A semi-closed greenhouse operates fundamentally differently from a traditional greenhouse with roof vents. Instead of opening windows to release heat, this design uses mechanical ventilation with fans and air-handling units. A positive pressure of 10 to 20 pascals keeps the indoor air stable and prevents unfiltered outside air from flowing in.
This means complete control over temperature, humidity, and CO2 concentration, regardless of the weather outside. Whether it’s 35 degrees in the desert or -10 degrees at the Arctic Circle, the greenhouse maintains a constant climate. A more stable climate can lead to more marketable produce, less waste, and more predictable production. For growers seeking predictability, this design opens up possibilities that are simply not achievable with passive ventilation.
The heart of the climate control system is the Air Handling Unit. This unit draws in outside air, filters it, cools or heats it to the desired temperature, and distributes the conditioned air through double-walled hoses beneath the crops. This creates a uniform climate from wall to wall.
A more uniform climate reduces temperature and humidity variations within the greenhouse. As a result, crops grow more uniformly, quality variations can be reduced, and a larger portion of the harvest can be sold as marketable produce. This contributes to a higher yield per square meter and a lower cost per kilogram.
Heat recovery plays a key role. When warm, humid greenhouse air is exhausted, the system captures the energy and reuses it to preheat fresh air. This results in significant savings on heating costs, especially during colder months. In addition,CO2 remains in the greenhouse longer because ventilation is reduced compared to open-roof ventilation systems.
KUBO applies this principle in the Ultra-Clima®, which combines positive pressure, mechanical ventilation, climate mixing, and heat recovery into a single integrated system.
Research shows that semi-closed greenhouses are up to 18.5% more energy-efficient than conventional designs. These savings result from several factors: reduced heat loss due to closed ventilation windows, reuse of residual heat, and more efficient cooling through evaporation.
In addition, semi-closed systems can utilize low-grade heat sources, such as residual heat of approximately 40 degrees from industrial processes or power plants. Whether this heat source is technically and financially viable depends, among other things, on the heat transfer system, the amount of waste heat available, the distance to the heat source, and the required infrastructure.
On the other hand, fans, pumps, and cooling systems consume electricity and require maintenance. The net energy savings therefore depend on the balance between the savings in heat and CO2 and the additional electricity and maintenance costs.
CO2 emissions per kilogram of tomatoes in an Ultra-Clima® greenhouse are more than 25.4% lower than with traditional cultivation methods. The lower emissions per kilogram may result from a combination of more efficient energy use and higher yield per square meter.
Stable climate conditions ensure that plants experience less stress. Temperature fluctuations, sudden gusts of wind, or unexpected rain showers do not disrupt growth. This results in yield increases of approximately 10% for crops such as tomatoes and cucumbers.
CO2 management plays a central role in this. Because ventilation is reduced, metered CO2 remains available to the plants for longer. Growers can maintain the same or higher concentrations with less CO2 input, which stimulates photosynthesis and thus production. For financial returns, it is not only total production that matters, but especially the proportion of marketable product, product quality, and the amount of production per unit of energy used.
Casey Houweling, a pioneer in semi-closed cultivation, harvested more than 45 kilograms of tomatoes per square meter in his very first season. That marked the beginning of a trend that has since expanded globally to more than 700 hectares of successful projects.
From the Arabian Desert to northern Canada, semi-closed greenhouses are used in a wide range of climatic conditions. In hot, dry regions, active cooling can significantly lower the interior temperature. The extent of this reduction depends, among other factors, on humidity levels, the cooling system used, and the system’s capacity. This helps mitigate heat stress and extend the growing season.
In warm, humid areas, the emphasis is more on controlling humidity and removing excess heat. This can contribute to a more stable climate but may require greater cooling capacity than in a dry climate.
In cold climates, the system offers advantages for assimilation lighting. The heat from the lamps can be utilized more effectively, and humidity can be controlled with less heat loss. This can reduce energy consumption and ensure a more uniform crop.
KUBO has built Ultra-Clima® greenhouses in deserts, tropical areas, and regions with harsh winters. This geographic diversity proves that the concept is not limited to a single climate type but is universally applicable for professional growers.
Because the greenhouse is under positive pressure, air always flows outward when doors open. This makes it more difficult for insects and other pests to gain access to the growing area. This significantly reduces the need for chemical crop protection products.
Traditional greenhouses require up to 4% of their roof area for insect-screened ventilation openings. Semi-enclosed designs largely eliminate this need. The result is greater light transmission in areas where insect screens would otherwise be unavoidable.
Furthermore, uniform air circulation reduces the risk of fungal diseases such as botrytis. Whereas traditional greenhouses have dead spots and damp areas, a well-designed semi-enclosed system distributes air evenly across the entire growing surface.
The initial investment in a semi-closed greenhouse is higher than that of a conventional Venlo greenhouse. However, this is offset by lower operating costs due to reduced energy consumption, more efficient CO2 usage, and lower expenses for crop protection.
More predictable harvest volumes strengthen the financial picture. When growers are less dependent on unpredictable weather conditions, they can negotiate better terms with buyers. Consistent quality and reliable delivery schedules can contribute to more stable income.
For agri-tech investors, this offers an attractive risk profile. The technology is proven, the results are measurable, and the payback period improves as energy prices rise and sustainability requirements increase.
After fifteen years of development, the semi-closed greenhouse is far from fully developed. On the contrary, there is much more to come. Autonomous cultivation systems, data-driven climate control, and further integration of hardware, software and cultivation expertise are opening up new possibilities.
KUBO continues to invest in research and development through test centers where new concepts are validated before being implemented in the field. This approach ensures that innovations not only work on paper but also actually add value for growers and investors.