Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm

In this study, a new method for designing a particular braced system by using multi-objective genetic algorithm is proposed. This type of braced system, which is called non-geometric braced system are mostly used in seismic areas and it allows architects to have more openings in the panels. Non-stra...

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Main Authors: Yazdi, H.M., Ramli Sulong, N.H.
Format: Article
Published: Asian Network for Scientific Information (ANSINET) 2009
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Online Access:http://eprints.um.edu.my/15086/
http://scialert.net/abstract/?doi=jas.2009.3502.3512
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Institution: Universiti Malaya
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spelling my.um.eprints.150862015-12-16T02:20:37Z http://eprints.um.edu.my/15086/ Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm Yazdi, H.M. Ramli Sulong, N.H. TA Engineering (General). Civil engineering (General) In this study, a new method for designing a particular braced system by using multi-objective genetic algorithm is proposed. This type of braced system, which is called non-geometric braced system are mostly used in seismic areas and it allows architects to have more openings in the panels. Non-straight diagonal member of this system introduces eccentricity and it is connected to the corner of the frame by a third member. In designing this system, designers often use trial and error method to locate the connection point of the brace elements by considering various parameters which affect the design such as opening and frame dimensions, cross section areas of brace elements and the location of brace element connection. Hence, finding the best connection point with maximum stiffness and minimum weight of brace elements with conventional methods is not trivial. In this study, a multi-object genetic algorithm is proposed in determining the best selection for connection point and also the brace elements' cross section area proportions which is the key rule in determining the stiffness of the system. Boundary equations are set by introducing feasible area to avoid improper individuals followed by utilization of some operators such as selection, mutation, crossover and elite genetic algorithm. Based on the plain aggregate approaches for transforming the objective vector in scalar, some modifications are proposed to assist designers in making decision on prioritizing between the frame stiffness and brace frame weight in their design. Asian Network for Scientific Information (ANSINET) 2009 Article PeerReviewed Yazdi, H.M. and Ramli Sulong, N.H. (2009) Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm. Journal of Applied Sciences, 9 (19). pp. 3502-3512. ISSN 1812-5654 http://scialert.net/abstract/?doi=jas.2009.3502.3512 DOI: 10.3923/jas.2009.3502.3512
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Yazdi, H.M.
Ramli Sulong, N.H.
Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm
description In this study, a new method for designing a particular braced system by using multi-objective genetic algorithm is proposed. This type of braced system, which is called non-geometric braced system are mostly used in seismic areas and it allows architects to have more openings in the panels. Non-straight diagonal member of this system introduces eccentricity and it is connected to the corner of the frame by a third member. In designing this system, designers often use trial and error method to locate the connection point of the brace elements by considering various parameters which affect the design such as opening and frame dimensions, cross section areas of brace elements and the location of brace element connection. Hence, finding the best connection point with maximum stiffness and minimum weight of brace elements with conventional methods is not trivial. In this study, a multi-object genetic algorithm is proposed in determining the best selection for connection point and also the brace elements' cross section area proportions which is the key rule in determining the stiffness of the system. Boundary equations are set by introducing feasible area to avoid improper individuals followed by utilization of some operators such as selection, mutation, crossover and elite genetic algorithm. Based on the plain aggregate approaches for transforming the objective vector in scalar, some modifications are proposed to assist designers in making decision on prioritizing between the frame stiffness and brace frame weight in their design.
format Article
author Yazdi, H.M.
Ramli Sulong, N.H.
author_facet Yazdi, H.M.
Ramli Sulong, N.H.
author_sort Yazdi, H.M.
title Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm
title_short Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm
title_full Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm
title_fullStr Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm
title_full_unstemmed Eccentricity Optimization of NGB System by using Multi-Objective Genetic Algorithm
title_sort eccentricity optimization of ngb system by using multi-objective genetic algorithm
publisher Asian Network for Scientific Information (ANSINET)
publishDate 2009
url http://eprints.um.edu.my/15086/
http://scialert.net/abstract/?doi=jas.2009.3502.3512
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