A Comprehensive Review of Flow-Induced Vibration and Fatigue Failure in the Moving Components of Control Valves
Abstract
1. Introduction
2. Modes and Mechanisms of Failure Due to Flow-Induced Vibration in Control Valves
3. Failure Phenomenon of Flow-Induced Vibration Fatigue Fracture of Control Valves
4. Failure Factors
4.1. Unstable Jet Flow-Induced Vibration
4.2. Vortex-Induced Vibration
4.3. Cavitation-Induced Vibration
4.4. Flow-Excited Acoustic Resonance
5. Anti-Vibration Measures
- Change the structural dynamics characteristics of the valve stem moving component: Changing the material of the valve plug–valve stem moving component, increasing the diameter of the valve stem, optimizing the connection method between the valve stem and the valve plug, and adjusting the restraint method of the valve stem can effectively change the natural frequency and vibration shape of its structure. This helps prevent the natural frequency of the valve plug assembly from resonating with the fluid excitation frequency. At the same time, the rigidity of the valve stem is improved and the valve stem’s ability to resist deformation is enhanced, thereby reducing the risk of valve stem breakage caused by flow-induced vibration.
- Optimize the valve stem structure to avoid local high stress: Optimizing the structure of the valve stem and valve plug, especially smooth transition processing in the connection transition area, can effectively avoid stress concentration. In addition, changing the shape of the valve plug and designing more reasonable flow channels can disperse and reduce local high stress areas.
- Add damping: Increasing structural damping can significantly improve the system’s ability to absorb vibrations. Damping can be improved by introducing springs, using soft sealing structures, and using packing materials with high friction to attenuate flow-induced vibrations.
- Change the fluid flow characteristics: The fluid flow characteristics within the control valve can be changed by changing the shape of the orifice or using a different type of valve plug. For example, the use of multi-stage pressure-reducing sleeve control valves can reduce cavitation. The impact force caused by bubble collapse during cavitation is absorbed by the fluid, thereby reducing the vibration caused by cavitation.
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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---|---|---|---|---|
Contoured plug | Toric | Forward | Acoustic mode excited by mass flow fluctuations | [15] |
Contoured plug | Toric | Reverse | Oblique shock, jet impingement, flow-excited acoustic resonance | [16] |
Contoured plug | Toric | Reverse | Jet impingement, flow-excited acoustic resonance | [17] |
Contoured plug | Toric with cut | Forward | Shock mixing processes, separation from plug mixing processes | [18] |
Slotted plug | Sharp edge | Forward | Turbulent flow | [19] |
Contoured plug | Toric | Forward | Separated flow, attached flow | [20] |
Disc-type plug | Toric | Forward | Shock, separation flow, attached flow | [21] |
Disc-type plug | Toric | Forward | Unsteady flow separation | [22,23] |
Contoured plug | Toric | Forward | Unsteady flow separation from the plug, flow-excited acoustic resonance | [13,24,25,26,27,28] |
Forward | Vortex shedding | [29] | ||
Contoured plug | Toric | Forward | Unsteady flow | [30] |
Contoured plug | Toric | Forward | Asymmetric inflow at high mass flow rates | [31] |
Disc-type plug | Toric | Forward | Internal flow | [32] |
Flat | Toric | Forward | Shock-induced wall jet separation | [33] |
Contoured plug | Toric | Forward | Unstable flow separation, turbulent flow | [34] |
Contoured plug | Toric | Forward | Flow separation at diffuser outlet | [35] |
Contoured plug | Toric | Forward | Flow separation | [36] |
Disc-type plug | Conical | Forward | Wall jet separation | [37] |
Forward | Flow-excited acoustic resonance | [38] | ||
Forward | Jet impingement | [39,40] | ||
Disc-type plug | Toric | Forward | Acoustic modes, shear layer instability | [41,42] |
Contoured plug | Toric | Forward | Flow-excited acoustic resonance | [43] |
Contoured plug | Toric | Forward | Wall jet separation, flow-excited acoustic resonance, shear layer instability | [44,45,46,47,48,49,50,51] |
Contoured plug | Toric | Forward | Unsteady flow jet detachment | [52] |
Disc-type plug | Toric | Forward | Flow separation from hemispherical plug | [53] |
Disc-type plug | Toric | Forward | Jet flow | [54] |
Contoured plug | Toric | Forward | Acoustic-induced vibration | [55] |
Disc-type plug | Toric | Forward | Flow separation | [56] |
Contoured plug | Toric | Forward | Unsteady flow | [11] |
Disc-type plug | Toric | Forward | Flow separation | [54,57] |
Disc-type plug | Toric | Forward | Wall jet separation | [58] |
Contoured plug | Toric | Forward | Flow-excited acoustic resonance | [59,60] |
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Yang, L.; Li, S.; Hou, J. A Comprehensive Review of Flow-Induced Vibration and Fatigue Failure in the Moving Components of Control Valves. Machines 2025, 13, 766. https://doi.org/10.3390/machines13090766
Yang L, Li S, Hou J. A Comprehensive Review of Flow-Induced Vibration and Fatigue Failure in the Moving Components of Control Valves. Machines. 2025; 13(9):766. https://doi.org/10.3390/machines13090766
Chicago/Turabian StyleYang, Lingxia, Shuxun Li, and Jianjun Hou. 2025. "A Comprehensive Review of Flow-Induced Vibration and Fatigue Failure in the Moving Components of Control Valves" Machines 13, no. 9: 766. https://doi.org/10.3390/machines13090766
APA StyleYang, L., Li, S., & Hou, J. (2025). A Comprehensive Review of Flow-Induced Vibration and Fatigue Failure in the Moving Components of Control Valves. Machines, 13(9), 766. https://doi.org/10.3390/machines13090766