市場調查報告書
商品編碼
1466411
飛機煞車系統市場:按組件、煞車類型、部署、最終用戶、飛機類型分類 - 2024-2030 年全球預測Aircraft Braking System Market by Component (Accumulator, Actuators, Brake Discs), Brakes Type (Boosted Brake, Independent Brake, Power Brake), Deployment, End-user, Aircraft Type - Global Forecast 2024-2030 |
※ 本網頁內容可能與最新版本有所差異。詳細情況請與我們聯繫。
飛機煞車系統市場規模預計2023年為120.2億美元,2024年達到128.3億美元,預計2030年將達到191.9億美元,複合年成長率為6.91%。
飛機煞車系統對於確保飛機在降落、起飛和滑行期間的安全和性能至關重要。煞車系統對於在著陸過程中可靠地減速和停止飛機以及在滑行和停車等地面操作期間保持位置至關重要。飛機煞車系統的主要用途是在地面操作期間安全地減慢和停止飛機。由於全球空中交通量的增加、煞車技術的進步以及航空當局更嚴格的安全法規,飛機煞車系統的使用正在擴大。軍事預算的擴大和新飛機型號的開發正在促進飛機煞車系統的發展。先進材料系統的高成本和嚴格的認證標準限制了其在飛機煞車系統中的使用。此外,對有限的特種零件供應商的依賴以及飛機煞車系統嚴格的監管標準給市場帶來了重大挑戰。然而,碳複合材料材料等新材料的採用為飛機煞車系統帶來了重大機會。世界機持有的擴張以及對老化飛機進行現代化改造、配備更好煞車系統的需求帶來了可觀的商業性前景。此外,電動飛機和傾斜式旋翼飛機的技術創新為在全球部署先進煞車技術開闢了新途徑。
主要市場統計 | |
---|---|
基準年[2023] | 120.2億美元 |
預測年份 [2024] | 128.3億美元 |
預測年份 [2030] | 191.9億美元 |
複合年成長率(%) | 6.91% |
在飛機煞車系統組件中更多地使用先進電子設備
飛機煞車系統蓄壓器是一種用於儲存加壓流體的液壓裝置。蓄能器的需求通常取決於飛機的尺寸和煞車系統的複雜性。煞車系統中的致動器負責將液壓或電氣控制輸入轉換為機械力,直接施加或釋放煞車。致動器的精度和可靠性在致動器選擇中至關重要,因為它們直接影響煞車效率和安全性。煞車盤是與煞車皮接觸的部件,用於將動能轉化為熱能並使飛機減速。煞車殼(卡鉗)是包含煞車碟盤和煞車墊片的組件。煞車外殼可保護煞車的內部部件並確保最佳運作。電子元件包括一個控制系統,它解釋飛行員輸入和感測器資料以驅動煞車系統。這些電子系統包括煞車控制單元、穩定性控制系統和監控系統,確保煞車在各種條件下正確運作。飛機煞車系統閥門控制液壓油流量和壓力。閥門的品質和精度直接影響制動力的響應性和調變。飛機輪子的設計目的是支撐重載,為煞車系統提供安裝位置,並確保起飛、降落和滑行過程中的安全操作。
煞車類型:動力煞車系統是提高安全性和操作效率的首選。
助力煞車系統通常用於小型飛機,不需要全功率煞車系統的複雜性。助力煞車系統使用先導輸入透過液壓或氣壓輔助來提高煞車效率。與無輔助手動系統相比,助力煞車提供了更高的性能,使其適合在增加煞車功率與系統簡單性之間取得平衡的飛機。另一方面,獨立煞車系統通常用於需要對各個車輪的煞車進行雙重控制或精細控制的飛機上。主起落架的每個輪子上都有一個制動裝置,飛行員可以獨立操作,從而實現差速制動,可用於地面機動。動力煞車系統通常部署在大型飛機上,包括商業航空公司和軍用噴射機。動力煞車系統提供最高水準的性能和安全性,這對於高速重型飛機至關重要。動力煞車使用液壓或電氣系統將飛行員施加的煞車力道加倍,從而實現有效的減速和控制。
部署:在售後管道提供經濟高效的飛機煞車系統
售後管道包括飛機煞車系統銷售後提供的零件。售後市場管道可滿足整個飛機生命週期內煞車系統的維護、修理和大修 (MRO) 需求。飛機營運商更喜歡透過售後管道來遵守安全法規、進行定期維護以及更換磨損或過時的零件。從長遠來看,售後服務往往比不斷從目的地設備製造商 (OEM) 購買新設備更具成本效益。營運商可以從多個供應商處採購零件,從而獲得有競爭力的價格並獲得廣泛的產品。另一方面, OEM管道包括提供在新飛機組裝中安裝的原始飛機煞車系統的製造商。飛機製造商與OEM提供者合作,為新飛機配備可靠、高效的煞車系統。 OEM供應商因其最尖端科技和第一代產品高品質的保證而受到青睞。
最終用戶強調在非常規領域運作的軍事部門的先進煞車系統
飛機煞車系統的商業用戶包括客機、支線噴射機和噴射機的煞車系統。這些系統對於民航機的高頻起降週期至關重要,因此商業用戶的主要關注點是效率、可靠性和安全性。客運航空公司、貨運航空公司、包機航空公司、貨運航空公司和物流航空公司更喜歡節能的飛機煞車系統,以降低燃油消費量並確保營運效率。飛機煞車系統市場的軍用部分主要關注戰鬥機、運輸機和特殊任務飛機等軍用飛機的獨特要求。惡劣條件下的耐用性、艦載操作的適用性和生存能力是推動軍用飛機領域煞車系統開發和採購的關鍵因素。醫療和急救飛機(例如空中救護車)需要高性能煞車系統來實現快速響應能力。軍用飛機經常進出非傳統跑道,這使得飛機煞車機構的可靠性和有效性變得更加重要。
飛機類型 在需要高階控制的固定翼飛機上增加使用飛機煞車系統
固定翼飛機需要堅固可靠的煞車系統,以確保著陸和地面操縱時的安全。固定翼飛機煞車系統通常包括煞車盤、墊片、控制系統和致動器。固定翼飛機的煞車系統優選具有高可控性和冗餘性,以確保在各種條件下安全運作。旋翼機更注重懸停和低速機動時的精確控制,而不是高速煞車。在空中,旋翼提供主要煞車力,輪式起落架配備用於地面操作的煞車器,但它們並不像固定翼飛機上的那麼複雜。無人機煞車系統高度專業化,優先選擇輕質、緊湊和可回收的解決方案,特別是對於軍事應用。
區域洞察
主要航太公司的存在、對新飛機機隊的投資增加以及軍用飛機開發的進步正在增加美洲對先進飛機煞車系統的需求。美洲地區在航太領域進行了大量投資,推動了飛機煞車系統新技術的採用。歐盟 (EU) 對飛機煞車系統有嚴格的規定和高安全標準。法國、德國和英國等國家的主要航太公司需要最尖端科技,包括飛機煞車系統,以確保飛機運作的安全。歐盟環境政策也正在推動更環保、更永續、更有效率的煞車系統。在中東和非洲,飛機煞車系統市場受到航空公司機隊擴張和現有飛機現代化的影響。對於中東的主要中轉目的地和優質航空公司來說,包括煞車系統在內的飛機性能受到高度重視。亞太地區航空業正在快速成長。民航業的快速成長以及政府為增加新興經濟體國內飛機產量而做出的努力正在推動對先進煞車系統的需求。不斷擴大的航空旅行和軍事現代化計畫正在推動亞太地區已開發經濟體對飛機煞車系統的需求增加。
FPNV定位矩陣
FPNV定位矩陣對於評估飛機煞車系統市場至關重要。我們檢視與業務策略和產品滿意度相關的關鍵指標,以對供應商進行全面評估。這種深入的分析使用戶能夠根據自己的要求做出明智的決策。根據評估,供應商被分為四個成功程度不同的像限:前沿(F)、探路者(P)、利基(N)和重要(V)。
市場佔有率分析
市場佔有率分析是一種綜合工具,可以對飛機煞車系統市場供應商的現狀進行深入而詳細的研究。全面比較和分析供應商在整體收益、基本客群和其他關鍵指標方面的貢獻,以便更好地了解公司的績效及其在爭奪市場佔有率時面臨的挑戰。此外,該分析還提供了對該行業競爭特徵的寶貴見解,包括在研究基準年觀察到的累積、分散主導地位和合併特徵等因素。詳細程度的提高使供應商能夠做出更明智的決策並制定有效的策略,從而在市場上獲得競爭優勢。
1. 市場滲透率:提供有關主要企業所服務的市場的全面資訊。
2. 市場開拓:我們深入研究利潤豐厚的新興市場,並分析其在成熟細分市場的滲透率。
3. 市場多元化:提供有關新產品發布、開拓地區、最新發展和投資的詳細資訊。
4.競爭評估及資訊:對主要企業的市場佔有率、策略、產品、認證、監管狀況、專利狀況、製造能力等進行綜合評估。
5. 產品開發與創新:提供對未來技術、研發活動和突破性產品開發的見解。
1. 飛機煞車系統市場規模及預測為何?
2.在飛機煞車系統市場的預測期間內,有哪些產品、細分市場、應用和領域需要考慮投資?
3.飛機煞車系統市場的技術趨勢與法規結構是什麼?
4.飛機煞車系統市場主要供應商的市場佔有率為何?
5.進入飛機煞車系統市場的合適型態和戰略手段是什麼?
[181 Pages Report] The Aircraft Braking System Market size was estimated at USD 12.02 billion in 2023 and expected to reach USD 12.83 billion in 2024, at a CAGR 6.91% to reach USD 19.19 billion by 2030.
The aircraft braking system is critical for ensuring the safety and performance of aircraft during landing, takeoff, and taxiing operations. Braking systems are essential for ensuring aircraft can be securely slowed and brought to a stop during landing and for maintaining position during ground operations, including taxiing and parking. The primary application of aircraft braking systems is to decelerate and stop an aircraft safely during ground operations. The rise in global air traffic, advancements in brake technology, and stringent safety regulations imposed by aviation authorities have expanded the use of aircraft braking systems. Expanding military budgets and developing new aircraft models contribute to the growth of aircraft braking systems. The high cost of advanced material systems and stringent certification standards can limit the use of aircraft braking systems. Additionally, dependence on a limited number of suppliers for specialized components and stringent regulatory norms for aircraft braking systems pose significant challenges to the market. However, adopting new materials, such as carbon composites, presents substantial opportunities for aircraft braking systems. The expansion of the global aircraft fleet and the need to modernize aging aircraft with better braking systems provide considerable commercial prospects. Furthermore, innovations in electric aviation and tilt-rotor craft create new avenues for deploying advanced braking technologies worldwide.
KEY MARKET STATISTICS | |
---|---|
Base Year [2023] | USD 12.02 billion |
Estimated Year [2024] | USD 12.83 billion |
Forecast Year [2030] | USD 19.19 billion |
CAGR (%) | 6.91% |
Component: Increasing use of advanced electronics in aircraft braking systems
The accumulator in an aircraft braking system is a hydraulic device used to store pressurized fluid. The need for accumulators is often dictated by the aircraft's size and the braking system's complexity. Actuators within the braking system serve to convert the hydraulic or electric control inputs into mechanical force, directly applying or releasing the brakes. Precision and reliability are paramount for actuator preference as they directly affect braking efficiency and safety. Brake discs are the components that interface with the brake pads to slow down the aircraft by converting kinetic energy into thermal energy. The brake housing, or caliper, is the assembly within which brake discs and pads are housed. Brake housing protects the brake's internal components and ensures optimal operation. The electronics component encompasses the control systems that interpret pilot inputs and sensor data to operate the braking system. These electronic systems include brake control units, anti-skid systems, and monitoring systems that ensure the brakes are applied correctly under various conditions. Valves in an aircraft braking system control the flow and pressure of the hydraulic fluid. The quality and precision valves directly impact the responsiveness and modulation of the braking force. Aircraft wheels are designed to carry heavy loads, provide a mounting place for the braking system, and ensure safe operations during takeoff, landing, and taxi operations.
Brakes Type: Rising preference for power brake systems to enhance the safety and operational efficiency
Boosted brake systems are typically found in smaller aircraft that do not necessitate the complexity of a full-power brake system. Boosted brake systems use the pilot's input to enhance the braking effect with hydraulic or pneumatic power assistance. Boosted brakes improve performance over unassisted manual systems and are suitable for aircraft that balance the need for enhanced braking power and system simplicity. On the other hand, independent brake systems are often deployed for aircraft that require dual control or where fine control of the braking on individual wheels is necessary. Each main landing gear wheel has its braking unit, and the pilot can operate them separately, which allows for differential braking that can be used to steer the aircraft on the ground. Power brake systems are commonly deployed in large aircraft fleets, including commercial airlines and military jets. Power brake systems offer the highest level of performance and safety, essential for high-speed, heavy aircraft. Power brakes function using hydraulic or electric systems to multiply the braking force applied by the pilot, allowing for effective deceleration and control.
Deployment: Availability of cost-efficient aircraft braking systems in aftermarket channels
The aftermarket channel comprises parts offered after the original sale of the aircraft braking system. The aftermarket channel caters to braking system maintenance, repair, and overhaul (MRO) needs throughout an aircraft's operating life cycle. Aircraft operators prefer aftermarket channels to ensure compliance with safety regulations, perform regular maintenance, and replace worn or obsolete components. Aftermarket services tend to be more cost-effective in the long run when compared to constantly purchasing new equipment from original equipment manufacturers (OEMs). Operators can source parts from multiple suppliers, which encourages competitive pricing and the availability of a wider range of products. On the other hand, the OEM channel includes manufacturers providing the original aircraft braking systems installed during the assembly of new aircraft. Aircraft manufacturers partner with OEM providers to equip new aircraft with reliable and efficient braking systems. OEM providers are preferred for their cutting-edge technology and the assurance of high-quality, first-generation products.
End-user: Emphasis on advanced braking systems by military sectors to operate in unconventional areas
The commercial users of aircraft braking systems involve braking systems tailored for airliners, regional jets, and business jets. The primary focus of commercial users is on efficiency, reliability, and safety, as these systems are crucial for the high-frequency takeoff and landing cycles of commercial aviation. Passenger airlines, cargo airlines, charter service, air freight, and logistics airlines prefer energy-efficient aircraft braking systems to reduce fuel consumption and ensure operational efficiency. The military segment of the aircraft braking system market focuses on the unique requirements of military aircraft, including fighter jets, transport aircraft, and special mission aircraft. Durability under extreme conditions, compatibility with carrier-based operations, and survivability are critical factors driving the development and procurement of braking systems in the military aviation space. Medical and emergency aircraft, such as air ambulances, need high-performance braking systems for rapid response capabilities. Military aircraft often operate in and out of unconventional runways, which places additional importance on the reliability and effectiveness of the aircraft's braking mechanisms.
Aircraft Type: Proliferating usage of aircraft braking systems in fixed-wing aircraft for high degree of control
Fixed-wing aircraft require robust, reliable braking systems to ensure safety during landing and on-ground maneuvering. The braking systems for fixed-wing aircraft typically include brake discs, pads, control systems, and actuators. Preference for braking systems in fixed-wing aircraft inclines toward those that provide high control and redundancy, ensuring safe operation under diverse conditions. Rotary-wing aircraft focused on precise control during hover and low-speed maneuvering rather than high-speed braking. The rotors provide the primary stopping power when airborne, and the wheel-equipped landing gear has brakes for on-ground operations, which are less complex than those found on fixed-wing aircraft. The braking systems for unmanned aerial vehicles are highly specialized, with a preference for lightweight, compact, and recoverable solutions, especially in military applications.
Regional Insights
The presence of major aerospace corporations, increasing investments in new aircraft fleets, and advancing development in military aircraft have led to the need for advanced aircraft braking systems in the Americas. The Americas region shows significant investments in the aerospace sector, facilitating the adoption of newer technologies in aircraft braking systems. The European Union (EU) landscape for aircraft braking systems observes stringent regulations and high safety standards. Countries including France, Germany, and the United Kingdom represent some of the major aerospace companies that demand cutting-edge technology, including aircraft braking systems, to ensure the operational safety of aircraft. The EU's environmental policies also push for more environmentally sustainable and efficient braking systems. In the Middle East and Africa, the market for aircraft braking systems is influenced by the expansion of airline fleets and the modernization of existing aircraft. With its key transit hubs and premium airlines, the Middle East highly values aircraft performance, including braking systems. The Asia-Pacific region is experiencing burgeoning growth in the aviation sector. The rapidly growing commercial airline industry and the government's push for indigenous aircraft production in emerging economies heighten the demand for advanced braking systems. The expanding air travel and military modernization programs are catalysts for increased demand for aircraft braking systems in developed economies across the Asia-Pacific.
FPNV Positioning Matrix
The FPNV Positioning Matrix is pivotal in evaluating the Aircraft Braking System Market. It offers a comprehensive assessment of vendors, examining key metrics related to Business Strategy and Product Satisfaction. This in-depth analysis empowers users to make well-informed decisions aligned with their requirements. Based on the evaluation, the vendors are then categorized into four distinct quadrants representing varying levels of success: Forefront (F), Pathfinder (P), Niche (N), or Vital (V).
Market Share Analysis
The Market Share Analysis is a comprehensive tool that provides an insightful and in-depth examination of the current state of vendors in the Aircraft Braking System Market. By meticulously comparing and analyzing vendor contributions in terms of overall revenue, customer base, and other key metrics, we can offer companies a greater understanding of their performance and the challenges they face when competing for market share. Additionally, this analysis provides valuable insights into the competitive nature of the sector, including factors such as accumulation, fragmentation dominance, and amalgamation traits observed over the base year period studied. With this expanded level of detail, vendors can make more informed decisions and devise effective strategies to gain a competitive edge in the market.
Key Company Profiles
The report delves into recent significant developments in the Aircraft Braking System Market, highlighting leading vendors and their innovative profiles. These include AAR CORP., Airbus SE, Aircraft End-of-Life Solutions B.V., AMETEK.Inc., Arkwin Industries, Inc., Astronics Corporation, Aviation Products Systems Inc., Bauer, Inc., Beringer Aero, Collins Aerospace by RTX Corporation, Crane Aerospace & Electronics, Eaton Corporation PLC, Electromech Technologies LLC, GOLDfren, Grove Aircraft Landing Gear Systems Inc., Hindustan Aeronautics Limited, Honeywell International Inc., Hong Kong Aircraft Engineering Company Limited by Swire Group Company, Kaman Corporation, Lee Air, Inc., Leonardo S.p.A., Liebherr-International Deutschland GmbH, Lockheed Martin Corporation, Lufthansa Technik AG, Matco Aircraft Landing Systems, McFarlane Aviation, LLC, Meggitt PLC by Parker-Hannifin Corporation, Moog Inc., NMG Aerospace Components, Northrop Grumman Corporation, OMA SpA, Rapco, Inc., Safran S.A., SAM GmbH, Sonex Aircraft, LLC, Tactair Fluid Controls Inc., Textron Inc., The Carlyle Johnson Machine Company, LLC by RINGFEDER POWER TRANSMISSION GMBH, Umbria Aerospace Systems S.p.A., and Whippany Actuation Systems LLC.
Market Segmentation & Coverage
1. Market Penetration: It presents comprehensive information on the market provided by key players.
2. Market Development: It delves deep into lucrative emerging markets and analyzes the penetration across mature market segments.
3. Market Diversification: It provides detailed information on new product launches, untapped geographic regions, recent developments, and investments.
4. Competitive Assessment & Intelligence: It conducts an exhaustive assessment of market shares, strategies, products, certifications, regulatory approvals, patent landscape, and manufacturing capabilities of the leading players.
5. Product Development & Innovation: It offers intelligent insights on future technologies, R&D activities, and breakthrough product developments.
1. What is the market size and forecast of the Aircraft Braking System Market?
2. Which products, segments, applications, and areas should one consider investing in over the forecast period in the Aircraft Braking System Market?
3. What are the technology trends and regulatory frameworks in the Aircraft Braking System Market?
4. What is the market share of the leading vendors in the Aircraft Braking System Market?
5. Which modes and strategic moves are suitable for entering the Aircraft Braking System Market?