An Experimental Study on the Radiation Noise Characteristics of a Centrifugal Pump with Various Working Conditions
Abstract
:1. Introduction
2. Experimental Facility and Procedure
2.1. Parameters of the Test Pump
2.2. Radiation Noise Measurement System
2.3. Arrangement of the Monitoring Points
3. Radiation Noise Characteristic under Various Rotational Speed Conditions
3.1. Directivity Characteristic of Radiation Noise under Various Rotational Speed Conditions
3.2. Changing Rules of Radiation Noise under Various Rotational Speed Conditions
4. Radiation Noise Characteristics under Various Flow Rate Conditions
4.1. Directivity Characteristic of Radiation Noise under Various Flow Rate Conditions
4.2. Changing Rules of Radiation Noise under Various Flow Rate Conditions
5. Conclusions
- (a)
- Under various working conditions, the total sound pressure level distribution for different monitoring points is dipolar; specifically, the two valley values appear at 0° (in the direction against the tongue) and 180°, and the minimum valley values are presented at the minimum rotational speed and minimum flow rate condition. Additionally, asymmetry is also validated, i.e., the noise level in the direction facing the volute tongue is higher than that in the direction against the tongue, and the monitoring point in outlet direction is the highest noise level point.
- (b)
- The change in working conditions has little impact on the acoustic energy distribution of different intervals, and the ratios of the acoustic energy in the direction facing the tongue (ε1), as well as that in the direction against the tongue (ε2), to the total acoustic energy (εt) fluctuate around 0.410 and 0.160, respectively.
- (c)
- In the operation of variable speed regulation, the average A-weighted sound pressure level (LpA) increases gradually with the increasing of rotational speed, and it increases by 12.40% when rotational speed increases from 1700 to 2900 rpm, but the growth slope decreases gradually with the rise of pump rotational speed. While in the operation of throttling regulation, LpA first increases, then remains stable, and continues to increase with the increase in flow rate, and it increases by 5.10% when flow rate grows from 37.5 to 86 m3/h.
Supplementary Files
Supplementary File 1Acknowledgments
Author Contributions
Conflicts of Interest
References
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Parameter | Value |
---|---|
Inlet diameter, mm | 80 |
Impeller diameter, mm | 250 |
Outlet diameter, mm | 50 |
Nominal flow rate, m3/h | 50 |
Best efficiency | 63% (50 m3/h) |
Design head, m | 80 |
Nominal rotational speed, rpm | 2900 |
Blade number | 6 |
Instruments | Type | Application | Measuring Range | Accuracy or Sensitivity |
---|---|---|---|---|
Flow meter | SLDG-800 (SLDG-800, Nanjing Shunlaida Measurement and Control Equipment Co., Ltd., Nanjing, Jiangsu, China) | Measuring flow rate | 0–100 m3/h | 0.2% (accuracy) |
Pressure transducer | MIK-300 (MIK-300, Hangzhou Meikong Automation Technology Co., Ltd., Hangzhou, China) | Measuring inlet pressure | −100–0 kPa (inlet pipe) | 0.5% (accuracy) |
Measuring outlet pressure | 0–1600 kPa (outlet pipe) | 0.5% (accuracy) | ||
Pressure recorder | RX-200D (RX-200D, Hangzhou Meikong Automation Technology Co., Ltd., Hangzhou, China) | Recording pressure | / | / |
Microphone | AWA14423L (AWA14423L, Hangzhou Aihua Instruments Co., Ltd., Hangzhou, China) | Measuring radiation noise | 10–20 kHz | 50 mV/Pa (sensitivity) |
Two channel signal analyzer | AWA6290M+ (AWA6290M+, Hangzhou Aihua Instruments Co., Ltd., Hangzhou China) | Recording radiation noise | / | / |
Rotational Speed, rpm | Flow Rate, m3/h |
---|---|
1700 | 56.9 |
1900 | 64.8 |
2100 | 69.6 |
2300 | 74 |
2500 | 78.2 |
2700 | 82.1 |
2900 | 86 |
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Guo, C.; Gao, M.; Lu, D.; Wang, K. An Experimental Study on the Radiation Noise Characteristics of a Centrifugal Pump with Various Working Conditions. Energies 2017, 10, 2139. https://doi.org/10.3390/en10122139
Guo C, Gao M, Lu D, Wang K. An Experimental Study on the Radiation Noise Characteristics of a Centrifugal Pump with Various Working Conditions. Energies. 2017; 10(12):2139. https://doi.org/10.3390/en10122139
Chicago/Turabian StyleGuo, Chang, Ming Gao, Dongyue Lu, and Kun Wang. 2017. "An Experimental Study on the Radiation Noise Characteristics of a Centrifugal Pump with Various Working Conditions" Energies 10, no. 12: 2139. https://doi.org/10.3390/en10122139
APA StyleGuo, C., Gao, M., Lu, D., & Wang, K. (2017). An Experimental Study on the Radiation Noise Characteristics of a Centrifugal Pump with Various Working Conditions. Energies, 10(12), 2139. https://doi.org/10.3390/en10122139