The Thrust Vector Control Global Market Report 2024 by The Business Research Company provides market overview across 60+ geographies in the seven regions – Asia-Pacific, Western Europe, Eastern Europe, North America, South America, the Middle East, and Africa, encompassing 27 major global industries. The report presents a comprehensive analysis over a ten-year historic period (2010-2021) and extends its insights into a ten-year forecast period (2024-2033).
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According to The Business Research Company’s 2024 Thrust Vector Control Global Market Report, the thrust vector control market has experienced substantial growth, reaching $11.83 billion in 2024 and projecting a further surge to $13.03 billion with a notable 10.1% Compound Annual Growth Rate (CAGR). This expansion is attributed to multifaceted factors such as military modernization, space exploration initiatives, strategic defense investments, aerospace industry expansion, and heightened geopolitical tensions. Looking ahead, the thrust vector control market is anticipated to witness robust growth, reaching $18.4 billion by 2028, boasting a 9.0% CAGR. This trajectory is fueled by escalating demand for precision strike weapons, the surge in space commercialization and tourism, global emphasis on missile defense, and the advent of next-generation aircraft.
The rising demand for corporate and military satellites is expected to propel the growth of the thrust vector control market going forward. Corporate satellites refer to those that are created and marketed for commercial, academic, non-profit, or civilian reasons (through commercial contracts) rather than military usage. A military satellite is a satellite that is launched into space to perform purposes such as transmissions, navigation, and surveillance connected to a range of military duties on the Earth’s surface. The increasing need for commercial and military satellites enhances thrust vector control, which allows a rocket or launching vehicle to adjust its flight direction by varying the strength of its engine and is an essential component of the space or aerospace movement. For instance, in July 2022, according to the Space Foundation, a US-based non-profit advocacy group for the global space ecology, 72 rockets and 1,022 identifiable satellites were launched between January 2022 and June 2022. Furthermore, in June 2022, according to the Satellite Industry Association, a US-based leading domestic satellite operator represented in this trade organization, a total of 1,713 commercial satellites were deployed in 2021, an increase of more than 40% over 2020, while the space sector staged the most launches in history. There are predicted to be 4,852 satellites orbiting the Earth by the end of 2021, a 179 % increase over the preceding five years. Therefore, the rising demand for corporate and military satellites is driving the thrust vector control market.
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The thrust vector control market covered in this report is segmented –
1) By Type: Gimbal Nozzle, Thrusters, Flex Nozzle, Rotating Nozzle, Other Types
2) By System: Thrust Vector Actuation System, Thrust Vector Injection System, Thrust Vector Thruster System
3) By Application: Launch Vehicles, Satellites, Missiles, Fighter Aircraft
4) By End-User: Space Agencies, Defense
Top 5 Major Players:
Within the forecast period, pivotal trends include strategic collaborations, thrust vectoring integration in hypersonic vehicles, and the incorporation of 3D thrust vectoring in next-generation aircraft. A notable innovation shaping the market landscape is the ascendancy of 3D printing, emerging as a key trend. Leading companies in thrust vector control are actively engaged in the development of cutting-edge 3D products to fortify their market positions. For instance, in May 2024, Relativity Space, a prominent US-based aerospace technology manufacturer, achieved a milestone by launching Terran 1 – a 100-foot-tall, 7.5-foot-wide test rocket comprised entirely of 3D-printed components. This groundbreaking venture featured nine engines produced through additive manufacturing, utilizing a revolutionary copper alloy capable of withstanding temperatures exceeding 6,000 degrees Fahrenheit. The process involved digitally slicing a 3D computer model into thin layers through laser powder bed fusion, marking a significant advancement in thrust vector control technology.
The thrust vector control market report table of contents includes:
1. Executive Summary
2. Thrust Vector Control Market Characteristics
3. Thrust Vector Control Market Trends And Strategies
4. Thrust Vector Control Market – Macro Economic Scenario
5. Global Thrust Vector Control Market Size and Growth
…..
32. Global Thrust Vector Control Market Competitive Benchmarking
33. Global Thrust Vector Control Market Competitive Dashboard
34. Key Mergers And Acquisitions In The Thrust Vector Control Market
35. Thrust Vector Control Market Future Outlook and Potential Analysis
36. Appendix
List Of Tables:
Table 1: Global Historic Market Growth, 2018-2023, $ Billion
Table 2: Global Forecast Market Growth, 2023-2028F, 2033F, $ Billion
Table 3: Global Thrust Vector Control Market, Segmentation By Type, Historic and Forecast, 2018-2023, 2023-2028F, 2033F, $ Billion
Table 4: Global Thrust Vector Control Market, Segmentation By System, Historic and Forecast, 2018-2023, 2023-2028F, 2033F, $ Billion
Table 5: Global Thrust Vector Control Market, Segmentation By Application, Historic and Forecast, 2018-2023, 2023-2028F, 2033F, $ Billion
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Table 75: General Electric Company Financial Performance
Table 76: Raytheon Technologies Corporation Financial Performance
Table 77: The Boeing Company Financial Performance
Table 78: Bharat Dynamics Limited Financial Performance
Table 79: Northrop Grumman Financial Performance
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