Visualizing Load Path in Perforated Shear Walls

Shear walls are the primary lateral load resisting elements in bearing wall systems used in masonry construction. Horizontal loads due to wind or earthquake are transferred to vertical walls by diaphragms that are rigid such as concrete floor slabs or flexible such as wood floors....

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Main Author: Chen, Ying Chih
Format: Others
Published: Scholar Commons 2018
Subjects:
Online Access:https://scholarcommons.usf.edu/etd/7609
https://scholarcommons.usf.edu/cgi/viewcontent.cgi?article=8806&context=etd
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spelling ndltd-USF-oai-scholarcommons.usf.edu-etd-88062019-10-04T05:10:12Z Visualizing Load Path in Perforated Shear Walls Chen, Ying Chih Shear walls are the primary lateral load resisting elements in bearing wall systems used in masonry construction. Horizontal loads due to wind or earthquake are transferred to vertical walls by diaphragms that are rigid such as concrete floor slabs or flexible such as wood floors. With rigid diaphragms, loads are apportioned to the supporting walls based on their relative rigidity. Walls with openings accommodating doors and windows (“perforated walls”) have reduced rigidity that can be determined using available hand calculation methods. These methods primarily focus on analysis procedures, not on the visualization of the load path that is critically important in structural engineering practice. The analogy of springs in series or parallel is used to determine the equivalent stiffness of elastic systems in structural dynamics. This thesis uses this analogy to develop a method that can help visualize load flow in perforated shear walls connected to rigid diaphragms. Rigidities are calculated using existing methods and combined as springs in series or parallel to represent a perforated wall. Loads taken by the wall segments correspond to the electrical current flowing through this imaginary “circuit”. To help visualize the load path, the line drawing representation of springs in series or parallel and the applied lateral load are deliberately oriented in the vertical direction. The application of the analogy is illustrated by several numerical examples of varying complexity taken from text books. Finite element solutions are included in the comparisons to provide a measure of the relative accuracy of hand calculation methods. The analogy can be extended to refine existing hand calculation methods though this increases computational effort. It improves accuracy but only for cases where the aspect ratio of the wall segments is such that shear effects are dominant. 2018-03-19T07:00:00Z text application/pdf https://scholarcommons.usf.edu/etd/7609 https://scholarcommons.usf.edu/cgi/viewcontent.cgi?article=8806&context=etd Graduate Theses and Dissertations Scholar Commons force distribution force flow openings refined method rigidity Engineering
collection NDLTD
format Others
sources NDLTD
topic force distribution
force flow
openings
refined method
rigidity
Engineering
spellingShingle force distribution
force flow
openings
refined method
rigidity
Engineering
Chen, Ying Chih
Visualizing Load Path in Perforated Shear Walls
description Shear walls are the primary lateral load resisting elements in bearing wall systems used in masonry construction. Horizontal loads due to wind or earthquake are transferred to vertical walls by diaphragms that are rigid such as concrete floor slabs or flexible such as wood floors. With rigid diaphragms, loads are apportioned to the supporting walls based on their relative rigidity. Walls with openings accommodating doors and windows (“perforated walls”) have reduced rigidity that can be determined using available hand calculation methods. These methods primarily focus on analysis procedures, not on the visualization of the load path that is critically important in structural engineering practice. The analogy of springs in series or parallel is used to determine the equivalent stiffness of elastic systems in structural dynamics. This thesis uses this analogy to develop a method that can help visualize load flow in perforated shear walls connected to rigid diaphragms. Rigidities are calculated using existing methods and combined as springs in series or parallel to represent a perforated wall. Loads taken by the wall segments correspond to the electrical current flowing through this imaginary “circuit”. To help visualize the load path, the line drawing representation of springs in series or parallel and the applied lateral load are deliberately oriented in the vertical direction. The application of the analogy is illustrated by several numerical examples of varying complexity taken from text books. Finite element solutions are included in the comparisons to provide a measure of the relative accuracy of hand calculation methods. The analogy can be extended to refine existing hand calculation methods though this increases computational effort. It improves accuracy but only for cases where the aspect ratio of the wall segments is such that shear effects are dominant.
author Chen, Ying Chih
author_facet Chen, Ying Chih
author_sort Chen, Ying Chih
title Visualizing Load Path in Perforated Shear Walls
title_short Visualizing Load Path in Perforated Shear Walls
title_full Visualizing Load Path in Perforated Shear Walls
title_fullStr Visualizing Load Path in Perforated Shear Walls
title_full_unstemmed Visualizing Load Path in Perforated Shear Walls
title_sort visualizing load path in perforated shear walls
publisher Scholar Commons
publishDate 2018
url https://scholarcommons.usf.edu/etd/7609
https://scholarcommons.usf.edu/cgi/viewcontent.cgi?article=8806&context=etd
work_keys_str_mv AT chenyingchih visualizingloadpathinperforatedshearwalls
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