Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting
With the global concern about rising greenhouse-gas emissions due to fossil-fuel-based power generation, electricity production using eco-friendly energy sources is becoming increasingly important. Conversion of vibration into electricity is characterized mainly by electrostatic, electromagnetic, or...
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doaj-f5e8326abdb74a9bb749dd54cec2616f2020-11-25T03:43:32ZengMDPI AGApplied Sciences2076-34172020-09-01106231623110.3390/app10186231Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy HarvestingHoyoung Maeng0Kyung Hoon Hyun1Interior Architecture Design, Hanyang University, Wangsimni-ro, Sageun-dong, Seongdong-gu, Seoul 04763, KoreaInterior Architecture Design, Hanyang University, Wangsimni-ro, Sageun-dong, Seongdong-gu, Seoul 04763, KoreaWith the global concern about rising greenhouse-gas emissions due to fossil-fuel-based power generation, electricity production using eco-friendly energy sources is becoming increasingly important. Conversion of vibration into electricity is characterized mainly by electrostatic, electromagnetic, or piezoelectric transduction mechanisms, which can be used to generate electricity through a variety of methods. The tensile membrane architecture (TMA)—the means of electricity production investigated in this study—is an architectural structure that is classified into the same category of vibration sources as buildings and bridges, but has not been utilized previously for vibration-generated electricity. The objective of this study is to determine which TMA geometry yields optimal electricity production and stability in a specific region. The developed optimization technique can help future researchers to select the TMA type and material for specific areas and evaluate the suitability of different areas for energy harvesting via the TMA.https://www.mdpi.com/2076-3417/10/18/6231tensile membrane architecturedesign optimizationsustainable architecturecomputational designwind energy harvesting |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Hoyoung Maeng Kyung Hoon Hyun |
spellingShingle |
Hoyoung Maeng Kyung Hoon Hyun Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting Applied Sciences tensile membrane architecture design optimization sustainable architecture computational design wind energy harvesting |
author_facet |
Hoyoung Maeng Kyung Hoon Hyun |
author_sort |
Hoyoung Maeng |
title |
Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting |
title_short |
Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting |
title_full |
Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting |
title_fullStr |
Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting |
title_full_unstemmed |
Multi-Objective Pareto Optimization of Tensile Membrane Architecture for Energy Harvesting |
title_sort |
multi-objective pareto optimization of tensile membrane architecture for energy harvesting |
publisher |
MDPI AG |
series |
Applied Sciences |
issn |
2076-3417 |
publishDate |
2020-09-01 |
description |
With the global concern about rising greenhouse-gas emissions due to fossil-fuel-based power generation, electricity production using eco-friendly energy sources is becoming increasingly important. Conversion of vibration into electricity is characterized mainly by electrostatic, electromagnetic, or piezoelectric transduction mechanisms, which can be used to generate electricity through a variety of methods. The tensile membrane architecture (TMA)—the means of electricity production investigated in this study—is an architectural structure that is classified into the same category of vibration sources as buildings and bridges, but has not been utilized previously for vibration-generated electricity. The objective of this study is to determine which TMA geometry yields optimal electricity production and stability in a specific region. The developed optimization technique can help future researchers to select the TMA type and material for specific areas and evaluate the suitability of different areas for energy harvesting via the TMA. |
topic |
tensile membrane architecture design optimization sustainable architecture computational design wind energy harvesting |
url |
https://www.mdpi.com/2076-3417/10/18/6231 |
work_keys_str_mv |
AT hoyoungmaeng multiobjectiveparetooptimizationoftensilemembranearchitectureforenergyharvesting AT kyunghoonhyun multiobjectiveparetooptimizationoftensilemembranearchitectureforenergyharvesting |
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