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  1. NTU Theses and Dissertations Repository
  2. 理學院
  3. 天文物理研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/65324
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor李太楓(Typhoon Lee)
dc.contributor.authorYit-Yeow Chongen
dc.contributor.author張藝耀zh_TW
dc.date.accessioned2021-06-16T23:36:35Z-
dc.date.available2013-08-09
dc.date.copyright2012-08-09
dc.date.issued2012
dc.date.submitted2012-07-26
dc.identifier.citation[1] S. Amari, E. Zinner, and R. S. Lewis. Isotopic compositions of different presoiar
silicon carbide size fractions from the murchison meteorite. Meteoriitics & Planetary
Science, 35:997--1014, 2000.
[2] E. Anders and N. Grevesse. Abundances of the elements - meteoritic and solar.
Geochimica et Cosmochimica Acta, 53(1):197--214, 1989.
[3] Z. Bao, H. Beer, F. Kappeler, F. Voss, K. Wisshak, and T. Rauscher. Neutron cross
sections for nucleosynthesis studies. Atomic Data and Nuclear Data Tables, 76(70),
2000.
[4] V. M. Canuto and I. Mazzitelli. Stellar turbulent convection - a new model and
applications. Astrophysical Journal, 370(1):295--311, 1991.
[5] V. M. Canuto and I. Mazzitelli. Further improvements of a new model for turbulent
convection in stars. Astrophysical Journal, 389(2):724--730, 1992.
[6] H. W. Chen. Ca isotopic anomalies in allende refractory inclusions.
[7] J. C. Chen. Surprising ca isotopic anomalies in the early solar system. Master's
thesis, National Taiwan University, 2010.
[8] D. D. Clayton, W. A. Fowler, T. E. Hull, and B. A. Zimmerman. Neutron capture
chains in heavy element synthesis. Annals of Physics, 12(3):331--408, 1961.
[9] I. Dillmann, R. Plag, F. Kappeler, and T. Rauscher. KADoNiS v0.3 - The third update
of the Karlsruhe Astrophysical Database of Nucleosynthesis in Stars. KADoNiS,
http://www.kadonis.org/, 0.3 edition, August 2009.
[10] R. Gallino, C. Arlandini, M. Busso, M. Lugaro, C. Travaglio, O. Straniero, A. Chieffi,
and M. Limongi. Evolution and nucleosynthesis in low-mass asymptotic giant
branch stars. ii. neutron capture and the s-process. Astrophysical Journal, 497(1):
388--403, 1998.
34
[11] D. J. Hughes, R. C.Garth, and J. S. Levin. Fast neutron cross sections and nuclear
level density. Physical Review, 91(6):1423--1458, 1953.
[12] D. J. Hughes, W. D. B. Spatz, and N. Goldstein. Capture cross sections for fast
neutrons. Physical Review, 75(12):1781--1787, 1949.
[13] M. H. A. Jungck, T. Shamamura, and G. W. Lugmair. Ca isotope variations in allende.
Geochimica et Cosmochimica Acta, 48:2651--2658, 1984.
[14] T. Lee. Implications of Isotopic Anomalies for Nucleosynthesis, pages 1063--1089.
1988.
[15] F. R. Niederer and D. A. Papanastassiou. Ca isotopes in refractory inclusions.
Geochimica et Cosmochimica Acta, 48(6):1279--1293, 1984.
[16] F. R. Niederer, D. A. Papanastassiou, and G. Wasserburg. The isotopic composition
of titanium in allende and leoville meteorites. Geochimica et Cosmochimica Acta,
45:1017--1031, 1981.
[17] L. R. Nittler, C. M. O. Alexander, R. Gallino, P. Hoppe, A. N. Nguyen, F. J. Stadermann,
and E. K. Zinner. Aluminum-, calcium- and titanium-rich oxide stardust in
ordinary chrondrite meteorites. The Astrophysical Journal, 682:1450--1458, 2008.
[18] J. W. Truran and I. Iben. On s-process nucleosynthesis in thermally pulsing stars.
Astrophysical Journal, 216(3):797--810, 1977.
[19] R. K. Ulrich. The s-Process in Stars, pages 139--167. University of Texas Press,
1973.
[20] S. E. Woosley. Neutron-rich nucleosynthesis in carbon deflagration supernovae. Astrophysical
Journal, 476(2):801--810, 1997.
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explosive hydrodynamics and nucleosynthesis. Astrophysical Journal Supplement
Series, 101(1):181--235, 1995.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/65324-
dc.description.abstract自 1970 年代以來,隕石中的鈣同位素就開始被研究。相較於地球 的同位素,科學家發現這些鈣同位素普遍存在一些異常,其中就包括 了鈣 -48。透過 Ia 型超新星模型,這些鈣 -48 同位素異常能夠獲得解 釋。另一方面,太陽前顆粒的研究也顯示了鈣 -42,43,44 和鈦同位素異 常現象。Amari 等人(2000 年)和 Nittler 等人(2008)都不約而同都 透過漸近巨星分支模型來解釋這些同位素異常。
後來,這些原本只在太陽前顆粒中出現的鈣同位素異常,在隕石中 的鈣鋁包裹體(CAIs)中也被發現了。這些發現的鈣同位素異常分別 為 0.29 ± 0.16ε(43Ca/44Ca), 1.11 ± 5.51ε(46Ca/44Ca)和 4.48 ± 0.29ε
(48Ca/44Ca)。因此,我們試圖模仿一個漸近巨星分支模型來解釋這些 存在於 CAIs 中的鈣同位素異常現象。
在這個模型中,我們透過不同的參數,尤其是中子密度來模擬各種 結果。大致上這些模擬結果都得出一致的結果:鈣 -42,43 可以透過慢 中子捕獲作用來大量產生。雖然這模型製造出少量的鈣 -46,不過在同 位素研究中常用的正規化處理後,我們會得到明顯多餘的鈣 -46。即便 如此,只要我們限制中子撞擊的反應時間,這個鈣 -46 的異常就可以 獲得有效控制。此外,如果我們考慮與星際物質的混合作用,那麼就 可以推論處那些輕質量、以碳 -13 為中子來源的漸近巨星分支恆星, 能夠合理解釋這些鈣同位素異常現象。
zh_TW
dc.description.abstractFrom 1970s, the calcium isotopes of meteorites have been studied. Compare
with the terrestrial abundance, there exists some anomalies, including
48Ca, within these isotopes. With a neutron-rich Type Ia supernovae model,
the 48Ca and others neutron rich isotopic anomalies had be solved. On the
other hand, the pre-solar grains studies also indicated both calcium(42Ca, 43Ca,
44Ca) and titanium anomalies. Amari et al.2000 and Nittler et al.2008 succeed
to explain these anomalies through an asymptotic giant branch(AGB)
star model to some degree.
The 43Ca anomalies, which has been found in presolar grains and solved
by an AGB star model, was found in the calcium-aluminium inclusions(CAIs)
recently. The excess of 43Ca/44Ca, 46Ca/44Ca & 48Ca/44Ca in the CAIs were
found to be 0.29±0.16, 1.11±5.51, 4.48±0.29 respectively. For that
reason, an AGB model is suggested to explain the CAIs measurement results.
In such a model, different parameter, especially the main factor, neutron
density was tuned in the simulation. All of the simulation generated a consistent
result - less neutron-rich isotopes(42Ca, 43Ca) can be created through the
s-process. Even through this model create less 46Ca anomalies, a significant
excess of 46Ca can be seen after the strategy of normalize to solar abundance
which is often used to analyse isotopic abundance. Nevertheless, a short time
neutron exposure will leave 46Ca no effect. In another case, if the mixing
model is considered, the 13C neutron source AGB stars will be a good candidate
for this 46Ca anomalies.
en
dc.description.provenanceMade available in DSpace on 2021-06-16T23:36:35Z (GMT). No. of bitstreams: 1
ntu-101-R97244003-1.pdf: 10407124 bytes, checksum: 190aeb2af9edfda838bd00e89f3527c3 (MD5)
Previous issue date: 2012
en
dc.description.tableofcontentsAcknowledgments i
Abstract ii
中文摘要 iii
1 Introduction 1
1.1 History of Calcium Isotopic Anomalies within Meteorites . . . . . . . . . 2
1.2 CalciumAnomalies............................. 6
1.3 ModelsfortheCalciumIsotopicAnomalies . . . . . . . . . . . . . . . . 8
1.4 s-ProcessandAsymptoticBranchGiantStars . . . . . . . . . . . . . . . 9
2 Simulation 11
2.1 DifferentialEquationofthes-Process ................... 11
2.2 AnalyticSolution .............................. 12
2.3 NeutronSource ............................... 13
2.4 LinearModel ................................ 14
2.5 Network................................... 15
3 Algorithm 17
3.1 Example................................... 20
3.2 Stability................................... 22
3.3 Test of Radioactive Isotope......................... 24
4 Results & Discussions 26
4.1 DataInterpretation ............................. 26
4.2 Results with various Neutron Density Functions . . . . . . . . . . . . . . 28
4.3 Discussions ................................. 32
Bibliography34
dc.language.isoen
dc.titles-過程原子核合成能解釋隕石中鈣同位素的異常嗎?zh_TW
dc.titleCan s-Process Nucleosnthesis Explain the Calcium Isotopic Anomalies in Meteorites?en
dc.typeThesis
dc.date.schoolyear100-2
dc.description.degree碩士
dc.contributor.oralexamcommittee黃偉彥(Pauchy Huang),譚遠培(Ronald Taam)
dc.subject.keywords-過程,原子核合成,鈣同位素異常,zh_TW
dc.subject.keywords-process,calcium anomalies,nucleosynthesis,AGB,en
dc.relation.page35
dc.rights.note有償授權
dc.date.accepted2012-07-26
dc.contributor.author-college理學院zh_TW
dc.contributor.author-dept天文物理研究所zh_TW
顯示於系所單位:天文物理研究所

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