Minimum Mass and Optimal Complexity of Planar Tensegrity Bridges

Author:

Carpentieri Gerardo1,Skelton Robert E.2,Fraternali Fernando1

Affiliation:

1. Department of Civil Engineering, University of Salerno, Via Giovanni Paolo II, 132 — 84084 Fisciano (SA), Italy

2. Department of Structural Engineering, University of California San Diego, 9500 Gilman Dr., La Jolla, CA 92093, United States

Abstract

This paper investigates the use of the most fundamental elements; cables for tension and bars for compression, in the search for the most efficient bridges. Stable arrangements of these elements are called tensegrity structures. We show herein the minimal mass arrangement of these basic elements to satisfy both yielding and buckling constraints. We show that the minimal mass solution for a simply-supported bridge subject to buckling constraints matches Michell's 1904 paper which treats the case of only yielding constraints, even though our boundary conditions differ. The necessary and sufficient condition is given for the minimal mass bridge to lie totally above (or below) deck. Furthermore this condition depends only on material properties. If one ignores joint mass, and considers only bridges above deck level, the optimal complexity (number of elements in the bridge) tends toward infinity (producing a material continuum). If joint mass is considered then the optimal complexity is finite. The optimal (minimal mass) bridge below deck has the smallest possible complexity (and therefore cheaper to build), and under reasonable material choices, yields the smallest mass bridge.

Publisher

SAGE Publications

Subject

Building and Construction,Architecture,Civil and Structural Engineering,Conservation

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