Soil drying and heat–moisture dynamics under simulated solar radiation using infrared energy
Bálint, Ágnes
Nagy, Norbert
Wang, Xuechu
Mészáros, Csaba
Horváth, Csaba
2026-07-02T13:21:07Z
2026-07-02T13:21:07Z
2026
http://hdl.handle.net/20.500.14044/39440
The soil’s water and energy balance play a fundamental role in regulating the hydrological cycle and
near-surface climatic conditions. Previous studies have demonstrated that coupled heat and moisture
transport processes strongly affect soil evaporation and temperature dynamics. Building on this
foundation, our study investigated the drying behaviour of soil columns exposed to infrared radiation
simulating solar energy, with particular focus on heat and mass transfer at the soil-air interface.
Laboratory experiments were performed on soil samples of different initial moisture conditions,
including natural, water-saturated, and frozen states. Each experiment involved 12 hours of infrared
exposure followed by 12 hours without irradiation, forming a 48-hour day–night cycle. Temperature
and moisture content were measured at three depths, while surface temperature patterns and airflow
dynamics were monitored with an infrared camera.
Results showed pronounced temperature fluctuations and moisture loss in the upper soil layers. Infrared
imagery clearly revealed convective airflows forming above the soil columns during heating.
The experimental setup proved effective for analysing coupled heat and moisture transport. These
findings enhance understanding of soil evaporation mechanisms and contribute to the development of
sustainable soil–water management strategies.
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Soil drying and heat–moisture dynamics under simulated solar radiation using infrared energy