Experimental Study on Pressure Distribution and Flow Coefficient of Globe Valve
Abstract
:1. Introduction
2. Experimental Setup and Experimental Conditions
2.1. Experimental Setup
2.2. Experimental Conditions
- Quick opening type produces a large increase in flow rate for initial increase in valve opening and is usually used for safety or cooling systems where the instant large flow is required.
- Linear type has a linear relationship between the flow rate and the valve opening that is commonly used in liquid level control applications.
- Equal percentage type provides a small increase in flow rate with the initial valve openings and a significant rise with the greater openings and is widely found in pressure control and heat transfer processes.
3. Results and Discussion
3.1. Pressure Distribution
3.2. Flow Characteristics and Flow Coefficient
4. Conclusions
- The flow coefficients increase linearly in low Reynolds number region and level off at the transient points having Re between and ;
- When Re is below , the flow coefficient grows faster with large valve openings, for the same increase in Reynolds number;
- The flow coefficient increases significantly with the low valve openings with a nearly linear relationship. Meanwhile, additional increases in valve opening give considerable decreases in flow coefficient.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Reservoir Tank | Net Volume of |
Pump | 5.5 kWh, Motor speed: 0–3500 RPM |
Total length | 18 m, stainless steel pipe |
Test section | 4 m, acrylic plastic pipe |
Pipe diameter | 3″ |
Pressure Sensor | Flow Meter | |
---|---|---|
Sensor | KISTLER 4043A2 | KTV-700 |
Type | Piezo-resistive | Vortex |
Range | 0–2 bar (abs) | 10–100 () |
Sampling rate | 1000 Hz | 50 Hz |
Valve Opening | Inherent Characteristic | Installed Characteristic |
---|---|---|
Pump Speed | ||
10–100% (every 10%) | Constant pressure drop | 1000–2000 rpm |
0.069 bar (1 psi); 0.1 bar; 0.13 bar | (every 100 rpm) |
Valve Opening | Linear Trendline | Constant Trendline | |||
---|---|---|---|---|---|
Slope | NRMSE(%) | ||||
10 | 0.98 | ||||
20 | 0.99 | 41.8 | 2.43 | ||
30 | 0.99 | 61.3 | 1.14 | ||
40 | 0.98 | 77.3 | 0.68 | ||
50 | 0.95 | 86.1 | 0.34 | ||
60 | 0.98 | 89.1 | 0.49 | ||
70 | 0.97 | 91.0 | 0.33 | ||
80 | 0.97 | 92.8 | 0.75 | ||
90 | 0.98 | 93.4 | 0.63 | ||
100 | 0.98 | 94.0 | 0.74 |
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Nguyen, Q.K.; Jung, K.H.; Lee, G.N.; Suh, S.B.; To, P. Experimental Study on Pressure Distribution and Flow Coefficient of Globe Valve. Processes 2020, 8, 875. https://doi.org/10.3390/pr8070875
Nguyen QK, Jung KH, Lee GN, Suh SB, To P. Experimental Study on Pressure Distribution and Flow Coefficient of Globe Valve. Processes. 2020; 8(7):875. https://doi.org/10.3390/pr8070875
Chicago/Turabian StyleNguyen, Quang Khai, Kwang Hyo Jung, Gang Nam Lee, Sung Bu Suh, and Peter To. 2020. "Experimental Study on Pressure Distribution and Flow Coefficient of Globe Valve" Processes 8, no. 7: 875. https://doi.org/10.3390/pr8070875
APA StyleNguyen, Q. K., Jung, K. H., Lee, G. N., Suh, S. B., & To, P. (2020). Experimental Study on Pressure Distribution and Flow Coefficient of Globe Valve. Processes, 8(7), 875. https://doi.org/10.3390/pr8070875