Analysis of the Influence of Different Bionic Structures on the Noise Reduction Performance of the Centrifugal Pump
Abstract
:1. Introduction
2. Numerical Calculation
2.1. Model Parameters
2.2. Bionic Structure Parameters
2.3. Grid Generation
2.4. Boundary Condition Setting
3. Verification of Numerical Calculation Method
3.1. Flow Field Verification
3.2. Sound Field Verification
4. Comparison of Bionic Pit and Bionic Sawtooth
4.1. Comparison of Performance Parameters
4.2. Comparison of Acoustic Characteristics
4.3. Analysis of Internal Flow Field
5. Conclusions
- (1)
- There is an obvious difference in the external characteristic parameters between the bionic pit and the bionic sawtooth model. The pit structure has little influence on the external characteristic parameters of the basic model, while the sawtooth structure has a great influence on the external characteristic parameters.
- (2)
- The noise decrement effect of the pit structure is apparently different from that of the sawtooth structure. The noise reduction effect of the pit structure is aimed at the wide-band noise, and the sawtooth structure is aimed at the discrete noise at the BPF and its frequency doubling. The highest noise reduction value of the sawtooth structure is noted to be about 30 dB at 12 BPF. The change of discrete noise has a significant effect on the total sound pressure level. When the total sound pressure level is taken as the index, the noise reduction of the sawtooth structure is 3.94 dB, which is 3.13 dB higher than that of the pit structure. However, when the wide-band total sound pressure level is taken as the index, the noise reduction of the pit structure is 0.94 dB, which is 0.65 dB higher than that of the sawtooth structure.
- (3)
- The wide-band noise reduction ability of the sawtooth structure is not suitable for the high-frequency band. On the frequencies other than the BPF and its frequency doubling, the sawtooth structure almost loses its noise reduction ability from 1200 Hz. The sawtooth structure causes the noise to increase when the frequency exceeds 1600 Hz. The results of pressure fluctuation near the volute tongue also show that the sawtooth structure causes the amplitude of pressure fluctuation after 1600Hz to exceed the basic model.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Overcurrent Component | Geometrical Parameter | Symbol | Numerical Value |
---|---|---|---|
Impeller | Inlet diameter (mm) | D1 | 90 |
Outlet diameter (mm) | D2 | 170 | |
Exit width (mm) | b2 | 13.1 | |
Blade wrapping angle (°) | φ | 120 | |
Blade number | z | 6 | |
Volute | Base circle diameter (mm) | D3 | 180 |
Inlet width (mm) | b3 | 32 | |
Outlet diameter (mm) | Dd | 80 |
Model | Head (m) | Change Rate (%) | Torque (N·m) | Change Rate (%) | Hydraulic Efficiency (%) | Change Rate (%) |
---|---|---|---|---|---|---|
Basic model | 7.94 | - | 7.18 | - | 0.793 | / |
Bionic pit | 8.01 | 0.9 | 7.27 | 1.3 | 0.791 | −0.3 |
Bionic sawtooth | 7.19 | 9.4 | 6.54 | −8.9 | 0.789 | −0.5 |
Model | Total Sound Pressure Level (dB) | Noise Reduction Value (dB) | Wide-Band Total Sound Pressure Level (dB) | Noise Reduction Value (dB) |
---|---|---|---|---|
Basic model | 166.95 | - | 190.10 | - |
Bionic pit | 166.14 | 0.81 | 189.16 | 0.94 |
Bionic sawtooth | 163.01 | 3.94 | 189.81 | 0.29 |
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Dai, C.; Guo, C.; Chen, Y.; Dong, L.; Liu, H. Analysis of the Influence of Different Bionic Structures on the Noise Reduction Performance of the Centrifugal Pump. Sensors 2021, 21, 886. https://doi.org/10.3390/s21030886
Dai C, Guo C, Chen Y, Dong L, Liu H. Analysis of the Influence of Different Bionic Structures on the Noise Reduction Performance of the Centrifugal Pump. Sensors. 2021; 21(3):886. https://doi.org/10.3390/s21030886
Chicago/Turabian StyleDai, Cui, Chao Guo, Yiping Chen, Liang Dong, and Houlin Liu. 2021. "Analysis of the Influence of Different Bionic Structures on the Noise Reduction Performance of the Centrifugal Pump" Sensors 21, no. 3: 886. https://doi.org/10.3390/s21030886
APA StyleDai, C., Guo, C., Chen, Y., Dong, L., & Liu, H. (2021). Analysis of the Influence of Different Bionic Structures on the Noise Reduction Performance of the Centrifugal Pump. Sensors, 21(3), 886. https://doi.org/10.3390/s21030886