Global Aerospace Glass Fiber Composites Market Size, Share, and Trends Analysis Report – Industry Overview and Forecast to 2033

Request for TOC Request for TOC Speak to Analyst Speak to Analyst Free Sample Report Free Sample Report Inquire Before Buying Inquire Before Buy Now Buy Now

Global Aerospace Glass Fiber Composites Market Size, Share, and Trends Analysis Report – Industry Overview and Forecast to 2033

Global Aerospace Glass Fiber Composites Market Segmentation, By Glass Fiber Type (E-Glass, S-Glass, R-Glass, ECR-Glass, C-Glass, D-Glass, A-Glass, AR-Glass, Specialty Glass Fiber, Hybrid Reinforcement), Composite Form (Prepreg, Fabrics, Tapes, Rovings, Chopped Fiber Products, Laminates, Molded Composite Parts, Honeycomb and Sandwich Panels, Pultruded Profiles), Resin Matrix (Thermoset Composites, Thermoplastic Composites), Manufacturing Process (Hand Lay-Up, Spray-Up, Prepreg Lay-Up, Autoclave Molding, Out-of-Autoclave Processing, Resin Transfer Molding, Vacuum-Assisted Resin Transfer Molding, Resin Infusion, Compression Molding, Injection Molding, Filament Winding, Pultrusion, Continuous Lamination, Thermoforming, Additive Manufacturing), Composite Structure (Monolithic Composites, Sandwich Composites, Hybrid Composites, Fiber-Metal Laminates, Cellular and Syntactic Composites), Aircraft Platform (Commercial Aircraft, General Aviation Aircraft, Rotorcraft, Military Aircraft, Unmanned Aerial Vehicles, Advanced Air Mobility Aircraft, Spacecraft, Missiles and Guided Systems), Aircraft Application (Primary Structures, Secondary Structures, Aircraft Interiors, Propulsion Systems, Rotorcraft Components, Electrical and Electronic Components, Transparent and Electromagnetic Structures, Fluid Handling and Environmental Control, Cargo and Baggage Applications), Distribution Channel (Direct Sales, Distributor Sales, Channel Partner Sales, Online Sales, Project-Based Procurement) - Industry Trends and Forecast to 2033

  • Automotive
  • Jul 2026
  • Global
  • 350 Pages
  • No of Tables: 220
  • No of Figures: 60
  • Author :

Global Aerospace Glass Fiber Composites Market

Market Size in USD Billion

CAGR :  % Diagram
Bar chart comparing the Global Aerospace Glass Fiber Composites Market size in 2025 - 4.90 and 2033 - 6.95, highlighting the projected market growth. USD 4.90 Billion USD 6.95 Billion 2025 2033
Diagram Forecast Period
2026 - 2033
Diagram Market Size (Base Year)
USD 4.90 Billion
Diagram Market Size (Forecast Year)
USD 6.95 Billion
Diagram CAGR
%
Diagram Major Markets Players
  • Owens Corning (U.S.)
  • Hexcel Corporation (U.S.)
  • Syensqo SA (Belgium)
  • Toray Industries Inc. (Japan)
  • Mitsubishi Chemical Corporation (Japan)

What is the Aerospace Glass Fiber Composites Market Size and Growth Rate?

  • As per Data Bridge Market Research analysis, the aerospace glass fiber composites market was valued at USD 4.90 billion in 2025 and is projected to reach USD 6.95 billion by 2033, growing at a CAGR of 7.60% from 2026 to 2033.
  • The market is experiencing consistent growth driven by rising demand for lightweight, corrosion-resistant, and cost-effective reinforcement materials across commercial, military, and space platforms, rapid advancements in prepreg, resin infusion, and out-of-autoclave processing technologies, and expanding applications across primary structures, interiors, and radar-transparent components.
  • The increasing focus on fuel efficiency and weight reduction across next-generation commercial and military aircraft programs, combined with growing demand for electromagnetically transparent and radar-compatible structures, is compelling aircraft OEMs, aerostructure suppliers, and defense agencies to adopt glass fiber composites. E-glass and S-glass reinforced prepregs and fabrics are replacing heavier metallic and hybrid materials in many programs, offering a favorable balance of strength, dielectric performance, and cost-efficiency for demanding aerospace applications.

Market Size & Forecast

  • Global Market Value (2025): USD 4.90 Billion
  • Expected Market Value (2033): USD 6.95 Billion
  • Forecast CAGR (2026–2033): 7.60%
  • Leading Region in 2025: North America
  • Fastest Growing Region: Asia-Pacific

What are the Major Takeaways of the Aerospace Glass Fiber Composites Market?

  • North America dominated the global aerospace glass fiber composites market in 2025, supported by the strong presence of established aircraft OEMs, aerostructure suppliers, and defense agencies, along with extensive qualification programs and long-term supply agreements for advanced reinforcement materials.
  • Asia-Pacific is expected to be the fastest-growing region during the forecast period, fueled by expanding commercial aircraft manufacturing capacity, increasing indigenous defense and UAV programs, and growing investments in composite materials infrastructure across China, Japan, and India.
  • The E-glass segment dominated the market by glass fiber type, driven by its widespread use across primary and secondary structures, aircraft interiors, and radomes due to its favorable balance of cost, mechanical performance, and processing maturity.
  • The specialty glass fiber segment is expected to witness the fastest growth by glass fiber type, reflecting rising adoption of radar-transparent and low-dielectric formulations in next-generation avionics and electromagnetic structure applications.
  • The prepreg segment dominated the market by composite form, owing to its extensive use across primary structures and aircraft interior components requiring consistent resin content and high-volume automated processing.
  • The commercial aircraft segment dominated the market by aircraft platform, led by high production volumes and continued adoption of lightweight materials to meet fuel-efficiency and emissions targets across narrow-body and wide-body fleets.

Aerospace Glass Fiber Composites Market

Report Scope and Aerospace Glass Fiber Composites Market Segmentation

Attributes

Aerospace Glass Fiber Composites Market Insights

Segments Covered

  • By Glass Fiber Type: E-Glass, S-Glass, R-Glass, ECR-Glass, C-Glass, D-Glass, A-Glass, AR-Glass, Specialty Glass Fiber, Hybrid Reinforcement
  • By Composite Form: Prepreg, Fabrics, Tapes, Rovings, Chopped Fiber Products, Laminates, Molded Composite Parts, Honeycomb and Sandwich Panels, Pultruded Profiles
  • By Resin Matrix: Thermoset Composites, Thermoplastic Composites
  • By Manufacturing Process: Hand Lay-Up, Spray-Up, Prepreg Lay-Up, Autoclave Molding, Out-of-Autoclave Processing, Resin Transfer Molding, Vacuum-Assisted Resin Transfer Molding, Resin Infusion, Compression Molding, Injection Molding, Filament Winding, Pultrusion, Continuous Lamination, Thermoforming, Additive Manufacturing
  • By Composite Structure: Monolithic Composites, Sandwich Composites, Hybrid Composites, Fiber-Metal Laminates, Cellular and Syntactic Composites
  • By Aircraft Platform: Commercial Aircraft, General Aviation Aircraft, Rotorcraft, Military Aircraft, Unmanned Aerial Vehicles, Advanced Air Mobility Aircraft, Spacecraft, Missiles and Guided Systems
  • By Aircraft Application: Primary Structures, Secondary Structures, Aircraft Interiors, Propulsion Systems, Rotorcraft Components, Electrical and Electronic Components, Transparent and Electromagnetic Structures, Fluid Handling and Environmental Control, Cargo and Baggage Applications
  • By Distribution Channel: Direct Sales, Distributor Sales, Channel Partner Sales, Online Sales, Project-Based Procurement

Countries Covered

North America

  • U.S.
  • Canada
  • Mexico

Europe

  • Germany
  • France
  • U.K.
  • Italy
  • Spain
  • Russia
  • Netherlands
  • Sweden
  • Denmark
  • Switzerland
  • Belgium
  • Poland
  • Turkey
  • Rest of Europe

Asia-Pacific

  • China
  • Japan
  • South Korea
  • India
  • Australia
  • Singapore
  • Thailand
  • Malaysia
  • Indonesia
  • Vietnam
  • Taiwan
  • New Zealand
  • Rest of Asia-Pacific

South America

  • Brazil
  • Argentina
  • Chile
  • Colombia
  • Peru
  • Rest of South America

Middle East and Africa

  • South Africa
  • Egypt
  • Saudi Arabia
  • U.A.E.
  • Israel
  • Qatar
  • Kuwait
  • Oman
  • Bahrain
  • Rest of Middle East and Africa

Key Market Players

  • Owens Corning (U.S.)
  • Hexcel Corporation (U.S.)
  • Syensqo SA (Belgium)
  • Toray Industries, Inc. (Japan)
  • Mitsubishi Chemical Corporation (Japan)
  • Teijin Limited (Japan)
  • Park Aerospace Corp. (U.S.)
  • Gurit Holding AG (Switzerland)
  • Isovolta AG (Austria)
  • Krempel GmbH (Germany)
  • AGY Holding Corp. (U.S.)
  • Nippon Electric Glass Co., Ltd. (Japan)
  • Saint-Gobain Vetrotex (France)
  • Johns Manville (U.S.)
  • China Jushi Co., Ltd. (China)
  • Chongqing Polycomp International Corporation (China)
  • Taishan Fiberglass Inc. (China)
  • 3B-The Fibreglass Company (Belgium)
  • FACC AG (Austria)
  • GKN Aerospace (U.K.)
  • Daher (France)
  • Sekisui Aerospace Corporation (U.S.)
  • The Gill Corporation (U.S.)
  • Ducommun Incorporated (U.S.)
  • Safran Cabin (France)
  • Diehl Aviation (Germany)
  • AIM Altitude (U.K.)
  • Collins Aerospace (U.S.)
  • Hutchinson SA (France)
  • Latecoere S.A. (France)

Market Opportunities

  • Integration of circular and recycled glass fiber production for sustainable aerospace composites
  • Growing demand for radar-transparent and low-dielectric composite structures in next-generation avionics
  • Development of high-rate, out-of-autoclave processing capacity for single-aisle aircraft production programs

Value Added Data Infosets

In addition to insights on market value, growth rate, segmentation, geographic coverage, and major players, reports curated by Data Bridge Market Research also include in-depth expert analysis, geographically represented company-wise production and capacity, distributor and partner network layouts, detailed and updated price trend analysis, and deficit analysis of supply and demand.

What is the Key Trend in the Aerospace Glass Fiber Composites Market?

  • Leading composite materials companies are increasingly securing long-term supply agreements and forming applications-focused partnerships with aircraft OEMs, satellite integrators, and research institutions to broaden their aerospace glass fiber composite portfolios and reduce the cost and risk associated with material qualification cycles for new platforms.
  • For instance, in July 2025, Toray Advanced Composites signed a long-term supply agreement with Airborne Aerospace B.V. to provide space-qualified, glass and carbon fiber-reinforced composite materials for the production of solar array substrates and yoke panels for mega-constellation satellites, manufactured at Toray’s European Centre of Excellence in Langley Mill, U.K.
  • Real-time resin content and cure monitoring enables composite manufacturers to analyze laminate quality, void content, and dimensional tolerance with high precision during prepreg and out-of-autoclave processing.
  • Aircraft OEMs and Tier 1 aerostructure suppliers are leveraging automated fiber placement and high-rate out-of-autoclave processing to provide standardized, cost-efficient composite structures for next-generation single-aisle aircraft programs.
  • For instance, in 2025, Hexcel Corporation and Wichita State University’s National Institute for Aviation Research (NIAR) announced a partnership to build a new composites applications center at NIAR’s Advanced Technologies Lab for Aerospace Systems, with Hexcel contributing an automated fiber placement machine and a 50-foot autoclave to support the anticipated migration of composite primary structures onto next-generation single-aisle commercial aircraft.
  • As aircraft OEMs and defense agencies continue to prioritize lightweighting and high-rate production readiness, the adoption of advanced aerospace glass fiber composites is expected to accelerate, reinforcing glass fiber reinforcement systems as a core material technology in next-generation aerospace structures and interiors.

What are the Key Drivers of the Aerospace Glass Fiber Composites Market?

  • The rapid advancement of sustainable and circular manufacturing initiatives has significantly increased demand for glass fiber composite reinforcement systems capable of meeting evolving environmental and lifecycle requirements across commercial and defense aerospace programs.
  • For instance, in December 2025, Owens Corning commissioned its first circular glass fiber production line, SUSTAINA LOOP, at its L’Ardoise, France facility, representing a USD 7.5 million investment that reclaims glass waste and remelts it into glass fiber for roving products, supporting the industry’s shift toward more sustainable composite reinforcement supply chains.
  • Aircraft OEMs, Tier 1 aerostructure suppliers, and research consortia are integrating glass fiber composites into high-rate production and lightweighting programs to reduce structural weight, extend component life, and enhance sustainability performance.
  • For instance, in March 2025, GKN Aerospace, McLaren Automotive, and U.K. industry partners concluded the four-year, £39.6 million ASCEND program, which delivered significant progress in high-rate composite production, Industry 4.0 manufacturing integration, and sustainable composites manufacturing techniques applicable across aerospace and automotive structural applications.
  • With the aerospace and defense industry increasingly relying on lightweight, sustainably produced reinforcement materials to accelerate performance gains and meet emissions targets, aerospace glass fiber composites will remain indispensable for the development of next-generation aircraft, spacecraft, and defense platforms.

Which Factors are Challenging the Growth of the Aerospace Glass Fiber Composites Market?

  • Aerospace glass fiber composite production requires significant investment due to the complexity of prepreg, resin infusion, and out-of-autoclave processing routes, along with the need for specialized fiber sizing, resin formulation, and extensive qualification testing infrastructure.
  • These high costs and lengthy qualification cycles limit adoption among smaller component manufacturers and emerging aerospace supply chains.
  • For instance, industry analysis indicates that feedstock and precursor costs for composite reinforcement materials can fluctuate between 15% and 30% within a single calendar year, while supplier qualification cycles for aerospace and defense applications often exceed 18 months, creating bottlenecks that delay new capacity introduction and limit buyer optionality across the aerospace composites supply chain.
  • The high capital investment and extended qualification timelines associated with aerospace glass fiber composite production continue to restrict adoption, particularly among smaller Tier 2 and Tier 3 component manufacturers. This barrier slows market penetration in price-sensitive and emerging aerospace supply chains, limiting the widespread deployment of advanced composite processing infrastructure despite growing program demand.

How is the Aerospace Glass Fiber Composites Market Segmented?

The aerospace glass fiber composites market is segmented on the basis of glass fiber type, composite form, resin matrix, manufacturing process, composite structure, aircraft platform, aircraft application, and distribution channel.

  •  By Glass Fiber Type

On the basis of glass fiber type, the global aerospace glass fiber composites market is segmented into E-glass, S-glass, R-glass, ECR-glass, C-glass, D-glass, A-glass, AR-glass, specialty glass fiber, and hybrid reinforcement. The E-glass segment dominated the market, owing to its favorable balance of cost, mechanical performance, and established processing routes, making it the preferred choice across primary structures, aircraft interiors, and radome applications.

The specialty glass fiber segment is expected to witness the fastest growth, driven by rising adoption of radar-transparent, low-dielectric, and high-temperature glass fiber formulations in next-generation avionics and electromagnetic structure applications.

  •  By Composite Form

On the basis of composite form, the global aerospace glass fiber composites market is segmented into prepreg, fabrics, tapes, rovings, chopped fiber products, laminates, molded composite parts, honeycomb and sandwich panels, and pultruded profiles. The prepreg segment dominated the market, supported by its widespread use across primary structures and interior components requiring consistent resin content, dimensional accuracy, and compatibility with automated layup processes.

The honeycomb and sandwich panels segment is expected to witness the fastest growth, driven by increasing demand for lightweight, high-stiffness panel structures in aircraft interiors and secondary structural applications.

  •  By Resin Matrix

On the basis of resin matrix, the global aerospace glass fiber composites market is segmented into thermoset composites and thermoplastic composites. The thermoset composites segment dominated the market, supported by its widespread use in epoxy- and phenolic-based prepreg systems across primary structures, interiors, and honeycomb panel applications requiring established qualification and certification pathways.

The thermoplastic composites segment is expected to witness the fastest growth, driven by rising adoption of PEEK-, PEKK-, and PPS-based systems that offer faster processing cycles, improved damage tolerance, and recyclability for high-rate aircraft production programs.

  •  By Manufacturing Process

On the basis of manufacturing process, the global aerospace glass fiber composites market is segmented into hand lay-up, spray-up, prepreg lay-up, autoclave molding, out-of-autoclave processing, resin transfer molding, vacuum-assisted resin transfer molding, resin infusion, compression molding, injection molding, filament winding, pultrusion, continuous lamination, thermoforming, and additive manufacturing. The autoclave molding segment dominated the market, supported by its established, high-quality production routes for primary and secondary structural components across commercial and defense aerospace programs.

The out-of-autoclave processing segment is expected to witness the fastest growth, driven by increasing demand for lower-cost, energy-efficient curing methods that support high-rate production of next-generation single-aisle and advanced air mobility aircraft structures.

  •  By Composite Structure

On the basis of composite structure, the global aerospace glass fiber composites market is segmented into monolithic composites, sandwich composites, hybrid composites, fiber-metal laminates, and cellular and syntactic composites. The sandwich composites segment dominated the market, supported by its widespread adoption in aircraft interiors, radomes, and secondary structures requiring high stiffness-to-weight ratios and acoustic and thermal insulation performance.

The hybrid composites segment is expected to witness the fastest growth, driven by increasing use of glass-carbon and glass-aramid hybrid architectures that combine cost efficiency with enhanced mechanical and impact performance for structural and protective applications.

  •  By Aircraft Platform

On the basis of aircraft platform, the global aerospace glass fiber composites market is segmented into commercial aircraft, general aviation aircraft, rotorcraft, military aircraft, unmanned aerial vehicles, advanced air mobility aircraft, spacecraft, and missiles and guided systems. The commercial aircraft segment dominated the market, supported by high production volumes, extensive component qualification programs, and continued adoption of lightweight materials to improve fuel efficiency across narrow-body and wide-body aircraft fleets.

The advanced air mobility aircraft segment is expected to witness the fastest growth, driven by rising development of electric vertical take-off and landing aircraft and urban air mobility platforms that require lightweight, cost-effective structural and interior materials.

  •  By Aircraft Application

On the basis of aircraft application, the global aerospace glass fiber composites market is segmented into primary structures, secondary structures, aircraft interiors, propulsion systems, rotorcraft components, electrical and electronic components, transparent and electromagnetic structures, fluid handling and environmental control, and cargo and baggage applications. The aircraft interiors segment dominated the market, led by widespread adoption of glass fiber composites in seating, sidewall panels, ceiling panels, and stowage bins requiring flame, smoke, and toxicity compliance alongside lightweight performance.

The transparent and electromagnetic structures segment is expected to witness the fastest growth, driven by rising demand for radomes, antenna fairings, and electromagnetic windows that support increasingly compact and power-dense avionics and radar systems.

  •  By Distribution Channel

On the basis of distribution channel, the global aerospace glass fiber composites market is segmented into direct sales, distributor sales, channel partner sales, online sales, and project-based procurement. The direct sales segment dominated the market, supported by aircraft OEMs and prime contractors favoring qualified, program-of-record suppliers to ensure consistent material quality and supply continuity across multi-year aircraft production programs.

The project-based procurement segment is expected to witness the fastest growth, driven by increasing collaboration between airframe builders, aerostructure suppliers, and MRO providers to source composite materials for specific development and retrofit programs.

Which Region Holds the Largest Share of the Aerospace Glass Fiber Composites Market?

  • North America dominated the aerospace glass fiber composites market in 2025, supported by the strong presence of established aircraft OEMs, aerostructure suppliers, and defense agencies, along with well-developed material qualification frameworks and long-term supply programs.
  • The region also benefits from substantial defense modernization spending, robust aerospace R&D infrastructure, and growing use of glass fiber composites across commercial, military, and space platforms. Increasing focus on lightweighting and next-generation aircraft development continues to strengthen North America’s leadership position in the global market.

U.S. Aerospace Glass Fiber Composites Market Insight

The U.S. aerospace glass fiber composites market is experiencing steady growth, supported by rising adoption of lightweight materials in commercial aircraft, military platforms, and defense program development. Increasing investments in composite materials research and growing demand for cost-effective, qualification-ready reinforcement solutions are contributing to market growth. Furthermore, integration of automated fiber placement, out-of-autoclave processing, and strong defense procurement programs is improving component performance and positioning the U.S. as a key innovation hub in the aerospace glass fiber composites industry.

Germany Aerospace Glass Fiber Composites Market Insight

The Germany aerospace glass fiber composites market is expanding steadily due to the country’s strong aerospace manufacturing base, advanced materials research capabilities, and increasing adoption of next-generation processing technologies. Aircraft component manufacturers, aerostructure producers, and research institutes are increasingly utilizing glass fiber composites for precision structural and interior applications, quality-driven component development, and R&D activities. Continuous advancements in processing technology, resin system integration, and sustainable production formulations, along with strong government focus on aerospace innovation, are further driving market growth in Germany.

Asia-Pacific Aerospace Glass Fiber Composites Market Insight

The Asia-Pacific aerospace glass fiber composites market is expected to witness rapid growth, driven by expanding commercial aircraft manufacturing capacity, increasing indigenous defense aircraft and UAV programs, and rising investments in composite materials infrastructure across countries such as China, Japan, and India. Growing awareness regarding lightweighting and fuel-efficiency benefits, rising adoption of advanced processing technologies, and increasing demand for scalable and cost-effective structural material solutions are supporting regional market expansion. Additionally, the growing presence of commercial and defense aerospace manufacturing hubs is accelerating glass fiber composite adoption across the region.

Japan Aerospace Glass Fiber Composites Market Insight

The Japan aerospace glass fiber composites market is witnessing consistent growth due to rising investments in advanced materials technologies, aerostructure component development, and precision manufacturing initiatives. Aircraft component manufacturers, materials companies, and research institutes are increasingly adopting high-performance glass fiber composites for precision structural and interior applications, component life extension, and R&D purposes. Moreover, increasing integration of resin system innovation and advanced fiber technologies and the country’s focus on precision manufacturing are further contributing to market growth.

China Aerospace Glass Fiber Composites Market Insight

The China aerospace glass fiber composites market is growing rapidly, driven by increasing domestic commercial aircraft production, expanding defense aerospace programs, and rising government focus on advanced materials self-sufficiency. Growing adoption of lightweight, cost-effective structural materials across commercial, military, and space platforms is significantly boosting market demand. In addition, rising investments in aerospace materials R&D, increasing awareness regarding fuel-efficiency and payload optimization, and rapid technological advancements are positioning China as one of the fastest-growing markets for aerospace glass fiber composites globally.

Which are the Top Companies in Aerospace Glass Fiber Composites Market?

The aerospace glass fiber composites industry is primarily led by well-established companies, including:

  • Owens Corning (U.S.)
  • Hexcel Corporation (U.S.)
  •  Syensqo SA (Belgium)
  • Toray Industries, Inc. (Japan)
  • Mitsubishi Chemical Corporation (Japan)
  • Teijin Limited (Japan)
  • Park Aerospace Corp. (U.S.)
  • Gurit Holding AG (Switzerland)
  • Isovolta AG (Austria)
  • Krempel GmbH (Germany)
  • AGY Holding Corp. (U.S.)
  • Nippon Electric Glass Co., Ltd. (Japan)
  • Saint-Gobain Vetrotex (France)
  • Johns Manville (U.S.)
  • China Jushi Co., Ltd. (China)
  • Chongqing Polycomp International Corporation (China)
  • Taishan Fiberglass Inc. (China)
  • 3B-The Fibreglass Company (Belgium)
  • FACC AG (Austria)
  • GKN Aerospace (U.K.)
  • Daher (France)
  • Sekisui Aerospace Corporation (U.S.)
  • The Gill Corporation (U.S.)
  • Ducommun Incorporated (U.S.)
  • Safran Cabin (France)
  • Diehl Aviation (Germany)
  • AIM Altitude (U.K.)
  • Collins Aerospace (U.S.)
  • Hutchinson SA (France)
  • Latecoere S.A. (France)

What are Latest Developments in Aerospace Glass Fiber Composites Market?

  • In July 2025, Toray Advanced Composites signed a long-term supply agreement with Airborne Aerospace B.V. to provide space-qualified, epoxy-based composite materials for the production of solar array substrates and yoke panels for mega-constellation satellites, manufactured at Toray’s European Centre of Excellence for thermoset systems in Langley Mill, U.K.
  • In 2025, Hexcel Corporation and Wichita State University’s National Institute for Aviation Research (NIAR) announced a partnership to build a new composites applications center within NIAR’s Advanced Technologies Lab for Aerospace Systems, with Hexcel contributing an automated fiber placement machine and a 50-foot autoclave to support next-generation single-aisle aircraft composite primary structure production.
  • In December 2025, Owens Corning commissioned its first circular glass fiber production line, SUSTAINA LOOP, at its L’Ardoise, France facility, a USD 7.5 million investment that reclaims glass waste and remelts it into glass fiber for single-end roving products used across composite reinforcement applications.
  • In March 2025, GKN Aerospace, McLaren Automotive, and U.K. industry partners concluded the four-year, £39.6 million ASCEND program, which delivered significant progress in high-rate composite production, Industry 4.0 manufacturing integration, and sustainable composites manufacturing techniques.
  • In 2025, Hexcel Corporation was awarded an expanded multi-year agreement with Boeing to supply carbon and glass fiber prepreg materials for the 737 MAX and future aircraft programs, reinforcing Hexcel’s position as a qualified long-term composite materials supplier to major commercial aircraft OEMs.


SKU-

Get online access to the report on the World's First Market Intelligence Cloud
  • Interactive Data Analysis Dashboard
  • Company Analysis Dashboard for high growth potential opportunities
  • Research Analyst Access for customization & queries
  • Competitor Analysis with Interactive dashboard
  • Latest News, Updates & Trend analysis
  • Harness the Power of Benchmark Analysis for Comprehensive Competitor Tracking
Request for Demo
Research Methodology

Data collection and base year analysis are done using data collection modules with large sample sizes. The stage includes obtaining market information or related data through various sources and strategies. It includes examining and planning all the data acquired from the past in advance. It likewise envelops the examination of information inconsistencies seen across different information sources. The market data is analysed and estimated using market statistical and coherent models. Also, market share analysis and key trend analysis are the major success factors in the market report. To know more, please request an analyst call or drop down your inquiry.

The key research methodology used by DBMR research team is data triangulation which involves data mining, analysis of the impact of data variables on the market and primary (industry expert) validation. Data models include Vendor Positioning Grid, Market Time Line Analysis, Market Overview and Guide, Company Positioning Grid, Patent Analysis, Pricing Analysis, Company Market Share Analysis, Standards of Measurement, Global versus Regional and Vendor Share Analysis. To know more about the research methodology, drop in an inquiry to speak to our industry experts.

Customization Available

Data Bridge Market Research is a leader in advanced formative research. We take pride in servicing our existing and new customers with data and analysis that match and suits their goal. The report can be customized to include price trend analysis of target brands understanding the market for additional countries (ask for the list of countries), clinical trial results data, literature review, refurbished market and product base analysis. Market analysis of target competitors can be analyzed from technology-based analysis to market portfolio strategies. We can add as many competitors that you require data about in the format and data style you are looking for. Our team of analysts can also provide you data in crude raw excel files pivot tables (Fact book) or can assist you in creating presentations from the data sets available in the report.

Frequently Asked Questions
Asia-Pacific is expected to be the fastest-growing region during the forecast period. Growth is driven by expanding commercial aircraft manufacturing capacity, increasing indigenous defense aircraft and UAV programs, and rising investments in composite materials research across China, Japan, and India.
Key growth drivers include rising demand for lightweight, cost-effective structural and interior materials, increasing adoption of sustainable and circular manufacturing processes, growing high-rate production and out-of-autoclave processing programs, and expanding investments in materials qualification and long-term supply agreements across both developed and emerging aerospace markets.
The E-glass segment dominated the glass fiber type category, owing to its favorable balance of cost, mechanical performance, and established processing routes across primary structures, aircraft interiors, and radome applications.
The primary challenge is the high capital investment and extended qualification timelines associated with aerospace-grade glass fiber composite production and certification. The complexity of specialized processing routes, combined with feedstock cost volatility and lengthy regulatory and qualification cycles, limits adoption among smaller Tier 2 and Tier 3 component manufacturers and emerging aerospace supply chains.
Industry Related Reports
Testimonial