The post-Newtonian motion around an oblate spheroid: the mixed orbital effects due to the Newtonian oblateness and the post-Newtonian mass monopole accelerations

When a test particle moves about an oblate spheroid, it is acted upon, among other things, by two standard perturbing accelerations. One, of Newtonian origin, is due to the quadrupole mass moment J 2 of the orbited body. The other one, of order O 1 / c 2 , is caused by the static, post-Newtonian fie...

Celý popis

Uloženo v:
Podrobná bibliografie
Vydáno v:General relativity and gravitation Ročník 55; číslo 12; s. 136
Hlavní autor: Iorio, Lorenzo
Médium: Journal Article
Jazyk:angličtina
Vydáno: New York Springer US 01.12.2023
Springer Nature B.V
Témata:
ISSN:0001-7701, 1572-9532
On-line přístup:Získat plný text
Tagy: Přidat tag
Žádné tagy, Buďte první, kdo vytvoří štítek k tomuto záznamu!
Abstract When a test particle moves about an oblate spheroid, it is acted upon, among other things, by two standard perturbing accelerations. One, of Newtonian origin, is due to the quadrupole mass moment J 2 of the orbited body. The other one, of order O 1 / c 2 , is caused by the static, post-Newtonian field arising solely from the mass of the central object. Both of them concur to induce indirect, mixed orbital effects of order O J 2 / c 2 . They are of the same order of magnitude of the direct ones induced by the post-Newtonian acceleration arising in presence of an oblate source, not treated here. We calculate these less known features of motion in their full generality in terms of the osculating Keplerian orbital elements. Subtleties pertaining the correct calculation of their mixed net precessions per orbit to the full order of O J 2 / c 2 are elucidated. The obtained results hold for arbitrary orbital geometries and for any orientation of the body’s spin axis k ^ in space. The method presented is completely general, and can be extended to any pair of post-Keplerian accelerations entering the equations of motion of the satellite, irrespectively of their physical nature.
AbstractList When a test particle moves about an oblate spheroid, it is acted upon, among other things, by two standard perturbing accelerations. One, of Newtonian origin, is due to the quadrupole mass moment J 2 of the orbited body. The other one, of order O 1 / c 2 , is caused by the static, post-Newtonian field arising solely from the mass of the central object. Both of them concur to induce indirect, mixed orbital effects of order O J 2 / c 2 . They are of the same order of magnitude of the direct ones induced by the post-Newtonian acceleration arising in presence of an oblate source, not treated here. We calculate these less known features of motion in their full generality in terms of the osculating Keplerian orbital elements. Subtleties pertaining the correct calculation of their mixed net precessions per orbit to the full order of O J 2 / c 2 are elucidated. The obtained results hold for arbitrary orbital geometries and for any orientation of the body’s spin axis k ^ in space. The method presented is completely general, and can be extended to any pair of post-Keplerian accelerations entering the equations of motion of the satellite, irrespectively of their physical nature.
When a test particle moves about an oblate spheroid, it is acted upon, among other things, by two standard perturbing accelerations. One, of Newtonian origin, is due to the quadrupole mass moment J2 of the orbited body. The other one, of order O1/c2, is caused by the static, post-Newtonian field arising solely from the mass of the central object. Both of them concur to induce indirect, mixed orbital effects of order OJ2/c2. They are of the same order of magnitude of the direct ones induced by the post-Newtonian acceleration arising in presence of an oblate source, not treated here. We calculate these less known features of motion in their full generality in terms of the osculating Keplerian orbital elements. Subtleties pertaining the correct calculation of their mixed net precessions per orbit to the full order of OJ2/c2 are elucidated. The obtained results hold for arbitrary orbital geometries and for any orientation of the body’s spin axis k^ in space. The method presented is completely general, and can be extended to any pair of post-Keplerian accelerations entering the equations of motion of the satellite, irrespectively of their physical nature.
ArticleNumber 136
Author Iorio, Lorenzo
Author_xml – sequence: 1
  givenname: Lorenzo
  orcidid: 0000-0003-4949-2694
  surname: Iorio
  fullname: Iorio, Lorenzo
  email: lorenzo.iorio@libero.it
  organization: Ministero dell’ Istruzione e del Merito
BookMark eNp9UctOAyEUJUYTa_UHXJG4RmGYKeDONL6SRjd1TShzx04zhRFo1M_xT6UdkyYuuiJwz-tyztCx8w4QumT0mlEqbiKjgpWEFpxQzmRJxBEasUoURFW8OEYjSikjQlB2is5iXOWrEhMxQj_zJeDex0Re4DN51xqH1z613mET_MbVOD_4RWcS4NgvIfi2vsUpk9btF9TYh0WbTIehacCmiOsN4OR3gL3gwHcQY1ard8P_libP1t753neAjbXQQTDbGPEcnTSmi3Dxd47R28P9fPpEZq-Pz9O7GbGcqUSMpaVUjarMQjFlBXBr6spwC4ZLUarayoUUkiqQwFQzKYXltqxFQZtG5i_kY3Q16PbBf2wgJr3ym-CypeZFVU5YWbEio-SAssHHGKDRNu-_DZqCaTvNqN4WoodCdC5E7wrRW4PiH7UP7dqE78MkPpBiBrt3CPtUB1i_vXSjgw
CitedBy_id crossref_primary_10_3847_1538_3881_ad1833
crossref_primary_10_1140_epjc_s10052_024_13298_0
Cites_doi 10.1007/BF01232949
10.1140/epjc/s10052-019-7337-8
10.1007/s11214-017-0429-6
10.1142/S0218271815500674
10.1007/978-3-030-19673-8
10.1086/174201
10.1007/b139118
10.1007/978-94-010-0233-2
10.1007/BF00051205
10.1002/9783527634569
10.1016/j.asr.2021.09.009
10.3390/universe2040023
10.1007/BF00052615
10.1007/s00190-019-01228-y
10.1103/PhysRevD.89.044043
10.1016/j.nuclphysbps.2013.09.005
10.48550/arXiv.2310.02834
10.3847/1538-3881/ab19bf
10.1098/rspa.1958.0169
10.1017/CBO9781139507486
10.1038/320039a0
10.1093/mnras/stw1155
10.2478/s11534-013-0189-1
10.1134/S1063773718090050
10.1007/978-3-642-73406-9
ContentType Journal Article
Copyright The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2023. Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.
The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2023.
Copyright_xml – notice: The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2023. Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law.
– notice: The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2023.
DBID AAYXX
CITATION
7XB
8FE
8FG
AEUYN
AFKRA
ARAPS
AZQEC
BENPR
BGLVJ
BHPHI
BKSAR
CCPQU
DWQXO
GNUQQ
HCIFZ
M2P
P5Z
P62
PCBAR
PHGZM
PHGZT
PKEHL
PQEST
PQGLB
PQQKQ
PQUKI
PRINS
Q9U
DOI 10.1007/s10714-023-03184-7
DatabaseName CrossRef
ProQuest Central (purchase pre-March 2016)
ProQuest SciTech Collection
ProQuest Technology Collection
ProQuest One Sustainability
ProQuest Central UK/Ireland
Advanced Technologies & Computer Science Collection
ProQuest Central Essentials - QC
ProQuest Central
ProQuest Technology Collection
Natural Science Collection
Earth, Atmospheric & Aquatic Science Collection
ProQuest One
ProQuest Central Korea
ProQuest Central Student
SciTech Premium Collection
Science Database
Advanced Technologies & Aerospace Database
ProQuest Advanced Technologies & Aerospace Collection
Earth, Atmospheric & Aquatic Science Database
ProQuest Central Premium
ProQuest One Academic (New)
ProQuest One Academic Middle East (New)
ProQuest One Academic Eastern Edition (DO NOT USE)
ProQuest One Applied & Life Sciences
ProQuest One Academic (retired)
ProQuest One Academic UKI Edition
ProQuest Central China
ProQuest Central Basic
DatabaseTitle CrossRef
ProQuest Central Student
Technology Collection
ProQuest One Academic Middle East (New)
ProQuest Advanced Technologies & Aerospace Collection
ProQuest Central Essentials
SciTech Premium Collection
ProQuest One Community College
ProQuest Central China
ProQuest Central
Earth, Atmospheric & Aquatic Science Collection
ProQuest One Applied & Life Sciences
ProQuest One Sustainability
Natural Science Collection
ProQuest Central Korea
ProQuest Central (New)
Advanced Technologies & Aerospace Collection
ProQuest Central Basic
ProQuest Science Journals
ProQuest One Academic Eastern Edition
Earth, Atmospheric & Aquatic Science Database
ProQuest Technology Collection
ProQuest SciTech Collection
Advanced Technologies & Aerospace Database
ProQuest One Academic UKI Edition
ProQuest One Academic
ProQuest One Academic (New)
DatabaseTitleList
ProQuest Central Student
Database_xml – sequence: 1
  dbid: BENPR
  name: ProQuest Central
  url: https://www.proquest.com/central
  sourceTypes: Aggregation Database
DeliveryMethod fulltext_linktorsrc
Discipline Physics
EISSN 1572-9532
ExternalDocumentID 10_1007_s10714_023_03184_7
GroupedDBID -54
-5F
-5G
-BR
-EM
-Y2
-~C
-~X
.86
.VR
06D
0R~
0VY
199
1N0
1SB
2.D
203
28-
29H
29~
2J2
2JN
2JY
2KG
2KM
2LR
2P1
2VQ
2~H
30V
4.4
406
408
409
40D
40E
5GY
5QI
5VS
67Z
6NX
78A
8UJ
95-
95.
95~
96X
AAAVM
AABHQ
AACDK
AAHNG
AAIAL
AAJBT
AAJKR
AANZL
AARHV
AARTL
AASML
AATNV
AATVU
AAUYE
AAWCG
AAYIU
AAYJJ
AAYQN
AAYTO
AAYZH
ABAKF
ABBBX
ABBXA
ABDZT
ABECU
ABFTV
ABHQN
ABJNI
ABJOX
ABKCH
ABKTR
ABMNI
ABMQK
ABNWP
ABQBU
ABQSL
ABSXP
ABTAH
ABTEG
ABTHY
ABTKH
ABTMW
ABULA
ABWNU
ABXPI
ACAOD
ACBXY
ACDTI
ACGFS
ACHSB
ACHXU
ACKNC
ACMDZ
ACMLO
ACOKC
ACOMO
ACPIV
ACZOJ
ADHHG
ADHIR
ADIMF
ADINQ
ADKNI
ADKPE
ADRFC
ADTPH
ADURQ
ADYFF
ADZKW
AEBTG
AEFIE
AEFQL
AEGAL
AEGNC
AEJHL
AEJRE
AEKMD
AEMSY
AENEX
AEOHA
AEPYU
AESKC
AETLH
AEVLU
AEXYK
AFBBN
AFEXP
AFFNX
AFGCZ
AFLOW
AFQWF
AFWTZ
AFZKB
AGAYW
AGDGC
AGGDS
AGJBK
AGMZJ
AGQEE
AGQMX
AGRTI
AGWIL
AGWZB
AGYKE
AHAVH
AHBYD
AHKAY
AHSBF
AHYZX
AIAKS
AIGIU
AIIXL
AILAN
AITGF
AJBLW
AJRNO
AJZVZ
ALMA_UNASSIGNED_HOLDINGS
ALWAN
AMKLP
AMXSW
AMYLF
AMYQR
AOCGG
ARMRJ
ASPBG
AVWKF
AXYYD
AYJHY
AZFZN
B-.
BA0
BBWZM
BDATZ
BGNMA
BSONS
CAG
COF
CS3
CSCUP
DDRTE
DL5
DNIVK
DPUIP
DU5
EBLON
EBS
EIOEI
EJD
ESBYG
FEDTE
FERAY
FFXSO
FIGPU
FINBP
FNLPD
FRRFC
FSGXE
FWDCC
GGCAI
GGRSB
GJIRD
GNWQR
GPTSA
GQ6
GQ7
GQ8
GXS
H13
HF~
HG5
HG6
HMJXF
HQYDN
HRMNR
HVGLF
HZ~
I09
IHE
IJ-
IKXTQ
ITM
IWAJR
IXC
IZIGR
IZQ
I~X
I~Z
J-C
J0Z
JBSCW
JCJTX
JZLTJ
KDC
KOV
KOW
LAK
LLZTM
M4Y
MA-
N2Q
NB0
NDZJH
NPVJJ
NQJWS
NU0
O9-
O93
O9G
O9I
O9J
OAM
OVD
P19
P2P
P9T
PF0
PT4
PT5
QOK
QOS
R4E
R89
R9I
RHV
RNI
RNS
ROL
RPX
RSV
RZC
RZE
RZK
S16
S1Z
S26
S27
S28
S3B
SAP
SCLPG
SDH
SDM
SGB
SHX
SISQX
SJYHP
SNE
SNPRN
SNX
SOHCF
SOJ
SPH
SPISZ
SRMVM
SSLCW
STPWE
SZN
T13
T16
TEORI
TN5
TSG
TSK
TSV
TUC
U2A
UG4
UOJIU
UTJUX
UZXMN
VC2
VFIZW
W23
W48
WH7
WK8
YLTOR
Z45
Z7R
Z7X
Z7Z
Z83
Z86
Z88
Z8M
Z8R
Z8T
Z8W
Z92
ZY4
~A9
~EX
AAPKM
AAYXX
ABBRH
ABDBE
ABFSG
ABRTQ
ACSTC
ADHKG
AEUYN
AEZWR
AFDZB
AFFHD
AFHIU
AFKRA
AFOHR
AGQPQ
AHPBZ
AHWEU
AIXLP
AMVHM
ARAPS
ATHPR
AYFIA
AZQEC
BENPR
BGLVJ
BHPHI
BKSAR
CCPQU
CITATION
DWQXO
GNUQQ
HCIFZ
M2P
PCBAR
PHGZM
PHGZT
PQGLB
7XB
8FE
8FG
P62
PKEHL
PQEST
PQQKQ
PQUKI
PRINS
Q9U
ID FETCH-LOGICAL-c319t-ac0489f95ab919c7e3cad5a3cea38749dc8b87809e8e19f647c3c4d720ff80073
IEDL.DBID M2P
ISICitedReferencesCount 2
ISICitedReferencesURI http://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=Summon&SrcAuth=ProQuest&DestLinkType=CitingArticles&DestApp=WOS_CPL&KeyUT=001121601900001&url=https%3A%2F%2Fcvtisr.summon.serialssolutions.com%2F%23%21%2Fsearch%3Fho%3Df%26include.ft.matches%3Dt%26l%3Dnull%26q%3D
ISSN 0001-7701
IngestDate Sat Sep 27 04:31:05 EDT 2025
Tue Nov 18 21:37:32 EST 2025
Sat Nov 29 02:45:52 EST 2025
Fri Feb 21 02:41:05 EST 2025
IsPeerReviewed true
IsScholarly true
Issue 12
Keywords Fundamental problems and general formalism
Classical general relativity
Experimental studies of gravity
Satellite orbits
Experimental tests of gravitational theories
Language English
LinkModel DirectLink
MergedId FETCHMERGED-LOGICAL-c319t-ac0489f95ab919c7e3cad5a3cea38749dc8b87809e8e19f647c3c4d720ff80073
Notes ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 14
ORCID 0000-0003-4949-2694
PQID 3254614512
PQPubID 2043556
ParticipantIDs proquest_journals_3254614512
crossref_citationtrail_10_1007_s10714_023_03184_7
crossref_primary_10_1007_s10714_023_03184_7
springer_journals_10_1007_s10714_023_03184_7
PublicationCentury 2000
PublicationDate 20231200
2023-12-00
20231201
PublicationDateYYYYMMDD 2023-12-01
PublicationDate_xml – month: 12
  year: 2023
  text: 20231200
PublicationDecade 2020
PublicationPlace New York
PublicationPlace_xml – name: New York
PublicationTitle General relativity and gravitation
PublicationTitleAbbrev Gen Relativ Gravit
PublicationYear 2023
Publisher Springer US
Springer Nature B.V
Publisher_xml – name: Springer US
– name: Springer Nature B.V
References RenzettiGHistory of the attempts to measure orbital frame-dragging with artificial satellitesCentr. Eur. J. Phys.20131155315442013CEJPh..11..531R10.2478/s11534-013-0189-1
Bertotti, B., Farinella, P., Vokrouhlický, D.: Physics of the solar system. Kluwer, Dordrecht, Aug 2003. https://doi.org/10.1007/978-94-010-0233-2
PitjevaEVPitjevNPMasses of the main asteroid belt and the kuiper belt from the motions of planets and spacecraftAstron. Lett.2018448–95545662018AstL...44..554P10.1134/S1063773718090050
Capderou, M.: Satellites. Orbits and Missions. Springer-Verlag France, Paris, (2005). https://doi.org/10.1007/b139118
KlionerSAKopeikinSMThe post-keplerian orbital representations of the relativistic two-body problemAstrophys. J.19944279511994ApJ...427..951K10.1086/174201
BrumbergVAEssential Relativistic Celestial Mechanics1991BristolAdam Hilger
EinsteinAErklärung der Perihelbewegung des Merkur aus der allgemeinen RelativitätstheorieSitzber. Preuss. Akad.191547831839
HeimbergerJSoffelMRuderHRelativistic effects in the motion of artificial satellites—The oblateness of the central body IICelest. Mech. Dyn. Astr.19894722052171989CeMDA..47..205H105033910.1007/BF00051205
Iorio, L.: Post-Newtonian orbital effects induced by the mass quadrupole and spin octupole moments of an axisymmetric body. arXiv e-prints, art. arXiv:2310.02834, (2023). https://doi.org/10.48550/arXiv.2310.02834
IorioLPost-Keplerian corrections to the orbital periods of a two-body system and their measurabilityMon. Not. Roy. Astron. Soc.20164603244524522016MNRAS.460.2445I10.1093/mnras/stw1155
GurfilPEfroimskyMAnalysis of the PPN two-Body Problem using non-osculating orbital elementsAdv. Space Res.20226915385532022AdSpR..69..538G10.1016/j.asr.2021.09.009
Poisson, E., Will, C.M.: Gravity. Cambridge University Press, Cambridge, (2014). https://doi.org/10.1017/CBO9781139507486
WillCMIncorporating post-Newtonian effects in N-body dynamicsPhys. Rev. D20148940440432014PhRvD..89d4043W10.1103/PhysRevD.89.044043
PearlmanMArnoldDDavisMBarlierFBiancaleRVasilievVCiufoliniIPaolozziAPavlisECSośnicaKBloßfeldMLaser geodetic satellites: a high-accuracy scientific toolJ. Geod.20199311218121942019JGeod..93.2181P10.1007/s00190-019-01228-y
Kopeikin, S.M., Efroimsky, M., Kaplan, G.: Relativistic celestial mechanics of the solar System. Wiley-VCH, Weinheim, (2011). https://doi.org/10.1002/9783527634569
Le Verrier, U.: Lettre de M. Le Verrier à M. Faye sur la théorie de Mercure et sur le mouvement du périhélie de cette planète. Cr. Hebd. Acad. Sci., 49:379–383, (1859)
HuangCLiuLAnalytical solutions to the four post-Newtonian effects in a near Earth satellite orbitCelest. Mech. Dyn. Astr.19925332933071992CeMDA..53..293H10.1007/BF00052615
King-HeleDGThe effect of the earth’s oblateness on the orbit of a near satelliteProc. R. Soc. A1958247124849721958RSPSA.247...49K9924210.1098/rspa.1958.0169
SoffelMHWirrerRSchastokJRuderHSchneiderMRelativistic effects in the motion of artificial satellites—The oblateness of the central body iCelest. Mech. Dyn. Astr.1987421–481891987CeMec..42...81S105033410.1007/BF01232949
DebonoISmootGFGeneral relativity and cosmology: unsolved questions and future directionsUniverse20162232016Univ....2...23D10.3390/universe2040023
BoltonSJLunineJStevensonDConnerneyJEPLevinSOwenTCBagenalFGautierDIngersollAPOrtonGSGuillotTHubbardWBloxhamJCoradiniAStephensSKMokashiPThorneRThorpeRThe Juno MissionSpace Sci. Rev.20172131–45372017SSRv..213....5B10.1007/s11214-017-0429-6
IorioLPost-Newtonian direct and mixed orbital effects due to the oblateness of the central bodyInt. J. Mod. Phys. D20152481550067592015IJMPD..2450067I336824910.1142/S0218271815500674
NobiliAMWillCMThe real value of Mercury’s perihelion advanceNature198632039411986Natur.320...39N10.1038/320039a0
IorioLOn the mean anomaly and the mean longitude in tests of post-Newtonian gravityEur. Phys. J. C201979108162019EPJC...79..816I10.1140/epjc/s10052-019-7337-8
IorioLCalculation of the Uncertainties in the Planetary Precessions with the Recent EPM2017 Ephemerides and their Use in Fundamental Physics and BeyondAstron J.201915762202019AJ....157..220I10.3847/1538-3881/ab19bf
CiufoliniIPaolozziAKoenigRPavlisECRiesJMatznerRGurzadyanVPenroseRSindoniGParisCFundamental Physics and General Relativity with the LARES and LAGEOS satellitesNucl. Phys. B Proc. Suppl.20132431801932013NuPhS.243..180C10.1016/j.nuclphysbps.2013.09.005
Soffel, M.H.: Relativity in Astrometry, Celestial Mechanics and Geodesy. Springer, Heidelberg, (1989). https://doi.org/10.1007/978-3-642-73406-9
Soffel, M.H., Han, W.-B.: Applied General Relativity. Astronomy and Astrophysics Library. Springer Nature Switzerland, Cham, (2019). https://doi.org/10.1007/978-3-030-19673-8
I Debono (3184_CR6) 2016; 2
AM Nobili (3184_CR20) 1986; 320
SA Klioner (3184_CR17) 1994; 427
SJ Bolton (3184_CR2) 2017; 213
3184_CR4
L Iorio (3184_CR11) 2015; 24
VA Brumberg (3184_CR3) 1991
DG King-Hele (3184_CR16) 1958; 247
L Iorio (3184_CR14) 2019; 79
L Iorio (3184_CR13) 2019; 157
3184_CR26
3184_CR25
3184_CR23
G Renzetti (3184_CR24) 2013; 11
M Pearlman (3184_CR21) 2019; 93
CM Will (3184_CR28) 2014; 89
L Iorio (3184_CR12) 2016; 460
A Einstein (3184_CR7) 1915; 47
J Heimberger (3184_CR9) 1989; 47
P Gurfil (3184_CR8) 2022; 69
MH Soffel (3184_CR27) 1987; 42
I Ciufolini (3184_CR5) 2013; 243
3184_CR19
3184_CR18
EV Pitjeva (3184_CR22) 2018; 44
3184_CR15
3184_CR1
C Huang (3184_CR10) 1992; 53
References_xml – reference: EinsteinAErklärung der Perihelbewegung des Merkur aus der allgemeinen RelativitätstheorieSitzber. Preuss. Akad.191547831839
– reference: IorioLCalculation of the Uncertainties in the Planetary Precessions with the Recent EPM2017 Ephemerides and their Use in Fundamental Physics and BeyondAstron J.201915762202019AJ....157..220I10.3847/1538-3881/ab19bf
– reference: IorioLOn the mean anomaly and the mean longitude in tests of post-Newtonian gravityEur. Phys. J. C201979108162019EPJC...79..816I10.1140/epjc/s10052-019-7337-8
– reference: IorioLPost-Keplerian corrections to the orbital periods of a two-body system and their measurabilityMon. Not. Roy. Astron. Soc.20164603244524522016MNRAS.460.2445I10.1093/mnras/stw1155
– reference: Bertotti, B., Farinella, P., Vokrouhlický, D.: Physics of the solar system. Kluwer, Dordrecht, Aug 2003. https://doi.org/10.1007/978-94-010-0233-2
– reference: HuangCLiuLAnalytical solutions to the four post-Newtonian effects in a near Earth satellite orbitCelest. Mech. Dyn. Astr.19925332933071992CeMDA..53..293H10.1007/BF00052615
– reference: Iorio, L.: Post-Newtonian orbital effects induced by the mass quadrupole and spin octupole moments of an axisymmetric body. arXiv e-prints, art. arXiv:2310.02834, (2023). https://doi.org/10.48550/arXiv.2310.02834
– reference: KlionerSAKopeikinSMThe post-keplerian orbital representations of the relativistic two-body problemAstrophys. J.19944279511994ApJ...427..951K10.1086/174201
– reference: Kopeikin, S.M., Efroimsky, M., Kaplan, G.: Relativistic celestial mechanics of the solar System. Wiley-VCH, Weinheim, (2011). https://doi.org/10.1002/9783527634569
– reference: CiufoliniIPaolozziAKoenigRPavlisECRiesJMatznerRGurzadyanVPenroseRSindoniGParisCFundamental Physics and General Relativity with the LARES and LAGEOS satellitesNucl. Phys. B Proc. Suppl.20132431801932013NuPhS.243..180C10.1016/j.nuclphysbps.2013.09.005
– reference: IorioLPost-Newtonian direct and mixed orbital effects due to the oblateness of the central bodyInt. J. Mod. Phys. D20152481550067592015IJMPD..2450067I336824910.1142/S0218271815500674
– reference: DebonoISmootGFGeneral relativity and cosmology: unsolved questions and future directionsUniverse20162232016Univ....2...23D10.3390/universe2040023
– reference: SoffelMHWirrerRSchastokJRuderHSchneiderMRelativistic effects in the motion of artificial satellites—The oblateness of the central body iCelest. Mech. Dyn. Astr.1987421–481891987CeMec..42...81S105033410.1007/BF01232949
– reference: King-HeleDGThe effect of the earth’s oblateness on the orbit of a near satelliteProc. R. Soc. A1958247124849721958RSPSA.247...49K9924210.1098/rspa.1958.0169
– reference: PitjevaEVPitjevNPMasses of the main asteroid belt and the kuiper belt from the motions of planets and spacecraftAstron. Lett.2018448–95545662018AstL...44..554P10.1134/S1063773718090050
– reference: Le Verrier, U.: Lettre de M. Le Verrier à M. Faye sur la théorie de Mercure et sur le mouvement du périhélie de cette planète. Cr. Hebd. Acad. Sci., 49:379–383, (1859)
– reference: BrumbergVAEssential Relativistic Celestial Mechanics1991BristolAdam Hilger
– reference: GurfilPEfroimskyMAnalysis of the PPN two-Body Problem using non-osculating orbital elementsAdv. Space Res.20226915385532022AdSpR..69..538G10.1016/j.asr.2021.09.009
– reference: HeimbergerJSoffelMRuderHRelativistic effects in the motion of artificial satellites—The oblateness of the central body IICelest. Mech. Dyn. Astr.19894722052171989CeMDA..47..205H105033910.1007/BF00051205
– reference: PearlmanMArnoldDDavisMBarlierFBiancaleRVasilievVCiufoliniIPaolozziAPavlisECSośnicaKBloßfeldMLaser geodetic satellites: a high-accuracy scientific toolJ. Geod.20199311218121942019JGeod..93.2181P10.1007/s00190-019-01228-y
– reference: Soffel, M.H., Han, W.-B.: Applied General Relativity. Astronomy and Astrophysics Library. Springer Nature Switzerland, Cham, (2019). https://doi.org/10.1007/978-3-030-19673-8
– reference: Poisson, E., Will, C.M.: Gravity. Cambridge University Press, Cambridge, (2014). https://doi.org/10.1017/CBO9781139507486
– reference: NobiliAMWillCMThe real value of Mercury’s perihelion advanceNature198632039411986Natur.320...39N10.1038/320039a0
– reference: BoltonSJLunineJStevensonDConnerneyJEPLevinSOwenTCBagenalFGautierDIngersollAPOrtonGSGuillotTHubbardWBloxhamJCoradiniAStephensSKMokashiPThorneRThorpeRThe Juno MissionSpace Sci. Rev.20172131–45372017SSRv..213....5B10.1007/s11214-017-0429-6
– reference: Soffel, M.H.: Relativity in Astrometry, Celestial Mechanics and Geodesy. Springer, Heidelberg, (1989). https://doi.org/10.1007/978-3-642-73406-9
– reference: RenzettiGHistory of the attempts to measure orbital frame-dragging with artificial satellitesCentr. Eur. J. Phys.20131155315442013CEJPh..11..531R10.2478/s11534-013-0189-1
– reference: Capderou, M.: Satellites. Orbits and Missions. Springer-Verlag France, Paris, (2005). https://doi.org/10.1007/b139118
– reference: WillCMIncorporating post-Newtonian effects in N-body dynamicsPhys. Rev. D20148940440432014PhRvD..89d4043W10.1103/PhysRevD.89.044043
– volume: 42
  start-page: 81
  issue: 1–4
  year: 1987
  ident: 3184_CR27
  publication-title: Celest. Mech. Dyn. Astr.
  doi: 10.1007/BF01232949
– volume: 79
  start-page: 816
  issue: 10
  year: 2019
  ident: 3184_CR14
  publication-title: Eur. Phys. J. C
  doi: 10.1140/epjc/s10052-019-7337-8
– volume: 213
  start-page: 5
  issue: 1–4
  year: 2017
  ident: 3184_CR2
  publication-title: Space Sci. Rev.
  doi: 10.1007/s11214-017-0429-6
– volume: 24
  start-page: 1550067
  issue: 8
  year: 2015
  ident: 3184_CR11
  publication-title: Int. J. Mod. Phys. D
  doi: 10.1142/S0218271815500674
– ident: 3184_CR26
  doi: 10.1007/978-3-030-19673-8
– volume: 427
  start-page: 951
  year: 1994
  ident: 3184_CR17
  publication-title: Astrophys. J.
  doi: 10.1086/174201
– volume: 47
  start-page: 831
  year: 1915
  ident: 3184_CR7
  publication-title: Sitzber. Preuss. Akad.
– ident: 3184_CR4
  doi: 10.1007/b139118
– ident: 3184_CR1
  doi: 10.1007/978-94-010-0233-2
– volume: 47
  start-page: 205
  issue: 2
  year: 1989
  ident: 3184_CR9
  publication-title: Celest. Mech. Dyn. Astr.
  doi: 10.1007/BF00051205
– ident: 3184_CR18
  doi: 10.1002/9783527634569
– volume: 69
  start-page: 538
  issue: 1
  year: 2022
  ident: 3184_CR8
  publication-title: Adv. Space Res.
  doi: 10.1016/j.asr.2021.09.009
– volume: 2
  start-page: 23
  year: 2016
  ident: 3184_CR6
  publication-title: Universe
  doi: 10.3390/universe2040023
– volume: 53
  start-page: 293
  issue: 3
  year: 1992
  ident: 3184_CR10
  publication-title: Celest. Mech. Dyn. Astr.
  doi: 10.1007/BF00052615
– volume-title: Essential Relativistic Celestial Mechanics
  year: 1991
  ident: 3184_CR3
– volume: 93
  start-page: 2181
  issue: 11
  year: 2019
  ident: 3184_CR21
  publication-title: J. Geod.
  doi: 10.1007/s00190-019-01228-y
– volume: 89
  start-page: 044043
  issue: 4
  year: 2014
  ident: 3184_CR28
  publication-title: Phys. Rev. D
  doi: 10.1103/PhysRevD.89.044043
– volume: 243
  start-page: 180
  year: 2013
  ident: 3184_CR5
  publication-title: Nucl. Phys. B Proc. Suppl.
  doi: 10.1016/j.nuclphysbps.2013.09.005
– ident: 3184_CR15
  doi: 10.48550/arXiv.2310.02834
– ident: 3184_CR19
– volume: 157
  start-page: 220
  issue: 6
  year: 2019
  ident: 3184_CR13
  publication-title: Astron J.
  doi: 10.3847/1538-3881/ab19bf
– volume: 247
  start-page: 49
  issue: 1248
  year: 1958
  ident: 3184_CR16
  publication-title: Proc. R. Soc. A
  doi: 10.1098/rspa.1958.0169
– ident: 3184_CR23
  doi: 10.1017/CBO9781139507486
– volume: 320
  start-page: 39
  year: 1986
  ident: 3184_CR20
  publication-title: Nature
  doi: 10.1038/320039a0
– volume: 460
  start-page: 2445
  issue: 3
  year: 2016
  ident: 3184_CR12
  publication-title: Mon. Not. Roy. Astron. Soc.
  doi: 10.1093/mnras/stw1155
– volume: 11
  start-page: 531
  issue: 5
  year: 2013
  ident: 3184_CR24
  publication-title: Centr. Eur. J. Phys.
  doi: 10.2478/s11534-013-0189-1
– volume: 44
  start-page: 554
  issue: 8–9
  year: 2018
  ident: 3184_CR22
  publication-title: Astron. Lett.
  doi: 10.1134/S1063773718090050
– ident: 3184_CR25
  doi: 10.1007/978-3-642-73406-9
SSID ssj0009767
Score 2.379778
Snippet When a test particle moves about an oblate spheroid, it is acted upon, among other things, by two standard perturbing accelerations. One, of Newtonian origin,...
SourceID proquest
crossref
springer
SourceType Aggregation Database
Enrichment Source
Index Database
Publisher
StartPage 136
SubjectTerms Astronomy
Astrophysics and Cosmology
Classical and Quantum Gravitation
Differential Geometry
Equations of motion
Mathematical and Computational Physics
Oblate spheroids
Orbital elements
Physics
Physics and Astronomy
Quadrupoles
Quantum Physics
Relativity Theory
Theoretical
SummonAdditionalLinks – databaseName: SpringerLINK Contemporary 1997-Present
  dbid: RSV
  link: http://cvtisr.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwnV1JS8QwFA6u4MVdHB0lB28aaKfpvMSbiIMHEcGFuZU0CwyM02Faxb_jP_Wli1VRQa9N8lKSl7eQl-8j5CiwMo4dBL56ChMUUClTpq-YjHXkEw7groTMv4LrazEcypv6UVjeVLs3V5Klpf7w2A1CztDHMK-InME8WYw92ozP0W8fWqhd6FdImZgoAwRh_VTmexmf3VEbY365Fi29zWDtf_-5Tlbr6JKeVeqwQebsZJMsl1WeOt8ir6gUdJrlBUPbhkEfqgataHyomnl-JYofsnSM8SfNPd5ANjKnFENE-jh6sYZms9RzjNC6CISaJ0uLrOzQCqzGewuK0kzZ-HVKDNhx3onnZ7BUaY2ur1LEfJvcDy7uzi9ZzdHANB7egimNJkA6GatUhlKDjbQysYq0VZEALo0WqQARSCtsKF2fg440N9ALnBP-mnCHLEyyid0ltKdim0LqMELqcaO5giB2oRPGcp7avuiQsNmqRNcA5p5HY5y00Mt-6RNc-qRc-gQ65Ph9zLSC7_i1d7fRgKQ-ynkSecYAz2fc65CTZsfb5p-l7f2t-z5Z8VT2ValMlywUsyd7QJb0czHKZ4elir8BkIn3YQ
  priority: 102
  providerName: Springer Nature
Title The post-Newtonian motion around an oblate spheroid: the mixed orbital effects due to the Newtonian oblateness and the post-Newtonian mass monopole accelerations
URI https://link.springer.com/article/10.1007/s10714-023-03184-7
https://www.proquest.com/docview/3254614512
Volume 55
WOSCitedRecordID wos001121601900001&url=https%3A%2F%2Fcvtisr.summon.serialssolutions.com%2F%23%21%2Fsearch%3Fho%3Df%26include.ft.matches%3Dt%26l%3Dnull%26q%3D
hasFullText 1
inHoldings 1
isFullTextHit
isPrint
journalDatabaseRights – providerCode: PRVPQU
  databaseName: Advanced Technologies & Aerospace Database
  customDbUrl:
  eissn: 1572-9532
  dateEnd: 20241214
  omitProxy: false
  ssIdentifier: ssj0009767
  issn: 0001-7701
  databaseCode: P5Z
  dateStart: 20230101
  isFulltext: true
  titleUrlDefault: https://search.proquest.com/hightechjournals
  providerName: ProQuest
– providerCode: PRVPQU
  databaseName: Earth, Atmospheric & Aquatic Science Database
  customDbUrl:
  eissn: 1572-9532
  dateEnd: 20241214
  omitProxy: false
  ssIdentifier: ssj0009767
  issn: 0001-7701
  databaseCode: PCBAR
  dateStart: 20230101
  isFulltext: true
  titleUrlDefault: https://search.proquest.com/eaasdb
  providerName: ProQuest
– providerCode: PRVPQU
  databaseName: ProQuest Central
  customDbUrl:
  eissn: 1572-9532
  dateEnd: 20241214
  omitProxy: false
  ssIdentifier: ssj0009767
  issn: 0001-7701
  databaseCode: BENPR
  dateStart: 20230101
  isFulltext: true
  titleUrlDefault: https://www.proquest.com/central
  providerName: ProQuest
– providerCode: PRVPQU
  databaseName: Science Database
  customDbUrl:
  eissn: 1572-9532
  dateEnd: 20241214
  omitProxy: false
  ssIdentifier: ssj0009767
  issn: 0001-7701
  databaseCode: M2P
  dateStart: 20230101
  isFulltext: true
  titleUrlDefault: https://search.proquest.com/sciencejournals
  providerName: ProQuest
– providerCode: PRVAVX
  databaseName: Springer Nature - Connect here FIRST to enable access
  customDbUrl:
  eissn: 1572-9532
  dateEnd: 99991231
  omitProxy: false
  ssIdentifier: ssj0009767
  issn: 0001-7701
  databaseCode: RSV
  dateStart: 19970101
  isFulltext: true
  titleUrlDefault: https://link.springer.com/search?facet-content-type=%22Journal%22
  providerName: Springer Nature
link http://cvtisr.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV1Lb9QwEB5BWyQuQAsVC6XyoTdqNQ9nbXNBbdWKA6yiAlXVS-T4Ia1UNssmRfwd_ikziZeISvTCJQc_I814ZmyPvw_gIPG6KIJMKHsKNyjS1Ny4qeG6sDltOKQIPWT-RzmbqasrXcYDtzamVa5tYm-oXWPpjPwoJ-B2opXN3i-_c2KNotvVSKHxEDYxskkppetTVo6gu3I6YGbillnKJI2PZuLTOZkKjh6Lk1oLLv92TGO0eeeCtPc750__94-fwZMYcbLjQUW24YFf7MCjPvPTts_hFyoKWzZtx9HeYSCI6sIGah9mVsS5xLCgqW8wJmUtYRA0c_eOYdjIvs1_eseaVU28IywmhjB361nX9A3GAYf-ZFVxNNdX3p0Sg3icd0GcDZ4Za9EdDsrZvoCv52dfTj_wyNvALS7ojhuLZkEHXZhap9pKn1vjCpNbb3IlhXZW1UqqRHvlUx2mQtrcCiezJARFV4e7sLFoFv4lsMwUvpZ1wKgpE84KI5MipEE5L0Ttp2oC6VpolY2g5sStcVONcMwk6AoFXfWCruQE3v7psxwgPe5tvbeWbhWXd1uNop3A4Vo_xup_j_bq_tFew2Oisx_SZfZgo1vd-jewZX9083a1D5snZ7PyYr9XcvyWxTWWlacnx1R28fnyN63XBp0
linkProvider ProQuest
linkToHtml http://cvtisr.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMw1V1Lb9QwEB6VFgQX3oiFAj4AF7DIw4ltJA6lULXqsqpQkXpLHduRViqbZZPy-Dn8AX4jM4lDRCV664FrHI8l55tXPJ4P4GnkdZZVMqLqKUxQpCm5cbnhOrMpJRxSVF3L_KmczdTRkT5Yg1_DXRgqqxxsYmeoXW3pH_mrlBq3E61sEioo9_2Pb5ifNW_23uHHfJYkO-8Pt3d5oBDgFrHVcmMRobrSmSl1rK30qTUuM6n1JlVSaGdVqaSKtFc-1lUupE2tcDKJqkrRKRbKfb78womlik5zA2XHJdhQuRaoVxsH22-3Po5tfmXed-nEJF3KKA7XdMJlPRkLjj6SkyIJLv92hWN8e-ZItvN0Ozf-tz26CddDTM22eiW4BWt-cRuudLWttrkDP1EV2LJuWo4WHUNdVAjWkxcxsyJWKYYP6vIEo27WUJeFeu5eMwyM2ef5d-9YvSqJWYWF0hfmTj1r6-6FUWA_n_wGSnPd4NklMU3BdRfESuGZsRYdfq9-zV34dCFbdg_WF_XC3weWmMyXsqwwLkyEs8LIKKviSjkvROlzNYF4AElhQ9t2Yg85KcaG0wSsAoFVdMAq5ARe_Jmz7JuWnPv25oCmIhiwphihNIGXAx7H4X9Le3C-tCdwdffww7SY7s32H8K1hNShKw7ahPV2deofwWX7tZ03q8dBtRgcXzR4fwOWTWAy
linkToPdf http://cvtisr.summon.serialssolutions.com/2.0.0/link/0/eLvHCXMwpV3dTxQxEJ8ogvFFRSAeovSBN2nYve3etL4Z9aLhcrkAGt423X4kl8Du5XYh_Dv-p0x391wkYmJ87ce0aaedaTrz-wEcRE6lqccoRE_RAwV1zrUdaa5Sk4QHBwrfQOZPcDqV5-dqdieLv4l2X31JtjkNAaWpqI8W1h_dSXzDWHCyNzwopeD4GJ4IKgxBXSenP3rYXRy1qJn0aEaM4i5t5s8yfjdNvb9574u0sTzjF_8_55fwvPM62cdWTTbhkStewUYT_WmqLfhJysIWZVVzuvPIGSSVYS29D9PLwLvEqKDML8gvZVXAISjn9gMj15Fdzm-cZeUyD9wjrAsOYfbKsbpsGvQC2_7hZiVptqm8PyQ58jRuEXgbHNPGkElsFbTahu_jL2efvvKOu4EbOtQ114auBuVVqnMVK4MuMdqmOjFOJxKFskbmEmWknHSx8iOBJjHC4jDyXobvwx1YK8rCvQY21KnLMffkOQ2FNUJjlPrYS-uEyN1IDiBebVtmOmDzwK9xkfWQzGHpM1r6rFn6DAfw_lefRQvr8dfWeyttyLojXmVJYBIIPMfDARyudr-vflja7r8134ens8_jbPJtevwGngW2-zaaZg_W6uWVewvr5rqeV8t3jebfAgxSAzg
openUrl ctx_ver=Z39.88-2004&ctx_enc=info%3Aofi%2Fenc%3AUTF-8&rfr_id=info%3Asid%2Fsummon.serialssolutions.com&rft_val_fmt=info%3Aofi%2Ffmt%3Akev%3Amtx%3Ajournal&rft.genre=article&rft.atitle=The+post-Newtonian+motion+around+an+oblate+spheroid%3A+the+mixed+orbital+effects+due+to+the+Newtonian+oblateness+and+the+post-Newtonian+mass+monopole+accelerations&rft.jtitle=General+relativity+and+gravitation&rft.au=Iorio%2C+Lorenzo&rft.date=2023-12-01&rft.issn=0001-7701&rft.eissn=1572-9532&rft.volume=55&rft.issue=12&rft_id=info:doi/10.1007%2Fs10714-023-03184-7&rft.externalDBID=n%2Fa&rft.externalDocID=10_1007_s10714_023_03184_7
thumbnail_l http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/lc.gif&issn=0001-7701&client=summon
thumbnail_m http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/mc.gif&issn=0001-7701&client=summon
thumbnail_s http://covers-cdn.summon.serialssolutions.com/index.aspx?isbn=/sc.gif&issn=0001-7701&client=summon