DocumentCode :
261642
Title :
A 2 dimensional Hammerstein model for heating and ventilation control of conceptual thermal zones
Author :
Tsitsimpelis, Ioannis ; Taylor, Camillo J.
Author_Institution :
Eng. Dept., Lancaster Univ., Lancaster, UK
fYear :
2014
fDate :
9-11 July 2014
Firstpage :
186
Lastpage :
191
Abstract :
The research behind this article aims to reduce the operational costs and energy consumption of closed-environment growing systems, or grow-cells. Essentially a sealed building with a controlled environment, and insulated from outside lighting, grow-cells are configured to suit the particular crop being produced. The article briefly reviews the concept and preliminary work in relation to a prototype being developed by the authors and collaborating industry partner. Here, limitations in the temperature control system can lead to significant thermal gradients and poor efficiency. In this regard, the main focus of the article concerns a novel approach to thermal modelling that includes quantitative identification of spatial zones with similar thermal characteristics and the estimation of steady state temperature functions based on the heater and fan input voltages. These are combined with either a linear or a state-dependent parameter model, to represent the transient response. This approach yields a Hammerstein type model which, in this article, is optimised and evaluated using experimental data collected from 30 ther-mocouples distributed around an environmental test chamber.
Keywords :
HVAC; building management systems; energy consumption; temperature control; transient response; 2D Hammerstein type model; conceptual thermal zones; energy consumption reduction; grow cell; heating and ventilation control; operational cost reduction; outside lighting; quantitative spatial zone identification; sealed building; state-dependent parameter model; steady state temperature function estimation; temperature control system; thermal characteristics; thermal gradient; thermal modelling; transient response; Agriculture; Atmospheric modeling; Heating; Mathematical model; Steady-state; Temperature distribution; Ventilation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control (CONTROL), 2014 UKACC International Conference on
Conference_Location :
Loughborough
Type :
conf
DOI :
10.1109/CONTROL.2014.6915137
Filename :
6915137
Link To Document :
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