市场调查报告书
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1383461
到 2030 年全球超导性製冷机市场预测:按类型、应用和地区分類的全球分析Cryocooler for Superconductor Market Forecasts to 2030 - Global Analysis By Type, Application and by Geography |
根据 Stratistics MRC 的数据,全球超导性冷冻机市场在预测期内将以 8.7% 的年复合成长率成长。
超导材料通常使用称为低温冷却器的关键冷却装置保持在极低的温度下,低于它们表现出零电阻的温度。此外,这些微型设备使用各种技术(包括斯特林设备和吉福德-麦克马洪循环)有效地去除热量并冷却超导性。这使得核磁共振造影系统、粒子加速器和量子运算等设备中的超导性能够以稳定的能源效率运作。
根据 Proof Point 报告,内部威胁的平均成本为 1,538 万美元,年度影响 34% 的企业。恶意相关人员通常具有优势,因为他们熟悉组织的系统和流程,这使他们更容易绕过安全措施而不被发现。
透过持续的研究和开发工作,超导材料正在寻找新的实际应用,包括发现新的高温超导体。科学研究、能源储存、发电和运输都使用这些材料。此外,这些应用的有效功能是透过低温冷却器实现的,这对于将超导体保持在临界温度至关重要。
采购、安装和维护製冷机,尤其是用于超导应用的製冷机,可能涉及大量的初期成本。这可能会让一些潜在用户望而却步,尤其是那些预算紧张的用户。此外,低温冷却系统的采用可能会受到此类初期成本的限制。
与量子计算和量子通讯相关的技术不仅在不断发展,而且也变得更容易被企业和学术机构所利用。这些量子技术的核心—超导性量子位元,具有很高的冷却需求。这种扩张使製冷机製造商有机会满足这些需求。此外,随着量子应用从实验阶段发展到商业化阶段,低温冷却器阶段需要长时间保持超低温,从而带来重大的长期市场机会。
许多替代冷却技术,包括机械冷冻和热电冷却,正在不断开发以与低温冷却器竞争。此外,这些替代技术可能提供更实惠或更节能的解决方案,特别是在某些应用中,因此需要持续创新和差异化,对冷冻机造成竞争威胁。
COVID-19大流行对超导应用冷冻机市场产生了各种影响。供应链暂时中断,计划被推迟,一些公司经历了财务不确定性,但低温冷却器在医疗保健等关键行业(低温研究和核磁共振造影系统需要低温冷却器)的重要性也凸显出来。这场大流行加速了远端维护和监控系统的采用,使低温冷却器能够在封锁期间继续运作。此外,由于超导性材料的研发仍在继续,这表明未来市场成长的潜力。
吉福德-麦克马洪製冷机领域通常占据最大的市场占有率。超导性材料通常使用吉福德-麦克马洪製冷机进行冷却,特别是在核磁共振造影系统和科学研究等应用中。这些低温冷却器以其可靠性、有效性和在超导性零件低温维护中的广泛应用而闻名。此外,它还采用闭环冷冻循环运作。它们的成本效益和高性能使其成为许多行业的热门选择,从而占据了主导市场占有率。
在冷冻机市场,量子计算预计将以超导性应用中最高的年复合成长率成长。超导性量子位元需要极低的温度才能发挥作用,对于量子计算至关重要。随着量子计算迅速从研究转向现实应用,对低温冷却器保持极低温度的需求可能会显着增加。此外,市场对尖端低温冷却解决方案的需求正在推动量子技术的可及性和商业性可行性的提高,该领域具有巨大的成长潜力。
包括美国和加拿大在内的北美地区预计将占据全球超导性应用冷冻机市场的最大份额。其主要原因是对核磁共振造影系统和其他医学成像技术的大量投资,以及该地区在量子计算研究和开发方面的领先地位。此外,北美的航太和国防工业率先在各种应用中使用低温冷却器,进一步巩固了其在市场上的主导地位。
据预测,全球超导性冷冻机市场年复合成长率最高的是亚太地区。这是由于该地区不断增加的研发支出、快速的技术进步以及超导材料在电子、能源和医疗保健等各个领域的广泛使用。此外,随着亚太地区在太空探索、量子计算和医学影像处理等领域的不断增加,对将超导零件维持在极低温下的製冷机的需求预计将激增。预计这将推动市场高速成长。
According to Stratistics MRC, the Global Cryocooler for Superconductor Market is growing at a CAGR of 8.7% during the forecast period. Superconducting materials are typically kept at extremely low temperatures, below the temperature at which they exhibit zero electrical resistance, using vital cooling devices called cryocooler. Moreover, these tiny devices efficiently remove heat and cool superconductors using a range of techniques, such as Stirling devices and Gifford-McMahon cycles. This enables the superconductors in devices such as MRI machines, particle accelerators, and quantum computing to function steadily and energy-efficiently.
According to a report by Proof point, insider threats accounted for $15.38 million in average costs, affecting 34% of businesses annually. Malicious insiders often have an advantage as they are familiar with the organization's systems and processes, making it easier for them to navigate through security measures undetected.
Superconducting materials are finding new practical applications due to ongoing research and development efforts, which include the discovery of new high-temperature superconductors. Scientific research, energy storage, power generation, and transportation all use these materials. Additionally, the effective functioning of these applications is made possible by cryocooler, which are essential for keeping superconductors at their critical low temperatures.
Significant upfront costs may be incurred for the purchase, installation, and upkeep of cryocoolers, particularly those utilized in superconducting applications. For some prospective users, especially in sectors with tight budgets, this may be a turnoff. Moreover, the adoption of cryogenic cooling systems may be constrained by the initial cost involved.
Technologies related to quantum computing and communication are not only developing but also getting easier for companies and academic institutions to use. As the core of these quantum technologies, superconducting qubits have higher cooling requirements. This expansion gives cryocooler manufacturers the chance to meet those demands. Furthermore, cryocooler will be needed to maintain ultra-low temperatures for extended periods of time as quantum applications advance from the experimental stage into commercial viability, resulting in a large and long-lasting market opportunity.
Numerous alternative cooling technologies, including mechanical refrigeration and thermoelectric cooling, are constantly developing and competing with cryocoolers. Moreover, a competitive threat to cryocoolers arises from the possibility that these alternatives, especially in certain applications, will offer more affordable or energy-efficient solutions, so continuous innovation and differentiation will be required.
The COVID-19 pandemic affected the cryocooler market in superconducting applications in a variety of ways. Supply chains were momentarily disrupted, projects were delayed, and some businesses experienced financial uncertainty, but it also highlighted the significance of cryocoolers in vital industries like healthcare, where they are necessary for cryogenic research and MRI machines. The pandemic hastened the adoption of remote maintenance and monitoring systems, allowing cryocoolers to continue operating during lockdowns. Additionally, during the pandemic, research and development efforts into superconducting materials continued due to potential applications in quantum computing and medicine, indicating potential growth for the market in the future.
The Gifford-McMahon Cryocoolers segment typically holds the largest market share. Superconducting materials are frequently cooled using Gifford-McMahon cryocoolers, particularly in applications like MRI machines and scientific research. These cryocoolers are renowned for their dependability, effectiveness, and wide range of applications in preserving cryogenic temperatures for superconducting components. Furthermore, they run on a closed-loop refrigeration cycle. They are a popular option in many industries due to their cost-effectiveness and performance, which helps explain their dominant market share.
In the cryocooler market, quantum computing is anticipated to grow at the highest CAGR for superconducting applications. Superconducting qubits, which need extremely low temperatures to function, are crucial to quantum computing. With quantum computing moving quickly from research to real-world applications, there will be a significant increase in the need for cryocoolers to maintain these very low temperatures. Furthermore, the demand for cutting-edge cryogenic cooling solutions on the market is driving quantum technologies' increasing accessibility and commercial viability, which presents this segment with significant growth potential.
In the global cryocooler market for superconducting applications, North America, which includes the United States and Canada, is projected to hold the largest share. This is mostly because of large investments in MRI machines and other medical imaging technologies, as well as the region's leadership in quantum computing research and development. Furthermore, supporting its leading position in the market is the fact that North America's aerospace and defense industries have spearheaded the use of cryocoolers for a variety of applications.
According to projections, the global cryocooler market for superconducting applications will grow at the highest CAGR in the Asia-Pacific region. This is explained by the region's growing R&D spending, quick technological progress, and expanding use of superconducting materials in a range of sectors, such as electronics, energy, and healthcare. Moreover, the demand for cryocoolers to maintain cryogenic temperatures for superconducting components is expected to surge as Asia-Pacific continues to expand its presence in space exploration, quantum computing, and medical imaging. This is expected to propel the market at a high growth rate.
Some of the key players in Cryocooler for Superconductor market include: CSIC Pride, Fuji Electric, Lihan Thermoacoustics, Advanced Research Systems, Lake Shore Cryotronics, Cryomech, Sumitomo Heavy Industries, Sunpower (AMETEK), AIM Infrarot-Module GmbH, ULVAC Cryogenics and Thales cryogenics.
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In May 2023, Westerville manufacturing company Lake Shore Cryotronics is investing nearly $14 million to expand its facility in Ohio. Lake Shore manufacturer sensors, scientific instruments and systems for cryogenic and magnetic applications. We are the world leader in providing cryogenic temperature sensors, Lake Shore Cryotronics President and CEO Michael Swartz said. A lot of the research for new materials for semiconductors is done at a very low temperature.
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