Role of Non-Adiabatic Capillary Tube in Water Cooler Performance
Abstract
:1. Introduction
2. Materials and Methods
2.1. Solving Algorithm
2.2. Mathematical Model
- The length of an adiabatic segment is less than the length of the single-phase part, while the non-adiabatic segment is entirely in the two-phase flow condition. Figure 4.
- The length of the adiabatic segment is greater than the length of the single-phase part, while the non-adiabatic segment is in the two-phase flow condition. Figure 5.
- The length of the adiabatic segment is less than the length of the single-phase part, and the fluid in the non-adiabatic segment after travelling a certain length of capillary returns to the subcooled fluid condition. Figure 6.
- The length of the adiabatic segment is greater than the length of the single-phase part, and the fluid in the non-adiabatic segment after travelling a certain length of capillary returns to the subcooled liquid condition. Figure 7.
- Constant inner diameter and roughness of piping;
- Constant helix diameter of the capillary tube;
- Insensitivity to the helix diameter of the capillary tube; therefore, the model is not sensitive to the influence of the number of windings at the same capillary tube length;
- Capillary tube is helical throughout its length;
- Incompressible flow in single-phase regions;
- One-dimensional steady-state flow;
- Homogeneous two-phase flow;
- Negligible heat exchange with ambient air in the adiabatic capillary tube section;
- Thermodynamic equilibrium in which metastable flow phenomena are neglected.
2.3. Literature and Experimental Validation
- The comparison with data obtained with R134a shows a deviation of 0–10% for vapour quality and a deviation that stabilizes around 16–17% for refrigerant flow rate.
- The comparison with data obtained with R600a shows a deviation of 2–5% for vapour quality and of 11–13% for refrigerant flow rate.
3. Results
4. Conclusions
- An increase in the f-factor, leading to a more accurate coupling between the capillary tube and suction line, brings as an advantage an increase in the degree of superheating of the refrigerant entering the compressor, reducing the risk due to the presence of liquid in the compressor. On the other hand, the COP increase is almost negligible, in the order of 3%, in line with data in the literature (Ji Hwan Jeong, 2012 [7]).
- The increase in the capillary tube length of 300% has an influence on the degree of overheating and on the decrease in refrigerant charge of up to 60%, which contributes to charge reduction but, in turn, causes a decrease in cooling capacity.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Sample Availability
Abbreviations and Nomenclature
Abbreviations
CSLHX | capillary–suction line heat exchanger |
COP | coefficient of performance |
Nomenclature
A | cross-section area of the capillary tube () |
specific heat (J kg K) | |
coil diameter of the capillary tube (m) | |
f | friction factor (-) |
G | mass flux (kg s m) |
g | gravitational acceleration, (m s) |
total head loss (m) | |
h | specific enthalpy (kJ kg) |
k | entrance loss factor (-) |
L | capillary tube length (m) |
m | refrigerant mass flow rate (kg s) |
Pr | Prandtl number (-) |
p | pressure (Pa) |
h | specific enthalpy (kJ kg) |
k | entrance loss factor (-) |
L | capillary tube length (m) |
m | refrigerant mass flow rate (kg s) |
Pr | Prandtl number (-) |
p | pressure (Pa) |
Q | heat flow (W) |
q | specific heat (kJ kg) |
Re | Reynolds number (-) |
T | temperature (K) |
V | refrigerant velocity (m s) |
x | vapour quality (-) |
z | elevation (m) |
Geek letters: | |
convective heat transfer coefficient (W m K) | |
difference | |
relative surface roughness of the tube (m) | |
thermal conductivity (W m K) | |
dynamic viscosity (Pa s) | |
density (kg m) | |
Subscript: | |
ad | adiabatic |
ct | capillary tube |
d | diabatic |
ex | external |
f | saturated liquid |
g | saturated vapour |
i | the outlet of each new control volume |
in | internal |
ref | refrigerant |
sl | suction line |
sp | single-phase |
tp | two-phase |
w | wall |
References
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f | Tsl (K) | % | COP | % | Qf (W) | % | m (kg/h) | % | x | % |
---|---|---|---|---|---|---|---|---|---|---|
0.1 | 279.82 | 0.0 | 1.937 | 0.0 | 372.29 | 0.0 | 5.262 | 0.0 | 0.3764 | 0.0 |
0.2 | 280.19 | 0.1 | 1.943 | 0.3 | 374.94 | 0.7 | 5.273 | 0.2 | 0.3748 | 0.4 |
0.3 | 280.57 | 0.3 | 1.949 | 0.6 | 377.59 | 1.4 | 5.285 | 0.4 | 0.3732 | 0.9 |
0.4 | 280.94 | 0.4 | 1.954 | 0.9 | 380.27 | 2.1 | 5.296 | 0.7 | 0.3716 | 1.3 |
0.5 | 281.31 | 0.5 | 1.960 | 1.2 | 382.94 | 2.9 | 5.308 | 0.9 | 0.3700 | 1.7 |
0.6 | 281.68 | 0.7 | 1.966 | 1.5 | 385.63 | 3.6 | 5.320 | 1.1 | 0.3684 | 2.1 |
0.7 | 282.05 | 0.8 | 1.971 | 1.8 | 388.34 | 4.3 | 5.331 | 1.3 | 0.3668 | 2.6 |
0.8 | 282.42 | 0.9 | 1.977 | 2.1 | 391.07 | 5.0 | 5.343 | 1.5 | 0.3652 | 3.0 |
0.9 | 282.79 | 1.1 | 1.983 | 2.3 | 393.79 | 5.8 | 5.355 | 1.8 | 0.3636 | 3.4 |
1.0 | 283.16 | 1.2 | 1.988 | 2.6 | 396.55 | 6.5 | 5.368 | 2.0 | 0.3620 | 3.8 |
f | Tsl (K) | % | COP | % | Qf (W) | % | m (kg/h) | % | x | % |
---|---|---|---|---|---|---|---|---|---|---|
0.1 | 279.86 | 0.0 | 2.056 | 0.0 | 70.54 | 0.0 | 1.024 | 0.0 | 0.3571 | 0.0 |
0.2 | 280.28 | 0.2 | 2.066 | 0.5 | 71.46 | 1.3 | 1.027 | 0.3 | 0.3554 | 0.5 |
0.3 | 280.69 | 0.3 | 2.075 | 1.0 | 72.26 | 2.4 | 1.031 | 0.6 | 0.3537 | 1.0 |
0.4 | 281.10 | 0.4 | 2.085 | 1.5 | 73.16 | 3.7 | 1.034 | 1.0 | 0.3520 | 1.4 |
0.5 | 281.52 | 0.6 | 2.095 | 2.0 | 74.08 | 5.0 | 1.038 | 1.3 | 0.3503 | 1.9 |
0.6 | 281.93 | 0.7 | 2.105 | 2.4 | 75.01 | 6.3 | 1.041 | 1.7 | 0.3486 | 2.4 |
0.7 | 282.34 | 0.9 | 2.112 | 2.8 | 75.65 | 7.2 | 1.045 | 2.0 | 0.3469 | 2.9 |
0.8 | 282.75 | 1.0 | 2.122 | 3.2 | 76.55 | 8.5 | 1.048 | 2.4 | 0.3452 | 3.3 |
0.9 | 283.16 | 1.2 | 2.131 | 3.7 | 77.47 | 9.8 | 1.052 | 2.7 | 0.3435 | 3.8 |
1.0 | 283.57 | 1.3 | 2.140 | 4.1 | 78.41 | 11.2 | 1.056 | 3.1 | 0.3418 | 4.3 |
L (m) | Tsl (K) | % | COP | % | Qf (W) | % | m (kg/h) | % | x | % |
---|---|---|---|---|---|---|---|---|---|---|
1.0 | 281.34 | 0.0 | 2.018 | 0.0 | 703.04 | 0 | 9.463 | 0 | 0.3498 | 0.0 |
1.1 | 281.54 | 0.1 | 2.010 | −0.4 | 655.35 | −7 | 8.841 | −7 | 0.3546 | 0.8 |
1.2 | 281.75 | 0.1 | 2.005 | −0.7 | 615.99 | −12 | 8.330 | −12 | 0.3548 | 1.4 |
1.3 | 281.95 | 0.2 | 2.001 | −0.9 | 582.85 | −17 | 7.889 | −17 | 0.3564 | 1.9 |
1.4 | 282.16 | 0.3 | 1.998 | −1.0 | 554.43 | −21 | 7.507 | −21 | 0.3577 | 2.3 |
1.5 | 282.37 | 0.4 | 1.996 | −1.1 | 529.82 | −25 | 7.173 | −24 | 0.3585 | 2.5 |
1.6 | 282.59 | 0.4 | 1.995 | −1.2 | 508.29 | −28 | 6.878 | −27 | 0.3592 | 2.7 |
1.7 | 282.80 | 0.5 | 1.994 | −1.2 | 489.17 | −30 | 6.614 | −30 | 0.3596 | 2.8 |
1.8 | 283.22 | 0.7 | 2.001 | −0.9 | 468.37 | −33 | 6.298 | −33 | 0.3577 | 2.3 |
1.9 | 283.51 | 0.8 | 2.002 | −0.8 | 449.84 | −36 | 6.038 | −36 | 0.3576 | 2.3 |
2.0 | 283.80 | 0.9 | 2.003 | −0.8 | 433.43 | −38 | 5.805 | −39 | 0.3574 | 2.2 |
2.1 | 284.10 | 1.0 | 2.005 | −0.7 | 418.87 | −40 | 5.596 | −41 | 0.3571 | 2.1 |
2.2 | 284.40 | 1.1 | 2.007 | −0.6 | 405.79 | −42 | 5.407 | −43 | 0.3566 | 2.0 |
2.3 | 284.70 | 1.2 | 2.009 | −0.4 | 394.01 | −44 | 5.236 | −45 | 0.3560 | 1.8 |
2.4 | 285.00 | 1.3 | 2.012 | −0.3 | 383.31 | −45 | 5.079 | −46 | 0.3553 | 1.6 |
2.5 | 285.30 | 1.4 | 2.015 | −0.2 | 373.57 | −47 | 4.936 | −48 | 0.3546 | 1.4 |
2.6 | 285.61 | 1.5 | 2.018 | 0.0 | 364.68 | −48 | 4.803 | −49 | 0.3538 | 1.1 |
2.7 | 285.91 | 1.6 | 2.022 | 0.2 | 356.48 | −49 | 4.680 | −51 | 0.3529 | 0.9 |
2.8 | 286.22 | 1.7 | 2.025 | 0.3 | 348.94 | −50 | 4.567 | −52 | 0.3520 | 0.6 |
2.9 | 286.53 | 1.8 | 2.029 | 0.5 | 341.96 | −51 | 4.460 | −53 | 0.3510 | 0.4 |
3.0 | 286.84 | 2.0 | 2.032 | 0.7 | 335.50 | −52 | 4.362 | −54 | 0.3500 | 0.1 |
L (m) | Tsl (K) | % | COP | % | Qf (W) | % | m (kg/h) | % | x | % |
---|---|---|---|---|---|---|---|---|---|---|
1.0 | 279.45 | 0.0 | 2.133 | 0.0 | 172.32 | 0 | 2.422 | 0 | 0.3294 | 0.0 |
1.1 | 281.48 | 0.7 | 2.134 | 0.1 | 135.31 | −21 | 1.877 | −22 | 0.3329 | 1.1 |
1.2 | 281.79 | 0.8 | 2.128 | −0.2 | 124.39 | −28 | 1.727 | −29 | 0.3354 | 1.8 |
1.3 | 282.09 | 0.9 | 2.126 | −0.3 | 115.79 | −33 | 1.608 | −34 | 0.3369 | 2.3 |
1.4 | 282.39 | 1.1 | 2.125 | −0.4 | 108.71 | −37 | 1.509 | −38 | 0.3379 | 2.6 |
1.5 | 282.70 | 1.2 | 2.125 | −0.4 | 102.86 | −40 | 1.425 | −41 | 0.3385 | 2.8 |
1.6 | 283.02 | 1.3 | 2.123 | −0.4 | 97.54 | −43 | 1.353 | −44 | 0.3387 | 2.8 |
1.7 | 283.33 | 1.4 | 2.125 | −0.4 | 93.25 | −46 | 1.290 | −47 | 0.3386 | 2.8 |
1.8 | 283.65 | 1.5 | 2.127 | −0.3 | 89.51 | −48 | 1.235 | −49 | 0.3384 | 2.7 |
1.9 | 283.96 | 1.6 | 2.130 | −0.1 | 86.22 | −50 | 1.186 | −51 | 0.3380 | 2.6 |
2.0 | 284.28 | 1.7 | 2.133 | 0.0 | 83.33 | −52 | 1.143 | −53 | 0.3375 | 2.4 |
2.1 | 284.60 | 1.8 | 2.137 | 0.2 | 80.72 | −53 | 1.104 | −54 | 0.3368 | 2.3 |
2.2 | 284.92 | 2.0 | 2.140 | 0.4 | 78.41 | −54 | 1.069 | −56 | 0.3361 | 2.0 |
2.3 | 285.24 | 1.1 | 2.140 | 0.3 | 75.84 | −56 | 1.036 | −57 | 0.3353 | 1.8 |
2.4 | 285.56 | 2.2 | 2.144 | 0.5 | 73.92 | −57 | 1.007 | −58 | 0.3344 | 1.5 |
2.5 | 285.88 | 2.3 | 2.148 | 0.7 | 72.16 | −58 | 0.980 | −60 | 0.3335 | 1.3 |
2.6 | 286.20 | 2.4 | 2.152 | 0.9 | 70.57 | −59 | 0.955 | −61 | 0.3326 | 1.0 |
2.7 | 286.53 | 2.5 | 2.156 | 1.1 | 69.10 | −60 | 0.932 | −62 | 0.3315 | 0.7 |
2.8 | 286.85 | 2.7 | 2.160 | 1.3 | 67.73 | −61 | 0.910 | −62 | 0.3305 | 0.3 |
2.9 | 287.17 | 2.8 | 2.165 | 1.5 | 66.47 | −61 | 0.890 | −63 | 0.3294 | 0.0 |
3.0 | 287.49 | 2.9 | 2.170 | 1.8 | 65.32 | −62 | 0.871 | −64 | 0.3283 | −0.3 |
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Di Donato, L.; Mugnini, A.; Polonara, F.; Arteconi, A. Role of Non-Adiabatic Capillary Tube in Water Cooler Performance. Energies 2023, 16, 1322. https://doi.org/10.3390/en16031322
Di Donato L, Mugnini A, Polonara F, Arteconi A. Role of Non-Adiabatic Capillary Tube in Water Cooler Performance. Energies. 2023; 16(3):1322. https://doi.org/10.3390/en16031322
Chicago/Turabian StyleDi Donato, Lea, Alice Mugnini, Fabio Polonara, and Alessia Arteconi. 2023. "Role of Non-Adiabatic Capillary Tube in Water Cooler Performance" Energies 16, no. 3: 1322. https://doi.org/10.3390/en16031322
APA StyleDi Donato, L., Mugnini, A., Polonara, F., & Arteconi, A. (2023). Role of Non-Adiabatic Capillary Tube in Water Cooler Performance. Energies, 16(3), 1322. https://doi.org/10.3390/en16031322