Design and characterization of variable stiffness structural joints
This paper presents design and characterization of a new type of structural joint which can vary its stiffness through actuation. Stiffness variation is employed to control the dynamic response of frame structures equipped with such joints. The joint is made of a shape memory polymer (SMP) core whic...
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doaj-05ab5f4bd5af41018451681a8f4f52d12020-11-25T01:57:16ZengElsevierMaterials & Design0264-12752020-02-01187Design and characterization of variable stiffness structural jointsQinyu Wang0Gennaro Senatore1Kaspar Jansen2Arjan Habraken3Patrick Teuffel4Chair of Innovative Structural Design (ISD), TU Eindhoven, 5600 MB Eindhoven, The Netherlands; Corresponding author at: Chair of Innovative Structural Design (ISD), TU Eindhoven, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.Applied Computing and Mechanics Laboratory (IMAC, ENAC), Swiss Federal Institute of Technology (EPFL), SwitzerlandDepartment of Design Engineering, TU Delft, 2628 CE Delft, The NetherlandsChair of Innovative Structural Design (ISD), TU Eindhoven, 5600 MB Eindhoven, The NetherlandsChair of Innovative Structural Design (ISD), TU Eindhoven, 5600 MB Eindhoven, The NetherlandsThis paper presents design and characterization of a new type of structural joint which can vary its stiffness through actuation. Stiffness variation is employed to control the dynamic response of frame structures equipped with such joints. The joint is made of a shape memory polymer (SMP) core which is reinforced by an SMP-aramid composite skin. A controlled stiffness reduction of the joint core material, induced by resistive heating, results in a shift of the structure natural frequencies. This work comprises two main parts: 1) characterization of material thermomechanical properties and viscoelastic behavior; 2) numerical simulations of the dynamic response of a one-story planar frame equipped with two such variable stiffness joints.The experimental material model obtained through Dynamic Mechanical Analysis has been used to carry out modal and non-linear transient analysis. However, control time delays due to heating and cooling as well as fatigue are not considered in the numerical simulations. Results have shown that through joint stiffness control, the fundamental frequency shifts up to 8.72% causing a drastic reduction of the dynamic response under resonance loading. The SMP-aramid skin is effective to restrain the joint deformation in the activated state while maintaining viscoelastic damping properties. Keywords: Adaptive structures, Variable stiffness joint, Natural frequency shift, Viscoelastic material, Structural dynamics, Controlhttp://www.sciencedirect.com/science/article/pii/S0264127519307919 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Qinyu Wang Gennaro Senatore Kaspar Jansen Arjan Habraken Patrick Teuffel |
spellingShingle |
Qinyu Wang Gennaro Senatore Kaspar Jansen Arjan Habraken Patrick Teuffel Design and characterization of variable stiffness structural joints Materials & Design |
author_facet |
Qinyu Wang Gennaro Senatore Kaspar Jansen Arjan Habraken Patrick Teuffel |
author_sort |
Qinyu Wang |
title |
Design and characterization of variable stiffness structural joints |
title_short |
Design and characterization of variable stiffness structural joints |
title_full |
Design and characterization of variable stiffness structural joints |
title_fullStr |
Design and characterization of variable stiffness structural joints |
title_full_unstemmed |
Design and characterization of variable stiffness structural joints |
title_sort |
design and characterization of variable stiffness structural joints |
publisher |
Elsevier |
series |
Materials & Design |
issn |
0264-1275 |
publishDate |
2020-02-01 |
description |
This paper presents design and characterization of a new type of structural joint which can vary its stiffness through actuation. Stiffness variation is employed to control the dynamic response of frame structures equipped with such joints. The joint is made of a shape memory polymer (SMP) core which is reinforced by an SMP-aramid composite skin. A controlled stiffness reduction of the joint core material, induced by resistive heating, results in a shift of the structure natural frequencies. This work comprises two main parts: 1) characterization of material thermomechanical properties and viscoelastic behavior; 2) numerical simulations of the dynamic response of a one-story planar frame equipped with two such variable stiffness joints.The experimental material model obtained through Dynamic Mechanical Analysis has been used to carry out modal and non-linear transient analysis. However, control time delays due to heating and cooling as well as fatigue are not considered in the numerical simulations. Results have shown that through joint stiffness control, the fundamental frequency shifts up to 8.72% causing a drastic reduction of the dynamic response under resonance loading. The SMP-aramid skin is effective to restrain the joint deformation in the activated state while maintaining viscoelastic damping properties. Keywords: Adaptive structures, Variable stiffness joint, Natural frequency shift, Viscoelastic material, Structural dynamics, Control |
url |
http://www.sciencedirect.com/science/article/pii/S0264127519307919 |
work_keys_str_mv |
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