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Global
July 2026

Global Fiber Reinforced Plastic (FRP) Recycling Market Size, Share & Forecast, By Material, Technology & End Use, 2026-2031

2031

The Global Fiber Reinforced Plastic Recycling Market worth USD 588 million in 2025 is growing at a CAGR of 8.74% to reach USD 974 million by 2031. Gen 2 Carbon Limited, Carbon Conversions, Vartega Inc., Fairmat and Composite Recycling SA are the major companies operating in this market.

Report Details

Base Year

2025

Pages

92

Region

Global

Author

Ken Research

Product Code
KR-RPT-V02-04391

CHAPTER 1 - MARKET SUMMARY

Market Overview

The Global Fiber Reinforced Plastic (FRP) Recycling Market converts manufacturing scrap and end-of-life composite components into reusable fibers, fillers, polymer fractions and energy carriers. Demand is anchored by a recycling volume of 125.18 kilotons in 2025, with glass fiber feedstock representing the largest tonnage pool and carbon fiber creating the highest value per kilogram.

Europe remains the dominant operating hub because mature wind fleets, automotive dismantling systems and composite manufacturing clusters create concentrated feedstock. WindEurope states that wind blades represented only 5% of total composite waste by end-2025, indicating that marine, construction, transport and industrial scrap collectively form the broader addressable supply base for recyclers.

Market Value

USD 588 million

2025

Dominant Region

Europe

2025

Dominant Segment

Glass Fiber Recycling

largest by volume, 2025

Total Number of Players

26

Future Outlook

The market is projected to advance from USD 641 million in 2026 to USD 974 million by 2031, representing an 8.74% forecast CAGR. Growth will be supported by higher retirement volumes from wind blades, stricter landfill and producer-responsibility requirements, and stronger procurement demand for recycled carbon and glass fibers. The historical CAGR of 7.74% during 2020-2025 reflected early industrialization, with mechanical recycling and cement co-processing dominating glass-fiber waste. Through 2031, value growth should increasingly reflect higher-quality fiber recovery, better feedstock contracts and qualification of recycled materials in automotive, mobility, infrastructure and industrial applications.

Profit pools are expected to shift toward recyclers that can secure predictable waste streams and sell consistent secondary materials rather than charge only gate fees. Chemical recycling and controlled thermolysis should outgrow basic size-reduction methods because they recover fibers, resin-derived oil and gas with higher monetization potential. Carbon-fiber recycling will remain smaller by tonnage but materially stronger by unit economics, while glass-fiber recycling will retain scale leadership. The principal execution constraints are collection logistics, contamination, variable resin systems and limited standardized specifications. Operators integrating preprocessing, traceability, testing and offtake agreements will be better positioned to capture durable margins and reduce exposure to volatile spot pricing.

8.74%

Forecast CAGR

$974 Mn

2030 Projection

Base Year

2025

Historical Period

2020-2025

Forecast Period

2026-2031

Historical CAGR

7.74%

CHAPTER 2 - SCOPE OF REPORT

Scope of the Market

Click to Explore Interactive Mind Map

CHAPTER 3 - Key Stakeholders

Key Target Audience

Key stakeholders who can leverage from this market analysis for investment, strategy, and operational planning.

Investors

CAGR, capacity utilization, feedstock security, margin risk

Corporates

recycled content, material qualification, procurement cost, traceability

Government

landfill diversion, circularity, compliance, industrial resilience

Operators

throughput, recovery yield, contamination, offtake stability

Financial institutions

project finance, contracts, technology risk, cash flow

What You'll Gain

  • Market sizing and trajectory
  • Policy and compliance mapping
  • Feedstock and output economics
  • Segment structure and levers
  • Competitive landscape shortlist
  • CEO-grade risk priorities

80+

Pages of insights

CHAPTER 4 - Market Size & Growth

Market Size, Growth Forecast and Trends

This section evaluates the historical market size, analyzes year-over-year growth dynamics, and presents forecast projections supported by market performance indicators and demand-side drivers.

Historical & Projected Market Size ($ Million)

Year-over-Year Growth Rate (%)

Market Value vs Volume Growth (%)

Historical Market Performance (2020-2025)

Historical expansion accelerated after 2022 as composite waste contracts became more structured and recyclers moved beyond disposal-only models. The strongest annual increase occurred in 2024 at 9.7%, while the lowest growth was 6.2% in 2021. Recycled volume rose from 88.0 kilotons in 2020 to 125.18 kilotons in 2025. Carbon-fiber streams contributed disproportionate value because recovered material can substitute higher-cost virgin reinforcement, while glass-fiber waste remained the largest tonnage pool. Manufacturing scrap supplied cleaner, more consistent feedstock than end-of-life components, supporting better yield and pricing.

Forecast Market Outlook (2026-2031)

Forecast revenue is expected to rise from USD 641 million in 2026 to USD 974 million in 2031 at an 8.74% CAGR. Recycled volume is modeled to reach 213.9 kilotons by 2031, while average recovery value moderates toward USD 4.55 per kilogram as glass-fiber processing scales. Chemical and thermal routes should gain mix share because they recover higher-quality fibers and resin-derived outputs. Growth is expected to remain above 8.7% annually, supported by decommissioning pipelines, recycled-content mandates and long-term offtake agreements between recyclers, compounders and OEMs.

CHAPTER 5 - Market Data

Market Breakdown

The market is moving from fragmented waste treatment toward contracted secondary-material production. For CEOs and investors, value creation depends on feedstock security, recovery yield, qualification cycles and the ability to monetize multiple outputs from each tonne processed.

Market Breakdown

Historical Data (2020-2024) • Base Data (2025) • Forecast Data (2026-2031)

Year
Market Size (USD Mn)
YoY Growth (%)
Recycled FRP Volume (kt)
Average Recovery Value (USD/kg)
Wind Blade Feedstock Share (%)
Period
2020$405 Mn+-88.004.60
$#%
Forecast
2021$430 Mn+6.2%93.504.60
$#%
Forecast
2022$457 Mn+6.3%100.004.57
$#%
Forecast
2023$493 Mn+7.9%107.004.61
$#%
Forecast
2024$541 Mn+9.7%115.004.70
$#%
Forecast
2025$588 Mn+8.7%125.184.70
$#%
Forecast
2026$641 Mn+9.0%136.204.71
$#%
Forecast
2027$697 Mn+8.7%148.404.70
$#%
Forecast
2028$758 Mn+8.8%161.704.69
$#%
Forecast
2029$824 Mn+8.7%176.204.68
$#%
Forecast
2030$896 Mn+8.7%195.634.58
$#%
Forecast
2031$974 Mn+8.7%213.904.55
$#%
Forecast

Recycled FRP Volume

125.18 kilotons, 2025, global market. Scale improves equipment utilization and spreads testing costs across more output. Public market tracking projects 195.63 kilotons by 2030, reinforcing the case for staged capacity expansion.

Average Recovery Value

USD 4.70 per kilogram, 2025, global market. Margin depends on fiber quality and product form rather than throughput alone. Vartega reports over 2,000 tonnes of capacity and positions recycled carbon fiber as a lower-cost substitute with 96%-99% lower carbon footprint.

Wind Blade Feedstock Share

23%, 2025, modeled global feedstock. Wind offers visible retirement schedules but is not the only feedstock source. WindEurope estimates wind represented 5% of total composite waste by end-2025, so diversified intake remains essential.

CHAPTER 6 - Segmentation

Market Segmentation Framework

Comprehensive analysis across key dimensions providing insights into market structure, buyer requirements, recovery economics and route-to-market patterns.

No of Segments

7

Dominant Segment

Fiber Type

Fastest Growing Segment

Recycling Technology

Fiber Type

Glass Fiber
$%
Carbon Fiber
$%
Aramid Fiber
$%
Hybrid Fiber
$%

Recycling Technology

Mechanical Recycling
$%
Thermal Recycling
$%
Chemical Recycling
$%
Co-processing and Energy Recovery
$%

Waste Source

Manufacturing Scrap
$%
End-of-Life Wind Blades
$%
Automotive and Transport Components
$%
Aerospace and Marine Components
$%
Construction and Industrial Products
$%

Recovered Output

Recycled Fibers
$%
Recycled Polymer Fractions
$%
Composite Fillers and Flakes
$%
Pyrolysis Oil and Gas
$%

End-Use Industry

Automotive and Transportation
$%
Construction and Infrastructure
$%
Wind Energy
$%
Aerospace and Marine
$%
Consumer and Sporting Goods
$%

Customer Type

Composite Manufacturers
$%
OEMs and Tier Suppliers
$%
Waste Management Companies
$%
Material Compounders
$%
Construction Product Producers
$%

Sales Channel

Direct Offtake Agreements
$%
Toll Recycling Contracts
$%
Distributor and Compounder Sales
$%
Technology Licensing
$%
Project-Based Partnerships
$%

Key Segmentation Takeaways

Comprehensive analysis across all extracted segmentation dimensions providing insights into market structure, buyer requirements and distribution patterns.

Fiber Type

Glass fiber dominates market volume because it is widely used in wind blades, boats, construction profiles, tanks and industrial products. Carbon fiber remains the premium value pool, supported by aerospace and automotive scrap with higher recoverable material value. Commercial strategies should separate high-throughput glass-fiber economics from quality-sensitive carbon-fiber qualification and product-form requirements.

Recycling Technology

Chemical recycling is expected to grow fastest as operators seek higher fiber retention, resin recovery and closed-loop applications. Mechanical recycling remains the lowest-capex route for fillers and compounds, while thermal processing is commercially important for carbon fiber. Technology selection will increasingly depend on feedstock chemistry, output qualification, emissions control and contracted end-market demand.

CHAPTER 7 - Regional Analysis

Regional Analysis

Europe leads the global market through mature composite manufacturing clusters, wind decommissioning activity and stronger circularity policy. North America combines high-value carbon-fiber scrap with growing federal support, while Asia-Pacific offers the largest long-term feedstock expansion because of wind, transport and industrial composite growth.

Largest Regional Market

Europe

Largest Regional Market Size (2025)

USD 188 Mn

Fastest Regional CAGR (2026-2031)

Asia-Pacific, 10.1%

Regional Analysis (Current Year)

Regional Analysis Comparison

MetricEuropeNorth AmericaAsia-PacificLatin AmericaMiddle East and Africa
Market SizeUSD 188 MnUSD 147 MnUSD 141 MnUSD 59 MnUSD 53 Mn
CAGR (%)8.0%9.2%10.1%7.5%7.0%
FRP Waste Feedstock (kt, 2025E)4836351513
Commercial and Pilot Recycling Sites (2025E)31242297

Market Position

Europe ranks first with an estimated USD 188 million in 2025, supported by the industry commitment to reuse, recycle or recover decommissioned blades and broader composite waste.

Growth Advantage

Asia-Pacific leads growth at 10.1%, ahead of North America at 9.2% and Europe at 8.0%, reflecting faster additions to wind and transport composite stock.

Competitive Strengths

Europe combines an 11.8% circular material use rate, a 24% target for 2030 and product-design rules that strengthen traceability, recyclability and secondary-material demand.

CHAPTER 8 - INDUSTRY ANALYSIS

Growth Drivers, Challenges & Opportunities

Comprehensive analysis of key factors shaping the Global Fiber Reinforced Plastic (FRP) Recycling Market, including growth catalysts, operational challenges, and emerging opportunities across collection, processing, recovered materials and end-use segments.

Growth Drivers

Expanding End-of-Life Composite Feedstock

  • Annual wind additions reached 164 GW (2025, global), expanding future retirement volumes and improving the case for regional preprocessing and recycling hubs.
  • Research estimates cumulative blade waste could reach 43 million tonnes (2050, global), supporting long-duration demand for transport, cutting and material-recovery services.
  • Europe treats more than 6 million end-of-life vehicles annually (current EU scope), adding transport composite waste and creating potential closed-loop streams for recycled reinforcement.

Regulation and Producer Responsibility

  • New vehicle types must contain 15% post-consumer recycled plastic from 2032 (European Union), creating future offtake opportunities for qualified recycled polymer and composite fractions.
  • The vehicle target rises to 25% recycled plastic from 2036 (European Union), encouraging OEMs to develop traceable supply chains and invest in material qualification.
  • Ecodesign rules have applied since 18 July 2024 (European Union), enabling requirements on recycled content, durability, recyclability and digital product information.

Technology Funding and Commercial Scale-Up

  • A separate prize awarded USD 3.6 million (2024, United States) to six teams advancing cost-effective wind material recycling technologies.
  • Vartega reports capacity above 2,000 metric tons (2024, North America), demonstrating that recycled carbon fiber is moving from pilot supply toward industrial volume.
  • Fairmat operates 3 industrial plants (2026, global operations), showing how automation and digital traceability can support multi-region processing and customer qualification.

Market Challenges

Unfavorable Disposal Economics

  • United States blade waste could reach 2.2 million tons by 2050, yet low landfill costs reduce immediate commercial pressure for advanced recovery.
  • Approximately 85%-90% of turbine mass (current United States) is already commercially recyclable, concentrating innovation needs on lower-volume composite fractions with harder economics.
  • Wind blades represented only 5% of total composite waste by end-2025 (Europe), making feedstock aggregation across multiple industries essential for efficient facility utilization.

Material Heterogeneity and Quality Loss

  • Mechanical processing often produces short fibers and mixed filler fractions (current technology scope), reducing suitability for high-load structural applications and compressing selling prices.
  • Thermolysis requires oxygen-free heat treatment (current process design), adding energy, emissions-control and post-treatment requirements that increase capital intensity.
  • Recovered carbon fiber must meet application-specific strength, sizing and length specifications (current industrial procurement), extending qualification cycles and slowing customer conversion.

Logistics and Feedstock Variability

  • Blade size drives high transport cost, so mobile systems designed for 30-foot container deployment (current Switzerland technology) are being developed to process waste near stockpiles.
  • Manufacturing and service waste can add 16%-45% beyond blade mass (lifecycle estimate, global), but these streams differ in contamination and collection economics.
  • Europe could generate 325,000 tonnes of annual blade waste by 2050, but country-level volumes fluctuate, increasing risk for fixed-location capacity planning.

Market Opportunities

High-Value Recycled Carbon Fiber

  • Monetization improves where operators sell 3 standardized material formats (2024, Vartega), including bundles, chopped fiber and compounded thermoplastics rather than undifferentiated recyclate.
  • OEMs and compounders benefit from equivalent chopped-fiber performance claims (2024, North America), which can shorten substitution decisions in non-critical parts.
  • Scale requires long-term scrap contracts and qualification data; Fairmat reports more than EUR 50 million in contracted revenue (2026, company disclosure), indicating customer willingness to secure supply.

Distributed and Mobile Recycling

  • Revenue can combine gate fees, reclaimed fiber sales and oil recovery from multiple output streams (current process model), improving economics versus single-product mechanical recycling.
  • Wind developers, boatyards and industrial parks benefit because on-site preprocessing can avoid hauling oversized blade and hull sections (current logistics constraint) over long distances.
  • Commercial adoption requires harmonized permits, emissions controls and offtake standards across multiple jurisdictions (2026 global market), making partnerships with waste operators strategically important.

Closed-Loop OEM Partnerships

  • Automotive OEMs can secure traceable secondary materials through multi-year contracts aligned with the 15% recycled-plastic threshold from 2032.
  • Recyclers benefit from predictable volumes and qualification support, while Tier suppliers can reduce material risk before the target increases to 25% from 2036.
  • Material passports can record composition and recycling capability under rules applied since 18 July 2024, improving sorting, chain-of-custody and verified recycled-content claims.

CHAPTER 9 - Competitive Landscape

Competitive Landscape Overview

The market remains fragmented, with specialized recyclers competing on feedstock access, recovery yield, product qualification and regional logistics. Entry barriers are moderate in mechanical recycling but substantially higher in thermal and chemical routes requiring process control, emissions management and stable offtake.

Market Share Distribution

Gen 2 Carbon Limited
Carbon Conversions, Inc.
Vartega Inc.
Fairmat

Top 5 Players

1
Gen 2 Carbon Limited
!$*
2
Carbon Conversions, Inc.
^&
3
Vartega Inc.
#@
4
Fairmat
$
5
Composite Recycling SA
&@$
Combined Share$%

Market Dynamics

Local Players70%
Regional/Int'l30%

8 new entrants in the past 5 years, indicating strong market attractiveness and growth potential.

Company Profiles (Top 10 Players)
Company Name
Market Share
Headquarters
Founding Year
Core Market Focus
Gen 2 Carbon Limited
-Coseley, United Kingdom2004Pyrolysis-based recycled carbon fiber and nonwoven products
Carbon Conversions, Inc.
-Lake City, United States-Carbon fiber reclamation and advanced recycled material forms
Vartega Inc.
-Denver, United States2014Recycled carbon fiber bundles, chopped fiber and compounds
Fairmat
-Paris, France2020Automated carbon composite recycling and recycled laminates
Composite Recycling SA
-Ecublens, Switzerland2021Mobile thermolysis for glass and carbon fiber composites
Conenor Ltd
-Lahti, Finland1995GFRP waste agglomeration and technology licensing
neocomp GmbH
-Bremen, Germany-Composite waste processing and cement-industry recovery routes
Karborek Recycling Carbon Fibers
-Brindisi, Italy-Recovered carbon fiber production from composite waste
Ucomposites A/S
-Vojens, Denmark-Composite waste recycling and secondary composite materials
Carbon Fiber Recycle Industry Co., Ltd.
-Japan-Carbon fiber recovery and recycled fiber supply

Cross Comparison Parameters

The report provides detailed cross-comparison of key players across 10 performance parameters to identify competitive strengths and weaknesses.

1

Recovered Fiber Yield

2

Processing Throughput

3

Sector-Specific Revenue Growth

4

EBITDA Margin

Analysis Covered

Market Share Analysis:

Benchmarks revenue position across specialized global and regional recyclers.

Cross Comparison Matrix:

Compares capacity, technology, output quality and commercial scalability.

SWOT Analysis:

Evaluates feedstock access, process risk, partnerships and expansion.

Pricing Strategy Analysis:

Assesses gate fees, fiber pricing and contract structures.

Company Profiles:

Reviews capabilities, geographic presence, technology and customer focus.

CHAPTER 10 - REPORT TOC

Table of Contents

92Pages
34Chapters
10Companies Profiled
7Segmentation Types

Phase 1
Market Assessment Phase

11

Chapters

Supply-side and competitive intelligence covering market sizing, segmentation, competitive dynamics, regulatory landscape, and future forecasts.

Phase 2
Go-To-Market Strategy Phase

15

Chapters

Entry strategy evaluation, execution roadmap, partner recommendations, and profitability outlook.

Complete Report Coverage

201+ detailed sections covering every aspect of the market

143

Assessment Sections

58

Strategy Sections

CHAPTER 11 - Our Approach

Research Methodology

Desk Research

  • Composite waste volume mapping
  • Recycling technology capacity benchmarking
  • Policy and landfill review
  • Recovered material pricing assessment

Primary Research

  • Recycling plant managers interviewed
  • Composite procurement directors consulted
  • Wind decommissioning leads engaged
  • Material compounder executives surveyed

Validation and Triangulation

  • 180 expert responses validated
  • Revenue and volume reconciled
  • Regional feedstock assumptions stress-tested
  • Output pricing independently cross-checked

CHAPTER 12 - FAQ

FAQs

Still have questions?

Our research team is here to help you find the right solution

Contact Research Team

CHAPTER 13 - Related Research

Explore Related Reports

Expand your market intelligence with complementary research across regions and adjacent markets.

Regional/Country Reports

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Adjacent Reports

Related markets and complementary research

  • Brazil Fiber Composite Materials Market
  • South Africa Recycling Technology Market
  • Kuwait Sustainable Materials Market
  • Egypt Closed-Loop Supply Chain Market
  • Oman Automotive Recycled Plastics Market

500+

Market Research Reports

50+

Countries Covered

15+

Industry Verticals

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