Assessment of Mechanical Properties of Helicopter Cyclic Pitch Control Stick
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Abstract
The mechanical characteristics of a helicopter cyclic pitch control stick play a critical role in flight control performance and handling-quality evaluation. Existing assessment approaches mainly rely on force-gradient measurements and lack comprehensive characterization of control response behavior. This study proposes an integrated evaluation framework combining quantitative measurement and qualitative flight assessment for cyclic pitch control systems. Quantitative evaluation includes control-force and control-displacement characterization based on control-envelope modeling, highresolution force– displacement data acquisition, and dynamic response analysis. Qualitative evaluation incorporates pilot assessments of stick centering, jump behavior, and dynamic control characteristics under representative flight conditions. Experimental investigations conducted on a civilian light helicopter demonstrate that the measured controlforce gradients, operating strokes, trim-control displacement bands, and damping characteristics satisfy handlingquality requirements. The results further show that longitudinal and lateral control responses exhibit distinct forcedisplacement characteristics that support ergonomic operation and stable flight control. By establishing the relationship between control inputs, dynamic response behavior, and pilot perception, the proposed framework provides a systematic methodology for flight-control evaluation. The study offers an engineering-oriented approach for assessing human–machine interaction, control-signal responsiveness, and dynamic performance in helicopter flightcontrol systems.
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References
M. Ni and H. Wu, “Design of robust stable controller for linear uncertain systems,” Acta Automatica Sinica, vol. 18, no. 5, pp. 585-589, 1992.
Y. Han, R. Li, and Y. Zhang, “An Optimal Control Method for Trajectory Tracking and Swing Suppression in Helicopter-Slung Load System,” International Journal of Aeronautical and Space Sciences, prepublish, 2025,doi: 10.1007/S42405-025-01063-W.
L. Wang, R. Chen, P. Li, X. Meng, and Y. Zhao, “Pilot-helicopter-slung-load coupled dynamics and fuzzy gain scheduled adaptive anti-swing strategy,” Aerospace Science and Technology, vol. 168, Art. no. 110974, 2026, doi: 10.1016/J.AST.2025.110974.
X. Ma, Y. Li, J. Zhang, Y. Cao, and M. Zhou, “Sensitivity analysis of a forward nonlinear biodynamic muscle-soft tissue-seat system for helicopter occupants under vibration and impact loads in airworthiness certification,” Aerospace Science and Technology, vol. 168, Art. no. 110819, 2026, doi: 10.1016/J.AST.2025.110819.
K. Zhang, Q. Miao, and B. Jiang, “Learning-Based Fault-Tolerant Optimal Formation Control of Helicopters: An Incremental Fully Actuated System Approach,” IEEE Transactions on Cybernetics, vol. 56, no. 1, pp. 81-93, 2026, doi: 10.1109/TCYB.2025.3610020.
T. Liu, J. Ding, J. Xu, D. Zhao, and X. Qiu, Design and dynamics analysis of three-degree-of-freedom kinematic mechanism for helicopter attitude simulation, “Scientific Reports,” 2025; 15(1):7463, doi: 10.1038/S41598-025-89278-5.
A. Chaudhary, R. Pillai, S. Upadhyaya, and G. Kaushik, “Stabilizing a nonlinear helicopter model: Advanced hybrid optimization technique for controlled rotor dynamics and vibration minimization under external disturbances,” Journal of Vibration Engineering & Technologies, vol. 13, no. 3, pp. 199, 2025, doi: 10.1007/S42417-025-01759-Z.
J. Hu, Y. Yang, N. Hu, and X. Lin, “Dynamic modeling and characteristic analysis of a helicopter main reducer for tooth crack diagnosis,” Measurement, vol. 247, Art. no. 116823, 2025, doi: 10.1016/J.MEASUREMENT.2025.116823.
Equipment Development Department of the Central Military Commission, “GJB 902B-2017, Flight Quality Specifications for Military Helicopters,” Beijing, China: National Military Standards Publishing and Distribution Department, 2017.
J. Zhang, J. Yang, and P. Xia, “Aeromechanical stability of rotor/fuselage coupling system in helicopter ground taxiing,” Aerospace, vol. 12,no. 11, 2025, doi: 10.3390/AEROSPACE12110989.