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1628912

分散型温度センシングの市場規模、シェア、成長分析、動作原理別、ファイバータイプ別、散乱方式別、用途別、地域別 - 産業予測、2025年~2032年

Distributed Temperature Sensing Market Size, Share, Growth Analysis, By Operating Principle, By Fiber Type, By Scattering Method, By Application, By Region - Industry Forecast 2025-2032


出版日
発行
SkyQuest
ページ情報
英文 227 Pages
納期
3~5営業日
価格
価格表記: USDを日本円(税抜)に換算
本日の銀行送金レート: 1USD=146.99円
分散型温度センシングの市場規模、シェア、成長分析、動作原理別、ファイバータイプ別、散乱方式別、用途別、地域別 - 産業予測、2025年~2032年
出版日: 2025年01月08日
発行: SkyQuest
ページ情報: 英文 227 Pages
納期: 3~5営業日
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概要

世界の分散型温度センシングの市場規模は、2023年に8億7,610万米ドルとなり、予測期間(2025年~2032年)のCAGRは5.4%で、2024年の9億2,341万米ドルから、2032年までには14億643万米ドルに成長する見通しです。

分散型温度センシングモニター市場は、労働者の安全意識の高まりと厳しい環境規制によって大きく成長する見込みです。単一の光ファイバーセンサーを利用するこの革新的な技術は、過酷な環境や水域を含む広大な表面での温度監視を可能にし、石油・ガスなどの産業で危険なガス漏れを検知するために極めて重要なものとなっています。さらに、砂漠や水中などの過酷な条件下での運用に対応し、リアルタイムのモニタリングを通じて資産のパフォーマンスを向上させます。インターネット接続用の地下・水中光ファイバーの配備拡大は、市場の需要をさらに押し上げると思われます。企業が安全性とコンプライアンスをますます優先するようになるにつれ、分散型温度センシングシステムへの投資は今後数年間で大幅に急増すると予想されます。

目次

イントロダクション

  • 調査目的
  • 調査範囲
  • 定義

調査手法

  • 情報調達
  • 二次データと一次データの方法
  • 市場規模予測
  • 市場の前提条件と制限

エグゼクティブサマリー

  • 世界市場の見通し
  • 供給と需要の動向分析
  • セグメント別機会分析

市場力学と見通し

  • 市場概要
  • 市場規模
  • 市場力学
    • 促進要因と機会
    • 抑制要因と課題
  • ポーターの分析

主要な市場の考察

  • 主要な成功要因
  • 競合の程度
  • 主要な投資機会
  • 市場エコシステム
  • 市場の魅力指数(2024年)
  • PESTEL分析
  • マクロ経済指標
  • バリューチェーン分析
  • 価格分析
  • 技術分析
  • 規制分析
  • 特許分析
  • ケーススタディ分析

分散型温度センシング市場規模:動作原理別・CAGR(2025年~2032年)

  • 市場概要
  • 光時間領域反射率測定法(OTDR)
  • 光周波数領域反射率測定法(OFDR)

分散型温度センシング市場規模:ファイバータイプ別・CAGR(2025年~2032年)

  • 市場概要
  • シングルモードファイバー
  • マルチモードファイバー

分散型温度センシング市場規模:散乱方式別・CAGR(2025年~2032年)

  • 市場概要
  • レイリー散乱効果
  • ラマン散乱効果
  • ブリルアン散乱効果

分散型温度センシング市場規模:用途別・CAGR(2025年~2032年)

  • 市場概要
  • 石油・ガス
    • 上流
    • ダウンホールモニタリング
    • スリックライン・ワイヤーラインの介入監視
    • 下流
  • 電源ケーブル監視
  • 火災検知
    • 産業用コンベア監視
    • 特殊危険環境火災監視
  • プロセスとパイプラインの監視
    • 漏れ検出
  • 環境モニタリング

分散型温度センシング市場規模・CAGR(2025年~2032年)

  • 北米
    • 米国
    • カナダ
  • 欧州
    • ドイツ
    • スペイン
    • フランス
    • 英国
    • イタリア
    • その他欧州
  • アジア太平洋
    • 中国
    • インド
    • 日本
    • 韓国
    • その他アジア太平洋
  • ラテンアメリカ
    • ブラジル
    • その他ラテンアメリカ
  • 中東・アフリカ
    • GCC諸国
    • 南アフリカ
    • その他中東・アフリカ

競合情報

  • 上位5社の比較
  • 主要企業の市場ポジショニング(2024年)
  • 主な市場企業が採用した戦略
  • 市場の最近の動向
  • 企業の市場シェア分析(2024年)
  • 主要企業の企業プロファイル
    • 会社概要
    • 製品ポートフォリオ分析
    • 企業のセグメント別シェア分析
    • 収益の前年比比較(2022年~2024年)

主要企業プロファイル

  • Schlumberger Limited(US)
  • Halliburton Company(US)
  • Yokogawa Electric Corporation(Japan)
  • Weatherford International PLC(US)
  • Sumitomo Electric Industries, Ltd.(Japan)
  • OFS Fitel, LLC(US)
  • AP Sensing GmbH(Germany)
  • GESO GmbH & Co.(Germany)
  • NKT Photonics(Denmark)
  • Omicron Electronics GmbH(Austria)
  • AFL(US)
  • Micron Optics, Inc.(US)
  • Avencom(Turkey)
  • Sensornet Limited(UK)
  • Omnisens SA(Switzerland)
  • Optromix, Inc.(US)
  • Ziebel As(Norway)
  • Tendeka(UK)

結論と提言

目次
Product Code: SQMIG45N2072

Global Distributed Temperature Sensing Market size was valued at USD 876.1 million in 2023 and is poised to grow from USD 923.41 million in 2024 to USD 1406.43 million by 2032, growing at a CAGR of 5.4% during the forecast period (2025-2032).

The distributed temperature sensing monitor market is poised for significant growth, driven by rising worker safety awareness and stringent environmental regulations. Utilizing a single optical fiber sensor, this innovative technology allows for temperature monitoring over vast surfaces, including harsh environments and bodies of water, making it crucial in industries like oil and gas for detecting hazardous gas leaks. Additionally, it enhances asset performance through real-time monitoring, catering to operations in extreme conditions, such as deserts and underwater locations. The expanding deployment of underground and underwater optical fibers for internet connectivity will further propel market demand. As businesses increasingly prioritize safety and compliance, investment in distributed temperature sensing systems is expected to surge significantly in the coming years.

Top-down and bottom-up approaches were used to estimate and validate the size of the Global Distributed Temperature Sensing market and to estimate the size of various other dependent submarkets. The research methodology used to estimate the market size includes the following details: The key players in the market were identified through secondary research, and their market shares in the respective regions were determined through primary and secondary research. This entire procedure includes the study of the annual and financial reports of the top market players and extensive interviews for key insights from industry leaders such as CEOs, VPs, directors, and marketing executives. All percentage shares split, and breakdowns were determined using secondary sources and verified through Primary sources. All possible parameters that affect the markets covered in this research study have been accounted for, viewed in extensive detail, verified through primary research, and analyzed to get the final quantitative and qualitative data.

Global Distributed Temperature Sensing Market Segmental Analysis

Global Distributed Temperature Sensing Market is segmented by Operating Principle, Fiber Type, Scattering Method, Application and region. Based on Operating Principle, the market is segmented into Optical Time Domain Reflectometry (OTDR) and Optical Frequency Domain Reflectometry (OFDR). Based on Fiber Type, the market is segmented into Single-Mode Fiber and Multimode Fiber. Based on Scattering Method, the market is segmented into Rayleigh Scattering Effect, Raman Scattering Effect and Brillouin Scattering Effect. Based on Application, the market is segmented into Oil & Gas, Power Cable Monitoring, Fire Detection, Process & Pipeline Monitoring and Environmental Monitoring. Based on region, the market is segmented into North America, Europe, Asia Pacific, Latin America and Middle East & Africa.

Driver of the Global Distributed Temperature Sensing Market

The growth of the Global Distributed Temperature Sensing (DTS) market is significantly influenced by increasing government support and regulatory initiatives aimed at enhancing safety standards. Such policies, particularly in rapidly industrializing nations like China, India, and Brazil, are driving the swift adoption of DTS technologies. For instance, a notable collaboration occurred in November 2019, when AP Sensing partnered with Energinet, a Danish Transmission Operator, to implement a comprehensive monitoring solution for the Kriegers Flak transmission system. This system utilizes several Distributed Acoustic Sensing (DAS) and DTS units, covering an impressive 300 kilometers, and enables effective thermal profiling and anomaly detection within a range of 30-50 km and 1-4 channels, highlighting the technology's critical role in modern infrastructure.

Restraints in the Global Distributed Temperature Sensing Market

A significant challenge hindering the growth of the global distributed temperature sensing market is the intricate nature of fault detection and troubleshooting. This complexity poses obstacles for effective implementation and operational efficiency. However, the rising investments in smart grid technology may present favorable opportunities for the expansion of the distributed temperature sensing (DTS) industry in the coming years. As stakeholders seek to enhance their monitoring capabilities, the demand for more accessible and efficient troubleshooting solutions in DTS systems will likely increase, creating a balance between existing market restraints and potential growth avenues.

Market Trends of the Global Distributed Temperature Sensing Market

The Global Distributed Temperature Sensing (DTS) market is experiencing significant growth, driven primarily by the rising demand for water management solutions and the need for effective monitoring of hydrological activities. With advancements in geophysical methodologies, industries are increasingly adopting DTS technology to quantify surface water and groundwater interactions on a large scale. This trend is particularly prominent in sectors such as hydrology, environmental monitoring, and climate research, where precise temperature measurements are crucial. As organizations recognize the value of DTS in enhancing resource management and sustainability, the market is poised for continued expansion and innovation leading up to 2023 and beyond.

Table of Contents

Introduction

  • Objectives of the Study
  • Scope of the Report
  • Definitions

Research Methodology

  • Information Procurement
  • Secondary & Primary Data Methods
  • Market Size Estimation
  • Market Assumptions & Limitations

Executive Summary

  • Global Market Outlook
  • Supply & Demand Trend Analysis
  • Segmental Opportunity Analysis

Market Dynamics & Outlook

  • Market Overview
  • Market Size
  • Market Dynamics
    • Drivers & Opportunities
    • Restraints & Challenges
  • Porters Analysis
    • Competitive rivalry
    • Threat of substitute
    • Bargaining power of buyers
    • Threat of new entrants
    • Bargaining power of suppliers

Key Market Insights

  • Key Success Factors
  • Degree of Competition
  • Top Investment Pockets
  • Market Ecosystem
  • Market Attractiveness Index, 2024
  • PESTEL Analysis
  • Macro-Economic Indicators
  • Value Chain Analysis
  • Pricing Analysis
  • Technology Analysis
  • Regulatory Analysis
  • Patent Analysis
  • Case Study Analysis

Global Distributed Temperature Sensing Market Size by Operating Principle & CAGR (2025-2032)

  • Market Overview
  • Optical Time Domain Reflectometry (OTDR)
  • Optical Frequency Domain Reflectometry (OFDR)

Global Distributed Temperature Sensing Market Size by Fiber Type & CAGR (2025-2032)

  • Market Overview
  • Single-Mode Fiber
  • Multimode Fiber

Global Distributed Temperature Sensing Market Size by Scattering Method & CAGR (2025-2032)

  • Market Overview
  • Rayleigh Scattering Effect
  • Raman Scattering Effect
  • Brillouin Scattering Effect

Global Distributed Temperature Sensing Market Size by Application & CAGR (2025-2032)

  • Market Overview
  • Oil & Gas
    • Upstream
    • Downhole Monitoring
    • Slickline and Wireline Interventions Monitoring
    • Downstream
  • Power Cable Monitoring
  • Fire Detection
    • Industrial Conveyors Monitoring
    • Special Hazard Environments Fire Monitoring
  • Process & Pipeline Monitoring
    • Leakage Detection
  • Environmental Monitoring

Global Distributed Temperature Sensing Market Size & CAGR (2025-2032)

  • North America (Operating Principle, Fiber Type, Scattering Method, Application)
    • US
    • Canada
  • Europe (Operating Principle, Fiber Type, Scattering Method, Application)
    • Germany
    • Spain
    • France
    • UK
    • Italy
    • Rest of Europe
  • Asia Pacific (Operating Principle, Fiber Type, Scattering Method, Application)
    • China
    • India
    • Japan
    • South Korea
    • Rest of Asia-Pacific
  • Latin America (Operating Principle, Fiber Type, Scattering Method, Application)
    • Brazil
    • Rest of Latin America
  • Middle East & Africa (Operating Principle, Fiber Type, Scattering Method, Application)
    • GCC Countries
    • South Africa
    • Rest of Middle East & Africa

Competitive Intelligence

  • Top 5 Player Comparison
  • Market Positioning of Key Players, 2024
  • Strategies Adopted by Key Market Players
  • Recent Developments in the Market
  • Company Market Share Analysis, 2024
  • Company Profiles of All Key Players
    • Company Details
    • Product Portfolio Analysis
    • Company's Segmental Share Analysis
    • Revenue Y-O-Y Comparison (2022-2024)

Key Company Profiles

  • Schlumberger Limited (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Halliburton Company (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Yokogawa Electric Corporation (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Weatherford International PLC (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Sumitomo Electric Industries, Ltd. (Japan)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • OFS Fitel, LLC (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • AP Sensing GmbH (Germany)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • GESO GmbH & Co. (Germany)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • NKT Photonics (Denmark)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Omicron Electronics GmbH (Austria)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • AFL (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Micron Optics, Inc. (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Avencom (Turkey)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Sensornet Limited (UK)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Omnisens SA (Switzerland)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Optromix, Inc. (US)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Ziebel As (Norway)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments
  • Tendeka (UK)
    • Company Overview
    • Business Segment Overview
    • Financial Updates
    • Key Developments

Conclusion & Recommendations