Ontology type: schema:ScholarlyArticle
2021-04-10
AUTHORSG. Z. Hao, Y. Q. Liu, A. K. Wang, X. M. Qiu
ABSTRACTInvestigated are the effects of energetic particles (EPs), arising from off-axis neutral beam injection, on the resistive wall mode (RWM) instability in tokamaks. The analytic results for a cylindrical plasma show that EPs contribute the strongest kinetic damping to the RWM, as the deposition radius approaches the peak location of the mode eigenfunction. Toroidal computations are also carried out utilizing the MARS-K code, which includes EPs with anisotropic equilibrium distribution in the particle pitch angle space. These self-consistent numerical results confirm the analytic finding, that the RWM growth rate decreases as the peak of the EPs’ radial density profile approaches the maximum of the mode displacement. This study thus demonstrates the possibility of the RWM stabilization by the off-axis neutral beam injection in tokamak experiments. More... »
PAGES7
http://scigraph.springernature.com/pub.10.1007/s10894-021-00300-w
DOIhttp://dx.doi.org/10.1007/s10894-021-00300-w
DIMENSIONShttps://app.dimensions.ai/details/publication/pub.1137099704
JSON-LD is the canonical representation for SciGraph data.
TIP: You can open this SciGraph record using an external JSON-LD service: JSON-LD Playground Google SDTT
[
{
"@context": "https://springernature.github.io/scigraph/jsonld/sgcontext.json",
"about": [
{
"id": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/02",
"inDefinedTermSet": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/",
"name": "Physical Sciences",
"type": "DefinedTerm"
},
{
"id": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/0202",
"inDefinedTermSet": "http://purl.org/au-research/vocabulary/anzsrc-for/2008/",
"name": "Atomic, Molecular, Nuclear, Particle and Plasma Physics",
"type": "DefinedTerm"
}
],
"author": [
{
"affiliation": {
"alternateName": "Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China",
"id": "http://www.grid.ac/institutes/grid.464431.0",
"name": [
"Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China"
],
"type": "Organization"
},
"familyName": "Hao",
"givenName": "G. Z.",
"id": "sg:person.0600423202.69",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.0600423202.69"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "General Atomics, PO Box 85608, 92186-5608, San Diego, CA, USA",
"id": "http://www.grid.ac/institutes/grid.192673.8",
"name": [
"General Atomics, PO Box 85608, 92186-5608, San Diego, CA, USA"
],
"type": "Organization"
},
"familyName": "Liu",
"givenName": "Y. Q.",
"id": "sg:person.015603744336.08",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.015603744336.08"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China",
"id": "http://www.grid.ac/institutes/grid.464431.0",
"name": [
"Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China"
],
"type": "Organization"
},
"familyName": "Wang",
"givenName": "A. K.",
"id": "sg:person.016453726302.52",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.016453726302.52"
],
"type": "Person"
},
{
"affiliation": {
"alternateName": "Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China",
"id": "http://www.grid.ac/institutes/grid.464431.0",
"name": [
"Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China"
],
"type": "Organization"
},
"familyName": "Qiu",
"givenName": "X. M.",
"id": "sg:person.011202600551.35",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.011202600551.35"
],
"type": "Person"
}
],
"datePublished": "2021-04-10",
"datePublishedReg": "2021-04-10",
"description": "Investigated are the effects of energetic particles (EPs), arising from off-axis neutral beam injection, on the resistive wall mode (RWM) instability in tokamaks. The analytic results for a cylindrical plasma show that EPs contribute the strongest kinetic damping to the RWM, as the deposition radius approaches the peak location of the mode eigenfunction. Toroidal computations are also carried\n out utilizing the MARS-K code, which includes EPs with anisotropic equilibrium distribution in the particle pitch angle space. These self-consistent numerical results confirm the analytic finding, that the RWM growth rate decreases as the peak of the EPs\u2019 radial density profile approaches the maximum of the mode displacement. This study thus demonstrates the possibility of the RWM stabilization by the off-axis neutral beam injection in tokamak experiments.",
"genre": "article",
"id": "sg:pub.10.1007/s10894-021-00300-w",
"inLanguage": "en",
"isAccessibleForFree": false,
"isFundedItemOf": [
{
"id": "sg:grant.8133553",
"type": "MonetaryGrant"
},
{
"id": "sg:grant.4320080",
"type": "MonetaryGrant"
}
],
"isPartOf": [
{
"id": "sg:journal.1136717",
"issn": [
"0164-0313",
"1572-9591"
],
"name": "Journal of Fusion Energy",
"publisher": "Springer Nature",
"type": "Periodical"
},
{
"issueNumber": "1",
"type": "PublicationIssue"
},
{
"type": "PublicationVolume",
"volumeNumber": "40"
}
],
"keywords": [
"neutral beam injection",
"off-axis neutral beam injection",
"beam injection",
"wall mode instability",
"axis neutral beam injection",
"MARS-K code",
"resistive wall mode stability",
"RWM stabilization",
"resistive wall mode (RWM) instability",
"kinetic damping",
"toroidal computations",
"self-consistent numerical results",
"tokamak experiments",
"energetic particles",
"pitch angle space",
"growth rate decreases",
"numerical results",
"mode instability",
"rate decreases",
"mode stability",
"plasma show",
"mode displacements",
"mode eigenfunctions",
"peak location",
"density profiles",
"damping",
"tokamak",
"displacement",
"particles",
"radial density profile",
"stability",
"analytic results",
"instability",
"radius",
"results",
"angle space",
"RWM",
"influence",
"equilibrium distribution",
"experiments",
"computation",
"distribution",
"peak",
"stabilization",
"code",
"maximum",
"injection",
"location",
"show",
"profile",
"effect",
"possibility",
"decrease",
"space",
"eigenfunctions",
"study",
"analytic findings",
"findings"
],
"name": "Influence of Off-Axis Neutral Beam Injection on Resistive Wall Mode Stability",
"pagination": "7",
"productId": [
{
"name": "dimensions_id",
"type": "PropertyValue",
"value": [
"pub.1137099704"
]
},
{
"name": "doi",
"type": "PropertyValue",
"value": [
"10.1007/s10894-021-00300-w"
]
}
],
"sameAs": [
"https://doi.org/10.1007/s10894-021-00300-w",
"https://app.dimensions.ai/details/publication/pub.1137099704"
],
"sdDataset": "articles",
"sdDatePublished": "2022-05-20T07:39",
"sdLicense": "https://scigraph.springernature.com/explorer/license/",
"sdPublisher": {
"name": "Springer Nature - SN SciGraph project",
"type": "Organization"
},
"sdSource": "s3://com-springernature-scigraph/baseset/20220519/entities/gbq_results/article/article_894.jsonl",
"type": "ScholarlyArticle",
"url": "https://doi.org/10.1007/s10894-021-00300-w"
}
]
Download the RDF metadata as: json-ld nt turtle xml License info
JSON-LD is a popular format for linked data which is fully compatible with JSON.
curl -H 'Accept: application/ld+json' 'https://scigraph.springernature.com/pub.10.1007/s10894-021-00300-w'
N-Triples is a line-based linked data format ideal for batch operations.
curl -H 'Accept: application/n-triples' 'https://scigraph.springernature.com/pub.10.1007/s10894-021-00300-w'
Turtle is a human-readable linked data format.
curl -H 'Accept: text/turtle' 'https://scigraph.springernature.com/pub.10.1007/s10894-021-00300-w'
RDF/XML is a standard XML format for linked data.
curl -H 'Accept: application/rdf+xml' 'https://scigraph.springernature.com/pub.10.1007/s10894-021-00300-w'
This table displays all metadata directly associated to this object as RDF triples.
144 TRIPLES
21 PREDICATES
83 URIs
75 LITERALS
6 BLANK NODES
Subject | Predicate | Object | |
---|---|---|---|
1 | sg:pub.10.1007/s10894-021-00300-w | schema:about | anzsrc-for:02 |
2 | ″ | ″ | anzsrc-for:0202 |
3 | ″ | schema:author | N1569d5c52b474c9a8223779b0fbf27a2 |
4 | ″ | schema:datePublished | 2021-04-10 |
5 | ″ | schema:datePublishedReg | 2021-04-10 |
6 | ″ | schema:description | Investigated are the effects of energetic particles (EPs), arising from off-axis neutral beam injection, on the resistive wall mode (RWM) instability in tokamaks. The analytic results for a cylindrical plasma show that EPs contribute the strongest kinetic damping to the RWM, as the deposition radius approaches the peak location of the mode eigenfunction. Toroidal computations are also carried out utilizing the MARS-K code, which includes EPs with anisotropic equilibrium distribution in the particle pitch angle space. These self-consistent numerical results confirm the analytic finding, that the RWM growth rate decreases as the peak of the EPs’ radial density profile approaches the maximum of the mode displacement. This study thus demonstrates the possibility of the RWM stabilization by the off-axis neutral beam injection in tokamak experiments. |
7 | ″ | schema:genre | article |
8 | ″ | schema:inLanguage | en |
9 | ″ | schema:isAccessibleForFree | false |
10 | ″ | schema:isPartOf | Nbefaf9fb4c9743dd80fef0ee3196e89e |
11 | ″ | ″ | Nd32561802a4640c1b7b3fba3f31591a6 |
12 | ″ | ″ | sg:journal.1136717 |
13 | ″ | schema:keywords | MARS-K code |
14 | ″ | ″ | RWM |
15 | ″ | ″ | RWM stabilization |
16 | ″ | ″ | analytic findings |
17 | ″ | ″ | analytic results |
18 | ″ | ″ | angle space |
19 | ″ | ″ | axis neutral beam injection |
20 | ″ | ″ | beam injection |
21 | ″ | ″ | code |
22 | ″ | ″ | computation |
23 | ″ | ″ | damping |
24 | ″ | ″ | decrease |
25 | ″ | ″ | density profiles |
26 | ″ | ″ | displacement |
27 | ″ | ″ | distribution |
28 | ″ | ″ | effect |
29 | ″ | ″ | eigenfunctions |
30 | ″ | ″ | energetic particles |
31 | ″ | ″ | equilibrium distribution |
32 | ″ | ″ | experiments |
33 | ″ | ″ | findings |
34 | ″ | ″ | growth rate decreases |
35 | ″ | ″ | influence |
36 | ″ | ″ | injection |
37 | ″ | ″ | instability |
38 | ″ | ″ | kinetic damping |
39 | ″ | ″ | location |
40 | ″ | ″ | maximum |
41 | ″ | ″ | mode displacements |
42 | ″ | ″ | mode eigenfunctions |
43 | ″ | ″ | mode instability |
44 | ″ | ″ | mode stability |
45 | ″ | ″ | neutral beam injection |
46 | ″ | ″ | numerical results |
47 | ″ | ″ | off-axis neutral beam injection |
48 | ″ | ″ | particles |
49 | ″ | ″ | peak |
50 | ″ | ″ | peak location |
51 | ″ | ″ | pitch angle space |
52 | ″ | ″ | plasma show |
53 | ″ | ″ | possibility |
54 | ″ | ″ | profile |
55 | ″ | ″ | radial density profile |
56 | ″ | ″ | radius |
57 | ″ | ″ | rate decreases |
58 | ″ | ″ | resistive wall mode (RWM) instability |
59 | ″ | ″ | resistive wall mode stability |
60 | ″ | ″ | results |
61 | ″ | ″ | self-consistent numerical results |
62 | ″ | ″ | show |
63 | ″ | ″ | space |
64 | ″ | ″ | stability |
65 | ″ | ″ | stabilization |
66 | ″ | ″ | study |
67 | ″ | ″ | tokamak |
68 | ″ | ″ | tokamak experiments |
69 | ″ | ″ | toroidal computations |
70 | ″ | ″ | wall mode instability |
71 | ″ | schema:name | Influence of Off-Axis Neutral Beam Injection on Resistive Wall Mode Stability |
72 | ″ | schema:pagination | 7 |
73 | ″ | schema:productId | N31cecf4012574ad7a1b13960de9e74bd |
74 | ″ | ″ | Ndb8e0b1d9ed34f48a21c2e5a5894038b |
75 | ″ | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1137099704 |
76 | ″ | ″ | https://doi.org/10.1007/s10894-021-00300-w |
77 | ″ | schema:sdDatePublished | 2022-05-20T07:39 |
78 | ″ | schema:sdLicense | https://scigraph.springernature.com/explorer/license/ |
79 | ″ | schema:sdPublisher | Nc64cbbdbeef64ecda6fdb1b14108a0c8 |
80 | ″ | schema:url | https://doi.org/10.1007/s10894-021-00300-w |
81 | ″ | sgo:license | sg:explorer/license/ |
82 | ″ | sgo:sdDataset | articles |
83 | ″ | rdf:type | schema:ScholarlyArticle |
84 | N1569d5c52b474c9a8223779b0fbf27a2 | rdf:first | sg:person.0600423202.69 |
85 | ″ | rdf:rest | Ncdd49d2e339a4e448eb11a62acb062a0 |
86 | N31cecf4012574ad7a1b13960de9e74bd | schema:name | doi |
87 | ″ | schema:value | 10.1007/s10894-021-00300-w |
88 | ″ | rdf:type | schema:PropertyValue |
89 | N76c89b87cb164cb294eeb0a728b1523d | rdf:first | sg:person.011202600551.35 |
90 | ″ | rdf:rest | rdf:nil |
91 | Naa3ca7a7bf514d0281ac7c223b0996a1 | rdf:first | sg:person.016453726302.52 |
92 | ″ | rdf:rest | N76c89b87cb164cb294eeb0a728b1523d |
93 | Nbefaf9fb4c9743dd80fef0ee3196e89e | schema:volumeNumber | 40 |
94 | ″ | rdf:type | schema:PublicationVolume |
95 | Nc64cbbdbeef64ecda6fdb1b14108a0c8 | schema:name | Springer Nature - SN SciGraph project |
96 | ″ | rdf:type | schema:Organization |
97 | Ncdd49d2e339a4e448eb11a62acb062a0 | rdf:first | sg:person.015603744336.08 |
98 | ″ | rdf:rest | Naa3ca7a7bf514d0281ac7c223b0996a1 |
99 | Nd32561802a4640c1b7b3fba3f31591a6 | schema:issueNumber | 1 |
100 | ″ | rdf:type | schema:PublicationIssue |
101 | Ndb8e0b1d9ed34f48a21c2e5a5894038b | schema:name | dimensions_id |
102 | ″ | schema:value | pub.1137099704 |
103 | ″ | rdf:type | schema:PropertyValue |
104 | anzsrc-for:02 | schema:inDefinedTermSet | anzsrc-for: |
105 | ″ | schema:name | Physical Sciences |
106 | ″ | rdf:type | schema:DefinedTerm |
107 | anzsrc-for:0202 | schema:inDefinedTermSet | anzsrc-for: |
108 | ″ | schema:name | Atomic, Molecular, Nuclear, Particle and Plasma Physics |
109 | ″ | rdf:type | schema:DefinedTerm |
110 | sg:grant.4320080 | http://pending.schema.org/fundedItem | sg:pub.10.1007/s10894-021-00300-w |
111 | ″ | rdf:type | schema:MonetaryGrant |
112 | sg:grant.8133553 | http://pending.schema.org/fundedItem | sg:pub.10.1007/s10894-021-00300-w |
113 | ″ | rdf:type | schema:MonetaryGrant |
114 | sg:journal.1136717 | schema:issn | 0164-0313 |
115 | ″ | ″ | 1572-9591 |
116 | ″ | schema:name | Journal of Fusion Energy |
117 | ″ | schema:publisher | Springer Nature |
118 | ″ | rdf:type | schema:Periodical |
119 | sg:person.011202600551.35 | schema:affiliation | grid-institutes:grid.464431.0 |
120 | ″ | schema:familyName | Qiu |
121 | ″ | schema:givenName | X. M. |
122 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.011202600551.35 |
123 | ″ | rdf:type | schema:Person |
124 | sg:person.015603744336.08 | schema:affiliation | grid-institutes:grid.192673.8 |
125 | ″ | schema:familyName | Liu |
126 | ″ | schema:givenName | Y. Q. |
127 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.015603744336.08 |
128 | ″ | rdf:type | schema:Person |
129 | sg:person.016453726302.52 | schema:affiliation | grid-institutes:grid.464431.0 |
130 | ″ | schema:familyName | Wang |
131 | ″ | schema:givenName | A. K. |
132 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.016453726302.52 |
133 | ″ | rdf:type | schema:Person |
134 | sg:person.0600423202.69 | schema:affiliation | grid-institutes:grid.464431.0 |
135 | ″ | schema:familyName | Hao |
136 | ″ | schema:givenName | G. Z. |
137 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.0600423202.69 |
138 | ″ | rdf:type | schema:Person |
139 | grid-institutes:grid.192673.8 | schema:alternateName | General Atomics, PO Box 85608, 92186-5608, San Diego, CA, USA |
140 | ″ | schema:name | General Atomics, PO Box 85608, 92186-5608, San Diego, CA, USA |
141 | ″ | rdf:type | schema:Organization |
142 | grid-institutes:grid.464431.0 | schema:alternateName | Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China |
143 | ″ | schema:name | Southwestern Institute of Physics, Post Office Box 432, 610041, Chengdu, China |
144 | ″ | rdf:type | schema:Organization |