▶ 調査レポート

航空エンジン複合材のグローバル市場(2023~2028):商業航空機、軍用機、一般旅客機

• 英文タイトル:Aeroengine Composites Market - Growth, Trends, Covid-19 Impact, and Forecasts (2023 - 2028)

Mordor Intelligenceが調査・発行した産業分析レポートです。航空エンジン複合材のグローバル市場(2023~2028):商業航空機、軍用機、一般旅客機 / Aeroengine Composites Market - Growth, Trends, Covid-19 Impact, and Forecasts (2023 - 2028) / MRC2304C012資料のイメージです。• レポートコード:MRC2304C012
• 出版社/出版日:Mordor Intelligence / 2023年1月23日
• レポート形態:英文、PDF、124ページ
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• 産業分類:航空
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レポート概要
Mordor Intelligence社の市場調査では、2021年に22億ドルであった世界の航空エンジン複合材市場規模が予測期間中(2022年~2027年)に年平均成長率 14%を記録すると予想しています。本書では、航空エンジン複合材の世界市場を広く調査・分析をし、イントロダクション、調査手法、エグゼクティブサマリー、市場動向、用途別(商業航空機、軍用機、一般旅客機)分析、部品別(ファンブレード、ファンケース、ガイドベーン、シュラウド、その他)分析、地域別(アメリカ、カナダ、イギリス、フランス、ドイツ、中国、インド、日本、ブラジル、サウジアラビア、UAE、エジプト)分析、競争状況、市場機会・将来動向などについて掲載しています。並びに、調査対象企業には、GE Aviation、Rolls-Royce PLC、Safran SA、General Dynamics Corporation、GKN Aerospace、FACC AG、Meggitt PLC、Hexcel Corporation、Solvay SA、Albany Engineered Composites Inc.、Pratt & Whitney (Raytheon Technologies Corporation)などの企業情報が含まれています。
・イントロダクション
・調査手法
・エグゼクティブサマリー
・市場動向
・世界の航空エンジン複合材市場規模:用途別
- 商業航空機における市場規模
- 軍用機における市場規模
- 一般旅客機における市場規模
・世界の航空エンジン複合材市場規模:部品別
- ファンブレードの市場規模
- ファンケースの市場規模
- ガイドベーンの市場規模
- シュラウドの市場規模
- その他航空エンジン複合材の市場規模
・世界の航空エンジン複合材市場規模:地域別
- 北米の航空エンジン複合材市場規模
アメリカの航空エンジン複合材市場規模
カナダの航空エンジン複合材市場規模

- ヨーロッパの航空エンジン複合材市場規模
イギリスの航空エンジン複合材市場規模
フランスの航空エンジン複合材市場規模
ドイツの航空エンジン複合材市場規模

- アジア太平洋の航空エンジン複合材市場規模
中国の航空エンジン複合材市場規模
インドの航空エンジン複合材市場規模
日本の航空エンジン複合材市場規模

- 南米/中東の航空エンジン複合材市場規模
ブラジルの航空エンジン複合材市場規模
サウジアラビアの航空エンジン複合材市場規模
エジプトの航空エンジン複合材市場規模

・競争状況
・市場機会・将来動向

The aeroengine composites market was valued at over USD 2.2 billion in 2021 and is anticipated to register a CAGR of about 14% during the forecast period (2022-2027).

The outbreak of the COVID-19 pandemic in 2020 severely impacted the entire aviation industry. It has resulted in several aircraft operators filing for bankruptcy, which reduced the demand for aircraft and aircraft engines. Reducing future defense spending may also hamper future military aircraft procurement plans, as countries are more focused on enhancing healthcare infrastructure. The shutdown of industries in several countries in 2020 halted the manufacturing of components and materials and impacted the supply chain associated with aircraft and engine manufacturing. Although situations improved in 2021, the demand is expected to continue to remain lower than the pre-COVID-19 levels in the near future.

The substantial rise in passenger traffic and the imposition of new emission regulations led to a significant increase in demand for new-generation aircraft purchases over the last decade, before the pandemic. Aircraft manufacturers are developing new aircraft models in the commercial, military, and general aviation sectors, requiring newer engines with better performance and low weight. As a result, the emphasis on newer material technologies like composites is increasing.

With the major engine manufacturers emphasizing their own in-house composite material development capabilities, the dependency on outsourced materials is expected to reduce over the years.

Aeroengine Composites Market Trends

The Commercial Aircraft Segment Held the Highest Market Share in 2021

The commercial aircraft segment accounted for the highest market share in the aeroengine composites market in 2021. One of the main drivers for the market from the commercial sector is the demand for narrowbody aircraft. By the end of 2021, Airbus’ aircraft order backlog stood at 7,082 aircraft, out of which over 88% were A220 and A320ceo/neo family narrowbody aircraft. Likewise, Boeing’s year-end 2021 backlog was 4,250 aircraft, of which 3,414 were 737 family narrowbody jets. After two years of being grounded, the Boeing 737 Max has been cleared to return to the skies in several countries around the world in 2021, helping the growth of the overall narrowbody orders in 2021. Also, two new narrowbody aircraft models, the MC-21 and C919 aircraft, are expected to enter service in 2022. On the leap engines that power the A320 family of aircraft, along with the upcoming MC-21 and C919 aircraft, composite structures, including 3-D woven carbon fiber composite fan blades and fan cases, are used. Also, ceramic matrix composites (CMC) are used to build the turbine shrouds of the engine.

Many developments regarding the use of composites in commercial aircraft engines are underway. For instance, GE is working on new composite blades for the GE9X. The new engine is the largest manufactured by General Electric Company and is designed exclusively for Boeing’s 777X aircraft. The company has already received several orders and commitments for more than 700 GE9X engines from several airlines like Emirates, Qatar, Etihad, Lufthansa, Cathay Pacific, British Airways, and All Nippon Airways. With the deliveries of these aircraft being higher and the use of composites increasing on the commercial aircraft engines simultaneously, this trend is projected to continue, making the segment witness a healthy CAGR during the forecast period.

Asia-Pacific Expected to be the Fastest-growing Market for Aeroengine Composites During the Forecast Period

The Asia-Pacific region is now the fastest-growing market for aero-engine composites in terms of geography. This high growth rate is the increasing procurement of aircraft with engines that use these composites. In the commercial sector, more than one-third of the commercial aircraft deliveries of two aerospace giants, Airbus SE and The Boeing Company combined, are to the customers in Asia-Pacific. In May 2021, IndiGo, a major low-cost airline, announced that it selected CFM International ‘LEAP-1A’ engines to power its fleet of 310 new Airbus family of aircraft delivered from 2023. The aircraft belong to different categories, including A320neo, A321neo, and A321XLR. The agreement includes 620 new installed engines and associated spare engines and a long-term, multi-year service agreement. The Leap Engines used in the aircraft use a higher volume of composites than its predecessors.

On the other hand, in November 2021, the Royal Australian Air Force (RAAF) received three new Lockheed Martin-built F-35A Lightning II aircraft, taking the total size of the fleet to 44. GKN and Meggit supply several composite components for the F-135 engines that power the F-35 aircraft. Likewise, many developments in terms of composites on the aircraft engines procured by the region are expected to make the Asia-Pacific region the fastest-growing market in the years to come.

Aeroengine Composites Market Competitor Analysis

GE Aviation, Safran SA, Solvay SA, Meggitt PLC, and Hexcel Corporation are some of the prominent players in the market. Among the engine manufacturers, Safran and GE Aviation generate the highest demand for the aero-engine composites, whereas other manufacturers like Rolls-Royce PLC and Pratt & Whitney (Raytheon Technologies Corporation) are expected to increase the volume of composite usage in their engine models in the years to come. Over the years, engine manufacturers have developed significant in-house composite manufacturing capacities. For instance, GE Aviation has its own composites manufacturing facilities and various joint ventures (like Nexcelle with Safran SA). This trend may affect the market revenues of the composite suppliers for the engine OEMs. The usage of composites is increasing in aircraft.

The increase in the overall engine production rates means that the forecast period is showing considerable growth impetus for the aeroengine composite part manufacturers and their respective supply chains. Simultaneously, material suppliers will need to expand their raw materials output to stay in the competition, which is currently higher than ever before. The development of composites that can sustain high temperatures in the engine core will play a key role in the forecast period. Any improvement in this direction will greatly benefit composite manufacturers.

Additional Benefits:

  • The market estimate (ME) sheet in Excel format
  • 3 months of analyst support
レポート目次

1 INTRODUCTION
1.1 Study Assumptions and Market Definition
1.2 Scope of Study
1.3 Currency Conversion Rates for USD

2 RESEARCH METHODOLOGY

3 EXECUTIVE SUMMARY
3.1 Market Size and Forecast, Global, 2018 – 2027
3.2 Market Share by Application, 2021
3.3 Market Share by Component, 2021
3.4 Market Share by Geography, 2021
3.5 Structure of the Market and Key Participants

4 MARKET DYNAMICS
4.1 Market Overview
4.2 Market Drivers
4.3 Market Restraints
4.4 Industry Attractiveness – Porter’s Five Forces Analysis
4.4.1 Bargaining Power of Buyers/Consumers
4.4.2 Bargaining Power of Suppliers
4.4.3 Threat of New Entrants
4.4.4 Threat of Substitute Products
4.4.5 Intensity of Competitive Rivalry

5 MARKET SEGMENTATION (Market Size and Forecast by Value – USD billion, 2018 – 2027)
5.1 Application
5.1.1 Commercial Aircraft
5.1.2 Military Aircraft
5.1.3 General Aviation Aircraft
5.2 Component
5.2.1 Fan Blades
5.2.2 Fan Case
5.2.3 Guide Vanes
5.2.4 Shrouds
5.2.5 Other Components
5.3 Geography
5.3.1 North America
5.3.1.1 United States
5.3.1.1.1 Application
5.3.1.2 Canada
5.3.1.2.1 Application
5.3.2 Europe
5.3.2.1 United Kingdom
5.3.2.1.1 Application
5.3.2.2 France
5.3.2.2.1 Application
5.3.2.3 Germany
5.3.2.3.1 Application
5.3.2.4 Rest of Europe
5.3.2.4.1 Application
5.3.3 Asia-Pacific
5.3.3.1 China
5.3.3.1.1 Application
5.3.3.2 India
5.3.3.2.1 Application
5.3.3.3 Japan
5.3.3.3.1 Application
5.3.3.4 Rest of Asia-Pacific
5.3.3.4.1 Application
5.3.4 Latin America
5.3.4.1 Brazil
5.3.4.1.1 Application
5.3.4.2 Rest of Latin America
5.3.4.2.1 Application
5.3.5 Middle-East
5.3.5.1 Saudi Arabia
5.3.5.1.1 Application
5.3.5.2 United Arab Emirates
5.3.5.2.1 Application
5.3.5.3 Egypt
5.3.5.3.1 Application
5.3.5.4 Rest of Middle-East
5.3.5.4.1 Application

6 COMPETITIVE LANDSCAPE
6.1 Vendor Market Share
6.2 Company Profiles
6.2.1 GE Aviation
6.2.2 Rolls-Royce PLC
6.2.3 Safran SA
6.2.4 General Dynamics Corporation
6.2.5 GKN Aerospace
6.2.6 FACC AG
6.2.7 Meggitt PLC
6.2.8 Hexcel Corporation
6.2.9 Solvay SA
6.2.10 Albany Engineered Composites Inc.
6.2.11 Pratt & Whitney (Raytheon Technologies Corporation)

7 MARKET OPPORTUNITIES AND FUTURE TRENDS