Global PET Structural Foam for Wind Turbine Blades Market by Size, by Type, by Application, by Region, History and Forecast 2020-2031

Summary

According to APO Research, The global PET Structural Foam for Wind Turbine Blades market is projected to grow from US$ million in 2025 to US$ million by 2031, at a Compound Annual Growth Rate (CAGR) of % during the forecast period.

The US & Canada market for PET Structural Foam for Wind Turbine Blades is estimated to increase from $ million in 2025 to reach $ million by 2031, at a CAGR of % during the forecast period of 2025 through 2031.

Asia-Pacific market for PET Structural Foam for Wind Turbine Blades is estimated to increase from $ million in 2025 to reach $ million by 2031, at a CAGR of % during the forecast period of 2025 through 2031.

The China market for PET Structural Foam for Wind Turbine Blades is estimated to increase from $ million in 2025 to reach $ million by 2031, at a CAGR of % during the forecast period of 2025 through 2031.

Europe market for PET Structural Foam for Wind Turbine Blades is estimated to increase from $ million in 2025 to reach $ million by 2031, at a CAGR of % during the forecast period of 2025 through 2031.

The major global manufacturers of PET Structural Foam for Wind Turbine Blades include 3A Composites, Armacell, Diab, Gurit, Visight Advanced Material, Tiansheng New Materials, Kebos New Material, Changyou Environmental Protection Technology and Maricell, etc. In 2024, the world's top three vendors accounted for approximately % of the revenue.

In terms of production side, this report researches the PET Structural Foam for Wind Turbine Blades production, growth rate, market share by manufacturers and by region (region level and country level), from 2020 to 2025, and forecast to 2031.

In terms of consumption side, this report focuses on the sales of PET Structural Foam for Wind Turbine Blades by region (region level and country level), by company, by type and by application. from 2020 to 2025 and forecast to 2031.

This report presents an overview of global market for PET Structural Foam for Wind Turbine Blades, capacity, output, revenue and price. Analyses of the global market trends, with historic market revenue or sales data for 2020 - 2024, estimates for 2025, and projections of CAGR through 2031.

This report researches the key producers of PET Structural Foam for Wind Turbine Blades, also provides the consumption of main regions and countries. Of the upcoming market potential for PET Structural Foam for Wind Turbine Blades, and key regions or countries of focus to forecast this market into various segments and sub-segments. Country specific data and market value analysis for the U.S., Canada, Mexico, Brazil, China, Japan, South Korea, Southeast Asia, India, Germany, the U.K., Italy, Middle East, Africa, and Other Countries.

This report focuses on the PET Structural Foam for Wind Turbine Blades sales, revenue, market share and industry ranking of main manufacturers, data from 2020 to 2025. Identification of the major stakeholders in the global PET Structural Foam for Wind Turbine Blades market, and analysis of their competitive landscape and market positioning based on recent developments and segmental revenues. This report will help stakeholders to understand the competitive landscape and gain more insights and position their businesses and market strategies in a better way.

This report analyzes the segments data by type and by application, sales, revenue, and price, from 2020 to 2031. Evaluation and forecast the market size for PET Structural Foam for Wind Turbine Blades sales, projected growth trends, production technology, application and end-user industry.


PET Structural Foam for Wind Turbine Blades Segment by Company

3A Composites
Armacell
Diab
Gurit
Visight Advanced Material
Tiansheng New Materials
Kebos New Material
Changyou Environmental Protection Technology
Maricell

PET Structural Foam for Wind Turbine Blades Segment by Type

85 kg/m3
115 kg/m3
100 kg/m3
Other

PET Structural Foam for Wind Turbine Blades Segment by Application

Offshore Wind Power
Onshore Wind Power

PET Structural Foam for Wind Turbine Blades Segment by Region

North America
United States
Canada
Mexico
Europe
Germany
France
U.K.
Italy
Russia
Spain
Netherlands
Switzerland
Sweden
Poland
Asia-Pacific
China
Japan
South Korea
India
Australia
Taiwan
Southeast Asia
South America
Brazil
Argentina
Chile
Middle East & Africa
Egypt
South Africa
Israel
Türkiye
GCC Countries

Study Objectives

1. To analyze and research the global status and future forecast, involving, production, value, consumption, growth rate (CAGR), market share, historical and forecast.
2. To present the key manufacturers, capacity, production, revenue, market share, and Recent Developments.
3. To split the breakdown data by regions, type, manufacturers, and Application.
4. To analyze the global and key regions market potential and advantage, opportunity and challenge, restraints, and risks.
5. To identify significant trends, drivers, influence factors in global and regions.
6. To analyze competitive developments such as expansions, agreements, new product launches, and acquisitions in the market.

Reasons to Buy This Report

1. This report will help the readers to understand the competition within the industries and strategies for the competitive environment to enhance the potential profit. The report also focuses on the competitive landscape of the global PET Structural Foam for Wind Turbine Blades market, and introduces in detail the market share, industry ranking, competitor ecosystem, market performance, new product development, operation situation, expansion, and acquisition. etc. of the main players, which helps the readers to identify the main competitors and deeply understand the competition pattern of the market.
2. This report will help stakeholders to understand the global industry status and trends of PET Structural Foam for Wind Turbine Blades and provides them with information on key market drivers, restraints, challenges, and opportunities.
3. This report will help stakeholders to understand competitors better and gain more insights to strengthen their position in their businesses. The competitive landscape section includes the market share and rank (in volume and value), competitor ecosystem, new product development, expansion, and acquisition.
4. This report stays updated with novel technology integration, features, and the latest developments in the market.
5. This report helps stakeholders to gain insights into which regions to target globally.
6. This report helps stakeholders to gain insights into the end-user perception concerning the adoption of PET Structural Foam for Wind Turbine Blades.
7. This report helps stakeholders to identify some of the key players in the market and understand their valuable contribution.

Chapter Outline

Chapter 1: Provides an overview of the PET Structural Foam for Wind Turbine Blades market, including product definition, global market growth prospects, production value, capacity, and average price forecasts (2020-2031).
Chapter 2: Analysis key trends, drivers, challenges, and opportunities within the global PET Structural Foam for Wind Turbine Blades industry.
Chapter 3: Detailed analysis of PET Structural Foam for Wind Turbine Blades market competition landscape. Including PET Structural Foam for Wind Turbine Blades manufacturers' output value, output and average price from 2020 to 2025, as well as competition analysis indicators such as origin, product type, application, merger and acquisition information, etc.
Chapter 4: Provides the analysis of various market segments by type, covering the market size and development potential of each market segment, to help readers find the blue ocean market in different market segments.
Chapter 5: Provides the analysis of various market segments by application, covering the market size and development potential of each market segment, to help readers find the blue ocean market in different downstream markets.
Chapter 6: Provides profiles of key players, introducing the basic situation of the main companies in the market in detail, including product production/output, value, price, gross margin, product introduction, recent development, etc.
Chapter 7: Production/Production Value of PET Structural Foam for Wind Turbine Blades by region. It provides a quantitative analysis of the market size and development potential of each region in the next six years.
Chapter 8: Consumption of PET Structural Foam for Wind Turbine Blades in regional level and country level. It provides a quantitative analysis of the market size and development potential of each region and its main countries and introduces the market development, future development prospects, market space, and production of each country in the world.
Chapter 9: Analysis of industrial chain, including the upstream and downstream of the industry.
Chapter 10: Concluding Insights of the report.

Please Note: Single-User license will be delivered via PDF from the publisher without the rights to print or to edit.


1 Market Overview
1.1 Product Definition
1.2 Global Market Growth Prospects
1.2.1 Global PET Structural Foam for Wind Turbine Blades Production Value Estimates and Forecasts (2020-2031)
1.2.2 Global PET Structural Foam for Wind Turbine Blades Production Capacity Estimates and Forecasts (2020-2031)
1.2.3 Global PET Structural Foam for Wind Turbine Blades Production Estimates and Forecasts (2020-2031)
1.2.4 Global PET Structural Foam for Wind Turbine Blades Market Average Price (2020-2031)
1.3 Assumptions and Limitations
1.4 Study Goals and Objectives
2 Global PET Structural Foam for Wind Turbine Blades Market Dynamics
2.1 PET Structural Foam for Wind Turbine Blades Industry Trends
2.2 PET Structural Foam for Wind Turbine Blades Industry Drivers
2.3 PET Structural Foam for Wind Turbine Blades Industry Opportunities and Challenges
2.4 PET Structural Foam for Wind Turbine Blades Industry Restraints
3 PET Structural Foam for Wind Turbine Blades Market by Manufacturers
3.1 Global PET Structural Foam for Wind Turbine Blades Production Value by Manufacturers (2020-2025)
3.2 Global PET Structural Foam for Wind Turbine Blades Production by Manufacturers (2020-2025)
3.3 Global PET Structural Foam for Wind Turbine Blades Average Price by Manufacturers (2020-2025)
3.4 Global PET Structural Foam for Wind Turbine Blades Industry Manufacturers Ranking, 2023 VS 2024 VS 2025
3.5 Global PET Structural Foam for Wind Turbine Blades Key Manufacturers Manufacturing Sites & Headquarters
3.6 Global PET Structural Foam for Wind Turbine Blades Manufacturers, Product Type & Application
3.7 Global PET Structural Foam for Wind Turbine Blades Manufacturers Established Date
3.8 Market Competitive Analysis
3.8.1 Global PET Structural Foam for Wind Turbine Blades Market CR5 and HHI
3.8.2 Global Top 5 and 10 PET Structural Foam for Wind Turbine Blades Players Market Share by Production Value in 2024
3.8.3 2024 PET Structural Foam for Wind Turbine Blades Tier 1, Tier 2, and Tier 3
4 PET Structural Foam for Wind Turbine Blades Market by Type
4.1 PET Structural Foam for Wind Turbine Blades Type Introduction
4.1.1 85 kg/m3
4.1.2 115 kg/m3
4.1.3 100 kg/m3
4.1.4 Other
4.2 Global PET Structural Foam for Wind Turbine Blades Production by Type
4.2.1 Global PET Structural Foam for Wind Turbine Blades Production by Type (2020 VS 2024 VS 2031)
4.2.2 Global PET Structural Foam for Wind Turbine Blades Production by Type (2020-2031)
4.2.3 Global PET Structural Foam for Wind Turbine Blades Production Market Share by Type (2020-2031)
4.3 Global PET Structural Foam for Wind Turbine Blades Production Value by Type
4.3.1 Global PET Structural Foam for Wind Turbine Blades Production Value by Type (2020 VS 2024 VS 2031)
4.3.2 Global PET Structural Foam for Wind Turbine Blades Production Value by Type (2020-2031)
4.3.3 Global PET Structural Foam for Wind Turbine Blades Production Value Market Share by Type (2020-2031)
5 PET Structural Foam for Wind Turbine Blades Market by Application
5.1 PET Structural Foam for Wind Turbine Blades Application Introduction
5.1.1 Offshore Wind Power
5.1.2 Onshore Wind Power
5.2 Global PET Structural Foam for Wind Turbine Blades Production by Application
5.2.1 Global PET Structural Foam for Wind Turbine Blades Production by Application (2020 VS 2024 VS 2031)
5.2.2 Global PET Structural Foam for Wind Turbine Blades Production by Application (2020-2031)
5.2.3 Global PET Structural Foam for Wind Turbine Blades Production Market Share by Application (2020-2031)
5.3 Global PET Structural Foam for Wind Turbine Blades Production Value by Application
5.3.1 Global PET Structural Foam for Wind Turbine Blades Production Value by Application (2020 VS 2024 VS 2031)
5.3.2 Global PET Structural Foam for Wind Turbine Blades Production Value by Application (2020-2031)
5.3.3 Global PET Structural Foam for Wind Turbine Blades Production Value Market Share by Application (2020-2031)
6 Company Profiles
6.1 3A Composites
6.1.1 3A Composites Comapny Information
6.1.2 3A Composites Business Overview
6.1.3 3A Composites PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.1.4 3A Composites PET Structural Foam for Wind Turbine Blades Product Portfolio
6.1.5 3A Composites Recent Developments
6.2 Armacell
6.2.1 Armacell Comapny Information
6.2.2 Armacell Business Overview
6.2.3 Armacell PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.2.4 Armacell PET Structural Foam for Wind Turbine Blades Product Portfolio
6.2.5 Armacell Recent Developments
6.3 Diab
6.3.1 Diab Comapny Information
6.3.2 Diab Business Overview
6.3.3 Diab PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.3.4 Diab PET Structural Foam for Wind Turbine Blades Product Portfolio
6.3.5 Diab Recent Developments
6.4 Gurit
6.4.1 Gurit Comapny Information
6.4.2 Gurit Business Overview
6.4.3 Gurit PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.4.4 Gurit PET Structural Foam for Wind Turbine Blades Product Portfolio
6.4.5 Gurit Recent Developments
6.5 Visight Advanced Material
6.5.1 Visight Advanced Material Comapny Information
6.5.2 Visight Advanced Material Business Overview
6.5.3 Visight Advanced Material PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.5.4 Visight Advanced Material PET Structural Foam for Wind Turbine Blades Product Portfolio
6.5.5 Visight Advanced Material Recent Developments
6.6 Tiansheng New Materials
6.6.1 Tiansheng New Materials Comapny Information
6.6.2 Tiansheng New Materials Business Overview
6.6.3 Tiansheng New Materials PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.6.4 Tiansheng New Materials PET Structural Foam for Wind Turbine Blades Product Portfolio
6.6.5 Tiansheng New Materials Recent Developments
6.7 Kebos New Material
6.7.1 Kebos New Material Comapny Information
6.7.2 Kebos New Material Business Overview
6.7.3 Kebos New Material PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.7.4 Kebos New Material PET Structural Foam for Wind Turbine Blades Product Portfolio
6.7.5 Kebos New Material Recent Developments
6.8 Changyou Environmental Protection Technology
6.8.1 Changyou Environmental Protection Technology Comapny Information
6.8.2 Changyou Environmental Protection Technology Business Overview
6.8.3 Changyou Environmental Protection Technology PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.8.4 Changyou Environmental Protection Technology PET Structural Foam for Wind Turbine Blades Product Portfolio
6.8.5 Changyou Environmental Protection Technology Recent Developments
6.9 Maricell
6.9.1 Maricell Comapny Information
6.9.2 Maricell Business Overview
6.9.3 Maricell PET Structural Foam for Wind Turbine Blades Production, Value and Gross Margin (2020-2025)
6.9.4 Maricell PET Structural Foam for Wind Turbine Blades Product Portfolio
6.9.5 Maricell Recent Developments
7 Global PET Structural Foam for Wind Turbine Blades Production by Region
7.1 Global PET Structural Foam for Wind Turbine Blades Production by Region: 2020 VS 2024 VS 2031
7.2 Global PET Structural Foam for Wind Turbine Blades Production by Region (2020-2031)
7.2.1 Global PET Structural Foam for Wind Turbine Blades Production by Region: 2020-2025
7.2.2 Global PET Structural Foam for Wind Turbine Blades Production Forecast by Region: 2026-2031
7.3 Global PET Structural Foam for Wind Turbine Blades Production by Region: 2020 VS 2024 VS 2031
7.4 Global PET Structural Foam for Wind Turbine Blades Production Value by Region (2020-2031)
7.4.1 Global PET Structural Foam for Wind Turbine Blades Production Value by Region: 2020-2025
7.4.2 Global PET Structural Foam for Wind Turbine Blades Production Value by Region (2026-2031)
7.5 Global PET Structural Foam for Wind Turbine Blades Market Price Analysis by Region (2020-2031)
7.6 Regional Production Value Trends (2020-2031)
7.6.1 North America PET Structural Foam for Wind Turbine Blades Production Value (2020-2031)
7.6.2 Europe PET Structural Foam for Wind Turbine Blades Production Value (2020-2031)
7.6.3 Asia-Pacific PET Structural Foam for Wind Turbine Blades Production Value (2020-2031)
7.6.4 South America PET Structural Foam for Wind Turbine Blades Production Value (2020-2031)
7.6.5 Middle East & Africa PET Structural Foam for Wind Turbine Blades Production Value (2020-2031)
8 Global PET Structural Foam for Wind Turbine Blades Consumption by Region
8.1 Global PET Structural Foam for Wind Turbine Blades Consumption by Region: 2020 VS 2024 VS 2031
8.2 Global PET Structural Foam for Wind Turbine Blades Consumption by Region (2020-2031)
8.2.1 Global PET Structural Foam for Wind Turbine Blades Consumption by Region (2020-2025)
8.2.2 Global PET Structural Foam for Wind Turbine Blades Consumption by Region (2026-2031)
8.3 North America
8.3.1 North America PET Structural Foam for Wind Turbine Blades Consumption Growth Rate by Country: 2020 VS 2024 VS 2031
8.3.2 North America PET Structural Foam for Wind Turbine Blades Consumption by Country (2020-2031)
8.3.3 U.S.
8.3.4 Canada
8.3.5 Mexico
8.4 Europe
8.4.1 Europe PET Structural Foam for Wind Turbine Blades Consumption Growth Rate by Country: 2020 VS 2024 VS 2031
8.4.2 Europe PET Structural Foam for Wind Turbine Blades Consumption by Country (2020-2031)
8.4.3 Germany
8.4.4 France
8.4.5 U.K.
8.4.6 Italy
8.4.7 Netherlands
8.5 Asia Pacific
8.5.1 Asia Pacific PET Structural Foam for Wind Turbine Blades Consumption Growth Rate by Country: 2020 VS 2024 VS 2031
8.5.2 Asia Pacific PET Structural Foam for Wind Turbine Blades Consumption by Country (2020-2031)
8.5.3 China
8.5.4 Japan
8.5.5 South Korea
8.5.6 Southeast Asia
8.5.7 India
8.5.8 Australia
8.6 South America
8.6.1 South America PET Structural Foam for Wind Turbine Blades Consumption Growth Rate by Country: 2020 VS 2024 VS 2031
8.6.2 South America PET Structural Foam for Wind Turbine Blades Consumption by Country (2020-2031)
8.6.3 Brazil
8.6.4 Argentina
8.6.5 Chile
8.6.6 Colombia
8.7 Middle East & Africa
8.7.1 Middle East & Africa PET Structural Foam for Wind Turbine Blades Consumption Growth Rate by Country: 2020 VS 2024 VS 2031
8.7.2 Middle East & Africa PET Structural Foam for Wind Turbine Blades Consumption by Country (2020-2031)
8.7.3 Egypt
8.7.4 South Africa
8.7.5 Israel
8.7.6 Türkiye
8.7.7 GCC Countries
9 Value Chain and Sales Channels Analysis
9.1 PET Structural Foam for Wind Turbine Blades Value Chain Analysis
9.1.1 PET Structural Foam for Wind Turbine Blades Key Raw Materials
9.1.2 Raw Materials Key Suppliers
9.1.3 Manufacturing Cost Structure
9.1.4 PET Structural Foam for Wind Turbine Blades Production Mode & Process
9.2 PET Structural Foam for Wind Turbine Blades Sales Channels Analysis
9.2.1 Direct Comparison with Distribution Share
9.2.2 PET Structural Foam for Wind Turbine Blades Distributors
9.2.3 PET Structural Foam for Wind Turbine Blades Customers
10 Concluding Insights
11 Appendix
11.1 Reasons for Doing This Study
11.2 Research Methodology
11.3 Research Process
11.4 Authors List of This Report
11.5 Data Source
11.5.1 Secondary Sources
11.5.2 Primary Sources
11.6 Disclaimer

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