リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

大学・研究所にある論文を検索できる 「Comprehensive Study of Mass Ejection and Nucleosynthesis in Binary Neutron Star Mergers Leaving Short-lived Massive Neutron Stars」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

コピーが完了しました

URLをコピーしました

論文の公開元へ論文の公開元へ
書き出し

Comprehensive Study of Mass Ejection and Nucleosynthesis in Binary Neutron Star Mergers Leaving Short-lived Massive Neutron Stars

Fujibayashi, Sho Kiuchi, Kenta Wanajo, Shinya Kyutoku, Koutarou Sekiguchi, Yuichiro Shibata, Masaru 京都大学 DOI:10.3847/1538-4357/ac9ce0

2023.01.01

概要

By performing general relativistic hydrodynamics simulations with an approximate neutrino radiation transfer, the properties of ejecta in the dynamical and post-merger phases are investigated in the cases in which the remnant massive neutron star collapses into a black hole in ≲20 ms after the onset of the merger. The dynamical mass ejection is investigated in three-dimensional simulations. The post-merger mass ejection is investigated in two-dimensional axisymmetric simulations with viscosity using the three-dimensional post-merger systems as the initial conditions. We show that the typical neutron richness of the dynamical ejecta is higher for the merger of more asymmetric binaries; hence, heavier r-process nuclei are dominantly synthesized. The post-merger ejecta are shown to have only mild neutron richness, which results in the production of lighter r-process nuclei, irrespective of the binary mass ratios. Because of the larger disk mass, the post-merger ejecta mass is larger for more asymmetric binary mergers. Thus, the post-merger ejecta can compensate for the underproduced lighter r-process nuclei for asymmetric merger cases. As a result, by summing up both ejecta components, the solar residual r-process pattern is reproduced within the average deviation of a factor of three, irrespective of the binary mass ratio. Our result also indicates that the (about a factor of a few) light-to-heavy abundance scatter observed in r-process-enhanced stars can be attributed to variation in the binary mass ratio and total mass. Implications of our results associated with the mass distribution of compact neutron star binaries and the magnetar scenario of short gamma-ray bursts are discussed.

この論文で使われている画像

参考文献

Abbott, B. P., Abbott, R., Abbott, T. D., et al. 2017a, CQGra, 34, 044001

Abbott, B. P., Abbott, R., Abbott, T. D., et al. 2017b, ApJL, 848, L13

Abbott, B. P., Abbott, R., Abbott, T. D., et al. 2017c, PhRvL, 119, 161101

Alcubierre, M., Brügmann, B., Holz, D., et al. 2001, IJMPD, 10, 273

Baker, J. G., Centrella, J., Choi, D.-I., & Koppitz, M. 2006, PhRvL, 96, 111102

Baumgarte, T. W., & Shapiro, S. L. 1999, PhRvD, 59, 024007

Baumgarte, T. W., Shapiro, S. L., & Shibata, M. 2000, ApJL, 528, L29

Bauswein, A., Goriely, S., & Janka, H.-T. 2013, ApJ, 773, 78

Blandford, R. D., & Payne, D. G. 1982, MNRAS, 199, 883

Bruenn, S. W., De Nisco, K. R., & Mezzacappa, A. 2001, ApJ, 560, 326

Campanelli, M., Lousto, C. O., Marronetti, P., & Zlochower, Y. 2006, PhRvL,

96, 111101

Christie, I. M., Lalakos, A., Tchekhovskoy, A., et al. 2019, MNRAS,

490, 4811

Combi, L., & Siegel, D. 2022, arXiv:2206.03618

Cowan, J. J., Sneden, C., Lawler, J. E., et al. 2021, RvMP, 93, 015002

Cyburt, R. H., Amthor, A. M., Ferguson, R., et al. 2010, ApJS, 189, 240

Eichler, M., Arcones, A., Kelic, A., et al. 2015, ApJ, 808, 30

Fahlman, S., & Fernández, R. 2022, MNRAS, 513, 2689

Ferdman, R. D., Freire, P. C. C., Perera, B. B. P., et al. 2020, Natur, 583, 211

Fernandez, R., Foucart, F., & Lippuner, J. 2020, MNRAS, 497, 3221

Fernandez, R., & Metzger, B. D. 2013, MNRAS, 435, 502

Fernandez, R., Tchekhovskoy, A., Quataert, E., Foucart, F., & Kasen, D. 2019,

MNRAS, 482, 3373

Foucart, F., Mosta, P., Ramirez, T., et al. 2021, PhRvD, 104, 123010

Foucart, F., OʼConnor, E., Roberts, L., et al. 2016, PhRvD, 94, 123016

19

The Astrophysical Journal, 942:39 (20pp), 2023 January 1

Fujibayashi et al.

Shibata, M. 2000, PThPh, 104, 325

Shibata, M. 2016, Numerical Relativity (Singapore: World Scientific

Publishing)

Shibata, M., Fujibayashi, S., Hotokezaka, K., et al. 2017, PhRvD, 96, 123012

Shibata, M., Fujibayashi, S., & Sekiguchi, Y. 2021, PhRvD, 104, 063026

Shibata, M., & Kiuchi, K. 2017b, PhRvD, 95, 083005

Shibata, M., Kiuchi, K., Sekiguchi, Y.-i., & Suwa, Y. 2011, PThPh, 125, 1255

Shibata, M., & Nakamura, T. 1995, PhRvD, 52, 5428

Siegel, D. M., & Metzger, B. D. 2018, ApJ, 858, 52

Siqueira Mello, C., Hill, V., Barbuy, B., et al. 2014, A&A, 565, A93

Siqueira Mello, C., Spite, M., Barbuy, B., et al. 2013, A&A, 550, A122

Steiner, A. W., Hempel, M., & Fischer, T. 2013, ApJ, 774, 17

Tachibana, T., Yamada, M., & Yoshida, Y. 1990, PThPh, 84, 641

Takahara, M., & Sato, K. 1984, PThPh, 72, 978

Tauris, T. M., Kramer, M., Freire, P. C. C., et al. 2017, ApJ, 846, 170

Thorne, K. S. 1981, MNRAS, 194, 439

Timmes, F. X., & Swesty, F. D. 2000, ApJS, 126, 501

Uso, V. V. 1992, Natur, 357, 472

van Riper, K. A. 1988, ApJ, 326, 235

Vassh, N., McLaughlin, G. C., Mumpower, M. R., & Surman, R. 2021, ApJ,

907, 98

Vassh, N., Mumpower, M. R., McLaughlin, G. C., Sprouse, T. M., &

Surman, R. 2020, ApJ, 896, 28

Wanajo, S., Hirai, Y., & Prantzos, N. 2021, MNRAS, 505, 5862

Wanajo, S., Muller, B., Janka, H.-T., & Heger, A. 2018, ApJ, 852, 40

Wanajo, S., Sekiguchi, Y., Nishimura, N., et al. 2014, ApJL, 789, L39

20

...

参考文献をもっと見る

全国の大学の
卒論・修論・学位論文

一発検索!

この論文の関連論文を見る