An Advanced Fractional Order Method for Temperature Control

Author:

Cajo Ricardo1ORCID,Zhao Shiquan2ORCID,Birs Isabela34ORCID,Espinoza Víctor5,Fernández Edson6,Plaza Douglas1,Salcan-Reyes Gabriela1ORCID

Affiliation:

1. Facultad de Ingeniería en Electricidad y Computación, Escuela Superior Politécnica del Litoral, ESPOL, Campus Gustavo Galindo Km 30.5 Vía Perimetral, P.O. Box 09-01-5863, Guayaquil 090150, Ecuador

2. College of Intelligent Systems Science and Engineering, Harbin Engineering University, Harbin 150001, China

3. Automation Department, Technical University of Cluj-Napoca, 400114 Cluj-Napoca, Romania

4. DySC Research Group, Ghent University, B-9052 Ghent, Belgium

5. Facultad de Ingeniería en Mecánica y Ciencias de la Producción, Escuela Superior Politécnica del Litoral, ESPOL, Campus Gustavo Galindo Km 30.5 Vía Perimetral, P.O. Box 09-01-5863, Guayaquil 090150, Ecuador

6. Department of Innovative Technologies, University of Applied Sciences and Arts of Southern Switzerland, Via Serafino Balestra 16, 6900 Lugano, Switzerland

Abstract

Temperature control in buildings has been a highly studied area of research and interest since it affects the comfort of occupants. Commonly, temperature systems like centralized air conditioning or heating systems work with a fixed set point locally set at the thermostat, but users turn on or turn off the system when they feel it is too hot or too cold. This configuration is clearly not optimal in terms of energy consumption or even thermal comfort for users. Model predictive control (MPC) has been widely used for temperature control systems. In MPC design, the objective function involves the selection of constant weighting factors. In this study, a fractional-order objective function is implemented, so the weighting factors are time-varying. Furthermore, we compared the performance and disturbance rejection of MPC and Fractional-order MPC (FOMPC) controllers. To this end, we have chosen a building model from an EnergyPlus repository. The weather data needed for the EnergyPlus calculations has been obtained as a licensed file from the ASHRAE Handbook. Furthermore, we acquired a mathematical model by employing the Matlab system identification toolbox with the data obtained from the building model simulation in EnergyPlus. Next, we designed several FOMPC controllers, including the classical MPC controllers. Subsequently, we ran co-simulations in Matlab for the FOMPC controllers and EnergyPlus for the building model. Finally, through numerical analysis of several performance indexes, the FOMPC controller showed its superiority against the classical MPC in both reference tracking and disturbance rejection scenarios.

Funder

ESPOL University

Romanian Ministry of Education and Research, CNCS-UEFISCDI

Publisher

MDPI AG

Subject

Statistics and Probability,Statistical and Nonlinear Physics,Analysis

Reference51 articles.

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2. (2022, July 29). 2019 Global Status Report for Buildings and Construction Sector. Available online: https://www.unep.org/resources/publication/2019-global-status-report-buildings-and-construction-sector.

3. (2022, July 29). Sources of Greenhouse Gas Emissions, Available online: https://www.epa.gov/ghgemissions/sources-greenhouse-gas-emissions#commercial-and-residential.

4. A review of building climate and plant controls, and a survey of industry perspectives;Royapoor;Energy Build.,2018

5. Model predictive control for the operation of building cooling systems;Ma;IEEE Trans. Control. Syst. Technol.,2012

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