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市场调查报告书
商品编码
1358993
到 2030 年 10 种主要塑胶的市场预测:按产品、用途、最终用户和地区进行的全球分析Top 10 Plastics Market Forecasts to 2030 - Global Analysis By Product, Application, End User and By Geography |
根据Stratistics MRC预测,2023年全球十大塑胶市场规模将达5,134亿美元,预计2030年将达到9,147亿美元,预测期内年复合成长率为8.6%。
塑胶是人造或部分人造物质,可以形成固态物体。其生产使用自然资源:纤维素、煤炭、天然气、盐、原油。被称为聚合物的长链分子是透过化学处理基本成分而产生的。聚合物弹性、坚固且易于成型。它还重量轻、耐腐蚀,并且能够抵抗常见的家庭污染物。其独特的特性使其成为许多行业中金属的可行替代。
据 PlastIndia 基金会称,印度仅热塑性塑胶的产能就达到 15,788 KTA。同样,工程塑胶、聚烯烃、聚苯乙烯和聚氨酯也是印度的主要市场。
工程聚合物比标准聚合物更坚固、更耐用,从而增加了对其产品的需求。它具有优异的热性能和机械性能,重量轻且价格便宜。此外,由于金属替代的需求不断增加,工程聚合物被广泛应用于各个产业。由于建筑、机械和零件等各种最终用途领域对更先进聚合物解决方案的需求不断增加,市场正在不断扩大。
法规产品使用的法规可能会减缓市场扩张。随着人们越来越担心聚合物对环境造成的危害,政府已经实施了严格的法律和其他措施。许多政府和公司正在尝试采用环保的塑胶替代,以减少其使用造成的环境破坏。从塑胶转向永续产品正在限制全球市场的扩张。
许多行业对塑胶的需求都在增加,包括食品和饮料和饮料、消费品、汽车以及电气和电子产品。全球产品消费背后的驱动力是食品和饮料产业对包装不断增长的需求。食品製造商更喜欢能够减少食品品质劣化并防止污染的包装。这种需求是由塑胶作为食品和外部环境之间的屏障的能力所驱动的。
大多数塑胶不可生物分解性,不会在环境中自然分解。塑胶可以持续数百年,污染生态系统、海洋和垃圾掩埋场。吃塑胶碎片的海洋和陆地动物面临伤害甚至死亡的风险。塑胶碎片吞噬动物,塑胶污染破坏生态系统。这是限制市场拓展的因素。
疫情发生后,汽车业、建筑业对塑胶的需求大幅下降。这种下降不仅与全球停工限制有关,还与某些领域的工业活动下降有关。同时,对医用口罩、护目镜、防护罩、手套、呼吸器、防护服和工作服等个人防护设备的需求可能会推动市场。
预计聚乙烯领域将是预测期内最大的产业。聚乙烯主要用于包装行业,由土工膜、塑胶袋、塑胶薄膜、容器和瓶子结构。它被用于许多用途。低分子量聚乙烯聚合物用于润滑油,中分子量聚乙烯聚合物用于製造可与石蜡混溶的蜡,而高分子量聚乙烯聚合物则经常用于塑胶领域。
预计包装领域在预测期内复合年复合成长率最高。包装是一个渗透率中等的最终用途市场,具有相当大的潜力。包装领域严重依赖塑胶。此外,生物基塑胶的引入对食品、药品以及食品和饮料包装产生了重大影响。塑胶包装越来越多地用于饮料、消费品、电器产品产品、玩具和服饰。
由于电气和电子、医疗保健和製药以及包装行业对产品的需求不断增加,预计北美在预测期内将占据最大的市场占有率。聚合物的使用还具有优异的耐热性、缓蚀性、电绝缘性和低密度等特性。由于对塑胶污染的担忧和可回收技术的进步,再生塑胶的使用正在增加。
由于都市化和工业化程度不断提高,预计亚太地区在预测期内将保持最高的年复合成长率。由于低成本原料供应充足,中国预计将保持在该地区的领先地位。该地区的扩张也得益于建筑和包装行业的快速扩张。消费品产业对玩具、纤维和体育用品生产的需求不断增长,预计将推动该地区的市场。
According to Stratistics MRC, the Global Top 10 Plastics Market is accounted for $513.4 billion in 2023 and is expected to reach $914.7 billion by 2030 growing at a CAGR of 8.6% during the forecast period. Plastic is a man-made or partially man-made substance that can be molded into solid things. Natural resources like cellulose, coal, natural gas, salt, and crude oil are used to make them. Long chains of molecules known as polymers are created by chemically treating the fundamental components. They are flexible, robust, and easily moldable. They are also lightweight, resistant to corrosion and many common home pollutants. They are a feasible alternative to metals in many industries due to their distinguishing characteristics.
According to the PlastIndia Foundation, India has 15,788 KTA production capacity of thermoplastics alone. Similarly, engineering plastics, polyolefin, polystyrene, and polyurethane have a major marketplace in India.
The demand for products has expanded as a result of engineering polymers' superior strength and durability over standard ones. They have superior thermal and mechanical qualities, are lightweight, and are inexpensive. Engineering polymers are also being used more widely across a range of industries as a result of the growing need for metal replacement. The market is expanding because there is an increasing need for more advanced polymer solutions across a variety of end-use sectors, including construction, machinery, and components.
Regulations governing the use of a product are likely to slow market expansion. As worries about the environmental harm that polymers cause have grown, strict government laws and other measures have been implemented. Many governments and businesses have tried to embrace non-plastic and greener alternatives in an effort to lessen the environmental damage brought on by the use of plastic. The switch from plastic to sustainable products restrains the expansion of the worldwide market.
Numerous industries, including food & beverage, consumer goods, automotive, and electrical & electronics, are seeing an increase in demand for plastic. Global product consumption is fueled by the food and beverage industry's growing demand for packaging. Packaging that reduces food quality deterioration and prevents contamination is preferred by food manufacturers. The need is being fuelled by plastics' capacity to serve as a barrier between food goods and the outside environment.
The majority of plastics cannot decompose naturally in the environment because they are non-biodegradable. They may remain for hundreds of years, contaminating ecosystems, oceans, and landfills. Marine and land animals that consume plastic debris risk harm or perhaps death. Debris made of plastic can entangle animals, and plastic pollution disturbs ecosystems. This is the element limiting market expansion.
Plastics demand from the automotive and building and construction industries has significantly decreased in the aftermath of the epidemic. This drop was linked to reduced industrial activity in certain sectors as well as global shutdown limitations. The need for personal protective equipment, such as face masks, goggles, shields, gloves, respirators, gowns, and coveralls, from the medical business, on the other hand, will drive the market.
The polyethylene segment is expected to be the largest during the forecast period. It is mostly utilized in the packaging industry, which comprises geo membranes, plastic bags, plastic films, and containers and bottles. It is employed in numerous applications. PE polymers with low molecular weight are used in lubricants, while those with medium molecular weight are utilized to make wax that is miscible with paraffin and those with high molecular weight are frequently employed in the plastics sector.
The packaging segment is expected to have the highest CAGR during the forecast period. Packaging is a moderately penetrated end-use market with considerable potential. The packaging sector has relied heavily on plastic. Additionally, the introduction of bio-based plastic has had a big impact on packaging for food, medicine, and beverages. Packaging for beverages, consumer products, appliances, toys, and clothing is increasingly made of plastic.
North America is projected to hold the largest market share during the forecast period owing to increasing product demand from the electrical & electronics, healthcare & pharmaceuticals, and packaging industries. The use of polymers is also aided by qualities including superior heat resistance, corrosion inhibition, electric insulation, and low density. The usage of recovered plastics in the area has increased as a result of worries about plastic pollution and the advancement of recyclable technologies.
Asia Pacific is projected to hold the highest CAGR over the forecast period owing to its increasing urbanization and industrialization. Due to the plentiful supply of low-cost raw materials in China, it is expected that it will continue to hold the top position in the regionThe expansion is also credited to the building and packaging sectors' rapid expansion. The market in the region is anticipated to be driven by expanding consumer products industry demand for the production of toys, textiles, and sporting goods.
Some of the key players in Top 10 Plastics market include: Polyplastics Co., Ltd., Dow Chemical Company, ExxonMobil Chemical Company, Solvay SA, Huntsman Corporation, SABIC, Ach Foam Technologies, Vinnolit GmbH & Co. Kg, Borealis AG, TotalEnergies, Arkema, Eastman Chemical Company, Chevron Phillips Chemical Co., Sumitomo Chemical Co., Ltd. and Covestro AG.
In May 2023, TotalEnergies acquired Iber Resinas to expand its plastic recycling activity in Europe. The company aims to establish the key presence of circular polymers in Europe, increase its recycled product offerings, and extend its access to raw materials through Iber Resinas's suppliers.
In April 2022, ExxonMobil launched Exceed S, a Performance Polyethylene (PE) resins that provide toughness and stiffness and is easy to process. The new PE will aid the company to offer lucrative opportunities to decrease the complexity of film designs and formulations while improving conversion efficiency, packaging durability, and film performance from its competitors.
Note: Tables for North America, Europe, APAC, South America, and Middle East & Africa Regions are also represented in the same manner as above.
List of Figures
Figure 1 Top 10 Plastics - Market Segmentation
Figure 2 Research Methodology
Figure 3 Data Mining
Figure 4 Data Analysis
Figure 5 Data Validation
Figure 6 Research Pipeline
Figure 7 Research Approach
Figure 8 Research Sources
Figure 9 Top 10 Plastics Market Scenario, Product (2023) (% Market Share)
Figure 10 Top 10 Plastics Market Scenario, Application (2023) (% Market Share)
Figure 11 Top 10 Plastics Market Scenario, End User (2023) (% Market Share)
Figure 12 Top 10 Plastics Market Scenario, Emerging Markets (2023) (% Market Share)
Figure 13 Porter's Five Forces Analysis - Top 10 Plastics
Figure 14 Global Top 10 Plastics Market Analysis & Projection, By Product (2023 VS 2030) (US$MN)
Figure 15 Global Top 10 Plastics Market Analysis & Projection, By Acrylonitrile Butadiene Styrene (2023 VS 2030) (US$MN)
Figure 16 Global Top 10 Plastics Market Analysis & Projection, By Polyethylene Terephthalate (2023 VS 2030) (US$MN)
Figure 17 Global Top 10 Plastics Market Analysis & Projection, By Polyoxymethylene (2023 VS 2030) (US$MN)
Figure 18 Global Top 10 Plastics Market Analysis & Projection, By Polyvinyl chloride (2023 VS 2030) (US$MN)
Figure 19 Global Top 10 Plastics Market Analysis & Projection, By Polyethylene (2023 VS 2030) (US$MN)
Figure 20 Global Top 10 Plastics Market Analysis & Projection, By Polycarbonate (2023 VS 2030) (US$MN)
Figure 21 Global Top 10 Plastics Market Analysis & Projection, By Polyamide (2023 VS 2030) (US$MN)
Figure 22 Global Top 10 Plastics Market Analysis & Projection, By Polystyrene (2023 VS 2030) (US$MN)
Figure 23 Global Top 10 Plastics Market Analysis & Projection, By Polyurethane (2023 VS 2030) (US$MN)
Figure 24 Global Top 10 Plastics Market Analysis & Projection, By Polypropylene (2023 VS 2030) (US$MN)
Figure 25 Global Top 10 Plastics Market Analysis & Projection, By Other Products (2023 VS 2030) (US$MN)
Figure 26 Global Top 10 Plastics Market Analysis & Projection, By Application (2023 VS 2030) (US$MN)
Figure 27 Global Top 10 Plastics Market Analysis & Projection, By Compression Molding (2023 VS 2030) (US$MN)
Figure 28 Global Top 10 Plastics Market Analysis & Projection, By Roto Molding (2023 VS 2030) (US$MN)
Figure 29 Global Top 10 Plastics Market Analysis & Projection, By Thermoforming (2023 VS 2030) (US$MN)
Figure 30 Global Top 10 Plastics Market Analysis & Projection, By Casting (2023 VS 2030) (US$MN)
Figure 31 Global Top 10 Plastics Market Analysis & Projection, By Injection Molding (2023 VS 2030) (US$MN)
Figure 32 Global Top 10 Plastics Market Analysis & Projection, By Blow Molding (2023 VS 2030) (US$MN)
Figure 33 Global Top 10 Plastics Market Analysis & Projection, By Calendering (2023 VS 2030) (US$MN)
Figure 34 Global Top 10 Plastics Market Analysis & Projection, By Extrusion (2023 VS 2030) (US$MN)
Figure 35 Global Top 10 Plastics Market Analysis & Projection, By Other Applications (2023 VS 2030) (US$MN)
Figure 36 Global Top 10 Plastics Market Analysis & Projection, By End User (2023 VS 2030) (US$MN)
Figure 37 Global Top 10 Plastics Market Analysis & Projection, By Electrical & Electronics (2023 VS 2030) (US$MN)
Figure 38 Global Top 10 Plastics Market Analysis & Projection, By Building & construction (2023 VS 2030) (US$MN)
Figure 39 Global Top 10 Plastics Market Analysis & Projection, By Medical devices (2023 VS 2030) (US$MN)
Figure 40 Global Top 10 Plastics Market Analysis & Projection, By Automotive (2023 VS 2030) (US$MN)
Figure 41 Global Top 10 Plastics Market Analysis & Projection, By Packaging (2023 VS 2030) (US$MN)
Figure 42 Global Top 10 Plastics Market Analysis & Projection, By Agriculture (2023 VS 2030) (US$MN)
Figure 43 Global Top 10 Plastics Market Analysis & Projection, By Utility (2023 VS 2030) (US$MN)
Figure 44 Global Top 10 Plastics Market Analysis & Projection, By Furniture & Bedding (2023 VS 2030) (US$MN)
Figure 45 Global Top 10 Plastics Market Analysis & Projection, By Consumer Goods (2023 VS 2030) (US$MN)
Figure 46 Global Top 10 Plastics Market Analysis & Projection, By Textile (2023 VS 2030) (US$MN)
Figure 47 Global Top 10 Plastics Market Analysis & Projection, By Other End Users (2023 VS 2030) (US$MN)
Figure 48 Polyplastics Co., Ltd. - Swot Analysis
Figure 49 Dow Chemical Company - Swot Analysis
Figure 50 ExxonMobil Chemical Company - Swot Analysis
Figure 51 Solvay SA - Swot Analysis
Figure 52 Huntsman Corporation - Swot Analysis
Figure 53 SABIC - Swot Analysis
Figure 54 Ach Foam Technologies - Swot Analysis
Figure 55 Vinnolit GmbH & Co. Kg - Swot Analysis
Figure 56 Borealis AG - Swot Analysis
Figure 57 TotalEnergies - Swot Analysis
Figure 58 Arkema - Swot Analysis
Figure 59 Eastman Chemical Company - Swot Analysis
Figure 60 Chevron Phillips Chemical Co. - Swot Analysis
Figure 61 Sumitomo Chemical Co., Ltd. - Swot Analysis
Figure 62 Covestro AG - Swot Analysis