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Advanced Materials & Composites Report DI-CM-10223 172 pages · PDF + Excel model

Glass Fiber Market

Douglas Insights values the glass fiber market at USD 9,430.0 million in 2025, rising to USD 16,320.5 million by 2035 at a 5.64% CAGR as composites, wind blades and AI server circuit boards lift demand amid Chinese overcapacity.

Market Terminal Glass Fiber Market Edition 1 · Sep 2026
Market size · 2025 $9,430.0 Mn Medium How this number is madeBottom-up: about 8.2 Mt at USD 1,150 per tonne.
Forecast · 2035 $16,320.5 Mn Medium How this number is madeEach 1-point change in tonnage growth moves the 2035 figure by roughly USD 1,560 million.
Revenue CAGR · 2026–2035 5.64%4.8% volume + 0.8% price Medium How this number is madeVolume from composites and wind; price from specialty grades.
Volume · 2035 ~13.1 Mtfrom 8.2 Mt in 2025 Medium How this number is madeComposites, wind and electronics demand.
Leading application Construction34% · $3,206.2 Mn High How this number is madeComposite pipes, tanks, panels and rebar.
Supply structure China dominantovercapacity cycles High How this number is madeGiant Chinese furnaces produce about two thirds of output.
Largest region Asia Pacific58% share High How this number is madeChina's composites, wind and electronics.

Answers at a glance

  • Glass fiber grows from USD 9,430.0 million in 2025 to USD 16,320.5 million by 2035 at 5.64% a year.
  • Volume grows 4.8% a year on composites, wind and electronics.
  • Construction leads at 34% of value.
  • Asia Pacific holds 58% and grows fastest.
  • China's giant furnaces dominate and drive price cycles, while low loss yarns for AI server boards are the high value niche.
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The glass fiber market is worth USD 9,430.0 million in 2025 and reaches USD 16,320.5 million by 2035, compounding at 5.64% a year. The figure is built bottom-up: roughly 8.2 million tonnes of continuous filament glass fiber consumed in 2025 across construction and infrastructure, transportation composites, wind and energy, and electronics and industrial applications, at an average realised price of USD 1,150 per tonne, triangulated against production capacity, composites demand and producer disclosures. Tonnes consumed grow 4.8% a year as composites replace metals and wind and electronics demand rises, while price per tonne rises 0.8% a year as specialty and high performance grades take share against a backdrop of Chinese overcapacity. Glass wool insulation, refractory ceramic fiber covered in our separate refractory fiber coverage, and optical fiber are excluded. This study sits within our advanced materials and composites coverage and follows the published Douglas Insights methodology.

Why does China make most of the world’s glass fiber?

Because Chinese producers built enormous, efficient furnaces over the past two decades, and China now accounts for roughly two thirds of global glass fiber output. Glass fiber is made by melting silica sand, limestone and other minerals in large furnaces and drawing the molten glass through platinum bushings into thousands of fine filaments, which are coated and wound into rovings or chopped into strands. Scale matters enormously: larger furnaces lower cost per tonne, and Chinese producers such as China Jushi, Taishan Fiberglass and Chongqing Polycomp have built some of the world’s largest tank furnaces. This scale has made China the dominant exporter, but it has also led to periods of overcapacity and falling prices, and trade measures in Europe and elsewhere against imports of Chinese glass fiber. Chinese producers have in turn built plants abroad, including in Egypt and the United States. The industry therefore runs in cycles of capacity additions and price pressure. The exclusive chapter of this report tracks furnace capacity and utilisation by producer, since capacity drives pricing.

What does this market include?

This study covers continuous filament glass fiber used for reinforcement and textiles. Construction and infrastructure covers fiber used in composite panels, pipes, tanks, roofing, reinforcing bars and other building and infrastructure products, the largest category. Transportation composites covers fiber used in automotive, rail, marine and aerospace composites. Wind and energy covers fiber used in wind turbine blades and other energy applications. Electronics and industrial covers fine yarns used in printed circuit boards and fiber used in industrial and consumer products. Glass wool insulation, refractory ceramic fiber, optical fiber for telecommunications, and finished composite parts sit outside the boundary. Value is measured at producer realised price for rovings, chopped strands, yarns and mats.

What does AI have to do with glass fiber?

More than it might seem, because the circuit boards inside artificial intelligence servers need special glass fiber yarns with low electrical loss, and demand for these grades has surged. Printed circuit boards are made from layers of woven glass fiber fabric impregnated with resin, and ordinary glass fiber interferes slightly with high frequency signals. For the fast data rates of artificial intelligence servers and networking equipment, board makers need low dielectric glass fibers that allow signals to travel with less loss, and these are produced by a small number of specialised suppliers, particularly in Japan and Taiwan. Such grades command far higher prices than standard reinforcement fiber, and supply has been tight. Although a small share of tonnage, they are a growing share of value. The model reflects specialty electronic grades as a contributor to rising average prices.

What drives demand?

The first driver is lightweighting. Glass fiber composites replace steel and aluminium in vehicles, trucks and boats, cutting weight and fuel use.

The second driver is construction and infrastructure. Composite pipes, tanks, rebar and panels resist corrosion and last longer than traditional materials.

The third driver is wind energy. Wind turbine blades are made largely of glass fiber composites, and larger blades use more fiber.

The fourth driver is electronics. Circuit boards for servers, networking and consumer electronics use glass fiber yarns, including high value low loss grades.

What restrains the market?

Three restraints are modelled. Overcapacity is the first: large capacity additions, particularly in China, periodically depress prices and profits. Energy costs are second: glass melting is energy intensive, and high energy prices raise production costs, especially in Europe. Trade measures are third: anti dumping duties and tariffs affect trade flows and pricing between regions.

Which applications carry the value?

Construction and infrastructure lead with 34% of 2025 value, USD 3,206.2 million. Transportation composites hold 24%, USD 2,263.2 million, and electronics and industrial applications 24%, USD 2,263.2 million, the latter lifted by specialty electronic yarns. Wind and energy account for 18%, USD 1,697.4 million. Each application is modelled through 2035 by region.

Where is glass fiber consumed?

Asia Pacific dominates with 58% of 2025 value, USD 5,469.4 million, and grows fastest at 6.11% a year, reflecting China’s composites, wind and electronics industries and growing demand in India and Southeast Asia. Europe holds 18%, USD 1,697.4 million, at 4.6%, with automotive, wind and construction composites. North America holds 16%, USD 1,508.8 million, at 5.0%, with construction, transportation and wind demand. The Middle East contributes USD 377.2 million at 5.8%, Latin America USD 282.9 million at 5.4% and Africa USD 94.3 million at 5.6%. Six regional models sum to the global figure, with country tables in the Excel model.

Who makes glass fiber?

China Jushi, Taishan Fiberglass and Chongqing Polycomp International are the largest producers. Owens Corning, Nippon Electric Glass, Johns Manville and others produce reinforcement fiber in North America, Europe and Asia, and Nitto Boseki and Taiwanese producers lead in specialty electronic yarns. The competitive chapter profiles each producer’s capacity, product range and regional presence.

How is glass fiber priced?

Average realised price is USD 1,150 per tonne in 2025 across all grades. Standard rovings and chopped strands for construction and general composites are priced competitively and fluctuate with capacity, while specialty grades for wind blades, high performance composites and electronics, particularly low loss electronic yarns, command substantially higher prices. The shift toward specialty grades raises average prices modestly despite overcapacity in standard products. The pricing chapter publishes price bands by product and grade.

How do the scenarios diverge by 2035?

The base case carries 4.8% growth in tonnes and 0.8% growth in price for a 5.64% revenue CAGR and USD 16,320.5 million in 2035. The overcapacity scenario, in which capacity additions outpace demand and prices weaken, sets the legs at 2.8% and minus 0.6%, landing near USD 11,700 million. The composites-growth scenario, in which lightweighting, wind and electronics demand accelerate, sets them at 6.4% and 1.8%, carrying the market past USD 20,960 million. Each 1-point change in tonnage growth moves the 2035 figure by roughly USD 1,560 million.

Which rules and standards apply?

Three layers matter. Trade measures come first: anti dumping and countervailing duties on imports of glass fiber from certain countries shape trade and pricing. Environmental and energy regulation is second: emissions rules and carbon pricing affect energy intensive glass melting. Product and building standards are third: standards for composites in construction, automotive and electronics govern where glass fiber can be used. The regulatory chapter maps these requirements.

Can glass fiber be recycled?

Glass fiber itself is inert, but once embedded in thermoset resin in composites it is difficult to recover, which creates growing waste streams from wind turbine blades, boats and vehicles. Recycling options include cement kiln co-processing, where glass fiber becomes a raw material for cement, mechanical grinding into fillers, and thermal processes that recover fibers, though recovered fibers are weaker than new ones. Producers are also working on reducing furnace emissions through electric melting. The model treats recycling as a marginal source of supply within the forecast period.

Douglas Exclusive: the furnace capacity and utilisation tracker

This report tracks, by producer and region, glass fiber furnace capacity, planned additions, utilisation rates, product mix and trade flows, converting composites and electronics demand into glass fiber volume and value by application and region. Licence holders receive it as a maintained tab in the Excel model.

Methodology and receipts

The model is built bottom-up from tonnes: glass fiber production capacity and output by producer and region, consumption by application, specialty grade mix, and realised prices from producer and trade data, with glass wool insulation, refractory ceramic fiber, optical fiber and finished composite parts excluded. Every figure carries a numbered source and a confidence grade in the fact sheet above, and the working model ships with every licence. The next scheduled review of this study is September 2027.

Inside the 172-page report

12 chapters 172 pages Every table ships in the Excel model
011. Executive summary 3 sections

Verdict and takeaways.

  • Snapshot
  • Decomposition
  • Takeaways
022. China's dominance 3 sections

Scale and overcapacity.

  • Giant furnaces
  • Trade measures
  • Plants abroad
033. Research methodology 3 sections

How the tonnage model is built.

  • Capacity
  • Consumption
  • Realised prices
044. AI and circuit boards 3 sections

Low loss yarns.

  • PCB glass fabric
  • Low dielectric grades
  • Tight supply
055. Drivers and restraints 5 sections

Forces behind growth.

  • Lightweighting
  • Construction
  • Wind
  • Electronics
  • Overcapacity, energy, trade
066. Market by application 4 sections

Value by category.

  • Construction
  • Transportation
  • Electronics
  • Wind
077. Recycling 3 sections

End of life composites.

  • Cement co-processing
  • Grinding
  • Electric melting
088. Regional analysis 4 sections

Six regions.

  • Asia Pacific
  • Europe
  • North America
  • Other regions
099. Competitive landscape 2 sections

Producers.

  • China Jushi, Taishan, CPIC
  • Owens Corning, NEG, Nittobo
1010. Pricing 3 sections

Price bands.

  • Standard rovings
  • Specialty grades
  • Electronic yarns
1111. Douglas Exclusive: furnace capacity and utilisation tracker 3 sections

Maintained.

  • Capacity
  • Utilisation
  • Trade flows
1212. Scenarios, regulation and appendix 3 sections

Bands and rules.

  • Scenarios
  • Trade, energy rules, product standards
  • Sources

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Questions buyers ask

How big is the glass fiber market?

USD 9,430.0 million in 2025, on Douglas Insights' bottom-up estimate: about 8.2 million tonnes at USD 1,150 per tonne.

How fast is glass fiber growing?

5.64% a year, reaching USD 16,320.5 million by 2035; 4.8 points from volume and 0.8 points from price.

Which glass fiber application leads?

Construction and infrastructure, at 34% of 2025 value (USD 3,206.2 million).

Where is glass fiber consumed?

Asia Pacific holds 58% of value and grows fastest at 6.11%.

Who makes glass fiber?

China Jushi, Taishan Fiberglass, Chongqing Polycomp, Owens Corning, Nippon Electric Glass, Johns Manville and Nitto Boseki lead.

What does the licence include?

The 172-page PDF, the editable Excel model, the Douglas Exclusive furnace capacity and utilisation tracker, a briefing call and the next edition at no extra charge.

Research & citation

This report was researched, written and reviewed by the Douglas Insights Research Desk under the Douglas Insights editorial standards. Material errors are logged in the corrections log. No section is sponsored.

Cite this report Douglas Insights Inc (2026). Glass Fiber Market. Report DI-CM-10223, September 2026. https://www.douglasinsights.com/glass-fiber-market/