Research on the Impact of Different Photovoltaic Fishery Models on Climate and Water Environment in Aquaculture
Abstract
1. Introduction
2. Materials and Methods
2.1. Experimental Mode and Region
2.2. Experimental Methods
2.3. Data Analysis
3. Results
3.1. Impact of the PFM on Light Intensity, Temperature, and Humidity
3.2. Impact of the PFM on Water Indicators
3.3. Impact of the PFM on Phytoplankton and Zooplankton
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Mode | Dongying City | Taishan City | ||||
---|---|---|---|---|---|---|
Value | Ratio α | Value | Ratio α | Ratio β | ||
Light intensity (Lx) | TPM | 15,000.71 ± 6722.48 | na | 13,650.42 ± 5177.32 | na | na |
PFM-fixed | 4837.46 ± 22,722.49 | 67.75% | 4769.16 ± 908.98 | 65.06% | na | |
PFM-flexible | na | na | 10,353.55 ± 4773.32 | na | 24.15% | |
Temperature (°C) | TPM | 15.81 ± 8.01 | na | 24.20 ± 5.58 | na | na |
PFM-fixed | 14.33 ± 8.82 | 9.39% | 23.41 ± 5.25 | 3.28% | na | |
PFM-flexible | na | na | 24.03 ± 5.66 | na | 0.71% | |
Humidity (%RH) | TPM | 71.24 ± 4.40 | na | 84.45 ± 8.85 | na | na |
PFM-fixed | 67.28 ± 5.80 | 5.56% | 76.32 ± 6.37 | 9.62% | na | |
PFM-flexible | na | na | 80.47 ± 9.67 | na | 4.71% |
Compared with TPM in References | Similarities and Differences with This Study | Possible Reason | References |
---|---|---|---|
The average light intensity of the shaded area was 85.4% lower than that of the unshaded area. | Similar, but the degree of difference varies | Related to the region, monitoring frequency, etc. | [16] |
The temperature and pH in the water body showed a linear decreasing trend with the increase in the photovoltaic deployment ratio. | Different | Related to region and experimental design, etc. | |
The DO showed an inverted “U”-shaped change characteristic. | Different | Related to region and experimental design, etc. | |
The effective range of the shaded area for the light intensity of the water layer was 0~30 cm. | Different | Related to region and experimental design, etc. | |
When the photovoltaic deployment ratio reached 75%, the number of algae species and algae biomass was the largest. | Different | Related to region and experimental design, etc. | |
Photovoltaic panels significantly reduced the light intensity on the water surface, 20 cm underwater, and the bottom of the water. | Similar | na | [35] |
DO under the photovoltaic panels was significantly lower than the non-photovoltaic area. | Similar in Dongying City during spring, summer, and autumn, and Taishan City during autumn, winter, spring, and summer | Related to monitoring time, region, monsoon, and air convection, etc. | |
Photovoltaic area’s water temperature was significantly lower than the non-photovoltaic area’s. | Similar in Dongying City, and contrary to Taishan City | Related to monitoring time, region, monsoon, air convection, etc. | |
In the 50% and 75% shading groups, pH and water temperature decreased. | The changing trends are similar, but the degree of difference varies | Related to monitoring time, region, monsoon, etc. | [41] |
In the 50% and 75% shading groups, alkalinity, hardness, and nitrogen to phosphorus ratio increased. | na | na | |
In the 50% and 75% shading groups, biomass of cyanobacteria and zooplankton decreased | Zooplankton: similar in Dongying City, and in Taishan City during summer, autumn, and spring | Related to monitoring time, region, monsoon, etc. | |
Confirmed the significant advantages of photovoltaic shading on crab culture. | na | na | [9] |
The design (coverage density) of photovoltaic arrays will lead to a reduction in the average wind speed and solar radiation. | na | na | [23] |
Installing photovoltaic panels has a significant heating effect on the surface water. | na | na | [24] |
The percentage frequency of east wind (<4 m/s) at 2 m decreased by 25.3%. | na | na | [25] |
Photovoltaic panels array does not have an obvious heating effect on the ambient environment. | na | na | |
Prevented 89%~93% of the solar radiation on the surface of the pond, resulting in an average reduction in water temperature of 1.5 °C and a substantial decrease in light intensity of 94%. | The water temperature and light intensity are similar, but the degree of difference varies | Related to monitoring time, region, monsoon, etc. | [26] |
Weakened the wind speed by 41%~50% and elevated the surface air temperature by an average of 0.6 °C. | na | na | |
An impressive decrease in chlorophyll-α of 72%~94%. | na | na | |
Reduced the concentration of labile phosphate, active silicate, total nitrogen, total phosphorus, and total organic carbon. | na | na |
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Luo, W.; Li, Q.; Wang, L.; Li, Y.; Lv, Y.; Liu, X.; Zhou, J.; Duan, Y. Research on the Impact of Different Photovoltaic Fishery Models on Climate and Water Environment in Aquaculture. Sustainability 2025, 17, 9076. https://doi.org/10.3390/su17209076
Luo W, Li Q, Wang L, Li Y, Lv Y, Liu X, Zhou J, Duan Y. Research on the Impact of Different Photovoltaic Fishery Models on Climate and Water Environment in Aquaculture. Sustainability. 2025; 17(20):9076. https://doi.org/10.3390/su17209076
Chicago/Turabian StyleLuo, Wei, Qiang Li, Lingling Wang, Yurui Li, Yongyang Lv, Xiu Liu, Jian Zhou, and Yuanliang Duan. 2025. "Research on the Impact of Different Photovoltaic Fishery Models on Climate and Water Environment in Aquaculture" Sustainability 17, no. 20: 9076. https://doi.org/10.3390/su17209076
APA StyleLuo, W., Li, Q., Wang, L., Li, Y., Lv, Y., Liu, X., Zhou, J., & Duan, Y. (2025). Research on the Impact of Different Photovoltaic Fishery Models on Climate and Water Environment in Aquaculture. Sustainability, 17(20), 9076. https://doi.org/10.3390/su17209076