Heat Transfer Characteristics of Modular Heat Storage Wall Solar Greenhouse Based on Active Heat Storage System
Abstract
:1. Introduction
2. Materials and Methods
2.1. Test Materials
2.1.1. Test Greenhouses
2.1.2. Active Thermal Storage Circulation System
2.1.3. Testing Instruments
2.2. Wall Construction Process
2.3. Measurement Point Arrangement
2.4. Data Processing
3. Analyses of Environmental Parameters of Different Modular Wall Greenhouses
3.1. Comparative Analyses of Temperatures inside and outside the Greenhouse
3.2. Temperature Analysis inside the Greenhouses during the Test Period
3.3. Comparative Analyses of the Inlet and Outlet Air Temperature and Humidity in the Greenhouse on Typical Sunny Days
3.4. Comparative Analyses of the Temperature and Humidity of the Air Inlet and Outlet in the Greenhouse on Typical Cloudy Days
3.5. The Significance Analyses of Environmental Parameters of Two Greenhouse on Typical Sunny and Cloudy Days
3.6. Analysis of an Active Heat Storage System Heat Transfer and Passive Heat Storage of Walls
3.6.1. Active Passive Heat Storage and Heat Release
3.6.2. Energy Efficiency Ratio
4. Discussion
- (1)
- On typical cloudy days, the relative humidity at the air inlet of SG was generally high, reaching 96% on average, which was consistent with the results of the previous study [35]. The relative humidity at the air inlet of both SG and PG was close to 100%, which may arise from the shutting down of the active thermal storage circulation system on cloudy days. Meanwhile, the hot air was hovering over the top of internal environment, which resulted in the accumulation of moisture at the air inlet. In terms of the back wall material, the water absorption and permeability of soil was higher than that of stone. Combined with the less density of soil than that of pebbles, the relative humidity of both SG and PG air inlets were high. Then, the relative humidity of SG tended to reach 100%.
- (2)
- As shown in Table 1, the active heat transfer accounted for a smaller percentage in the sunny heat storage and exothermic stages, which was different from the active heat transfer percentage of G1 and G2 of 30.02% and 34.32% studied by related research [7] This may be on account of no difference in the calculated values of ντ, Hin and Hout involved in the computational formula of heat transfer in Equations (1) and (2) of this paper. Meanwhile, V: 0.16, 0.27 m3 and A: 0.009, 0.02 m2 in this paper were different from the total volume of ducts (5.60, 8.98 m3) and cross-sectional area (0.152, 0.235 m2) in a previous study [7]. Structural optimization of the active heat storage circulation system will be carried out subsequently to improve its active heat storage capacity.
- (3)
- The back wall material structure and heat storage method were crucial to improve the thermal insulation and heat storage of the solar greenhouse [36,37]. In this paper, the back wall materials and the horizontal positions of the air inlet and outlet of the two greenhouses were different. Thus, no single analysis of the thermal insulation and heat storage performance of a single greenhouse can be performed. The difference of duct arrangement structure caused by the back wall material made it difficult to analyze the heat transfer characteristics. However, the heat storage mode and the horizontal height of air inlet and outlet of the two greenhouses were identical. Thus, a comparative analysis was conducted between the two greenhouses [38], in order to determine the greenhouse with better heat insulation and heat storage. The next step will be to consider the analysis of the heat transfer performance of a single greenhouse under the condition of natural temperature difference.
5. Conclusions
- (1)
- The data test analysis of 28 consecutive days showed that the average indoor air temperature at night was 15.51 and 15.07 °C for SG and PG, respectively. Meanwhile, the average outdoor air temperature at night was 4.41 °C. Therefore, both modular greenhouses can effectively increase the nighttime temperature by 10–12 °C. That is, the nighttime insulation performance of both greenhouses was good. However, SG was slightly better than PG.
- (2)
- In terms of the active heat transfer characteristics, the difference of average air temperature between the inlet and outlet of SG and PG during the heat storage period was 5.03 and 5.98 °C, respectively. The average relative humidity difference was 17.15% and 11.40% and the average heat storage duration was 6.8 and 6.6 h, respectively. In addition, the difference of average relative humidity between the inlet and outlet of SG and PG was 1.04 and 2.37 °C. The average relative humidity difference between the inlet and outlet of SG and PG was 15.99% and 11.50%, respectively. The average heat release duration was 10 and 10.5 h. The difference of the average temperature and the relative humidity between the inlet and outlet of SG and PG indicated that the insulation effect of SG was better and the speed of increasing temperature was faster at night than that of PG. On typical cloudy days, the average temperature difference between the inlet and outlet of SG and PG was 2.89 and 3.90 °C, respectively. The difference of average relative humidity was 19.92% and 15.87%, respectively. Besides, the average duration of heat release was 11 h. The difference of average temperature between the inlet and outlet of SG was smaller than that of PG in the heat release. The difference of average relative humidity was SG > PG. Therefore, the heat preservation and storage performance of SG was slightly better than PG. The thermal performance of heliogreenhouse with a modular heat storage wall can effectively improve the growth of crop tomatoes.
- (3)
- During the heat storage and release period on sunny heat storage stage, sunny day exothermic phase, and cloudy exothermic phase, the total heat transfer of SG was 464.87, 110.44 and 54.82 MJ, respectively, while the total heat transfer of PG was 264.16, 61.60 and 46.89 MJ, respectively. The heat storage capacity of the two greenhouses was much larger than the heat release, which indicated that the heat storage performance of the two greenhouses was good. Thereinto, the heat storage and heat release of SG were higher than that of PG. In addition, the maximum energy efficiency ratio of SG and PG was 92.12 and 79.55, respectively, in the heat storage phase on typical sunny days. The maximum energy efficiency ratio of SG and PG was 16.78 and 15.21 in the heat release phase on typical sunny days, respectively. Additionally, the maximum energy efficiency ratio of SG and PG was 30.11 and 28.15 in the heat release phase on typical cloudy days, respectively. This revealed that the energy saving effect of the active system in the greenhouse under different weather is very good, where the heat storage phase on typical sunny days was the optimum.
- (4)
- The construction cost of the modular heat storage wall heliogreenhouse was reduced by 70–160 yuan/m2 compared with the traditional heat storage solar greenhouse and backfilled assembly heat storage wall solar greenhouse. Moreover, the construction time of the modular heat storage wall solar greenhouse was short.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Performance Parameter | Sunny Heat Storage Stage | Sunny Day Exothermic Phase | Cloudy Exothermic Phase | |||
---|---|---|---|---|---|---|
SG | PG | SG | PG | SG | PG | |
Active heat transfer/MJ | 56.38 | 47.25 | −15.10 | −14.37 | −29.81 | −27.87 |
Passive heat transfer/MJ | 408.49 | 216.91 | −95.34 | −47.23 | −25.01 | −19.92 |
General biography Heat/MJ | 464.87 | 264.16 | −110.44 | −61.60 | −54.82 | −46.89 |
Proportion of active heat transfer | 0.12 | 0.14 | 0.23 | 0.23 | 0.54 | 0.59 |
Date | Weather | Temperature/°C |
---|---|---|
30 January 2021 | Cloudy | −4~12 |
31 January 2021 | Cloudy | −3~10 |
1 February 2021 | Sunny day | −4~13 |
2 February 2021 | Sunny day | −5~8 |
3 February 2021 | Cloudy | −2~14 |
4 February 2021 | Cloudy day/Cloudy | −2~7 |
5 February 2021 | Sunny day/Cloudy | −3~16 |
6 February 2021 | Sunny day/Cloudy | −2~17 |
7 February 2021 | Cloudy/Sunny day | −1~12 |
8 February 2021 | Sunny day | −2~12 |
9 February 2021 | Cloudy/Sunny day | −2~13 |
10 February 2021 | Sunny day/Cloudy | −1~15 |
11 February 2021 | Cloudy/Sunny day | −1~14 |
12 February 2021 | Sunny day/Cloudy | −1~17 |
13 February 2021 | Rainy day/Sunny day | −3~11 |
14 February 2021 | Sunny day/Cloudy | 0~16 |
15 February 2021 | Cloudy day/Cloudy | −2~11 |
16 February 2021 | Sunny day | −3~16 |
17 February 2021 | Cloudy day | −2~14 |
18 February 2021 | Cloudy | 1~16 |
19 February 2021 | Sunny day | 1~20 |
20 February 2021 | Sunny day | 2~21 |
21 February 2021 | Sunny day/Cloudy | 3~23 |
22 February 2021 | Sunny day/Cloudy | 5~19 |
23 February 2021 | Sunny day/Cloudy | 5~19 |
24 February 2021 | Rain and snow/Cloudy day | 0~7 |
25 February 2021 | Cloudy day | 0~6 |
26 February 2021 | Cloudy day | 0~9 |
27 February 2021 | Cloudy day | 1~11 |
28 February 2021 | Rainy day | 1~5 |
Parameters | SG | PG |
---|---|---|
Average minimum air temperature/°C | 12.12 | 12.52 |
Average maximum air temperature/°C | 32.38 | 32.32 |
Average daily air temperature/°C | 18.47 | 18.47 |
Average daytime temperature (09:00–17:00)/°C | 24.40 | 25.26 |
Average night air temperature (17:00–next 09:00)/°C | 15.51 | 15.07 |
Number of days with minimum temperature ≤ 8 °C/d | 21 | 18 |
Number of days with minimum temperature ≤ 5 °C/d | 0 | 0 |
Number of days with maximum temperature ≥ 25 °C/d | 21 | 22 |
Number of days with average daytime temperature (09:00–17:00) ≥ 18 °C/d | 22 | 22 |
Module Type | Inlet Air | Outlet Air | ||
---|---|---|---|---|
Temperature/°C | Relative Humidity/% | Temperature/°C | Relative Humidity/% | |
SG | 33.18 ± 0.80 | 38.17 ± 10.44 | 24.94 ± 0.20 | 47.63 ± 1.24 |
PG | 37.14 ± 1.57 * | 26.61 ± 6.36 | 29.07 ± 0.81 ** | 43.22 ± 8.95 |
Module Type | Inlet Air | Outlet Air | ||
---|---|---|---|---|
Temperature/°C | Relative Humidity/% | Temperature/°C | Relative Humidity/% | |
SG | 15.42 ± 0.07 *** | 100.00 ± 0.00 *** | 18.93 ± 0.12 *** | 74.97 ± 0.27 *** |
PG | 13.65 ± 0.36 | 87.51 ± 0.69 | 17.96 ± 0.17 | 68.90 ± 0.66 |
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Wu, D.; Cui, B.; Zhang, Y.; Wu, X.; Zou, Z.; Bao, E. Heat Transfer Characteristics of Modular Heat Storage Wall Solar Greenhouse Based on Active Heat Storage System. Appl. Sci. 2023, 13, 846. https://doi.org/10.3390/app13020846
Wu D, Cui B, Zhang Y, Wu X, Zou Z, Bao E. Heat Transfer Characteristics of Modular Heat Storage Wall Solar Greenhouse Based on Active Heat Storage System. Applied Sciences. 2023; 13(2):846. https://doi.org/10.3390/app13020846
Chicago/Turabian StyleWu, Delin, Bowen Cui, Yao Zhang, Xue Wu, Zhirong Zou, and Encai Bao. 2023. "Heat Transfer Characteristics of Modular Heat Storage Wall Solar Greenhouse Based on Active Heat Storage System" Applied Sciences 13, no. 2: 846. https://doi.org/10.3390/app13020846
APA StyleWu, D., Cui, B., Zhang, Y., Wu, X., Zou, Z., & Bao, E. (2023). Heat Transfer Characteristics of Modular Heat Storage Wall Solar Greenhouse Based on Active Heat Storage System. Applied Sciences, 13(2), 846. https://doi.org/10.3390/app13020846