Articles
Radiometric properties of screens and energy saving in greenhouses
Article number
1426_67
Pages
487 – 494
Language
English
Abstract
In heated greenhouses energy screens are used to reduce energy use due to their insulating function.
Materials with low thermal infrared (TIR) emissivity can further reduce the energy use by decreasing the amount of energy losses through TIR radiation.
When developing new materials for thermal screens, the following questions arise: what is the role of emissivity of materials on energy saving? What other optical and radiometric material properties have the potential to improve the performance of energy screens? And what are the tradeoffs between various radiometric properties that influence the screen’s potential to reduce energy use or increase energy use efficiency? This study used model simulations for tomato greenhouses in the Netherlands to evaluate how radiometric properties influence screen performance.
First, an analysis of various properties was performed, showing that the most important radiometric property of a screen influencing energy use and energy efficiency was the emissivity of the upper side of the screen.
A second analysis examined modifying a screen’s photosynthetically active radiation (PAR) transmissivity and consequently modifying the strategy for use of the screen in daytime.
Lastly, the interaction between emissivity, PAR transmissivity and near infrared (NIR) transmissivity was examined.
In all simulations, screen properties such as air and humidity permeability were kept equal.
The results show that lowering a screen emissivity from 0.5 (typical value for commercial screens) to 0.2 (a theoretical, improved value) has the potential to reduce energy use by ~10%. Increasing a screen’s PAR transmissivity from 0.7 (typical value for good commercial screens) to 0.9 (theoretical improved value), can increase energy use efficiency by about 2%. These results demonstrate the interaction of the various screen properties and their influence of energy use, highlighting the importance of low upwards emissivity and the need to further examine the interaction of screen properties, screen use strategy and other control and design decisions.
Materials with low thermal infrared (TIR) emissivity can further reduce the energy use by decreasing the amount of energy losses through TIR radiation.
When developing new materials for thermal screens, the following questions arise: what is the role of emissivity of materials on energy saving? What other optical and radiometric material properties have the potential to improve the performance of energy screens? And what are the tradeoffs between various radiometric properties that influence the screen’s potential to reduce energy use or increase energy use efficiency? This study used model simulations for tomato greenhouses in the Netherlands to evaluate how radiometric properties influence screen performance.
First, an analysis of various properties was performed, showing that the most important radiometric property of a screen influencing energy use and energy efficiency was the emissivity of the upper side of the screen.
A second analysis examined modifying a screen’s photosynthetically active radiation (PAR) transmissivity and consequently modifying the strategy for use of the screen in daytime.
Lastly, the interaction between emissivity, PAR transmissivity and near infrared (NIR) transmissivity was examined.
In all simulations, screen properties such as air and humidity permeability were kept equal.
The results show that lowering a screen emissivity from 0.5 (typical value for commercial screens) to 0.2 (a theoretical, improved value) has the potential to reduce energy use by ~10%. Increasing a screen’s PAR transmissivity from 0.7 (typical value for good commercial screens) to 0.9 (theoretical improved value), can increase energy use efficiency by about 2%. These results demonstrate the interaction of the various screen properties and their influence of energy use, highlighting the importance of low upwards emissivity and the need to further examine the interaction of screen properties, screen use strategy and other control and design decisions.
Publication
Authors
D. Katzin, C. Stanghellini, V. Mohammadkhani, S. Hemming
Keywords
greenhouse energy saving, energy screen, thermal screen, emissivity, thermal radiation, infrared radiation, optical properties, radiometric properties
Groups involved
- Division Precision Horticulture and Engineering
- Division Greenhouse and Indoor Production Horticulture
- Working Group Nettings in Horticulture (subgroup of Protected Cultivation in Mild Winter Climates)
- Working Group Light in Horticulture
- Working Group Organic Greenhouse Horticulture
- Working Group Vegetable Grafting
- Working Group Modelling Plant Growth, Environmental Control, Greenhouse Environment
- Working Group Protected Cultivation, Nettings and Screens for Mild Climates
- Working Group Computational Fluid Dynamics in Agriculture
- Working Group Design and Automation in Integrated Indoor Production Systems
- Working Group Mechanization, Digitization, Sensing and Robotics
- Working Group Greenhouse Environment and Climate Control
- Division Landscape and Urban Horticulture
- Commission Agroecology and Organic Farming Systems
- Division Vegetables, Roots and Tubers
- Working Group Vertical Farming
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