Dynamics of Granular Crystals with Elastic-Plastic Contacts

We study the behavior of granular crystals subjected to impact loading that creates plastic deformation at the contacts between constituent particles. Granular crystals are highly periodic arrangements of spherical particles, arranged into densely packed structures resembling crystals. This specia...

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Main Author: Burgoyne, Hayden Andrew
Format: Others
Language:en
Published: 2016
Online Access:https://thesis.library.caltech.edu/9729/7/Burgoyne-dynamics-granular-crystals.pdf
Burgoyne, Hayden Andrew (2016) Dynamics of Granular Crystals with Elastic-Plastic Contacts. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9J38QG6. https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213 <https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213>
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spelling ndltd-CALTECH-oai-thesis.library.caltech.edu-97292021-11-03T05:01:43Z https://thesis.library.caltech.edu/9729/ Dynamics of Granular Crystals with Elastic-Plastic Contacts Burgoyne, Hayden Andrew We study the behavior of granular crystals subjected to impact loading that creates plastic deformation at the contacts between constituent particles. Granular crystals are highly periodic arrangements of spherical particles, arranged into densely packed structures resembling crystals. This special class of granular materials has been shown to have unique dynamics with suggested applications in impact protection. However, previous work has focused on very low amplitude impacts where every contact point can be described using the Hertzian contact law, valid only for purely elastic deformation. In this thesis, we extend previous investigation of the dynamics of granular crystals to significantly higher impact energies more suitable for the majority of applications. Additionally, we demonstrate new properties specific to elastic-plastic granular crystals and discuss their potential applications as well. We first develop a new contact law to describe the interaction between particles for large amplitude compression of elastic-plastic spherical particles including a formulation for strain-rate dependent plasticity. We numerically and experimentally demonstrate the applicability of this contact law to a variety of materials typically used in granular crystals. We then extend our investigation to one-dimensional chains of elastic-plastic particles, including chains of alternating dissimilar materials. We show that, using the new elastic-plastic contact law, we can predict the speed at which impact waves with plastic dissipation propagate based on the material properties of the constituent particles. Finally, we experimentally and numerically investigate the dynamics of two-dimensional and three-dimensional granular crystals with elastic-plastic contacts. We first show that the predicted wave speeds for 1D granular crystals can be extended to 2D and 3D materials. We then investigate the behavior of waves propagating across oblique interfaces of dissimilar particles. We show that the character of the refracted wave can be predicted using an analog to Snell's law for elastic-plastic granular crystals and ultimately show how it can be used to design impact guiding "lenses" for mitigation applications. 2016 Thesis NonPeerReviewed application/pdf en other https://thesis.library.caltech.edu/9729/7/Burgoyne-dynamics-granular-crystals.pdf Burgoyne, Hayden Andrew (2016) Dynamics of Granular Crystals with Elastic-Plastic Contacts. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9J38QG6. https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213 <https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213> https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213 CaltechTHESIS:05182016-164150213 10.7907/Z9J38QG6
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language en
format Others
sources NDLTD
description We study the behavior of granular crystals subjected to impact loading that creates plastic deformation at the contacts between constituent particles. Granular crystals are highly periodic arrangements of spherical particles, arranged into densely packed structures resembling crystals. This special class of granular materials has been shown to have unique dynamics with suggested applications in impact protection. However, previous work has focused on very low amplitude impacts where every contact point can be described using the Hertzian contact law, valid only for purely elastic deformation. In this thesis, we extend previous investigation of the dynamics of granular crystals to significantly higher impact energies more suitable for the majority of applications. Additionally, we demonstrate new properties specific to elastic-plastic granular crystals and discuss their potential applications as well. We first develop a new contact law to describe the interaction between particles for large amplitude compression of elastic-plastic spherical particles including a formulation for strain-rate dependent plasticity. We numerically and experimentally demonstrate the applicability of this contact law to a variety of materials typically used in granular crystals. We then extend our investigation to one-dimensional chains of elastic-plastic particles, including chains of alternating dissimilar materials. We show that, using the new elastic-plastic contact law, we can predict the speed at which impact waves with plastic dissipation propagate based on the material properties of the constituent particles. Finally, we experimentally and numerically investigate the dynamics of two-dimensional and three-dimensional granular crystals with elastic-plastic contacts. We first show that the predicted wave speeds for 1D granular crystals can be extended to 2D and 3D materials. We then investigate the behavior of waves propagating across oblique interfaces of dissimilar particles. We show that the character of the refracted wave can be predicted using an analog to Snell's law for elastic-plastic granular crystals and ultimately show how it can be used to design impact guiding "lenses" for mitigation applications.
author Burgoyne, Hayden Andrew
spellingShingle Burgoyne, Hayden Andrew
Dynamics of Granular Crystals with Elastic-Plastic Contacts
author_facet Burgoyne, Hayden Andrew
author_sort Burgoyne, Hayden Andrew
title Dynamics of Granular Crystals with Elastic-Plastic Contacts
title_short Dynamics of Granular Crystals with Elastic-Plastic Contacts
title_full Dynamics of Granular Crystals with Elastic-Plastic Contacts
title_fullStr Dynamics of Granular Crystals with Elastic-Plastic Contacts
title_full_unstemmed Dynamics of Granular Crystals with Elastic-Plastic Contacts
title_sort dynamics of granular crystals with elastic-plastic contacts
publishDate 2016
url https://thesis.library.caltech.edu/9729/7/Burgoyne-dynamics-granular-crystals.pdf
Burgoyne, Hayden Andrew (2016) Dynamics of Granular Crystals with Elastic-Plastic Contacts. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9J38QG6. https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213 <https://resolver.caltech.edu/CaltechTHESIS:05182016-164150213>
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