Performance Analysis of Two-Stage Solid Desiccant Densely Coated Heat Exchangers
Abstract
:1. Introduction
2. Experimental Equipment Construction and Dehumidification Theory
2.1. Experimental Equipment
2.2. Dehumidification Effect
3. Results and Discussions
3.1. Performance Analysis of Single Stage DCHE and Two Stage DCHEs with Different Desiccant Coating Methods
3.2. Performance Comparison of Single Stage DCHE and Two Stage DCHEs Densly Coated with Silica Gel
3.3. Performance Comparison of Single Stage DCHE and Two Stage DCHEs Densly Coated with Sodium Polyacrylate
3.4. Thermal Performance Comparison of Single Stage DCHE and Two Stage DCHEs with Silica Gel and Sodium Polyacrylate
4. Conclusions
- Using the dense desiccant coating method on the heat exchanger, the absorption capacity of the desiccants can be greatly boosted and the thermal coefficient of performance can be greatly enhanced due to a higher thermal utility and less heat loss in the dehumidification and regeneration processes.
- Using the two-stage DCHEs, a lower outlet humidity of the process air can be attained compared to the single stage DCHE.
- The total vapor absorption amounts of the two-stage DCHEs are greater than those of the single stage DCHE by more than a factor of 2. Because the stay time of the process air between the first stage DCHE and the second stage DCHE and the velocity of the process air decrease, there is more time for the desiccants to undergo vapor absorption; thus, the absorption effect of the desiccant can be raised.
- With the increase in the inlet humidity of the processed air, the water vapor pressure difference between the processed air and the desiccant rises and total heat exchange of the processed air in dehumidification process, Qcooling, increases as well. With the regeneration water temperature rise, the water vapor pressure difference between the desiccant and the processed air increases, meaning more water content in the desiccant is ejected into the processed air. This is beneficial to the water vapor absorption of the desiccant in the dehumidification process. Therefore, for single stage DCHE and two-stage DCHEs, the COPth value increases with an increase in the inlet humidity of the processed air and the regeneration water temperature.
- The absorption effect of sodium poly is better than silica gel under a higher inlet humidity of process air.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Nomenclature
Total area of the fins of DCHE/DCHEs | Gvap | Vapor sorption/desorption amounts | |
COPth | Coefficient of thermal performance | Mass of the desiccant coated on DCHE/DCHEs | |
Cp | Specific heat | Enthalpies of the process after of DCHE/DCHEs | |
Cw | Sorption ability | Enthalpies of the process before of DCHE/DCHEs | |
Gvg | Vapor sorption/desorption amounts per unit desiccant | Mass flow rate of water | |
Gva | Vapor sorption/desorption amounts per unit area of DCHE/DCHEs | Mass flow rate of air | |
Moisture removal rate | Temperatures of water exhaust from DCHE | ||
Qreg | Average heat exchange of water in an effective regeneration process | Humidity ratio of process air inlet | |
Qcooling | The ratio of the total energy exchange of the processed air in an effective dehumidification process | Humidity ratio of process air inlet | |
RH | Relative humidity | τ | Period for vapor sorption or desorption |
Temperatures of water supply to DCHE |
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Instrument | Type | Uncertainty | |
---|---|---|---|
1 | Programmable constant temperature and humidity system | 150-00-SP-SD | Temperature 0–100 °C ± 0.3 °C Humidity 10–98% RH ± 3% RH |
2 | Constant temperature sink | D-620 | −20–100 °C ± 0.1 °C |
3 | Precision electronic scale | TB-214 | 0–210 g ± 0.001 g |
4 | Electric heating plate | HP-303D | 0–350°C ± 1 °C |
5 | Data recorder | GL-840M | ±0.002% |
6 | Temperature and humidity probe | HC2-IC302 | Temperature −40–85 °C ± 0.3 °C Humidity 0–100% RH ± 0.8% RH |
7 | Anemometer | TES-3142 | 1–80 m/s ± 3% |
8 | Liquid flow meter | NW20-NTN | 1.5–20 L/min ± 2% |
Uncertainty of calculated quantity | Uncertainty range | ||
A | −2.2% to 2.2% | ||
B | −2.2% to 2.2% | ||
C | −4.2% to 4.2% | ||
D | −6.5% to 6.5% | ||
F | COPth | −3.7% to 3.7% |
Sorption and Desorption Amount (Gvap) of DCHEs with Different Coating Methods (Unit: Gram) | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption amount | Desorption amount | Sorption amount | Desorption amount | Sorption amount | Desorption amount | |
Densely silica coating DCHE | 60.29 | 40.55 | 86.75 | 75.81 | 95.66 | 93.30 |
Immersing silica coating DCHE | 3.35 | 3.33 | 3.93 | 3.90 | 4.54 | 4.53 |
Densely polyacrylate coating DCHE | 34.66 | 31.48 | 69.81 | 70.08 | 109.50 | 150.08 |
Immersing polyacrylate coating DCHE | 2.45 | 2.44 | 3.98 | 3.99 | 4.11 | 4.12 |
Sorption and Desorption Amount per Gram (Gvap/gdes) of DCHEs with Different Coating Methods (Unit: Gram/Gram) | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption amount | Desorption amount | Sorption amount | Desorption amount | Sorption amount | Desorption amount | |
Densely silica coating DCHE | 0.0646 | 0.0435 | 0.0930 | 0.0812 | 0.1025 | 0.1000 |
Immersing silica coating DCHE | 0.0238 | 0.0236 | 0.0279 | 0.0277 | 0.0322 | 0.0322 |
Densely polyacrylate coating DCHE | 0.0895 | 0.0813 | 0.1802 | 0.1809 | 0.2826 | 0.3874 |
Immersing polyacrylate coating DCHE | 0.0349 | 0.0348 | 0.0569 | 0.0571 | 0.0588 | 0.0586 |
Sorption and Desorption Amount per Unit Area (Gva) of the Fin-Tube Heat Exchangers Coated with Desiccants of Silica Gel and Sodium Polyacrylate Obtained Using the Two Coating Methods under Different Humidity Conditions of the Processing Air within 30 min (Gva = (Gvap/cm2)) | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption amount | Desorption amount | Sorption amount | Desorption amount | Sorption amount | Desorption amount | |
Densely silica coating DCHE | 0.0125 | 0.0084 | 0.0180 | 0.0157 | 0.0198 | 0.0193 |
Immersing silica coating DCHE | 0.000335 | 0.000333 | 0.000393 | 0.00039 | 0.000453 | 0.000454 |
Densely polyacrylate coating DCHE | 0.0034 | 0.0030 | 0.0067 | 0.0068 | 0.0106 | 0.0145 |
Immersing polyacrylate coating DCHE | 0.000241 | 0.000240 | 0.000392 | 0.000394 | 0.004056 | 0.000405 |
The COPth of both Desiccants Obtained by the Dense and Immersing Coating Methods in 30 min | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption amount | Desorption amount | Sorption amount | Desorption amount | Sorption amount | Desorption amount | |
Densely silica coating DCHE | 0.5272 | 0.5524 | 0.6292 | 0.5272 | 0.5524 | 0.6292 |
Immersing silica coating DCHE | 0.2104 | 0.2575 | 0.2697 | 0.2104 | 0.2575 | 0.2697 |
Densely polyacrylate coating DCHE | 0.4605 | 0.5244 | 0.5722 | 0.4605 | 0.5244 | 0.5722 |
Immersing polyacrylate coating DCHE | 0.1928 | 0.2801 | 0.2860 | 0.1928 | 0.2801 | 0.2860 |
The Single Stage DCHE and Two-Stage DCHEs in Series, Densely Coated with Silica Gel at a Regeneration Water Temperature of 50 °C | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption | Desorption | Sorption | Desorption | Sorption | Desorption | |
Vapor sorption/desorption amount of DCHE (Gvap unit: gram) | 60.29 | 40.55 | 86.75 | 75.81 | 95.66 | 93.30 |
Vapor sorption/desorption amount of DCHEs (Gvap unit: gram) | 161.91 | 101.36 | 187.31 | 183.98 | 244.99 | 243.34 |
Vapor sorption/desorption amounts per contact area of DCHE (Gva unit: gram/cm2) | 0.0125 | 0.0084 | 0.0180 | 0.0157 | 0.0198 | 0.0193 |
Vapor sorption/desorption amounts per contact area of DCHEs (Gva unit: gram/cm2) | 0.0166 | 0.0104 | 0.0192 | 0.0189 | 0.0251 | 0.0250 |
Vapor sorption/desorption amounts per unit desiccant of DCHE (Gvg unit: gram/gram) | 0.0646 | 0.0435 | 0.0930 | 0.0812 | 0.1025 | 0.1000 |
Vapor sorption/desorption amounts per unit desiccant of DCHEs (Gvg unit: gram/gram) | 0.0860 | 0.0539 | 0.0995 | 0.0978 | 0.1301 | 0.1293 |
The Single Stage DCHE and Two-Stage DCHEs in Series, Densely Coated with Silica Gel at a Regeneration Water Temperature of 70 °C | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption | Desorption | Sorption | Desorption | Sorption | Desorption | |
Vapor sorption/desorption amount of DCHE (Gvap unit: gram) | 172.83 | 117.02 | 211.71 | 128.88 | 267.75 | 178.04 |
Vapor sorption/desorption amount of DCHEs (Gvap unit: gram) | 227.42 | 117.99 | 321.86 | 198.33 | 438.56 | 225.55 |
Vapor sorption/desorption amounts per contact area of DCHE (Gva unit: gram/cm2) | 0.0358 | 0.0242 | 0.0438 | 0.0267 | 0.0554 | 0.0368 |
Vapor sorption/desorption amounts per contact area of DCHEs (Gva unit: gram/cm2) | 0.0233 | 0.0121 | 0.0330 | 0.0203 | 0.0450 | 0.0231 |
Vapor sorption/desorption amounts per unit desiccant of DCHE (Gvg unit: gram/gram) | 0.1852 | 0.1254 | 0.2269 | 0.1381 | 0.2869 | 0.1908 |
Vapor sorption/desorption amounts per unit desiccant of DCHEs (Gvg unit: gram/gram) | 0.1208 | 0.0627 | 0.1710 | 0.1054 | 0.2330 | 0.1199 |
The Single Stage DCHE and Two-Stage DCHEs in Series, Densely Coated with Sodium Polyacrylate at a Regeneration Water Temperature of 50 °C | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption | Desorption | Sorption | Desorption | Sorption | Desorption | |
Vapor sorption/desorption amount of DCHE (Gvap unit: gram) | 34.66 | 31.48 | 69.81 | 70.08 | 109.50 | 150.08 |
Vapor sorption/desorption amount of DCHEs (Gvap unit: gram) | 98.35 | 79.98 | 184.91 | 134.10 | 270.17 | 229.77 |
Vapor sorption/desorption amounts per contact area of DCHE (Gva unit: gram/cm2) | 0.0034 | 0.0030 | 0.0067 | 0.0068 | 0.0106 | 0.0145 |
Vapor sorption/desorption amounts per contact area of DCHEs (Gva unit: gram/cm2) | 0.0049 | 0.0040 | 0.0092 | 0.0066 | 0.0134 | 0.0114 |
Vapor sorption/desorption amounts per unit desiccant of DCHE (Gvg unit: gram/gram) | 0.0895 | 0.0813 | 0.1802 | 0.1809 | 0.2826 | 0.3874 |
Vapor sorption/desorption amounts per unit desiccant of DCHEs (Gvg unit: gram/gram) | 0.1116 | 0.0908 | 0.2010 | 0.1523 | 0.3068 | 0.2609 |
The Single Stage DCHE and Two-Stage DCHEs in Series, Densely Coated with Sodium Polyacrylate at a Regeneration Water Temperature of 70 °C | ||||||
---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | ||||
Sorption | Desorption | Sorption | Desorption | Sorption | Desorption | |
Vapor sorption/desorption amount of DCHE (Gvap unit: gram) | 108.59 | 69.50 | 168.19 | 105.03 | 268.96 | 176.22 |
Vapor sorption/desorption amount of DCHEs (Gvap unit: gram) | 138.91 | 103.82 | 264.96 | 182.06 | 346.99 | 252.83 |
Vapor sorption/desorption amounts per contact area of DCHE (Gva unit: gram/cm2) | 0.0237 | 0.0152 | 0.0368 | 0.0230 | 0.0588 | 0.0385 |
Vapor sorption/desorption amounts per contact area of DCHEs (Gva unit: gram/cm2) | 0.0150 | 0.0112 | 0.0287 | 0.0197 | 0.0376 | 0.0274 |
Vapor sorption/desorption amounts per unit desiccant of DCHE (Gvg unit: gram/gram) | 0.2803 | 0.1794 | 0.4341 | 0.2711 | 0.6942 | 0.4549 |
Vapor sorption/desorption amounts per unit desiccant of DCHEs (Gvg unit: gram/gram) | 0.1578 | 0.1179 | 0.3009 | 0.2068 | 0.3940 | 0.2871 |
The Coefficient of Thermal Performance (COPth) of the Single Stage DCHE and Two-Stage DCHEs in Series with Silica Gel and Sodium Polyacrylate under Different Inlet Humidity Levels of the Process Air and Supplied Regeneration Water Temperatures in 30 min. | |||||||
---|---|---|---|---|---|---|---|
30 °C/60% RH | 30 °C/70% RH | 30 °C/80% RH | |||||
Silica gel | sodium polyacrylate | Silica gel | sodium polyacrylate | Silica gel | sodium polyacrylate | ||
50 °C | DCHE | 0.5272 | 0.4605 | 0.5524 | 0.5244 | 0.6292 | 0.5722 |
DCHEs | 0.5157 | 0.4787 | 0.5303 | 0.5523 | 0.5651 | 0.6490 | |
70 °C | DCHE | 0.8137 | 0.7582 | 0.8391 | 0.8683 | 0.8493 | 0.9317 |
DCHEs | 0.4288 | 0.5423 | 0.5949 | 0.6017 | 0.6052 | 0.7271 |
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Li, K.-Y.; Luo, W.-J.; Tsai, B.-Y.; Kuan, Y.-D. Performance Analysis of Two-Stage Solid Desiccant Densely Coated Heat Exchangers. Sustainability 2020, 12, 7357. https://doi.org/10.3390/su12187357
Li K-Y, Luo W-J, Tsai B-Y, Kuan Y-D. Performance Analysis of Two-Stage Solid Desiccant Densely Coated Heat Exchangers. Sustainability. 2020; 12(18):7357. https://doi.org/10.3390/su12187357
Chicago/Turabian StyleLi, Kun-Ying, Win-Jet Luo, Bo-Yi Tsai, and Yean-Der Kuan. 2020. "Performance Analysis of Two-Stage Solid Desiccant Densely Coated Heat Exchangers" Sustainability 12, no. 18: 7357. https://doi.org/10.3390/su12187357
APA StyleLi, K. -Y., Luo, W. -J., Tsai, B. -Y., & Kuan, Y. -D. (2020). Performance Analysis of Two-Stage Solid Desiccant Densely Coated Heat Exchangers. Sustainability, 12(18), 7357. https://doi.org/10.3390/su12187357