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Simplified models for heating system optimisation using a thermal-electrical analogy

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Simplified models for heating system optimisation using a thermal-electrical analogy. / Tate, Oliver; Cheneler, David; Taylor, C. James.
25th IEEE International Conference on Automation and Computing (ICAC). IEEE, 2019.

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Harvard

Tate, O, Cheneler, D & Taylor, CJ 2019, Simplified models for heating system optimisation using a thermal-electrical analogy. in 25th IEEE International Conference on Automation and Computing (ICAC). IEEE, 25th IEEE International Conference on Automation and Computing (ICAC), Lancaster, United Kingdom, 5/09/19. https://doi.org/10.23919/IConAC.2019.8895035

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Vancouver

Tate O, Cheneler D, Taylor CJ. Simplified models for heating system optimisation using a thermal-electrical analogy. In 25th IEEE International Conference on Automation and Computing (ICAC). IEEE. 2019 doi: 10.23919/IConAC.2019.8895035

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Bibtex

@inproceedings{48d0c6f02c3e40ba80e97aa3322c87d3,
title = "Simplified models for heating system optimisation using a thermal-electrical analogy",
abstract = "The well-known electrical analogy for thermal modelling is based on the observation that Fourier's equation for one dimensional heat transfer takes the same form as Ohm's law. This provides a system for creating and resolving complex heat transfer problems using an established set of physically-based laws. The present article illustrates the concept for adjacent rooms in a modern university building, and investigates some of the modelling issues involved. The electrical analogy is chosen so that the models can be extended and used for future research into demand-side control of multiple buildings on the university network, requiring a fast computation time. For illustrative purposes, the present article is limited to a relatively straightforward two-room system, for which the modelling equations are conveniently represented and solved using MATLAB-SIMULINK. The coefficients of this model are estimated from data using standard nonlinear optimisation tools. For comparison, the article also develops an equivalent multiple-input Transfer Function form of the model. Finally, suggestions are made for the inclusion of occupancy estimates in the model.",
keywords = "thermal modelling, building occupancy, micro-climate, transfer function, electrical analogy",
author = "Oliver Tate and David Cheneler and Taylor, {C. James}",
note = "{\textcopyright}2019 IEEE. Personal use of this material is permitted. However, permission to reprint/republish this material for advertising or promotional purposes or for creating new collective works for resale or redistribution to servers or lists, or to reuse any copyrighted component of this work in other works must be obtained from the IEEE. ; 25th IEEE International Conference on Automation and Computing (ICAC) ; Conference date: 05-09-2019 Through 07-09-2019",
year = "2019",
month = sep,
day = "7",
doi = "10.23919/IConAC.2019.8895035",
language = "English",
isbn = "9781728125183",
booktitle = "25th IEEE International Conference on Automation and Computing (ICAC)",
publisher = "IEEE",

}

RIS

TY - GEN

T1 - Simplified models for heating system optimisation using a thermal-electrical analogy

AU - Tate, Oliver

AU - Cheneler, David

AU - Taylor, C. James

N1 - ©2019 IEEE. Personal use of this material is permitted. However, permission to reprint/republish this material for advertising or promotional purposes or for creating new collective works for resale or redistribution to servers or lists, or to reuse any copyrighted component of this work in other works must be obtained from the IEEE.

PY - 2019/9/7

Y1 - 2019/9/7

N2 - The well-known electrical analogy for thermal modelling is based on the observation that Fourier's equation for one dimensional heat transfer takes the same form as Ohm's law. This provides a system for creating and resolving complex heat transfer problems using an established set of physically-based laws. The present article illustrates the concept for adjacent rooms in a modern university building, and investigates some of the modelling issues involved. The electrical analogy is chosen so that the models can be extended and used for future research into demand-side control of multiple buildings on the university network, requiring a fast computation time. For illustrative purposes, the present article is limited to a relatively straightforward two-room system, for which the modelling equations are conveniently represented and solved using MATLAB-SIMULINK. The coefficients of this model are estimated from data using standard nonlinear optimisation tools. For comparison, the article also develops an equivalent multiple-input Transfer Function form of the model. Finally, suggestions are made for the inclusion of occupancy estimates in the model.

AB - The well-known electrical analogy for thermal modelling is based on the observation that Fourier's equation for one dimensional heat transfer takes the same form as Ohm's law. This provides a system for creating and resolving complex heat transfer problems using an established set of physically-based laws. The present article illustrates the concept for adjacent rooms in a modern university building, and investigates some of the modelling issues involved. The electrical analogy is chosen so that the models can be extended and used for future research into demand-side control of multiple buildings on the university network, requiring a fast computation time. For illustrative purposes, the present article is limited to a relatively straightforward two-room system, for which the modelling equations are conveniently represented and solved using MATLAB-SIMULINK. The coefficients of this model are estimated from data using standard nonlinear optimisation tools. For comparison, the article also develops an equivalent multiple-input Transfer Function form of the model. Finally, suggestions are made for the inclusion of occupancy estimates in the model.

KW - thermal modelling

KW - building occupancy

KW - micro-climate

KW - transfer function

KW - electrical analogy

U2 - 10.23919/IConAC.2019.8895035

DO - 10.23919/IConAC.2019.8895035

M3 - Conference contribution/Paper

SN - 9781728125183

BT - 25th IEEE International Conference on Automation and Computing (ICAC)

PB - IEEE

T2 - 25th IEEE International Conference on Automation and Computing (ICAC)

Y2 - 5 September 2019 through 7 September 2019

ER -