시장보고서
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항공우주 냉간 단조 시장 규모, 점유율, 성장률 및 세계 시장 분석 : 유형 및 용도별, 지역별 인사이트 및 예측(2026-2034년)

Aerospace Cold Forgings Market Size, Share, Growth and Global Industry Analysis By Type & Application, Regional Insights and Forecast to 2026-2034

발행일: | 리서치사: 구분자 Fortune Business Insights Pvt. Ltd. | 페이지 정보: 영문 200 Pages | 배송안내 : 2-3일 (영업일 기준)

    
    
    



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한글목차
영문목차
※ 본 상품은 영문 자료로 한글과 영문 목차에 불일치하는 내용이 있을 경우 영문을 우선합니다. 정확한 검토를 위해 영문 목차를 참고해주시기 바랍니다.

항공우주 냉간 단조 시장 성장 요인

세계 항공우주 냉간 단조 시장은 2025년 54억 5,000만 달러로 평가되었습니다. 2026년 58억 4,000만 달러에서 2034년까지 105억 9,000만 달러로 성장하고, 2026-2034년 7.40%의 연평균 복합 성장률(CAGR)을 보일 것으로 예측됩니다.

항공우주용 냉간 단조품은 실온 또는 이에 가까운 온도에서 성형되는 고강도, 고정밀도의 금속 부품입니다. 이 공정은 피로 저항성, 치수 정확도 및 결정립 구조를 향상시켜 엔진, 랜딩 기어, 기체 및 방위 시스템에 이상적인 부품입니다. 연료 효율성, 경량 항공기 및 차세대 추진 시스템에 대한 관심이 높아지면서 시장 수요는 계속 가속화되고 있습니다.

시장 역학

시장 성장 촉진요인

경량 소재에 대한 수요 증가

경량화 및 고강도 항공우주 부품에 대한 수요는 여전히 주요 성장 요인으로 작용하고 있습니다. 항공사와 OEM 업체들은 연료 효율과 배출가스 감소를 우선순위로 삼고 있습니다. 냉간 단조된 티타늄, 알루미늄 및 니켈 기반 합금은 구조적 신뢰성을 보장하면서 우수한 강도 대 중량 비율을 제공합니다.

예를 들어, 에어버스 A320neo, 보잉 737 MAX 등의 프로그램 생산 확대에 따라 단조 랜딩 기어, 구조용 피팅 및 엔진 부품에 대한 수요가 증가하고 있습니다.

시장 성장 억제요인

공급망 분절과 합금 부족

이 산업은 티타늄, 니켈 합금과 같은 특수 금속에 크게 의존하고 있습니다. 전 세계 공급업체 수가 한정되어 있고, 지정학적 혼란으로 인해 자재 부족과 리드타임이 길어지고 있습니다. Tier 2 및 Tier 3 단조 제조업체는 종종 현지 용해 능력이 부족하여 공급망이 외부 충격에 취약한 경우가 많으며, 이로 인해 공급망은 외부 충격에 취약합니다.

시장 기회

현지화와 차세대 합금

인도, 일본, 브라질 등의 국가들은 수입 의존도를 낮추기 위해 국내 단조시설에 대한 투자를 진행하고 있습니다. 첨단 티타늄 합금과 하이브리드 초합금은 민간 및 국방 항공기에서 더 가볍고 높은 응력을 견딜 수 있는 부품을 개발할 수 있는 기회를 창출하고 있습니다. 현지화 노력은 공급망 재구축과 탄력성 강화로 이어지고 있습니다.

시장 동향

자동화 및 디지털 단조

단조 공장에서는 CNC 제어 시스템, 로봇 자동화, AI를 활용한 품질 검사가 빠르게 도입되고 있습니다. 디지털 트윈 기술을 통해 생산 전 금속의 흐름과 금형의 응력을 시뮬레이션할 수 있어 효율성이 향상되고 스크랩을 최소화할 수 있습니다.

에어버스 SE가 참여하는 협업과 같이 OEM 및 디지털 솔루션 제공업체와의 파트너십을 통해 단조 시설 전반의 디지털 전환이 가속화되고 있습니다.

러시아-우크라이나 전쟁의 영향

러시아·우크라이나 분쟁은 티타늄 공급망에 심각한 혼란을 가져왔습니다. 러시아의 VSMPO-AVISMA사는 전통적으로 항공우주용 티타늄의 주요 공급처였습니다. 제재와 무역 제한으로 인해 자재 수급이 어려워지면서 OEM 업체들은 일본, 카자흐스탄, 인도 등으로 조달처를 다변화할 수밖에 없었습니다.

이러한 변화로 인해 합금 가격이 상승하고 리드타임이 길어지는 한편, 북미와 유럽에서의 현지화 노력도 가속화되었습니다. NATO 회원국 전반의 국방 수요 증가로 미사일 케이스, UAV 부품, 구조용 단조품에 대한 주문이 더욱 증가했습니다.

세분화 분석

재료 유형별

  • 알루미늄 합금은 높은 강도 대 중량비와 비용 효율성으로 인해 2026년 31.34%의 시장 점유율을 차지하며 시장을 선도하고 있습니다.
  • 티타늄 합금은 고응력 엔진 및 랜딩 기어에 대한 적용이 증가함에 따라 2034년까지 연평균 복합 성장률(CAGR) 9.3%로 가장 높은 성장률을 보일 것으로 예측됩니다.
  • 기타 부문에는 스테인리스 스틸, 니켈계 초합금, 탄소강 및 합금강이 포함됩니다.

부품 유형별

  • 랜딩 기어 부품은 매우 높은 내피로성과 구조적 강도가 요구되기 때문에 18.42%의 시장 점유율로 1위를 차지하고 있습니다.
  • 엔진 및 터빈 디스크는 차세대 추진 시스템으로 인해 CAGR 9.2%를 보일 것으로 예측됩니다.

항공기 유형별

  • 2026년에는 대규모 생산과 기체 교체 주기를 배경으로 민간용 협동기가 34.42%의 점유율을 차지하며 시장을 주도할 것으로 예측됩니다.
  • 군용 전투기 및 회전익 항공기는 CAGR 8.2%로 꾸준히 성장할 것으로 예측됩니다.

용도별

  • 엔진 시스템은 높은 기계적 및 열적 성능 요구 사항으로 인해 시장을 독점하고 있습니다.
  • 2026년에는 랜딩 기어 시스템이 시장 점유율의 17.29%를 차지했습니다.
  • 보조 시스템은 CAGR 8.5%를 보일 것으로 예측됩니다.

단조 기술별

  • 폐쇄형 다이(임프레션) 단조는 높은 치수 정밀도와 재료 효율을 제공하며, 34.36%의 점유율로 1위를 차지하고 있습니다.
  • 하이브리드 냉간/온간 단조는 CAGR 8.3%를 보일 것으로 예측됩니다.

최종 사용자별

  • OEM 제조업체는 설계 사양과 조달을 관리하고 있기 때문에 시장을 독점하고 있습니다. 주요 OEM 업체로는 보잉사, 에어버스 SE 등이 있습니다.
  • Tier-1 및 Tier-2 공급업체는 CAGR 8.1%를 보일 것으로 예측됩니다.

지역별 전망

북미

2025년 북미 시장은 19억 1,000만 달러로 미국이 지역 매출의 89% 이상을 차지했습니다. 미국 시장은 국방 현대화 및 OEM과의 통합에 힘입어 2026년 17억 1,000만 달러에 달할 것으로 예측됩니다.

유럽

유럽은 2025년 15억 달러를 기록해 2위 지역으로 부상했습니다. 영국 시장은 2026년 2억 7,000만 달러, 독일 시장은 2026년 2억 9,000만 달러에 달할 것으로 예측됩니다.

아시아태평양

아시아태평양은 2026년 13억 7,000만 달러, 중국은 5억 3,000만 달러, 일본은 2억 9,000만 달러, 인도는 1억 9,000만 달러에 달할 것으로 예측됩니다.

세계 기타 지역

라틴아메리카와 중동 및 아프리카는 이 지역의 항공우주 프로그램에 힘입어 2024년 총 14.28%의 점유율을 차지할 것으로 예측됩니다.

목차

제1장 서론

제2장 주요 요약

제3장 시장 역학

제4장 주요 인사이트

제5장 세계의 항공우주 냉간 단조 시장 분석, 인사이트, 예측, 2021년-2034년

제6장 북미의 항공우주 냉간 단조 시장 분석, 인사이트, 예측, 2021년-2034년

제7장 유럽의 항공우주 냉간 단조 시장 분석, 인사이트, 예측, 2021년-2034년

제8장 아시아태평양의 항공우주 냉간 단조 시장 분석, 인사이트, 예측, 2021년-2034년

제9장 세계 기타 지역 항공우주 냉간 단조 시장 분석, 인사이트, 예측, 2021년-2034년

제10장 경쟁 분석

제11장 기업 개요

LSH 26.04.29

Growth Factors of aerospace cold forgings Market

The global aerospace cold forgings market was valued at USD 5.45 billion in 2025 and is projected to grow from USD 5.84 billion in 2026 to USD 10.59 billion by 2034, registering a CAGR of 7.40% during 2026-2034. North America dominated the market with a 35.06% share in 2025, supported by strong U.S. defense spending and deep aerospace manufacturing integration.

Aerospace cold forgings are high-strength, precision metal components formed at or near room temperature. This process enhances fatigue resistance, dimensional accuracy, and grain structure, making these components ideal for engines, landing gear, airframes, and defense systems. The increasing focus on fuel efficiency, lightweight aircraft, and next-generation propulsion systems continues to accelerate market demand.

Market Dynamics

Market Drivers

Rising Demand for Lightweight Materials

The need for lighter and stronger aerospace components remains the primary growth driver. Airlines and OEMs are prioritizing fuel efficiency and emissions reduction. Cold-forged titanium, aluminum, and nickel-based alloys provide superior strength-to-weight ratios while ensuring structural reliability.

For example, production ramp-ups for programs such as the Airbus A320neo and the Boeing 737 MAX are increasing demand for forged landing gear, structural fittings, and engine components.

Market Restraints

Supply Chain Fragmentation and Alloy Shortages

The industry heavily depends on specialty metals such as titanium and nickel alloys. Limited global suppliers and geopolitical disruptions have led to material shortages and longer lead times. Tier-2 and Tier-3 forging houses often lack localized melting capabilities, making the supply chain vulnerable to external shocks.

Market Opportunities

Localization & Next-Generation Alloys

Countries such as India, Japan, and Brazil are investing in domestic forging facilities to reduce reliance on imports. Advanced titanium blends and hybrid superalloys are creating opportunities for lighter, high-stress components in civil and defense aircraft. Localization initiatives are reshaping supply chains and strengthening resilience.

Market Trends

Automation and Digital Forging

Forging plants are rapidly adopting CNC-controlled systems, robotic automation, and AI-driven quality inspection. Digital twin technology allows simulation of metal flow and die stress before production, improving efficiency and minimizing scrap.

Partnerships between OEMs and digital solution providers, such as collaborations involving Airbus SE, are accelerating digital transformation across forging facilities.

Russia-Ukraine War Impact

The Russia-Ukraine conflict significantly disrupted titanium supply chains. Russia's VSMPO-AVISMA Corporation has historically been a major supplier of aerospace-grade titanium. Sanctions and trade restrictions reduced material availability, forcing OEMs to diversify sourcing toward Japan, Kazakhstan, and India.

This shift increased alloy prices and extended lead times, while also accelerating localization efforts in North America and Europe. Defense demand across NATO countries further boosted orders for missile casings, UAV parts, and structural forgings.

Segmentation Analysis

By Material Type

  • Aluminum Alloys dominate with 31.34% market share in 2026, due to their high strength-to-weight ratio and cost efficiency.
  • Titanium Alloys are expected to grow at the fastest CAGR of 9.3% through 2034 due to increasing use in high-stress engine and landing gear applications.
  • Other segments include stainless steel, nickel-based superalloys, and carbon & alloy steel.

By Component Type

  • Landing Gear Components lead with 18.42% market share, as they require extreme fatigue resistance and structural strength.
  • Engine & Turbine Discs are projected to grow at a CAGR of 9.2% due to next-generation propulsion systems.

By Aircraft Type

  • Commercial Narrow-Body Aircraft dominate with 34.42% share in 2026, driven by large-scale production and fleet replacement cycles.
  • Military fighters & rotorcraft are expected to grow steadily at 8.2% CAGR.

By Application

  • Engine Systems dominate the market due to high mechanical and thermal performance requirements.
  • Landing gear systems accounted for 17.29% market share in 2026.
  • Auxiliary systems are projected to grow at 8.5% CAGR.

By Forging Technology

  • Closed-Die (Impression) Forging leads with 34.36% share, offering high dimensional accuracy and material efficiency.
  • Hybrid cold-warm forging is projected to grow at 8.3% CAGR.

By End User

  • OEMs dominate the market as they control design specifications and procurement. Major OEMs include The Boeing Company and Airbus SE.
  • Tier-1 & Tier-2 suppliers are expected to grow at 8.1% CAGR.

Regional Outlook

North America

North America accounted for USD 1.91 billion in 2025, with the U.S. contributing over 89% of regional revenue. The U.S. market is projected to reach USD 1.71 billion in 2026, driven by defense modernization and OEM integration.

Europe

Europe recorded USD 1.50 billion in 2025, making it the second-largest region. The UK market is projected at USD 0.27 billion in 2026, while Germany is expected to reach USD 0.29 billion in 2026.

Asia Pacific

Asia Pacific is valued at USD 1.37 billion in 2026, with China reaching USD 0.53 billion, Japan USD 0.29 billion, and India USD 0.19 billion in 2026.

Rest of the World

Latin America and the Middle East & Africa collectively contributed 14.28% share in 2024, supported by regional aerospace programs.

Competitive Landscape

The market is highly integrated, led by companies such as:

  • Precision Castparts Corporation
  • Arconic Corporation
  • Howmet Aerospace Inc.
  • Otto Fuchs KG
  • Bharat Forge Ltd.

These players focus on closed-die forging, automation, alloy innovation, and global expansion strategies.

Conclusion

The aerospace cold forgings market, valued at USD 5.45 billion in 2025, is projected to grow to USD 5.84 billion in 2026 and reach USD 10.59 billion by 2034, expanding at a CAGR of 7.40%. Growth is driven by lightweight material demand, commercial aircraft production ramp-ups, defense modernization, and digital forging technologies. Although supply chain disruptions and certification barriers pose challenges, increasing localization, next-generation alloy adoption, and automation advancements are expected to strengthen the market's resilience and sustain long-term growth through 2034.

Segmentation By Material Type

  • Aluminum Alloys
  • Titanium Alloys
  • Stainless Steel
  • Nickel-Based Superalloys
  • Carbon & Alloy Steel

By Component Type

  • Shafts & Spindles
  • Landing Gear Components
  • Engine & Turbine Discs
  • Structural Fittings
  • Fasteners & Bolts
  • Rings & Flanges
  • Others (Brackets, Rods, Bushings)

By Aircraft Type

  • Commercial Narrow-Body Aircraft
  • Wide-Body & Long-Range Aircraft
  • Military Fighters & Rotorcraft
  • Transport Aircraft & UAVs
  • Business Jets

By Application

  • Engine Systems
  • Landing Gear Systems
  • Airframe Structures
  • Control Systems
  • Auxiliary Systems
  • Others

By Forging Technology

  • Conventional Cold Forging
  • Closed Die / Impression Forging
  • Open Die Forging
  • Roll & Upset Forging
  • Others (Precision / CNC-Controlled Forging, Hybrid (Cold + Warm) Forging)

By End User

  • OEMs
  • Tier-1 & Tier-2 Suppliers
  • MRO Service Providers
  • Defense & Government Procurement Agencies

By Region

  • North America (By Material Type, By Component Type, By Aircraft Type, By Application, By Forging Technology, By End User, and By Country)
    • U.S. (By Material Type)
    • Canada (By Material Type)
  • Europe (By Material Type, By Component Type, By Aircraft Type, By Application, By Forging Technology, By End User, and By Country)
    • U.K. (By Material Type)
    • Germany (By Material Type)
    • France (By Material Type)
    • Italy (By Material Type)
    • Russia (By Material Type)
    • Rest of Europe (By Material Type)
  • Asia-Pacific (By Material Type, By Component Type, By Aircraft Type, By Application, By Forging Technology, By End User, and By Country)
    • China (By Material Type)
    • India (By Material Type)
    • Japan (By Material Type)
    • South Korea (By Material Type)
    • Singapore (By Material Type)
    • Rest of Asia-Pacific (By Material Type)
  • Rest of the World (By Material Type, By Component Type, By Aircraft Type, By Application, By Forging Technology, By End User, and By Country)
    • Latin America (By Material Type)
    • Middle East & Africa (By Material Type)

Table of Content

1. Introduction

  • 1.1. Research Scope
  • 1.2. Market Segmentation
  • 1.3. Research Methodology
  • 1.4. Definitions and Assumptions

2. Executive Summary

3. Market Dynamics

  • 3.1. Market Drivers
  • 3.2. Market Restraints
  • 3.3. Market Opportunities
  • 3.4. Market Trends

4. Key Insights

  • 4.1. Key Industry Developments - Key Contracts & Agreements, Mergers, Acquisitions and Partnerships
  • 4.2. Latest Technological Advancements
  • 4.3. Porters Five Forces Analysis
  • 4.4. Supply Chain Analysis
  • 4.5. Qualitative Insights - Impact of Russia-Ukraine War on Global Aerospace Cold Forgings Market

5. Global Aerospace Cold Forgings Market Analysis, Insights and Forecast, 2021-2034

  • 5.1. Key Findings / Definition
  • 5.2. Market Analysis, Insights and Forecast - By Material Type
    • 5.2.1. Aluminum Alloys
    • 5.2.2. Titanium Alloys
    • 5.2.3. Stainless Steel
    • 5.2.4. Nickel-Based Superalloys
    • 5.2.5. Carbon & Alloy Steel
  • 5.3. Market Analysis, Insights and Forecast - By Component Type
    • 5.3.1. Shafts & Spindles
    • 5.3.2. Landing Gear Components
    • 5.3.3. Engine & Turbine Discs
    • 5.3.4. Structural Fittings
    • 5.3.5. Fasteners & Bolts
    • 5.3.6. Rings & Flanges
    • 5.3.7. Others (Brackets, Rods, Bushings)
  • 5.4. Market Analysis, Insights and Forecast - By Aircraft Type
    • 5.4.1. Commercial Narrow-Body Aircraft
    • 5.4.2. Wide-Body & Long-Range Aircraft
    • 5.4.3. Military Fighters & Rotorcraft
    • 5.4.4. Transport Aircraft & UAVs
    • 5.4.5. Business Jets
  • 5.5. Market Analysis, Insights and Forecast - By Application
    • 5.5.1. Engine Systems
    • 5.5.2. Landing Gear Systems
    • 5.5.3. Airframe Structures
    • 5.5.4. Control Systems
    • 5.5.5. Auxiliary Systems
    • 5.5.6. Others
  • 5.6. Market Analysis, Insights and Forecast - By Forging Technology
    • 5.6.1. Conventional Cold Forging
    • 5.6.2. Closed Die / Impression Forging
    • 5.6.3. Open Die Forging
    • 5.6.4. Roll & Upset Forging
    • 5.6.5. Others (Precision / CNC-Controlled Forging, Hybrid (Cold + Warm) Forging)
  • 5.7. Market Analysis, Insights and Forecast - By End User
    • 5.7.1. OEMs
    • 5.7.2. Tier-1 & Tier-2 Suppliers
    • 5.7.3. MRO Service Providers
    • 5.7.4. Defense & Government Procurement Agencies
  • 5.8. Market Analysis, Insights and Forecast - By Region
    • 5.8.1. North America
    • 5.8.2. Europe
    • 5.8.3. Asia-Pacific
    • 5.8.4. Rest of the World

6. North America Aerospace Cold Forgings Market Analysis, Insights and Forecast, 2021-2034

  • 6.1. Market Analysis, Insights and Forecast - By Material Type
    • 6.1.1. Aluminum Alloys
    • 6.1.2. Titanium Alloys
    • 6.1.3. Stainless Steel
    • 6.1.4. Nickel-Based Superalloys
    • 6.1.5. Carbon & Alloy Steel
  • 6.2. Market Analysis, Insights and Forecast - By Component Type
    • 6.2.1. Shafts & Spindles
    • 6.2.2. Landing Gear Components
    • 6.2.3. Engine & Turbine Discs
    • 6.2.4. Structural Fittings
    • 6.2.5. Fasteners & Bolts
    • 6.2.6. Rings & Flanges
    • 6.2.7. Others (Brackets, Rods, Bushings)
  • 6.3. Market Analysis, Insights and Forecast - By Aircraft Type
    • 6.3.1. Commercial Narrow-Body Aircraft
    • 6.3.2. Wide-Body & Long-Range Aircraft
    • 6.3.3. Military Fighters & Rotorcraft
    • 6.3.4. Transport Aircraft & UAVs
    • 6.3.5. Business Jets
  • 6.4. Market Analysis, Insights and Forecast - By Application
    • 6.4.1. Engine Systems
    • 6.4.2. Landing Gear Systems
    • 6.4.3. Airframe Structures
    • 6.4.4. Control Systems
    • 6.4.5. Auxiliary Systems
    • 6.4.6. Others
  • 6.5. Market Analysis, Insights and Forecast - By Forging Technology
    • 6.5.1. Conventional Cold Forging
    • 6.5.2. Closed Die / Impression Forging
    • 6.5.3. Open Die Forging
    • 6.5.4. Roll & Upset Forging
    • 6.5.5. Others (Precision / CNC-Controlled Forging, Hybrid (Cold + Warm) Forging)
  • 6.6. Market Analysis, Insights and Forecast - By End User
    • 6.6.1. OEMs
    • 6.6.2. Tier-1 & Tier-2 Suppliers
    • 6.6.3. MRO Service Providers
    • 6.6.4. Defense & Government Procurement Agencies
  • 6.7. Market Analysis, Insights and Forecast - By Country
    • 6.7.1. U.S.
      • 6.7.1.1. Market Analysis, Insights and Forecast - By Material Type
        • 6.7.1.1.1. Aluminum Alloys
        • 6.7.1.1.2. Titanium Alloys
        • 6.7.1.1.3. Stainless Steel
        • 6.7.1.1.4. Nickel-Based Superalloys
        • 6.7.1.1.5. Carbon & Alloy Steel
    • 6.7.2. Canada
      • 6.7.2.1. Market Analysis, Insights and Forecast - By Material Type
        • 6.7.2.1.1. Aluminum Alloys
        • 6.7.2.1.2. Titanium Alloys
        • 6.7.2.1.3. Stainless Steel
        • 6.7.2.1.4. Nickel-Based Superalloys
        • 6.7.2.1.5. Carbon & Alloy Steel

7. Europe Aerospace Cold Forgings Market Analysis, Insights and Forecast, 2021-2034

  • 7.1. Market Analysis, Insights and Forecast - By Material Type
    • 7.1.1. Aluminum Alloys
    • 7.1.2. Titanium Alloys
    • 7.1.3. Stainless Steel
    • 7.1.4. Nickel-Based Superalloys
    • 7.1.5. Carbon & Alloy Steel
  • 7.2. Market Analysis, Insights and Forecast - By Component Type
    • 7.2.1. Shafts & Spindles
    • 7.2.2. Landing Gear Components
    • 7.2.3. Engine & Turbine Discs
    • 7.2.4. Structural Fittings
    • 7.2.5. Fasteners & Bolts
    • 7.2.6. Rings & Flanges
    • 7.2.7. Others (Brackets, Rods, Bushings)
  • 7.3. Market Analysis, Insights and Forecast - By Aircraft Type
    • 7.3.1. Commercial Narrow-Body Aircraft
    • 7.3.2. Wide-Body & Long-Range Aircraft
    • 7.3.3. Military Fighters & Rotorcraft
    • 7.3.4. Transport Aircraft & UAVs
    • 7.3.5. Business Jets
  • 7.4. Market Analysis, Insights and Forecast - By Application
    • 7.4.1. Engine Systems
    • 7.4.2. Landing Gear Systems
    • 7.4.3. Airframe Structures
    • 7.4.4. Control Systems
    • 7.4.5. Auxiliary Systems
    • 7.4.6. Others
  • 7.5. Market Analysis, Insights and Forecast - By Forging Technology
    • 7.5.1. Conventional Cold Forging
    • 7.5.2. Closed Die / Impression Forging
    • 7.5.3. Open Die Forging
    • 7.5.4. Roll & Upset Forging
    • 7.5.5. Others (Precision / CNC-Controlled Forging, Hybrid (Cold + Warm) Forging)
  • 7.6. Market Analysis, Insights and Forecast - By End User
    • 7.6.1. OEMs
    • 7.6.2. Tier-1 & Tier-2 Suppliers
    • 7.6.3. MRO Service Providers
    • 7.6.4. Defense & Government Procurement Agencies
  • 7.7. Market Analysis, Insights and Forecast - By Country
    • 7.7.1. U.K.
      • 7.7.1.1. Market Analysis, Insights and Forecast - By Material Type
        • 7.7.1.1.1. Aluminum Alloys
        • 7.7.1.1.2. Titanium Alloys
        • 7.7.1.1.3. Stainless Steel
        • 7.7.1.1.4. Nickel-Based Superalloys
        • 7.7.1.1.5. Carbon & Alloy Steel
    • 7.7.2. France
      • 7.7.2.1. Market Analysis, Insights and Forecast - By Material Type
        • 7.7.2.1.1. Aluminum Alloys
        • 7.7.2.1.2. Titanium Alloys
        • 7.7.2.1.3. Stainless Steel
        • 7.7.2.1.4. Nickel-Based Superalloys
        • 7.7.2.1.5. Carbon & Alloy Steel
    • 7.7.3. Germany
      • 7.7.3.1. Market Analysis, Insights and Forecast - By Material Type
        • 7.7.3.1.1. Aluminum Alloys
        • 7.7.3.1.2. Titanium Alloys
        • 7.7.3.1.3. Stainless Steel
        • 7.7.3.1.4. Nickel-Based Superalloys
        • 7.7.3.1.5. Carbon & Alloy Steel
    • 7.7.4. Russia
      • 7.7.4.1. Market Analysis, Insights and Forecast - By Material Type
        • 7.7.4.1.1. Aluminum Alloys
        • 7.7.4.1.2. Titanium Alloys
        • 7.7.4.1.3. Stainless Steel
        • 7.7.4.1.4. Nickel-Based Superalloys
        • 7.7.4.1.5. Carbon & Alloy Steel
    • 7.7.5. Italy
      • 7.7.5.1. Market Analysis, Insights and Forecast - By Material Type
        • 7.7.5.1.1. Aluminum Alloys
        • 7.7.5.1.2. Titanium Alloys
        • 7.7.5.1.3. Stainless Steel
        • 7.7.5.1.4. Nickel-Based Superalloys
        • 7.7.5.1.5. Carbon & Alloy Steel
    • 7.7.6. Rest of the Europe
      • 7.7.6.1. Market Analysis, Insights and Forecast - By Material Type
        • 7.7.6.1.1. Aluminum Alloys
        • 7.7.6.1.2. Titanium Alloys
        • 7.7.6.1.3. Stainless Steel
        • 7.7.6.1.4. Nickel-Based Superalloys
        • 7.7.6.1.5. Carbon & Alloy Steel

8. Asia-Pacific Aerospace Cold Forgings Market Analysis, Insights and Forecast, 2021-2034

  • 8.1. Market Analysis, Insights and Forecast - By Material Type
    • 8.1.1. Aluminum Alloys
    • 8.1.2. Titanium Alloys
    • 8.1.3. Stainless Steel
    • 8.1.4. Nickel-Based Superalloys
    • 8.1.5. Carbon & Alloy Steel
  • 8.2. Market Analysis, Insights and Forecast - By Component Type
    • 8.2.1. Shafts & Spindles
    • 8.2.2. Landing Gear Components
    • 8.2.3. Engine & Turbine Discs
    • 8.2.4. Structural Fittings
    • 8.2.5. Fasteners & Bolts
    • 8.2.6. Rings & Flanges
    • 8.2.7. Others (Brackets, Rods, Bushings)
  • 8.3. Market Analysis, Insights and Forecast - By Aircraft Type
    • 8.3.1. Commercial Narrow-Body Aircraft
    • 8.3.2. Wide-Body & Long-Range Aircraft
    • 8.3.3. Military Fighters & Rotorcraft
    • 8.3.4. Transport Aircraft & UAVs
    • 8.3.5. Business Jets
  • 8.4. Market Analysis, Insights and Forecast - By Application
    • 8.4.1. Engine Systems
    • 8.4.2. Landing Gear Systems
    • 8.4.3. Airframe Structures
    • 8.4.4. Control Systems
    • 8.4.5. Auxiliary Systems
    • 8.4.6. Others
  • 8.5. Market Analysis, Insights and Forecast - By Forging Technology
    • 8.5.1. Conventional Cold Forging
    • 8.5.2. Closed Die / Impression Forging
    • 8.5.3. Open Die Forging
    • 8.5.4. Roll & Upset Forging
    • 8.5.5. Others (Precision / CNC-Controlled Forging, Hybrid (Cold + Warm) Forging)
  • 8.6. Market Analysis, Insights and Forecast - By End User
    • 8.6.1. OEMs
    • 8.6.2. Tier-1 & Tier-2 Suppliers
    • 8.6.3. MRO Service Providers
    • 8.6.4. Defense & Government Procurement Agencies
  • 8.7. Market Analysis, Insights and Forecast - By Country
    • 8.7.1. China
      • 8.7.1.1. Market Analysis, Insights and Forecast - By Material Type
        • 8.7.1.1.1. Aluminum Alloys
        • 8.7.1.1.2. Titanium Alloys
        • 8.7.1.1.3. Stainless Steel
        • 8.7.1.1.4. Nickel-Based Superalloys
        • 8.7.1.1.5. Carbon & Alloy Steel
    • 8.7.2. India
      • 8.7.2.1. Market Analysis, Insights and Forecast - By Material Type
        • 8.7.2.1.1. Aluminum Alloys
        • 8.7.2.1.2. Titanium Alloys
        • 8.7.2.1.3. Stainless Steel
        • 8.7.2.1.4. Nickel-Based Superalloys
        • 8.7.2.1.5. Carbon & Alloy Steel
    • 8.7.3. Japan
      • 8.7.3.1. Market Analysis, Insights and Forecast - By Material Type
        • 8.7.3.1.1. Aluminum Alloys
        • 8.7.3.1.2. Titanium Alloys
        • 8.7.3.1.3. Stainless Steel
        • 8.7.3.1.4. Nickel-Based Superalloys
        • 8.7.3.1.5. Carbon & Alloy Steel
    • 8.7.4. South Korea
      • 8.7.4.1. Market Analysis, Insights and Forecast - By Material Type
        • 8.7.4.1.1. Aluminum Alloys
        • 8.7.4.1.2. Titanium Alloys
        • 8.7.4.1.3. Stainless Steel
        • 8.7.4.1.4. Nickel-Based Superalloys
        • 8.7.4.1.5. Carbon & Alloy Steel
    • 8.7.5. Singapore
      • 8.7.5.1. Market Analysis, Insights and Forecast - By Material Type
        • 8.7.5.1.1. Aluminum Alloys
        • 8.7.5.1.2. Titanium Alloys
        • 8.7.5.1.3. Stainless Steel
        • 8.7.5.1.4. Nickel-Based Superalloys
        • 8.7.5.1.5. Carbon & Alloy Steel
    • 8.7.6. Rest of the Asia-Pacific
      • 8.7.6.1. Market Analysis, Insights and Forecast - By Material Type
        • 8.7.6.1.1. Aluminum Alloys
        • 8.7.6.1.2. Titanium Alloys
        • 8.7.6.1.3. Stainless Steel
        • 8.7.6.1.4. Nickel-Based Superalloys
        • 8.7.6.1.5. Carbon & Alloy Steel

9. Rest of the World Aerospace Cold Forgings Market Analysis, Insights and Forecast, 2021-2034

  • 9.1. Market Analysis, Insights and Forecast - By Material Type
    • 9.1.1. Aluminum Alloys
    • 9.1.2. Titanium Alloys
    • 9.1.3. Stainless Steel
    • 9.1.4. Nickel-Based Superalloys
    • 9.1.5. Carbon & Alloy Steel
  • 9.2. Market Analysis, Insights and Forecast - By Component Type
    • 9.2.1. Shafts & Spindles
    • 9.2.2. Landing Gear Components
    • 9.2.3. Engine & Turbine Discs
    • 9.2.4. Structural Fittings
    • 9.2.5. Fasteners & Bolts
    • 9.2.6. Rings & Flanges
    • 9.2.7. Others (Brackets, Rods, Bushings)
  • 9.3. Market Analysis, Insights and Forecast - By Aircraft Type
    • 9.3.1. Commercial Narrow-Body Aircraft
    • 9.3.2. Wide-Body & Long-Range Aircraft
    • 9.3.3. Military Fighters & Rotorcraft
    • 9.3.4. Transport Aircraft & UAVs
    • 9.3.5. Business Jets
  • 9.4. Market Analysis, Insights and Forecast - By Application
    • 9.4.1. Engine Systems
    • 9.4.2. Landing Gear Systems
    • 9.4.3. Airframe Structures
    • 9.4.4. Control Systems
    • 9.4.5. Auxiliary Systems
    • 9.4.6. Others
  • 9.5. Market Analysis, Insights and Forecast - By Forging Technology
    • 9.5.1. Conventional Cold Forging
    • 9.5.2. Closed Die / Impression Forging
    • 9.5.3. Open Die Forging
    • 9.5.4. Roll & Upset Forging
    • 9.5.5. Others (Precision / CNC-Controlled Forging, Hybrid (Cold + Warm) Forging)
  • 9.6. Market Analysis, Insights and Forecast - By End User
    • 9.6.1. OEMs
    • 9.6.2. Tier-1 & Tier-2 Suppliers
    • 9.6.3. MRO Service Providers
    • 9.6.4. Defense & Government Procurement Agencies
  • 9.7. Market Analysis, Insights and Forecast - By Country
    • 9.7.1. Middle East & Africa
      • 9.7.1.1. Market Analysis, Insights and Forecast - By Material Type
        • 9.7.1.1.1. Aluminum Alloys
        • 9.7.1.1.2. Titanium Alloys
        • 9.7.1.1.3. Stainless Steel
        • 9.7.1.1.4. Nickel-Based Superalloys
        • 9.7.1.1.5. Carbon & Alloy Steel
    • 9.7.2. Latin America
      • 9.7.2.1. Market Analysis, Insights and Forecast - By Material Type
        • 9.7.2.1.1. Aluminum Alloys
        • 9.7.2.1.2. Titanium Alloys
        • 9.7.2.1.3. Stainless Steel
        • 9.7.2.1.4. Nickel-Based Superalloys
        • 9.7.2.1.5. Carbon & Alloy Steel

10. Competitive Analysis

  • 10.1. Global Market Rank Analysis (2025)
  • 10.2. Competitive Dashboard

11. Company Profiles (Overview, Products & Services, SWOT Analysis, Recent Developments, Strategies, Financials (Based on Availability))

  • 11.1. Precision Castparts Corporation (PCC) (U.S.)
  • 11.2. Arconic Corporation (U.S.)
  • 11.3. Howmet Aerospace Inc. (U.S.)
  • 11.4. Otto Fuchs KG (Germany)
  • 11.5. VSMPO-AVISMA Corporation (Russia)
  • 11.6. Bharat Forge Ltd. (India)
  • 11.7. Kobe Steel Ltd. (Japan)
  • 11.8. Safran S.A. (Safran Landing Systems) (France)
  • 11.9. IHI Corporation (Japan)
  • 11.10. Allegheny Technologies Incorporated (U.S.)
  • 11.11. Aerosud Aviation (Denel Group) (South Africa)
  • 11.12. Sumitomo Metal Industries, Ltd. (Japan)
  • 11.13. LISI Aerospace (France)
  • 11.14. Magellan Aerospace Corporation (Canada)
  • 11.15. Doncasters Group Ltd. (United Kingdom)
  • 11.16. MTU Aero Engines AG (Germany)
  • 11.17. GKN Aerospace (Melrose Industries) (United Kingdom)
  • 11.18. RTI International Metals (U.S.)
  • 11.19. Aichi Steel Corporation (Japan)
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