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市场调查报告书
商品编码
1874283
石油和天然气管道腐蚀监测服务:全球市场份额和排名、总收入和需求预测(2025-2031 年)Oil and Gas Pipeline Corrosion Monitoring Services - Global Market Share and Ranking, Overall Sales and Demand Forecast 2025-2031 |
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2024 年全球油气管道腐蚀监测服务市场规模估计为 4.58 亿美元,预计到 2031 年将成长至 6.09 亿美元,在预测期(2025-2031 年)内复合年增长率为 4.3%。
油气管道腐蚀监测服务是指对油气管道腐蚀情况进行即时监测和评估的一系列专业服务,旨在确保油气管道的安全运行,及时发现和解决潜在的腐蚀问题,从而延长管道的使用寿命,降低腐蚀造成的洩漏和事故风险。
石油和天然气管道腐蚀监测服务市场的主要驱动因素包括:
1. 政策和监管驱动:受安全标准和环境压力驱动
加强全球管线安全法规
北美:美国管线安全法要求业者每五年提交一次完整性管理计划,并要求使用智慧内部侦测 (ILI) 技术来评估管线腐蚀风险。
欧洲:欧盟能源基础设施指令要求跨境石油和天然气管道安装即时腐蚀监测系统,并将数据连接到统一的监测平台。
亚太地区:中国的《油气管道完整性管理规范》明确要求关键影响区域的管道必须配备腐蚀监测感测器,并将数据即时传输到国家管网集团的平台。
老旧管线更换和更新政策
全球约40%的油气管道已运作超过30年,显着增加了腐蚀风险。各国政府正透过税收优惠和补贴鼓励业者更换老旧管道,并强制要求新建管道采用先进的腐蚀监测技术。
碳排放与环境政策驱动因素
石油和天然气外洩会导致甲烷排放,加剧温室效应。欧盟的碳边境调节机制(CBAM)对高碳排放产业征收碳排放税,迫使企业采用低能耗、高精度的腐蚀监测技术,以降低洩漏风险。
2. 技术进步的驱动力:智慧和无损检测技术的突破性进展
智慧感测器和物联网 (IoT) 集成
光纤感测技术:分散式光纤感测器(DAS/DTS)可即时监测远距(数十公里)的管道,定位精度可达±1米,反应时间小于1秒。
无线感测器网路 (WSN):低功率广域网路(LPWAN) 技术(例如 LoRa、NB-IoT)可使感测器电池寿命超过五年,并将资料传输成本降低至传统解决方案的十分之一。
无损检测(NDT)技术的创新
超音波导波技术:可穿透管道涂层检测内壁腐蚀,检测速度为每秒 10 米,检测范围比传统超音波大 10 倍。
电磁超音波技术(EMAT):无需使用偶联剂即可检测管道表面高温(400°C 以上)下的裂纹,因此适用于炼油厂等恶劣环境。
巨量资料和人工智慧(AI)应用
机器学习模型:利用历史腐蚀资料训练的人工智慧演算法可以预测管道的剩余寿命,误差小于 5%。
数位双胞胎技术:建立管道的3D模型,并即时模拟腐蚀进展,以优化检查週期和维护策略。
3. 市场需求驱动因素:行驶距离增加与严峻的环境挑战
全球石油和天然气管道的总长度持续增加。
预计到 2030 年,世界石油和天然气管道的总长度将超过 200 万公里,复合年增长率约为 3%。
老旧管线亟需更换。
北美约 60% 的管道建于 20 世纪 70 年代至 90 年代,其腐蚀速率为每年 0.3-0.5 毫米,因此迫切需要升级监测技术以延长其使用寿命。
对恶劣环境监测的需求日益增长
深水管道:深度超过 300 公尺的管道必须能够承受高压和低温腐蚀,监测系统必须耐压(超过 30 MPa)并具有防生物污损能力。
极地管道:北极管道必须应对低至 -50°C 的温度和永久冻土蠕变,因此需要监测设备整合加热模组和位移感测器。
4. 追求成本效益:透过新科技降低生命週期成本
利用智慧监控技术降低营运和维护成本
无人机巡检:配备雷射雷达和热热感的无人机可以取代人工巡检,效率提高 80%,成本降低成像器%。
预测性维护:基于人工智慧的腐蚀预测模型可以减少非计划性停机时间,并将管道的使用寿命延长 5 至 10 年。
优化总生命週期成本 (TCO)
人工巡检占传统监测方案总拥有成本的60%。智慧监测方案透过降低感测器和数据分析成本,将总拥有成本降低至传统方案的40%。
5. 透过提高环境和安全意识进行推广:洩漏事故促进技术传播
频繁的石油和天然气洩漏
过去五年,腐蚀相关事故占全球重大油气外洩事故的35%,造成的经济损失超过100亿美元。例如,2020年墨西哥湾输油管洩漏事故导致停产三个月,直接损失超过5亿美元。
企业ESG目标推动技术应用
随着壳牌和道达尔等国际能源公司承诺在 2030 年实现净零排放,腐蚀监测技术已成为 ESG 报告中一项重要的排放措施。
公共安全意识正在提高。
社群媒体放大了油气洩漏事件的公众影响,迫使政府和企业加大对安全措施的投入。例如,加拿大公众对跨山输油管扩建计划的反对,迫使该计画将腐蚀监测预算增加了20%。
推动油气管道腐蚀监测服务市场发展的因素包括政策法规、技术进步、市场需求、成本效益、环境安全意识。全球范围内日益严格的监管以及老旧管道的更换需求是推动市场发展的根本动力。智慧感测器、无损检测和人工智慧技术的创新提升了服务价值,而严苛环境下的监测需求和成本优化则进一步拓展了市场空间。未来,数位双胞胎和自主机器人技术的整合将加速市场向「预测性维护+零洩漏」目标的演进。
本报告旨在按地区/国家、类型和应用对全球石油和天然气管道腐蚀监测服务市场进行全面分析,重点关注总收入、市场份额和主要企业的排名。
本报告以收益为准,以2024年为基准年,对油气管道腐蚀监测服务市场规模、估算和预测进行了阐述,并涵盖了2020年至2031年的历史数据和预测数据。定量和定性分析将帮助读者制定油气管道腐蚀监测服务业务和成长策略,评估市场竞争,分析自身在当前市场中的地位,并做出明智的商业决策。
市场区隔
公司
按类型分類的细分市场
应用领域
按地区
The global market for Oil and Gas Pipeline Corrosion Monitoring Services was estimated to be worth US$ 458 million in 2024 and is forecast to a readjusted size of US$ 609 million by 2031 with a CAGR of 4.3% during the forecast period 2025-2031.
Oil and Gas Pipeline Corrosion Monitoring Services are defined as a series of professional services for real-time monitoring and evaluation of oil and gas pipeline corrosion. These services are designed to ensure the safe operation of oil and gas pipelines, detect and deal with potential corrosion problems in a timely manner, thereby extending the service life of the pipeline and reducing the risk of leakage and accidents caused by corrosion.
The driving factors of the oil and gas pipeline corrosion monitoring service market mainly include:
1. Policy and regulatory drive: safety standards and environmental pressure drive
Global pipeline safety regulations are becoming stricter
North America: The US Pipeline Safety Act requires operators to submit integrity management plans every 5 years and compulsorily use intelligent internal detection technology (ILI) to assess pipeline corrosion risks.
Europe: The EU Energy Infrastructure Directive stipulates that cross-border oil and gas pipelines must be equipped with real-time corrosion monitoring systems, and data must be connected to a unified supervision platform.
Asia Pacific: China's Oil and Gas Pipeline Integrity Management Specifications clearly require that pipelines in high-consequence areas must be equipped with corrosion monitoring sensors, and data must be transmitted to the National Pipeline Network Group platform in real time.
Old pipeline replacement and upgrade policy
About 40% of the world's oil and gas pipelines have been in service for more than 30 years, and the risk of corrosion has increased significantly. Governments encourage operators to replace old pipelines through tax incentives and subsidies, and require new pipelines to adopt advanced corrosion monitoring technology.
Driven by carbon emissions and environmental policies
Oil and gas leaks lead to methane emissions, exacerbating the greenhouse effect. The EU Carbon Border Adjustment Mechanism (CBAM) imposes carbon taxes on high-carbon emission industries, prompting companies to adopt low-energy, high-precision corrosion monitoring technologies to reduce leakage risks.
2. Technological progress drive: breakthroughs in intelligence and non-destructive testing technologies
Integration of smart sensors and the Internet of Things (IoT)
Fiber optic sensing technology: Distributed fiber optic sensors (DAS/DTS) can achieve real-time monitoring of long-distance (tens of kilometers) pipelines, with a positioning accuracy of +-1 meter and a response time of less than 1 second.
Wireless sensor network (WSN): Low-power wide area network (LPWAN) technology (such as LoRa, NB-IoT) supports sensor battery life of more than 5 years, and data transmission costs are reduced to 1/10 of traditional solutions.
Non-destructive testing (NDT) technology innovation
Ultrasonic guided wave technology: It can penetrate pipeline coatings to detect inner wall corrosion, with a detection speed of 10 meters/second and a coverage range 10 times that of traditional ultrasound.
Electromagnetic ultrasonic technology (EMAT): It can detect cracks on high-temperature (>400°C) pipeline surfaces without coupling agents, suitable for extreme environments such as refineries.
Big data and artificial intelligence (AI) applications
Machine learning model: AI algorithms trained based on historical corrosion data can predict the remaining life of pipelines with an error of less than 5%.
Digital twin technology: Build a three-dimensional model of the pipeline, simulate the corrosion evolution process in real time, and optimize the detection cycle and maintenance strategy.
III. Market demand drive: mileage growth and extreme environmental challenges
Global oil and gas pipeline mileage continues to grow
It is estimated that by 2030, the total mileage of global oil and gas pipelines will exceed 2 million kilometers, with an annual compound growth rate of about 3%.
The replacement cycle of old pipelines is coming
About 60% of the pipelines in North America were built in the 1970s-1990s, with a corrosion rate of 0.3-0.5 mm/year, and it is urgent to upgrade monitoring technology to extend the service life.
Increasing demand for extreme environment monitoring
Deep-sea pipelines: Pipelines with a water depth of more than 300 meters need to withstand high-pressure and low-temperature corrosion, and the monitoring system needs to have pressure resistance (>30MPa) and anti-biological adhesion capabilities.
Polar pipelines: Pipelines in the Arctic region need to deal with low temperatures of -50°C and permafrost creep, and monitoring equipment needs to integrate heating modules and displacement sensors.
4. Cost-effectiveness driven: New technologies reduce life cycle costs
Intelligent monitoring technology reduces operation and maintenance costs
UAV inspection: UAVs equipped with LiDAR and infrared thermal imagers can replace manual inspections, increasing efficiency by 80% and reducing costs by 60%.
Predictive maintenance: AI-based corrosion prediction models can reduce the number of unplanned downtimes and extend the service life of pipelines by 5-10 years.
Total life cycle cost (TCO) optimization
In the TCO of traditional monitoring solutions, manual inspections account for 60%; intelligent monitoring solutions reduce TCO to 40% of traditional solutions, mainly due to the reduction in sensor and data analysis costs.
5. Environmental and safety awareness driven: leakage incidents promote technology popularization
Frequent oil and gas leakage accidents
In the past five years, corrosion-related accidents accounted for 35% of major global oil and gas leakage accidents, with economic losses exceeding US$10 billion. For example, the pipeline leakage incident in the Gulf of Mexico in 2020 caused a 3-month shutdown, with direct losses exceeding US$500 million.
Corporate ESG goals drive technology adoption
International energy companies such as Shell and Total have pledged to achieve net zero emissions by 2030, and corrosion monitoring technology has become a key emission reduction measure in their ESG reports.
Public safety awareness has increased
Social media has amplified the social impact of oil and gas leaks, prompting governments and companies to increase safety investment. For example, the Trans Mountain pipeline expansion project in Canada was forced to increase its corrosion monitoring budget by 20% due to public opposition.
The driving factors of the oil and gas pipeline corrosion monitoring service market include policies and regulations, technological progress, market demand, cost-effectiveness and environmental safety awareness. Global tightening regulations and the need to replace old pipelines constitute the basic driving force. Smart sensors, non-destructive testing and AI technology breakthroughs enhance service value, while extreme environment monitoring needs and cost optimization further expand the market space. In the future, with the integration of digital twins and autonomous robot technology, the market will accelerate its evolution towards the goal of "predictive maintenance + zero leakage".
This report aims to provide a comprehensive presentation of the global market for Oil and Gas Pipeline Corrosion Monitoring Services, focusing on the total sales revenue, key companies market share and ranking, together with an analysis of Oil and Gas Pipeline Corrosion Monitoring Services by region & country, by Type, and by Application.
The Oil and Gas Pipeline Corrosion Monitoring Services market size, estimations, and forecasts are provided in terms of sales revenue ($ millions), considering 2024 as the base year, with history and forecast data for the period from 2020 to 2031. With both quantitative and qualitative analysis, to help readers develop business/growth strategies, assess the market competitive situation, analyze their position in the current marketplace, and make informed business decisions regarding Oil and Gas Pipeline Corrosion Monitoring Services.
Market Segmentation
By Company
Segment by Type
Segment by Application
By Region
Chapter Outline
Chapter 1: Introduces the report scope of the report, global total market size. This chapter also provides the market dynamics, latest developments of the market, the driving factors and restrictive factors of the market, the challenges and risks faced by manufacturers in the industry, and the analysis of relevant policies in the industry.
Chapter 2: Detailed analysis of Oil and Gas Pipeline Corrosion Monitoring Services company competitive landscape, revenue market share, latest development plan, merger, and acquisition information, etc.
Chapter 3: Provides the analysis of various market segments by Type, covering the market size and development potential of each market segment, to help readers find the blue ocean market in different market segments.
Chapter 4: Provides the analysis of various market segments by Application, covering the market size and development potential of each market segment, to help readers find the blue ocean market in different downstream markets.
Chapter 5: Revenue of Oil and Gas Pipeline Corrosion Monitoring Services in regional level. It provides a quantitative analysis of the market size and development potential of each region and introduces the market development, future development prospects, market space, and market size of each country in the world.
Chapter 6: Revenue of Oil and Gas Pipeline Corrosion Monitoring Services in country level. It provides sigmate data by Type, and by Application for each country/region.
Chapter 7: Provides profiles of key players, introducing the basic situation of the main companies in the market in detail, including product revenue, gross margin, product introduction, recent development, etc.
Chapter 8: Analysis of industrial chain, including the upstream and downstream of the industry.
Chapter 9: Conclusion.