Global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon Market Growth 2025-2031
Description
The global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market size is predicted to grow from US$ 1943 million in 2025 to US$ 7192 million in 2031; it is expected to grow at a CAGR of 24.4% from 2025 to 2031.
The impact of the latest U.S. tariff measures and the corresponding policy responses from countries worldwide on market competitiveness, regional economic performance, and supply chain configurations will be comprehensively evaluated in this report.
Low-oxygen, high-carbon continuous silicon carbide fiber has the characteristics of high strength, high modulus, high temperature resistance, anti-oxidation, low creep, and chemical corrosion resistance. It has low density and can be compounded with matrix materials such as ceramics, metals, and resins to prepare high-performance composite materials to achieve enhanced weight reduction. The second-generation SiC fiber is the fiber material currently used in major projects. Its tensile strength can reach about 2800MPa and its modulus is about 220GPa. It can still maintain good stability in a high temperature environment of 1200℃. Its domestic industrialization has solved the problem of guaranteeing silicon carbide fibers for hot end structural parts in various fields, and has been gradually applied in aerospace and other fields. For example, in the aviation field, SiC fibers are used in WS-XX model adjustment plates, sealing plates, and heat shields; in the aerospace field, SiC fibers are used in thermal structural parts (skins, frame beams, rudder wings, etc.) of a certain type of aerospace vehicle. Silicon carbide fiber is used by many units, such as the Institute of Space Materials and Technology of China Academy of Launch Vehicle Technology (703 Institute), AVIC Composites Co., Ltd., Northwestern Polytechnical University, Xi'an Xinyao Ceramic Composites Co., Ltd., Shaanxi Yuanfeng Textile Technology Research Co., Ltd., AECC Shenyang Liming Engine Company, Chengdu Chengwei Precision Machinery Manufacturing Co., Ltd., Shanghai Institute of Silicates, and China Aerospace Science and Industry Corporation 306 Institute. These units have already applied it on a large scale, and the demand is constantly expanding.
United States market for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon is estimated to increase from US$ million in 2024 to US$ million by 2031, at a CAGR of % from 2025 through 2031.
China market for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon is estimated to increase from US$ million in 2024 to US$ million by 2031, at a CAGR of % from 2025 through 2031.
Europe market for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon is estimated to increase from US$ million in 2024 to US$ million by 2031, at a CAGR of % from 2025 through 2031.
Global key Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon players cover Nippon Carbon Co. Ltd., COI Ceramics, Ube Industries, Ningbo Zhongxing New Materials Technology Co., Ltd., Fujian Leadasia New Material Co., Ltd., etc. In terms of revenue, the global two largest companies occupied for a share nearly % in 2024.
LP Information, Inc. (LPI) ' newest research report, the “Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon Industry Forecast” looks at past sales and reviews total world Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon sales in 2024, providing a comprehensive analysis by region and market sector of projected Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon sales for 2025 through 2031. With Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon sales broken down by region, market sector and sub-sector, this report provides a detailed analysis in US$ millions of the world Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon industry.
This Insight Report provides a comprehensive analysis of the global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon landscape and highlights key trends related to product segmentation, company formation, revenue, and market share, latest development, and M&A activity. This report also analyzes the strategies of leading global companies with a focus on Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon portfolios and capabilities, market entry strategies, market positions, and geographic footprints, to better understand these firms’ unique position in an accelerating global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market.
This Insight Report evaluates the key market trends, drivers, and affecting factors shaping the global outlook for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon and breaks down the forecast by Type, by Application, geography, and market size to highlight emerging pockets of opportunity. With a transparent methodology based on hundreds of bottom-up qualitative and quantitative market inputs, this study forecast offers a highly nuanced view of the current state and future trajectory in the global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon.
This report presents a comprehensive overview, market shares, and growth opportunities of Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market by product type, application, key manufacturers and key regions and countries.
Segmentation by Type:
Precursor Infiltration and Pyrolysis
Chemical Vapor Infiltration
Reactive Melt Infiltration
Others
Segmentation by Application:
Aerospace
Nuclear energy
Ships
Weapons
This report also splits the market by region:
Americas
United States
Canada
Mexico
Brazil
APAC
China
Japan
Korea
Southeast Asia
India
Australia
Europe
Germany
France
UK
Italy
Russia
Middle East & Africa
Egypt
South Africa
Israel
Turkey
GCC Countries
The below companies that are profiled have been selected based on inputs gathered from primary experts and analysing the company's coverage, product portfolio, its market penetration.
Nippon Carbon Co. Ltd.
COI Ceramics
Ube Industries
Ningbo Zhongxing New Materials Technology Co., Ltd.
Fujian Leadasia New Material Co., Ltd.
Hunan Zerui New Materials Co., Ltd.
Suzhou Saifei Group Co., Ltd.
Fujian Torch Electron Technology Co., Ltd.
Key Questions Addressed in this Report
What is the 10-year outlook for the global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market?
What factors are driving Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market growth, globally and by region?
Which technologies are poised for the fastest growth by market and region?
How do Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market opportunities vary by end market size?
How does Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon break out by Type, by Application?
Please note: The report will take approximately 2 business days to prepare and deliver.
The impact of the latest U.S. tariff measures and the corresponding policy responses from countries worldwide on market competitiveness, regional economic performance, and supply chain configurations will be comprehensively evaluated in this report.
Low-oxygen, high-carbon continuous silicon carbide fiber has the characteristics of high strength, high modulus, high temperature resistance, anti-oxidation, low creep, and chemical corrosion resistance. It has low density and can be compounded with matrix materials such as ceramics, metals, and resins to prepare high-performance composite materials to achieve enhanced weight reduction. The second-generation SiC fiber is the fiber material currently used in major projects. Its tensile strength can reach about 2800MPa and its modulus is about 220GPa. It can still maintain good stability in a high temperature environment of 1200℃. Its domestic industrialization has solved the problem of guaranteeing silicon carbide fibers for hot end structural parts in various fields, and has been gradually applied in aerospace and other fields. For example, in the aviation field, SiC fibers are used in WS-XX model adjustment plates, sealing plates, and heat shields; in the aerospace field, SiC fibers are used in thermal structural parts (skins, frame beams, rudder wings, etc.) of a certain type of aerospace vehicle. Silicon carbide fiber is used by many units, such as the Institute of Space Materials and Technology of China Academy of Launch Vehicle Technology (703 Institute), AVIC Composites Co., Ltd., Northwestern Polytechnical University, Xi'an Xinyao Ceramic Composites Co., Ltd., Shaanxi Yuanfeng Textile Technology Research Co., Ltd., AECC Shenyang Liming Engine Company, Chengdu Chengwei Precision Machinery Manufacturing Co., Ltd., Shanghai Institute of Silicates, and China Aerospace Science and Industry Corporation 306 Institute. These units have already applied it on a large scale, and the demand is constantly expanding.
United States market for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon is estimated to increase from US$ million in 2024 to US$ million by 2031, at a CAGR of % from 2025 through 2031.
China market for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon is estimated to increase from US$ million in 2024 to US$ million by 2031, at a CAGR of % from 2025 through 2031.
Europe market for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon is estimated to increase from US$ million in 2024 to US$ million by 2031, at a CAGR of % from 2025 through 2031.
Global key Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon players cover Nippon Carbon Co. Ltd., COI Ceramics, Ube Industries, Ningbo Zhongxing New Materials Technology Co., Ltd., Fujian Leadasia New Material Co., Ltd., etc. In terms of revenue, the global two largest companies occupied for a share nearly % in 2024.
LP Information, Inc. (LPI) ' newest research report, the “Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon Industry Forecast” looks at past sales and reviews total world Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon sales in 2024, providing a comprehensive analysis by region and market sector of projected Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon sales for 2025 through 2031. With Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon sales broken down by region, market sector and sub-sector, this report provides a detailed analysis in US$ millions of the world Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon industry.
This Insight Report provides a comprehensive analysis of the global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon landscape and highlights key trends related to product segmentation, company formation, revenue, and market share, latest development, and M&A activity. This report also analyzes the strategies of leading global companies with a focus on Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon portfolios and capabilities, market entry strategies, market positions, and geographic footprints, to better understand these firms’ unique position in an accelerating global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market.
This Insight Report evaluates the key market trends, drivers, and affecting factors shaping the global outlook for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon and breaks down the forecast by Type, by Application, geography, and market size to highlight emerging pockets of opportunity. With a transparent methodology based on hundreds of bottom-up qualitative and quantitative market inputs, this study forecast offers a highly nuanced view of the current state and future trajectory in the global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon.
This report presents a comprehensive overview, market shares, and growth opportunities of Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market by product type, application, key manufacturers and key regions and countries.
Segmentation by Type:
Precursor Infiltration and Pyrolysis
Chemical Vapor Infiltration
Reactive Melt Infiltration
Others
Segmentation by Application:
Aerospace
Nuclear energy
Ships
Weapons
This report also splits the market by region:
Americas
United States
Canada
Mexico
Brazil
APAC
China
Japan
Korea
Southeast Asia
India
Australia
Europe
Germany
France
UK
Italy
Russia
Middle East & Africa
Egypt
South Africa
Israel
Turkey
GCC Countries
The below companies that are profiled have been selected based on inputs gathered from primary experts and analysing the company's coverage, product portfolio, its market penetration.
Nippon Carbon Co. Ltd.
COI Ceramics
Ube Industries
Ningbo Zhongxing New Materials Technology Co., Ltd.
Fujian Leadasia New Material Co., Ltd.
Hunan Zerui New Materials Co., Ltd.
Suzhou Saifei Group Co., Ltd.
Fujian Torch Electron Technology Co., Ltd.
Key Questions Addressed in this Report
What is the 10-year outlook for the global Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market?
What factors are driving Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market growth, globally and by region?
Which technologies are poised for the fastest growth by market and region?
How do Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon market opportunities vary by end market size?
How does Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon break out by Type, by Application?
Please note: The report will take approximately 2 business days to prepare and deliver.
Table of Contents
103 Pages
- *This is a tentative TOC and the final deliverable is subject to change.*
- 1 Scope of the Report
- 2 Executive Summary
- 3 Global by Company
- 4 World Historic Review for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon by Geographic Region
- 5 Americas
- 6 APAC
- 7 Europe
- 8 Middle East & Africa
- 9 Market Drivers, Challenges and Trends
- 10 Manufacturing Cost Structure Analysis
- 11 Marketing, Distributors and Customer
- 12 World Forecast Review for Continuous Silicon Carbide Fiber with Low Oxygen and High Carbon by Geographic Region
- 13 Key Players Analysis
- 14 Research Findings and Conclusion
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