시장보고서
상품코드
1841658

풍력 터빈 스크랩 시장 : 세계 산업 규모, 점유율, 동향, 기회, 예측 - 재활용 프로세스별, 부품별, 용도별, 지역별, 경쟁별(2020-2030년)

Wind Turbine Scrap Market - Global Industry Size, Share, Trends, Opportunity, and Forecast, Segmented By Recycling Process, By Component, By Application, By Region & Competition, 2020-2030F

발행일: | 리서치사: TechSci Research | 페이지 정보: 영문 185 Pages | 배송안내 : 2-3일 (영업일 기준)

    
    
    




※ 본 상품은 영문 자료로 한글과 영문 목차에 불일치하는 내용이 있을 경우 영문을 우선합니다. 정확한 검토를 위해 영문 목차를 참고해주시기 바랍니다.

세계의 풍력 터빈 스크랩 시장 규모는 2024년에 84억 6,000만 달러로 평가되었으며, 예측 기간 동안 CAGR 8.93%로 2030년에는 142억 6,000만 달러에 달할 것으로 예측됩니다.

시장 개요
예측 기간 2026-2030년
시장 규모 : 2024년 84억 6,000만 달러
시장 규모 : 2030년 142억 6,000만 달러
CAGR : 2025-2030년 8.93%
급성장 부문 블레이드
최대 시장 유럽

풍력 터빈 스크랩 시장은 블레이드, 타워, 나셀, 발전기 등의 부품을 포함하여 폐기되거나 손상된 풍력 터빈의 재료를 회수, 재활용 및 재사용하는 데 중점을 둔 산업을 말합니다. 지난 20년간 전 세계적으로 풍력에너지가 확대됨에 따라 현재 상당수의 터빈이 수명이 다했거나 수명이 다하여 상당한 양의 폐기물이 발생하고 있습니다.

이 시장은 주로 터빈 폐기물과 관련된 환경 문제, 특히 블레이드에 사용되는 비생분해성 복합재에 대한 환경 문제를 해결하는 한편, 철강, 구리, 알루미늄과 같은 귀중한 금속 채굴을 통해 경제적 기회를 창출할 수 있습니다. 순환 경제에 대한 투자 증가, 매립 제한에 대한 엄격한 환경 규제, 열분해, 기계적 처리, 화학적 회수 등 재활용 기술의 발전으로 시장이 활성화되고 있습니다.

또한, 건설, 자동차, 소비재 산업에서 회수된 재료의 두 번째 용도의 출현은 추가적인 성장을 촉진하고 있습니다. 폐기물 제로화와 생산자 책임 확대를 추진하는 유럽과 북미의 정부 정책은 구조화된 터빈 해체 및 재활용 프로그램의 채택을 가속화하고 있습니다. 또한, 풍력발전 사업자와 거래처 상표 제품 제조업체는 지속가능한 사용 후 제품 관리를 보장하고 환경 발자국을 줄이기 위해 재활용 업체와 파트너십을 맺는 경우가 증가하고 있습니다.

시장은 또한 새로운 풍력발전소의 급속한 설치에 의해 뒷받침되어 향후 사용 후 터빈의 안정적인 공급을 보장합니다. 시멘트 공동 가공 및 인프라 프로젝트에서의 재사용과 같은 블레이드 재활용의 혁신적인 기술은 전통적인 스크랩 관리를 넘어 이 시장의 잠재력을 확장하고 있습니다. 또한, 아시아태평양은 중국, 인도 등의 국가에서 풍력발전 설치량이 많고 산업 폐기물 관련 규제 프레임워크가 발전함에 따라 중요한 성장 지역으로 부상하고 있습니다. 전 세계적으로 청정에너지에 대한 수요가 증가함에 따라 풍력 터빈 스크랩 시장은 꾸준히 성장할 것으로 예상되며, 잠재적인 환경적 부담을 지속가능한 성장을 위한 가치 중심의 기회로 전환할 것으로 예상됩니다.

시장 촉진요인

노후화된 풍력 터빈의 폐로 증가

주요 시장 과제

복합재료를 이용한 블레이드 재활용의 복잡성

주요 시장 동향

블레이드 재활용 솔루션으로 시멘트 공동 처리의 등장

목차

제1장 개요

제2장 조사 방법

제3장 주요 요약

제4장 고객의 소리

제5장 세계의 풍력 터빈 스크랩 시장 전망

  • 시장 규모 및 예측
    • 금액별
  • 시장 점유율과 예측
    • 재활용 방법(기계적 재활용, 서멀 재활용, 화학적 재활용, 매립)
    • 구성요소별(블레이드, 나셀, 타워, 발전기, 기어박스, 기타)
    • 용도별(건설, 자동차, 항공우주, 에너지, 기타)
    • 지역별(북미, 유럽, 남미, 중동 및 아프리카, 아시아태평양)
  • 기업별(2024)
  • 시장 맵

제6장 북미의 풍력 터빈 스크랩 시장 전망

  • 시장 규모 및 예측
  • 시장 점유율과 예측
  • 북미 : 국가별 분석
    • 미국
    • 캐나다
    • 멕시코

제7장 유럽의 풍력 터빈 스크랩 시장 전망

  • 시장 규모 및 예측
  • 시장 점유율과 예측
  • 유럽 : 국가별 분석
    • 독일
    • 프랑스
    • 영국
    • 이탈리아
    • 스페인

제8장 아시아태평양의 풍력 터빈 스크랩 시장 전망

  • 시장 규모 및 예측
  • 시장 점유율과 예측
  • 아시아태평양 : 국가별 분석
    • 중국
    • 인도
    • 일본
    • 한국
    • 호주

제9장 중동 및 아프리카의 풍력 터빈 스크랩 시장 전망

  • 시장 규모 및 예측
  • 시장 점유율과 예측
  • 중동 및 아프리카 : 국가별 분석
    • 사우디아라비아
    • 아랍에미리트
    • 남아프리카공화국

제10장 남미의 풍력 터빈 스크랩 시장 전망

  • 시장 규모 및 예측
  • 시장 점유율과 예측
  • 남미 : 국가별 분석
    • 브라질
    • 콜롬비아
    • 아르헨티나

제11장 시장 역학

  • 성장 촉진요인
  • 과제

제12장 시장 동향과 발전

  • 인수합병
  • 제품 출시
  • 최근 동향

제13장 기업 개요

  • Veolia Environnement S.A
  • LM Wind Power(a GE Renewable Energy business)
  • Gurit Holding AG
  • Suez S.A.
  • TPI Composites, Inc.
  • Carbon Rivers LLC
  • Global Fiberglass Solutions Inc.
  • EDF Renewables
  • Neocomp GmbH
  • Energy Wind & Renewables Group Ltd.

제14장 전략적 제안

제15장 조사 회사 소개 및 면책사항

KSM

Global Wind Turbine Scrap Market was valued at USD 8.46 billion in 2024 and is expected to reach USD 14.26 billion by 2030 with a CAGR of 8.93% during the forecast period.

Market Overview
Forecast Period2026-2030
Market Size 2024USD 8.46 Billion
Market Size 2030USD 14.26 Billion
CAGR 2025-20308.93%
Fastest Growing SegmentBlades
Largest MarketEurope

The Wind Turbine Scrap Market refers to the industry focused on the recovery, recycling, and repurposing of materials from decommissioned or damaged wind turbines, including components such as blades, towers, nacelles, and generators. With the global expansion of wind energy over the past two decades, a significant number of turbines are now approaching or have reached the end of their operational life, creating a substantial volume of waste.

This market primarily addresses environmental concerns related to turbine disposal, especially the non-biodegradable composite materials used in blades, while also unlocking economic opportunities through the extraction of valuable metals such as steel, copper, and aluminum. The market is witnessing a surge in activity due to increased investments in circular economy practices, stringent environmental regulations regarding landfill restrictions, and advancements in recycling technologies such as pyrolysis, mechanical processing, and chemical recovery.

Additionally, the emergence of second-life applications for recovered materials in construction, automotive, and consumer goods industries is driving further growth. Government policies in Europe and North America promoting zero-waste and extended producer responsibility are accelerating the adoption of structured turbine dismantling and recycling programs. Furthermore, wind farm operators and original equipment manufacturers are increasingly entering partnerships with recycling firms to ensure sustainable end-of-life management and reduce their environmental footprint.

The market is also supported by the rapid installation of new wind farms, which ensures a consistent flow of end-of-life turbines in the future. Innovations in blade recycling, such as cement co-processing and reuse in infrastructure projects, are expanding the potential of this market beyond traditional scrap management. In addition, the Asia Pacific region is emerging as a significant growth area, driven by high wind energy installations in countries such as China and India and their evolving regulatory frameworks around industrial waste. As the global push for clean energy intensifies, the Wind Turbine Scrap Market is expected to rise steadily, turning a potential environmental burden into a value-driven opportunity for sustainable growth.

Key Market Drivers

Increasing Decommissioning of Aging Wind Turbines

The global wind energy sector has seen substantial growth over the past few decades, resulting in a significant number of wind turbines approaching the end of their operational lifespans, typically 20-25 years. As these turbines are decommissioned, the volume of scrap materials, including metals, composites, and other components, is rising, driving the demand for specialized scrap management and recycling services.

The surge in decommissioning is fueled by the rapid expansion of wind energy installations in the early 2000s, particularly in regions like Europe and North America, where early-generation turbines are now being retired. Governments and energy companies are prioritizing sustainable disposal and recycling to mitigate environmental impacts, aligning with global sustainability goals. This trend is amplified by the need to replace older, less efficient turbines with advanced models, further increasing scrap volumes.

The Wind Turbine Scrap Market benefits from this cyclical turnover, as operators seek cost-effective and environmentally responsible solutions for end-of-life turbine management. Technological advancements in recycling processes, such as mechanical and thermal methods, are enhancing the feasibility of handling complex composite materials, making the market more viable. Additionally, regulatory frameworks are pushing for responsible waste management, compelling operators to engage with scrap market services to comply with environmental standards.

The International Renewable Energy Agency (IRENA) reports that global wind power capacity reached 837 gigawatts by 2022, with approximately 30% of installed turbines over 15 years old. By 2030, an estimated 100,000 turbines worldwide will require decommissioning, generating over 10 million tons of scrap materials, including 2.5 million tons of composite blades, necessitating robust scrap management solutions.

Key Market Challenges

Complexity in Blade Recycling Due to Composite Materials

One of the most pressing challenges facing the Wind Turbine Scrap Market is the technical and logistical complexity involved in recycling wind turbine blades, primarily due to the materials used in their construction. Unlike towers and nacelles, which are predominantly made of recyclable metals such as steel and copper, wind turbine blades are manufactured using composite materials such as fiberglass-reinforced polymers, carbon fibers, and epoxy resins. These materials are chosen for their strength-to-weight ratio, durability, and resistance to fatigue. However, these same properties pose substantial difficulties in mechanical or chemical breakdown at the end of the blade's service life.

Traditional recycling methods, such as mechanical grinding or incineration, are often unsuitable for composite materials. Mechanical grinding reduces the material to filler-grade substances, which significantly diminishes their economic value and limits reuse applications. Incineration, on the other hand, can lead to the release of hazardous emissions and is not considered environmentally sustainable. While alternative methods such as pyrolysis, fluidized bed processing, and cement co-processing are being developed and piloted, they remain capital-intensive and have not yet achieved widespread commercial scalability. These processes often require high temperatures and complex machinery, and in some cases, they fail to retain the integrity of the recovered materials, making them unsuitable for high-value applications.

Furthermore, the size and structure of turbine blades, which can exceed 80 meters in length, pose logistical hurdles in transportation and dismantling. Specialized equipment, trained labor, and careful dismantling protocols are required, particularly when blades are located in remote or offshore wind farms. This increases operational costs, delays project timelines, and reduces the overall profitability of recycling operations. The lack of standardized blade designs across manufacturers also adds variability, requiring customized recycling approaches that further complicate economies of scale. Consequently, a significant portion of decommissioned blades still ends up in landfills, undermining sustainability goals and limiting market potential. Until scalable, cost-effective, and environmentally sound solutions for composite blade recycling are developed and implemented, this issue will remain a major impediment to the growth of the Wind Turbine Scrap Market.

Key Market Trends

Emergence of Cement Co-processing as a Blade Recycling Solution

One of the most notable trends in the Wind Turbine Scrap Market is the increasing adoption of cement co-processing as a viable solution for recycling wind turbine blades. Traditional recycling methods struggle to efficiently process the composite materials used in blade construction, such as fiberglass and epoxy resins. Cement co-processing presents a practical alternative by utilizing shredded turbine blade materials as a substitute for raw materials and fossil fuels in cement kilns. This process not only diverts composite waste from landfills but also contributes to energy savings and a reduction in carbon dioxide emissions within the cement industry.

Major recycling companies and cement manufacturers are now forming strategic collaborations to establish supply chains that support this process. For instance, several leading wind turbine original equipment manufacturers in Europe and North America have entered into agreements with cement firms to manage end-of-life blades through co-processing. These partnerships allow for the integration of sustainability goals across industries and align with the principles of the circular economy.

Moreover, regulatory bodies in Europe are increasingly recognizing cement co-processing as an environmentally responsible disposal method. This has led to the implementation of supportive policy frameworks that incentivize its use and provide the necessary environmental approvals. As a result, cement co-processing is gaining traction as a scalable and economically feasible solution in regions where landfill restrictions are tightening and environmental accountability is becoming more stringent.

Despite the progress, logistical challenges such as blade transportation and preprocessing remain. Nevertheless, the growing number of demonstration projects and full-scale commercial operations using cement co-processing indicate a clear market shift toward this technique. The long-term trend suggests that this method will become an integral component of turbine blade recycling strategies, especially as regulatory pressure and environmental awareness continue to rise. Overall, cement co-processing is positioned to play a central role in shaping the future of wind turbine blade disposal and recycling within the Wind Turbine Scrap Market.

Key Market Players

  • Veolia Environnement S.A.
  • LM Wind Power (a GE Renewable Energy business)
  • Gurit Holding AG
  • Suez S.A.
  • TPI Composites, Inc.
  • Carbon Rivers LLC
  • Global Fiberglass Solutions Inc.
  • EDF Renewables
  • Neocomp GmbH
  • Energy Wind & Renewables Group Ltd.

Report Scope:

In this report, the Global Wind Turbine Scrap Market has been segmented into the following categories, in addition to the industry trends which have also been detailed below:

Wind Turbine Scrap Market, By Recycling Process:

  • Mechanical Recycling
  • Thermal Recycling
  • Chemical Recycling
  • Landfilling

Wind Turbine Scrap Market, By Component:

  • Blades
  • Nacelle
  • Tower
  • Generator
  • Gearbox
  • Others

Wind Turbine Scrap Market, By Application:

  • Construction
  • Commercial
  • Aerospace
  • Energy
  • Others

Wind Turbine Scrap Market, By Region:

  • North America
    • United States
    • Canada
    • Mexico
  • Europe
    • Germany
    • France
    • United Kingdom
    • Italy
    • Spain
  • South America
    • Brazil
    • Argentina
    • Colombia
  • Asia-Pacific
    • China
    • India
    • Japan
    • South Korea
    • Australia
  • Middle East & Africa
    • Saudi Arabia
    • UAE
    • South Africa

Competitive Landscape

Company Profiles: Detailed analysis of the major companies present in the Global Wind Turbine Scrap Market.

Available Customizations:

Global Wind Turbine Scrap Market report with the given market data, TechSci Research offers customizations according to a company's specific needs. The following customization options are available for the report:

Company Information

  • Detailed analysis and profiling of additional market players (up to five).

Table of Contents

1. Product Overview

  • 1.1. Market Definition
  • 1.2. Scope of the Market
    • 1.2.1. Markets Covered
    • 1.2.2. Years Considered for Study
    • 1.2.3. Key Market Segmentations

2. Research Methodology

  • 2.1. Objective of the Study
  • 2.2. Baseline Methodology
  • 2.3. Key Industry Partners
  • 2.4. Major Association and Secondary Sources
  • 2.5. Forecasting Methodology
  • 2.6. Data Triangulation & Validation
  • 2.7. Assumptions and Limitations

3. Executive Summary

  • 3.1. Overview of the Market
  • 3.2. Overview of Key Market Segmentations
  • 3.3. Overview of Key Market Players
  • 3.4. Overview of Key Regions/Countries
  • 3.5. Overview of Market Drivers, Challenges, and Trends

4. Voice of Customer

5. Global Wind Turbine Scrap Market Outlook

  • 5.1. Market Size & Forecast
    • 5.1.1. By Value
  • 5.2. Market Share & Forecast
    • 5.2.1. By Recycling Process (Mechanical Recycling, Thermal Recycling, Chemical Recycling, Landfilling)
    • 5.2.2. By Component (Blades, Nacelle, Tower, Generator, Gearbox, Others)
    • 5.2.3. By Application (Construction, Automotive, Aerospace, Energy, Others)
    • 5.2.4. By Region (North America, Europe, South America, Middle East & Africa, Asia Pacific)
  • 5.3. By Company (2024)
  • 5.4. Market Map

6. North America Wind Turbine Scrap Market Outlook

  • 6.1. Market Size & Forecast
    • 6.1.1. By Value
  • 6.2. Market Share & Forecast
    • 6.2.1. By Recycling Process
    • 6.2.2. By Component
    • 6.2.3. By Application
    • 6.2.4. By Country
  • 6.3. North America: Country Analysis
    • 6.3.1. United States Wind Turbine Scrap Market Outlook
      • 6.3.1.1. Market Size & Forecast
        • 6.3.1.1.1. By Value
      • 6.3.1.2. Market Share & Forecast
        • 6.3.1.2.1. By Recycling Process
        • 6.3.1.2.2. By Component
        • 6.3.1.2.3. By Application
    • 6.3.2. Canada Wind Turbine Scrap Market Outlook
      • 6.3.2.1. Market Size & Forecast
        • 6.3.2.1.1. By Value
      • 6.3.2.2. Market Share & Forecast
        • 6.3.2.2.1. By Recycling Process
        • 6.3.2.2.2. By Component
        • 6.3.2.2.3. By Application
    • 6.3.3. Mexico Wind Turbine Scrap Market Outlook
      • 6.3.3.1. Market Size & Forecast
        • 6.3.3.1.1. By Value
      • 6.3.3.2. Market Share & Forecast
        • 6.3.3.2.1. By Recycling Process
        • 6.3.3.2.2. By Component
        • 6.3.3.2.3. By Application

7. Europe Wind Turbine Scrap Market Outlook

  • 7.1. Market Size & Forecast
    • 7.1.1. By Value
  • 7.2. Market Share & Forecast
    • 7.2.1. By Recycling Process
    • 7.2.2. By Component
    • 7.2.3. By Application
    • 7.2.4. By Country
  • 7.3. Europe: Country Analysis
    • 7.3.1. Germany Wind Turbine Scrap Market Outlook
      • 7.3.1.1. Market Size & Forecast
        • 7.3.1.1.1. By Value
      • 7.3.1.2. Market Share & Forecast
        • 7.3.1.2.1. By Recycling Process
        • 7.3.1.2.2. By Component
        • 7.3.1.2.3. By Application
    • 7.3.2. France Wind Turbine Scrap Market Outlook
      • 7.3.2.1. Market Size & Forecast
        • 7.3.2.1.1. By Value
      • 7.3.2.2. Market Share & Forecast
        • 7.3.2.2.1. By Recycling Process
        • 7.3.2.2.2. By Component
        • 7.3.2.2.3. By Application
    • 7.3.3. United Kingdom Wind Turbine Scrap Market Outlook
      • 7.3.3.1. Market Size & Forecast
        • 7.3.3.1.1. By Value
      • 7.3.3.2. Market Share & Forecast
        • 7.3.3.2.1. By Recycling Process
        • 7.3.3.2.2. By Component
        • 7.3.3.2.3. By Application
    • 7.3.4. Italy Wind Turbine Scrap Market Outlook
      • 7.3.4.1. Market Size & Forecast
        • 7.3.4.1.1. By Value
      • 7.3.4.2. Market Share & Forecast
        • 7.3.4.2.1. By Recycling Process
        • 7.3.4.2.2. By Component
        • 7.3.4.2.3. By Application
    • 7.3.5. Spain Wind Turbine Scrap Market Outlook
      • 7.3.5.1. Market Size & Forecast
        • 7.3.5.1.1. By Value
      • 7.3.5.2. Market Share & Forecast
        • 7.3.5.2.1. By Recycling Process
        • 7.3.5.2.2. By Component
        • 7.3.5.2.3. By Application

8. Asia Pacific Wind Turbine Scrap Market Outlook

  • 8.1. Market Size & Forecast
    • 8.1.1. By Value
  • 8.2. Market Share & Forecast
    • 8.2.1. By Recycling Process
    • 8.2.2. By Component
    • 8.2.3. By Application
    • 8.2.4. By Country
  • 8.3. Asia Pacific: Country Analysis
    • 8.3.1. China Wind Turbine Scrap Market Outlook
      • 8.3.1.1. Market Size & Forecast
        • 8.3.1.1.1. By Value
      • 8.3.1.2. Market Share & Forecast
        • 8.3.1.2.1. By Recycling Process
        • 8.3.1.2.2. By Component
        • 8.3.1.2.3. By Application
    • 8.3.2. India Wind Turbine Scrap Market Outlook
      • 8.3.2.1. Market Size & Forecast
        • 8.3.2.1.1. By Value
      • 8.3.2.2. Market Share & Forecast
        • 8.3.2.2.1. By Recycling Process
        • 8.3.2.2.2. By Component
        • 8.3.2.2.3. By Application
    • 8.3.3. Japan Wind Turbine Scrap Market Outlook
      • 8.3.3.1. Market Size & Forecast
        • 8.3.3.1.1. By Value
      • 8.3.3.2. Market Share & Forecast
        • 8.3.3.2.1. By Recycling Process
        • 8.3.3.2.2. By Component
        • 8.3.3.2.3. By Application
    • 8.3.4. South Korea Wind Turbine Scrap Market Outlook
      • 8.3.4.1. Market Size & Forecast
        • 8.3.4.1.1. By Value
      • 8.3.4.2. Market Share & Forecast
        • 8.3.4.2.1. By Recycling Process
        • 8.3.4.2.2. By Component
        • 8.3.4.2.3. By Application
    • 8.3.5. Australia Wind Turbine Scrap Market Outlook
      • 8.3.5.1. Market Size & Forecast
        • 8.3.5.1.1. By Value
      • 8.3.5.2. Market Share & Forecast
        • 8.3.5.2.1. By Recycling Process
        • 8.3.5.2.2. By Component
        • 8.3.5.2.3. By Application

9. Middle East & Africa Wind Turbine Scrap Market Outlook

  • 9.1. Market Size & Forecast
    • 9.1.1. By Value
  • 9.2. Market Share & Forecast
    • 9.2.1. By Recycling Process
    • 9.2.2. By Component
    • 9.2.3. By Application
    • 9.2.4. By Country
  • 9.3. Middle East & Africa: Country Analysis
    • 9.3.1. Saudi Arabia Wind Turbine Scrap Market Outlook
      • 9.3.1.1. Market Size & Forecast
        • 9.3.1.1.1. By Value
      • 9.3.1.2. Market Share & Forecast
        • 9.3.1.2.1. By Recycling Process
        • 9.3.1.2.2. By Component
        • 9.3.1.2.3. By Application
    • 9.3.2. UAE Wind Turbine Scrap Market Outlook
      • 9.3.2.1. Market Size & Forecast
        • 9.3.2.1.1. By Value
      • 9.3.2.2. Market Share & Forecast
        • 9.3.2.2.1. By Recycling Process
        • 9.3.2.2.2. By Component
        • 9.3.2.2.3. By Application
    • 9.3.3. South Africa Wind Turbine Scrap Market Outlook
      • 9.3.3.1. Market Size & Forecast
        • 9.3.3.1.1. By Value
      • 9.3.3.2. Market Share & Forecast
        • 9.3.3.2.1. By Recycling Process
        • 9.3.3.2.2. By Component
        • 9.3.3.2.3. By Application

10. South America Wind Turbine Scrap Market Outlook

  • 10.1. Market Size & Forecast
    • 10.1.1. By Value
  • 10.2. Market Share & Forecast
    • 10.2.1. By Recycling Process
    • 10.2.2. By Component
    • 10.2.3. By Application
    • 10.2.4. By Country
  • 10.3. South America: Country Analysis
    • 10.3.1. Brazil Wind Turbine Scrap Market Outlook
      • 10.3.1.1. Market Size & Forecast
        • 10.3.1.1.1. By Value
      • 10.3.1.2. Market Share & Forecast
        • 10.3.1.2.1. By Recycling Process
        • 10.3.1.2.2. By Component
        • 10.3.1.2.3. By Application
    • 10.3.2. Colombia Wind Turbine Scrap Market Outlook
      • 10.3.2.1. Market Size & Forecast
        • 10.3.2.1.1. By Value
      • 10.3.2.2. Market Share & Forecast
        • 10.3.2.2.1. By Recycling Process
        • 10.3.2.2.2. By Component
        • 10.3.2.2.3. By Application
    • 10.3.3. Argentina Wind Turbine Scrap Market Outlook
      • 10.3.3.1. Market Size & Forecast
        • 10.3.3.1.1. By Value
      • 10.3.3.2. Market Share & Forecast
        • 10.3.3.2.1. By Recycling Process
        • 10.3.3.2.2. By Component
        • 10.3.3.2.3. By Application

11. Market Dynamics

  • 11.1. Drivers
  • 11.2. Challenges

12. Market Trends and Developments

  • 12.1. Merger & Acquisition (If Any)
  • 12.2. Product Launches (If Any)
  • 12.3. Recent Developments

13. Company Profiles

  • 13.1. Veolia Environnement S.A
    • 13.1.1. Business Overview
    • 13.1.2. Key Revenue and Financials
    • 13.1.3. Recent Developments
    • 13.1.4. Key Personnel
    • 13.1.5. Key Product/Services Offered
  • 13.2. LM Wind Power (a GE Renewable Energy business)
  • 13.3. Gurit Holding AG
  • 13.4. Suez S.A.
  • 13.5. TPI Composites, Inc.
  • 13.6. Carbon Rivers LLC
  • 13.7. Global Fiberglass Solutions Inc.
  • 13.8. EDF Renewables
  • 13.9. Neocomp GmbH
  • 13.10. Energy Wind & Renewables Group Ltd.

14. Strategic Recommendations

15. About Us & Disclaimer

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