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市場調查報告書
商品編碼
2122997

雷射氣體分析儀:市場佔有率分析、產業趨勢與統計、成長預測(2026-2031)

Laser-based Gas Analyzers - Market Share Analysis, Industry Trends & Statistics, Growth Forecasts (2026 - 2031)

出版日期: | 出版商: Mordor Intelligence | 英文 160 Pages | 商品交期: 2-3個工作天內

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簡介目錄

據 Mordor Intelligence 稱,雷射氣體分析儀的市場規模預計將從 2025 年的 5.7803 億美元成長到 2026 年的 6.1722 億美元,到 2031 年達到 8.5682 億美元,2026 年至 2031 年的複合年成長率為 6.78%。

雷射氣體分析儀市場圖1

本報告按製程(原位法、萃取法)、技術(TDLS、拉曼光譜法、CRDS、QCLS)、終端用戶產業(電力、石油天然氣、採礦和金屬、化學和石化、汽車等)、應用(排放監測、製程最佳化和控制等)以及地區進行細分。市場預測以美元計價。

全球雷射氣體分析儀市場趨勢與洞察

自2025年起,新興經濟體將對高污染物質的排放實施嚴格監管。

越南、肯亞和印度已頒布2024-2025年度法規,強制要求火力發電廠和水泥窯安裝氮氧化物、二氧化硫和顆粒物連續分析儀。越南2024年第45號通知規定,裝置容量超過30兆瓦熱功率的發電裝置必須即時監測,將影響約180台燃煤鍋爐。肯亞2024年空氣品質法規修訂案將氮氧化物排放限值降低至150毫克/立方米,並加強了季度報告要求。同時,印度2015年的法規已擴大適用範圍,涵蓋約400家私營發電企業。在這些含塵且潮濕的廢氣環境中,近紅外線可調諧二極體雷射和中紅外線量子級聯雷射系統比電化學電池性能更優,從而推動了雷射氣體分析儀市場的整體需求。

加速煤製氫混燒維修,這需要即時燃燒分析。

歐洲和亞洲的電力公司正在將煤炭與高達20%的氫氣或氨氣混燒,這會改變火焰的化學成分,並增加未燃燃料的洩漏。三菱重工在20%混燒條件下測得氨洩漏量為15ppm,並建議偵測閾值值為5ppm或更低。使用最新的可調諧二極體雷射分析儀即可實現這一目標。歐盟創新基金已撥款1.5億歐元(1.695億美元)用於2024年底的示範電廠建設。使用雷射進行連續燃燒分析是每個電廠的強制性要求。日本的目標是到2030年實現1吉瓦的氨氣混燒裝置容量,日本能源研究機構(JERA)的初始項目正在採用量子級聯雷射平台同時監測氨氣和一氧化二氮。這些進展正在擴大雷射氣體分析儀市場的整體機會。

與電化學感測器相比,對於注重成本的中型工廠而言,其資本成本更高。

雷射分析儀的成本是電化學陣列的兩到三倍。亞洲開發銀行(亞銀)的研究表明,東南亞工廠的投資回收期預計為18至24個月,超過了許多管理者設定的12個月目標。在監管力度不一的地區,營運商正在推遲升級,尤其是在單氣體非色散紅外線(NDIR)設備足以滿足需求的情況下。這種成本差異阻礙了亞太地區、南美洲和非洲部分地區短期內採用雷射氣體分析儀,並抑制了雷射氣體分析儀市場的成長。

細分市場分析

在2025年的雷射氣體分析儀市場中,原位系統佔58.73%的銷售額,而抽取式系統正快速崛起。對於維修2000年以前安裝的連續排放氣體監測系統的發電廠而言,安裝在煙道外部、免受酸雨前體和粉塵污染的抽取式探頭是首選。在燃煤、垃圾焚化發電和生質鍋爐中,由於光路污染已超過可接受的限值(足以干擾煙道外可調諧二極體雷射探頭的運作),預計到2031年,抽取式模組的複合年成長率將達到7.66%。美國環保署(EPA)2024年修訂的《性能規範18》正式認可了使用抽取式可調諧二極體雷射器報告測量結果的做法,前提是傳輸線溫度保持在酸露點以上。由於可以直接注入經認證的氣體混合物,校準過程十分簡便,這在通過ISO 14001認證的設施中尤其重要。

在煉油廠,混合配置正變得越來越普遍,它利用原位探頭進行燃燒控制,並採用抽取迴路測量微量硫化氫。歐洲工業排放指令要求綜合煉油廠持續報告12種污染物的排放情況,而使用多點抽取網路將資料傳輸到中央光譜儀是滿足此要求最具成本效益的方法。隨著維修團隊經驗的積累,水泥窯和玻璃熔爐中抽取系統的應用也不斷增加。總體而言,不斷擴大的維修活動正在推動抽取解決方案在雷射氣體分析儀市場中佔有率的成長。

到2025年,可調諧二極體雷射光譜技術將佔技術銷售額的41.63%,這得益於成熟的微米微米分佈回饋雷射供應鏈,可用於測量水蒸氣、甲烷和氯化氫。同時,量子級聯雷射光譜技術以7.33%的複合年成長率位居榜首,這主要歸功於其能夠覆蓋2-12微米的微米範圍,並檢測氨、一氧化二氮和揮發性有機化合物的基頻振動模式。 Thorlabs計劃於2025年推出一款售價低於1.5萬美元的室溫模組,這將顯著降低中型石化工廠的進入門檻。

正如美國國家標準與技術研究院(NIST)標準參考物質2820(將於2025年發布)中所述,腔衰蕩光譜法在二氧化碳同位素檢驗和碳計量中正日益受到關注。由於芳香族化合物的螢光干擾,拉曼分析儀目前主要用於實驗室,但新的化學計量學資料庫正在改善其在實際應用中的性能。國際電工委員會(IEC)正在製定專門針對危險區域量子級聯分析儀的功能安全指南“IEC 61508”,預計將於2026年下半年發布。這些進展共同豐富了雷射氣體分析儀市場的技術選擇。

區域分析

2025年,北美地區在雷射氣體分析儀市場銷售額中佔38.73%。受美國酸雨行動計畫和區域溫室氣體舉措約束的發電廠必須提交連續排放數據,而2024年修訂的《性能規範18》進一步鞏固了雷射吸收法的應用。加拿大上游業者正在遵守每季甲烷洩漏調查的要求,而新建的碳捕集中心則需要進行線上二氧化碳純度檢測,這些都推動了分析儀訂單的增加。

預計亞太地區將維持最高成長率,到2031年年均複合成長率將達到7.55%。在「十四五」規劃期間,中國生態環境部撥款1.2兆元人民幣(約1,690億美元)用於改善空氣質量,津貼鋼鐵和非鐵金屬冶煉廠引進雷射分析儀。印度國家清潔空氣計畫於2025年修訂,要求在2027年在1500個工業排放源安裝連續監測系統。隨著越南和印尼實施新的排放法規,東南亞的發電廠也開始採用雷射系統。雖然成本仍然是中型化工廠面臨的主要問題,但由於監管更加嚴格和模型價格下降,成本差距正在縮小。

隨著西歐設施接近飽和,歐洲的市場佔有率趨於穩定;而東歐成員國,包括波蘭和羅馬尼亞,為了滿足工業排放指令中「最佳可行可用技術(BAT)」的要求,正在加速採用雷射氣體分析儀。在中東,新建的石化聯合裝置以「零常規燃燒」為目標,推動了硫化氫和水分分析儀的訂單成長。南美的成長主要集中在巴西的乙醇蒸餾廠和阿根廷的頁岩氣項目,但南非擬議的2024年法規可能會刺激Eskom旗下12座燃煤發電廠的需求。總體而言,監管差異和投資週期正在影響雷射氣體分析儀市場的區域前景。

其他好處

  • Excel格式的市場預測(ME)表
  • 3個月的分析師支持

目錄

第1章:引言

  • 研究假設和市場定義
  • 調查範圍

第2章:調查方法

第3章執行摘要

第4章 市場狀況

  • 市場概覽
  • 市場促進因素
    • 自2025年起,新興經濟體將對高污染物質的排放實施嚴格監管。
    • 加速煤製氫混燒維修,這需要即時燃燒分析。
    • 小型模組化反應器(SMR)計畫的快速擴張,需要持續的廢氣監測。
    • 利用雷射進行線上二氧化碳純度檢測,擴大碳捕獲、利用與封存(CCUS)技術的實施範圍
    • 石油化學工業向綠色氨的轉變正在推動對原位氨洩漏檢測系統的需求。
    • 由於醫院負壓隔離病房數量增加,必須進行麻醉氣體示蹤分析。
  • 市場限制因素
    • 與電化學感測器相比,對於注重成本的中型工廠而言,其資本成本更高。
    • 發展中地區缺乏分析高解析度頻譜資料的工程師。
    • 由於砷化鎵晶片供不應求,雷射光源供應鏈受到限制。
    • 各國監管方法標準化程度的差異阻礙了採購決策。
  • 產業價值鏈分析
  • 監理情勢
  • 技術展望
  • 波特五力分析
  • 市場宏觀經濟趨勢的評估

第5章 市場規模與成長預測

  • 透過流程
    • Institch
    • 提取類型
  • 透過技術
    • 可調諧二極體雷射光譜(TDLS)
    • 拉曼光譜(RA)
    • 腔衰蕩光譜(CRDS)
    • 量子級聯雷射光譜(QCLS)
  • 按最終用戶行業分類
    • 電力
    • 石油和天然氣
    • 採礦和金屬
    • 化工/石油化工
    • 紙漿和造紙
    • 醫療和藥品
    • 其他
  • 透過使用
    • 排放監測
    • 製程最佳化與控制
    • 安全和洩漏檢測
    • 環境合規檢查
    • 實驗與調查分析
  • 按地區
    • 北美洲
      • 美國
      • 加拿大
      • 墨西哥
    • 南美洲
      • 巴西
      • 阿根廷
      • 其他南美國家
    • 歐洲
      • 德國
      • 英國
      • 法國
      • 義大利
      • 西班牙
      • 其他歐洲國家
    • 亞太地區
      • 中國
      • 日本
      • 印度
      • 韓國
      • ASEAN
      • 其他亞太國家
    • 中東和非洲
      • 中東
        • 沙烏地阿拉伯
        • 阿拉伯聯合大公國
        • 其他中東國家
      • 非洲
        • 南非
        • 奈及利亞
        • 其他非洲地區

第6章 競爭情勢

  • 市場集中度
  • 策略趨勢
  • 市佔率分析
  • 公司簡介
    • ABB Ltd
    • Opsis AB
    • Emerson Electric Co.
    • HORIBA Ltd.
    • Servomex Group Ltd.
    • KNESTEL Technologie and Elektronik GmbH
    • Hangzhou Zetian Chunlai Technology Co., Ltd.
    • Yokogawa Electric Corporation
    • Nederman NEO Monitors AS
    • Endress+Hauser Group Services AG
    • Fuji Electric Co., Ltd.
    • Siemens AG
    • Anton Paar GmbH
    • AMETEK Land(Land Instruments International Ltd.)
    • Bruker Corporation
    • Mettler-Toledo International Inc.
    • SICK AG
    • Teledyne FLIR, LLC
    • SpectraSensors, Inc.
    • Tiger Optics, LLC
    • Gasera Oy
    • Sensirion AG
    • LumaSense Technologies, Inc.
    • Focused Photonics Inc.(FPI)

第7章 市場機會與未來展望

簡介目錄
Product Code: 66355

According to Mordor Intelligence, the laser-based gas analyzers market size is expected to increase from USD 578.03 million in 2025 to USD 617.22 million in 2026 and reach USD 856.82 million by 2031, growing at a CAGR of 6.78% over 2026-2031.

Laser-based Gas Analyzers - Market - IMG1

This report is Segmented by Process (In Situ, and Extractive), Technology (TDLS, Raman Spectroscopy, CRDS, and QCLS), End-User Industry (Power, Oil and Gas, Mining and Metals, Chemical and Petrochemical, Automotive, and More), Application (Emissions Monitoring, Process Optimization and Control, and More), and Geography. The Market Forecasts are Provided in Terms of Value (USD).

Global Laser-based Gas Analyzers Market Trends and Insights

Stringent Multi-Pollutant Emissions Regulations Post-2025 in Emerging Economies

Vietnam, Kenya, and India enacted rules between 2024 and 2025 that oblige thermal power plants and cement kilns to install continuous analyzers for nitrogen oxides, sulfur dioxide, and particulate matter. Vietnam's Circular 45/2024 demands real-time monitoring for units above 30 MWth, capturing nearly 180 coal-fired boilers. Kenya's 2024 air-quality update reduced the nitrogen-oxide cap to 150 mg/m3 and tightened quarterly reporting, while India extended its 2015 norms to about 400 captive generators. Near-infrared tuneable diode laser and mid-infrared quantum cascade laser systems outperform electrochemical cells in these dusty high-moisture stacks, reinforcing demand across the laser-based gas analyzers market.

Accelerated Coal-to-Hydrogen Co-Firing Retrofits Requiring Real-Time Combustion Analytics

European and Asian utilities are blending up to 20% hydrogen or ammonia with coal, altering flame chemistry and increasing unburned-fuel slip. Mitsubishi Heavy Industries measured 15 ppm ammonia slip at a 20% co-fire setting and recommended sub-5 ppm detection thresholds, achievable with modern tuneable diode laser analyzers. The EU Innovation Fund awarded EUR 150 million (USD 169.5 million) to demonstration plants in late 2024, each specifying continuous laser-based combustion analytics. Japan targets 1 GW ammonia co-firing by 2030, with early projects at JERA facilities adopting quantum cascade laser platforms for simultaneous ammonia and nitrous-oxide monitoring. These actions amplify opportunity across the laser-based gas analyzers market.

Capital Cost Premium Versus Electrochemical Sensors in Cost-Sensitive Mid-Tier Plants

Laser analyzers cost 2-3 times more than electrochemical arrays. An Asian Development Bank study estimated 18-24 months payback in Southeast Asian plants, exceeding the 12-month hurdle many managers apply. Where enforcement remains uneven, operators delay upgrades, especially when single-gas non-dispersive infrared devices suffice. The premium tempers short-term uptake in parts of Asia-Pacific, South America, and Africa, restraining the laser-based gas analyzers market.

Other drivers and restraints analyzed in the detailed report include:

  1. Rapid Expansion of Small Modular Reactor Projects Needing Continuous Off-Gas Monitoring
  2. Rising Adoption of CCUS with Laser Inline CO2 Purity Checks
  3. Skill Shortage to Interpret High-Resolution Spectral Data in Developing Regions

For complete list of drivers and restraints, kindly check the Table Of Contents.

Segment Analysis

Extractive systems are gaining ground even though in-situ units delivered 58.73% of 2025 revenue in the laser-based gas analyzers market. Power plants that retrofit pre-2000 continuous emissions monitoring hardware favor extractive probes that sit outside the flue, shielded from acid rain precursors and dust. Extractive modules deliver 7.66% CAGR through 2031 as coal, waste-to-energy, and biomass boilers exceed optical path fouling limits that hamper cross-stack tuneable diode laser probes. The United States Environmental Protection Agency Performance Specification 18 update in 2024 legitimized extractive tuneable diode laser reporting provided transfer lines stay above the acid dew point. Calibration is straightforward because certified gas blends can be injected directly, a convenience embraced by ISO 14001-certified facilities.

Hybrid architectures are emerging in refineries that use an in-situ probe for combustion trim and an extractive loop for trace hydrogen sulfide. The European Industrial Emissions Directive mandates continuous reporting of 12 pollutants at integrated refinery sites, an obligation most cost-effectively met with multi-point extractive networks feeding central spectrometers. As maintenance teams gain experience, extractive installations in cement kilns and glass furnaces are also climbing. Altogether, growing retrofit activity enlarges the share of extractive solutions within the laser-based gas analyzers market.

Tuneable diode laser spectroscopy delivered 41.63% of technology revenue in 2025, supported by mature supply chains for 1.3 µm to 1.6 µm distributed-feedback lasers that measure water vapor, methane, and hydrogen chloride. Quantum cascade laser spectroscopy, however, records the highest 7.33% CAGR, driven by its 2 µm-12 µm wavelength coverage, which probes the fundamental vibrational modes of ammonia, nitrous oxide, and volatile organic compounds. When Thorlabs introduced a room-temperature module below USD 15,000 in 2025, entry barriers for mid-sized petrochemical plants fell sharply.

Cavity ring-down spectroscopy is gaining traction in isotopic CO2 verification for carbon accounting, as cited in the NIST Standard Reference Material 2820, released in 2025. Raman analyzers remain mainly in laboratories due to fluorescence interference from aromatics, although new chemometric libraries are improving field viability. The International Electrotechnical Commission is drafting IEC 61508 functional-safety guidance specific to quantum cascade analyzers in hazardous areas, with publication expected in late 2026. Together, these advances diversify technology preferences inside the laser-based gas analyzers market.

Complete Report Scope:

  • By Process
    • In Situ
    • Extractive
  • By Technology
    • Tuneable Diode Laser Spectroscopy (TDLS)
    • Raman Spectroscopy (RA)
    • Cavity Ring-Down Spectroscopy (CRDS)
    • Quantum Cascade Laser Spectroscopy (QCLS)
  • By End-user Industry
    • Power
    • Oil and Gas
    • Mining and Metals
    • Chemical and Petrochemical
    • Automotive
    • Pulp and Paper
    • Healthcare and Pharmaceuticals
    • Other End-user Industries
  • By Application
    • Emissions Monitoring
    • Process Optimization and Control
    • Safety and Leak Detection
    • Environmental Compliance Testing
    • Laboratory and Research Analysis
  • By Geography
    • North America
      • United States
      • Canada
      • Mexico
    • South America
      • Brazil
      • Argentina
      • Rest of South America
    • Europe
      • Germany
      • United Kingdom
      • France
      • Italy
      • Spain
      • Rest of Europe
    • Asia-Pacific
      • China
      • Japan
      • India
      • South Korea
      • ASEAN
      • Rest of Asia-Pacific
    • Middle East and Africa
      • Middle East
        • Saudi Arabia
        • United Arab Emirates
        • Rest of Middle East
      • Africa
        • South Africa
        • Nigeria
        • Rest of Africa

Geography Analysis

North America generated 38.73% of laser-based gas analyzers market revenue in 2025. United States power plants covered by the Acid Rain Program and the Regional Greenhouse Gas Initiative must submit continuous emissions data, and the 2024 Performance Specification 18 revision further entrenched laser absorption methods. Canadian upstream operators comply with quarterly methane leak surveys, while new carbon capture hubs require inline CO2 purity checks, driving additional analyzer orders.

Asia-Pacific posts the fastest 7.55% CAGR through 2031. China's Ministry of Ecology and Environment directed CNY 1.2 trillion (USD 169 billion) toward air-quality upgrades during the 14th Five-Year Plan, subsidizing laser deployments in steel and non-ferrous smelters. India's National Clean Air Programme, updated in 2025, compels 1,500 industrial sources to install continuous monitoring by 2027. Southeast Asian power stations adopt laser systems as Vietnam and Indonesia enforce new stack limits. Mid-sized chemical plants remain cost sensitive, yet rising enforcement and falling module prices are closing the gap.

Europe's share stabilizes as Western sites near saturation, yet Eastern member states, including Poland and Romania, accelerate installations to meet Industrial Emissions Directive best-available-technique notes. The Middle East builds new petrochemical complexes committed to Zero Routine Flaring goals, prompting orders for hydrogen sulfide and moisture analyzers. South American growth centers on Brazilian ethanol distilleries and Argentine shale projects, while South Africa's draft 2024 rules could spark demand at 12 Eskom coal units. Collectively, regulatory divergence and investment cycles shape geographic prospects for the laser-based gas analyzers market.

  1. ABB Ltd
  2. Opsis AB
  3. Emerson Electric Co.
  4. HORIBA Ltd.
  5. Servomex Group Ltd.
  6. KNESTEL Technologie and Elektronik GmbH
  7. Hangzhou Zetian Chunlai Technology Co., Ltd.
  8. Yokogawa Electric Corporation
  9. Nederman NEO Monitors AS
  10. Endress+Hauser Group Services AG
  11. Fuji Electric Co., Ltd.
  12. Siemens AG
  13. Anton Paar GmbH
  14. AMETEK Land (Land Instruments International Ltd.)
  15. Bruker Corporation
  16. Mettler-Toledo International Inc.
  17. SICK AG
  18. Teledyne FLIR, LLC
  19. SpectraSensors, Inc.
  20. Tiger Optics, LLC
  21. Gasera Oy
  22. Sensirion AG
  23. LumaSense Technologies, Inc.
  24. Focused Photonics Inc. (FPI)

Additional Benefits:

  • The market estimate (ME) sheet in Excel format
  • 3 months of analyst support

TABLE OF CONTENTS

1 INTRODUCTION

  • 1.1 Study Assumptions and Market Definition
  • 1.2 Scope of the Study

2 RESEARCH METHODOLOGY

3 EXECUTIVE SUMMARY

4 MARKET LANDSCAPE

  • 4.1 Market Overview
  • 4.2 Market Drivers
    • 4.2.1 Stringent Multi-Pollutant Emissions Regulations Post-2025 in Emerging Economies
    • 4.2.2 Accelerated Coal-to-Hydrogen Co-Firing Retrofits Requiring Real-Time Combustion Analytics
    • 4.2.3 Rapid Expansion of Small Modular Reactor (SMR) Projects Needing Continuous Off-Gas Monitoring
    • 4.2.4 Rising Adoption of CCUS with Laser Inline CO2 Purity Checks
    • 4.2.5 Petrochemical Shift to Green Ammonia Driving In-Situ NH3 Leak Detection Systems
    • 4.2.6 Growth of Hospital Negative-Pressure Isolation Rooms Mandating Trace Anesthetic Gas Analysis
  • 4.3 Market Restraints
    • 4.3.1 Capital Cost Premium Versus Electrochemical Sensors in Cost-Sensitive Mid-Tier Plants
    • 4.3.2 Skill Shortage to Interpret High-Resolution Spectral Data in Developing Regions
    • 4.3.3 Laser Source Supply-Chain Constraints Due to GaAs Wafer Shortages
    • 4.3.4 Standardisation Gaps Across Global Regulatory Methods Hindering Procurement Decisions
  • 4.4 Industry Value Chain Analysis
  • 4.5 Regulatory Landscape
  • 4.6 Technological Outlook
  • 4.7 Porter's Five Forces Analysis
    • 4.7.1 Bargaining Power of Suppliers
    • 4.7.2 Bargaining Power of Buyers
    • 4.7.3 Threat of New Entrants
    • 4.7.4 Threat of Substitutes
    • 4.7.5 Intensity of Competitive Rivalry
  • 4.8 Assessment of Macrotrends on the Market

5 MARKET SIZE AND GROWTH FORECASTS (VALUE)

  • 5.1 By Process
    • 5.1.1 In Situ
    • 5.1.2 Extractive
  • 5.2 By Technology
    • 5.2.1 Tuneable Diode Laser Spectroscopy (TDLS)
    • 5.2.2 Raman Spectroscopy (RA)
    • 5.2.3 Cavity Ring-Down Spectroscopy (CRDS)
    • 5.2.4 Quantum Cascade Laser Spectroscopy (QCLS)
  • 5.3 By End-user Industry
    • 5.3.1 Power
    • 5.3.2 Oil and Gas
    • 5.3.3 Mining and Metals
    • 5.3.4 Chemical and Petrochemical
    • 5.3.5 Automotive
    • 5.3.6 Pulp and Paper
    • 5.3.7 Healthcare and Pharmaceuticals
    • 5.3.8 Other End-user Industries
  • 5.4 By Application
    • 5.4.1 Emissions Monitoring
    • 5.4.2 Process Optimization and Control
    • 5.4.3 Safety and Leak Detection
    • 5.4.4 Environmental Compliance Testing
    • 5.4.5 Laboratory and Research Analysis
  • 5.5 By Geography
    • 5.5.1 North America
      • 5.5.1.1 United States
      • 5.5.1.2 Canada
      • 5.5.1.3 Mexico
    • 5.5.2 South America
      • 5.5.2.1 Brazil
      • 5.5.2.2 Argentina
      • 5.5.2.3 Rest of South America
    • 5.5.3 Europe
      • 5.5.3.1 Germany
      • 5.5.3.2 United Kingdom
      • 5.5.3.3 France
      • 5.5.3.4 Italy
      • 5.5.3.5 Spain
      • 5.5.3.6 Rest of Europe
    • 5.5.4 Asia-Pacific
      • 5.5.4.1 China
      • 5.5.4.2 Japan
      • 5.5.4.3 India
      • 5.5.4.4 South Korea
      • 5.5.4.5 ASEAN
      • 5.5.4.6 Rest of Asia-Pacific
    • 5.5.5 Middle East and Africa
      • 5.5.5.1 Middle East
        • 5.5.5.1.1 Saudi Arabia
        • 5.5.5.1.2 United Arab Emirates
        • 5.5.5.1.3 Rest of Middle East
      • 5.5.5.2 Africa
        • 5.5.5.2.1 South Africa
        • 5.5.5.2.2 Nigeria
        • 5.5.5.2.3 Rest of Africa

6 COMPETITIVE LANDSCAPE

  • 6.1 Market Concentration
  • 6.2 Strategic Moves
  • 6.3 Market Share Analysis
  • 6.4 Company Profiles (includes Global level Overview, Market level overview, Core Segments, Financials as available, Strategic Information, Market Rank/Share for key companies, Products and Services, and Recent Developments)
    • 6.4.1 ABB Ltd
    • 6.4.2 Opsis AB
    • 6.4.3 Emerson Electric Co.
    • 6.4.4 HORIBA Ltd.
    • 6.4.5 Servomex Group Ltd.
    • 6.4.6 KNESTEL Technologie and Elektronik GmbH
    • 6.4.7 Hangzhou Zetian Chunlai Technology Co., Ltd.
    • 6.4.8 Yokogawa Electric Corporation
    • 6.4.9 Nederman NEO Monitors AS
    • 6.4.10 Endress+Hauser Group Services AG
    • 6.4.11 Fuji Electric Co., Ltd.
    • 6.4.12 Siemens AG
    • 6.4.13 Anton Paar GmbH
    • 6.4.14 AMETEK Land (Land Instruments International Ltd.)
    • 6.4.15 Bruker Corporation
    • 6.4.16 Mettler-Toledo International Inc.
    • 6.4.17 SICK AG
    • 6.4.18 Teledyne FLIR, LLC
    • 6.4.19 SpectraSensors, Inc.
    • 6.4.20 Tiger Optics, LLC
    • 6.4.21 Gasera Oy
    • 6.4.22 Sensirion AG
    • 6.4.23 LumaSense Technologies, Inc.
    • 6.4.24 Focused Photonics Inc. (FPI)

7 MARKET OPPORTUNITIES AND FUTURE OUTLOOK

  • 7.1 White-space and Unmet-need Assessment