Study of a BIPV Adaptive System

The paper presents the first results of research that was partly conducted within the framework of European COST Action TU1403 – Adaptive Façades Network, on the development of an adaptive BIPV (Building Integrated Photovoltaic) solution able to change its curvature in relation to the external envir...

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Main Authors: Enrico Sergio Mazzucchelli, Mark Alston, Marcin Brzezicki, Luisa Doniacovo
Format: Article
Language:English
Published: TU Delft Open 2018-10-01
Series:Journal of Facade Design and Engineering
Online Access:https://journals.open.tudelft.nl/index.php/jfde/article/view/2602
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spelling doaj-8e6930f0464b47918ca431452fe8b8c62020-11-25T03:17:05ZengTU Delft OpenJournal of Facade Design and Engineering2213-302X2213-30382018-10-016314916210.7480/jfde.2018.3.26022602Study of a BIPV Adaptive SystemEnrico Sergio Mazzucchelli0Mark Alston1Marcin Brzezicki2Luisa Doniacovo3Politecnico di Milano - ABC DepartmentUniversity of NottinghamWroclaw University of Science and TechnologyGeneral Planning srlThe paper presents the first results of research that was partly conducted within the framework of European COST Action TU1403 – Adaptive Façades Network, on the development of an adaptive BIPV (Building Integrated Photovoltaic) solution able to change its curvature in relation to the external environmental conditions, orientating itself in order to optimise the energy production without the aid of any mechanical and electrical systems. After analysing the characteristics of the main adaptive materials that are currently used for such applications, the contribution outlines the main features of the proposed system, which consists of thin film solar cells coupled with a thin layer of hygromorphic material, manufactured from two wooden slats joined together and produced from different types of wood and trunk cuts. The hygromorphic layer thus obtained can change its shape as a function of temperature and relative humidity of outdoor conditions, thanks to the different expansion coefficients of the two wooden slats. To evaluate the performance of the component, three shape configurations for the adaptive strips have been assumed. For each hypothesis, the lamellae have been modelled using the Rhinoceros 5 Software, according to the curvatures taken during the different months of the year. The Rhino models have been imported into Autodesk Ecotect Analysis to calculate the incident solar radiation and to study the self-shadowing effect in the various configurations (in relation to the climatic conditions of the city of Milan). The paper outlines the system and PV energy production optimisation process, as well as possible applications in the field of façade design.https://journals.open.tudelft.nl/index.php/jfde/article/view/2602
collection DOAJ
language English
format Article
sources DOAJ
author Enrico Sergio Mazzucchelli
Mark Alston
Marcin Brzezicki
Luisa Doniacovo
spellingShingle Enrico Sergio Mazzucchelli
Mark Alston
Marcin Brzezicki
Luisa Doniacovo
Study of a BIPV Adaptive System
Journal of Facade Design and Engineering
author_facet Enrico Sergio Mazzucchelli
Mark Alston
Marcin Brzezicki
Luisa Doniacovo
author_sort Enrico Sergio Mazzucchelli
title Study of a BIPV Adaptive System
title_short Study of a BIPV Adaptive System
title_full Study of a BIPV Adaptive System
title_fullStr Study of a BIPV Adaptive System
title_full_unstemmed Study of a BIPV Adaptive System
title_sort study of a bipv adaptive system
publisher TU Delft Open
series Journal of Facade Design and Engineering
issn 2213-302X
2213-3038
publishDate 2018-10-01
description The paper presents the first results of research that was partly conducted within the framework of European COST Action TU1403 – Adaptive Façades Network, on the development of an adaptive BIPV (Building Integrated Photovoltaic) solution able to change its curvature in relation to the external environmental conditions, orientating itself in order to optimise the energy production without the aid of any mechanical and electrical systems. After analysing the characteristics of the main adaptive materials that are currently used for such applications, the contribution outlines the main features of the proposed system, which consists of thin film solar cells coupled with a thin layer of hygromorphic material, manufactured from two wooden slats joined together and produced from different types of wood and trunk cuts. The hygromorphic layer thus obtained can change its shape as a function of temperature and relative humidity of outdoor conditions, thanks to the different expansion coefficients of the two wooden slats. To evaluate the performance of the component, three shape configurations for the adaptive strips have been assumed. For each hypothesis, the lamellae have been modelled using the Rhinoceros 5 Software, according to the curvatures taken during the different months of the year. The Rhino models have been imported into Autodesk Ecotect Analysis to calculate the incident solar radiation and to study the self-shadowing effect in the various configurations (in relation to the climatic conditions of the city of Milan). The paper outlines the system and PV energy production optimisation process, as well as possible applications in the field of façade design.
url https://journals.open.tudelft.nl/index.php/jfde/article/view/2602
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AT markalston studyofabipvadaptivesystem
AT marcinbrzezicki studyofabipvadaptivesystem
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