Study on Vibration Characteristics of Marine Centrifugal Pump Unit Excited by Different Excitation Sources
Abstract
:1. Introduction
2. Numerical Calculation Model and Strategy
2.1. Flow Field Calculation Model and Calculation Method
2.2. Electromagnetic Field Calculation Model and Calculation Method
2.3. Structure Calculation Model and Calculation Method
2.4. Test Object and External Characteristic Experiment
3. Analysis of Numerical Simulation Results
3.1. Analysis of Fluid Excitation Calculation Results
3.1.1. Force Analysis of the Volute Wall
3.1.2. Force Analysis of the Impeller
3.2. Analysis of Electromagnetic Excitation Calculation Results
3.3. Analysis of Vibration Calculation Results
3.3.1. Fluid Excitation on the Inner Surface of the Pump-Induced Vibration Analysis
3.3.2. Fluid Excitation in Impeller-Induced Vibration Analysis
3.3.3. Electromagnetic Excitation-Induced Vibration Analysis
3.4. Comparison of Numerical Simulation and Test Results
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Components | Geometric Parameters | Symbol | Value |
---|---|---|---|
Impeller | Inlet diameter (mm) | D1 | 65 |
Exit diameter (mm) | D2 | 165 | |
Exit width (mm) | b2 | 7 | |
Blade wrap angle (°) | φ | 110 | |
Blade numbers | z | 6 | |
Volute | Basic circle diameter (mm) | D3 | 170 |
Inlet width (mm) | b3 | 20 | |
Exit diameter (mm) | Dd | 50 |
Scheme | Number of Grids | Number of Nodes | Head (m) |
---|---|---|---|
1 | 1,647,157 | 1,474,148 | 34.5 |
2 | 2,457,849 | 2,287,414 | 35.2 |
3 | 2,914,979 | 2,741,943 | 35.5 |
4 | 3,278,458 | 3,024,785 | 35.5 |
5 | 3,715,756 | 3,546,854 | 35.6 |
Voltage (V) | 380 | Pole Number | 2 |
---|---|---|---|
Rated speed (rpm) | 2950 | Phase number | 3 |
Frequency (Hz) | 50 | Connection method | Delta connection |
Stator outer diameter (mm) | 210 | Stator inner diameter (mm) | 116 |
Rotor outer diameter (mm) | 114 | Rotor inner diameter (mm) | 74 |
Stator slot number | 30 | Rotor slot number | 26 |
Measuring Point | Test Results (dB) | Fluid Excitation on the Inner Surface (dB) | Fluid Excitation in the Impeller (dB) | Electromagnetic Excitation (dB) |
---|---|---|---|---|
Outlet flange | 128.8 | 128 | 125 | 127 |
Inlet flange | 127.5 | 126 | 122.6 | 125.5 |
Connecting plate | 125.9 | 124.4 | 119.5 | 123.3 |
Base | 121 | 120.8 | 115 | 117.6 |
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Dai, C.; Zhang, Y.; Pan, Q.; Dong, L.; Liu, H. Study on Vibration Characteristics of Marine Centrifugal Pump Unit Excited by Different Excitation Sources. J. Mar. Sci. Eng. 2021, 9, 274. https://doi.org/10.3390/jmse9030274
Dai C, Zhang Y, Pan Q, Dong L, Liu H. Study on Vibration Characteristics of Marine Centrifugal Pump Unit Excited by Different Excitation Sources. Journal of Marine Science and Engineering. 2021; 9(3):274. https://doi.org/10.3390/jmse9030274
Chicago/Turabian StyleDai, Cui, Yuhang Zhang, Qi Pan, Liang Dong, and Houlin Liu. 2021. "Study on Vibration Characteristics of Marine Centrifugal Pump Unit Excited by Different Excitation Sources" Journal of Marine Science and Engineering 9, no. 3: 274. https://doi.org/10.3390/jmse9030274
APA StyleDai, C., Zhang, Y., Pan, Q., Dong, L., & Liu, H. (2021). Study on Vibration Characteristics of Marine Centrifugal Pump Unit Excited by Different Excitation Sources. Journal of Marine Science and Engineering, 9(3), 274. https://doi.org/10.3390/jmse9030274