Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Exploring liquid behavior in dusty plasma experiments

View through CrossRef
<p>A dusty plasma is a mixture of electrons, ions, neutral gas atoms, and small particles of solid matter (dust). In a dusty plasma produced in the laboratory, dust particles gain a large electric charge from the other charged species, so that their interparticle interactions can be very strong. Frequently, the average interparticle potential energy is higher than the thermal kinetic energy of the dust particles, and in this case, they constitute a strongly coupled plasma. As with all strongly coupled plasmas, the dust particles can behave like typical solids or liquids.</p> <p>In this thesis, I report the results of dusty plasma experiments that are focused on the behavior of liquids. I use a so-called two-dimensional (2D) dusty plasma that consists of only a single horizontal layer of dust particles. Tracking each particle with video microscopy and image analysis methods allows the calculation of important liquid properties, like the viscosity coefficient.</p> <p>In Chapter 2, I describe an improved laser heating method for producing liquid-like conditions in a 2D dusty plasma. Two laser beams are scanned across the dust layer in a new pattern to increase the kinetic energy of the particles and melt the ground state crystalline lattice. The new scanning pattern improves the randomness of the resulting particle motion so that it more closely resembles that of a liquid in a thermal equilibrium.</p> <p>In Chapter 3, I report a viscosity measurement in a dusty plasma that is unaffected by the complicating effects of temperature nonuniformities and shear thinning. This measurement is enabled by an addition to my experimental apparatus that I also detail here. I find the viscosity to be significantly higher than in previous measurements, which I attribute to the avoidance of shear thinning.</p> <p>In Chapter 4, I present measurements of viscosity using the Green-Kubo method, and compare the results to those of my previous measurement. I find that the two methods yield viscosity values that differ by about 60%, over the entire temperature range attained in the experiment. Possible sources of this difference are evaluated.</p> <p>Finally, in Chapter 5, I report the first experimental confirmation of a theoretical expression describing the decay of time autocorrelation functions. This theoretical expression fits experimentally calculated autocorrelation functions within error bars, especially at short times when a simple exponential decay fails. I also propose an intuitive description wherein an observed transition in the autocorrelation function is due to the onset of collisional scattering.</p>
Title: Exploring liquid behavior in dusty plasma experiments
Description:
<p>A dusty plasma is a mixture of electrons, ions, neutral gas atoms, and small particles of solid matter (dust).
In a dusty plasma produced in the laboratory, dust particles gain a large electric charge from the other charged species, so that their interparticle interactions can be very strong.
Frequently, the average interparticle potential energy is higher than the thermal kinetic energy of the dust particles, and in this case, they constitute a strongly coupled plasma.
As with all strongly coupled plasmas, the dust particles can behave like typical solids or liquids.
</p> <p>In this thesis, I report the results of dusty plasma experiments that are focused on the behavior of liquids.
I use a so-called two-dimensional (2D) dusty plasma that consists of only a single horizontal layer of dust particles.
Tracking each particle with video microscopy and image analysis methods allows the calculation of important liquid properties, like the viscosity coefficient.
</p> <p>In Chapter 2, I describe an improved laser heating method for producing liquid-like conditions in a 2D dusty plasma.
Two laser beams are scanned across the dust layer in a new pattern to increase the kinetic energy of the particles and melt the ground state crystalline lattice.
The new scanning pattern improves the randomness of the resulting particle motion so that it more closely resembles that of a liquid in a thermal equilibrium.
</p> <p>In Chapter 3, I report a viscosity measurement in a dusty plasma that is unaffected by the complicating effects of temperature nonuniformities and shear thinning.
This measurement is enabled by an addition to my experimental apparatus that I also detail here.
I find the viscosity to be significantly higher than in previous measurements, which I attribute to the avoidance of shear thinning.
</p> <p>In Chapter 4, I present measurements of viscosity using the Green-Kubo method, and compare the results to those of my previous measurement.
I find that the two methods yield viscosity values that differ by about 60%, over the entire temperature range attained in the experiment.
Possible sources of this difference are evaluated.
</p> <p>Finally, in Chapter 5, I report the first experimental confirmation of a theoretical expression describing the decay of time autocorrelation functions.
This theoretical expression fits experimentally calculated autocorrelation functions within error bars, especially at short times when a simple exponential decay fails.
I also propose an intuitive description wherein an observed transition in the autocorrelation function is due to the onset of collisional scattering.
</p>.

Related Results

Scattering characteristics of non-uniform dusty plasma targets based on Fokker-Planck-Landau collision model
Scattering characteristics of non-uniform dusty plasma targets based on Fokker-Planck-Landau collision model
Dusty plasma is a multi-particle system of dust particles suspended in plasma, which is generally composed of free electrons, ions, and dust particles. It is widely found in natura...
Magnetohydrodynamics enhanced radio blackout mitigation system for spacecraft during planetary entries
Magnetohydrodynamics enhanced radio blackout mitigation system for spacecraft during planetary entries
(English) Spacecraft entering planetary atmospheres are enveloped by a plasma layer with high levels of ionization, caused by the extreme temperatures in the shock layer. The charg...
Shock waves in dusty plasma
Shock waves in dusty plasma
Dusty plasma is an attractive medium to study waves, and in particular, shock waves. The work reported in this thesis was on investigation of shock waves in two-dimensional dusty p...
Instrumental modeling of Mutual Impedance experiments and validation tests in plasma chamber
Instrumental modeling of Mutual Impedance experiments and validation tests in plasma chamber
&lt;p&gt;Mutual impedance experiments are in situ space plasma diagnostic techniques for the determination of characteristic plasma parameters, such as the plasma density a...
Vortex Dynamics in Dusty Plasma Flow Past a Dust Void
Vortex Dynamics in Dusty Plasma Flow Past a Dust Void
The beauty in the formation of vortices during flow around obstacles in fluid mechanics has fascinated mankind since ages. To beat the curiosity behind such an interesting phenomen...
Research on the propagation properties of THz circularly polarized wave in BGK model inhomogeneous dusty plasma
Research on the propagation properties of THz circularly polarized wave in BGK model inhomogeneous dusty plasma
When a hypersonic vehicle flies near space, a layer of complex dusty plasma will form around the vehicle under the influence of high temperature, which will cause radar signal atte...
A dusty double plasma device
A dusty double plasma device
A novel dusty plasma device to create spatially and temporally uniform steady state dusty plasma is described. An ultrasonic vibrator is used to vibrate a dust dispenser which disp...
A study of plasma treatments effects on dental biofilms
A study of plasma treatments effects on dental biofilms
[ACCESS RESTRICTED TO THE UNIVERSITY OF MISSOURI AT REQUEST OF AUTHOR.] Dental plaque is a biofilm that grows on surfaces within the mouth and contains millions of bacteria. The ba...

Back to Top