Experimental Investigation and Exergy Analysis of Dehumidification Performances for a Cascaded Phase Change Heat Storage Dehumidifier
Abstract
:1. Introduction
2. Exergy Analysis of Cascaded Phase Change Heat Storage
2.1. Analysis of Optimum Phase Change Temperature at all Stages
2.2. Analysis of Exergy Efficiency of Thermal Fluid
3. Cascaded Phase Change Heat Storage Dehumidifier and Its Experimental System
3.1. Structure of Cascaded Phase Change Heat Storage Dehumidifier
3.2. Working Principle of Cascaded Phase Change Heat Storage Dehumidifier
3.3. Experimental System
3.4. Definition of Experimental Performance Parameters
4. Experimental Results and Analysis
4.1. Influences of Wet Air Temperature at Dehumidifier Inlet on Experimental Results
4.1.1. Influence of Wet Air Temperatures at Inlet on Outlet of Dehumidifier
4.1.2. Effect of Wet Air Temperature at Dehumidifier Inlet on Temperature Field of Phase Change Heat Storage
4.2. Influences of Wet Air Flow Rate at Dehumidifier Inlet on Experimental Results
4.2.1. Influence of Inlet Wet Air Flow Rate of Dehumidifier on Outlet Air Temperature
4.2.2. Effect of Inlet Wet Air Flow of Dehumidifier on Temperature Field of Phase Change Heat Storage
4.3. Comparison of Cascaded Number Layout of PCMs
5. Conclusions
- The more stages of phase change materials exit in the cascaded phase change heat storage, the greater the exergy efficiency will be, but the relationship between them is not linear. The increase rate of the exergy efficiency decreases with the increase of the stage numbers. Considering the above factors, the complexity of a multi-stage phase change heat storage device and the difficulty of selecting phase change materials, it is recommended to select the number of phase change material stages as three. When the ∆T is 5 K, and the n is equal to 3, the can reach a maximum of 53.0%.
- With the increase of the temperature and volume flow of the wet air at the inlet of the dehumidifier, the time required for the air temperature at the outlet of the dehumidifier to reach stability is shortened, and the heat transfer capacity of the phase change heat storage dehumidifier is enhanced.
- The cascaded layout of PCMs can improve the water production performance of a dehumidifier. When the hot and wet air temperature and the volume flow rate at the inlet of the dehumidifier are 338.15 K and 5.0 m3/h, compared with dehumidifiers with three kinds of PCM single-stage layouts, the GOR of the dehumidifier with a PCM three-stage layout is increased by 9.69%, 3.86% and 2.40%, and the WPC is reduced by 8.82%, 3.69% and 2.31%, respectively. If the heat in the phase change heat storage device is used for the secondary water output, the water output and GOR will be increased by 25%, and the WPC will be reduced by 20%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Stage Number i | |||||
---|---|---|---|---|---|
n = 1 | n = 2 | n = 3 | n = 4 | ||
0 | 1 | 312.79 | 317.83 | 320.38 | 321.92 |
2 | — | 307.80 | 312.79 | 315.80 | |
3 | — | — | 305.38 | 309.81 | |
4 | — | — | — | 303.90 | |
5 | 1 | 310.40 | 314.59 | 316.71 | 317.99 |
2 | — | 306.26 | 310.40 | 312.91 | |
3 | — | — | 304.21 | 307.91 | |
4 | — | — | — | 302.99 | |
10 | 1 | 307.99 | 311.34 | 313.03 | 314.05 |
2 | — | 304.67 | 307.99 | 309.99 | |
3 | — | — | 303.03 | 305.99 | |
4 | — | — | — | 302.05 |
PCM | Phase | Phase Change Temperature/K | Melting Latent Heat/(kJ/kg) |
---|---|---|---|
PCM1 | Solid | 325.15 | 210.3 |
PCM2 | Solid | 323.15 | 179.0 |
PCM3 | Solid | 321.15 | 160.0 |
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Zhang, L.; Jia, Y.; Fan, Z.; Wang, K. Experimental Investigation and Exergy Analysis of Dehumidification Performances for a Cascaded Phase Change Heat Storage Dehumidifier. Appl. Sci. 2022, 12, 1303. https://doi.org/10.3390/app12031303
Zhang L, Jia Y, Fan Z, Wang K. Experimental Investigation and Exergy Analysis of Dehumidification Performances for a Cascaded Phase Change Heat Storage Dehumidifier. Applied Sciences. 2022; 12(3):1303. https://doi.org/10.3390/app12031303
Chicago/Turabian StyleZhang, Lixi, Yi Jia, Zhida Fan, and Kangbo Wang. 2022. "Experimental Investigation and Exergy Analysis of Dehumidification Performances for a Cascaded Phase Change Heat Storage Dehumidifier" Applied Sciences 12, no. 3: 1303. https://doi.org/10.3390/app12031303
APA StyleZhang, L., Jia, Y., Fan, Z., & Wang, K. (2022). Experimental Investigation and Exergy Analysis of Dehumidification Performances for a Cascaded Phase Change Heat Storage Dehumidifier. Applied Sciences, 12(3), 1303. https://doi.org/10.3390/app12031303