Performance of MIL-101(Cr)/Water Working Pair Adsorption Refrigeration System Based on a New Type of Adsorbent Filling Method
Abstract
:1. Introduction
2. Experiment
2.1. Reagents and Materials
2.2. Material Synthesis and Characterization
2.3. Measurement of Water Vapor Adsorption Isotherms
2.4. Experimental Rig of Single-Bed Adsorption System with New Type Adsorbent Filling Method
- (1)
- The adsorption bed was initially heated by the temperature controller, and the adsorption bed temperature reached 120 °C after approximately 10 min. Then, the vacuum pump and vacuum ball valves one and three were opened to heat the adsorption bed. When the pressure of the adsorption bed was close to that of the vacuum, vacuum ball valve three and the electric heating tube were turned off. Finally, the vacuum ball valve two was opened and, while closing the valve and the vacuum pump, the excess air was extracted from the evaporator/condenser until the pressure was the pressure at the evaporation temperature/condensation temperature.
- (2)
- The thermostat tank was set as the corresponding adsorption temperature, the circulating water valve on the left of Figure 1 was opened, then the vacuum ball valve two and three were opened, the adsorption bed and evaporator/condenser could form a closed system. Next, a refrigerant (water) began to evaporate rapidly. Moreover, MIL-101 (Cr) began to absorb the water vapor, the heat released in the adsorption process was taken away by the circulating cooling water. The liquid level of the evaporator at the beginning and end was recorded.
- (3)
- Vacuum ball valves two and three were closed after completing Step (2). Then, the adsorption bed temperature was set to desorption temperature (100 °C) using the temperature controller. The temperature of the constant temperature water bath was set to condensing temperature (30 °C). After 30 min, vacuum ball valves two and three were opened, and the process of desorption–condensation began.
3. Mathematical Model of the Single-Bed Adsorption System
3.1. Basic Assumptions of the Theoretical Model
3.2. Mathematical Model of the Basic Cycle
4. Results and Discussion
4.1. XRD and FTIR Analysis
4.2. N2 Adsorption–Desorption Isotherms and Pore Size Analysis
4.3. TGA and SEM Analysis
4.4. Water Vapor Adsorption Isotherms
4.5. Analysis of the Simulation Results
4.6. Analysis of the Experimental Results
4.6.1. Changes in Adsorption Bed Temperature and System Pressure During Evacuation
4.6.2. Reliability Results of the Adsorption System
4.6.3. System COP and SCP
5. Conclusions
- (1)
- The XRD (2θ = 3.24°, 5.82°, 8.36°, 9°, 10.24°, and 16.4°) and FTIR spectroscopy results showed that the MIL-101 (Cr) material was successfully synthesized.
- (2)
- The TGA results showed that the synthesized MIL-101(Cr) could be stabilized to 270 °C.
- (3)
- The results of the water vapor adsorption test showed that the maximum water vapor adsorption capacities of MIL-101 (Cr) were approximately 1.2 and 1.1 g·g−1 at 298 and 308 K, respectively.
- (4)
- The simulation results showed that, when the desorption temperature reached 367 K, the system COP reached a maximum value of 0.161 and then decreased with the increase in desorption temperature, whereas the cooling capacity increased with the desorption temperature.
- (5)
- When the adsorption temperature was 35 °C, the evaporation temperatures were 15 °C and 20 °C, and the amounts of the water vapor equilibrium adsorption of MIL-101 (Cr) were 0.45 and 0.55 g·g−1. Moreover, the SCPs were 42.7 and 43.4 W·kg−1, and the system COPs were 0.112 and 0.144.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
A | Clausius–Claperon equation constant |
Ca | specific heat capacity of the adsorbent, kJ·kg−1·K−1 |
Clc | specific heat capacity of water, kJ·kg−1·K−1 |
Cm | specific heat capacity of stainless steel, kJ·kg−1·K−1 |
hd | desorption heat, kJ·kg−1·K−1 |
L | latent heat of vaporization of water, kJ·kg−1 |
Ma | adsorbent mass, kg |
Mm | adsorption bed mass, kg |
Qc | heat taken away during cooling of adsorption bed, kJ·kg−1 |
Qeva | sensible heat of liquid refrigerant from Tc to evaporation temperature Te, kJ·kg−1 |
Qg | heat absorbed during the desorption process, kJ·kg−1 |
Qref | cooling capacity, kJ·kg−1 |
R | universal gas constant, J·mol−1·K−1 |
Ta1 | initial adsorption temperature, K |
Ta2 | adsorption temperature, K |
Tc | condensation temperature, K |
Te | evaporation temperature, K |
Tg1 | initial desorption temperature, K |
Tg2 | desorption temperature, K |
Tsat | saturation temperature corresponding to the adsorption pressure, K |
xconc | water adsorption capacity in gas–solid-phase equilibrium at the time of adsorption in adsorption temperature, kg·kg−1 |
xdil | water adsorption capacity in gas–solid-phase equilibrium at the time of desorption in desorption temperature, kg·kg−1 |
x0 | maximum adsorption capacity, kg·kg−1 |
Δx | circulating adsorption capacity, kg·kg−1 |
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Content | Value |
---|---|
power Supply (V) | 24 |
operating temperature range (°C) | −30–80 |
signal (mA) | 4–20 |
gauge pressure range (kPa) | −100–1600 |
accuracy (kPa) | 0.1 |
Symbol | Value | Unit |
---|---|---|
Ma | 0.1 | Kg |
Mm | 2 | Kg |
Clc | 4.18 | kJ·kg−1·K−1 |
Cm | 0.5 | kJ·kg−1·K−1 |
L | 2258 | kJ·kg−1 |
Specific Surface Area/(m2·g−1) | Pore Volume/(cm3·g−1) | ||
---|---|---|---|
BET | Langmuir | ||
MIL-101(Cr) | 3054 | 4882 | 1.734 |
Evaporation Temperature (°C) | Adsorption Quantity (g·g−1) | Desorption Quantity (g·g−1) | Cycle Adsorption Quantity (g·g−1) | SCP (W·kg−1) | COP |
---|---|---|---|---|---|
15 | 0.45 | 0.31 | 0.14 | 42.7 | 0.112 |
20 | 0.55 | 0.4 | 0.15 | 43.4 | 0.144 |
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Liu, Z.; Zhao, B.; Zhu, L.; Lou, F.; Yan, J. Performance of MIL-101(Cr)/Water Working Pair Adsorption Refrigeration System Based on a New Type of Adsorbent Filling Method. Materials 2020, 13, 195. https://doi.org/10.3390/ma13010195
Liu Z, Zhao B, Zhu L, Lou F, Yan J. Performance of MIL-101(Cr)/Water Working Pair Adsorption Refrigeration System Based on a New Type of Adsorbent Filling Method. Materials. 2020; 13(1):195. https://doi.org/10.3390/ma13010195
Chicago/Turabian StyleLiu, Zhongbao, Banghua Zhao, Longqian Zhu, Fengfei Lou, and Jiawen Yan. 2020. "Performance of MIL-101(Cr)/Water Working Pair Adsorption Refrigeration System Based on a New Type of Adsorbent Filling Method" Materials 13, no. 1: 195. https://doi.org/10.3390/ma13010195
APA StyleLiu, Z., Zhao, B., Zhu, L., Lou, F., & Yan, J. (2020). Performance of MIL-101(Cr)/Water Working Pair Adsorption Refrigeration System Based on a New Type of Adsorbent Filling Method. Materials, 13(1), 195. https://doi.org/10.3390/ma13010195