High-Efficiency HVAC System with Defog/Dehumidification Function for Electric Vehicles
Abstract
:1. Introduction
2. Experimental Setup
3. Experimental Data Reduction
3.1. A/C Mode
3.2. PHP Mode
3.3. DHP Mode
3.4. Data Acquisition System
3.5. Instrumentation Accuracy
4. Results and Discussion
5. Conclusions
- In the A/C mode, the temperature within the simulated cabin reduces to less than 25 °C in five minutes and falls to around 15 °C under steady state conditions. The corresponding COPA/C is 3.18.
- In the PHP mode, the cabin temperature rises to 30 °C within 10 min and increases to approximately 40 °C at steady state. The corresponding COPPHP is 3.3.
- In the DHP mode, the air sucked from the temperature and humidity test chamber at 27 °C is dehumidified and reduced to a temperature of around 17 °C by an evaporator and is then passed through a condenser, where it is heated to a temperature of around 40 °C. The dehumidification performance of the DHP mode is equal to 1.47 L/kW-h, and hence exceeds the minimum requirement of 1.4 L/kW-h laid down in the corresponding standard (CNS 12492).
- When the outdoor temperature is too low and using PHP mode, the freezing phenomena will occur on the outdoor HX3, than will affect the performance of PHP. Moreover, It is currently a laboratory test and will be installed in the car for on-road test in the future.
Author Contributions
Funding
Conflicts of Interest
References
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Mode | Environment Conditions | Standard |
---|---|---|
A/C | dry bulb temperature of 35 °C wet bulb temperature of 24 °C | CNS 14464 |
Pure Heat Pump | dry bulb temperature of 7 °C wet bulb temperature of 6 °C | CNS 14464 |
Defog Heat-Pump | dry bulb temperature of 27 °C wet bulb temperature of 21.2 °C | CNS 12492 |
Sensor | Accuracy after Calibration |
---|---|
TC (Temperature) | ±0.1 °C |
Power meter | ±0.2% |
Accubalance air capture hood | ±3.0% |
Anemometer | ±0.04 m/s for 0.1~1.33 m/s; ±3% for 1.33~30 m/s |
Reference No. | Authors | COP of Pure Heat Pump | Defog Heat Pump (Simultaneously Heating/Dehumidifying Ability) |
---|---|---|---|
Present study | Chang et al. | 3.3 (outdoor temperature at 7 °C) | With (the dehumidifying ability is 1.47 L/kW-h) |
[10] | Cheng, Y.T.; Huang, S.J | 3–3.5 (outdoor temperature at −3 °C–10 °C) | Not report. |
[11] | Cho et al. | 3 (outdoor temperature at 0 °C) | Not report. |
[13] | Lee et al. | 2.5 (outdoor temperature at 10 °C) | Not report. |
[15] | Lee, D. | 2.8–3.3 (outdoor temperature at −10 °C–7 °C) | Not report. |
[30] | Tang et al. | 3.2 (outdoor temperature at −5 °C) | Not report. |
[29] | Telsa’s official website | None, a Positive Temperature Coefficient (PTC) heater with 400 volts is used for heating. | None, but using A/C system for cooling and dehumidifying and then using PTC for heating the cold and dry air. |
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Chang, T.-B.; Sheu, J.-J.; Huang, J.-W. High-Efficiency HVAC System with Defog/Dehumidification Function for Electric Vehicles. Energies 2021, 14, 46. https://doi.org/10.3390/en14010046
Chang T-B, Sheu J-J, Huang J-W. High-Efficiency HVAC System with Defog/Dehumidification Function for Electric Vehicles. Energies. 2021; 14(1):46. https://doi.org/10.3390/en14010046
Chicago/Turabian StyleChang, Tong-Bou, Jer-Jia Sheu, and Jhong-Wei Huang. 2021. "High-Efficiency HVAC System with Defog/Dehumidification Function for Electric Vehicles" Energies 14, no. 1: 46. https://doi.org/10.3390/en14010046
APA StyleChang, T. -B., Sheu, J. -J., & Huang, J. -W. (2021). High-Efficiency HVAC System with Defog/Dehumidification Function for Electric Vehicles. Energies, 14(1), 46. https://doi.org/10.3390/en14010046