LAPSE:2023.20797
Published Article

LAPSE:2023.20797
Cosimulation of Integrated Organic Photovoltaic Glazing Systems Based on Functional Mock-Up Unit
March 20, 2023
Abstract
This study presents an approach to simulating building-integrated photovoltaic glazing systems composed of semitransparent organic photovoltaic (ST-OPV) elements. The approach consists of a mathematical cosimulation model based on the energy balance of complex glazing systems, considering heat transfer as conduction, mixed convection, and radiation effects. The cosimulation method is based on a functional mock-up unit (FMU) developed in Python and the building simulation program Domus. This work aims at presenting a cosimulation technique that can be easily applied to building energy simulation tools for the assessment of photovoltaic energy generation in glazing systems. The cosimulation glazing model was verified according to ANSI/ASHRAE Standard 140-2011, and the zone temperature was kept within with a root medium square error (RMSE) of 1.45 °C. The simulated building with an ST-OPV system showed promising results and could be applied to near-zero energy buildings since each 6-m2 glazing has a power generation of around 77 W, equivalent to 9% of available solar resource.
This study presents an approach to simulating building-integrated photovoltaic glazing systems composed of semitransparent organic photovoltaic (ST-OPV) elements. The approach consists of a mathematical cosimulation model based on the energy balance of complex glazing systems, considering heat transfer as conduction, mixed convection, and radiation effects. The cosimulation method is based on a functional mock-up unit (FMU) developed in Python and the building simulation program Domus. This work aims at presenting a cosimulation technique that can be easily applied to building energy simulation tools for the assessment of photovoltaic energy generation in glazing systems. The cosimulation glazing model was verified according to ANSI/ASHRAE Standard 140-2011, and the zone temperature was kept within with a root medium square error (RMSE) of 1.45 °C. The simulated building with an ST-OPV system showed promising results and could be applied to near-zero energy buildings since each 6-m2 glazing has a power generation of around 77 W, equivalent to 9% of available solar resource.
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Keywords
building simulation, integrated building systems, NZEB, photovoltaic glazing systems
Subject
Suggested Citation
Riquelme S, Gros A, Klemz B, Moura LM, Mendes N. Cosimulation of Integrated Organic Photovoltaic Glazing Systems Based on Functional Mock-Up Unit. (2023). LAPSE:2023.20797
Author Affiliations
Riquelme S: Departamento de Ingeniería Mecánica, Universidad del Bío-Bío, Concepción 4051381, Chile [ORCID]
Gros A: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Klemz B: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Moura LM: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Mendes N: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Gros A: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Klemz B: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Moura LM: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Mendes N: Mechanical Engineering Graduate Program, Pontificia Universidade Católica do Paraná, Curitiba 80910-215, Brazil
Journal Name
Energies
Volume
16
Issue
2
First Page
951
Year
2023
Publication Date
2023-01-14
ISSN
1996-1073
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Original Submission
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PII: en16020951, Publication Type: Journal Article
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LAPSE:2023.20797
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https://doi.org/10.3390/en16020951
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Mar 20, 2023
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