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Dynamic Characterization of Micro-Particle Systems

Citation

Lin, Wei-Hsun (2016) Dynamic Characterization of Micro-Particle Systems. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/Z9D798BJ. https://resolver.caltech.edu/CaltechTHESIS:07082015-183754265

Abstract

Ordered granular systems have been a subject of active research for decades. Due to their rich dynamic response and nonlinearity, ordered granular systems have been suggested for several applications, such as solitary wave focusing, acoustic signals manipulation, and vibration absorption. Most of the fundamental research performed on ordered granular systems has focused on macro-scale examples. However, most engineering applications require these systems to operate at much smaller scales. Very little is known about the response of micro-scale granular systems, primarily because of the difficulties in realizing reliable and quantitative experiments, which originate from the discrete nature of granular materials and their highly nonlinear inter-particle contact forces.

In this work, we investigate the physics of ordered micro-granular systems by designing an innovative experimental platform that allows us to assemble, excite, and characterize ordered micro-granular systems. This new experimental platform employs a laser system to deliver impulses with controlled momentum and incorporates non-contact measurement apparatuses to detect the particles’ displacement and velocity. We demonstrated the capability of the laser system to excite systems of dry (stainless steel particles of radius 150 micrometers) and wet (silica particles of radius 3.69 micrometers, immersed in fluid) micro-particles, after which we analyzed the stress propagation through these systems.

We derived the equations of motion governing the dynamic response of dry and wet particles on a substrate, which we then validated in experiments. We then measured the losses in these systems and characterized the collision and friction between two micro-particles. We studied wave propagation in one-dimensional dry chains of micro-particles as well as in two-dimensional colloidal systems immersed in fluid. We investigated the influence of defects to wave propagation in the one-dimensional systems. Finally, we characterized the wave-attenuation and its relation to the viscosity of the surrounding fluid and performed computer simulations to establish a model that captures the observed response.

The findings of the study offer the first systematic experimental and numerical analysis of wave propagation through ordered systems of micro-particles. The experimental system designed in this work provides the necessary tools for further fundamental studies of wave propagation in both granular and colloidal systems.

Item Type:Thesis (Dissertation (Ph.D.))
Subject Keywords:Granular; Solitary Waves; Granular Crystals; Micro-granular systems; Colloidal crystals;Pulsed Laser Ablation;
Degree Grantor:California Institute of Technology
Division:Physics, Mathematics and Astronomy
Major Option:Physics
Thesis Availability:Public (worldwide access)
Research Advisor(s):
  • Daraio, Chiara
Thesis Committee:
  • Cross, Michael Clifford (chair)
  • Hunt, Melany L.
  • Libbrecht, Kenneth George
  • Daraio, Chiara
Defense Date:23 June 2015
Non-Caltech Author Email:wei.xun.lin (AT) gmail.com
Funders:
Funding AgencyGrant Number
AFOSRFA9550-12-1-0332
ARO MURIW911NF-09-1-0436
ONR YIPN000141010718
Sloan FellowshipUNSPECIFIED
NSF MRSECUNSPECIFIED
Record Number:CaltechTHESIS:07082015-183754265
Persistent URL:https://resolver.caltech.edu/CaltechTHESIS:07082015-183754265
DOI:10.7907/Z9D798BJ
Default Usage Policy:No commercial reproduction, distribution, display or performance rights in this work are provided.
ID Code:9054
Collection:CaltechTHESIS
Deposited By: Wei Hsun Lin
Deposited On:20 Jul 2015 18:05
Last Modified:08 Nov 2023 00:21

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