Ontology type: schema:ScholarlyArticle
1988-12
AUTHORS ABSTRACTEffects of Feynman scaling violation in yields of hadron secondaries inpA and πA collisions that arise when initial energy is increased are considered. There result from the growth of hadron-nucleon cross sections and an expected increase of the average transverse momenta of secondaries. The model of quark-gluon strings is used to calculate the inclusive spectra of secondaries. Interactions with a fixed number of nucleons are calculated, taking account of the growth of the slope parameter in elastichN scattering. Violation of Feynman scaling at superhigh energies turns out to be stronger than the additive quark model predicts it to be. More... »
PAGES569-577
http://scigraph.springernature.com/pub.10.1007/bf01624362
DOIhttp://dx.doi.org/10.1007/bf01624362
DIMENSIONShttps://app.dimensions.ai/details/publication/pub.1046512146
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": "Leningrad Nuclear Physics Institute, Gatchina, SU-188350, Leningrad, USSR",
"id": "http://www.grid.ac/institutes/grid.430219.d",
"name": [
"Leningrad Nuclear Physics Institute, Gatchina, SU-188350, Leningrad, USSR"
],
"type": "Organization"
},
"familyName": "Shabelski",
"givenName": "Yu. M.",
"id": "sg:person.010217343633.65",
"sameAs": [
"https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.010217343633.65"
],
"type": "Person"
}
],
"citation": [
{
"id": "sg:pub.10.1007/bf01642485",
"sameAs": [
"https://app.dimensions.ai/details/publication/pub.1025559356",
"https://doi.org/10.1007/bf01642485"
],
"type": "CreativeWork"
},
{
"id": "sg:pub.10.1007/bf01407827",
"sameAs": [
"https://app.dimensions.ai/details/publication/pub.1051249955",
"https://doi.org/10.1007/bf01407827"
],
"type": "CreativeWork"
},
{
"id": "sg:pub.10.1007/bf01642484",
"sameAs": [
"https://app.dimensions.ai/details/publication/pub.1046695161",
"https://doi.org/10.1007/bf01642484"
],
"type": "CreativeWork"
}
],
"datePublished": "1988-12",
"datePublishedReg": "1988-12-01",
"description": "Effects of Feynman scaling violation in yields of hadron secondaries inpA and \u03c0A collisions that arise when initial energy is increased are considered. There result from the growth of hadron-nucleon cross sections and an expected increase of the average transverse momenta of secondaries. The model of quark-gluon strings is used to calculate the inclusive spectra of secondaries. Interactions with a fixed number of nucleons are calculated, taking account of the growth of the slope parameter in elastichN scattering. Violation of Feynman scaling at superhigh energies turns out to be stronger than the additive quark model predicts it to be.",
"genre": "article",
"id": "sg:pub.10.1007/bf01624362",
"inLanguage": "en",
"isAccessibleForFree": false,
"isPartOf": [
{
"id": "sg:journal.1285003",
"issn": [
"0170-9739",
"1431-5858"
],
"name": "Zeitschrift f\u00fcr Physik C Particles and Fields",
"publisher": "Springer Nature",
"type": "Periodical"
},
{
"issueNumber": "4",
"type": "PublicationIssue"
},
{
"type": "PublicationVolume",
"volumeNumber": "38"
}
],
"keywords": [
"violation of Feynman",
"superhigh energies",
"inclusive spectra",
"yields of hadrons",
"quark-gluon strings",
"number of nucleons",
"average transverse momentum",
"additive quark model",
"transverse momentum",
"nuclear targets",
"initial energy",
"cross sections",
"quark model",
"Feynman",
"energy",
"slope parameter",
"spectra",
"hadrons",
"nucleon",
"scattering",
"collisions",
"violation",
"momentum",
"Secondary",
"sections",
"interaction",
"strings",
"parameters",
"model",
"account",
"yield",
"INPA",
"target",
"effect",
"growth",
"increase",
"number"
],
"name": "Inclusive spectra of secondaries produced on nuclear targets at superhigh energies and with violation of Feynman scaling",
"pagination": "569-577",
"productId": [
{
"name": "dimensions_id",
"type": "PropertyValue",
"value": [
"pub.1046512146"
]
},
{
"name": "doi",
"type": "PropertyValue",
"value": [
"10.1007/bf01624362"
]
}
],
"sameAs": [
"https://doi.org/10.1007/bf01624362",
"https://app.dimensions.ai/details/publication/pub.1046512146"
],
"sdDataset": "articles",
"sdDatePublished": "2022-05-10T09:43",
"sdLicense": "https://scigraph.springernature.com/explorer/license/",
"sdPublisher": {
"name": "Springer Nature - SN SciGraph project",
"type": "Organization"
},
"sdSource": "s3://com-springernature-scigraph/baseset/20220509/entities/gbq_results/article/article_187.jsonl",
"type": "ScholarlyArticle",
"url": "https://doi.org/10.1007/bf01624362"
}
]
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/bf01624362'
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/bf01624362'
Turtle is a human-readable linked data format.
curl -H 'Accept: text/turtle' 'https://scigraph.springernature.com/pub.10.1007/bf01624362'
RDF/XML is a standard XML format for linked data.
curl -H 'Accept: application/rdf+xml' 'https://scigraph.springernature.com/pub.10.1007/bf01624362'
This table displays all metadata directly associated to this object as RDF triples.
107 TRIPLES
22 PREDICATES
66 URIs
55 LITERALS
6 BLANK NODES
Subject | Predicate | Object | |
---|---|---|---|
1 | sg:pub.10.1007/bf01624362 | schema:about | anzsrc-for:02 |
2 | ″ | ″ | anzsrc-for:0202 |
3 | ″ | schema:author | N856f5073fe1e4d4fadb1a5d36a779ba9 |
4 | ″ | schema:citation | sg:pub.10.1007/bf01407827 |
5 | ″ | ″ | sg:pub.10.1007/bf01642484 |
6 | ″ | ″ | sg:pub.10.1007/bf01642485 |
7 | ″ | schema:datePublished | 1988-12 |
8 | ″ | schema:datePublishedReg | 1988-12-01 |
9 | ″ | schema:description | Effects of Feynman scaling violation in yields of hadron secondaries inpA and πA collisions that arise when initial energy is increased are considered. There result from the growth of hadron-nucleon cross sections and an expected increase of the average transverse momenta of secondaries. The model of quark-gluon strings is used to calculate the inclusive spectra of secondaries. Interactions with a fixed number of nucleons are calculated, taking account of the growth of the slope parameter in elastichN scattering. Violation of Feynman scaling at superhigh energies turns out to be stronger than the additive quark model predicts it to be. |
10 | ″ | schema:genre | article |
11 | ″ | schema:inLanguage | en |
12 | ″ | schema:isAccessibleForFree | false |
13 | ″ | schema:isPartOf | N628833a44aae4c4b969023987cf7634e |
14 | ″ | ″ | Nc61ca10284394522ab87eb2f9c99ab13 |
15 | ″ | ″ | sg:journal.1285003 |
16 | ″ | schema:keywords | Feynman |
17 | ″ | ″ | INPA |
18 | ″ | ″ | Secondary |
19 | ″ | ″ | account |
20 | ″ | ″ | additive quark model |
21 | ″ | ″ | average transverse momentum |
22 | ″ | ″ | collisions |
23 | ″ | ″ | cross sections |
24 | ″ | ″ | effect |
25 | ″ | ″ | energy |
26 | ″ | ″ | growth |
27 | ″ | ″ | hadrons |
28 | ″ | ″ | inclusive spectra |
29 | ″ | ″ | increase |
30 | ″ | ″ | initial energy |
31 | ″ | ″ | interaction |
32 | ″ | ″ | model |
33 | ″ | ″ | momentum |
34 | ″ | ″ | nuclear targets |
35 | ″ | ″ | nucleon |
36 | ″ | ″ | number |
37 | ″ | ″ | number of nucleons |
38 | ″ | ″ | parameters |
39 | ″ | ″ | quark model |
40 | ″ | ″ | quark-gluon strings |
41 | ″ | ″ | scattering |
42 | ″ | ″ | sections |
43 | ″ | ″ | slope parameter |
44 | ″ | ″ | spectra |
45 | ″ | ″ | strings |
46 | ″ | ″ | superhigh energies |
47 | ″ | ″ | target |
48 | ″ | ″ | transverse momentum |
49 | ″ | ″ | violation |
50 | ″ | ″ | violation of Feynman |
51 | ″ | ″ | yield |
52 | ″ | ″ | yields of hadrons |
53 | ″ | schema:name | Inclusive spectra of secondaries produced on nuclear targets at superhigh energies and with violation of Feynman scaling |
54 | ″ | schema:pagination | 569-577 |
55 | ″ | schema:productId | N53d90732a85e40ad88f100b9418ef94d |
56 | ″ | ″ | N5e61dfa3831d4d959d4c6fe0cc23cd0e |
57 | ″ | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1046512146 |
58 | ″ | ″ | https://doi.org/10.1007/bf01624362 |
59 | ″ | schema:sdDatePublished | 2022-05-10T09:43 |
60 | ″ | schema:sdLicense | https://scigraph.springernature.com/explorer/license/ |
61 | ″ | schema:sdPublisher | N8ff5a4861a79421987d29ace8ce23472 |
62 | ″ | schema:url | https://doi.org/10.1007/bf01624362 |
63 | ″ | sgo:license | sg:explorer/license/ |
64 | ″ | sgo:sdDataset | articles |
65 | ″ | rdf:type | schema:ScholarlyArticle |
66 | N53d90732a85e40ad88f100b9418ef94d | schema:name | doi |
67 | ″ | schema:value | 10.1007/bf01624362 |
68 | ″ | rdf:type | schema:PropertyValue |
69 | N5e61dfa3831d4d959d4c6fe0cc23cd0e | schema:name | dimensions_id |
70 | ″ | schema:value | pub.1046512146 |
71 | ″ | rdf:type | schema:PropertyValue |
72 | N628833a44aae4c4b969023987cf7634e | schema:volumeNumber | 38 |
73 | ″ | rdf:type | schema:PublicationVolume |
74 | N856f5073fe1e4d4fadb1a5d36a779ba9 | rdf:first | sg:person.010217343633.65 |
75 | ″ | rdf:rest | rdf:nil |
76 | N8ff5a4861a79421987d29ace8ce23472 | schema:name | Springer Nature - SN SciGraph project |
77 | ″ | rdf:type | schema:Organization |
78 | Nc61ca10284394522ab87eb2f9c99ab13 | schema:issueNumber | 4 |
79 | ″ | rdf:type | schema:PublicationIssue |
80 | anzsrc-for:02 | schema:inDefinedTermSet | anzsrc-for: |
81 | ″ | schema:name | Physical Sciences |
82 | ″ | rdf:type | schema:DefinedTerm |
83 | anzsrc-for:0202 | schema:inDefinedTermSet | anzsrc-for: |
84 | ″ | schema:name | Atomic, Molecular, Nuclear, Particle and Plasma Physics |
85 | ″ | rdf:type | schema:DefinedTerm |
86 | sg:journal.1285003 | schema:issn | 0170-9739 |
87 | ″ | ″ | 1431-5858 |
88 | ″ | schema:name | Zeitschrift für Physik C Particles and Fields |
89 | ″ | schema:publisher | Springer Nature |
90 | ″ | rdf:type | schema:Periodical |
91 | sg:person.010217343633.65 | schema:affiliation | grid-institutes:grid.430219.d |
92 | ″ | schema:familyName | Shabelski |
93 | ″ | schema:givenName | Yu. M. |
94 | ″ | schema:sameAs | https://app.dimensions.ai/discover/publication?and_facet_researcher=ur.010217343633.65 |
95 | ″ | rdf:type | schema:Person |
96 | sg:pub.10.1007/bf01407827 | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1051249955 |
97 | ″ | ″ | https://doi.org/10.1007/bf01407827 |
98 | ″ | rdf:type | schema:CreativeWork |
99 | sg:pub.10.1007/bf01642484 | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1046695161 |
100 | ″ | ″ | https://doi.org/10.1007/bf01642484 |
101 | ″ | rdf:type | schema:CreativeWork |
102 | sg:pub.10.1007/bf01642485 | schema:sameAs | https://app.dimensions.ai/details/publication/pub.1025559356 |
103 | ″ | ″ | https://doi.org/10.1007/bf01642485 |
104 | ″ | rdf:type | schema:CreativeWork |
105 | grid-institutes:grid.430219.d | schema:alternateName | Leningrad Nuclear Physics Institute, Gatchina, SU-188350, Leningrad, USSR |
106 | ″ | schema:name | Leningrad Nuclear Physics Institute, Gatchina, SU-188350, Leningrad, USSR |
107 | ″ | rdf:type | schema:Organization |