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市场调查报告书
商品编码
1324354
2030 年 PMI(材料识别)市场预测:按型态、产品、技术、最终用户和地区进行的全球分析Positive Material Identification Market Forecasts to 2030 - Global Analysis By Form (Portable Analyzers and Benchtop Analyzers), Offering (Equipment and Services), Technique, End User and By Geography |
据Stratistics MRC预测,2023年全球PMI(材料识别)市场规模将达28.9亿美元,预计2030年将达到55.6亿美元,预测期内年复合成长率为9.7%。
材料可靠识别是使用各种无损程序评估和识别材料的过程,以确保预期材料是实际材料。它还可以确定物质的金属合金成分。 PMI 也是一种在实验室或使用便携式设备的现场使用的试验错程序。 PMI 可用于确保供应的材料符合适当的标准和要求。为了质量和安全控制,PMI 分析并确定材料等级和合金成分。
加压系统破裂、应力腐蚀开裂和流动促进腐蚀等机械完整性故障是工业事故的常见原因。进行材料鑑定以避免生产过程中产品出现缺陷。它们受到广泛追捧,以防止石油、天然气、发电和製药厂等最终用户行业发生故障。用于在使用前和使用过程中检查关键零件和焊缝。材料可靠性鑑定是一种常见的无损检测程序,必须遵守各种法规和法律。全球大型基础设施项目数量的不断增加以及PMI测试和检验服务外包给第三方服务的趋势正在促进市场扩张。
硫、磷和碳无法使用 PMI(材料识别)程序进行分离。非金属很难用PMI来识别,存在于金属和非金属之间的元素也很难分析。 PMI很难正确检测非金属以及金属与非金属之间存在的元素。这阻碍了市场的扩张。
有关材料混淆、错误标籤运输和越来越多的大型基础设施项目的法规预计将为该行业提供有利的预测,并进一步加快未来 PMI(材料识别)市场的增长速度。此外,新型品管体系意识的增强、老化资产效率的下降以及相关的运营安全需求将为市场开拓提供广阔的前景。
为了质量和安全控制,PMI(材料识别)用于分析和识别材料等级和合金成分。 PMI(材料识别)必须非常小心地进行。建立和运营 PMI(材料识别)活动需要专家。预计这方面将在预测期内对 PMI(材料识别)市场构成挑战。
COVID-19 的爆发正在造成严重的经济和社会混乱。此次疫情影响了许多企业的供应炼和价值链。 PMI(材料识别)市场也不例外。从整个行业的角度评估 COVID-19 大流行的影响,包括需求方和供应方。疫情发生后,市场开始扩大。
便携式分析仪领域预计将出现良好的增长。便携式分析仪因其低成本和小尺寸而广受欢迎。便携式分析仪可以检查任何形状的任何零件,包括板材、管道、法兰、焊缝、阀门和其他系统零件。这些分析仪的一些用途包括黄金测试、矿石品位控制、矿物探勘、扭曲分析、金属回收和地球化学测绘。
预计石油、天然气行业在预测期内将出现最快的年复合成长率。在石油、天然气作业中,避免极其危险的化学品和有毒物质的排放非常重要。此外,不可逆转的事故和损坏、管道洩漏、过早更换管道、财产损失、现场意外停电(精製、化工厂、天然气处理设施等)等都是这些设施面临的事件类型。的主要困难。 PMI 分析仪有助于检验这些零件和管道所需的规格。因此,石油、天然气行业的需求预计将增加。
预计亚太地区在预测期内将占据最大的市场份额。预计亚太地区在预测期内将保持最大的市场份额。亚太地区国家积极製造国防飞机,PMI 技术在航太和国防工业中的使用预计将扩大。该地区的新兴经济体正在迅速扩张电子、汽车和医疗保健等最终用户行业。该地区许多基础设施开发项目正在建设中,推动了市场增长。
预计北美在预测期内的年复合成长率最高。该地区大型基础设施项目正在迅速增加。该地区的汽车需求预计将急剧增加,从而需要增加汽车产量。公司必须以最佳方式运作以满足这一需求,而 PMI 程序的应用可以帮助实现这一目标。这一要素正在推动该地区的市场。
According to Stratistics MRC, the Global Positive Material Identification Market is accounted for $2.89 billion in 2023 and is expected to reach $5.56 billion by 2030 growing at a CAGR of 9.7% during the forecast period. Positive Material Identification (PMI) is the process of evaluating and identifying materials using a range of non-destructive procedures to confirm that the intended materials are the actual materials. It may determine the metallic alloy composition of a substance. It is also a tried-and-true procedure that may be utilized in a lab or out in the field using portable instruments. PMI can be used to ensure that supplied materials meet the appropriate standards and requirements. For quality and safety control, it analyzes and identifies material grade and alloy composition.
Mechanical integrity failures, such as pressurized system rupture, stress corrosion cracking, and flow accelerated corrosion, are common causes of industrial accidents. Positive material identification is used to avoid product failure during production. It is extensively sought in end-user industries such as oil and gas, power generation, and pharmaceutical factories to prevent failure. It is used to examine important components and welds before and during service. Positive Material Identification is a common non-destructive testing procedure that must follow a variety of rules and laws. A increasing number of large-scale infrastructure projects worldwide, as well as a propensity to outsource PMI testing and inspection services to third-party services, have all contributed to market expansion.
Sulfur, phosphorus, and carbon cannot be separated using positive material identification procedures. Non-metals are difficult to identify using PMI, and elements that exist between metals and nonmetals are difficult to analyze. PMI has a tough time properly detecting nonmetals and elements between metals and nonmetals. This factor is impeding market expansion.
The restrictions concerning material mix-ups, mislabeled shipments, and the rising number of large-scale infrastructure projects are expected to provide profitable prospects for the industry, which will further accelerate the growth rate of the positive material identification market in the future. Furthermore, the rising awareness of novel quality control systems, along with the diminishing efficiency of aged assets and the resulting requirement for operational safety, will provide significant market development prospects.
For quality and safety control, positive material identification (PMI) is used to analyze and identify material grade and alloy composition. Positive material identification must be done with extreme caution. Installation and operation of positive material identification (PMI) activities require specialized professionals. Over the forecast period, this aspect is expected to represent a challenge to the positive material identification market.
The COVID-19 outbreak has caused enormous economic and social turmoil. The epidemic has had an impact on many firms' supply chains and value chains. The market for positive material identification (pmi) is no exception. The impact of the COVID-19 pandemic will be assessed from the standpoint of the whole industry, encompassing both the demand and supply sides. The market began to expand following the outbreak.
The portable analyzers segment is estimated to have a lucrative growth. The low cost and small size of portable analyzers have contributed to their widespread use. Portable analyzers may examine any portion of any shape, including plates, pipes, flanges, welds, and valves, as well as other system components. Gold testing, ore grade control, mineral exploration, soli analysis, metal recovery, and geochemical mapping are some of the uses for these analyzers.
The oil & gas segment is anticipated to witness the fastest CAGR growth during the forecast period. The avoidance of the discharge of extremely dangerous chemicals and poisonous substances is critical in the oil and gas business. Furthermore, irreversible accidents and damages, pipe leaks, early pipe replacements, property damage, and unanticipated outages at sites (such as refineries, chemical plants, and gas processing facilities) are some of the key difficulties that these facilities confront. PMI analyzers aid in the verification of these components' and piping's required specifications. As a result, the demand for these analyzers in the oil and gas sector is expected to rise.
Asia Pacific is projected to hold the largest market share during the forecast period. During the projection period, Asia Pacific is expected to retain the biggest market share. APAC countries are active in the manufacture of defense aircraft, which is predicted to expand the use of PMI methodologies in the aerospace and defense industry. In the region's emerging economies, end-user industries such as electronics, automobiles, and healthcare are rapidly expanding. Many infrastructure development projects are under construction in this region, which is propelling market growth.
North America is projected to have the highest CAGR over the forecast period. The number of large-scale infrastructure projects in this region is rapidly increasing. The demand for autos in this region is expected to rise dramatically, necessitating an increase in vehicle production. Companies must function optimally to meet this requirement, and the application of PMI procedures can assist them do so. This factor is driving the market in this region.
Some of the key players profiled in the Positive Material Identification Market include: Olympus, Thermo Fisher, Bruker, Hitachi, Ametek, Shimadzu, Panalytical, Intertek, Bureau Veritas, TUV Rheinland, Applus, Element Materials Technology, Tribogeincs, QSX Instruments and Torontech.
In July 2022, Thermo Fisher Scientific has launched a new handheld X-ray fluorescence analyser called IonicX XRF Analyzer to help pharmaceutical and biopharmaceutical manufacturers to verify the identity of ionic salts in warehouses within seconds.
In November 2020, Hitachi launched PMI-MASTER Smart portable optical emission spectrometer. It delivers rapid material verification and metal sorting. PMI-MASTER is capable of measuring the carbon content across different steel grades and the nitrogen content of duplex steels, the PMI-MASTER Smart's fast start-up times supports PMI safety inspection and flow accelerated corrosion analysis (FAC) across your facility.