Investigation on the Performances of Vuilleumier Cycle Heat Pump Adopting Mixture Refrigerants
Abstract
:1. Introduction
2. Working Principle and Performances Calculation for VM Cycle Heat Pump
2.1. Working Principle
2.2. Performances Calculation Method
3. Performances of Pure Refrigerants in VM Cycle
3.1. Properties of Pure Refrigerants
3.2. Properties Variationof Pure Refrigerants
3.3. Performances of Pure Refrigerants
4. Performances for Mixture Refrigerant in VM Cycle
4.1. Properties of Mixture
4.2. Result Analysis
5. Conclusions
- (1)
- For pure refrigerants, helium and hydrogen are similar to each other, better than that of nitrogen. Considering the liable explosion problem of hydrogen, helium is the best choice of pure refrigerant for VM cycle heat pump.
- (2)
- For binary mixture, He-H2 mixture has optimum thermodynamic performance, the recommended ratio is 1:2. The other binary mixture is also an optimum proportion of mixture.
- (3)
- For trinary mixture, at the proportion of He-H2-N2 mixture is 2:2:1, the system has the best COP and exergy efficiency. Furthermore, all the system performances of recommended binary and trinary mixture are close to pure refrigerant helium. For these recommended binary and trinary mixtures, system COPs are close to 3.3 and exergy efficiencies are about 0.2, which are close to pure refrigerant helium.
Acknowledgments
Author Contributions
Conflicts of Interest
Nomenclature
Symbol | Implication |
COP | Coefficient of performance |
Dco | Diameter of cold cylinder |
Ex,co | Exergy of cold space |
Ex,h | Exergy of heat space |
Ex,in | Exergy of fluid inlet |
Ex,out | Exergy of fluid outlet |
Pav | Average pressure |
Pmax | Maximum pressure |
Pmin | Minimum pressure |
Qa | Theoretical heating release of warm cylinder |
Qco | Theoretical heat capacity absorbed by cold cylinder |
Qh | Theoretical heating absorption of hot cylinder |
Ta | Temperature of warm space |
Tco | Temperature of cold space |
Th | Temperature of hot space |
Tin | Inlet temperature |
To | Ambient temperature |
Tout | Outlet temperature |
Vco | Travel volume of the cold cylinder |
Z | Distance of the stroke |
τ | Temperature ratio |
τco | Temperature ratio of the cold side |
τh | Temperature ratio of the hot side |
φ | Phase angle of volume |
θ | Pressure phase angle |
δ | Pressure parameter |
n | Rotation rate |
ω | Proportion of volume |
ηe | Theoretical exergy efficiency |
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Parameter | Symbol, Formula, Basis, Introduction | Value |
---|---|---|
Cylinder bore | Dco | 0.0699 m |
Distance of run | Z | 0.0312 m |
Phase angle of volume | φ | 90° |
The length of passing piston | L | 0.04359 m |
Radial clearance of passing piston | σ | 0.00015 m |
Diameter of regenerator | DR | 0.0226 m |
Length of regenerator | LR | 0.0226 m |
Filler of regenerator | Mesh of stainless steel | — |
Pressure parameter | δ | 0.3 |
Mode of driving | Piston driving of single handle, dual power | — |
Proportion of volume | ω | 10 |
Rotation rate | n | 600 rpm = 10 Hz |
Parameter | Symbol, Formula, Basis, Introduction | Value |
---|---|---|
Temperature of hot space | Th | 500 K |
Temperature of warm space | Ta | 340 K |
Temperature of cold space | Tco | 300 K |
Ambient temperature | T0 | 273 K |
Average temperature | 400 K | |
Average pressure | Pav | 10.0 × 106 Pa |
Theoretical exergy efficiency | ηe | — |
Theoretical coefficient of performance | COP | — |
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Xie, Y.; Zhong, K. Investigation on the Performances of Vuilleumier Cycle Heat Pump Adopting Mixture Refrigerants. Entropy 2017, 19, 446. https://doi.org/10.3390/e19090446
Xie Y, Zhong K. Investigation on the Performances of Vuilleumier Cycle Heat Pump Adopting Mixture Refrigerants. Entropy. 2017; 19(9):446. https://doi.org/10.3390/e19090446
Chicago/Turabian StyleXie, Yingbai, and Kai Zhong. 2017. "Investigation on the Performances of Vuilleumier Cycle Heat Pump Adopting Mixture Refrigerants" Entropy 19, no. 9: 446. https://doi.org/10.3390/e19090446
APA StyleXie, Y., & Zhong, K. (2017). Investigation on the Performances of Vuilleumier Cycle Heat Pump Adopting Mixture Refrigerants. Entropy, 19(9), 446. https://doi.org/10.3390/e19090446