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- W3209175089 abstract "Research into vertical farms or plant factories is steadily increasing over the years, as the demand for sustainable food production and a shift to more environmental friendly food production is occurring. Modelling plant climate in these confined spaces is therefore essential to guarantee optimal growing conditions. Modelling of plant climate has already been done in greenhouses, but at length scales much bigger than individual leaves. In those studies, plant geometry is modelled implicitly in CFD using source terms that add an extra momentum loss term, a transpiration flux and an energy sink at the plant zone. These simulations can be sufficient for large spaces, like greenhouses, but can be too inaccurate for the ventilation systems used in vertical farming systems. In this study, plant architecture with actual leaves is modelled explicitly. This method allows for the accurate prediction of boundary layer formation around the leaves and can be a more accurate tool for simulating air flow and humidity patterns inside a crop. Plant structure, leaf area and transpiration are determined experimentally and are used as input parameters. The explicit geometry is compared to implicit simulations. Simulations are validated, using measured values of relative humidity and temperature around a basil plant. Simulated absolute humidities in the implicit and the explicit plant model correspond well, whereas temperature only agrees well in the implicit plant model." @default.
- W3209175089 created "2021-11-08" @default.
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- W3209175089 date "2021-01-01" @default.
- W3209175089 modified "2023-09-26" @default.
- W3209175089 title "Simulating heat and mass transfer of a plant using an explicit plant geometry" @default.
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