An Experimental and Simulation Study of the Active Camber Morphing Concept on Airfoils Using Bio-Inspired Structures
Abstract
:1. Introduction
2. Kerf Bending Active Camber Concept
Advantages of Kerf Bending
3. Detailed Design of Morphing (Kerf Bending) Structure
4. Static Structural Analysis
5. Aerodynamic Performance Analysis
5.1. Characteristics of NACA 0012 for Different Morph Angles
5.2. Characteristics of NACA 0012 for Different Flap Angles
5.3. Performance Analysis: Comparison of Flapped and Morphed Airfoil
5.4. Fatigue Analysis
5.4.1. ABS
5.4.2. PVC
6. Conclusions
- This design is particularly suitable for short take-off and landing (STOL) aircraft and those operating in stall and low-speed flight conditions, providing better engineering and economic performance and improved functionality compared to conventional wing systems. It is well-known that real-world problems on Earth are nonlinear, and this is also true for the behavior of the skin. However, this study focuses solely on the aerodynamic approach using CFD and does not consider the structural analysis behavior. Although researchers are working on using man-made materials to address this issue, the cost aspects of such solutions remain difficult to estimate at this time.
- In this case, the maximum displacement at 30 degrees of deflection is 47.45 mm, and the maximum stress is 21 MPa. The yield strength of ABS material is 41.14 MPa. This kerf morphing structure with a safety factor of 2.5 can withstand structural and aerodynamic loads.
- Analysis results of flap and morph showed 27% efficiency, validated through convergence criteria in ANSYS CFX.
- Furthermore, for future work, it is recommended to conduct comprehensive experimental studies accompanied by a detailed comparative analysis between analytical and experimental results. At the initial stage, it is crucial to prioritize simulations that incorporate all relevant parameters based on real-time conditions. This will enable a more thorough understanding and evaluation of the system under study.
- The fatigue calculations based on the stress-based approach indicate that PVC material has a higher life-carrying capacity compared to ABS. This implies that PVC is more resistant to fatigue failure and can endure a greater number of load cycles before experiencing structural degradation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
α | Angle of attack (AOA) |
Cl | Lift coefficient |
Cd | Drag coefficient |
Cl/Cd | Lift–drag coefficient ratio |
Cm | Pitching movement coefficient |
TE | Trailing edge |
Cp | Centre of Pressure |
Coefficient of change in lift with respect to change in angle of attack | |
Coefficient of change in drag with respect to change in angle of attack | |
Coefficient of change in moment with respect to change in angle of attack | |
L/D | Lift to drag |
UAV | Unmanned aerial vehicle |
NASA | National Aeronautics and Space Administration |
DARPA | Defense Advanced Research Projects Agency |
FishBAC | Fish bone active camber |
MAC | Mean aerodynamic chord |
NACA | National Advisory Committee for Aeronautics |
ABS | Acrylonitrile butadiene styrene |
CFD | Computational fluid dynamics |
XFLR5 | Analysis tool for airfoils, wings and planes operating at low Reynolds numbers |
Pugh Chart | Method used to analyze different ideas and to determine the optimal choice |
STOL | Short take-off and landing |
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Slope | |||
---|---|---|---|
Morphed airfoil | 5.0630 | 0.0326 | −0.4868 |
Flapped airfoil | 2.3412 | 0.0859 | −0.3436 |
Description | Lift (N) | Drag (N) | Lift/Drag | Mean Lift/Drag | Efficiency (%) | |
---|---|---|---|---|---|---|
MORPH | Ansys | 2.89 | 0.47 | 6.20 | 5.74 | 27% |
Theoretical | 2.86 | 0.49 | 5.80 | |||
Simflow | 2.86 | 0.55 | 5.21 | |||
FLAP | Ansys | 2.39 | 0.49 | 4.88 | 4.50 | |
Theoretical | 2.37 | 0.52 | 4.57 | |||
Simflow | 2.37 | 0.58 | 4.10 |
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Dharmdas, A.; Patil, A.Y.; Baig, A.; Hosmani, O.Z.; Mathad, S.N.; Patil, M.B.; Kumar, R.; Kotturshettar, B.B.; Fattah, I.M.R. An Experimental and Simulation Study of the Active Camber Morphing Concept on Airfoils Using Bio-Inspired Structures. Biomimetics 2023, 8, 251. https://doi.org/10.3390/biomimetics8020251
Dharmdas A, Patil AY, Baig A, Hosmani OZ, Mathad SN, Patil MB, Kumar R, Kotturshettar BB, Fattah IMR. An Experimental and Simulation Study of the Active Camber Morphing Concept on Airfoils Using Bio-Inspired Structures. Biomimetics. 2023; 8(2):251. https://doi.org/10.3390/biomimetics8020251
Chicago/Turabian StyleDharmdas, Alexsteven, Arun Y. Patil, Azar Baig, Owais Z. Hosmani, Shridhar N. Mathad, Mallikarjunagouda B. Patil, Raman Kumar, Basavaraj B. Kotturshettar, and Islam Md Rizwanul Fattah. 2023. "An Experimental and Simulation Study of the Active Camber Morphing Concept on Airfoils Using Bio-Inspired Structures" Biomimetics 8, no. 2: 251. https://doi.org/10.3390/biomimetics8020251
APA StyleDharmdas, A., Patil, A. Y., Baig, A., Hosmani, O. Z., Mathad, S. N., Patil, M. B., Kumar, R., Kotturshettar, B. B., & Fattah, I. M. R. (2023). An Experimental and Simulation Study of the Active Camber Morphing Concept on Airfoils Using Bio-Inspired Structures. Biomimetics, 8(2), 251. https://doi.org/10.3390/biomimetics8020251