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CFD simulation and measurement and control analysis of the ambient temperature field of agricultural greenhouses

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27. Feb. 2025

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COVER HERUNTERLADEN

Figure 1.

Physical training system architecture.
Physical training system architecture.

Figure 2.

Multi-group TCN network structure after convolution.
Multi-group TCN network structure after convolution.

Figure 3.

A Schematic diagram of the greenhouse environment and the monitoring equipment. On the left is the crop planting area in the greenhouse (a), and on the right are the environmental data recorder (b) and temperature and humidity monitoring equipment (c) respectively. These devices are used to monitor key environmental parameters such as temperature, humidity and CO2 concentration in the greenhouse.
A Schematic diagram of the greenhouse environment and the monitoring equipment. On the left is the crop planting area in the greenhouse (a), and on the right are the environmental data recorder (b) and temperature and humidity monitoring equipment (c) respectively. These devices are used to monitor key environmental parameters such as temperature, humidity and CO2 concentration in the greenhouse.

Figure 4.

Trend plot of temperature over time and height.
Trend plot of temperature over time and height.

Figure 5.

Effect of different model components on relative humidity prediction in ablation experiments.
Effect of different model components on relative humidity prediction in ablation experiments.

Figure 6.

The comparison of DeepCFD-OptNet model and the traditional CFD model on temperature prediction.
The comparison of DeepCFD-OptNet model and the traditional CFD model on temperature prediction.
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
1 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Biologie, Biologie, andere, Mathematik, Angewandte Mathematik, Mathematik, Allgemeines, Physik, Physik, andere