Reduction of Energy Consumption for Water Wells Rehabilitation. Technology Optimization
Abstract
:1. Introduction
1.1. Water Wells and Clogging Problem
1.2. Water Wells Rehabilitation and Cavitating Jets
2. Materials and Methods
3. Numerical Simulations
- is the density of the combined non-condensable gas and liquid phase;
- is the velocity vector;
- is the source of liquid phase (this is the vapor region condensing);
- is the source of vapor phase (this is the liquid phase evaporating).
- is the density of the vapor phase;
- is the average bubble radius;
- is the vapor pressure of the liquid;
- p is the local pressure;
- is the liquid density;
- is the volume fraction of the non-condensable gas;
- is the volume fraction of the vapor phase.
4. Experimental Setup
5. Results and Discussion
5.1. Numerical Results
5.2. Experimental Erosion Tests
5.3. Water Wells Cleaning
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Constant | Value | Result of Increasing Value |
---|---|---|
Cμ | 0.09 | more mixing, mores shear, greater change in pressure |
C0 | 1.44 | less mixing, lower shear, smaller change in pressure |
C2 | 1.92 | more mixing, more shear, greater change in pressure |
β | 0.015 | more mixing, more shear, greater change in pressure |
η0 | 4.38 | more mixing, more shear, greater change in pressure |
σK | 0.7179 | (not available for user modification) |
σε | 0.7179 | (not available for user modification) |
No. of Water Well, Year of Drilling. All Wells are Located in Krasnodar Krai, Russia | Depth (m) | Flow Rate Before/After Cleaning, m3/h | Flow Rate Increase, (m3/h)/(%) | |
---|---|---|---|---|
Before | After | |||
14 (6940) 1989 (year of drilling) | 339.5 | 50 | 67 | 17/34% |
16 (7302) 1989 (year of drilling) | 331 | 55 | 85 | 30/54% |
211 2007 (year of drilling) | 306 | 6.9 | 10.2. After 2 months went up to 13 m3/h | 3.3/47.8% |
1 2002 (year of drilling) | 109 | 2.4 | 5.3 | 2.9/121% |
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Omelyanyuk, M.; Pakhlyan, I.; Bukharin, N.; El Hassan, M. Reduction of Energy Consumption for Water Wells Rehabilitation. Technology Optimization. Fluids 2021, 6, 444. https://doi.org/10.3390/fluids6120444
Omelyanyuk M, Pakhlyan I, Bukharin N, El Hassan M. Reduction of Energy Consumption for Water Wells Rehabilitation. Technology Optimization. Fluids. 2021; 6(12):444. https://doi.org/10.3390/fluids6120444
Chicago/Turabian StyleOmelyanyuk, Maxim, Irina Pakhlyan, Nikolay Bukharin, and Mouhammad El Hassan. 2021. "Reduction of Energy Consumption for Water Wells Rehabilitation. Technology Optimization" Fluids 6, no. 12: 444. https://doi.org/10.3390/fluids6120444
APA StyleOmelyanyuk, M., Pakhlyan, I., Bukharin, N., & El Hassan, M. (2021). Reduction of Energy Consumption for Water Wells Rehabilitation. Technology Optimization. Fluids, 6(12), 444. https://doi.org/10.3390/fluids6120444