市场调查报告书
商品编码
1471104
非色散红外线市场:按气体类型、组件、应用和产业划分 – 2024-2030 年全球预测Non-dispersive Infrared Market by Gas Type (Acetylene, Anesthetic Gases, Carbon Dioxide), Component (Detectors, Filters, Infrared Sources), Application, Vertical - Global Forecast 2024-2030 |
※ 本网页内容可能与最新版本有所差异。详细情况请与我们联繫。
非色散红外线红外线市场规模预计2023年为7.6786亿美元,预计2024年将达到8.1508亿美元,2030年将达到11.9012亿美元,复合年增长率为6.46%。
非色散红外线(NDIR)技术是一种简单的光谱方法,主要用于气体分析。透过使红外线光穿过气体样品并测量另一侧接收到的光强度,NDIR 解决方案可以根据吸收的光量确定样品中目标气体的浓度。全球对环境保护的日益关注以及关于空气品质和排放气体的更严格法规的实施正在推动 NDIR 的采用。各国政府和国际组织要求对污染物进行更严格的监测和控制,这推动了对 NDIR 感测器的需求。在石化和采矿等各个行业,监测和控制爆炸性和危险气体的浓度对于确保职场安全至关重要,这增加了对 NDIR 技术的需求。儘管 NDIR 解决方案是针对特定气体而设计的,但它们也可能与其他气体反应,并且可能不准确。此外,NDIR 工具需要定期维护和校准,以确保长时间内准确读数,这在营运成本和复杂性方面提出了挑战。主要企业正在探索 AI/ML 和资料分析技术的新进展,以克服 NDIR 技术和解决方案的技术和效能问题。随着物联网 (IoT) 的扩展,NDIR 技术与物联网设备的集成为从智慧建筑到农业环境等各种环境中即时远端监测气体提供了可能性。技术进步使 NDIR 感测器进一步小型化,可能会将其纳入可携式和可穿戴设备中,从而为个人安全和健康监测开闢新的应用。
主要市场统计 | |
---|---|
基准年[2023] | 76786万美元 |
预测年份 [2024] | 81508万美元 |
预测年份 [2030] | 1,190,120,000 美元 |
复合年增长率(%) | 6.46% |
气体类型:监测和维持一氧化碳水平对于保护人类健康、安全和环境至关重要。
乙炔是一种高度易燃气体,用作燃料和合成材料的成分。在工业中,监测乙炔水平以防止爆炸并确保职场安全极为重要。麻醉气体在医疗环境中用于手术期间的镇静和缓解疼痛。监测麻醉气体对于将病人安全和工作人员暴露在安全范围内非常重要。二氧化碳 (CO2) 是一种自然产生的气体,是燃烧的产物。监测二氧化碳水平对于环境调查、室内空气品质评估和工业流程至关重要,以确保安全并符合环境标准。一氧化碳 (CO) 是碳基燃料燃烧产生的无色无味气体。高浓度时,它可能对人类和动物造成危险。监测家庭、职场和工业中的二氧化碳对于预防中毒和确保空气品质至关重要。乙烯是一种碳氢化合物气体,用作水果催熟剂和塑胶生产。监测乙烯浓度对于农业、食品储存和製造业非常重要,可以控製成熟过程并确保产品品质。碳氢化合物是指主要由氢和碳组成的一大类有机化合物。碳氢化合物监测对于石化产业、环境监测以及车辆和工业製程排放气体控制至关重要。冷媒气体用于空调和冰箱等冷却系统。冷媒气体监测对于环境保护和合规性至关重要,因为冷媒气体会导致全球暖化和臭氧层消耗。六氟化硫 (SF6) 是一种强效温室气体,在电气工业中用作绝缘材料和各种医疗应用。由于全球暖化的可能性很大并且需要防止变电站洩漏,因此对其进行监测至关重要。
应用:由于需要精确测量气体浓度,因此采用NDIR技术进行监测
检测和分析应用程式使用 NDIR 来识别和测量环境中特定气体的浓度。透过分析红外线光的吸收波长,可以准确检测二氧化碳(CO2)、一氧化碳(CO)、甲烷(CH4)等气体。此功能对于确保职场安全、遵守环境法规和优化工业流程至关重要。 NDIR 技术用于执法机构和个人使用的呼吸分析设备。当人们向该设备呼吸时,感测器会测量呼吸中酒精分子吸收的红外线光量,并估算血液酒精浓度 (BAC)。在医疗环境中,NDIR 感测器用于测量血液中溶解的各种气体的浓度,例如二氧化碳和氧气。这对于评估重症患者和急诊医学中病人的呼吸功能和代谢状态极为重要。 NDIR 感测器在火灾侦测系统中也很有用,因为它们可以侦测火焰发出的红外线辐射。 NDIR技术广泛用于检测和测量一氧化碳、甲烷和六氟化硫等有害气体的浓度,并用于防止接触有害物质并降低各种工业、环境和安全应用中的风险。在暖通空调领域,NDIR技术在监测和控制建筑物内的空气品质方面发挥着重要作用。透过测量二氧化碳浓度,NDIR 感测器调整通风率,以确保室内空气品质在舒适和健康的阈值内。 NDIR 技术的监测应用涵盖广泛的领域,包括温室气体监测、汽车废气控制和室内空气品质评估。 NDIR感测器在监测大气中污染物和温室气体的浓度方面发挥重要作用。这有助于评估环境空气品质、执行污染法规和研究气候变迁。在医疗保健领域,NDIR 感测器用于监测手术期间的麻醉气体浓度。这使患者能够接受安全有效的麻醉量,有助于改善治疗结果。二氧化碳测量仪是 NDIR 技术在医疗保健领域的具体应用,用于测量医疗过程中呼出气体中二氧化碳 (CO2) 的浓度。在水果成熟度监测中,NDIR感测器用于监测乙烯气体浓度,而乙烯气体浓度是水果成熟度的重要指标。随着人们对环境保护的日益关注,NDIR 感测器被用来检测空调和冷冻系统中的冷媒气体洩漏。这可以防止臭氧层消耗和温室气体排放,有助于环境的永续性。
区域洞察
美洲地区,特别是美国和加拿大,对职业安全和健康标准的重视正在增加 HVAC 系统、工业安全和汽车排放测试中对 NDIR 解决方案的需求。消费者重视准确性、可靠性和易于使用的介面。人们对整合 NDIR 感测器以进行空气品质和能源管理的智慧家庭技术也越来越感兴趣。美国在采用严格的环境和安全法规方面处于领先地位,推动了用于合规性监控的 NDIR 技术的进步。美国和加拿大的公司在开发用于即时监控应用的可携式网路 NDIR 设备方面处于领先地位。在亚太地区,快速的工业化和都市化,特别是在中国、印度和日本,正在推动对 NDIR 感测器和技术的需求,主要用于环境监测和工业排放气体。该地区的消费者越来越意识到空气品质问题,对能够精确可靠地监测气体的产品的需求不断增加。成本效益和耐用性是影响购买决策的重要因素。欧盟国家拥有专注于环境保护和职业健康的强大法规结构,推动了监管合规、汽车测试和大楼自动化系统对 NDIR 技术的需求。随着对智慧城市和节能建筑的投资不断增加,NDIR 感测器在二氧化碳监测、空气品质和节能方面发挥重要作用。欧盟严格的法规环境持续推动 NDIR 技术的创新。中东拥有庞大的石油和天然气工业,需要强大且防爆的 NDIR 解决方案来进行气体检测和洩漏监测。
FPNV定位矩阵
FPNV定位矩阵对于评估非色散红外线市场至关重要。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,可以对非色散红外线市场供应商的现状进行深入而深入的研究。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.竞争评估与资讯: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、製造能力等进行全面评估。
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.非色散红外线市场的市场规模和预测是多少?
2.非色散红外线市场预测期间需要考虑投资的产品、细分市场、应用和领域有哪些?
3. 非色散红外线市场的技术趋势和法规结构是什么?
4.非色散红外线市场主要厂商的市场占有率是多少?
5. 进入非色散红外线市场的合适形式和策略手段是什么?
[188 Pages Report] The Non-dispersive Infrared Market size was estimated at USD 767.86 million in 2023 and expected to reach USD 815.08 million in 2024, at a CAGR 6.46% to reach USD 1,190.12 million by 2030.
Non-dispersive infrared (NDIR) technology is a simple spectroscopic method principally used for gas analysis. By passing infrared light through a gas sample and measuring the intensity of light received on the other side, NDIR solutions can determine the concentration of a targeted gas within the sample based on the amount of light that gets absorbed. Increasing global focus on environmental protection and the implementation of stringent regulations regarding air quality and emissions have driven the adoption of NDIR. Governments and international bodies are mandating more rigorous monitoring and control of pollutants, which, in turn, boosts the demand for NDIR sensors. Within various industries, such as petrochemicals and mining, there's a critical need to monitor and control concentrations of explosive or harmful gases to ensure workplace safety, thereby driving the need for NDIR technologies. While NDIR solutions are designed for specific gases, they can sometimes respond to other gases, leading to potential inaccuracies. Moreover, NDIR tools require regular maintenance and calibration to ensure accurate readings over time, which can be seen as a challenge in terms of operational costs and complexity. Key players are exploring new advancements in AI/ML and data analytics technologies to overcome the technical and performance issues of NDIR technologies and solutions. As the Internet of Things (IoT) expands, integrating NDIR technologies with IoT devices offers the potential for real-time, remote monitoring of gases in various environments, from smart buildings to agricultural settings. Advances in technology allowing for further miniaturization of NDIR sensors could lead to their inclusion in portable or wearable devices, opening up new applications in personal safety and health monitoring.
KEY MARKET STATISTICS | |
---|---|
Base Year [2023] | USD 767.86 million |
Estimated Year [2024] | USD 815.08 million |
Forecast Year [2030] | USD 1,190.12 million |
CAGR (%) | 6.46% |
Gas Type: Crucial need to monitor and maintain carbon monoxide levels to safeguard human health, safety, and the environment
Acetylene is a highly flammable gas used as a fuel and a building block for synthetic materials. In industries, it's crucial to monitor acetylene levels to prevent explosions and ensure workplace safety. Anesthetic gases are used in medical settings to provide sedation and pain relief during surgeries. Monitoring anesthetic gases is important to ensure patient safety and staff exposure is kept within safe limits. Carbon dioxide (CO2) is a naturally occurring gas and a byproduct of combustion. It's essential to monitor CO2 levels in environmental studies, indoor air quality assessments, and industrial processes to ensure safety and compliance with environmental standards. Carbon monoxide (CO) refers to a colorless, odorless gas that is produced by burning carbon-based fuels. It is dangerous to humans and animals in high concentrations. Monitoring CO is crucial in homes, workplaces, and industries to prevent poisoning and ensure air quality. Ethylene is a hydrocarbon gas used as a ripening agent for fruits and in the production of plastics. Monitoring ethylene concentrations is important in agricultural, food storage, and manufacturing settings to control ripening processes and ensure product quality. Hydrocarbons refers to a broad category of organic compounds consisting primarily of hydrogen and carbon. Monitoring hydrocarbons is vital in the petrochemical industry, environmental monitoring, and in controlling emissions from vehicles and industrial processes. Refrigerant gases are used in cooling systems, such as air conditioners and refrigerators. Given their potential to contribute to global warming and ozone depletion, monitoring refrigerant gases is crucial for environmental protection and regulatory compliance. Sulfur hexafluoride (SF6) is a potent greenhouse gas used in the electrical industry as an insulation material and in various medical applications. Its monitoring is essential due to its high global warming potential and the need to prevent leaks in electrical substations.
Application: Emerging adoption of NDIR technology in monitoring due to the need for accurate measurement of gas concentrations
In detection and analysis applications, NDIR is employed to identify and measure the concentration of certain gases within an environment. Analyzing the absorbed wavelengths of infrared light can precisely detect gases such as carbon dioxide (CO2), carbon monoxide (CO), methane (CH4), and several others. This capability is essential for ensuring workplace safety, adhering to environmental regulations, and optimizing industrial processes. NDIR technology is employed in breathalyzers used by law enforcement and for personal use. When a person breathes into the device, the sensor measures the amount of infrared light absorbed by alcohol molecules in their breath, providing an estimation of their blood alcohol content (BAC). In medical settings, NDIR sensors are utilized to measure the concentrations of various gases dissolved in blood, such as carbon dioxide and oxygen. This is crucial for assessing a patient's respiratory function and metabolic status in critical and emergency care. NDIR sensors can detect the infrared radiation emitted by flames, making them invaluable in fire detection systems. NDIR technology is widely used for detecting and measuring the concentration of hazardous gases, such as carbon monoxide, methane, and sulfur hexafluoride, in various industrial, environmental, and safety applications to prevent toxic exposure and mitigate risks. In the HVAC sector, NDIR technology plays a significant role in monitoring and controlling the air quality within buildings. By measuring the levels of CO2, NDIR sensors can help adjust the ventilation rates to ensure that indoor air quality is within comfortable and healthy thresholds. Monitoring applications of NDIR technology encompass a wide array of fields, including greenhouse gas monitoring, automotive emissions control, and indoor air quality assessment. NDIR sensors play a critical role in monitoring the concentrations of pollutants and greenhouse gases in the atmosphere. This helps assess environmental air quality, enforce pollution controls, and study climate change. In healthcare, NDIR sensors are used to monitor the concentrations of anesthesia gases during surgical procedures. This ensures that patients receive a safe and effective amount of anesthesia, contributing to better outcomes. Capnography is a specific application of NDIR technology in healthcare, where it is used to measure the concentration of carbon dioxide (CO2) in exhaled breath during medical procedures. For fruit ripening monitoring, NDIR sensors are used to monitor ethylene gas concentrations, which is a key indicator of fruit ripeness. With the increasing focus on environmental protection, NDIR sensors are used to detect leaks of refrigerant gases from air conditioning and refrigeration systems. This helps in preventing ozone depletion and greenhouse gas emissions, contributing to environmental sustainability.
Regional Insights
In the Americas region, particularly the United States and Canada, there is a strong emphasis on occupational health and safety standards, leading to a high demand for NDIR solutions in HVAC systems, industrial safety, and automotive emissions testing. Consumers value accuracy, reliability, and user-friendly interfaces. There is also a growing interest in smart home technologies integrating NDIR sensors for air quality and energy management. United States has been at the forefront of adopting strict environmental and safety regulations, which has spurred advancements in NDIR technology for compliance monitoring. American and Canadian companies are leading in the development of portable and networked NDIR devices for real-time monitoring applications. In the Asia Pacific region, rapid industrialization and urbanization, particularly in China, India, and Japan, have propelled the demand for NDIR sensors and technologies, primarily for environmental monitoring and industrial emissions. Consumers in this region are becoming increasingly aware of air quality issues, leading to a higher demand for products that can offer precise and reliable monitoring of gases. Cost-effectiveness and durability are significant factors influencing purchasing decisions. EU countries have a strong regulatory framework focused on environmental protection and occupational health, driving the need for NDIR technologies in regulatory compliance, automotive testing, and building automation systems. There's an increasing investment in smart cities and energy-efficient buildings, with NDIR sensors playing a crucial role in CO2 monitoring for air quality and energy savings. The EU's stringent regulatory environment continues to drive innovation in NDIR technologies. The Middle East, with its significant oil and gas industry, requires robust, explosion-proof NDIR solutions for gas detection and leak monitoring.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Non-dispersive Infrared 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 Non-dispersive Infrared 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 Non-dispersive Infrared Market, highlighting leading vendors and their innovative profiles. These include ABB Ltd., Alphasense Inc. by AMETEK, Inc., Amphenol Advanced Sensors, Cubic Sensor And Instrument Co., Ltd., E+E Elektronik GmbH, Edinburgh Instruments Ltd. by Techcomp Europe Ltd, ELTSensor Co., Ltd., Emerson Electric Co., ENVEA Group, Figaro Engineering Inc., Gas Sensing Solutions Ltd., Hanwei Electronics Group Corporation, Honeywell International Inc., HORIBA, Ltd., Mipex Technology, N.E.T. Srl, Process Sensing Technologies, Senseair AB, SENSIRION AG, Siemens AG, SmartGAS Mikrosensorik GmbH, Teledyne Technologies Incorporated, Texas Instruments Incorporated, Vaisala Oyj, and Zhengzhou Winsen Electronics Technology Co., Ltd..
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 Non-dispersive Infrared Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Non-dispersive Infrared Market?
3. What are the technology trends and regulatory frameworks in the Non-dispersive Infrared Market?
4. What is the market share of the leading vendors in the Non-dispersive Infrared Market?
5. Which modes and strategic moves are suitable for entering the Non-dispersive Infrared Market?