Aircraft Innovation Trends Enabling Advanced Air Mobility
Abstract
:1. Introduction
2. Literature Review
2.1. Advanced Air Mobility
2.2. VTOL Design Challenges
3. Methodology
4. Results
4.1. Systematic Patent Review
4.2. Classification of Objectives
5. Discussions
5.1. Categorical Trends
5.1.1. Transition Efficiency
5.1.2. Control Enhancement
5.1.3. Energy Management
5.1.4. Safety Enhancement
5.1.5. Propulsion Efficiency
5.1.6. Drag Reduction
5.1.7. Adaptable Systems
5.1.8. Thermal Management
5.2. Intertwined Trends
5.3. Limitations
6. Conclusions
- Scientific novelty: This research addressed a critical juncture in modern aviation and urban transportation by illuminating the field of VTOL aircraft, a crucial pillar of AAM. Through a meticulous synthesis of the academic literature and an expansive review of patent filings, this study presented a landscape of VTOL innovation, encapsulating the complex interplay between theoretical foundations and practical technological advancements. The systematic patent review, complemented by a comprehensive analysis of current scholarly discourse, enabled a multifaceted understanding of the sophisticated technological trajectory and innovation patterns characterizing VTOL development.
- Applied significance: The findings highlight a significant evolution in VTOL technology, marked by an increasing emphasis on energy efficiency, safety, and operational effectiveness. These innovations, spanning aerodynamic optimizations, propulsion advancements, and control system enhancements, emphasize the industry’s concerted efforts to overcome the complex challenges inherent in VTOL design and operation. The dual approach of juxtaposing patent insights with academic perspectives offers a multidimensional view of the innovation ecosystem, revealing both the current state and prospective directions of VTOL technology.
- Structured framework: This research provides a structured framework for tracking, analyzing, and forecasting technological innovations in the VTOL sector. It offers stakeholders such as aerospace engineers, policymakers, and urban planners a grounded basis for strategic decision making, policy formulation, and future research aims. By closing the gap between theoretical research and applied technological development, the study fosters a deeper comprehension of the intricate dynamics driving innovation in AAM.
- Future prospects: Future research will focus on the continued monitoring and analysis of emerging VTOL technologies, with particular attention to advancements in energy storage, autonomous control systems, and integration into urban air mobility frameworks. Additionally, exploring the socio-economic impacts and regulatory challenges of VTOL deployment will be crucial for facilitating their widespread adoption.
- Recommendations: By unveiling the broader themes of safety, efficiency, and sustainability, the study not only informs immediate technological and regulatory endeavors but also contributes to the global discourse on future transportation paradigms. The methodological approach presented, characterized by its analytical rigor and adaptability, offers a blueprint for future work, including generalization for application to other emerging technologies within the expansive domain of transportation. The author recommends continued interdisciplinary research and collaboration among industry stakeholders to ensure the successful integration of VTOL aircraft into sustainable urban transportation networks.
Funding
Data Availability Statement
Conflicts of Interest
References
- Kiesewetter, L.; Shakib, K.H.; Singh, P.; Rahman, M.; Khandelwal, B.; Kumar, S.; Shah, K. A Holistic Review of the Current State of Research on Aircraft Design Concepts and Consideration for Advanced Air Mobility Applications. Prog. Aerosp. Sci. 2023, 142, 100949. [Google Scholar] [CrossRef]
- Wei, H.; Lou, B.; Zhang, Z.; Liang, B.; Wang, F.-Y.; Lv, C. Autonomous Navigation for eVTOL: Review and Future Perspectives. IEEE Trans. Intell. Veh. 2024, 9, 4145–4171. [Google Scholar] [CrossRef]
- Gössling, S.; Dolnicar, S. A Review of Air Travel Behavior and Climate Change. Wiley Interdisciplinary Reviews: Climate Chang. 2023, 14, e802. [Google Scholar] [CrossRef]
- Nguyen, L.V.; Phung, M.D.; Ha, Q.P. Iterative Learning Sliding Mode Control for UAV Trajectory Tracking. Electronics 2021, 10, 2474. [Google Scholar] [CrossRef]
- Bauranov, A.; Rakas, J. Designing Airspace for Urban Air Mobility: A Review of Concepts and Approaches. Prog. Aerosp. Sci. 2021, 125, 100726. [Google Scholar] [CrossRef]
- Johnson, W.; Silva, C. NASA Concept Vehicles and the Engineering of Advanced Air Mobility Aircraft. Aeronaut. J. 2022, 126, 59–91. [Google Scholar] [CrossRef]
- AL-Oqla, F.M.; Hayajneh, M.T.; Nawafleh, N. Advanced Synthetic and Biobased Composite Materials in Sustainable Applications: A Comprehensive Review. Emergent Mater. 2023, 6, 809–826. [Google Scholar] [CrossRef]
- Abbas, N.; Abbas, Z.; Liu, X.; Khan, S.S.; Foster, E.D.; Larkin, S. A Survey: Future Smart Cities Based on Advance Control of Unmanned Aerial Vehicles (UAVs). Appl. Sci. 2023, 13, 9881. [Google Scholar] [CrossRef]
- Goyal, R.; Reiche, C.; Fernando, C.; Cohen, A. Advanced Air Mobility: Demand Analysis and Market Potential of the Airport Shuttle and Air Taxi Markets. Sustainability 2021, 13, 7421. [Google Scholar] [CrossRef]
- Ahmed, F.; Mohanta, J.C.; Keshari, A.; Yadav, P.S. Recent Advances in Unmanned Aerial Vehicles: A Review. Arab. J. Sci. Eng. 2022, 47, 7963–7984. [Google Scholar] [CrossRef]
- Rendón, M.A.; Sánchez, R.C.D.; Gallo, M.J.; Anzai, A.H. Aircraft Hybrid-Electric Propulsion: Development Trends, Challenges and Opportunities. J. Control Autom. Electr. Syst. 2021, 32, 1244–1268. [Google Scholar] [CrossRef]
- Chin, C.; Gopalakrishnan, K.; Balakrishnan, H.; Egorov, M.; Evans, A. Protocol-based Congestion Management for Advanced Air Mobility. J. Air Transp. 2023, 31, 35–44. [Google Scholar] [CrossRef]
- Schuchardt, B.I.; Geister, D.; Lüken, T.; Knabe, F.; Metz, I.C.; Peinecke, N.; Schweiger, K. Air Traffic Management as a Vital Part of Urban Air Mobility—A Review of DLR’s Research Work from 1995 to 2022. Aerospace 2023, 10, 81. [Google Scholar] [CrossRef]
- Tepylo, N.; Straubinger, A.; Laliberte, J. Public Perception of Advanced Aviation Technologies: A Review and Roadmap to Acceptance. Prog. Aerosp. Sci. 2023, 138, 100899. [Google Scholar] [CrossRef]
- Kalakou, S.; Marques, C.; Prazeres, D.; Agouridas, V. Citizens’ Attitudes Towards Technological Innovations: The Case of Urban Air Mobility. Technol. Forecast. Soc. Chang. 2023, 187, 122200. [Google Scholar] [CrossRef]
- Goyal, R.; Cohen, A. Advanced Air Mobility: Opportunities and Challenges Deploying eVTOLs for Air Ambulance Service. Appl. Sci. 2022, 12, 1183. [Google Scholar] [CrossRef]
- Espejo-Díaz, J.A.; Alfonso-Lizarazo, E.; Montoya-Torres, J.R. Improving Access to Emergency Medical Services using Advanced Air Mobility Vehicles. Flex. Serv. Manuf. J. 2023, 1–33. Available online: https://link.springer.com/article/10.1007/s10696-023-09507-9 (accessed on 1 July 2024).
- Purtell, C.; Hong, S.-J.; Hiatt, B. Bibliometric analysis on advanced air mobility and drones. J. Air Transp. Manag. 2024, 116, 102569. [Google Scholar] [CrossRef]
- Dulia, E.F.; Sabuj, M.S.; Shihab, S.A. Benefits of Advanced Air Mobility for Society and Environment: A Case Study of Ohio. Appl. Sci. 2021, 12, 207. [Google Scholar] [CrossRef]
- Sun, X.; Wandelt, S.; Husemann, M.; Stumpf, E. Operational Considerations Regarding On-demand Air Mobility: A Literature Review and Research Challenges. J. Adv. Transp. 2021, 2021, 3591034. [Google Scholar] [CrossRef]
- Vempati, L.; Gawron, V.J.; Winter, S.R. Advanced Air Mobility: Systematic Review of Human Factors’ Scientific Publications and Policy. J. Air Transp. 2024, 32, 22–33. [Google Scholar] [CrossRef]
- Mavraj, G.; Eltgen, J.; Fraske, T.; Swaid, M.; Berling, J.; Röntgen, O.; Fu, Y.; Schulz, D. A Systematic Review of Ground-based Infrastructure for the Innovative Urban Air Mobility. Trans. Aerosp. Res. 2022, 2022, 1–17. [Google Scholar] [CrossRef]
- Rajendran, S.; Srinivas, S. Air Taxi Service for Urban Mobility: A Critical Review of Recent Developments, Future Challenges, and Opportunities. Transp. Res. Part E Logist. Transp. Rev. 2020, 143, 102090. [Google Scholar] [CrossRef]
- Guo, J.; Chen, L.; Li, L.; Na, X.; Vlacic, L.; Wang, F.-Y. Advanced Air Mobility: An Innovation for Future Diversified Transportation and Society. IEEE Trans. Intell. Veh. 2024, 9, 3106–3110. [Google Scholar] [CrossRef]
- Bridgelall, R.; Askarzadeh, T.; Tolliver, D.D. Introducing An Efficiency Index to Evaluate eVTOL Designs. Technol. Forecast. Soc. Chang. 2023, 191, 122539. [Google Scholar] [CrossRef]
- He, R.; Holzapfel, F.; Bröcker, J.; Lai, Y.; Zhang, S. A Decentralized Voting and Monitoring Flight Control Actuation System for eVTOL Aircraft. Aerospace 2024, 11, 195. [Google Scholar] [CrossRef]
- Zhang, T.; Barakos, G.N.; Foster, M. High-fidelity Aerodynamic and Acoustic Design and Analysis of a Heavy-lift eVTOL. Aerosp. Sci. Technol. 2023, 137, 108307. [Google Scholar] [CrossRef]
- Ugwueze, O.; Statheros, T.; Horri, N.; Bromfield, M.A.; Simo, J. An Efficient and Robust Sizing Method for eVTOL Aircraft Configurations in Conceptual Design. Aerospace 2023, 10, 311. [Google Scholar] [CrossRef]
- Shahjahan, S.; Gong, A.; Moore, A.; Verstraete, D. Optimisation of Proprotors for Tilt-wing eVTOL Aircraft. Aerosp. Sci. Technol. 2024, 144, 108835. [Google Scholar] [CrossRef]
- Jiechao, Z.; Yaolong, L.; Yao, Z. Overall eVTOL Aircraft Design for Advanced Air Mobility. Green Energy Intell. Transp. 2024, 3, 100150. [Google Scholar]
- Doppler, C.; Holzapfel, F.; Scharrer, M.K. Lorscheider and G. Prochart Requirements and design of powertrains for eVTOLs. e+ I Elektrotechnik Und Informationstechnik 2024, 141, 188–204. [Google Scholar] [CrossRef]
- Xiang, S.; Xie, A.; Ye, M.; Yan, X.; Han, X.; Niu, H.; Li, Q.; Huang, H. Autonomous eVTOL: A Summary of Researches and Challenges. Green Energy Intell. Transp. 2023, 3, 100140. [Google Scholar] [CrossRef]
- Swaminathan, N.; Reddy, S.R.P.; RajaShekara, K.; Haran, K.S. Flying Cars and eVTOLs—Technology Advancements, Powertrain Architectures, and Design. IEEE Trans. Transp. Electrif. 2022, 8, 4105–4117. [Google Scholar] [CrossRef]
- Afari, S.; Golubev, V.; Lyrintzis, A.S.; Mankbadi, R. Review of Control Technologies for Quiet Operations of Advanced Air-Mobility. Appl. Sci. 2023, 13, 2543. [Google Scholar] [CrossRef]
- Palaia, G.; Salem, K.A.; Cipolla, V.; Binante, V.; Zanetti, D. A Conceptual Design Methodology for e-VTOL Aircraft for Urban Air Mobility. Appl. Sci. 2021, 11, 10815. [Google Scholar] [CrossRef]
- Choi, J.Y.; Jeon, J.H.; Lyu, J.H.; Park, J.; Kim, G.Y.; Chey, S.Y.; Quan, Y.-J.; Bhandari, B.; Prusty, B.G.; Ahn, S.-H. Current Applications and Development of Composite Manufacturing Processes for Future Mobility. Int. J. Precis. Eng. Manuf.-Green Technol. 2023, 10, 269–291. [Google Scholar] [CrossRef]
- Ouyang, Z.; Nikolaidis, T.; Jafari, S. Integrated Power and Thermal Management Systems for Civil Aircraft: Review, Challenges, and Future Opportunities. Appl. Sci. 2024, 14, 3689. [Google Scholar] [CrossRef]
- Mohsan, S.A.H.; Othman, N.Q.H.; Li, Y.; Alsharif, M.H.; Khan, M.A. Unmanned Aerial Vehicles (UAVs): Practical Aspects, Applications, Open Challenges, Security Issues, and Future Trends. Intell. Serv. Robot. 2023, 16, 109–137. [Google Scholar] [CrossRef] [PubMed]
- Osmani, K.; Schulz, D. Comprehensive Investigation of Unmanned Aerial Vehicles (UAVs): An In-Depth Analysis of Avionics Systems. Sensors 2024, 24, 3064. [Google Scholar] [CrossRef] [PubMed]
- Mohamed, A.; Marino, M.; Watkins, S.; Jaworski, J.; Jones, A. Gusts Encountered by Flying Vehicles in Proximity to Buildings. Drones 2023, 7, 22. [Google Scholar] [CrossRef]
- Suiçmez, E.C.; Kutay, A.T. Full Envelope Nonlinear Flight Controller Design for A Novel Electric VTOL (eVTOL) Air Taxi. Aeronaut. J. 2023, 128, 966–993. [Google Scholar] [CrossRef]
- Ozdemir, U.; Aktas, Y.O.; Vuruskan, A.; Dereli, Y.; Tarhan, A.F.; Demirbag, K.; Erdem, A.; Kalaycioglu, G.D.; Ozkol, I.; Inalhan, G. Design of a Commercial Hybrid VTOL UAV System. J. Intell. Robot. Syst. 2014, 74, 371–393. [Google Scholar] [CrossRef]
- Brown, A.; Harris, W.L. Vehicle Design and Optimization Model for Urban Air Mobility. J. Aircr. 2020, 57, 1003–1013. [Google Scholar] [CrossRef]
- Viswanathan, V.; Epstein, A.H.; Chiang, Y.-M.; Takeuchi, E.; Bradley, M.; Langford, J.; Winter, M. The Challenges and Opportunities of Battery-Powered Flight. Nature 2022, 601, 519–525. [Google Scholar] [CrossRef]
- Li, A.; Weng, J.; Yuen, A.C.Y.; Wang, W.; Liu, H.; Lee, E.W.M.; Wang, J.; Kook, S.; Yeoh, G.H. Machine Learning Assisted Advanced Battery Thermal Management System: A State-of-the-art Review. J. Energy Storage 2023, 60, 106688. [Google Scholar] [CrossRef]
- Ng, W.; Patil, M.; Datta, A. Hydrogen Fuel Cell and Battery Hybrid Architecture for Range Extension of Electric VTOL (eVTOL) Aircraft. J. Am. Helicopter Soc. 2021, 66, 1–13. [Google Scholar] [CrossRef]
- Fakhreddine, O.; Gharbia, Y.; Derakhshandeh, J.F.; Amer, A.M. Challenges and solutions of hydrogen fuel cells in transportation systems: A review and prospects. World Electr. Veh. J. 2023, 14, 156. [Google Scholar] [CrossRef]
- Ahluwalia, R.K.; Peng, J.-K.; Wang, X.; Papadias, D.; Kopasz, J. Performance and Cost of Fuel Cells for Urban Air Mobility. Int. J. Hydrog. Energy 2021, 46, 36917–36929. [Google Scholar] [CrossRef]
- Yang, X.-G.; Liu, T.; Ge, S.; Rountree, E.; Wang, C.-Y. Challenges and Key Requirements of Batteries for Electric Vertical Takeoff and Landing Aircraft. Joule 2021, 5, 1644–1659. [Google Scholar] [CrossRef]
- Bi, X.; Jiang, Y.; Chen, R.; Du, Y.; Zheng, Y.; Yang, R.; Wang, R.; Wang, J.; Wang, X.; Chen, Z. Rechargeable Zinc–air Versus Lithium–air Battery: From Fundamental Promises Toward Technological Potentials. Adv. Energy Mater. 2024, 14, 2302388. [Google Scholar] [CrossRef]
- Ansell, P.J. Review of sustainable energy carriers for aviation: Benefits, challenges, and future viability. Prog. Aerosp. Sci. 2023, 141, 100919. [Google Scholar] [CrossRef]
- Franciscone, B.G.; Fernandes, E. Challenges to the Operational Safety and Security of eVTOL Aircraft in Metropolitan Regions: A Literature Review. J. Airl. Oper. Aviat. Manag. 2023, 2, 45–56. [Google Scholar]
- Wang, L.; Deng, X.; Gui, J.; Jiang, P.; Zeng, F.; Wan, S. A Review of Urban Air Mobility-enabled Intelligent Transportation Systems: Mechanisms, Applications and Challenges. J. Syst. Archit. 2023, 141, 102902. [Google Scholar] [CrossRef]
- Vieira, D.R.; Silva, D.; Bravo, A. Electric VTOL Aircraft: The Future of Urban Air Mobility (background, Advantages and Challenges). Int. J. Sustain. Aviat. 2019, 5, 101–118. [Google Scholar] [CrossRef]
- Bharadiya, J. Artificial Intelligence in Transportation Systems A Critical Review. Am. J. Comput. Eng. 2023, 6, 34–45. [Google Scholar] [CrossRef]
- Al-Rubaye, S.; Tsourdos, A.; Namuduri, K. Advanced Air Mobility Operation and Infrastructure for Sustainable Connected eVTOL Vehicle. Drones 2023, 7, 319. [Google Scholar] [CrossRef]
- Zaid, A.A.; Belmekki, B.E.Y.; Alouini, M.-S. eVTOL Communications and Networking in UAM: Requirements, Key Enablers, and Challenges. IEEE Commun. Mag. 2023, 61, 154–160. [Google Scholar] [CrossRef]
- Ajakwe, S.O.; Kim, D.-S.; Lee, J.M. Drone Transportation System: Systematic Review of Security Dynamics for Smart Mobility. IEEE Internet Things J. 2023, 10, 14462–14482. [Google Scholar] [CrossRef]
- Tomaszewski, L.; Kołakowski, R. Advanced Air Mobility and Evolution of Mobile Networks. Drones 2023, 7, 556. [Google Scholar] [CrossRef]
- Bridgelall, R.; Tolliver, D. Autonomous Aircraft: Challenges and Opportunities; North Dakota State University—Upper Great Plains Transportation Institute: Fargo, ND, USA, 2023. [Google Scholar]
- Papa, U. Unmanned Aircraft Systems with Autonomous Navigation. Electronics 2023, 12, 1591. [Google Scholar] [CrossRef]
- Deniz, S.; Wu, Y.; Shi, Y.; Wang, Z. Autonomous Landing of eVTOL Vehicles via Deep Q-Networks. In Proceedings of the AIAA AVIATION 2023 Forum, San Diego, CA, USA, 12–16 June 2023. [Google Scholar]
- Amphawan, A.; Arsad, N.; Neo, T.-K.; Jasser, M.B.; Ramly, A.M. Post-flood UAV-based Free Space Optics Recovery Communications with Spatial Mode Diversity. Electronics 2022, 11, 2257. [Google Scholar] [CrossRef]
- Vera-Yanez, D.; Pereira, A.; Rodrigues, N.; Molina, J.P.; García, A.S.; Fernández-Caballero, A. Vision-based Flying Obstacle Detection for Avoiding Midair Collisions: A Systematic Review. J. Imaging 2023, 9, 194. [Google Scholar] [CrossRef] [PubMed]
- Koukiou, G.; Anastassopoulos, V. UAV Sensors Autonomous Integrity Monitoring—SAIM. Electronics 2023, 12, 746. [Google Scholar] [CrossRef]
- Soori, M.; Arezoo, B.; Dastres, R. Artificial Intelligence, Machine Learning and Deep Learning in Advanced Robotics, a Review. Cogn. Robot. 2023, 3, 54–70. [Google Scholar] [CrossRef]
- Alcock, C. Vertical Makes Wall Street eVTOL Takeoff with $300 Million Flotation. FutureFlight: The Future of Advanced Air Mobility. Available online: https://futureflight.aero/news-article/2021-12-16/vertical-makes-wall-street-evtol-takeoff-300-million-flotation (accessed on 4 April 2024).
- Berckman, L.; Chavali, A.; Hardin, K.; Dronamraju, T.; Sloane, M. Advanced Air Mbility: Achieving Scale for Value Realization. Deloitte Center for Energy & Industrials. Available online: https://www2.deloitte.com/us/en/insights/industry/aerospace-defense/advanced-air-mobility-evtol-aircraft.html (accessed on 4 April 2024).
- Akash, A.; Raj, V.S.J.; Sushmitha, R.; Prateek, B.; Aditya, S.; Sreehari, V.M. Design and Analysis of VTOL Operated Intercity Electrical Vehicle for Urban Air Mobility. Electronics 2021, 11, 20. [Google Scholar] [CrossRef]
- Ugwueze, O.; Statheros, T.; Bromfield, M.A.; Horri, N. Trends in eVTOL Aircraft Development: The Concepts, Enablers and Challenges. In Proceedings of the AIAA SCITECH 2023 Forum, National Harbor, MD, USA, 23–27 January 2023. [Google Scholar]
- Aggarwal, C.C. Data Mining; Springer International Publishing: New York, NY, USA, 2015; p. 734. [Google Scholar]
SPR Stage | 2018 | 2019 | 2020 | 2021 | 2022 | 2023 |
---|---|---|---|---|---|---|
Original | 310,568 | 357,790 | 355,647 | 330,645 | 326,228 | 314,794 |
Contains AND/OR keywords | 160 | 197 | 215 | 227 | 267 | 406 |
Remove duplicates | 158 | 197 | 213 | 225 | 267 | 403 |
Remove 95% similar | 152 | 194 | 213 | 217 | 262 | 375 |
Freq (all) ≥ 2 | 21 | 36 | 39 | 42 | 48 | 83 |
“aircraft” ≤ pos | 17 (229) | 31 (304) | 32 (173) | 33 (184) | 44 (138) | 73 (101) |
“vertical” ≤ pos | 14 (1058) | 28 (1370) | 30 (519) | 26 (338) | 37 (649) | 66 (774) |
“electric” ≤ pos | 12 (3121) | 25 (1451) | 29 (1828) | 25 (1663) | 32 (856) | 61 (873) |
SME classification | 8 | 22 | 25 | 21 | 32 | 50 |
Category | Key Findings |
Transition Efficiency | Aerodynamic optimizations, including adjustable wings and variable-pitch rotors. Advancements in electric propulsion and integration with aircraft aerodynamics. Sophisticated control systems employing AI to manage flight dynamics. |
Control Enhancement | Development of advanced control algorithms using machine learning. Integration of multisensor arrays for real-time feedback. Mechanical innovations in control surfaces, including variable-geometry wings. |
Energy Management | Innovations in high-capacity battery systems and energy storage solutions. Smart energy routing and adaptive energy distribution systems. Exploration of renewable energy integration, such as solar panels and hybrid systems. |
Safety Enhancement | Structural enhancements for increased resilience and fail-safe mechanisms. Emergency response systems, including automated parachute deployment. Advanced sensor arrays to detect obstacles and monitor critical components. |
Propulsion Efficiency | Novel designs for propulsion systems, such as counter-rotating propellers. Integration of lightweight, high-strength materials. Energy distribution optimization across propulsion units, including regenerative energy. |
Drag Reduction | Aerodynamic design modifications, including streamlined fuselage shapes. Surface treatments to reduce skin friction. Adaptive systems capable of altering shape or surface characteristics in real time. |
Adaptable Systems | Modular design approaches for customizable aircraft components. Adaptable propulsion systems, including variable-pitch rotors. Configurable flight control systems for dynamic optimization of flight parameters. |
Thermal Management | Advanced cooling systems using liquid cooling and phase-change materials. Use of thermally conductive composites. Integration of thermal management solutions into overall aircraft design. |
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Bridgelall, R. Aircraft Innovation Trends Enabling Advanced Air Mobility. Inventions 2024, 9, 84. https://doi.org/10.3390/inventions9040084
Bridgelall R. Aircraft Innovation Trends Enabling Advanced Air Mobility. Inventions. 2024; 9(4):84. https://doi.org/10.3390/inventions9040084
Chicago/Turabian StyleBridgelall, Raj. 2024. "Aircraft Innovation Trends Enabling Advanced Air Mobility" Inventions 9, no. 4: 84. https://doi.org/10.3390/inventions9040084
APA StyleBridgelall, R. (2024). Aircraft Innovation Trends Enabling Advanced Air Mobility. Inventions, 9(4), 84. https://doi.org/10.3390/inventions9040084