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市場調查報告書
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2106382

2034年風力渦輪機葉片複合材料市場預測-全球分析(依樹脂類型、材料類型、製造流程、葉片長度、應用和地區分類)

Wind Blade Composite Materials Market Forecasts to 2034 - Global Analysis By Resin Type (Epoxy Resins, Polyester Resins, Vinyl Ester Resins and Thermoplastic Resins), Material Type, Manufacturing Process, Blade Length, Application and By Geography

出版日期: | 出版商: Stratistics Market Research Consulting | 英文 | 商品交期: 2-3個工作天內

價格

全球風力渦輪機葉片複合材料市場預計到 2026 年將達到 169 億美元,並在預測期內以 10.0% 的複合年成長率成長,到 2034 年將達到 362 億美元。

風力發電機葉片中使用的複合材料在實現高效率和高可靠性方面發揮著至關重要的作用。玻璃纖維增強塑膠因其價格實惠而被廣泛採用,而碳纖維解決方案則因其卓越的剛性和輕質特性而備受關注。環氧樹脂和聚酯等樹脂體系增強了耐久性,並能抵抗惡劣環境的影響。這些尖端材料使得葉片長度得以延長,從而提高了功率輸出和渦輪機的整體效率。研發工作重點在於可回收性、提高疲勞壽命和環保生產技術,推動全球永續能源的發展。新型混合複合材料和生物基樹脂的湧現,旨在減少對環境的影響並延長全球使用壽命。

據美國能源局(DOE) 稱,風力發電機的質量中約 85% 至 90% 已由商業性可回收的材料構成,而難以回收的剩餘部分主要由用於風力發電機葉片等部件的纖維增強複合材料構成。

對更大、更有效率風力發電機的需求日益成長

對更高發電能力的需求不斷成長,推動了大型風力發電機的發展,進而帶動了對先進複合材料的需求。更長的葉片能夠捕獲更多風力發電,從而提高效率並降低發電成本。玻璃纖維和碳纖維等材料因其輕質高強的特性,是設計長葉片的理想選擇。隨著全球對可再生能源的關注度不斷提升,企業優先考慮能夠承受惡劣環境和負荷的材料。這一趨勢正在推動渦輪機技術的創新,使全球範圍內能夠建造更有效率、更耐用、容量更大的風力發電系統。

高昂的製造成本和材料成本

原料和製造製程成本的上漲是風力渦輪機葉片複合材料市場面臨的主要限制因素。碳纖維和先進樹脂等材料顯著增加了葉片製造的總成本。對專用機械、熟練勞動力和複雜製造流程的需求進一步推高了生產成本。這種財務負擔可能會阻礙市場成長,尤其是在預算緊張的地區。企業面臨著在保持性能標準的同時降低成本的挑戰,而這些經濟壓力可能會阻礙技術進步,並延緩依賴高性能複合材料的可再生能源專案。

可回收和永續複合材料的開發

人們對環境問題的日益關注,為可回收和永續複合材料在風力發電機應用領域開闢了新的成長前景。各公司正致力於研發熱塑性樹脂和生物基材料,這些材料比傳統複合材料更易於回收利用,對環境的影響更小。這些進步與循環經濟計劃和日益嚴格的廢棄物處理環境法規相契合。隨著永續性在全球範圍內變得日益重要,對更環保的葉片材料的需求也在不斷成長。這一趨勢為製造商提供了創新和提供兼具效率和環境效益的高性能解決方案的契機,從而支持風力發電產業的長期發展。

與替代材料和技術的競爭

新材料和先進製造技術的日益激烈的競爭,對風力渦輪機葉片複合材料市場構成了挑戰。創新金屬、模組化葉片概念和混合材料系統等替代方案因其預期的成本和性能優勢而備受關注。渦輪機設計的改變和效率的提升也可能影響材料需求。隨著企業探索這些新選擇,傳統複合材料解決方案的應用可能會減少。由於替代技術的興起可能會影響市場佔有率並改變風力發電機葉片生產的未來,製造商必須專注於持續創新才能保持競爭力。

新型冠狀病毒(COVID-19)的影響:

新冠疫情為風力發電機葉片複合材料產業帶來了短期挑戰,影響了材料供應、生產營運和專案實施進度。封鎖、運輸限制和勞動力短缺擾亂了複合材料部件的供應,導致渦輪機製造和部署延期。經濟的不確定性和營運困難迫使多個可再生能源項目推遲。儘管面臨這些不利因素,政府對可再生能源發展的持續投入支撐了市場的復甦。疫情過後,製造商致力於建立更強大的供應鏈網路,提高營運柔軟性,並增強製造能力,以支持未來的成長。

在預測期內,環氧樹脂細分市場預計將佔據最大的市場佔有率。

由於環氧樹脂具有高強度、高可靠性和耐惡劣運作況等優點,預計在預測期內將佔據最大的市場佔有率。環氧樹脂能與增強纖維有效黏合,從而製造出高耐久性和高效率的渦輪葉片。環氧樹脂材料具有優異的抗重複機械應力性能,能夠長期維持穩定的性能,同時也有助於輕量化葉片結構的開發。環氧樹脂技術的不斷進步正在提升加工效率、環境性能和葉片整體可靠性,進一步增強其在風力發電複合材料產業的重要性。

預計在預測期內,碳纖維複合材料領域將呈現最高的複合年成長率。

在預測期內,碳纖維複合材料領域預計將呈現最高的成長率,這主要得益於其卓越的輕量化、高強度和高性能優勢。這些優勢使得製造更大尺寸的渦輪葉片成為可能,同時保持結構穩定性和運作可靠性。碳纖維複合材料的高剛性、抗疲勞性和長使用壽命使其成為現代風力發電系統,尤其是高要求應用領域的理想材料。人們日益關注提高渦輪機效率和減輕葉片重量,這推動了碳纖維解決方案的廣泛應用。複合材料加工技術的進步和材料創新將進一步加速碳纖維在未來風力發電機技術中的應用。

市佔率最大的地區:

在預測期內,亞太地區預計將佔據最大的市場佔有率,這主要得益於可再生能源項目的擴張、成熟的製造網路以及對風電開發投資的增加。該地區對永續能源發電的日益重視,推動了對用於製造渦輪葉片的高級材料的需求。強大的風力發電機製造商和複合材料供應商的存在,進一步增強了市場成長機會。海上和陸域風電場的不斷部署,加速了耐用、輕質複合材料解決方案的應用。各國政府鼓勵採用可再生能源的政策,也進一步促進了複合材料在全部區域風力發電機葉片領域的應用。

複合年成長率最高的地區:

在預測期內,北美預計將呈現最高的複合年成長率,這主要得益於可再生能源投資的增加、風電裝置容量的成長以及渦輪機設計的進步。該地區向清潔能源來源的轉型催生了對輕質、高強度和耐用材料的需求,這些材料將用於製造現代風力發電機葉片。離岸風力發電專案的增加和大型渦輪機的部署進一步加速了先進複合材料的應用。政府的支持、持續的研究以及以永續性發展為導向的策略,都在鼓勵企業改進其葉片技術。

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目錄

第1章執行摘要

  • 市場概覽及主要亮點
  • 促進因素、挑戰與機遇
  • 競爭格局概述
  • 戰略洞察與建議

第2章:研究框架

  • 研究目標和範圍
  • 相關人員分析
  • 研究假設和限制
  • 調查方法

第3章 市場動態與趨勢分析

  • 市場定義與結構
  • 主要市場促進因素
  • 市場限制與挑戰
  • 投資成長機會和重點領域
  • 產業威脅與風險評估
  • 技術與創新展望
  • 新興市場/高成長市場
  • 監管和政策環境
  • 新冠疫情的影響及復甦前景

第4章:競爭環境與策略評估

  • 波特五力分析
    • 供應商的議價能力
    • 買方的議價能力
    • 替代品的威脅
    • 新進入者的威脅
    • 競爭公司之間的競爭
  • 主要公司市佔率分析
  • 產品基準評效和效能比較

第5章 全球風力渦輪機葉片複合材料市場:依樹脂類型分類

  • 環氧樹脂
  • 聚酯樹脂
  • 乙烯基酯樹脂
  • 熱塑性樹脂

第6章:全球風力渦輪機葉片複合材料市場:依材料類型分類

  • 玻璃纖維複合材料
  • 碳纖維複合材料
  • 混合複合材料(玻璃+碳)
  • 天然纖維複合材料

第7章 全球風力渦輪機葉片複合材料市場:依製造流程分類

  • 預浸料層壓
  • 真空輸液
  • 樹脂傳遞模塑(RTM)
  • 手工積層

第8章 全球風力渦輪機葉片複合材料市場:依葉片長度分類

  • 短刃(小於30公尺)
  • 中型刀片(30-60公尺)
  • 大型刀片(超過 60 公尺)

第9章 全球風力渦輪機葉片複合材料市場:依應用領域分類

  • 陸上風力發電機
  • 離岸風力發電機

第10章 全球風力渦輪機葉片複合材料市場:依地區分類

  • 北美洲
    • 美國
    • 加拿大
    • 墨西哥
  • 歐洲
    • 英國
    • 德國
    • 法國
    • 義大利
    • 西班牙
    • 荷蘭
    • 比利時
    • 瑞典
    • 瑞士
    • 波蘭
    • 其他歐洲國家
  • 亞太地區
    • 中國
    • 日本
    • 印度
    • 韓國
    • 澳洲
    • 印尼
    • 泰國
    • 馬來西亞
    • 新加坡
    • 越南
    • 其他亞太國家
  • 南美洲
    • 巴西
    • 阿根廷
    • 哥倫比亞
    • 智利
    • 秘魯
    • 其他南美國家
  • 世界其他地區(RoW)
    • 中東
      • 沙烏地阿拉伯
      • 阿拉伯聯合大公國
      • 卡達
      • 以色列
      • 其他中東國家
    • 非洲
      • 南非
      • 埃及
      • 摩洛哥
      • 其他非洲國家

第11章 策略市場資訊

  • 工業價值網路與供應鏈評估
  • 空白區域和機會地圖
  • 產品演進與市場生命週期分析
  • 通路、經銷商和打入市場策略的評估

第12章 產業趨勢與策略舉措

  • 併購
  • 夥伴關係、聯盟和合資企業
  • 新產品發布和認證
  • 擴大生產能力和投資
  • 其他策略舉措

第13章:公司簡介

  • China National Building Material Group Corporation
  • Toray Industries, Inc.
  • China Jushi Co., Ltd.
  • Exxon Mobil Corporation
  • Evonik
  • Teijin Limited
  • Hexcel Corporation
  • Owens Corning
  • Gurit Services AG
  • SGL Carbon
  • Arkema
  • Huntsman International LLC
  • DowAksa
  • Rochling SE & Co. KG
  • Exel Composites
  • Westlake Chemical
  • Olin Corp
Product Code: SMRC38498

According to Stratistics MRC, the Global Wind Blade Composite Materials Market is accounted for $16.9 billion in 2026 and is expected to reach $36.2 billion by 2034 growing at a CAGR of 10.0% during the forecast period. Composite materials used in wind turbine blades play a vital role in achieving high efficiency and reliability. Glass fiber reinforced plastics remain widely adopted for their affordability, whereas carbon fiber solutions are gaining traction for superior stiffness and weight reduction. Resin systems such as epoxy and polyester provide durability and protection against harsh environments. These advanced materials allow longer blades, boosting power output and overall turbine effectiveness. Research efforts emphasize recyclability, enhanced fatigue life, and eco-friendly production techniques, driving sustainable energy development worldwide. New hybrid composites and bio-derived resins are emerging to lower environmental impact and extend service life globally.

According to the U.S. Department of Energy (DOE), approximately 85%-90% of the mass of a wind turbine is made from materials that can already be commercially recycled, while the remaining difficult-to-recycle portion mainly consists of fiber-reinforced composite materials used in components such as wind turbine blades.

Market Dynamics:

Driver:

Increasing demand for larger and more efficient wind turbines

Rising requirements for enhanced power generation are encouraging the development of bigger wind turbines, boosting the need for advanced composite materials. Extended blades help capture greater wind energy, improving efficiency and lowering electricity production costs. Materials like glass and carbon fiber provide high strength while remaining lightweight, making them ideal for longer blade designs. With increasing global emphasis on renewable energy, companies are prioritizing materials that can endure stress and harsh environments. This trend supports innovation in turbine technology, enabling the creation of more efficient, durable, and high-capacity wind energy systems worldwide.

Restraint:

High manufacturing and material costs

Elevated costs of raw materials and production processes act as a major constraint for the wind blade composite materials market. Materials like carbon fiber and advanced resins significantly increase the overall expense of blade manufacturing. The need for specialized machinery, skilled workforce, and complex fabrication techniques further adds to production costs. This financial burden can restrict market growth, especially in regions with budget limitations. Companies are challenged to maintain performance standards while reducing costs, and these economic pressures may hinder technological advancements and delay renewable energy projects relying on high-performance composite materials.

Opportunity:

Development of recyclable and sustainable composite materials

Rising environmental concerns are opening new growth prospects for recyclable and sustainable composite materials in wind turbine applications. Companies are focusing on thermoplastic and bio-derived materials that offer improved recyclability and lower ecological impact than conventional composites. These advancements align with circular economy initiatives and stricter environmental regulations regarding waste disposal. As global emphasis on sustainability strengthens, demand for greener blade materials is increasing. This trend provides opportunities for manufacturers to innovate and deliver high-performance solutions that combine efficiency with environmental benefits, supporting the long-term growth of the wind energy sector.

Threat:

Competition from alternative materials and technologies

Growing competition from new materials and advanced manufacturing approaches poses a challenge to the wind blade composite materials market. Alternatives such as innovative metals, modular blade concepts, and hybrid material systems are gaining attention for their potential cost and performance benefits. Changes in turbine design and efficiency improvements may also influence material demand. As companies explore these emerging options, traditional composite solutions may face reduced adoption. To stay competitive, manufacturers must focus on continuous innovation, as the rise of substitute technologies could impact market share and reshape the future landscape of wind turbine blade production.

Covid-19 Impact:

The outbreak of COVID-19 created short-term challenges for the wind blade composite materials industry by affecting material availability, production operations, and project execution timelines. Lockdowns, transport limitations, and labor shortages disrupted the supply of composite components and delayed turbine manufacturing and deployment. Several renewable energy projects faced postponements due to economic uncertainty and operational difficulties. Despite these setbacks, continued government initiatives toward renewable energy development supported market recovery. After the pandemic, manufacturers focused on building stronger supply networks, increasing operational flexibility, and enhancing manufacturing capabilities to support future growth.

The epoxy resins segment is expected to be the largest during the forecast period

The epoxy resins segment is expected to account for the largest market share during the forecast period because of their high strength, reliability, and ability to withstand demanding operating environments. They effectively combine with reinforcement fibers, enabling the production of durable and efficient turbine blades. Epoxy-based materials provide excellent resistance to repeated mechanical stress, maintain stable performance over time, and support the development of lightweight blade structures. Ongoing improvements in epoxy technology are enhancing processing efficiency, environmental performance, and overall blade reliability, strengthening their importance in the wind energy composite materials industry.

The carbon fiber composites segment is expected to have the highest CAGR during the forecast period

Over the forecast period, the carbon fiber composites segment is predicted to witness the highest growth rate because of their exceptional lightweight properties, strength, and performance advantages. They enable the production of larger turbine blades while maintaining structural stability and operational reliability. Their high stiffness, resistance to fatigue, and long service capability make them valuable for modern wind energy systems, especially in demanding applications. Growing efforts to enhance turbine efficiency and minimize blade weight are encouraging greater use of carbon fiber solutions. Improvements in composite processing methods and material innovation are further accelerating their adoption in future wind turbine technologies.

Region with largest share:

During the forecast period, the Asia-Pacific region is expected to hold the largest market share, supported by expanding renewable energy projects, established manufacturing networks, and rising investments in wind power development. The region's increasing focus on sustainable electricity generation is boosting demand for advanced materials used in turbine blade production. A strong presence of wind turbine producers and composite suppliers enhances market growth opportunities. Increasing deployment of both offshore and onshore wind farms is encouraging the use of durable and lightweight composite solutions. Government policies promoting renewable energy adoption are further contributing to the expansion of wind blade composite material applications throughout Asia-Pacific.

Region with highest CAGR:

Over the forecast period, the North America region is anticipated to exhibit the highest CAGR, supported by growing renewable energy investments, increasing wind installations, and advancements in turbine design. The region's transition toward cleaner energy sources is generating demand for lightweight, strong, and durable materials for modern wind blades. Rising offshore wind projects and the deployment of larger turbines are further accelerating the adoption of advanced composites. Favourable government initiatives, continuous research, and sustainability-focused strategies are motivating companies to improve blade technologies.

Key players in the market

Some of the key players in Wind Blade Composite Materials Market include China National Building Material Group Corporation, Toray Industries, Inc., China Jushi Co., Ltd., Exxon Mobil Corporation, Evonik, Teijin Limited, Hexcel Corporation, Owens Corning, Gurit Services AG, SGL Carbon, Arkema, Huntsman International LLC, DowAksa, Rochling SE & Co. KG, Exel Composites, Westlake Chemical and Olin Corp.

Key Developments:

In April 2026, ExxonMobil strengthens collaboration with QatarEnergy to expand international LNG partnership portfolio. The enhanced partnership with QatarEnergy signals ExxonMobil's intent to secure long-term supply stability and expand its international LNG portfolio, showing how major players position themselves to meet energy needs, technological developments, and market growth.

In March 2025, Evonik has entered into an exclusive agreement with the Cleveland-based Sea-Land Chemical Company for the distribution of its cleaning solutions in the U.S. The agreement builds on a long-standing relationship with the distributor and expands the reach of Evonik's cleaning solutions to the entire U.S. region.

Resin Types Covered:

  • Epoxy Resins
  • Polyester Resins
  • Vinyl Ester Resins
  • Thermoplastic Resins

Material Types Covered:

  • Glass Fiber Composites
  • Carbon Fiber Composites
  • Hybrid Composites (Glass + Carbon)
  • Natural Fiber Composites

Manufacturing Processes Covered:

  • Prepreg Layup
  • Vacuum Infusion
  • Resin Transfer Molding (RTM)
  • Hand Layup

Blade Lengths Covered:

  • Small Blades (<30 meters)
  • Medium Blades (30-60 meters)
  • Large Blades (>60 meters)

Applications Covered:

  • Onshore Wind Turbines
  • Offshore Wind Turbines

Regions Covered:

  • North America
    • United States
    • Canada
    • Mexico
  • Europe
    • United Kingdom
    • Germany
    • France
    • Italy
    • Spain
    • Netherlands
    • Belgium
    • Sweden
    • Switzerland
    • Poland
    • Rest of Europe
  • Asia Pacific
    • China
    • Japan
    • India
    • South Korea
    • Australia
    • Indonesia
    • Thailand
    • Malaysia
    • Singapore
    • Vietnam
    • Rest of Asia Pacific
  • South America
    • Brazil
    • Argentina
    • Colombia
    • Chile
    • Peru
    • Rest of South America
  • Rest of the World (RoW)
    • Middle East
  • Saudi Arabia
  • United Arab Emirates
  • Qatar
  • Israel
  • Rest of Middle East
    • Africa
  • South Africa
  • Egypt
  • Morocco
  • Rest of Africa

What our report offers:

  • Market share assessments for the regional and country-level segments
  • Strategic recommendations for the new entrants
  • Covers Market data for the years 2023, 2024, 2025, 2026, 2027, 2028, 2030, 2032 and 2034
  • Market Trends (Drivers, Constraints, Opportunities, Threats, Challenges, Investment Opportunities, and recommendations)
  • Strategic recommendations in key business segments based on the market estimations
  • Competitive landscaping mapping the key common trends
  • Company profiling with detailed strategies, financials, and recent developments
  • Supply chain trends mapping the latest technological advancements

Free Customization Offerings:

All the customers of this report will be entitled to receive one of the following free customization options:

  • Company Profiling
    • Comprehensive profiling of additional market players (up to 3)
    • SWOT Analysis of key players (up to 3)
  • Regional Segmentation
    • Market estimations, Forecasts and CAGR of any prominent country as per the client's interest (Note: Depends on feasibility check)
  • Competitive Benchmarking
    • Benchmarking of key players based on product portfolio, geographical presence, and strategic alliances

Table of Contents

1 Executive Summary

  • 1.1 Market Snapshot and Key Highlights
  • 1.2 Growth Drivers, Challenges, and Opportunities
  • 1.3 Competitive Landscape Overview
  • 1.4 Strategic Insights and Recommendations

2 Research Framework

  • 2.1 Study Objectives and Scope
  • 2.2 Stakeholder Analysis
  • 2.3 Research Assumptions and Limitations
  • 2.4 Research Methodology
    • 2.4.1 Data Collection (Primary and Secondary)
    • 2.4.2 Data Modeling and Estimation Techniques
    • 2.4.3 Data Validation and Triangulation
    • 2.4.4 Analytical and Forecasting Approach

3 Market Dynamics and Trend Analysis

  • 3.1 Market Definition and Structure
  • 3.2 Key Market Drivers
  • 3.3 Market Restraints and Challenges
  • 3.4 Growth Opportunities and Investment Hotspots
  • 3.5 Industry Threats and Risk Assessment
  • 3.6 Technology and Innovation Landscape
  • 3.7 Emerging and High-Growth Markets
  • 3.8 Regulatory and Policy Environment
  • 3.9 Impact of COVID-19 and Recovery Outlook

4 Competitive and Strategic Assessment

  • 4.1 Porter's Five Forces Analysis
    • 4.1.1 Supplier Bargaining Power
    • 4.1.2 Buyer Bargaining Power
    • 4.1.3 Threat of Substitutes
    • 4.1.4 Threat of New Entrants
    • 4.1.5 Competitive Rivalry
  • 4.2 Market Share Analysis of Key Players
  • 4.3 Product Benchmarking and Performance Comparison

5 Global Wind Blade Composite Materials Market, By Resin Type

  • 5.1 Epoxy Resins
  • 5.2 Polyester Resins
  • 5.3 Vinyl Ester Resins
  • 5.4 Thermoplastic Resins

6 Global Wind Blade Composite Materials Market, By Material Type

  • 6.1 Glass Fiber Composites
  • 6.2 Carbon Fiber Composites
  • 6.3 Hybrid Composites (Glass + Carbon)
  • 6.4 Natural Fiber Composites

7 Global Wind Blade Composite Materials Market, By Manufacturing Process

  • 7.1 Prepreg Layup
  • 7.2 Vacuum Infusion
  • 7.3 Resin Transfer Molding (RTM)
  • 7.4 Hand Layup

8 Global Wind Blade Composite Materials Market, By Blade Length

  • 8.1 Small Blades (<30 meters)
  • 8.2 Medium Blades (30-60 meters)
  • 8.3 Large Blades (>60 meters)

9 Global Wind Blade Composite Materials Market, By Application

  • 9.1 Onshore Wind Turbines
  • 9.2 Offshore Wind Turbines

10 Global Wind Blade Composite Materials Market, By Geography

  • 10.1 North America
    • 10.1.1 United States
    • 10.1.2 Canada
    • 10.1.3 Mexico
  • 10.2 Europe
    • 10.2.1 United Kingdom
    • 10.2.2 Germany
    • 10.2.3 France
    • 10.2.4 Italy
    • 10.2.5 Spain
    • 10.2.6 Netherlands
    • 10.2.7 Belgium
    • 10.2.8 Sweden
    • 10.2.9 Switzerland
    • 10.2.10 Poland
    • 10.2.11 Rest of Europe
  • 10.3 Asia Pacific
    • 10.3.1 China
    • 10.3.2 Japan
    • 10.3.3 India
    • 10.3.4 South Korea
    • 10.3.5 Australia
    • 10.3.6 Indonesia
    • 10.3.7 Thailand
    • 10.3.8 Malaysia
    • 10.3.9 Singapore
    • 10.3.10 Vietnam
    • 10.3.11 Rest of Asia Pacific
  • 10.4 South America
    • 10.4.1 Brazil
    • 10.4.2 Argentina
    • 10.4.3 Colombia
    • 10.4.4 Chile
    • 10.4.5 Peru
    • 10.4.6 Rest of South America
  • 10.5 Rest of the World (RoW)
    • 10.5.1 Middle East
      • 10.5.1.1 Saudi Arabia
      • 10.5.1.2 United Arab Emirates
      • 10.5.1.3 Qatar
      • 10.5.1.4 Israel
      • 10.5.1.5 Rest of Middle East
    • 10.5.2 Africa
      • 10.5.2.1 South Africa
      • 10.5.2.2 Egypt
      • 10.5.2.3 Morocco
      • 10.5.2.4 Rest of Africa

11 Strategic Market Intelligence

  • 11.1 Industry Value Network and Supply Chain Assessment
  • 11.2 White-Space and Opportunity Mapping
  • 11.3 Product Evolution and Market Life Cycle Analysis
  • 11.4 Channel, Distributor, and Go-to-Market Assessment

12 Industry Developments and Strategic Initiatives

  • 12.1 Mergers and Acquisitions
  • 12.2 Partnerships, Alliances, and Joint Ventures
  • 12.3 New Product Launches and Certifications
  • 12.4 Capacity Expansion and Investments
  • 12.5 Other Strategic Initiatives

13 Company Profiles

  • 13.1 China National Building Material Group Corporation
  • 13.2 Toray Industries, Inc.
  • 13.3 China Jushi Co., Ltd.
  • 13.4 Exxon Mobil Corporation
  • 13.5 Evonik
  • 13.6 Teijin Limited
  • 13.7 Hexcel Corporation
  • 13.8 Owens Corning
  • 13.9 Gurit Services AG
  • 13.10 SGL Carbon
  • 13.11 Arkema
  • 13.12 Huntsman International LLC
  • 13.13 DowAksa
  • 13.14 Rochling SE & Co. KG
  • 13.15 Exel Composites
  • 13.16 Westlake Chemical
  • 13.17 Olin Corp

List of Tables

  • Table 1 Global Wind Blade Composite Materials Market Outlook, By Region (2023-2034) ($MN)
  • Table 2 Global Wind Blade Composite Materials Market Outlook, By Resin Type (2023-2034) ($MN)
  • Table 3 Global Wind Blade Composite Materials Market Outlook, By Epoxy Resins (2023-2034) ($MN)
  • Table 4 Global Wind Blade Composite Materials Market Outlook, By Polyester Resins (2023-2034) ($MN)
  • Table 5 Global Wind Blade Composite Materials Market Outlook, By Vinyl Ester Resins (2023-2034) ($MN)
  • Table 6 Global Wind Blade Composite Materials Market Outlook, By Thermoplastic Resins (2023-2034) ($MN)
  • Table 7 Global Wind Blade Composite Materials Market Outlook, By Material Type (2023-2034) ($MN)
  • Table 8 Global Wind Blade Composite Materials Market Outlook, By Glass Fiber Composites (2023-2034) ($MN)
  • Table 9 Global Wind Blade Composite Materials Market Outlook, By Carbon Fiber Composites (2023-2034) ($MN)
  • Table 10 Global Wind Blade Composite Materials Market Outlook, By Hybrid Composites (Glass + Carbon) (2023-2034) ($MN)
  • Table 11 Global Wind Blade Composite Materials Market Outlook, By Natural Fiber Composites (2023-2034) ($MN)
  • Table 12 Global Wind Blade Composite Materials Market Outlook, By Manufacturing Process (2023-2034) ($MN)
  • Table 13 Global Wind Blade Composite Materials Market Outlook, By Prepreg Layup (2023-2034) ($MN)
  • Table 14 Global Wind Blade Composite Materials Market Outlook, By Vacuum Infusion (2023-2034) ($MN)
  • Table 15 Global Wind Blade Composite Materials Market Outlook, By Resin Transfer Molding (RTM) (2023-2034) ($MN)
  • Table 16 Global Wind Blade Composite Materials Market Outlook, By Hand Layup (2023-2034) ($MN)
  • Table 17 Global Wind Blade Composite Materials Market Outlook, By Blade Length (2023-2034) ($MN)
  • Table 18 Global Wind Blade Composite Materials Market Outlook, By Small Blades (<30 meters) (2023-2034) ($MN)
  • Table 19 Global Wind Blade Composite Materials Market Outlook, By Medium Blades (30-60 meters) (2023-2034) ($MN)
  • Table 20 Global Wind Blade Composite Materials Market Outlook, By Large Blades (>60 meters) (2023-2034) ($MN)
  • Table 21 Global Wind Blade Composite Materials Market Outlook, By Application (2023-2034) ($MN)
  • Table 22 Global Wind Blade Composite Materials Market Outlook, By Onshore Wind Turbines (2023-2034) ($MN)
  • Table 23 Global Wind Blade Composite Materials Market Outlook, By Offshore Wind Turbines (2023-2034) ($MN)

Note: Tables for North America, Europe, APAC, South America, and Rest of the World (RoW) Regions are also represented in the same manner as above.