋外用
8.2.1 市場動向
8.2.2 市場予測
9 冷却方式別市場構成
9.1 乾式
9.1.1 市場動向
9.1.2 市場予測
9.2 油浸式
9.2.1 市場動向
9.2.2 市場予測
10 用途別市場構成
10.1 変圧器・遮断器ブッシング
10.1.1 市場動向
10.1.2 市場予測
10.2 開閉器アセンブリ
10.2.1 市場動向
10.2.2 市場予測
10.3 リレー
10.3.1 市場動向
10.3.2 市場予測
10.4 計量と保護
10.4.1 市場動向
10.4.2 市場予測
11 エンドユーザー別市場
11.1 電力ユーティリティ
11.1.1 市場動向
11.1.2 市場予測
11.2 発電事業
11.2.1 市場動向
11.2.2 市場予測
11.3 鉄道とメトロ
11.3.1 市場動向
11.3.2 市場予測
11.4 産業とOEM
11.4.1 市場動向
11.4.2 市場予測
12 地域別市場内訳
12.1 北米
12.1.1 米国
12.1.1.1 市場動向
12.1.1.2 市場予測
12.1.2 カナダ
12.1.2.1 市場動向
12.1.2.2市場予測
12.2 アジア太平洋
12.2.1 中国
12.2.1.1 市場動向
12.2.1.2 市場予測
12.2.2 日本
12.2.2.1 市場動向
12.2.2.2 市場予測
12.2.3 インド
12.2.3.1 市場動向
12.2.3.2 市場予測
12.2.4 韓国
12.2.4.1 市場動向
12.2.4.2 市場予測
12.2.5 オーストラリア
12.2.5.1 市場動向
12.2.5.2 市場予測
12.2.6 インドネシア
12.2.6.1 市場動向
12.2.6.2 市場予測
12.2.7 その他
12.2.7.1 市場動向
12.2.7.2 市場予測
12.3 ヨーロッパ
12.3.1 ドイツ
12.3.1.1 市場動向
12.3.1.2 市場予測
12.3.2 フランス
12.3.2.1 市場動向
12.3.2.2 市場予測
12.3.3 イギリス
12.3.3.1 市場動向
12.3.3.2 市場予測
12.3.4 イタリア
12.3.4.1 市場動向
12.3.4.2 市場予測
12.3.5 スペイン
12.3.5.1 市場動向
12.3.5.2 市場予測
12.3.6 ロシア
12.3.6.1 市場動向
12.3.6.2 市場予測
12.3.7 その他
12.3.7.1 市場動向
12.3.7.2 市場予測
12.4 中南米
12.4.1 ブラジル
12.4.1.1 市場動向
12.4.1.2 市場予測
12.4.2 メキシコ
12.4.2.1 市場動向
12.4.2.2 市場予測
12.4.3 その他
12.4.3.1 市場動向
12.4.3.2 市場予測
12.5 中東・アフリカ
12.5.1 市場動向
12.5.2 国別市場内訳
12.5.3 市場予測
13 推進要因、阻害要因、機会
13.1 概要
13.2 推進要因
13.3 制止要因
13.4 機会
14 バリューチェーン分析
15 ポーターズファイブフォース分析
15.1 概要
15.2 買い手の交渉力
15.3 供給者の交渉力
15.4 競争の程度
15.5 新規参入の脅威
15.6 代替品の脅威
16 価格分析
17 競争環境
17.1 市場構造
17.2 主要プレーヤー
Instrument transformer refers to electrical devices that step down transmission and distribution line voltages and currents to safe operating levels. It is connected to various instruments, such as voltmeters, ammeters, and watt and energy meters. Instrument transformers are widely used to isolate instruments from high-voltage circuits and to measure several electrical parameters, including current, voltage, energy, frequency, and power. It is used with protective circuits to operate circuit breakers and relays to protect power systems. Instrument transformer ensures operators' safety, standardizes measuring instruments, reduces the requirement for electrical insulation, and minimizes power consumption. It is also a cost-effective device that is easy to replace when damaged, provides convenient handling, and allows the connection of multiple instruments to the power system. As a result, instrument transformer finds extensive applications in the power utilities, railways, metros, and power generation.
Instrument Transformer Market Trends:
The rising energy consumption across the globe is one of the primary factors driving the market growth. The rapid expansion of power transmission and distribution networks to cater to the escalating energy demand from residential spaces, commercial establishments, railways, metros, and other industries is facilitating the adoption of instrument transformers to aid in the efficient monitoring and protection of power systems and ensure reliable operations. In addition to this, the increasing renovation activities of the existing grid network due to the rising complexities of the electrical infrastructure, coupled with emerging peak electricity demand from end users, is acting as another growth-inducing factor. Furthermore, the widespread product utilization in renewable energy stations to monitor the electricity generation from solar arrays, provide harmonic measurements, and ensure efficient integration with the existing grid is positively influencing the market growth. Additionally, the recent development of next-generation instrument transformers that uses optical sensor technology to measure current and voltage and offers a dynamic range, excellent accuracy, high-frequency response, and ensure effective control of the distribution system through real-time measurement is providing an impetus to the market growth. Apart from this, the introduction of lightweight digital instrument transformers that contain fewer wires, require low maintenance, are easy to install and upgrade, and offer enhanced safety is propelling the market growth. Other factors, including the rapid development of smart grid and ultra-high voltage infrastructure, the implementation of various government initiatives to promote renewable energy generations, and rising concerns regarding grid stability and failure, are anticipated to drive the market growth.
Key Market Segmentation:
IMARC Group provides an analysis of the key trends in each segment of the global instrument transformer market, along with forecasts at the global, regional, and country level from 2025-2033. Our report has categorized the market based on type, voltage, enclosure type, cooling method, application, and end user.
Type Insights:
Current Transformers
Potential Transformers
Combined Instrument Transformers
The report has also provided a detailed breakup and analysis of the instrument transformer market based on the type. This includes current, potential, and combined instrument transformers. According to the report, current transformer represented the largest segment.
Voltage Insights:
Distribution Voltage
Sub-Transmission Voltage
High Voltage Transmission
Extra High Voltage Transmission
Ultra-High Voltage Transmission
A detailed breakup and analysis of the instrument transformer market based on the voltage has been provided in the report. This includes distribution voltage, sub-transmission voltage, high voltage transmission, extra high voltage transmission, and ultra-high voltage transmission. According to the report, high voltage transmission accounted for the largest market share.
Enclosure Type Insights:
Indoor
Outdoor
A detailed breakup and analysis of the instrument transformer market based on the enclosure type has been provided in the report. This includes indoor and outdoor. According to the report, outdoor accounted for the largest market share.
Cooling Method Insights:
Dry-Type
Oil Immersion
A detailed breakup and analysis of the instrument transformer market based on the cooling method has been provided in the report. This includes dry-type and oil immersion. According to the report, oil immersion accounted for the largest market share.
Application Insights:
Transformer and Circuit Breaker Bushing
Switchgear Assemblies
Relaying
Metering and Protection
A detailed breakup and analysis of the instrument transformer market based on the application has been provided in the report. This includes transformer and circuit breaker bushing, switchgear assemblies, relaying, and metering and protection. According to the report, metering and protection accounted for the largest market share.
End User Insights:
Power Utilities
Power Generation
Railway and Metros
Industries and OEMs
A detailed breakup and analysis of the instrument transformer market based on the end user has been provided in the report. This includes power utilities, power generation, railway and metros, and industries and OEMs. According to the report, power utilities accounted for the largest market share.
Regional Insights:
North America
United States
Canada
Asia Pacific
China
Japan
India
South Korea
Australia
Indonesia
Others
Europe
Germany
France
United Kingdom
Italy
Spain
Russia
Others
Latin America
Brazil
Mexico
Others
Middle East and Africa
The report has also provided a comprehensive analysis of all the major regional markets that include North America (the United States and Canada); Asia Pacific (China, Japan, India, South Korea, Australia, Indonesia, and others); Europe (Germany, France, the United Kingdom, Italy, Spain, Russia, and others); Latin America (Brazil, Mexico, and others); and Middle East and Africa. According to the report, Asia Pacific was the largest market for instrument transformer. Some of the factors driving the Asia Pacific instrument transformer market include rising infrastructural expenditure, refurbishment of the existing grid infrastructure, and the deployment of renewable energy.
Competitive Landscape:
The report has also provided a comprehensive analysis of the competitive landscape in the global instrument transformer market. Detailed profiles of all major companies have also been provided. Some of the companies covered include ABB Ltd., Amran Inc, CG Power and Industrial Solutions Limited (Murugappa Group), Eaton Corporation plc, EMEK Electrical Industry Inc, Indian Transformers and Electricals PVt. Ltd, Instrument Transformer Equipment Corporation (Power Grid Components Inc.), Mehru Electrical & Mechanical Engineers (P) Ltd, Mitsubishi Electric Corporation, Pfiffner Instrument Transformers Ltd, Schneider Electric SE, Siemens AG, Toshiba Corporation, etc.
Key Questions Answered in This Report
]
How has the global instrument transformer market performed so far and how will it perform in the coming years?
What are the drivers, restraints, and opportunities in the global instrument transformer market?
What are the key regional markets?
Which countries represent the most attractive instrument transformer markets?
What is the breakup of the market based on the type?
What is the breakup of the market based on the voltage?
What is the breakup of the market based on the enclosure type?
What is the breakup of the market based on the cooling method?
What is the breakup of the market based on the application?
What is the breakup of the market based on the end user?
What is the competitive structure of the global instrument transformer market?
Who are the key players/companies in the global instrument transformer market?
1 Preface
2 Scope and Methodology
2.1 Objectives of the Study
2.2 Stakeholders
2.3 Data Sources
2.3.1 Primary Sources
2.3.2 Secondary Sources
2.4 Market Estimation
2.4.1 Bottom-Up Approach
2.4.2 Top-Down Approach
2.5 Forecasting Methodology
3 Executive Summary
4 Introduction
4.1 Overview
4.2 Key Industry Trends
5 Global Instrument Transformer Market
5.1 Market Overview
5.2 Market Performance
5.3 Impact of COVID-19
5.4 Market Forecast
6 Market Breakup by Type
6.1 Current Transformers
6.1.1 Market Trends
6.1.2 Market Forecast
6.2 Potential Transformers
6.2.1 Market Trends
6.2.2 Market Forecast
6.3 Combined Instrument Transformers
6.3.1 Market Trends
6.3.2 Market Forecast
7 Market Breakup by Voltage
7.1 Distribution Voltage
7.1.1 Market Trends
7.1.2 Market Forecast
7.2 Sub-Transmission Voltage
7.2.1 Market Trends
7.2.2 Market Forecast
7.3 High Voltage Transmission
7.3.1 Market Trends
7.3.2 Market Forecast
7.4 Extra High Voltage Transmission
7.4.1 Market Trends
7.4.2 Market Forecast
7.5 Ultra-High Voltage Transmission
7.5.1 Market Trends
7.5.2 Market Forecast
8 Market Breakup by Enclosure Type
8.1 Indoor
8.1.1 Market Trends
8.1.2 Market Forecast
8.2 Outdoor
8.2.1 Market Trends
8.2.2 Market Forecast
9 Market Breakup by Cooling Method
9.1 Dry-Type
9.1.1 Market Trends
9.1.2 Market Forecast
9.2 Oil Immersion
9.2.1 Market Trends
9.2.2 Market Forecast
10 Market Breakup by Application
10.1 Transformer and Circuit Breaker Bushing
10.1.1 Market Trends
10.1.2 Market Forecast
10.2 Switchgear Assemblies
10.2.1 Market Trends
10.2.2 Market Forecast
10.3 Relaying
10.3.1 Market Trends
10.3.2 Market Forecast
10.4 Metering and Protection
10.4.1 Market Trends
10.4.2 Market Forecast
11 Market Breakup by End User
11.1 Power Utilities
11.1.1 Market Trends
11.1.2 Market Forecast
11.2 Power Generation
11.2.1 Market Trends
11.2.2 Market Forecast
11.3 Railways and Metros
11.3.1 Market Trends
11.3.2 Market Forecast
11.4 Industries and OEMs
11.4.1 Market Trends
11.4.2 Market Forecast
12 Market Breakup by Region
12.1 North America
12.1.1 United States
12.1.1.1 Market Trends
12.1.1.2 Market Forecast
12.1.2 Canada
12.1.2.1 Market Trends
12.1.2.2 Market Forecast
12.2 Asia-Pacific
12.2.1 China
12.2.1.1 Market Trends
12.2.1.2 Market Forecast
12.2.2 Japan
12.2.2.1 Market Trends
12.2.2.2 Market Forecast
12.2.3 India
12.2.3.1 Market Trends
12.2.3.2 Market Forecast
12.2.4 South Korea
12.2.4.1 Market Trends
12.2.4.2 Market Forecast
12.2.5 Australia
12.2.5.1 Market Trends
12.2.5.2 Market Forecast
12.2.6 Indonesia
12.2.6.1 Market Trends
12.2.6.2 Market Forecast
12.2.7 Others
12.2.7.1 Market Trends
12.2.7.2 Market Forecast
12.3 Europe
12.3.1 Germany
12.3.1.1 Market Trends
12.3.1.2 Market Forecast
12.3.2 France
12.3.2.1 Market Trends
12.3.2.2 Market Forecast
12.3.3 United Kingdom
12.3.3.1 Market Trends
12.3.3.2 Market Forecast
12.3.4 Italy
12.3.4.1 Market Trends
12.3.4.2 Market Forecast
12.3.5 Spain
12.3.5.1 Market Trends
12.3.5.2 Market Forecast
12.3.6 Russia
12.3.6.1 Market Trends
12.3.6.2 Market Forecast
12.3.7 Others
12.3.7.1 Market Trends
12.3.7.2 Market Forecast
12.4 Latin America
12.4.1 Brazil
12.4.1.1 Market Trends
12.4.1.2 Market Forecast
12.4.2 Mexico
12.4.2.1 Market Trends
12.4.2.2 Market Forecast
12.4.3 Others
12.4.3.1 Market Trends
12.4.3.2 Market Forecast
12.5 Middle East and Africa
12.5.1 Market Trends
12.5.2 Market Breakup by Country
12.5.3 Market Forecast
13 Drivers, Restraints, and Opportunities
13.1 Overview
13.2 Drivers
13.3 Restraints
13.4 Opportunities
14 Value Chain Analysis
15 Porters Five Forces Analysis
15.1 Overview
15.2 Bargaining Power of Buyers
15.3 Bargaining Power of Suppliers
15.4 Degree of Competition
15.5 Threat of New Entrants
15.6 Threat of Substitutes
16 Price Analysis
17 Competitive Landscape
17.1 Market Structure
17.2 Key Players
17.3 Profiles of Key Players
17.3.1 ABB Ltd.
17.3.1.1 Company Overview
17.3.1.2 Product Portfolio
17.3.1.3 Financials
17.3.1.4 SWOT Analysis
17.3.2 Amran Inc
17.3.2.1 Company Overview
17.3.2.2 Product Portfolio
17.3.3 CG Power and Industrial Solutions Limited (Murugappa Group)
17.3.3.1 Company Overview
17.3.3.2 Product Portfolio
17.3.3.3 Financials
17.3.3.4 SWOT Analysis
17.3.4 Eaton Corporation plc
17.3.4.1 Company Overview
17.3.4.2 Product Portfolio
17.3.4.3 Financials
17.3.4.4 SWOT Analysis
17.3.5 EMEK Electrical Industry Inc
17.3.5.1 Company Overview
17.3.5.2 Product Portfolio
17.3.6 Indian Transformers and Electricals PVt. Ltd
17.3.6.1 Company Overview
17.3.6.2 Product Portfolio
17.3.7 Instrument Transformer Equipment Corporation (Power Grid Components Inc.)
17.3.7.1 Company Overview
17.3.7.2 Product Portfolio
17.3.8 Mehru Electrical & Mechanical Engineers (P) Ltd
17.3.8.1 Company Overview
17.3.8.2 Product Portfolio
17.3.9 Mitsubishi Electric Corporation
17.3.9.1 Company Overview
17.3.9.2 Product Portfolio
17.3.9.3 Financials
17.3.9.4 SWOT Analysis
17.3.10 Pfiffner Instrument Transformers Ltd
17.3.10.1 Company Overview
17.3.10.2 Product Portfolio
17.3.11 Schneider Electric SE
17.3.11.1 Company Overview
17.3.11.2 Product Portfolio
17.3.11.3 Financials
17.3.11.4 SWOT Analysis
17.3.12 Siemens AG
17.3.12.1 Company Overview
17.3.12.2 Product Portfolio
17.3.12.3 Financials
17.3.12.4 SWOT Analysis
17.3.13 Toshiba Corporation
17.3.13.1 Company Overview
17.3.13.2 Product Portfolio
17.3.13.3 Financials
17.3.13.4 SWOT Analysis
| ※参考情報 計器用変圧器は、電力系統において高電圧や高電流を安全に測定するための設備です。一般に、電圧や電流を低いレベルに変換することで、測定器や保護装置が安全に機能することを可能にします。これにより、電気設備の監視や保護が円滑に行われ、安定した電力供給が実現します。 計器用変圧器には主に3つの種類があります。一つは電圧変圧器で、もう一つは電流変圧器、そして最後に相互変圧器です。電圧変圧器は、高電圧の電力を低電圧に変換する装置です。これにより、電圧測定器は安全に機能し、正確な電圧値を提供することが可能です。電流変圧器は、電流の測定目的で使用され、高電流を低電流に変換します。この変圧器は、計測機器が対応できる範囲内で信号を提供するために不可欠です。相互変圧器は、電圧変圧器と電流変圧器の特性を兼ね備えており、特定の用途に応じて異なる比率で電圧や電流を変換します。 計器用変圧器の用途は多岐にわたりますが、主に電力監視、メータリング、保護に利用されます。電力監視では、電圧や電流の値を常時測定し、システム全体のパフォーマンスを把握するために使用されます。メータリングでは、電力消費量や負荷を測定するために、家庭や工場などでの使用が一般的です。また、保護用途として、過電流や過電圧が発生した際に安全にシステムを遮断する機能を持つ変圧器も存在します。この場合、変圧器は保護リレーに信号を送り、必要な対策が迅速に取られることを促進します。 計器用変圧器の設計には、さまざまな関連技術が存在します。例えば、絶縁技術や耐熱性材料の使用、さらには電磁誘導の理論が重要です。絶縁技術は、高電圧の電流を利用するために欠かせない要素であり、絶縁体の性能が変圧器の安全性を大きく左右します。また、耐熱性の材料が使用されることで、変圧器の寿命を延ばすことが可能になります。電磁誘導の原理を基にしているため、コアや巻線の設計も非常に重要です。変圧器の効率や信号の正確性は、これらの設計要素に大きく依存しています。 さらに、最近ではデジタル技術や通信技術を用いたスマート変圧器が登場しています。これにより、リモートモニタリングやデータのリアルタイム伝送が可能になり、電力系統の管理が一層効率的になります。特にスマートグリッドにおいて、計器用変圧器は重要な役割を果たし、電力負荷の変動に応じた柔軟な運用が求められています。 最近の動向として、環境に配慮した製品開発が進められています。省エネルギー型や長寿命型の計器用変圧器が増えており、持続可能な電力システムの構築に寄与しています。これにより、電力業界はエコフレンドリーな技術を追求し、発展していくことが期待されています。 計器用変圧器は、電力システムにおいて欠かすことのできない重要な装置であり、その存在は今後もますます必要とされるでしょう。高度化した技術や新たな需要に応えることで、電力の測定や管理が効率的に行われ、信頼性の高い電力供給が続けられることが期待されます。 |
*** 計器用変圧器の世界市場に関するよくある質問(FAQ) ***
・計器用変圧器の世界市場規模は?
→IMARC社は2024年の計器用変圧器の世界市場規模を91億米ドルと推定しています。
・計器用変圧器の世界市場予測は?
→IMARC社は2033年の計器用変圧器の世界市場規模を139億米ドルと予測しています。
・計器用変圧器市場の成長率は?
→IMARC社は計器用変圧器の世界市場が2025年~2033年に年平均4.6%成長すると展望しています。
・世界の計器用変圧器市場における主要プレイヤーは?
→「ABB Ltd.、Amran Inc、CG Power and Industrial Solutions Limited (Murugappa Group)、Eaton Corporation plc、EMEK Electrical Industry Inc、Indian Transformers and Electricals PVt. Ltd、Instrument Transformer Equipment Corporation (Power Grid Components Inc.)、Mehru Electrical & Mechanical Engineers (P) Ltd、Mitsubishi Electric Corporation、Pfiffner Instrument Transformers Ltd、Schneider Electric SE、Siemens AG、Toshiba Corporationなど ...」を計器用変圧器市場のグローバル主要プレイヤーとして判断しています。
※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、最終レポートの情報と少し異なる場合があります。
*** 免責事項 ***
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