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结构安全监控市场:按报价、技术、监测方法、产业划分 - 2024-2030 年全球预测Structural Health Monitoring Market by Offering (Hardware, Services, Software), Technology (Wired Structural Health Monitoring, Wireless Structural Health Monitoring), Monitoring Approach, Vertical - Global Forecast 2024-2030 |
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结构安全监控市场规模预计2023年为43.1亿美元,预计2024年将达到48.3亿美元,2030年将达到99.2亿美元,复合年增长率为12.64%。
结构安全监控(SHM) 市场由用于评估和分析建筑物、桥樑、大坝和工业设备等结构的健康和性能的解决方案、服务和技术组成。 SHM 市场包括各种技术和工具来检测和监控这些结构的健康状况、确保安全并保持营运效率。 SHM 应用范围涵盖民用基础设施、航太和能源公共,监测结构的完整性至关重要。最终用户包括建设公司、负责公共的政府机构以及严重依赖维护资产完整性以实现业务永续营运的产业。随着科技的进步,SHM 市场正在出现新的机会。人工智慧和机器学习的整合用于预测分析、越来越多地使用无人机进行关键检查以及先进材料和感测器的开发正在创造新的成长前景。维护老化基础设施的需求不断增长,加上智慧感测器和物联网的技术飞跃,增强了对 SHM 系统的需求。满足严格的安全法规和减轻灾害风险的迫切需求正在进一步推动市场扩张。儘管高昂的初始成本、技术复杂性、资料管理挑战以及不愿摆脱传统做法都是障碍,但市场提供了显着的机会。无线感测器网路的创新、资料分析软体的增强、材料科学的进步以及 SHM通讯协定的标准化都是有希望进一步发展的领域。这些创新对于寻求引领 SHM 市场的公司至关重要,确保公共基础设施、航太和能源公用事业等不同领域的关键结构的持久安全性和功能性。
主要市场统计 | |
---|---|
基准年[2023] | 43.1亿美元 |
预测年份 [2024] | 48.3亿美元 |
预测年份 [2030] | 99.2亿美元 |
复合年增长率(%) | 12.64% |
需要先进的组件来即时监控组件结构健康状况并完善预测维护分析
硬体构成恶劣条件下的感测器和资料撷取系统等重要元件。服务领域提供专业知识主导的服务,范围从系统设计到维护和分析,以完善预测性维护分析。该软体是一个平台,具有复杂的资料处理和机器学习演算法,以提高易用性和预测能力。虽然每个组件都有自己的价值,但真正的优势来自于它们的协同效应,满足从初始硬体设置到复杂、连续监控的软体集成的各种客户需求,以构建整体、可扩展且日益具有预测性的SHM 系统。
技术:无线结构健康系统是快速部署和重新配置更安全的监控系统的首选。
有线结构安全监控系统具有感测器和资料收集系统之间的实体连接。这些系统通常包括电缆网络,用于在结构内的监测点之间传输资料和电力。有线 SHM 系统可最大限度地降低因干扰而导致资料遗失的风险,并且在可靠性和资料完整性非常重要的情况下是首选。无需更换电池,需要持续供电才能长期监测。当环境或结构难以传输无线讯号时。需要高资料频宽和即时监控能力。无线结构安全监控系统使用无线感测网路来监测结构的健康状况。该系统旨在减少有线系统的安装时间和成本,并提高感测器放置的弹性。有线和无线 SHM 系统受到多种因素的影响,包括成本、资料可靠性、安装复杂性和特定的施工要求。传统上,有线系统因其可靠性和高速资料传输能力而受到重视,但它们通常具有较高的安装成本,并且需要进行重大的结构修改。相反,无线系统更加弹性,安装成本更低,并且更容易扩充性,儘管存在电源管理、资料安全和讯号干扰等潜在问题。
依产业:在航太和国防领域扩展结构安全监控的使用,最大限度地减少对操作能力的干扰
在航太和国防工业中,安全的重要性以及与结构缺陷相关的高成本强调了对结构安全监控的需求。飞机和国防设备中的 SHM 系统用于监测疲劳、侦测衝击损伤并预测结构部件的使用寿命,从而实现主动维护并节省成本。轻型、高精度、即时监控系统是首选,可以最大限度地减少对车辆和结构操作能力的干扰。民用基础设施包括桥樑、水坝、隧道、建筑物和其他需要持续监控以防止灾难性故障的关键结构。为大型结构提供长期稳定性、扩充性和成本效益的系统是满足各种民用基础设施监控需求的首要任务。能源产业,尤其是风力发电机、石油和天然气平台等可再生能源结构,依靠 SHM 系统来确保可靠性并防止意外停机。 SHM 系统耐用、耐腐蚀且能够在恶劣的环境中运行,因此必须能够应对恶劣的天气条件并及早发现故障。采矿作业要求 SHM 防止结构失效,产生严重的安全和环境影响。这些系统用于监测矿山完整性、尾矿坝和相关基础设施。在采矿业中,坚固耐用的系统至关重要,能够承受衝击、振动、灰尘,并能够在地下和崎岖的地形环境中运作。
区域洞察
由于基础设施老化和自然灾害频率增加,美国和加拿大对 SHM 系统的需求很高。美国政府以及私营部门的参与,正在对基础设施维护进行大量投资,推动健康管理服务的成长。消费者更有可能更喜欢 SHM 解决方案中的无线感测器网路和物联网整合等先进技术。欧盟国家对健康管理的实施表现出了积极的态度。建议在智慧城市和永续基础设施计画中使用健康管理系统。欧洲消费者和政府更喜欢环保和节能的系统,从而创造了对绿色健康管理解决方案的需求。由于快速的都市化、基础设施扩建和频繁的自然灾害,亚太地区的健康管理市场正在快速成长。随着大型基础设施计划推动中国、日本和印度等国家对高品质 SHM 系统的需求,存在着各种机会和挑战。中国政府实施了严格的建筑规范和法规,强制要求使用 SHM 技术。
FPNV定位矩阵
FPNV 定位矩阵对于评估结构安全监控市场至关重要。我们检视与业务策略和产品满意度相关的关键指标,以对供应商进行全面评估。这种深入的分析使用户能够根据自己的要求做出明智的决策。根据评估,供应商被分为四个成功程度不同的像限:前沿(F)、探路者(P)、利基(N)和重要(V)。
市场占有率分析
市场占有率分析是一种综合工具,可以对结构安全监控市场中供应商的现状进行深入而详细的研究。全面比较和分析供应商在整体收益、基本客群和其他关键指标方面的贡献,以便更好地了解公司的绩效及其在争夺市场占有率时面临的挑战。此外,该分析还提供了对该行业竞争特征的宝贵见解,包括在研究基准年观察到的累积、分散主导地位和合併特征等因素。详细程度的提高使供应商能够做出更明智的决策并制定有效的策略,从而在市场上获得竞争优势。
1. 市场渗透率:提供有关主要企业所服务的市场的全面资讯。
2. 市场开拓:我们深入研究利润丰厚的新兴市场,并分析其在成熟细分市场的渗透率。
3. 市场多元化:提供有关新产品发布、开拓地区、最新发展和投资的详细资讯。
4. 竞争评估和情报:对主要企业的市场占有率、策略、产品、认证、监管状况、专利状况和製造能力进行全面评估。
5. 产品开发与创新:提供对未来技术、研发活动和突破性产品开发的见解。
1.结构安全监控市场的市场规模与预测为何?
2.在结构安全监控市场的预测期间内,有哪些产品、细分市场、应用和领域需要考虑投资?
3.结构安全监控市场的技术趋势和法规结构是什么?
4.结构安全监控市场主要供应商的市场占有率为何?
5.进入结构安全监控市场合适的形式和策略手段是什么?
[198 Pages Report] The Structural Health Monitoring Market size was estimated at USD 4.31 billion in 2023 and expected to reach USD 4.83 billion in 2024, at a CAGR 12.64% to reach USD 9.92 billion by 2030.
The structural health monitoring (SHM) market comprises solutions, services, and technologies utilized for assessing and analyzing the health and performance of structures such as buildings, bridges, dams, and industrial equipment. It involves various methods and tools to detect and monitor the integrity of these structures to ensure safety and maintain operational efficiency. SHM applications are broad, including civil infrastructure, aerospace, energy utilities, and more, where monitoring structural integrity is crucial. End-users range from construction companies, government bodies responsible for public safety, to industries that rely heavily on maintaining their asset integrity for operational continuity. New opportunities in the SHM market are emerging with advancements in technology. The integration of artificial intelligence and machine learning for predictive analysis, increased use of drones for critical inspections, and the development of advanced materials and sensors are creating new prospects for growth. The increasing need to maintain aging infrastructure, coupled with technological leaps in smart sensors and IoT, is bolstering the demand for SHM systems. Compliance with stringent safety regulations and the pressing need for disaster risk mitigation are further catalyzing market expansion. Although high initial costs, technical complexities, data management challenges, and reluctance to move away from traditional practices pose obstacles, the market presents notable opportunities. Innovations in wireless sensor networks, enhanced data analysis software, advancements in material science, and the standardization of SHM protocols are areas primed for development. These innovations are critical for businesses looking to lead in the SHM market, ensuring the enduring safety and functionality of essential structures across diverse sectors such as civil infrastructure, aerospace, and energy utilities.
KEY MARKET STATISTICS | |
---|---|
Base Year [2023] | USD 4.31 billion |
Estimated Year [2024] | USD 4.83 billion |
Forecast Year [2030] | USD 9.92 billion |
CAGR (%) | 12.64% |
Component: Need of highly advanced component for the real time monitoring of structural health refining predictive maintenance analytics
Hardware constitutes essential components such as sensors and data acquisition systems for extreme conditions. In the services arena, expertise-driven offerings span system design to maintenance and analysis, to refine predictive maintenance analytics. The software are the platforms that feature sophisticated data processing and machine learning algorithms, to enhance usability and predictive capabilities. While each component holds its unique value, the real strength emerges from their synergy, creating holistic, scalable, and increasingly predictive SHM systems that cater to varying client needs, from initial hardware setup to software integration for complex, ongoing monitoring.
Technology: Preference for wireless structural health systems for quick deployment or reconfiguration of more secure monitoring systems
Wired structural health monitoring systems are characterized by physical connections between sensors and data acquisition systems. These systems typically include a network of cables to transfer data and power across the monitoring points in a structure. Wired SHM systems are favored in situations for reliability and data integrity are critical, with minimal risk of data loss due to interference. Continuous power supply is necessary for long-term monitoring without the need for battery replacement. The environment or structure is not conducive to wireless signal transmission. There is a requirement for high data bandwidth and real-time monitoring capabilities. Wireless structural health monitoring systems use wireless sensor networks to monitor the health of structures. They are designed to reduce the installation time and cost as compared to wired systems and offer greater flexibility in sensor placement. Wired and wireless SHM systems are contingent upon various factors including cost, data reliability, complexity of installation, and specific structural requirements. Wired systems are traditionally regarded for their reliability and capability for high-speed data transfer, yet they often incur higher installation costs and demand significant modifications to the structure. Conversely, wireless systems afford greater flexibility, lower installation costs, and easier scalability, albeit with potential concerns regarding power management, data security, and signal interference.
Vertical: Expandable utilization in aerospace and defense of structural health monitoring for minimal interference with the operational capabilities
In the aerospace & defense industry, the need for structural health monitoring is emphasized by the critical importance of safety and the high costs associated with structural failures. SHM systems in aircraft and defense equipment are used to monitor fatigue, detect damages due to impacts, and predict the lifespan of structural components, leading to proactive maintenance and cost savings. The preference for lightweight, highly accurate, and real-time monitoring systems that offer minimal interference with the operational capabilities of the vehicle or structure. Civil infrastructure includes bridges, dams, tunnels, buildings, and other critical structures that require continuous monitoring to prevent catastrophic failures. Systems that offer long-term stability, scalability for large structures, and cost-effectiveness are a priority to accommodate the vast range of civil infrastructure monitoring needs. The energy sector, particularly within renewable energy structures like wind turbines and oil & gas platforms, relies on SHM systems to ensure reliability and to prevent unanticipated downtime, which can result in significant financial losses. Durable, corrosion-resistant, and able to operate in harsh environments, the preferred SHM systems in this sector must handle extreme weather conditions and provide early fault detection. Mining operations necessitate SHM to prevent structural failures that can have serious safety and environmental impacts. These systems are used to monitor mine integrity, tailings dams, and related infrastructure. Robust and rugged systems that can operate in a subterranean or rough terrain environment, with the ability to withstand shock, vibration, and dust, are critical in the mining industry.
Regional Insights
The United States, Canada remain at the forefront with its aging infrastructure and the increasing frequency of natural disasters, there is a high demand for SHM systems. The U.S. government invests significantly in infrastructure maintenance, alongside private sector participation, which fuels the growth of SHM services. Consumers show a higher preference for advanced technologies such as wireless sensor networks and IoT integrations in SHM solutions. European Union (EU) countries have shown a proactive approach in the adoption of SHM. Initiatives for smart cities and sustainable infrastructure advocate the use of SHM systems. European consumers and governments prefer environmentally friendly and energy-efficient systems, creating demand for green SHM solutions. The Asia Pacific region exhibits a fast-growing SHM market due to rapid urbanization, expanding infrastructure, and high occurrence of natural disasters. Countries such as China, Japan, and India present diverse opportunities and challenges, owing to vast infrastructure projects driving the demand for high-quality SHM systems. The Chinese government is implementing strict building codes and regulations that mandate the use of SHM technologies.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Structural Health Monitoring Market. It offers a comprehensive assessment of vendors, examining key metrics related to Business Strategy and Product Satisfaction. This in-depth analysis empowers users to make well-informed decisions aligned with their requirements. Based on the evaluation, the vendors are then categorized into four distinct quadrants representing varying levels of success: Forefront (F), Pathfinder (P), Niche (N), or Vital (V).
Market Share Analysis
The Market Share Analysis is a comprehensive tool that provides an insightful and in-depth examination of the current state of vendors in the Structural Health Monitoring Market. By meticulously comparing and analyzing vendor contributions in terms of overall revenue, customer base, and other key metrics, we can offer companies a greater understanding of their performance and the challenges they face when competing for market share. Additionally, this analysis provides valuable insights into the competitive nature of the sector, including factors such as accumulation, fragmentation dominance, and amalgamation traits observed over the base year period studied. With this expanded level of detail, vendors can make more informed decisions and devise effective strategies to gain a competitive edge in the market.
Key Company Profiles
The report delves into recent significant developments in the Structural Health Monitoring Market, highlighting leading vendors and their innovative profiles. These include Acellent Technologies Inc., AVT Reliability Ltd., Beanair GmbH, Bridge Diagnostics, Campbell Scientific, Inc., COWI A/S, Digitexx Data Systems, Inc., ElastiSense, FEAC Engineering P.C., First Sensor AG by TE Connectivity Ltd., Geocomp, Inc., Geokon, Geomotion (Singapore) Pte Ltd., Hottinger Bruel & Kjaer GmbH, ignaGuard, LLC, Infibra Technologies Srl, James Fisher and Sons PLC, KDM Engineers [India] Pvt. Ltd., Kinemetrics, Inc., Nova Ventures Group Corp., Rst Instruments Ltd., Sensuron LLC, Setpoint Technologies Ltd., SGS S.A., SHM Canada Consulting Limited, Sisgeo Srl, SITES AFLA (Pty) Ltd., Sixense Group, Sodis Lab, Somni Solutions, and Xylem Inc..
Market Segmentation & Coverage
1. Market Penetration: It presents comprehensive information on the market provided by key players.
2. Market Development: It delves deep into lucrative emerging markets and analyzes the penetration across mature market segments.
3. Market Diversification: It provides detailed information on new product launches, untapped geographic regions, recent developments, and investments.
4. Competitive Assessment & Intelligence: It conducts an exhaustive assessment of market shares, strategies, products, certifications, regulatory approvals, patent landscape, and manufacturing capabilities of the leading players.
5. Product Development & Innovation: It offers intelligent insights on future technologies, R&D activities, and breakthrough product developments.
1. What is the market size and forecast of the Structural Health Monitoring Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Structural Health Monitoring Market?
3. What are the technology trends and regulatory frameworks in the Structural Health Monitoring Market?
4. What is the market share of the leading vendors in the Structural Health Monitoring Market?
5. Which modes and strategic moves are suitable for entering the Structural Health Monitoring Market?