Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics

This doctoral thesis reports analytical and numerical results for the electrostatic response of a dusty plasma to a moving test charge. Two important physical aspects of dusty plasmas, namely grain size distribution and grain charging dynamics were taken into account. In the first case, a dusty plas...

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Main Author: Shafiq, Muhammad
Format: Doctoral Thesis
Language:English
Published: KTH, Alfvénlaboratoriet 2006
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4134
http://nbn-resolving.de/urn:isbn:91-7178-463-2
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-41342013-01-08T13:07:58ZTest Charge Response of a Dusty Plasma with Grain Size Distribution and Charging DynamicsengShafiq, MuhammadKTH, AlfvénlaboratorietStockholm : KTH2006Dusty plasmasComplex plasmasGrain size distributionGrain charging dynamicsLorentzian distributionKappa distributionTest charge responseDelayed shieldingEnergy lossDrag forceWake field.Plasma physicsPlasmafysikThis doctoral thesis reports analytical and numerical results for the electrostatic response of a dusty plasma to a moving test charge. Two important physical aspects of dusty plasmas, namely grain size distribution and grain charging dynamics were taken into account. In the first case, a dusty plasma in thermal equilibrium and with a distribution of grain sizes is considered. A size distribution is assumed which decreases exponentially with the grain mass for large sizes and gives a simple smooth reduction for small sizes. The electrostatic response to a slowly moving test charge, using a second order approximation is found and the effects of collisions are also investigated. It turns out that for this particular size distribution, there is a remarkably simple result that the resulting effective distribution for the electrostatic response is a kappa (generalized Lorentzian) distribution. In the second case, we present an analytical model for the shielding of a slowly moving test charge in a dusty plasma with dynamical grain charging for cases both with and without the collision effects. The response potential is treated as a power series in test charge velocity. Analytical expressions for the response potential are found up to second order in test charge velocity. The first-order dynamical charging term is shown to be the consequence of the delay in the shielding due to the dynamics of the charging process. It is concluded that the dynamical charging of the grains in a dusty plasma enhances the shielding of a test charge. To clarify the physics, a separate study is made where the charging is approximated by using a time delay. The resulting potential shows the delayed shielding effect explicitly. The terms in the potential that depend on the charging dynamics involve a spatial shift given by the test charge velocity and the charging time. The wake potential of a fast moving test charge in the case of grain charging dynamics was also found. It was observed that the grain charging dynamics leads to a spatial damping and a phase shift in the potential response. Finally, combining these two physical aspects, generalized results for the electrostatic potential were found incorporating the terms from both grain size distribution and grain charging dynamics. The generalized results contain the previous work where these two effects were studied separately and which can now be found as special limiting cases. This kind of work has relevance both in space and astrophysical plasmas. QC 20100920Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4134urn:isbn:91-7178-463-2Trita-EE, 1653-5146 ; 2006:045application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Dusty plasmas
Complex plasmas
Grain size distribution
Grain charging dynamics
Lorentzian distribution
Kappa distribution
Test charge response
Delayed shielding
Energy loss
Drag force
Wake field.
Plasma physics
Plasmafysik
spellingShingle Dusty plasmas
Complex plasmas
Grain size distribution
Grain charging dynamics
Lorentzian distribution
Kappa distribution
Test charge response
Delayed shielding
Energy loss
Drag force
Wake field.
Plasma physics
Plasmafysik
Shafiq, Muhammad
Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics
description This doctoral thesis reports analytical and numerical results for the electrostatic response of a dusty plasma to a moving test charge. Two important physical aspects of dusty plasmas, namely grain size distribution and grain charging dynamics were taken into account. In the first case, a dusty plasma in thermal equilibrium and with a distribution of grain sizes is considered. A size distribution is assumed which decreases exponentially with the grain mass for large sizes and gives a simple smooth reduction for small sizes. The electrostatic response to a slowly moving test charge, using a second order approximation is found and the effects of collisions are also investigated. It turns out that for this particular size distribution, there is a remarkably simple result that the resulting effective distribution for the electrostatic response is a kappa (generalized Lorentzian) distribution. In the second case, we present an analytical model for the shielding of a slowly moving test charge in a dusty plasma with dynamical grain charging for cases both with and without the collision effects. The response potential is treated as a power series in test charge velocity. Analytical expressions for the response potential are found up to second order in test charge velocity. The first-order dynamical charging term is shown to be the consequence of the delay in the shielding due to the dynamics of the charging process. It is concluded that the dynamical charging of the grains in a dusty plasma enhances the shielding of a test charge. To clarify the physics, a separate study is made where the charging is approximated by using a time delay. The resulting potential shows the delayed shielding effect explicitly. The terms in the potential that depend on the charging dynamics involve a spatial shift given by the test charge velocity and the charging time. The wake potential of a fast moving test charge in the case of grain charging dynamics was also found. It was observed that the grain charging dynamics leads to a spatial damping and a phase shift in the potential response. Finally, combining these two physical aspects, generalized results for the electrostatic potential were found incorporating the terms from both grain size distribution and grain charging dynamics. The generalized results contain the previous work where these two effects were studied separately and which can now be found as special limiting cases. This kind of work has relevance both in space and astrophysical plasmas. === QC 20100920
author Shafiq, Muhammad
author_facet Shafiq, Muhammad
author_sort Shafiq, Muhammad
title Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics
title_short Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics
title_full Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics
title_fullStr Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics
title_full_unstemmed Test Charge Response of a Dusty Plasma with Grain Size Distribution and Charging Dynamics
title_sort test charge response of a dusty plasma with grain size distribution and charging dynamics
publisher KTH, Alfvénlaboratoriet
publishDate 2006
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-4134
http://nbn-resolving.de/urn:isbn:91-7178-463-2
work_keys_str_mv AT shafiqmuhammad testchargeresponseofadustyplasmawithgrainsizedistributionandchargingdynamics
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