目次
第1章 グローバル航空宇宙試験市場 エグゼクティブサマリー
1.1. グローバル航空宇宙試験市場規模および予測(2022年~2032年)
1.2. 地域別概要
1.3. セグメント別概要
1.3.1. 試験の種類別
1.3.2. エンドユーザー別
1.3.3. 試験アプローチ別
1.4. 主要トレンド
1.5. 不況の影響
1.6. アナリストの推奨事項と結論
第2章 グローバル航空宇宙試験市場の定義と調査の前提条件
2.1. 調査目的
2.2. 市場の定義
2.3. 調査の前提条件
2.3.1. 対象範囲と除外範囲
2.3.2. 制限事項
2.3.3. 供給サイド分析
2.3.4. 需要サイド分析
2.4. 推定方法
2.5. 調査対象年
2.6. 通貨換算レート
第3章 世界の航空宇宙試験市場の力学
3.1. 市場推進要因
3.1.1. 航空宇宙技術および素材の進歩
3.1.2. 厳格な安全および規制基準
3.1.3. 航空機保有数の増加に伴うMRO活動の増加
3.2. 市場の課題
3.2.1. 先進的な試験装置のコスト高
3.2.2. 新しい航空宇宙技術の試験における複雑性
3.3. 市場機会
3.3.1. 航空宇宙製造における新興市場の成長
3.3.2. 持続可能性を重視した試験ソリューションへの需要
第4章 世界の航空宇宙試験市場の業界分析
4.1. ポーターのファイブフォースモデル
4.2. PESTEL分析
4.3. トップ投資機会
4.4. 勝利戦略
4.5. 破壊的トレンド
4.6. アナリストの推奨事項と結論
第5章 試験の種類別世界の航空宇宙試験市場規模および予測(2022年~2032年)
5.1. セグメントダッシュボード
5.2. 収益トレンド分析
5.2.1. 材料試験
5.2.2. 環境試験
5.2.3. 構造/コンポーネント試験
5.2.4. 航空電子工学/飛行および電子機器試験
5.2.5. 推進システム試験
第6章 航空宇宙試験の世界市場規模およびエンドユーザー別予測(2022年~2032年)
6.1. セグメントダッシュボード
6.2. 収益動向分析
6.2.1. 民間航空
6.2.2. 軍事および防衛
6.2.3. 宇宙開発
第7章 航空宇宙試験の世界市場規模および予測(2022年~2032年) 試験アプローチ別
7.1. セグメントダッシュボード
7.2. 収益トレンド分析
7.2.1. 社内試験
7.2.2. 外部委託試験
第8章 航空宇宙試験の世界市場規模および予測(2022年~2032年) 地域別
8.1. 北米
8.1.1. 米国
8.1.2. カナダ
8.2. ヨーロッパ
8.2.1. 英国
8.2.2. ドイツ
8.2.3. フランス
8.2.4. スペイン
8.2.5. イタリア
8.2.6. ヨーロッパのその他地域
8.3. アジア太平洋地域
8.3.1. 中国
8.3.2. インド
8.3.3. 日本
8.3.4. 韓国
8.3.5. オーストラリア
8.3.6. アジア太平洋地域その他
8.4. ラテンアメリカ
8.4.1. ブラジル
8.4.2. メキシコ
8.4.3. ラテンアメリカその他
8.5. 中東およびアフリカ
8.5.1. サウジアラビア
8.5.2. 南アフリカ
8.5.3. 中東およびアフリカのその他地域
第9章 競合情報
9.1. 主要企業のSWOT分析
9.1.1. Element Materials Technology
9.1.2. SGS SA
9.1.3. Intertek Group plc
9.2. トップ市場戦略
9.3. 企業プロフィール
Element Materials Technology (UK)
SGS SA (Switzerland)
Intertek Group plc (UK)
Applus+ (Spain)
TÜV SÜD (Germany)
TÜV Rheinland (Germany)
TÜV NORD Group (Germany)
Rohde & Schwarz (Germany)
Eurofins Scientific (Luxembourg)
The Boeing Company (US)
Airbus (Netherlands)
MISTRAS Group (US)
Lockheed Martin Corporation (US)
Bureau Veritas (France)
DEKRA (Germany)
第10章 調査プロセス
10.1. 調査方法
10.2. データマイニング
10.3. 検証
10.4. 発行
The aerospace testing industry serves as a vital component of the aviation ecosystem, ensuring compliance with stringent safety and regulatory standards while addressing the complexities of modern aerospace technologies. This dynamic market is driven by innovations in lightweight composites, advanced avionics, and autonomous as well as electric aircraft systems, which demand meticulous testing during design, manufacturing, and maintenance phases.
Aviation's evolving landscape emphasizes fuel-efficient, low-emission systems, heightening the necessity for extensive testing to align with environmental standards and sustainability objectives. Moreover, the increasing frequency of maintenance, repair, and overhaul (MRO) activities across expanding commercial and defense fleets amplifies the demand for reliable testing solutions. The integration of sophisticated avionics and electronics into next-generation aircraft, alongside emerging technologies such as autonomous flight systems and electric propulsion, underscores the importance of specialized aerospace testing services.
Avionics and flight electronics testing services represent the largest segment, reflecting the critical need for rigorous validation of complex systems operating under varying altitudes, temperatures, and emissions. Meanwhile, the commercial aviation sector dominates as the leading end-user, propelled by rising global air travel and the demand for certified components and systems, including engines, avionics, and airframe structures.
Regional Insights
North America leads the global aerospace testing market, driven by cutting-edge facilities, a robust network of aerospace manufacturers, and significant defense contractor presence. The U.S., home to industry giants like Boeing, Lockheed Martin, and Northrop Grumman, benefits from substantial government support, stringent regulatory mandates, and extensive defense budgets, fostering a favorable environment for aerospace testing advancements.
Major market players included in this report are:
• Element Materials Technology (UK)
• SGS SA (Switzerland)
• Intertek Group plc (UK)
• Applus+ (Spain)
• TÜV SÜD (Germany)
• TÜV Rheinland (Germany)
• TÜV NORD Group (Germany)
• Rohde & Schwarz (Germany)
• Eurofins Scientific (Luxembourg)
• The Boeing Company (US)
• Airbus (Netherlands)
• MISTRAS Group (US)
• Lockheed Martin Corporation (US)
• Bureau Veritas (France)
• DEKRA (Germany)
The detailed segments and sub-segments of the market are explained below:
By Testing Type:
• Material Testing
• Environmental Testing
• Structural/Component Testing
• Avionics/Flight & Electronics Testing
• Propulsion System Testing
By End User:
• Commercial Aviation
• Military & Defense
• Space Exploration
By Testing Approach:
• In-House Testing
• Outsourced Testing
By Region:
North America
• U.S.
• Canada
Europe
• UK
• Germany
• France
• Spain
• Italy
• Rest of Europe
Asia Pacific
• China
• India
• Japan
• South Korea
• Australia
• Rest of Asia Pacific
Latin America
• Brazil
• Mexico
• Rest of Latin America
Middle East & Africa
• Saudi Arabia
• South Africa
• Rest of Middle East & Africa
Years considered for the study are as follows:
Historical year – 2022
Base year – 2023
Forecast period – 2024 to 2032
Key Takeaways:
• Market Estimates & Forecast for 10 years from 2022 to 2032.
• Annualized revenues and regional-level analysis for each market segment.
• Detailed analysis of geographical landscape with country-level analysis of major regions.
• Competitive landscape with information on major players in the market.
• Analysis of key business strategies and recommendations on future market approach.
• Analysis of competitive structure of the market.
• Demand-side and supply-side analysis of the market.
Table of Content
Chapter 1. Global Aerospace Testing Market Executive Summary
1.1. Global Aerospace Testing Market Size & Forecast (2022–2032)
1.2. Regional Summary
1.3. Segmental Summary
1.3.1. By Testing Type
1.3.2. By End User
1.3.3. By Testing Approach
1.4. Key Trends
1.5. Recession Impact
1.6. Analyst Recommendation & Conclusion
Chapter 2. Global Aerospace Testing Market Definition and Research Assumptions
2.1. Research Objective
2.2. Market Definition
2.3. Research Assumptions
2.3.1. Inclusion & Exclusion
2.3.2. Limitations
2.3.3. Supply-Side Analysis
2.3.4. Demand-Side Analysis
2.4. Estimation Methodology
2.5. Years Considered for the Study
2.6. Currency Conversion Rates
Chapter 3. Global Aerospace Testing Market Dynamics
3.1. Market Drivers
3.1.1. Advancements in aerospace technology and materials
3.1.2. Stringent safety and regulatory standards
3.1.3. Increasing MRO activities for expanding fleets
3.2. Market Challenges
3.2.1. High costs of advanced testing equipment
3.2.2. Complexity in testing new aerospace technologies
3.3. Market Opportunities
3.3.1. Growth in emerging markets for aerospace manufacturing
3.3.2. Demand for sustainability-driven testing solutions
Chapter 4. Global Aerospace Testing Market Industry Analysis
4.1. Porter’s Five Forces Model
4.2. PESTEL Analysis
4.3. Top Investment Opportunities
4.4. Winning Strategies
4.5. Disruptive Trends
4.6. Analyst Recommendation & Conclusion
Chapter 5. Global Aerospace Testing Market Size & Forecasts by Testing Type (2022–2032)
5.1. Segment Dashboard
5.2. Revenue Trend Analysis
5.2.1. Material Testing
5.2.2. Environmental Testing
5.2.3. Structural/Component Testing
5.2.4. Avionics/Flight & Electronics Testing
5.2.5. Propulsion System Testing
Chapter 6. Global Aerospace Testing Market Size & Forecasts by End User (2022–2032)
6.1. Segment Dashboard
6.2. Revenue Trend Analysis
6.2.1. Commercial Aviation
6.2.2. Military & Defense
6.2.3. Space Exploration
Chapter 7. Global Aerospace Testing Market Size & Forecasts by Testing Approach (2022–2032)
7.1. Segment Dashboard
7.2. Revenue Trend Analysis
7.2.1. In-House Testing
7.2.2. Outsourced Testing
Chapter 8. Global Aerospace Testing Market Size & Forecasts by Region (2022–2032)
8.1. North America
8.1.1. U.S.
8.1.2. Canada
8.2. Europe
8.2.1. UK
8.2.2. Germany
8.2.3. France
8.2.4. Spain
8.2.5. Italy
8.2.6. Rest of Europe
8.3. Asia Pacific
8.3.1. China
8.3.2. India
8.3.3. Japan
8.3.4. South Korea
8.3.5. Australia
8.3.6. Rest of Asia Pacific
8.4. Latin America
8.4.1. Brazil
8.4.2. Mexico
8.4.3. Rest of Latin America
8.5. Middle East & Africa
8.5.1. Saudi Arabia
8.5.2. South Africa
8.5.3. Rest of Middle East & Africa
Chapter 9. Competitive Intelligence
9.1. Key Company SWOT Analysis
9.1.1. Element Materials Technology
9.1.2. SGS SA
9.1.3. Intertek Group plc
9.2. Top Market Strategies
9.3. Company Profiles
Chapter 10. Research Process
10.1. Research Methodology
10.2. Data Mining
10.3. Validation
10.4. Publishing
❖ 掲載企業 ❖
Element Materials Technology (UK)、SGS SA (Switzerland)、Intertek Group plc (UK)、Applus+ (Spain)、TÜV SÜD (Germany)、TÜV Rheinland (Germany)、TÜV NORD Group (Germany)、Rohde & Schwarz (Germany)、Eurofins Scientific (Luxembourg)、The Boeing Company (US)、Airbus (Netherlands)、MISTRAS Group (US)、Lockheed Martin Corporation (US)、Bureau Veritas (France)、DEKRA (Germany)など
❖ 免責事項 ❖
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