Numerical Study of Correlation Between Structural Responses of Propeller and Inflow Conditions
Abstract
1. Introduction
2. Numerical Model
2.1. Governing Equations and Turbulence Model of Fluid Dynamics
2.2. Governing Equations of Structure Dynamics
3. Set-Up and Verification of Simulation
3.1. Set-Up of Simulation
3.2. Uncertainty Analysis and Validation
4. Hydrodynamic Performance of Propellers Under Different Inflow Conditions
4.1. Loading Fluctuations of the Propeller
4.2. Evolutions of Propeller Wake
5. Deformations and Vibrations of the Propeller Blade
5.1. Deformations of the Propeller Blade
5.2. Vibrations of Propeller Blade
5.3. Distributions of Vibrations on the Blade
6. Conclusions
- Loading fluctuations on the propeller blade contain tonal fluctuations and broadband fluctuations. The velocity fluctuations in the propeller wake are dominant at harmonics of SF. Inhomogeneous inflow results in pressure fluctuations as a product of space frequency and SF. Inhomogeneous inflow also results in more intense velocity fluctuations in the tip vortex at the SF, 2SF and the blade wake at 12SF.
- The deformations and vibrations of the blade strengthen as the rotational speed increases. Prominent broadband vibrations of the elastic propeller can be observed in the vicinity of natural frequencies, which also results in more intense broadband components. Amplifying vibrations as a product of space frequency and SF can also be attributed to inhomogeneous inflow. The vibration of the blade is a superposition of excited vibrations and natural vibrations. Approaching the excited frequency and the first natural frequency results in resonance.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| IDDES | Improved delayed detached eddy simulation |
| SF | Shaft frequency |
| BPF | Blade passage frequency |
| DMD | Dynamic mode decomposition |
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| Cells Number | KT | Errors | 10KQ | Errors | Axial Deformation | Errors | |
|---|---|---|---|---|---|---|---|
| Coarse | 2.96 M | 0.0811 | 1.63% | 0.2014 | 0.79% | 207.3 μm | 7.47% |
| Medium | 5.42 M | 0.0798 | 1.28% | 0.2030 | 0.46% | 222.8 μm | 1.40% |
| Fine | 12.39 M | 0.0788 | -- | 0.2040 | -- | 225.9 μm | -- |
| KT | Errors | 10KQ | Errors | Axial Deformation | Errors | |
|---|---|---|---|---|---|---|
| Δt = 3.125 × 10−5 | 0.1995 | 0.02% | 0.3601 | 0.14% | 867.99 μm | 0.20% |
| Δt = 6.25 × 10−5 | 0.1994 | 0.28% | 0.3596 | 0.33% | 866.23 μm | 0.82% |
| Δt = 1.25 × 10−4 | 0.1989 | -- | 0.3584 | -- | 859.17 μm | -- |
| Numerical Results | Experimental Results | Deviations | |
|---|---|---|---|
| Re (×106) | 0.4 | 0.4 | |
| CL | 0.5065 | 0.4862 | 4.18% |
| dy′ | 0.2301 | 0.2265 | 1.59% |
| f1 | 90.15 | 96 | 6.49% |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Zhang, W.; Guo, Q.; Zhang, L.; Hu, J.; Sun, S.; Chen, Z. Numerical Study of Correlation Between Structural Responses of Propeller and Inflow Conditions. Processes 2026, 14, 1922. https://doi.org/10.3390/pr14121922
Zhang W, Guo Q, Zhang L, Hu J, Sun S, Chen Z. Numerical Study of Correlation Between Structural Responses of Propeller and Inflow Conditions. Processes. 2026; 14(12):1922. https://doi.org/10.3390/pr14121922
Chicago/Turabian StyleZhang, Weipeng, Qiao Guo, Li Zhang, Jian Hu, Shili Sun, and Zequan Chen. 2026. "Numerical Study of Correlation Between Structural Responses of Propeller and Inflow Conditions" Processes 14, no. 12: 1922. https://doi.org/10.3390/pr14121922
APA StyleZhang, W., Guo, Q., Zhang, L., Hu, J., Sun, S., & Chen, Z. (2026). Numerical Study of Correlation Between Structural Responses of Propeller and Inflow Conditions. Processes, 14(12), 1922. https://doi.org/10.3390/pr14121922

