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Chemical Evolution Across Cosmic Time: Stellar Elemental Abundance Patterns and Radial Redistribution in Cosmological Simulations- [electronic resource]
Chemical Evolution Across Cosmic Time: Stellar Elemental Abundance Patterns and Radial Red...
Chemical Evolution Across Cosmic Time: Stellar Elemental Abundance Patterns and Radial Redistribution in Cosmological Simulations- [electronic resource]

상세정보

자료유형  
 학위논문파일 국외
최종처리일시  
20240214100128
ISBN  
9798379999414
DDC  
520
저자명  
Bellardini, Matthew Alfred.
서명/저자  
Chemical Evolution Across Cosmic Time: Stellar Elemental Abundance Patterns and Radial Redistribution in Cosmological Simulations - [electronic resource]
발행사항  
[S.l.]: : University of California, Davis., 2023
발행사항  
Ann Arbor : : ProQuest Dissertations & Theses,, 2023
형태사항  
1 online resource(199 p.)
주기사항  
Source: Dissertations Abstracts International, Volume: 85-02, Section: B.
주기사항  
Advisor: Wetzel, Andrew.
학위논문주기  
Thesis (Ph.D.)--University of California, Davis, 2023.
사용제한주기  
This item must not be sold to any third party vendors.
초록/해제  
요약Understanding galaxy formation and evolution requires characterizing elemental abundance distributions in galaxies. Chemical tagging is a useful tool to understand the evolutionary history of the Milky Way (MW) because it takes advantage of the fact that stellar abundances at present-day are identical to the abundances with which stars formed. Thus, stellar elemental abundances provide an observable that can, in principle, be used to determine the birth location of a star.Elemental abundance observations of gas and stars in the MW and nearby galaxies show that the median elemental abundance typically decreases with increasing radius with little scatter about the mean at each radius. These observations are robust for nearby galaxies, however they are less certain at high redshift because of the observational difficulties associated with obtaining spatially resolved spectra of high redshift galaxies. As a result, many galactic elemental evolution models rely on assumptions that observed properties of the MW and nearby external galaxies, crucially the lack of azimuthal scatter in abundances, are a time-independent property. Alternatively, some researchers use physical models of galaxy evolution to which they fit a multitude of free parameters such that their model recreates the present-day observed properties of the MW and external galaxies. However, these models typically rely on overly-simplified assumptions of physical processes and include multiple free functions unconstrained by physical models.Cosmological zoom-in hydrodynamic simulations can help to precisely characterize the spatial distribution of stellar elemental abundances in MW-mass galaxies across cosmic time. Our results challenge the status quo of galactic elemental evolution models. We find that the minimal azimuthal abundance variations in MW-mass galaxies are not an intrinsic property, rather galaxies evolve from an epoch of extreme azimuthal abundance variation to their present-day state. Additionally, radial abundance gradients in galaxies were nearly non-existent at sufficiently high redshifts, despite being relatively strong at present-day. These results suggest a higher degree of difficulty in chemically tagging stars than previously assumed. Thus, chemical tagging techniques may only be able to loosely constrain birth locations of older stellar populations. To help address this, we characterize the scale of radial redistribution of stars in simulated MW-mass galaxies as a function of both stellar age and stellar location. Accounting for stellar radial redistribution as a function of present-day radial location can help break degeneracies of birth location for older stellar populations. Our results on stellar radial redistribution suggest that inferring a time-dependent radial abundance gradient of the MW from present-day observations is non-trivial; at present-day, old stellar populations are often at very different radii than the radii at which they formed. Therefore, more emphasis must be placed on models derived from cosmological simulations.
일반주제명  
Astronomy.
일반주제명  
Astrophysics.
일반주제명  
Physics.
키워드  
Gas elemental abundances
키워드  
Galaxies
키워드  
Simulations
키워드  
Stellar elemental abundances
키워드  
Azimuthal abundance variation
기타저자  
University of California, Davis Physics
기본자료저록  
Dissertations Abstracts International. 85-02B.
기본자료저록  
Dissertation Abstract International
전자적 위치 및 접속  
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MARC

 008240612s2023      us  |||||||||||||||c||eng  d
■001000016931855
■00520240214100128
■006m          o    d                
■007cr#unu||||||||
■020    ▼a9798379999414
■035    ▼a(MiAaPQ)AAI30425943
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a520
■1001  ▼aBellardini,  Matthew  Alfred.
■24510▼aChemical  Evolution  Across  Cosmic  Time:  Stellar  Elemental  Abundance  Patterns  and  Radial  Redistribution  in  Cosmological  Simulations▼h[electronic  resource]
■260    ▼a[S.l.]:▼bUniversity  of  California,  Davis.  ▼c2023
■260  1▼aAnn  Arbor  :▼bProQuest  Dissertations  &  Theses,  ▼c2023
■300    ▼a1  online  resource(199  p.)
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  85-02,  Section:  B.
■500    ▼aAdvisor:  Wetzel,  Andrew.
■5021  ▼aThesis  (Ph.D.)--University  of  California,  Davis,  2023.
■506    ▼aThis  item  must  not  be  sold  to  any  third  party  vendors.
■520    ▼aUnderstanding  galaxy  formation  and  evolution  requires  characterizing  elemental  abundance  distributions  in  galaxies.  Chemical  tagging  is  a  useful  tool  to  understand  the  evolutionary  history  of  the  Milky  Way  (MW)  because  it  takes  advantage  of  the  fact  that  stellar  abundances  at  present-day  are  identical  to  the  abundances  with  which  stars  formed.  Thus,  stellar  elemental  abundances  provide  an  observable  that  can,  in  principle,  be  used  to  determine  the  birth  location  of  a  star.Elemental  abundance  observations  of  gas  and  stars  in  the  MW  and  nearby  galaxies  show  that  the  median  elemental  abundance  typically  decreases  with  increasing  radius  with  little  scatter  about  the  mean  at  each  radius.  These  observations  are  robust  for  nearby  galaxies,  however  they  are  less  certain  at  high  redshift  because  of  the  observational  difficulties  associated  with  obtaining  spatially  resolved  spectra  of  high  redshift  galaxies.  As  a  result,  many  galactic  elemental  evolution  models  rely  on  assumptions  that  observed  properties  of  the  MW  and  nearby  external  galaxies,  crucially  the  lack  of  azimuthal  scatter  in  abundances,  are  a  time-independent  property.  Alternatively,  some  researchers  use  physical  models  of  galaxy  evolution  to  which  they  fit  a  multitude  of  free  parameters  such  that  their  model  recreates  the  present-day  observed  properties  of  the  MW  and  external  galaxies.  However,  these  models  typically  rely  on  overly-simplified  assumptions  of  physical  processes  and  include  multiple  free  functions  unconstrained  by  physical  models.Cosmological  zoom-in  hydrodynamic  simulations  can  help  to  precisely  characterize  the  spatial  distribution  of  stellar  elemental  abundances  in  MW-mass  galaxies  across  cosmic  time.  Our  results  challenge  the  status  quo  of  galactic  elemental  evolution  models.  We  find  that  the  minimal  azimuthal  abundance  variations  in  MW-mass  galaxies  are  not  an  intrinsic  property,  rather  galaxies  evolve  from  an  epoch  of  extreme  azimuthal  abundance  variation  to  their  present-day  state.  Additionally,  radial  abundance  gradients  in  galaxies  were  nearly  non-existent  at  sufficiently  high  redshifts,  despite  being  relatively  strong  at  present-day.  These  results  suggest  a  higher  degree  of  difficulty  in  chemically  tagging  stars  than  previously  assumed.  Thus,  chemical  tagging  techniques  may  only  be  able  to  loosely  constrain  birth  locations  of  older  stellar  populations.  To  help  address  this,  we  characterize  the  scale  of  radial  redistribution  of  stars  in  simulated  MW-mass  galaxies  as  a  function  of  both  stellar  age  and  stellar  location.  Accounting  for  stellar  radial  redistribution  as  a  function  of  present-day  radial  location  can  help  break  degeneracies  of  birth  location  for  older  stellar  populations.  Our  results  on  stellar  radial  redistribution  suggest  that  inferring  a  time-dependent  radial  abundance  gradient  of  the  MW  from  present-day  observations  is  non-trivial;  at  present-day,  old  stellar  populations  are  often  at  very  different  radii  than  the  radii  at  which  they  formed.  Therefore,  more  emphasis  must  be  placed  on  models  derived  from  cosmological  simulations.
■590    ▼aSchool  code:  0029.
■650  4▼aAstronomy.
■650  4▼aAstrophysics.
■650  4▼aPhysics.
■653    ▼aGas  elemental  abundances
■653    ▼aGalaxies
■653    ▼aSimulations
■653    ▼aStellar  elemental  abundances
■653    ▼aAzimuthal  abundance  variation
■690    ▼a0606
■690    ▼a0596
■690    ▼a0605
■71020▼aUniversity  of  California,  Davis▼bPhysics.
■7730  ▼tDissertations  Abstracts  International▼g85-02B.
■773    ▼tDissertation  Abstract  International
■790    ▼a0029
■791    ▼aPh.D.
■792    ▼a2023
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T16931855▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.
■980    ▼a202402▼f2024

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