Loading…
Plasma confinement regimes and collective modes characterizing them
A unified theory is presented for the modes that are excited at the edge of the plasma column and are important signatures of the advanced confinement regimes into which magnetically confined plasmas can be driven. In particular, the so-called EDA H-Regime, the Elmy H-Regime, and the I-Regime are co...
Saved in:
Published in: | Physics of plasmas 2012-10, Vol.19 (10) |
---|---|
Main Authors: | , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
cited_by | cdi_FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983 |
---|---|
cites | cdi_FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983 |
container_end_page | |
container_issue | 10 |
container_start_page | |
container_title | Physics of plasmas |
container_volume | 19 |
creator | Coppi, B. Zhou, T. |
description | A unified theory is presented for the modes that are excited at the edge of the plasma column and are important signatures of the advanced confinement regimes into which magnetically confined plasmas can be driven. In particular, the so-called EDA H-Regime, the Elmy H-Regime, and the I-Regime are considered. The modes that are identified theoretically have characteristics that are consistent with or have anticipated those of the modes observed experimentally for each of the investigated regimes. The phase velocities, the produced transport processes, the frequencies, the wavelengths, and the consistency with the direction of spontaneous rotation are the factors considered for comparison with the relevant experiments. The quasi-coherent mode [I. Cziegler, Ph.D. dissertation, Massachusetts Institute of Technology, Cambridge, MA, 2011] that is present in the EDA H-Regime has a phase velocity in the direction of the ion diamagnetic velocity in the plasma reference frame. Consequently, this is identified as a ballooning mode near finite Larmor radius marginal stability involving the effects of transverse ion viscosity and other dissipative effects. In this regime, impurities are driven outward by the combined effects of the local temperature gradients of the impurities and their thermal conductivity, while in the Elmy H-Regime impurities are driven toward the center of the plasma column. In the I-Regimes, the excited “Heavy Particle” modes [B. Coppi and T. Zhou, Phys. Plasmas 19, 012302 (2012); Phys. Lett. A 375, 2916 (2011)] are not of the ballooning kind and are shown to expel the impurities toward the plasma edge in the presence of significant fluctuations. These modes can have a finite frequency of oscillation with a phase velocity in the direction of the electron diamagnetic velocity or they can be nearly purely growing, explaining why there are I-Regimes where fluctuations are not observed. Instead, the modes considered for the Elmy H-Regime are of the ballooning kind. They are driven by the combined effects of the plasma pressure gradient and the magnetic field curvature, are close to conditions under which the acquired growth rates are proportional to half power of the relevant dissipation parameters, involve the effects of finite magnetic diffusivity and finite electron thermal conductivity, and can have phase velocities in either direction. |
doi_str_mv | 10.1063/1.4757640 |
format | article |
fullrecord | <record><control><sourceid>proquest_osti_</sourceid><recordid>TN_cdi_osti_scitechconnect_22068822</recordid><sourceformat>XML</sourceformat><sourcesystem>PC</sourcesystem><sourcerecordid>1671507386</sourcerecordid><originalsourceid>FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983</originalsourceid><addsrcrecordid>eNotkEtLAzEcxIMoWKsHv8GCFz1szftxlOILCnpQ8Bay2f-2kd1sTVJBP71b6mmG4ccwDEKXBC8IluyWLLgSSnJ8hGYEa1Mrqfjx3itcS8k_TtFZzp8YYy6FnqHla-_y4Co_xi5EGCCWKsE6DJArF9sp73vwJXxDNYztFPqNS84XSOE3xHVVNjCco5PO9Rku_nWO3h_u35ZP9erl8Xl5t6o9o6LUbdNwKQ1Qh8E7pVzHSNcxYaggDguujGAcjMEtpQ1ppPTUkE4z0TrCvNFsjq4OvWMuwWYfCvjNNDxOAy2lWGpN6URdH6htGr92kIsdQvbQ9y7CuMuWSEUEVkzLCb05oD6NOSfo7DaFwaUfS7Dd32mJ_b-T_QEg1mYM</addsrcrecordid><sourcetype>Open Access Repository</sourcetype><iscdi>true</iscdi><recordtype>article</recordtype><pqid>1671507386</pqid></control><display><type>article</type><title>Plasma confinement regimes and collective modes characterizing them</title><source>American Institute of Physics:Jisc Collections:Transitional Journals Agreement 2021-23 (Reading list)</source><source>AIP Journals (American Institute of Physics)</source><creator>Coppi, B. ; Zhou, T.</creator><creatorcontrib>Coppi, B. ; Zhou, T.</creatorcontrib><description>A unified theory is presented for the modes that are excited at the edge of the plasma column and are important signatures of the advanced confinement regimes into which magnetically confined plasmas can be driven. In particular, the so-called EDA H-Regime, the Elmy H-Regime, and the I-Regime are considered. The modes that are identified theoretically have characteristics that are consistent with or have anticipated those of the modes observed experimentally for each of the investigated regimes. The phase velocities, the produced transport processes, the frequencies, the wavelengths, and the consistency with the direction of spontaneous rotation are the factors considered for comparison with the relevant experiments. The quasi-coherent mode [I. Cziegler, Ph.D. dissertation, Massachusetts Institute of Technology, Cambridge, MA, 2011] that is present in the EDA H-Regime has a phase velocity in the direction of the ion diamagnetic velocity in the plasma reference frame. Consequently, this is identified as a ballooning mode near finite Larmor radius marginal stability involving the effects of transverse ion viscosity and other dissipative effects. In this regime, impurities are driven outward by the combined effects of the local temperature gradients of the impurities and their thermal conductivity, while in the Elmy H-Regime impurities are driven toward the center of the plasma column. In the I-Regimes, the excited “Heavy Particle” modes [B. Coppi and T. Zhou, Phys. Plasmas 19, 012302 (2012); Phys. Lett. A 375, 2916 (2011)] are not of the ballooning kind and are shown to expel the impurities toward the plasma edge in the presence of significant fluctuations. These modes can have a finite frequency of oscillation with a phase velocity in the direction of the electron diamagnetic velocity or they can be nearly purely growing, explaining why there are I-Regimes where fluctuations are not observed. Instead, the modes considered for the Elmy H-Regime are of the ballooning kind. They are driven by the combined effects of the plasma pressure gradient and the magnetic field curvature, are close to conditions under which the acquired growth rates are proportional to half power of the relevant dissipation parameters, involve the effects of finite magnetic diffusivity and finite electron thermal conductivity, and can have phase velocities in either direction.</description><identifier>ISSN: 1070-664X</identifier><identifier>EISSN: 1089-7674</identifier><identifier>DOI: 10.1063/1.4757640</identifier><language>eng</language><publisher>United States</publisher><subject>70 PLASMA PHYSICS AND FUSION TECHNOLOGY ; BALLOONING INSTABILITY ; BOUNDARY LAYERS ; Curvature ; Diamagnetism ; Dissipation ; ELECTRONS ; H-MODE PLASMA CONFINEMENT ; Impurities ; LARMOR RADIUS ; MAGNETIC FIELDS ; Mathematical analysis ; OSCILLATIONS ; PHASE VELOCITY ; Plasma (physics) ; PLASMA IMPURITIES ; PLASMA PRESSURE ; THERMAL CONDUCTIVITY ; WAVELENGTHS</subject><ispartof>Physics of plasmas, 2012-10, Vol.19 (10)</ispartof><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983</citedby><cites>FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>230,314,780,782,784,885,27924,27925</link.rule.ids><backlink>$$Uhttps://www.osti.gov/biblio/22068822$$D View this record in Osti.gov$$Hfree_for_read</backlink></links><search><creatorcontrib>Coppi, B.</creatorcontrib><creatorcontrib>Zhou, T.</creatorcontrib><title>Plasma confinement regimes and collective modes characterizing them</title><title>Physics of plasmas</title><description>A unified theory is presented for the modes that are excited at the edge of the plasma column and are important signatures of the advanced confinement regimes into which magnetically confined plasmas can be driven. In particular, the so-called EDA H-Regime, the Elmy H-Regime, and the I-Regime are considered. The modes that are identified theoretically have characteristics that are consistent with or have anticipated those of the modes observed experimentally for each of the investigated regimes. The phase velocities, the produced transport processes, the frequencies, the wavelengths, and the consistency with the direction of spontaneous rotation are the factors considered for comparison with the relevant experiments. The quasi-coherent mode [I. Cziegler, Ph.D. dissertation, Massachusetts Institute of Technology, Cambridge, MA, 2011] that is present in the EDA H-Regime has a phase velocity in the direction of the ion diamagnetic velocity in the plasma reference frame. Consequently, this is identified as a ballooning mode near finite Larmor radius marginal stability involving the effects of transverse ion viscosity and other dissipative effects. In this regime, impurities are driven outward by the combined effects of the local temperature gradients of the impurities and their thermal conductivity, while in the Elmy H-Regime impurities are driven toward the center of the plasma column. In the I-Regimes, the excited “Heavy Particle” modes [B. Coppi and T. Zhou, Phys. Plasmas 19, 012302 (2012); Phys. Lett. A 375, 2916 (2011)] are not of the ballooning kind and are shown to expel the impurities toward the plasma edge in the presence of significant fluctuations. These modes can have a finite frequency of oscillation with a phase velocity in the direction of the electron diamagnetic velocity or they can be nearly purely growing, explaining why there are I-Regimes where fluctuations are not observed. Instead, the modes considered for the Elmy H-Regime are of the ballooning kind. They are driven by the combined effects of the plasma pressure gradient and the magnetic field curvature, are close to conditions under which the acquired growth rates are proportional to half power of the relevant dissipation parameters, involve the effects of finite magnetic diffusivity and finite electron thermal conductivity, and can have phase velocities in either direction.</description><subject>70 PLASMA PHYSICS AND FUSION TECHNOLOGY</subject><subject>BALLOONING INSTABILITY</subject><subject>BOUNDARY LAYERS</subject><subject>Curvature</subject><subject>Diamagnetism</subject><subject>Dissipation</subject><subject>ELECTRONS</subject><subject>H-MODE PLASMA CONFINEMENT</subject><subject>Impurities</subject><subject>LARMOR RADIUS</subject><subject>MAGNETIC FIELDS</subject><subject>Mathematical analysis</subject><subject>OSCILLATIONS</subject><subject>PHASE VELOCITY</subject><subject>Plasma (physics)</subject><subject>PLASMA IMPURITIES</subject><subject>PLASMA PRESSURE</subject><subject>THERMAL CONDUCTIVITY</subject><subject>WAVELENGTHS</subject><issn>1070-664X</issn><issn>1089-7674</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2012</creationdate><recordtype>article</recordtype><recordid>eNotkEtLAzEcxIMoWKsHv8GCFz1szftxlOILCnpQ8Bay2f-2kd1sTVJBP71b6mmG4ccwDEKXBC8IluyWLLgSSnJ8hGYEa1Mrqfjx3itcS8k_TtFZzp8YYy6FnqHla-_y4Co_xi5EGCCWKsE6DJArF9sp73vwJXxDNYztFPqNS84XSOE3xHVVNjCco5PO9Rku_nWO3h_u35ZP9erl8Xl5t6o9o6LUbdNwKQ1Qh8E7pVzHSNcxYaggDguujGAcjMEtpQ1ppPTUkE4z0TrCvNFsjq4OvWMuwWYfCvjNNDxOAy2lWGpN6URdH6htGr92kIsdQvbQ9y7CuMuWSEUEVkzLCb05oD6NOSfo7DaFwaUfS7Dd32mJ_b-T_QEg1mYM</recordid><startdate>20121001</startdate><enddate>20121001</enddate><creator>Coppi, B.</creator><creator>Zhou, T.</creator><scope>AAYXX</scope><scope>CITATION</scope><scope>7U5</scope><scope>8FD</scope><scope>H8D</scope><scope>L7M</scope><scope>OTOTI</scope></search><sort><creationdate>20121001</creationdate><title>Plasma confinement regimes and collective modes characterizing them</title><author>Coppi, B. ; Zhou, T.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2012</creationdate><topic>70 PLASMA PHYSICS AND FUSION TECHNOLOGY</topic><topic>BALLOONING INSTABILITY</topic><topic>BOUNDARY LAYERS</topic><topic>Curvature</topic><topic>Diamagnetism</topic><topic>Dissipation</topic><topic>ELECTRONS</topic><topic>H-MODE PLASMA CONFINEMENT</topic><topic>Impurities</topic><topic>LARMOR RADIUS</topic><topic>MAGNETIC FIELDS</topic><topic>Mathematical analysis</topic><topic>OSCILLATIONS</topic><topic>PHASE VELOCITY</topic><topic>Plasma (physics)</topic><topic>PLASMA IMPURITIES</topic><topic>PLASMA PRESSURE</topic><topic>THERMAL CONDUCTIVITY</topic><topic>WAVELENGTHS</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Coppi, B.</creatorcontrib><creatorcontrib>Zhou, T.</creatorcontrib><collection>CrossRef</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Advanced Technologies Database with Aerospace</collection><collection>OSTI.GOV</collection><jtitle>Physics of plasmas</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Coppi, B.</au><au>Zhou, T.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Plasma confinement regimes and collective modes characterizing them</atitle><jtitle>Physics of plasmas</jtitle><date>2012-10-01</date><risdate>2012</risdate><volume>19</volume><issue>10</issue><issn>1070-664X</issn><eissn>1089-7674</eissn><abstract>A unified theory is presented for the modes that are excited at the edge of the plasma column and are important signatures of the advanced confinement regimes into which magnetically confined plasmas can be driven. In particular, the so-called EDA H-Regime, the Elmy H-Regime, and the I-Regime are considered. The modes that are identified theoretically have characteristics that are consistent with or have anticipated those of the modes observed experimentally for each of the investigated regimes. The phase velocities, the produced transport processes, the frequencies, the wavelengths, and the consistency with the direction of spontaneous rotation are the factors considered for comparison with the relevant experiments. The quasi-coherent mode [I. Cziegler, Ph.D. dissertation, Massachusetts Institute of Technology, Cambridge, MA, 2011] that is present in the EDA H-Regime has a phase velocity in the direction of the ion diamagnetic velocity in the plasma reference frame. Consequently, this is identified as a ballooning mode near finite Larmor radius marginal stability involving the effects of transverse ion viscosity and other dissipative effects. In this regime, impurities are driven outward by the combined effects of the local temperature gradients of the impurities and their thermal conductivity, while in the Elmy H-Regime impurities are driven toward the center of the plasma column. In the I-Regimes, the excited “Heavy Particle” modes [B. Coppi and T. Zhou, Phys. Plasmas 19, 012302 (2012); Phys. Lett. A 375, 2916 (2011)] are not of the ballooning kind and are shown to expel the impurities toward the plasma edge in the presence of significant fluctuations. These modes can have a finite frequency of oscillation with a phase velocity in the direction of the electron diamagnetic velocity or they can be nearly purely growing, explaining why there are I-Regimes where fluctuations are not observed. Instead, the modes considered for the Elmy H-Regime are of the ballooning kind. They are driven by the combined effects of the plasma pressure gradient and the magnetic field curvature, are close to conditions under which the acquired growth rates are proportional to half power of the relevant dissipation parameters, involve the effects of finite magnetic diffusivity and finite electron thermal conductivity, and can have phase velocities in either direction.</abstract><cop>United States</cop><doi>10.1063/1.4757640</doi><oa>free_for_read</oa></addata></record> |
fulltext | fulltext |
identifier | ISSN: 1070-664X |
ispartof | Physics of plasmas, 2012-10, Vol.19 (10) |
issn | 1070-664X 1089-7674 |
language | eng |
recordid | cdi_osti_scitechconnect_22068822 |
source | American Institute of Physics:Jisc Collections:Transitional Journals Agreement 2021-23 (Reading list); AIP Journals (American Institute of Physics) |
subjects | 70 PLASMA PHYSICS AND FUSION TECHNOLOGY BALLOONING INSTABILITY BOUNDARY LAYERS Curvature Diamagnetism Dissipation ELECTRONS H-MODE PLASMA CONFINEMENT Impurities LARMOR RADIUS MAGNETIC FIELDS Mathematical analysis OSCILLATIONS PHASE VELOCITY Plasma (physics) PLASMA IMPURITIES PLASMA PRESSURE THERMAL CONDUCTIVITY WAVELENGTHS |
title | Plasma confinement regimes and collective modes characterizing them |
url | http://sfxeu10.hosted.exlibrisgroup.com/loughborough?ctx_ver=Z39.88-2004&ctx_enc=info:ofi/enc:UTF-8&ctx_tim=2025-01-04T21%3A13%3A24IST&url_ver=Z39.88-2004&url_ctx_fmt=infofi/fmt:kev:mtx:ctx&rfr_id=info:sid/primo.exlibrisgroup.com:primo3-Article-proquest_osti_&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.genre=article&rft.atitle=Plasma%20confinement%20regimes%20and%20collective%20modes%20characterizing%20them&rft.jtitle=Physics%20of%20plasmas&rft.au=Coppi,%20B.&rft.date=2012-10-01&rft.volume=19&rft.issue=10&rft.issn=1070-664X&rft.eissn=1089-7674&rft_id=info:doi/10.1063/1.4757640&rft_dat=%3Cproquest_osti_%3E1671507386%3C/proquest_osti_%3E%3Cgrp_id%3Ecdi_FETCH-LOGICAL-c325t-dbb4669e2a0eca77af31ff359251a05479534e990d22b1b66c291f835da13c983%3C/grp_id%3E%3Coa%3E%3C/oa%3E%3Curl%3E%3C/url%3E&rft_id=info:oai/&rft_pqid=1671507386&rft_id=info:pmid/&rfr_iscdi=true |