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市场调查报告书
商品编码
1271360
溴化锂吸收式製冷机市场规模、市场份额、应用分析、区域展望、增长趋势、主要参与者、竞争战略、预测,2023-2031 年Lithium Bromide Absorption Refrigeration Market Size, Market Share, Application Analysis, Regional Outlook, Growth Trends, Key Players, Competitive Strategies and Forecasts, 2023 To 2031 |
溴化锂吸收式製冷机市场是一种以溴化锂为吸收剂、以水为製冷剂的热驱动製冷循环,是製冷行业的一个增长领域。 该技术通常用于商业和工业应用,例如电力昂贵或不易获得的地区的空调、製冷和过程冷却。 由于各行业对节能和可持续冷却解决方案的需求不断增加,溴化锂吸收式製冷机的市场收入正在稳步增长。 对减少温室气体排放的日益关注以及对环保製冷技术的需求正在推动溴化锂吸收式製冷机系统的采用。 新兴国家日益增长的製冷需求、对合成製冷剂使用的严格监管以及可再生能源的日益普及等因素预计将推动市场增长。
对节能和可持续冷却解决方案的需求是溴化锂吸收式製冷机市场的主要驱动力之一。 随着对环境可持续性的日益关注和减少温室气体排放的需要,工业和商业机构越来越需要环保和节能的製冷技术。 溴化锂吸收式製冷机系统以能够在废热和可再生能源等低级热源上运行而着称,这使其成为冷却应用的可持续选择。 根据国际能源署 (IEA) 发布的一份报告,由于城市化、气温上升和生活方式改变等因素,预计到 2050 年製冷需求将增加两倍。 随着製冷需求的增加,工业和建筑正在寻求采用更节能和可持续的製冷技术,例如溴化锂吸收式製冷机。
对使用氢氟烃 (HFC) 等合成製冷剂的严格监管正在推动替代製冷技术的采用,例如溴化锂吸收式製冷机。 HFCs 以其高全球变暖潜能值 (GWP) 而闻名,作为减少温室气体排放努力的一部分,许多国家正在逐步淘汰 HFCs。 因此,越来越需要不依赖合成製冷剂的可持续製冷解决方案。 于 2019 年生效的《蒙特利尔议定书》基加利修正案要求在全球范围内逐步淘汰 HFC。 许多国家也实施了法规,例如欧盟的 F-Gas 法规,该法规限制了 HFCs 在製冷和空调系统中的使用。 这些法规正在推动替代冷水机技术的采用,包括溴化锂吸收式冷水机,作为一种更可持续和更环保的选择。
越来越多地采用太阳能热和废热等可再生能源也是溴化锂吸收式製冷机市场的驱动因素之一。 溴化锂吸收式製冷机系统与可再生能源系统兼容,因为它们可以使用低等级热源运行。 使用可再生能源不仅可以减少我们对化石燃料的依赖,还可以为製冷系统提供可持续且具有成本效益的解决方案。 根据国际能源署 (IEA) 发布的“可再生能源 2020”报告,儘管 COVID-19 大流行,可再生能源仍将是 2020 年唯一增长的能源。 各行业、建筑和家庭越来越多地采用可再生能源,这为溴化锂吸收式製冷机系统的部署创造了有利的环境,这些製冷机可以利用这些可再生能源来驱动冷却过程。它正在准备中。
溴化锂吸收式製冷机市场的主要製约因素之一是与这些系统相关的高初始安装和维护成本。 与传统的蒸汽压缩製冷系统相比,溴化锂吸收式製冷机系统的初始成本往往较高,因为吸收过程需要復杂的设计和专用组件。 此外,这些系统可能需要定期维护和保养,进一步增加了总体拥有成本。 吸收过程所需的吸收器、发生器和热交换器等特殊部件的製造和安装成本可能很高。 此外,需要定期维护,例如除垢和清洁溴化锂溶液,增加了这些系统的持续运营成本,并且与传统製冷技术相比,它们可能相对昂贵。我有。 与溴化锂吸收式製冷机系统相关的高初始安装和维护成本可能是采用的重大障碍,尤其是在中小型企业和对价格敏感的市场中。 然而,技术进步、规模经济和政府采用节能解决方案的激励措施将有助于缓解这一限制,并鼓励未来广泛采用溴化锂吸收式製冷系统。
溴化锂吸收式製冷机系统根据使用的工质不同大致分为溴化锂水和溴化锂氨两种。 其中,溴化锂吸水式製冷机无论是在收入方面还是在 2023-2031 年预测期内的最高复合年增长率预测方面都已成为市场上最主要的产品类型。 溴化锂-水吸收式製冷机又称单效吸收式製冷机,以水为製冷剂,溴化锂为吸收剂。 这些冷水机广泛用于各种商业和工业应用,包括大型建筑物的空调、製造设施的过程冷却以及数据中心和医院的製冷。 由于它们的高效率和使用低热源运行的能力,它们被认为适用于可持续的冷却解决方案。 溴化锂吸收式製冷机市场以溴化锂水段为主,2022年营收占比最高。 溴化锂吸水式冷水机以其效率高、兼容低品位热源、适用范围广等优点占据市场主导地位。 此外,溴化氢水吸收式製冷机已被许多工业和商业设施采用,并拥有长期的安装记录。
北美是溴化锂吸收式製冷机系统的重要市场,销售额占比很大。 该地区拥有成熟的吸收式製冷机市场,在商业建筑、数据中心和其他工业应用中的采用率很高。 在北美,可持续性意识的提高、严格的环境法规以及采用绿色技术的激励措施等因素正在增加对节能环保冷却解决方案的需求。 亚太地区是溴化锂吸收式製冷机系统的重要市场,预计在 2023 年至 2031 年的预测期内收入可观且复合年增长率很高。 该地区的快速工业化、城市化以及对节能和环境可持续性意识的增强正在推动对高效和可持续冷却解决方案的需求。 在包括中国和印度等新兴国家在内的亚太地区,由于人口增长、可支配收入增加以及工商业扩张等因素,对製冷解决方案的需求正在迅速增加。 这些因素推动了该地区对空调、过程冷却和製冷的需求,推动了溴化锂吸收式製冷机市场的增长。
溴化锂吸收式製冷机市场竞争激烈,几家主要参与者都在努力获得竞争优势。 这些参与者正在做出各种战略努力,以增加他们的市场份额并保持在行业中的竞争力。 公司正在投资研发,以推出更节能、更环保且用途更广的创新和先进的溴化锂吸收式製冷机系统。 例如,参与者正专注于开发具有更高性能係数 (COP) 的吸收式製冷机、改进的热交换器和增强的控制以优化系统性能。 总之,溴化锂吸收式製冷机市场竞争激烈,主要参与者正在采取产品创新、市场扩张、定制、可持续性和营销活动等战略来获得竞争优势。 这些战略将使我们能够提供先进高效的解决方案,扩大我们的客户群并提高我们在全球市场上的品牌声誉。
The lithium bromide absorption refrigeration market is a growing segment of the refrigeration industry that utilizes lithium bromide as the absorbent and water as the refrigerant in a thermally driven refrigeration cycle. This technology is commonly used in commercial and industrial applications for air conditioning, refrigeration, and process cooling in areas where electricity is expensive or not readily available. The market revenue for lithium bromide absorption refrigeration has been steadily increasing due to the rising demand for energy-efficient and sustainable cooling solutions in various industries. The increasing focus on reducing greenhouse gas emissions and the need for environmentally friendly refrigeration technologies have driven the adoption of lithium bromide absorption refrigeration systems. Factors such as the increasing demand for cooling in emerging economies, stringent regulations on the use of synthetic refrigerants, and the growing adoption of renewable energy sources are expected to drive the market's growth.
The demand for energy-efficient and sustainable cooling solutions is one of the key drivers of the lithium bromide absorption refrigeration market. With growing concerns about environmental sustainability and the need to reduce greenhouse gas emissions, industries, and commercial buildings are increasingly looking for refrigeration technologies that are eco-friendly and energy-efficient. Lithium bromide absorption refrigeration systems are known for their ability to operate on low-grade heat sources, such as waste heat or renewable energy, making them a sustainable choice for cooling applications. According to a report published by the International Energy Agency (IEA), the demand for cooling is expected to triple by 2050, driven by factors such as urbanization, rising temperatures, and changing lifestyles. This increasing demand for cooling is pushing industries and buildings to adopt more energy-efficient and sustainable refrigeration technologies, including lithium bromide absorption refrigeration.
Stringent regulations on the use of synthetic refrigerants, such as hydrofluorocarbons (HFCs), are driving the adoption of alternative refrigeration technologies, including lithium bromide absorption refrigeration. HFCs are known for their high global warming potential (GWP) and are being phased out in many countries as part of efforts to reduce greenhouse gas emissions. This has led to a growing need for sustainable refrigeration solutions that do not rely on synthetic refrigerants. The Kigali Amendment to the Montreal Protocol, which came into effect in 2019, mandates the phase-down of HFCs globally. Many countries have also implemented regulations, such as the European Union's F-Gas Regulation, which sets limits on the use of HFCs in refrigeration and air conditioning systems. These regulations are driving the adoption of alternative refrigeration technologies, including lithium bromide absorption refrigeration, as a more sustainable and environmentally friendly option.
The growing adoption of renewable energy sources, such as solar and waste heat, is another driver of the lithium bromide absorption refrigeration market. Lithium bromide absorption refrigeration systems can operate using low-grade heat sources, making them compatible with renewable energy systems. The use of renewable energy sources not only reduces the reliance on fossil fuels but also provides a sustainable and cost-effective solution for powering refrigeration systems. According to the Renewables 2020 report published by the International Energy Agency (IEA), renewable energy is set to be the only source of energy that will experience growth in 2020 despite the COVID-19 pandemic. The increasing adoption of renewable energy sources in various industries, buildings, and households are creating a favorable environment for the deployment of lithium bromide absorption refrigeration systems, which can utilize these renewable energy sources to drive the cooling process.
One of the key restraints for the lithium bromide absorption refrigeration market is the initial high installation and maintenance costs associated with these systems. Compared to conventional vapor compression refrigeration systems, lithium bromide absorption refrigeration systems tend to have higher upfront costs due to the complex design and specialized components required for the absorption process. Additionally, these systems may require regular maintenance and servicing, which can further add to the overall cost of ownership. The specialized components, such as absorbers, generators, and heat exchangers, required for the absorption process can be expensive to manufacture and install. Moreover, the need for regular maintenance, such as descaling and cleaning of the lithium bromide solution, can add to the ongoing operating costs of these systems, making them relatively more expensive compared to traditional refrigeration technologies. The initial high installation and maintenance costs associated with lithium bromide absorption refrigeration systems can be a significant barrier to adoption, especially for small and medium-sized enterprises (SMEs) or price-sensitive markets. However, advancements in technology, economies of scale, and government incentives for adopting energy-efficient solutions may help to mitigate this restraint and drive wider adoption of lithium bromide absorption refrigeration systems in the future.
Lithium bromide absorption refrigeration systems are primarily categorized into two types based on the working fluid used: lithium bromide water and lithium bromide ammonia. Among these, lithium bromide-water absorption chillers are the most dominant product type in the market in terms of both revenue and projected highest CAGR during the forecast period of 2023 to 2031. Lithium bromide-water absorption chillers, also known as single-effect absorption chillers, use water as the refrigerant and lithium bromide as the absorbent. These chillers are widely used in various commercial and industrial applications, such as air conditioning in large buildings, process cooling in manufacturing facilities, and refrigeration in data centers and hospitals. They are known for their high efficiency and ability to operate using low-grade heat sources, making them suitable for sustainable cooling solutions. The lithium bromide absorption refrigeration market is dominated by the lithium bromide-water segment, accounting for the highest revenue share in 2022. The dominance of lithium bromide-water absorption chillers in the market can be attributed to their advantages, such as high efficiency, compatibility with low-grade heat sources, and suitability for a wide range of applications. These chillers are well-established in the market and have a long history of successful implementation, making them a preferred choice for many industries and commercial buildings.
North America is a prominent market for lithium bromide absorption refrigeration systems, accounting for a significant revenue percentage. The region has a mature and well-established market for absorption chillers, with a high adoption rate in commercial buildings, data centers, and other industrial applications. The demand for energy-efficient and environmentally friendly cooling solutions in North America has been driven by factors such as increasing awareness about sustainability, stringent environmental regulations, and incentives for adopting green technologies. The Asia Pacific region is a prominent market for lithium bromide absorption refrigeration systems, with significant revenue generation and projected high CAGR during the forecast period of 2023 to 2031. The region has witnessed a growing demand for efficient and sustainable cooling solutions due to rapid industrialization, urbanization, and increasing awareness about energy conservation and environmental sustainability. Asia Pacific, with its emerging economies such as China and India, has been experiencing a surge in demand for cooling solutions driven by factors such as rising population, increasing disposable incomes, and expanding commercial and industrial sectors. These factors have led to a higher demand for air conditioning, process cooling, and refrigeration in the region, thereby fueling the growth of the lithium bromide absorption refrigeration market.
The lithium bromide absorption refrigeration market is highly competitive, with the presence of several key players striving to gain a competitive edge. These players are engaged in various strategic initiatives to expand their market share and maintain their competitive position in the industry. Some of the leading players in the global lithium bromide absorption refrigeration market include Thermax Limited, Johnson Controls International PLC, EAW Energieanlagenbau GmbH, Shuangliang Eco-Energy Systems Co. Ltd., Robur Group, Yazaki Energy Systems Inc., Broad Air Conditioning Co. Ltd., Hitachi Appliances Inc., Shuangliang Boiler Co. Ltd., and Century Corporation. These players have a strong global presence and offer a wide range of lithium bromide absorption refrigeration systems catering to different applications and end-use industries. Companies are investing in research and development to introduce innovative and advanced lithium bromide absorption refrigeration systems that are more energy-efficient, environmentally friendly, and suitable for a wide range of applications. For instance, players are focusing on developing absorption chillers with a higher coefficient of performance (COP), improved heat exchangers, and enhanced controls to optimize the performance of the system. In conclusion, the lithium bromide absorption refrigeration market is highly competitive, with key players adopting strategies such as product innovation, market expansion, customization, sustainability, and marketing efforts to gain a competitive edge. These strategies enable them to offer advanced and efficient solutions, expand their customer base, and enhance their brand reputation in the global market.
This study report represents analysis of each segment from 2021 to 2031 considering 2022 as the base year. Compounded Annual Growth Rate (CAGR) for each of the respective segments estimated for the forecast period of 2022 to 2031.
The current report comprises of quantitative market estimations for each micro market for every geographical region and qualitative market analysis such as micro and macro environment analysis, market trends, competitive intelligence, segment analysis, porters five force model, top winning strategies, top investment markets, emerging trends and technological analysis, case studies, strategic conclusions and recommendations and other key market insights.
The complete research study was conducted in three phases, namely: secondary research, primary research, and expert panel review. key data point that enables the estimation of Lithium Bromide Absorption Refrigeration market are as follows:
Micro and macro environment factors that are currently influencing the Lithium Bromide Absorption Refrigeration market and their expected impact during the forecast period.
Market forecast was performed through proprietary software that analyzes various qualitative and quantitative factors. Growth rate and CAGR were estimated through intensive secondary and primary research. Data triangulation across various data points provides accuracy across various analyzed market segments in the report. Application of both top down and bottom-up approach for validation of market estimation assures logical, methodical and mathematical consistency of the quantitative data.