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市场调查报告书
商品编码
1662649
2030 年螺旋膜市场预测:按类型、材料、技术、应用、最终用户和地区进行的全球分析Spiral Membrane Market Forecasts to 2030 - Global Analysis By Type, Material, Technology, Application, End User and By Geography |
根据 Stratistics MRC 的数据,全球螺旋膜市场规模预计在 2024 年达到 92.3 亿美元,到 2030 年将达到 187.3 亿美元,复合年增长率为 12.5%。
螺旋膜是水处理过程中常用的过滤技术。它由螺旋缠绕的半透膜组成,可以有效地将污染物从液体中分离出来。这种设计增加了表面积,增强了逆渗透、超过滤和奈米过滤等应用的过滤过程。由于其高效和紧凑的设计,螺旋膜广泛应用于水质净化、食品和饮料、製药和污水处理等行业。
根据美国劳工统计局的数据,2020年食品支出下降了10.4%,其中外食支出下降了32.5%。
水处理需求不断成长
随着全球水资源短缺问题日益令人担忧,对高效水过滤解决方案的需求也日益增长。螺旋膜广泛应用于海水淡化、污水处理和净化过程,特别是在逆渗透(RO)系统中。随着薄膜材料的改进,其去除杂质的有效性使其成为提供安全、清洁水的完美方法。水处理产业采用螺旋膜技术是由于这种不断增长的需求,受到工业和市政需求的推动,特别是在供水有限的地区。
膜寿命有限
由于污垢、结垢和磨损,螺旋膜在过滤操作中的效率会随着时间的推移而降低。为了保持最佳性能,它们需要经常更换和清洗,从而增加了营运成本。在水处理量大且长膜寿命对于成本效益至关重要的产业中,克服这项限制尤其困难。即使膜材料有所改进,螺旋膜长期使用的主要障碍是需要频繁维护和最终更换。
海水淡化计划需求不断成长
随着淡水资源变得越来越有限,海水淡化已成为提供清洁饮用水的重要策略,尤其是在干旱地区。螺旋膜(特别是逆渗透(RO)系统中的螺旋膜)由于其能有效去除海水中的盐和杂质而处于海水淡化技术的前沿。人口成长、都市化和气候变迁的影响也正在推动这项需求,推动世界各地对大型海水淡化厂的投资,并大幅增加螺旋膜技术在水质净化的使用。
低收入地区采用有限
高昂的初始资本投资、安装和维护成本使得开发中国家难以负担这些先进的过滤系统,特别是在预算有限的地区。此外,螺旋膜系统的操作和维护需要专业的技术知识,这可能会进一步限制其采用。因此,基础设施和财政资源有限的地区可能必须依赖更便宜、效率更低的水处理技术,儘管螺旋膜在解决水资源短缺和污染方面具有潜在优势,但它仍无法广泛应用。
COVID-19 的影响
人们对卫生意识的不断增强以及对清洁水的需求导致对水处理解决方案的需求增加,这有利于螺旋膜市场,特别是在市政和医疗保健领域。疫情导致製造延迟、供应链中断以及膜系统安装困难,影响了市场成长。由于预算限制和公共和私营部门的经济不确定性,大型水处理计划的取消和延迟也减缓了疫情期间整体市场的扩张。
预计预测期内聚酰胺细分市场规模最大。
由于聚酰胺具有优异的耐化学性、高机械强度和高效的水过滤性能,预计在预测期内将占据最大的市场占有率。聚酰胺通常用于海水淡化和水质净化净化的逆渗透膜,在去除盐和污染物方面具有优异的性能。对永续水处理解决方案的需求不断增加,加上聚酰胺的耐用性和成本效益,使其成为首选材料。此外,聚酰胺膜技术的不断进步正在推动其在製药、食品加工和市政水处理等行业的进一步应用。
预计海水淡化领域在预测期内将实现最高的复合年增长率。
预计海水淡化领域在预测期内将呈现最高的成长率。随着淡水资源变得越来越稀缺,特别是在干旱地区,海水淡化已成为提供清洁饮用水的关键解决方案。螺旋膜,尤其是逆渗透系统中的螺旋膜,由于其去除盐和污染物的效率高,在海水淡化方面非常有效。全球人口成长、都市化和气候变迁议题正在推动对海水淡化计划的进一步投资,从而增加对螺旋膜等先进膜技术的需求。
预计预测期内亚太地区将占据最大的市场占有率。中国、印度和中东等国家正大力投资水处理技术,包括海水淡化和污水处理,以满足日益增长的清洁水需求。此外,该地区庞大的製造业基础和不断扩大的食品和饮料行业进一步推动了螺旋膜技术在过滤和分离过程中的应用,从而推动了该地区的市场成长。
由于对先进水处理技术的需求不断增加,尤其是海水淡化、市政水净化和工业应用,预计北美地区在预测期内将呈现最高的复合年增长率。严格的环境法规和对永续性的关注正在推动各行各业采用高效的过滤系统。对基础设施维修的投资,特别是老化水处理厂的投资,也推动了该地区市场的发展。此外,农业、食品饮料和製药领域对清洁水的需求不断增长,进一步推动了北美地区对螺旋膜技术的应用。
According to Stratistics MRC, the Global Spiral Membrane Market is accounted for $9.23 billion in 2024 and is expected to reach $18.73 billion by 2030 growing at a CAGR of 12.5% during the forecast period. A spiral membrane is a type of filtration technology commonly used in water treatment processes. It consists of a semi-permeable membrane wound in a spiral configuration, which allows for the efficient separation of contaminants from liquids. This design increases surface area, enhancing the filtration process for applications such as reverse osmosis, ultrafiltration, and nanofiltration. Spiral membranes are widely used in industries like water purification, food and beverage, pharmaceuticals, and wastewater treatment due to their high efficiency and compact design.
According to the U.S. Bureau of Labour Statistics, the spending on food showed a decrease of 10.4% in 2020, driven by a fall in the spending for food away from home with a 32.5% decline.
Rising demand for water treatment
The need for efficient water filtration solutions has increased as concerns about worldwide water scarcity grow. Spiral membranes are extensively employed in desalination, wastewater treatment, and purification procedures, especially in reverse osmosis (RO) systems. Together with improvements in membrane materials, their effectiveness in eliminating impurities makes them the perfect way to supply safe, clean water. Spiral membrane technology adoption in the water treatment industry is fuelled by this rising demand, which is fuelled by both industrial and municipal needs, especially in areas with limited water supplies.
Limited lifespan of membranes
The efficiency of spiral membranes in filtration operations is decreased as a result of fouling, scaling, and wear over time. Maintaining optimal performance necessitates frequent replacement or cleaning, which raises operating expenses. High water throughput industries or those where a longer membrane lifespan is essential for cost-effectiveness may find this restriction especially difficult to overcome. A major obstacle to spiral membranes' long-term use in several applications is their requirement for frequent maintenance and eventual replacement, even with improvements in membrane materials.
Growing demand in desalination projects
Seawater desalination has emerged as a key strategy for supplying clean drinking water as freshwater resources grow more limited, particularly in dry areas. Because of their exceptional effectiveness in eliminating salt and impurities from seawater, spiral membranes-especially those found in reverse osmosis (RO) systems-are at the forefront of desalination technology. Population increase, urbanization, and the effects of climate change are further factors driving this need, which in turn is propelling investments in massive desalination facilities across the globe and greatly increasing the use of spiral membrane technology for water purification.
Limited adoption in low-income regions
High initial capital investment, installation, and maintenance costs make it difficult for developing countries to implement these advanced filtration systems, especially in areas with constrained budgets. Additionally, the need for specialized technical expertise for operation and maintenance of spiral membrane systems can further limit adoption. As a result, regions with limited infrastructure and financial resources may rely on more affordable, less efficient water treatment technologies, hindering the widespread adoption of spiral membranes despite their potential benefits in addressing water scarcity and pollution.
Covid-19 Impact
Increased awareness of sanitation and the need for clean water led to a rise in the demand for water treatment solutions, which benefited the spiral membrane market, especially in the municipal and healthcare sectors. The pandemic impacted market growth by causing manufacturing delays, supply chain interruptions, and difficulties installing membrane systems. Large-scale water treatment project cancellations or delays were also caused by budgetary restraints and economic uncertainty in both the public and private sectors, which slowed the pandemic's total market expansion.
The polyamide segment is expected to be the largest during the forecast period
The polyamide segment is expected to account for the largest market share during the forecast period, due to its excellent chemical resistance, high mechanical strength, and efficiency in water filtration. It is commonly used in reverse osmosis membranes for desalination and water purification, offering superior performance in removing salts and contaminants. The growing demand for sustainable water treatment solutions, coupled with polyamide's durability and cost-effectiveness, makes it a preferred material. Additionally, continuous advancements in polyamide membrane technology further enhance its adoption across industries like pharmaceuticals, food processing, and municipal water treatment.
The desalination segment is expected to have the highest CAGR during the forecast period
Over the forecast period, the desalination segment is predicted to witness the highest growth rate. As freshwater resources become increasingly scarce, particularly in arid regions, seawater desalination has emerged as a vital solution for providing clean drinking water. Spiral membranes, especially in reverse osmosis systems, are highly effective in desalinating seawater due to their efficiency in removing salts and contaminants. The rising global population, urbanization, and climate change concerns further boost investments in desalination projects, driving the demand for advanced membrane technologies like spiral membranes.
During the forecast period, Asia Pacific region is expected to hold the largest market share. Countries like China, India, and the Middle East are investing heavily in water treatment technologies, including desalination and wastewater treatment, to address the growing demand for clean water. Additionally, the region's large manufacturing base and expanding food and beverage industries further fuel the adoption of spiral membrane technologies for filtration and separation processes, accelerating market growth in the region.
Over the forecast period, the North America region is anticipated to exhibit the highest CAGR, owing to increasing demand for advanced water treatment technologies, particularly in desalination, municipal water purification, and industrial applications. Stringent environmental regulations and a strong emphasis on sustainability push industries to adopt efficient filtration systems. The region's investment in infrastructure upgrades, particularly in aging water treatment plants, also boosts the market. Additionally, the growing demand for clean water in agriculture, food and beverage, and pharmaceutical sectors further propels the adoption of spiral membrane technology across North America.
Key players in the market
Some of the key players profiled in the Spiral Membrane Market include Dow Inc., Toray Industries, Inc., LG Chem Ltd., Pentair plc, SUEZ Water Technologies & Solutions, Pall Corporation, Mitsubishi Chemical Corporation, 3M Company, Veolia North America, Parker Hannifin Corporation, General Electric (GE) Water & Process Technologies, Koch Membrane Systems, Inc., Toyobo Co., Ltd., Filtration Group Corporation, Lanxess AG, and Sartorius AG.
In December 2024, Dowopens announced that it has entered into a definitive agreement to sell a 40% equity stake in select U.S. Gulf Coast infrastructure assets to a fund managed by Macquarie Asset Management, a leading global infrastructure and energy asset manager.
In November 2024, LG Chem and the extrusion machine manufacturer Reifenhauser have signed a Memorandum of Understanding (MOU), confirming further extensive cooperation. The aim is to further develop and market competitive Machine Direction Oriented (MDO)-PE blown films and flat films for recyclable packaging. The partners are building on a successful track record: In May 2024, the companies had presented the world's first MDO-PE film only 18 micrometers (µm).
Note: Tables for North America, Europe, APAC, South America, and Middle East & Africa Regions are also represented in the same manner as above.