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고고도 항공 플랫폼 스테이션(HAAPS) 시장 : 유형, 주파수 대역, 서브시스템, 용도, 최종사용자, 국가별 분석 및 예측(2023-2033년)

Global High-Altitude Aeronautical Platform Station (HAAPS) Market: Focus on Type, Frequency Band, Subsystem, Application, End User, and Country - Analysis and Forecast, 2023-2033

발행일: | 리서치사: BIS Research | 페이지 정보: 영문 | 배송안내 : 1-5일 (영업일 기준)

    
    
    




■ 보고서에 따라 최신 정보로 업데이트하여 보내드립니다. 배송일정은 문의해 주시기 바랍니다.

고고도 항공 플랫폼 스테이션(HAAPS)은 성층권에서 운영되는 고고도 플랫폼으로, 기본적으로 인공위성의 역할을 수행하지만 지구 대기권 내에서 운영됩니다.

HAAPS는 일반적으로 원격조종 항공기와 주변 지원 시스템을 포함한 무인항공기 시스템(UAS)과 비교되지만, 통신, 환경 감시, 재난 대응 등 다양한 용도의 전략적 계획을 실행할 수 있는 자동화된 함대 시스템의 형태를 띠고 있다는 점에서 차별성을 지닙니다.의 운용 고도는 보통 18-22km(약 59,000-72,000피트)로 성층권 하층에 위치합니다. 이 범위는 기술 및 대기 조건을 고려하여 다양한 응용 분야에서 역할을 최적화하기 위해 선택됩니다.

주요 시장 통계
예측 기간 2023-2033년
2023년 평가액 11억 9,440만 달러
2033년 전망 33억 3,810만 달러
CAGR 10.82%

용도별로는 통신 부문이 시장을 독점하고 있습니다.

용도별로는 급증하는 세계 커넥티비티 수요에 대응하는 데 있어 매우 중요한 역할을 하는 통신 부문이 선두를 달리고 있습니다.

유형별로는 UAV 부문이 시장을 독식하고 있습니다.

유형별로는 무인항공기(UAV) 유형이 시장을 주도하고 있습니다. 이 부문 수요 증가는 고급 정보, 감시 및 정찰 능력에 대한 군의 요구에 의해 주도되고 있으며, UAV는 긴 비행 지속 시간, 확장된 항속거리, 다른 플랫폼에 비해 빠른 배치 능력으로 인해 이러한 요구 사항에 이상적인 솔루션을 제공합니다. 제공합니다.

주파수 대역별로는 C밴드 부문이 시장을 독점하고 있습니다.

이 부문 수요 증가는 특히 서비스 취약 지역과 원격지에서의 광범위한 광대역 연결에 대한 수요에 의해 주도되고 있으며, HAAPS 시스템은 최종 사용자에게 고정형 광대역 연결을 제공하고, 모바일 네트워크와 코어 네트워크 간 트래픽을 백홀링하기 위해 고려되고 있습니다. 모바일 네트워크 코어 네트워크 간 트래픽 백홀 등에 고려되고 있습니다.

하위 시스템별로는 비행 제어 하위 시스템 부문이 시장을 독점하고 있습니다.

고고도 및 다양한 대기 조건에서 고고도에서의 운영 제어 및 안전성을 강화해야 할 필요성이 이 부문 수요 증가를 주도하고 있습니다. 이러한 고도 제어 시스템은 장기간 자율적으로 작동해야 하는 HAAPS의 안정성과 항법을 유지하는 데 매우 중요하며, HAAPS의 복잡성과 기능이 향상됨에 따라 비행 제어 서브시스템은 이러한 플랫폼의 복잡한 운영을 관리하기 위해 그 어느 때보다 중요해졌습니다. 그 어느 때보다 중요해졌습니다.

세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장을 조사했으며, 시장 개요, 주요 동향, 규제 환경, 시장 영향요인 및 시장 기회 분석, 시장 규모 추이 및 예측, 각종 부문별/지역별 상세 분석, 경쟁 구도, 주요 기업 개요 등의 정보를 정리하여 전해드립니다. 정리했습니다.

목차

주요 요약

제1장 시장

  • 개요 : 세계의 고고도 항공 플랫폼 스테이션(HAAPS)
  • 비교 분석 : HAAPS vs. 위성 시스템 vs. 지상 시스템
  • 밸류체인 분석
  • 규제 상황
  • 주요 세계 이벤트의 영향 분석 - COVID-19
  • 프로젝트
  • 시장 역학 개요
    • 시장 성장 촉진요인
    • 시장이 해결해야 할 과제
    • 시장 기회

제2장 용도

  • 용도 분류
  • 용도 개요
  • 세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장
    • 시장 개요
  • 세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장 : 용도별
    • 통신
    • 지구관측
    • 조사
    • 기타
  • 세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장 : 최종사용자별
    • 상용
    • 정부 및 방위/연구기관

제3장 제품

  • 제품 분류
  • 제품 개요
  • 세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장
    • 시장 개요
  • 세계 고고도 항공 플랫폼 스테이션(HAAPS) 시장 : 유형별
    • 무인항공기
    • 비행선
    • 풍선
  • 세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장 : 주파수대별
    • L-Band/S-Band
    • C-Band
    • Ku-Band/Ka-Band
  • 세계의 고고도 항공 플랫폼 스테이션(HAAPS) 시장 : 서브시스템별
    • 비행 제어 서브시스템
    • 에너지 관리 서브시스템
    • 통신 페이로드 서브시스템

제4장 지역

  • 지역 개요
  • 북미
  • 유럽
  • 아시아태평양
  • 기타 지역

제5장 시장 : 경쟁 벤치마킹 및 기업 개요

  • Next Frontier
  • 지역적 평가
    • Airbus
    • AeroVironment, Inc
    • Thales
    • Prismatic Ltd
    • Aurora Flight Sciences
    • HEMERIA
    • Aerostar
    • UAVOS, Inc.
    • Sierra Nevada Corporation(SNC)
    • Lockheed Martin Corporation
    • World View Enterprises, Inc.
    • Sceye
    • Zero 2 Infinity, S.L.
    • Flying Whales

제6장 조사 방법

LSH 24.04.12

Global High-Altitude Aeronautical Platform Station Market Overview

The high-altitude aeronautical platform station (HAAPS) are high-altitude platforms that operate in the stratosphere, essentially serving as satellites but within the Earth's atmosphere. They are commonly compared to unmanned aircraft systems (UAS), which include remotely piloted aircraft and the support systems around them. However, HAPS are distinct because they form an autonomous fleet system that can execute strategic plans for various applications such as telecommunications, environmental monitoring, and disaster response. The operational altitude for high-altitude aeronautical platform station (HAAPS) is typically between 18 to 22 kilometers (approximately 59,000 to 72,000 feet), which is in the lower stratosphere. This altitude range is chosen to optimize their role in various applications while considering technical and atmospheric conditions. In terms of regulation, HAPS are governed by a framework that reflects their unique nature, distinguishing them from more commonly known drones or unmanned aircraft, which are often referred to when discussing UAS. This regulatory distinction is important as it influences the development, deployment, and integration of HAPS into national and international airspace.

To encapsulate, while HAPS share similarities with UAS in being unmanned and having the capability to perform tasks autonomously, they are specifically designed to operate at higher altitudes for extended periods, fulfilling roles that are complementary to satellites and, in some aspects, traditional aircraft. Their unique operational characteristics have led to the development of a dedicated regulatory approach to ensure their safe and effective use in the stratosphere.

KEY MARKET STATISTICS
Forecast Period2023 - 2033
2023 Evaluation$1,194.4 Million
2033 Forecast$3,338.1 Million
CAGR10.82%

Market Introduction

HAAPS platforms represent an emerging technology poised to create a novel market in the field of remote sensing and surveillance. They present innovative and supplementary functionalities to those provided by satellites, ground-based infrastructure, and remotely piloted aircraft systems (RPAS), delivering these capabilities at a comparatively reduced expense. Furthermore, several high-altitude aeronautical platform station (HAAPS) have been under development for years, with notable examples including BAE's Phasa-35 and Leonardo's Sky Dweller. Among the most promising is Airbus's Zephyr, which was estimated to cost between $10 to $20 million per unit in 2016. Zephyr achieved multiple milestones during a test flight in 2022, including surpassing its 2018 world record for unmanned aerial vehicle (UAV) endurance by completing over 63 days of continuous flight. This test demonstrated capabilities critical for operational success, such as international airspace navigation, beyond line-of-sight control via satellite communications, direct downlinking to forward ground stations, and over-water flight, essential for expeditionary advanced base operations (EABO).

Industrial Impact

The industrial impact of the high-altitude aeronautical platform station (HAAPS) market is multifaceted. It offers significant enhancements in telecommunications, facilitating improved connectivity in remote areas that traditionally lack infrastructure. This has implications for both commercial and emergency communication networks, enhancing the reach of internet services and providing a backbone for IoT applications. Additionally, high-altitude aeronautical platform station (HAAPS) technology plays a crucial role in surveillance and monitoring, contributing to improved weather forecasting, environmental monitoring, and border security. The evolution of this market is likely to spur innovation in aerospace and communication technologies, potentially creating new industry standards and practices.

Market Segmentation:

Segmentation 1: Application

  • Communication
  • Earth Observation
  • Research
  • Others

Communication Segment to Dominate the Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Application)

The communication segment is leading the global high-altitude aeronautical platform station (HAAPS) market (by application) due to its pivotal role in addressing the burgeoning global demand for connectivity.

Segmentation 2: by End User

  • Commercial
  • Government, Defense, and Research Institutes

Segmentation 3: by Type

  • UAVs
  • Airships
  • Balloons

UAVs to Dominate the Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Type)

The global high-altitude aeronautical platform station (HAAPS) market (by type) is led by the unmanned aerial vehicle (UAVs) type segment. The growing demand within the segment is propelled by the military's need for advanced intelligence, surveillance, and reconnaissance capabilities. UAVs provide an ideal solution for these requirements due to their extended flight endurance, augmented range capabilities, and the ability to be deployed rapidly compared to other platforms.

Segmentation 4: by Frequency Band

  • L-and S-Band
  • C-Band
  • Ku-and Ka-Band

C-Band Segment to Dominate the Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Frequency Band)

The global high-altitude aeronautical platform station (HAAPS) market (by frequency band) is led by the C-band. The growing demand within the segment is propelled by the need for broader broadband connectivity, especially in underserved communities and remote areas. High-altitude aeronautical platform station (HAAPS) systems are increasingly being considered for providing fixed broadband connectivity for end-users and backhauling traffic between mobile and core networks.

Segmentation 5: by Subsystem

  • Flight Control Subsystem
  • Energy Management Subsystem
  • Communications Payload Subsystem

Flight Control Subsystem Segment to Dominate the Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Subsystem)

The global high-altitude aeronautical platform station (HAAPS) market (by subsystem) is led by the flight control subsystem. The growing demand within the segment is propelled by the need for enhanced operational control and safety in varying atmospheric conditions at high altitudes. These advanced control systems are crucial for maintaining the stability and navigation of high-altitude aeronautical platform station (HAAPS), which are required to operate autonomously over extended periods. With the increase in complexity and capability of HAAPS, the flight control subsystem becomes ever more essential for managing the intricate operations of these platforms.

Segmentation 6: by Region

  • North America - U.S. and Canada
  • Europe - U.K., Germany, France, and Rest-of-the-Europe
  • Asia-Pacific - China, India, Australia, and Rest-of-Asia-Pacific
  • Rest-of-the-World

North America's high growth rate in the high-altitude aeronautical platform station (HAAPS) market (by region) is anticipated to be driven by increasing investments in telecommunications infrastructure and the integration of HAAPS into national defense and security systems. The region's demand for advanced communication solutions, especially in remote and rural areas, is expected to boost the adoption of high-altitude aeronautical platform station (HAAPS). Additionally, technological advancements in high-altitude aeronautical platform station (HAAPS)and supportive government policies are likely to contribute to market growth in North America.

Recent Developments in the Global High-Altitude Aeronautical Platform Station (HAAPS) Market

In November 2022, World View and Sierra Nevada Corporation (SNC) collaborated to develop unmanned stratospheric balloons designed for intelligence, surveillance, and reconnaissance (ISR) as well as communications applications. This partnership combined SNC's proficiency in defense and aerospace integration, mission systems, and payload with World View's Earth observation capability from high altitudes. The joint effort aimed to facilitate the swift deployment of high-altitude balloon platforms, ensuring reliable positioning and responsiveness within hours or days, enabling round-the-clock operations. The companies showcased a rapidly maneuverable, ultra-persistent wide-area communications and ISR platform under the UK Ministry of Defence's Project Aether Program.

  • In September 2022, UAVOS carried out a successful test flight of its solar-powered ApusDuo plane at a flight center in Europe. The plane flew non-stop for 11 hours and reached up to 15,000 meters high. Throughout this journey, the ApusDuo accomplished an array of over twenty test objectives. These encompassed the verification of the energy balance, assessments of the power propulsion capabilities, and the analysis of the propellers' revolutions per minute (RPM). Furthermore, the flight served as a platform to examine the efficacy of the aircraft motor control, which has undergone several enhancements.
  • In April 2022, MeteoSolutions GmbH, commissioned by the German Weather Service (DWD), is actively engaged in the OBeLiSk research and development project. This initiative, funded by BMWK's aviation research program LuFo VI-1, aimed to devise an operational concept for a high-altitude aeronautical station (HAAPS) intended to function as a platform in the stratosphere. A critical aspect of this project involves assessing weather conditions at designated airports for high-altitude aeronautical platform station (HAAPS) operations, considering the structural load capacities.

How can this report add value to an organization?

Product/Innovation Strategy: The product segment helps the reader understand the different types of products available for deployment and their potential globally. Moreover, the study provides the reader with a detailed understanding of the global high-altitude aeronautical platform station (HAAPS) market based on applications on the basis of the end user(commercial and Government, Defense, and Research Institutes), application (commercial, Earth observation, research, and others) and based on the products on the basis of type (UAVs, airships, balloons), subsystems (flight control subsystem, energy management subsystem, and communications payload subsystem), and frequency band (L-and S-Band, C-Band, Ku-and Ka-Band).

Growth/Marketing Strategy: The global high-altitude aeronautical platform station (HAAPS) market has seen major development by key players operating in the market, such as business expansion, partnership, collaboration, and joint venture. The favored strategy for the companies has been partnerships and contracts to strengthen their position in the global high-altitude aeronautical platform station (HAAPS) market. For instance, in June 2022, Stratodynamics received the highest accolades at the Air Traffic Management Awards for its innovation, the HiDRON, an unmanned glider launched via balloon, designed for high-altitude operations. This recognition marked a significant milestone in the Canada High-Altitude Aeronautical Platform Station (HAAPS) market, underscoring the country's growing influence and leadership in developing advanced aerial technologies.

Methodology: The research methodology design adopted for this specific study includes a mix of data collected from primary and secondary data sources. Both primary resources (key players, market leaders, and in-house experts) and secondary research (a host of paid and unpaid databases), along with analytical tools, are employed to build the predictive and forecast models.

Data and validation have been taken into consideration from both primary sources as well as secondary sources.

Key Considerations and Assumptions in Market Engineering and Validation

  • Detailed secondary research has been done to ensure maximum coverage of manufacturers/suppliers operational in a country.
  • Based on the classification, the average selling price (ASP) has been calculated using the weighted average method.
  • The currency conversion rate has been taken from the historical exchange rate of Oanda and/or other relevant websites.
  • Any economic downturn in the future has not been taken into consideration for the market estimation and forecast.
  • The base currency considered for the market analysis is US$. Currencies other than the US$ have been converted to the US$ for all statistical calculations, considering the average conversion rate for that particular year.
  • The term "product" in this document may refer to "drone type" as and where relevant.
  • The term "manufacturers/suppliers" may refer to "systems providers" or "technology providers" as and where relevant.

Primary Research

The primary sources involve industry experts from the aerospace and defense industry, including high-altitude aeronautical platform station (HAAPS) manufacturers manufacturing for the commercial and/or government industry and component manufacturers. Respondents such as CEOs, vice presidents, marketing directors, and technology and innovation directors have been interviewed to obtain and verify both qualitative and quantitative aspects of this research study.

Secondary Research

This study involves the usage of extensive secondary research, company websites, directories, and annual reports. It also makes use of databases, such as Spacenews, Businessweek, and others, to collect effective and useful information for a market-oriented, technical, commercial, and extensive study of the global market. In addition to the data sources, the study has been undertaken with the help of other data sources and websites, such as www.nasa.gov.

Secondary research was done to obtain critical information about the industry's value chain, the market's monetary chain, revenue models, the total pool of key players, and the current and potential use cases and applications.

Key Market Players and Competition Synopsis

The companies that are profiled have been selected based on thorough secondary research, which includes analyzing company coverage, product portfolio, market penetration, and insights gathered from primary experts.

The global high-altitude aeronautical platform station (HAAPS) market comprises key players who have established themselves thoroughly and have the proper understanding of the market, accompanied by start-ups who are looking forward to establishing themselves in this highly competitive market. In 2022, the global high-altitude aeronautical platform station (HAAPS) market was dominated by established players, accounting for 71% of the market share, whereas start-ups managed to capture 29% of the market.

Some prominent names established in this market are:

  • Airbus
  • AeroVironment, Inc.
  • Prismatic Ltd
  • Aurora Flight Sciences
  • HEMERIA
  • Aerostar
  • UAVOS, Inc.
  • Sierra Nevada Corporation (SNC)
  • Lockheed Martin Corporation
  • World View Enterprises, Inc.
  • Sceye
  • Zero 2 Infinity, S.L.
  • Flying Whales

Table of Contents

Executive Summary

Scope and Definition

1 Markets

  • 1.1 Overview: Global High-Altitude Aeronautical Platform Station (HAAPS)
  • 1.2 Comparative Analysis: HAAPS vs. Satellite Systems vs. Terrestrial Systems
  • 1.3 Value Chain Analysis
  • 1.4 Regulatory Landscape
  • 1.5 Impact Analysis for Key Global Events - COVID-19
  • 1.6 Projects
    • 1.6.1 High-Altitude Platform Station (HAPS) Development Initiative
    • 1.6.2 Uncrewed High-Altitude Platform (HAP)
    • 1.6.3 South Korea's Stratospheric Airship
    • 1.6.4 The Perlan Project
  • 1.7 Market Dynamics Overview
    • 1.7.1 Market Drivers
      • 1.7.1.1 Emergence of Artificial Intelligence
      • 1.7.1.2 Increase in Use of Composite Material
      • 1.7.1.3 Miniaturization of HAAPS Instruments and Payloads
    • 1.7.2 Market Challenges
      • 1.7.2.1 Technical Challenges such as Low Solar Panel Efficiency and Less Structural Integrity
    • 1.7.3 Market Opportunities
      • 1.7.3.1 Increase in Digitalization in Defense

2 Application

  • 2.1 Application Segmentation
  • 2.2 Application Summary
  • 2.3 Global High-Altitude Aeronautical Platform Station (HAAPS) Market
    • 2.3.1 Market Overview
  • 2.4 Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Application)
    • 2.4.1 Communication
    • 2.4.2 Earth Observation
    • 2.4.3 Research
    • 2.4.4 Others
  • 2.5 Global High-Altitude Aeronautical Platform Station (HAAPS) (by End User)
    • 2.5.1 Commercial
    • 2.5.2 Government, Defense, and Research Institutes

3 Products

  • 3.1 Product Segmentation
  • 3.2 Product Summary
  • 3.3 Global High-Altitude Aeronautical Platform Station (HAAPS) Market
    • 3.3.1 Market Overview
  • 3.4 Gobal High-Altitude Aeronautical Platform Station (HAAPS) Market (by Type)
    • 3.4.1 UAVs
    • 3.4.2 Airships
    • 3.4.3 Balloons
  • 3.5 Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Frequency Band)
    • 3.5.1 L-and S-Band
    • 3.5.2 C Band
    • 3.5.3 Ku-and Ka-Band
  • 3.6 Global High-Altitude Aeronautical Platform Station (HAAPS) Market (by Subsystem)
    • 3.6.1 Flight Control Subsystem
    • 3.6.2 Energy Management Subsystem
    • 3.6.3 Communications Payload Subsystem

4 Regions

  • 4.1 Regional Summary
  • 4.2 North America
    • 4.2.1 Regional Overview
    • 4.2.2 Driving Factors for Market Growth
    • 4.2.3 Factors Challenging the Market
    • 4.2.4 Application
    • 4.2.5 Product
    • 4.2.6 U.S.
    • 4.2.7 Canada
  • 4.3 Europe
    • 4.3.1 Regional Overview
    • 4.3.2 Driving Factors for Market Growth
    • 4.3.3 Factors Challenging the Market
    • 4.3.4 Application
    • 4.3.5 Product
    • 4.3.6 France
    • 4.3.7 Germany
    • 4.3.8 U.K.
    • 4.3.9 Rest-of-Europe
  • 4.4 Asia-Pacific
    • 4.4.1 Regional Overview
    • 4.4.2 Driving Factors for Market Growth
    • 4.4.3 Factors Challenging the Market
    • 4.4.4 Application
    • 4.4.5 Product
    • 4.4.6 China
    • 4.4.7 India
    • 4.4.8 Australia
    • 4.4.9 Rest-of-Asia-Pacific
  • 4.5 Rest-of-the-World
    • 4.5.1 Regional Overview
    • 4.5.2 Driving Factors for Market Growth
    • 4.5.3 Factors Challenging the Market
    • 4.5.4 Application
    • 4.5.5 Product
    • 4.5.6 Latin America
    • 4.5.7 Regional Overview
    • 4.5.8 Application
    • 4.5.9 Middle East and Africa
    • 4.5.10 Regional Overview
    • 4.5.11 Application

5 Markets - Competitive Benchmarking & Company Profiles

  • 5.1 Next Frontiers
  • 5.2 Geographic Assessment
    • 5.2.1 Airbus
      • 5.2.1.1 Overview
      • 5.2.1.2 Top Products/Product Portfolio
      • 5.2.1.3 Top Competitors
      • 5.2.1.4 Target Customers
      • 5.2.1.5 Key Personnel
      • 5.2.1.6 Analyst View
      • 5.2.1.7 Market Share, 2022
    • 5.2.2 AeroVironment, Inc
      • 5.2.2.1 Overview
      • 5.2.2.2 Top Products/Product Portfolio
      • 5.2.2.3 Top Competitors
      • 5.2.2.4 Target Customers
      • 5.2.2.5 Key Personnel
      • 5.2.2.6 Analyst View
      • 5.2.2.7 Market Share, 2022
    • 5.2.3 Thales
      • 5.2.3.1 Overview
      • 5.2.3.2 Top Products/Product Portfolio
      • 5.2.3.3 Top Competitors
      • 5.2.3.4 Target Customers
      • 5.2.3.5 Key Personnel
      • 5.2.3.6 Analyst View
      • 5.2.3.7 Market Share, 2022
    • 5.2.4 Prismatic Ltd
      • 5.2.4.1 Overview
      • 5.2.4.2 Top Products/Product Portfolio
      • 5.2.4.3 Top Competitors
      • 5.2.4.4 Target Customers
      • 5.2.4.5 Key Personnel
      • 5.2.4.6 Analyst View
      • 5.2.4.7 Market Share, 2022
    • 5.2.5 Aurora Flight Sciences
      • 5.2.5.1 Overview
      • 5.2.5.2 Top Products/Product Portfolio
      • 5.2.5.3 Top Competitors
      • 5.2.5.4 Target Customers
      • 5.2.5.5 Key Personnel
      • 5.2.5.6 Analyst View
      • 5.2.5.7 Market Share, 2022
    • 5.2.6 HEMERIA
      • 5.2.6.1 Overview
      • 5.2.6.2 Top Products/Product Portfolio
      • 5.2.6.3 Top Competitors
      • 5.2.6.4 Target Customers
      • 5.2.6.5 Key Personnel
      • 5.2.6.6 Analyst View
      • 5.2.6.7 Market Share, 2022
    • 5.2.7 Aerostar
      • 5.2.7.1 Overview
      • 5.2.7.2 Top Products/Product Portfolio
      • 5.2.7.3 Top Competitors
      • 5.2.7.4 Target Customers
      • 5.2.7.5 Key Personnel
      • 5.2.7.6 Analyst View
      • 5.2.7.7 Market Share, 2022
    • 5.2.8 UAVOS, Inc.
      • 5.2.8.1 Overview
      • 5.2.8.2 Top Products/Product Portfolio
      • 5.2.8.3 Target Customers
      • 5.2.8.4 Key Personnel
      • 5.2.8.5 Analyst View
      • 5.2.8.6 Market Share, 2022
    • 5.2.9 Sierra Nevada Corporation (SNC)
      • 5.2.9.1 Overview
      • 5.2.9.2 Top Products/Product Portfolio
      • 5.2.9.3 Target Customers
      • 5.2.9.4 Key Personnel
      • 5.2.9.5 Analyst View
      • 5.2.9.6 Market Share, 2022
    • 5.2.10 Lockheed Martin Corporation
      • 5.2.10.1 Overview
      • 5.2.10.2 Top Products/Product Portfolio
      • 5.2.10.3 Top Competitors
      • 5.2.10.4 Target Customers
      • 5.2.10.5 Key Personnel
      • 5.2.10.6 Analyst View
      • 5.2.10.7 Market Share, 2022
    • 5.2.11 World View Enterprises, Inc.
      • 5.2.11.1 Overview
      • 5.2.11.2 Top Products/Product Portfolio
      • 5.2.11.3 Top Competitors
      • 5.2.11.4 Target Customers
      • 5.2.11.5 Key Personnel
      • 5.2.11.6 Analyst View
      • 5.2.11.7 Market Share, 2022
    • 5.2.12 Sceye
      • 5.2.12.1 Overview
      • 5.2.12.2 Top Products/Product Portfolio
      • 5.2.12.3 Top Competitors
      • 5.2.12.4 Target Customers
      • 5.2.12.5 Key Personnel
      • 5.2.12.6 Analyst View
      • 5.2.12.7 Market Share, 2022
    • 5.2.13 Zero 2 Infinity, S.L.
      • 5.2.13.1 Overview
      • 5.2.13.2 Top Products/Product Portfolio
      • 5.2.13.3 Top Competitors
      • 5.2.13.4 Target Customers
      • 5.2.13.5 Key Personnel
      • 5.2.13.6 Analyst View
      • 5.2.13.7 Market Share, 2022
    • 5.2.14 Flying Whales
      • 5.2.14.1 Overview
      • 5.2.14.2 Top Products/Product Portfolio
      • 5.2.14.3 Top Competitors
      • 5.2.14.4 Target Customers
      • 5.2.14.5 Key Personnel
      • 5.2.14.6 Analyst View
      • 5.2.14.7 Market Share, 2022

6 Research Methodology

  • 6.1 Data Sources
    • 6.1.1 Primary Data Sources
    • 6.1.2 Secondary Data Sources
    • 6.1.3 Data Triangulation
  • 6.2 Market Estimation and Forecast
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