Technical Papers
Apr 13, 2022

Geometric Feasibility of Kinetic Reciprocal Frame Structures with Linear and Curved Elements and a Constant Perimeter

Publication: Journal of Architectural Engineering
Volume 28, Issue 2

Abstract

Deployability of reciprocal frame (RF) structures can aid in the creation of multifunctional architectures, satisfy the needs of flexible architectures, and adapt to climatic and environmental conditions. However, changes in the perimeter of a structure during deployed and retracted states may result in low efficiency in architectural design and limit its architectural applications. The purpose of the present study was to investigate the geometric feasibility of deployable kinetic reciprocal frame (KRF) structures with constant perimeters and fixed support points. This structure can cover constant perimeter without any change while adapting, particularly providing many potential benefits in architectural applications and bridging the gap between two states. The research methodology used in this paper is a design-based examination of the geometry of fixed RF structures. The study’s findings revealed a wide range of KRF structures that can cover various geometric plans using moving elements along a specific path on adjacent elements and rotating them in fixed supports on the outer polygon without modifying the perimeter during deployment or retraction.

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Acknowledgments

This article was extracted from a Master’s thesis by the first author, entitled “Development of Deployable Reciprocal Structures in Architecture,” written under the supervision of the second author.

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Go to Journal of Architectural Engineering
Journal of Architectural Engineering
Volume 28Issue 2June 2022

History

Received: Jul 2, 2021
Accepted: Feb 7, 2022
Published online: Apr 13, 2022
Published in print: Jun 1, 2022
Discussion open until: Sep 13, 2022

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Authors

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Farnaz Nazarzadeh [email protected]
Graduate Student, Faculty of Architecture and Urbanism, Tabriz Islamic Art Univ., Tabriz, East Azerbaijan Province, Islamic Republic of Iran. Email: [email protected]
Maziar Asefi [email protected]
Adjunct Faculty, Dept. of Architectural Science, Ryerson Univ., Toronto, Canada (corresponding author). Email: [email protected]

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