1. Why Agriculture Is a Distinct PVT Application
Agricultural energy demand differs from typical residential buildings.
A greenhouse may require:
- daytime ventilation;
- nighttime heating;
- seasonal heating;
- electricity for circulation fans;
- irrigation pumping;
- controls.
A crop-drying facility may instead require:
- warm air;
- controlled airflow;
- relatively low-to-medium temperature;
- heat during specific drying periods.
An agricultural building may require:
- hot water;
- space heating;
- equipment electricity.
Therefore there is no single “agricultural PVT system.”
There are several distinct application pathways.
2. Main Agricultural PVT Applications
The supplied PVT literature identifies agricultural and agro-industrial applications including:
- greenhouse applications;
- crop drying;
- agricultural process heat;
- livestock/dairy applications.
The IEA material specifically identifies PVT air collectors for agricultural processes such as crop drying and describes PVT applications in large greenhouses where thermal energy can be supplied to the ground while electricity supports fans.
The U.S. PVT market report also identifies agriculture as an application area, including dairy/livestock applications.
3. Four Main Agricultural PVT Architectures
A practical engineering classification is:
Architecture A — Direct thermal greenhouse heating
Architecture B — PVT + heat pump
Architecture C — Air PVT for crop drying
Architecture D — Electricity + thermal co-generation
The correct architecture depends on the agricultural load.
4. Greenhouse Heating Is Not Simply Space Heating
A greenhouse has a special thermal environment.
Heat can be lost through:
- glazing;
- roof surfaces;
- ventilation;
- infiltration;
- transmission;
- crop-related moisture processes.
At the same time, solar radiation can provide significant internal heat gains.
Therefore greenhouse heating demand can vary substantially with:
- outdoor temperature;
- solar irradiance;
- wind;
- humidity;
- greenhouse construction;
- crop;
- season;
- ventilation strategy.
A PVT system should therefore be evaluated against the actual greenhouse energy balance.
5. Start With the Crop and Greenhouse
The correct design sequence is:
This is more reliable than starting with:
6. The Greenhouse Thermal Balance
A simplified conceptual balance is:
Qheating=Qloss−Qsolar,gain−Qinternal
where the exact calculation must account for the actual greenhouse construction and operating conditions.
The important point is that:
Solar radiation entering the greenhouse already contributes to heating demand reduction.
Therefore PVT should be evaluated as part of the whole greenhouse energy system rather than assuming that every unit of PVT heat directly replaces an equivalent unit of heating energy.