Tuesday, 02 January 2024 12:17 GMT

The Global Sustainable Composites Market 2027-2037 Now Available - Reveals Why The Industry's Defining Tension Is Baked Into The Material Itself


(MENAFN- GlobeNewsWire - Nasdaq) 190-Page Report Profiles 90+ Companies Across Recyclable Resins, Bio-Based Matrices, and Recovery Routes as Wind, EV, and Hydrogen Applications Drive the Shift

Dublin, Sept. 03, 2026 (GLOBE NEWSWIRE) -- The "The Global Sustainable Composites Market 2027-2037" report has been added to ResearchAndMarkets.com's offering.

The Global Sustainable Composites Market 2027-2037 provides a comprehensive analysis of the sustainable composites industry across its full value chain, from recyclable and bio-based matrix chemistry through natural and recovered reinforcement, manufacturing, recycling, end-use demand, regional markets and the competitive landscape. The report quantifies the market by value and volume and segments the forecast by enabling material family, end-use sector and region, presented under conservative, base and accelerated scenarios. It covers the four sustainable material levers - recyclable matrices, bio-based matrices, natural and renewable fibres, and recovered fibre - and analyses recycled-content and bio-based penetration across the decade.

Coverage spans the recyclable-resin landscape, including reactive thermoplastics, vitrimers and cleavable-crosslink thermosets; bio-based resins including bio-epoxy, bio-polyamide, bio-polyester and furan systems; natural fibres including flax, hemp, wood cellulose and nanocellulose; and the recycling routes - mechanical, thermal pyrolysis and chemical solvolysis - with named projects and case studies. Dedicated analysis addresses the green-energy applications: electric-vehicle battery enclosures, hydrogen pressure vessels, wind energy, and the solar, tidal and geothermal segments, including fire protection, electromagnetic shielding, vessel construction, blade recyclability and manufacturing supply chains. The report also examines the regulatory and end-of-life drivers, life-cycle assessment and digital product passports, the composite waste stream, and the recovered-fibre feedstock that underpins the recycling economy. Regional analysis covers Europe, Asia-Pacific, North America and the rest of the world.

The report profiles more than ninety companies across five value-chain roles - recyclable-resin developers, bio-resin producers, natural-fibre and biocomposite companies, fibre recyclers, and green-energy application specialists - supported by detailed forecast data tables, a research-methodology appendix and a glossary. It is intended for material suppliers, manufacturers, OEMs, investors and policymakers requiring a data-grounded reference on the sustainable composites market through 2037.

Contents include:

  • Executive summary - scope, market drivers, material levers, end-use demand, regional picture and outlook
  • Market forecasts - methodology, and value/volume forecasts by material family, end-use, region, green-energy application, penetration and scenario
  • Introduction to composite materials - reinforcements, matrices, fibre forms, the sustainable material families and the end-of-life challenge
  • Composite materials and manufacturing - fibre and resin properties and cost, core materials, the value chain, and manufacturing processes
  • Methods to recycle composite components - the recycling challenge, regulation, life-cycle assessment, digital product passports, the four recycling routes, case studies and the recycler landscape
  • Recyclable composites - recyclable resin systems, vitrimers and dynamic covalent bonds, thermoplastics, the market landscape and recyclable-versus-traditional comparison
  • Bio-based composites - natural fibres, surface modification, benchmarking, SWOT, bio-resin systems, cellulose additives and the supplier landscape
  • Applications in green energy - EV battery enclosures, hydrogen pressure vessels, wind energy, and solar, tidal and geothermal applications
  • Company profiles - recyclable-resin developers, bio-resin producers, natural-fibre and biocomposite companies, fibre recyclers, and green-energy application specialists
  • Appendices - research methodology, detailed forecast data tables, and glossary

Key Topics Covered:

1 EXECUTIVE SUMMARY
1.1 Scope and definition
1.2 Market size and growth
1.3 The four material levers
1.4 Demand by end-use
1.5 Regional market
1.6 Recycled and bio-based penetration
1.7 Outlook
2 MARKET FORECASTS, 2027-2037
2.1 Methodology and assumptions
2.2 Total market
2.3 Forecast by enabling material family
2.4 Forecast by end-use sector
2.5 Forecast by region
2.6 Green-energy application detail
2.7 Recycled-content and bio-based penetration
2.8 Scenario analysis
3 INTRODUCTION
3.1 Overview of the composite materials market
3.2 Why composite materials are useful
3.3 Key factors influencing composite properties
3.4 Reinforcement materials
3.5 Matrix and resin systems
3.6 Fiber forms and material formats
3.7 Sustainable composites: the material families
3.8 The end-of-life challenge
4 COMPOSITE MATERIALS AND MANUFACTURING
4.1 How materials and process shape the product
4.2 Fiber reinforcement properties
4.3 Cost of fiber reinforcements
4.4 Lowering the cost and energy of carbon-fiber manufacture
4.5 Resin systems
4.6 Core materials for sandwich structures
4.7 Material suppliers
4.8 The manufacturing value chain
4.9 Manufacturing processes
5 METHODS TO RECYCLE COMPOSITE COMPONENTS
5.1 The recycling challenge
5.2 The drive toward a circular economy
5.3 Regulation and waste policy
5.4 Life-cycle analysis and traceability
5.5 The four recycling routes
5.6 Recovered-fiber quality by route
5.7 Mechanical recycling
5.8 Thermal recycling - pyrolysis
5.9 Chemical recycling - solvolysis
5.10 End-of-life volume and feedstock
5.11 The recycler landscape
6 RECYCLABLE COMPOSITES
6.1 Introduction
6.2 Recyclable resin systems
6.3 Vitrimers and dynamic covalent bonds
6.4 Thermoplastics for inherent recyclability
6.5 The recyclable-resin market landscape
6.6 Recyclable-resin developers
6.7 Recyclable versus traditional resin systems
7 BIO-BASED COMPOSITES
7.1 Introduction to bio-composites
7.2 Challenges of bio-composites
7.3 Natural fibers
7.3.1 Advantages and limitations of natural fibers
7.3.2 Surface modification
7.3.3 Benchmarking natural against synthetic fibers
7.3.4 Natural fibers SWOT and outlook
7.4 Bio-resin systems
7.5 Types of bio-resin
7.6 Cellulose additives for property improvement
7.7 The bio-resin supplier landscape
8 APPLICATIONS FOR COMPOSITES IN GREEN ENERGY
8.1 Overview
8.2 Composites for electric-vehicle battery enclosures
8.2.1 Enclosure requirements and materials
8.2.2 Fire protection and thermal runaway
8.2.3 Electromagnetic shielding
8.2.4 Suppliers and outlook
8.2.5 EV battery fire-protection and enclosure supplier landscape
8.3 Composites for hydrogen pressure vessels
8.3.1 Vessel types and construction
8.3.2 Fiber, liner and failure considerations
8.3.3 Manufacturing hydrogen vessels
8.3.4 Hydrogen vessel manufacturing
8.3.5 Suppliers and outlook
8.4 Composites for wind energy
8.4.1 Blade structure and materials
8.4.2 China's dominance of wind manufacturing
8.4.3 The recyclability problem and blade waste
8.4.4 Recyclable and bio-based resins for blades
8.4.5 Blade manufacturing and supply chain
8.5 Other renewable-energy applications
8.5.1 Composites for solar energy
8.5.2 Composites for tidal energy
8.5.3 Composites for geothermal energy
9 COMPANY PROFILES
9.1 Recyclable-resin developers (16 COMPANY PROFILES)
9.2 Bio-resin producers (12 COMPANY PROFILES)
9.3 Natural-fiber and biocomposite companies (35 COMPANY PROFILES)
9.4 Fiber recyclers (16 COMPANY PROFILES)
9.5 Green-energy application specialists (14 COMPANY PROFILES)
10 APPENDICES
10.1 Research methodology
10.2 Detailed forecast data - total market and penetration
10.3 Detailed forecast data - by material family
10.4 Detailed forecast data - by end-use
10.5 Detailed forecast data - by region
10.6 Glossary and definitions

A selection of companies mentioned in this report includes, but is not limited to:

  • 3P.COM
  • Advanced Biochemical Thailand
  • Aditya Birla
  • Alpha Recyclage Composites
  • Arkema
  • Bambooder Biobased Fibers
  • Bast Fiber Technologies
  • Bcircular
  • Bcomp
  • Biofibre
  • BIOFIBIX
  • Boreal Bioproducts
  • Borregaard
  • B-PREG
  • Cambium
  • Canadian Industrial Hemp Corporation
  • Carbon Conversions
  • Carbon Rivers
  • CATACK-H
  • CELLiCON
  • Cellucomp
  • CelluForce
  • CFP Composites
  • CH-Bioforce
  • Circular11
  • Cobratex
  • CompPair Technologies
  • Composite Recycling
  • CreaFill Fibers
  • Daio Paper
  • DaikyoNishikawa
  • DIC Products
  • EcoTechnilin
  • Entropy Resins / Gougeon
  • Evonik
  • Exel Composites
  • Extracthive
  • Fairmat
  • fiberior
  • FlexForm Technologies
  • FluidSolids

For more information about this report visit

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