Application of a New Dynamic Heating System Model Using a Range of Common Control Strategies

This research investigates the overall heating energy consumptions using various control strategies, secondary heat emitters, and primary plant for a building. Previous research has successfully demonstrated that a dynamic distributed heat emitter model embedded within a simplified third-order lumpe...

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Bibliographic Details
Main Authors: Joshua Fong, Jerry Edge, Chris Underwood, Andy Tindale, Steve Potter, Hu Du
Format: Article
Language:English
Published: MDPI AG 2016-06-01
Series:Buildings
Subjects:
Online Access:http://www.mdpi.com/2075-5309/6/2/23
Description
Summary:This research investigates the overall heating energy consumptions using various control strategies, secondary heat emitters, and primary plant for a building. Previous research has successfully demonstrated that a dynamic distributed heat emitter model embedded within a simplified third-order lumped parameter building model is capable of achieving improved results when compared to other commercially available modelling tools. With the enhanced ability to capture transient effects of emitter thermal capacity, this research studies the influence of control strategies and primary plant configurations on the rate of energy consumption of a heating system. Four alternative control strategies are investigated: zone feedback; weather-compensated; a combination of both of these methods; and thermostatic control. The plant alternative configurations consist of conventional boilers, biomass boilers, and heat pumps supporting radiator heating and underfloor heating. The performance of the model is tested on a primary school building and can be applied to any residential or commercial building with a heating system. Results show that the new methods reported offer greater detail and rigor in the conduct of building energy modelling.
ISSN:2075-5309