目次
第1章 グローバルハイブリッドUAV市場 エグゼクティブサマリー
1.1. グローバルハイブリッドUAV市場規模および予測(2022年~2032年)
1.2. 地域別概要
1.3. 分野別概要
1.3.1. 種類別
1.3.2. 産業別
1.3.3. 推進力別
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 世界のハイブリッドUAV市場の定義と調査の前提条件
2.1. 調査の目的
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
2.3.3.1. 供給量
2.3.3.2. インフラ
2.3.3.3. 規制環境
2.3.3.4. 市場競争
2.3.3.5. 経済的実現性
2.3.4. 需要側分析
2.3.4.1. 規制枠組み
2.3.4.2. 技術的進歩
2.3.4.3. 環境への配慮
2.3.4.4. 消費者意識と受容性
2.4. 予測手法
2.5. 調査対象年
2.6. 通貨換算レート
第3章 世界のハイブリッドUAV市場のダイナミクス
3.1. 市場推進要因
3.1.1. ハイブリッドUAVシステムにおける技術進歩
3.1.2. 都市型空中移動ソリューションに対する需要の高まり
3.1.3. 商業用途での採用拡大
3.2. 市場の課題
3.2.1. 初期投資および開発コストの高さ
3.2.2. 規制上の障害および安全性への懸念
3.3. 市場機会
3.3.1. 新興経済圏での需要の高まり
3.3.2. AI駆動型エネルギー管理システムの開発
第4章 グローバルハイブリッドUAV市場の産業分析
4.1. ポーターのファイブフォースモデル
4.1.1. 供給業者の交渉力
4.1.2. 購入者の交渉力
4.1.3. 新規参入の脅威
4.1.4. 代替品の脅威
4.1.5. 競争の激しさ
4.2. PESTEL分析
4.2.1. 政治
4.2.2. 経済
4.2.3. 社会
4.2.4. 技術
4.2.5. 環境
4.2.6. 法律
4.3. 主要トレンドと混乱
4.4. 投資機会
4.5. アナリストの推奨
第5章 世界のハイブリッドUAV市場規模および種類別予測(2022年~2032年)
5.1. STOL(短距離離陸・着陸)UAV
5.2. 多ローターUAV
5.3. 揚力+巡航UAV
第6章 ハイブリッドUAVの世界市場規模および予測(2022年~2032年)産業別
6.1. 商業
6.2. 防衛および政府
第7章 推進方式別 ハイブリッドUAV世界市場規模・予測(2022年~2032年)
7.1. ハイブリッド電気UAV
7.2. 燃料電池UAV
第8章 航続時間別 ハイブリッドUAV世界市場規模・予測(2022年~2032年)
8.1. 短時間飛行UAV
8.2. 中時間飛行UAV
8.3. 長時間飛行型UAV
第9章 地域別ハイブリッドUAV市場規模および予測(2022年~2032年)
9.1. 北米
9.1.1. 米国
9.1.2. カナダ
9.2. ヨーロッパ
9.2.1. 英国
9.2.2. ドイツ
9.2.3. フランス
9.2.4. スペイン
9.2.5. イタリア
9.2.6. ヨーロッパのその他地域
9.3. アジア太平洋地域
9.3.1. 中国
9.3.2. インド
9.3.3. 日本
9.3.4. オーストラリア
9.3.5. 韓国
9.3.6. アジア太平洋地域のその他地域
9.4. ラテンアメリカ
9.4.1. ブラジル
9.4.2. メキシコ
9.4.3. その他の中南米諸国
9.5. 中東およびアフリカ
9.5.1. サウジアラビア
9.5.2. 南アフリカ
9.5.3. 中東およびアフリカのその他諸国
第10章 競合情報
10.1. 主要企業のSWOT分析
10.1.1. Northrop Grumman (US)
10.1.2. Thales (France)
10.1.3. Elbit Systems Ltd. (Israel)
10.2. 市場関係者が採用する主な戦略
10.3. 企業プロフィール
Northrop Grumman (US)
Thales (France)
L3Harris Technologies, Inc. (US)
JOUAV (China)
Elroy Air (US)
Draganfly (Canada)
Pipistrel (Italy)
Harris Aerial (US)
Natilus (US)
Doosan Mobility Innovation (South Korea)
Moya Aero (Brazil)
Wave Aerospace (US)
Aeronautics (Israel)
Skyfront (US)
Elbit Systems Ltd. (Israel)
第11章 調査プロセス
11.1. データマイニング
11.2. 分析
11.3. 市場予測
11.4. 検証
11.5. 発行
This dynamic growth is attributed to the integration of advanced technologies in hybrid UAV systems and the expanding adoption of these versatile solutions across various industries, including defense, logistics, agriculture, and urban air mobility.
Hybrid UAVs, characterized by their combination of conventional fuel-powered systems and electric propulsion, are revolutionizing aerial capabilities. By addressing the limitations of traditional UAVs, these hybrid systems enable enhanced payload capacities, extended flight endurance, and greater operational flexibility. As industries increasingly demand adaptable and efficient aerial solutions, hybrid UAVs have emerged as a critical innovation, meeting diverse application needs ranging from surveillance to cargo delivery.
Among the different types of hybrid UAVs, the Lift + Cruise segment is expected to grow at the fastest rate, driven by its ability to provide the efficiency of fixed-wing flight along with the versatility of vertical take-off and landing (VTOL). This unique combination makes it particularly suitable for applications in urban air mobility, emergency services, and logistics. Additionally, the commercial sector is poised for significant growth due to the increasing adoption of hybrid UAVs for applications such as crop monitoring, infrastructure inspection, and high-precision surveying.
Geographically, North America is projected to exhibit the highest growth rate in the hybrid UAV market, supported by robust aerospace and defense infrastructure and sustained investments in hybrid UAV technologies. Companies like AeroVironment and Northrop Grumman are leading innovations in this space, further accelerating market expansion. Meanwhile, regulatory advancements and a growing emphasis on sustainability are expected to foster the adoption of hybrid UAVs in urban environments across regions such as Europe and Asia-Pacific.
The competitive landscape of the hybrid UAV market is shaped by key players such as Northrop Grumman, Thales, L3Harris Technologies, and Elbit Systems Ltd., who are driving advancements in UAV design, propulsion systems, and AI-based energy optimization.
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Major market players included in this report are:
• Northrop Grumman (US)
• Thales (France)
• L3Harris Technologies, Inc. (US)
• JOUAV (China)
• Elroy Air (US)
• Draganfly (Canada)
• Pipistrel (Italy)
• Harris Aerial (US)
• Natilus (US)
• Doosan Mobility Innovation (South Korea)
• Moya Aero (Brazil)
• Wave Aerospace (US)
• Aeronautics (Israel)
• Skyfront (US)
• Elbit Systems Ltd. (Israel)
The detailed segments and sub-segments of the market are explained below:
By Type
• STOL UAV
• Multirotor UAV
• Lift + Cruise UAV
By Industry
• Commercial
• Defense & Government
By Propulsion
• Hybrid Electric
• Fuel Cell
By Endurance
• Short
• Medium
• Long
By Region
• North America
o U.S.
o Canada
• Europe
o UK
o Germany
o France
o Spain
o Italy
o Rest of Europe
• Asia Pacific
o China
o India
o Japan
o Australia
o South Korea
o Rest of Asia Pacific
• Latin America
o Brazil
o Mexico
o Rest of Latin America
• Middle East & Africa
o Saudi Arabia
o South Africa
o Rest of Middle East & Africa
Years Considered for the Study:
• Historic Year: 2022
• Base Year: 2023
• Forecast Period: 2024-2032
Key Takeaways:
• Market Estimates & Forecasts for 10 years (2022-2032).
• Annualized revenues and regional-level analysis for each market segment.
• Competitive landscape analysis, including company profiles and SWOT analysis.
• Insights into demand-side and supply-side dynamics, technological advancements, and sustainability trends.
Table of Content
Chapter 1. Global Hybrid UAV Market Executive Summary
1.1. Global Hybrid UAV Market Size & Forecast (2022-2032)
1.2. Regional Summary
1.3. Segmental Summary
1.3.1. By Type
1.3.2. By Industry
1.3.3. By Propulsion
1.4. Key Trends
1.5. Recession Impact
1.6. Analyst Recommendation & Conclusion
Chapter 2. Global Hybrid UAV 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
2.3.3.1. Availability
2.3.3.2. Infrastructure
2.3.3.3. Regulatory Environment
2.3.3.4. Market Competition
2.3.3.5. Economic Viability
2.3.4. Demand Side Analysis
2.3.4.1. Regulatory Frameworks
2.3.4.2. Technological Advancements
2.3.4.3. Environmental Considerations
2.3.4.4. Consumer Awareness & Acceptance
2.4. Estimation Methodology
2.5. Years Considered for the Study
2.6. Currency Conversion Rates
Chapter 3. Global Hybrid UAV Market Dynamics
3.1. Market Drivers
3.1.1. Technological Advancements in Hybrid UAV Systems
3.1.2. Increasing Demand for Urban Air Mobility Solutions
3.1.3. Growing Adoption in Commercial Applications
3.2. Market Challenges
3.2.1. High Initial Investment and Development Costs
3.2.2. Regulatory Hurdles and Safety Concerns
3.3. Market Opportunities
3.3.1. Rising Demand in Emerging Economies
3.3.2. Development of AI-Driven Energy Management Systems
Chapter 4. Global Hybrid UAV Market Industry Analysis
4.1. Porter’s Five Force Model
4.1.1. Bargaining Power of Suppliers
4.1.2. Bargaining Power of Buyers
4.1.3. Threat of New Entrants
4.1.4. Threat of Substitutes
4.1.5. Competitive Rivalry
4.2. PESTEL Analysis
4.2.1. Political
4.2.2. Economical
4.2.3. Social
4.2.4. Technological
4.2.5. Environmental
4.2.6. Legal
4.3. Key Trends and Disruptions
4.4. Investment Opportunities
4.5. Analyst Recommendations
Chapter 5. Global Hybrid UAV Market Size & Forecast by Type (2022-2032)
5.1. Short Take-Off and Landing (STOL) UAVs
5.2. Multirotor UAVs
5.3. Lift + Cruise UAVs
Chapter 6. Global Hybrid UAV Market Size & Forecast by Industry (2022-2032)
6.1. Commercial
6.2. Defense & Government
Chapter 7. Global Hybrid UAV Market Size & Forecast by Propulsion (2022-2032)
7.1. Hybrid Electric UAVs
7.2. Fuel Cell UAVs
Chapter 8. Global Hybrid UAV Market Size & Forecast by Endurance (2022-2032)
8.1. Short-Endurance UAVs
8.2. Medium-Endurance UAVs
8.3. Long-Endurance UAVs
Chapter 9. Global Hybrid UAV Market Size & Forecast by Region (2022-2032)
9.1. North America
9.1.1. U.S.
9.1.2. Canada
9.2. Europe
9.2.1. UK
9.2.2. Germany
9.2.3. France
9.2.4. Spain
9.2.5. Italy
9.2.6. Rest of Europe
9.3. Asia Pacific
9.3.1. China
9.3.2. India
9.3.3. Japan
9.3.4. Australia
9.3.5. South Korea
9.3.6. Rest of Asia Pacific
9.4. Latin America
9.4.1. Brazil
9.4.2. Mexico
9.4.3. Rest of Latin America
9.5. Middle East & Africa
9.5.1. Saudi Arabia
9.5.2. South Africa
9.5.3. Rest of Middle East & Africa
Chapter 10. Competitive Intelligence
10.1. Key Company SWOT Analysis
10.1.1. Northrop Grumman (US)
10.1.2. Thales (France)
10.1.3. Elbit Systems Ltd. (Israel)
10.2. Top Strategies Adopted by Market Players
10.3. Company Profiles
10.3.1. Northrop Grumman
10.3.2. Thales
10.3.3. L3Harris Technologies, Inc.
10.3.4. JOUAV
10.3.5. Elroy Air
10.3.6. Draganfly
10.3.7. Harris Aerial
10.3.8. Natilus
10.3.9. Doosan Mobility Innovation
10.3.10. Skyfront
Chapter 11. Research Process
11.1. Data Mining
11.2. Analysis
11.3. Market Estimation
11.4. Validation
11.5. Publishing
❖ 掲載企業 ❖
Northrop Grumman (US)、Thales (France)、L3Harris Technologies, Inc. (US)、JOUAV (China)、Elroy Air (US)、Draganfly (Canada)、Pipistrel (Italy)、Harris Aerial (US)、Natilus (US)、Doosan Mobility Innovation (South Korea)、Moya Aero (Brazil)、Wave Aerospace (US)、Aeronautics (Israel)、Skyfront (US)、Elbit Systems Ltd. (Israel)など
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