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BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms

Achieving the optimum design is to sustain the architectural function with minimum construction cost. Optimizing the design requires the architect to prepare several design alternatives with different space utilizations approaches without compromising the architectural requirements or the function o...

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Main Author: Sherif, Mohamed Ayman
Format: Thesis
Published: AUC Knowledge Fountain 2020
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access_status_str Open Access
author Sherif, Mohamed Ayman
author_browse Sherif, Mohamed Ayman
author_facet Sherif, Mohamed Ayman
author_sort Sherif, Mohamed Ayman
collection Thesis
dc_rights_str_mv The author retains all rights with regard to copyright. The author certifies that written permission from the owner(s) of third-party copyrighted matter included in the thesis, dissertation, paper, or record of study has been obtained. The author further certifies that IRB approval has been obtained for this thesis, or that IRB approval is not necessary for this thesis. Insofar as this thesis, dissertation, paper, or record of study is an educational record as defined in the Family Educational Rights and Privacy Act (FERPA) (20 USC 1232g), the author has granted consent to disclosure of it to anyone who requests a copy. The author has granted the American University in Cairo or its agents a non-exclusive license to archive this thesis, dissertation, paper, or record of study, and to make it accessible, in whole or in part, in all forms of media, now or hereafter known.
description Achieving the optimum design is to sustain the architectural function with minimum construction cost. Optimizing the design requires the architect to prepare several design alternatives with different space utilizations approaches without compromising the architectural requirements or the function of the building. For each design alternative, the structural engineer is required to study and validate the design with various alternatives of structural systems to achieve a safe, efficient, and constructible design. Due to the dynamic nature of this process, a building’s floor plan could have numerous combinations of alternatives that satisfy the architectural and functional requirements that need to be investigated to achieve the optimum cost. The literature has discussed various optimization approaches between the integration of architectural and the structural aspects during the design phases of projects. However, defining the possible integration between architectural and structural limits to reach an optimized design that fulfills the design functionality and is cost efficient was not much covered. This study presents a digital framework that integrates the architectural and structural design aspects to reach the optimum utilization between the functionality of the architectural design and savings in the structural design using BIM. A model was developed that maps elements onto a universal grid system where architects define the functionality limits such as, overall floor dimension, the number of spaces in the floor, the function of each space, the relative proximity of spaces and the acceptable dimension limits of such spaces. A built-in optimization engine using evolutionary algorithms to find the optimal structural design of the building that fulfills safety, constructability and with minimum use of building materials was also included in the model. The study covers three structural systems: the reinforced concrete solid slabs, flat slabs, and beams systems and is applied for rectilinear architectural spaces. The framework was tested and validated with a number of case studies. Results show that the model was able to produce cost savings from 5-15 % of the structural elements cost without compromising the defined space requirements.
format Thesis
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institution American University in Cairo (Egypt)
last_indexed 2026-06-10T12:35:51.500Z
license_str Other — see source repository
provenance_str_mv Harvested via OAI-PMH from AUC Knowledge Fountain — bepress
publishDate 2020
publishDateRange 2020
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publisher AUC Knowledge Fountain
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source_str AUC Knowledge Fountain — bepress
spelling oai:fount.aucegypt.edu:etds-2759 BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms Sherif, Mohamed Ayman Achieving the optimum design is to sustain the architectural function with minimum construction cost. Optimizing the design requires the architect to prepare several design alternatives with different space utilizations approaches without compromising the architectural requirements or the function of the building. For each design alternative, the structural engineer is required to study and validate the design with various alternatives of structural systems to achieve a safe, efficient, and constructible design. Due to the dynamic nature of this process, a building’s floor plan could have numerous combinations of alternatives that satisfy the architectural and functional requirements that need to be investigated to achieve the optimum cost. The literature has discussed various optimization approaches between the integration of architectural and the structural aspects during the design phases of projects. However, defining the possible integration between architectural and structural limits to reach an optimized design that fulfills the design functionality and is cost efficient was not much covered. This study presents a digital framework that integrates the architectural and structural design aspects to reach the optimum utilization between the functionality of the architectural design and savings in the structural design using BIM. A model was developed that maps elements onto a universal grid system where architects define the functionality limits such as, overall floor dimension, the number of spaces in the floor, the function of each space, the relative proximity of spaces and the acceptable dimension limits of such spaces. A built-in optimization engine using evolutionary algorithms to find the optimal structural design of the building that fulfills safety, constructability and with minimum use of building materials was also included in the model. The study covers three structural systems: the reinforced concrete solid slabs, flat slabs, and beams systems and is applied for rectilinear architectural spaces. The framework was tested and validated with a number of case studies. Results show that the model was able to produce cost savings from 5-15 % of the structural elements cost without compromising the defined space requirements. 2020-05-31T07:00:00Z thesis application/pdf https://fount.aucegypt.edu/etds/1719 https://fount.aucegypt.edu/context/etds/article/2759/viewcontent/BIM_Based_20Structural_20Optimization_20for_20Reinforced_20Concrete_20Floors_20Using_20Evolutionary_20Algorithms.pdf The author retains all rights with regard to copyright. The author certifies that written permission from the owner(s) of third-party copyrighted matter included in the thesis, dissertation, paper, or record of study has been obtained. The author further certifies that IRB approval has been obtained for this thesis, or that IRB approval is not necessary for this thesis. Insofar as this thesis, dissertation, paper, or record of study is an educational record as defined in the Family Educational Rights and Privacy Act (FERPA) (20 USC 1232g), the author has granted consent to disclosure of it to anyone who requests a copy. The author has granted the American University in Cairo or its agents a non-exclusive license to archive this thesis, dissertation, paper, or record of study, and to make it accessible, in whole or in part, in all forms of media, now or hereafter known. Theses and Dissertations AUC Knowledge Fountain BIM||Parametric Modeling||DynamoBIM||DesignScript||Revit||Evolutionary optimization||Evolutionary algorithms||Structural design optimization||Spatial rectilinear design||Cost optimization||Conceptual design optimization||Object oriented programming
spellingShingle BIM||Parametric Modeling||DynamoBIM||DesignScript||Revit||Evolutionary optimization||Evolutionary algorithms||Structural design optimization||Spatial rectilinear design||Cost optimization||Conceptual design optimization||Object oriented programming
Sherif, Mohamed Ayman
BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms
title BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms
title_full BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms
title_fullStr BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms
title_full_unstemmed BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms
title_short BIM-based structural optimization for reinforced concrete floors using evolutionary algorithms
title_sort bim based structural optimization for reinforced concrete floors using evolutionary algorithms
topic BIM||Parametric Modeling||DynamoBIM||DesignScript||Revit||Evolutionary optimization||Evolutionary algorithms||Structural design optimization||Spatial rectilinear design||Cost optimization||Conceptual design optimization||Object oriented programming
url https://fount.aucegypt.edu/etds/1719
https://fount.aucegypt.edu/context/etds/article/2759/viewcontent/BIM_Based_20Structural_20Optimization_20for_20Reinforced_20Concrete_20Floors_20Using_20Evolutionary_20Algorithms.pdf
work_keys_str_mv AT sherifmohamedayman bimbasedstructuraloptimizationforreinforcedconcretefloorsusingevolutionaryalgorithms