The Effects of Wet Compression by the Electronic Expansion Valve Opening on the Performance of a Heat Pump System
Abstract
:1. Introduction
2. Experimental Setup and Test Procedure
3. Results and Discussion
3.1. Estimation of Quality
3.2. System Performance According to Quality Variation
3.3. Superheat at Discharge as a Controlling Parameter
4. Conclusions
Author Contributions
Conflicts of Interest
Abbreviations
COP | coefficient of performance (−) |
EEV | electronic expansion valve (−) |
EWT | entering water temperature (°C) |
ID HEX | indoor heat exchanger (−) |
OD HEX | outdoor heat exchanger (–) |
SH | superheat at compressor inlet (°C) |
specific heat of water (kJ·kg−1·K−1) | |
entering water temperature at evaporator (°C) | |
enthalpy at evaporator inlet (kJ·kg−1) | |
saturated vapor enthalpy (kJ·kg−1) | |
saturated liquid enthalpy (kJ·kg−1) | |
enthalpy at evaporator outlet (kJ·kg−1) | |
leaving water temperature of evaporator (°C) | |
mass flow rate of refrigerant (kg·s−1) | |
mass flow rate of water (kg·s−1) | |
water capacity at evaporator (W) | |
refrigerant capacity at evaporator (W) |
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Components | Specification |
---|---|
Indoor heat exchanger | Manufacturer: Danfoss Model No.: B3-030-20-3.0-HQ Type: Brazed plate type heat exchanger |
Outdoor heat exchanger | |
Compressor | Manufacturer: LG Model: GA102MFB Type:Inverter Hermetic Rotary compressor Displacement: 10.2 CC Nominal cooling capacity: 3.5 kW |
Electric Expansion Valve | Manufacturer: Sanhua Model No. DPF(o) 1.4 Step (pulse): 2000 Orifice diameter: 1.4 mm |
TEST | Indoor heat exchanger | Outdoor heat exchanger | ||||
---|---|---|---|---|---|---|
EWT (Entering Water Temperature) | WFR (Water Flow Rate) | Discharge Pressure | EWT | WFR | Suction Pressure | |
ISO 13256-2 | 40 °C | 0.6 m3·h−1 | 2946 kPa | 10 °C | 0.6 m3·h−1 | 543 kPa |
2846 kPa | 5 °C | 440 kPa | ||||
2800 kPa | 0 °C | 275 kPa |
Parameter | Uncertainty | Full Scale |
---|---|---|
Pressure transducer | ±0.3% | 50 bar |
Temperature (T-type thermo-couples) at refrigerant side | ±0.5 °C | −200–400 °C |
Temperature (Pt-100 ) at water side | ±0.1 °C | −100–100 °C |
Mass flow meter | ±0.25% | 10 kg·min−1 |
Turbine flow meter | ±0.5% | 2.2 m3·h−1 |
Power meter | ±0.1% | 12 kW |
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Seong, K.; Lee, D.; Lee, J. The Effects of Wet Compression by the Electronic Expansion Valve Opening on the Performance of a Heat Pump System. Appl. Sci. 2017, 7, 248. https://doi.org/10.3390/app7030248
Seong K, Lee D, Lee J. The Effects of Wet Compression by the Electronic Expansion Valve Opening on the Performance of a Heat Pump System. Applied Sciences. 2017; 7(3):248. https://doi.org/10.3390/app7030248
Chicago/Turabian StyleSeong, Kyoungjin, Daehui Lee, and Jinho Lee. 2017. "The Effects of Wet Compression by the Electronic Expansion Valve Opening on the Performance of a Heat Pump System" Applied Sciences 7, no. 3: 248. https://doi.org/10.3390/app7030248
APA StyleSeong, K., Lee, D., & Lee, J. (2017). The Effects of Wet Compression by the Electronic Expansion Valve Opening on the Performance of a Heat Pump System. Applied Sciences, 7(3), 248. https://doi.org/10.3390/app7030248