Details of the Researcher

PHOTO

Kazutaka Kimura
Section
Graduate School of Science
Job title
Degree
  • Doctor of Science (Kyoto University)

e-Rad No.
81011195

Research History 2

  • 2024/04 - Present
    Tohoku University Graduate School of Science Department of Astronomy Specially Appointed Research Fellow(JSPS Research Fellow-PD)

  • 2023/04 - 2024/03
    Tohoku University Graduate School of Science Department of Astronomy Specially Appointed Research Fellow

Education 2

  • Kyoto University Graduate School of Science Division of Physics and Astronomy

    2018/04 - 2023/04

  • Kyoto University Faculty of Science

    2014/04 - 2018/03

Professional Memberships 2

  • 理論天文学宇宙物理学懇談会

    2021/11 - Present

  • Astronomical Society of Japan

    2019/06 - Present

Research Interests 2

  • 天文学

  • 宇宙物理学

Research Areas 2

  • Natural sciences / Astronomy /

  • Natural sciences / Theoretical studies related to particle-, nuclear-, cosmic ray and astro-physics /

Papers 4

  1. An Explicit M1 Radiation-hydrodynamics Scheme for 3D Protostellar Evolution Peer-reviewed

    Kazutaka Kimura, Kazuyuki Sugimura, Takashi Hosokawa, Hajime Fukushima, Kazuyuki Omukai

    The Astrophysical Journal 999 (2) 257-257 2026/03/09

    Publisher: American Astronomical Society

    DOI: 10.3847/1538-4357/ae422a  

    ISSN: 0004-637X

    eISSN: 1538-4357

    More details Close

    Abstract We present a radiation-hydrodynamics (RHD) scheme that enables 3D simulations resolving both protostellar interiors and their surrounding accretion flows within a single framework, to clarify how a protostar evolves while interacting with the accretion flow. The method builds on an explicit two-moment M1 closure scheme with a reduced speed of light approximation (RSLA) for massively parallel computation. Our scheme introduces a complementary non-RSLA radiation component that dominates in optically thick regions. This hybrid treatment restores physical energy conservation inside protostars, which would otherwise be violated under the RSLA, while retaining the advantage of large time steps. To overcome the limitation of the conventional M1 closure in solving radiative transfer in extremely optically thick regions inside protostars and across steep optical-depth gradients near their surfaces, we incorporate the optical-depth information of neighboring cells into the radiative transfer calculation. We further evolve photon-number densities in addition to radiation energy densities to reconstruct an effective local spectrum on the fly without resorting to costly multifrequency transport. We implement this scheme in the adaptive mesh refinement code SFUMATO and verify its validity through a series of test calculations. As an application, we follow the early evolution of a massive protostar formed at high redshift, within a full cosmological context. The results reveal a continuous structure connecting the swollen protostar and its surrounding disk, which cannot be captured in conventional 1D models. This RHD scheme opens a path to studies of protostellar evolution and its interaction with the accretion flow in realistic 3D environments.

  2. Massive Black Hole Seed Formation in Strong X-Ray Environments at High Redshift Peer-reviewed

    Kazutaka Kimura, Kohei Inayoshi, Kazuyuki Omukai

    The Astrophysical Journal 990 (2) 228-228 2025/09

    DOI: 10.3847/1538-4357/adf2ad  

  3. 3D Radiation-hydrodynamic Simulations Resolving Interior of Rapidly Accreting Primordial Protostar Peer-reviewed

    Kazutaka Kimura, Takashi Hosokawa, Kazuyuki Sugimura, Hajime Fukushima

    The Astrophysical Journal 950 (2) 184-184 2023/06/01

    Publisher: American Astronomical Society

    DOI: 10.3847/1538-4357/acda8e  

    ISSN: 0004-637X

    eISSN: 1538-4357

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    Abstract Direct collapse of supermassive stars is a possible pathway to form supermassive black hole seeds at high redshifts. Whereas previous three-dimensional (3D) simulations demonstrate that supermassive stars form via rapid mass accretion, those resolving the stellar interior have been limited. Here, we report 3D radiation-hydrodynamic (RHD) simulations following the evolution of rapidly accreting protostars resolving the stellar interior. We use an adaptive mesh refinement code with our newly developed RHD solver employing an explicit M1 closure method. We follow the early evolution until the stellar mass reaches ∼10 M from two different initial configurations of spherical and turbulent clouds. We demonstrate that, in both cases, a swollen protostar whose radius is 100–1000 R appears, as predicted by the stellar evolution calculations. Its effective temperature remains a few thousand Kelvin, and the radiative feedback by ionizing photons is too weak to disturb the accretion flow up to the epoch examined in this work. In the turbulent case, the protostar rotates rapidly at more than 0.4 times the Keplerian velocity owing to the angular momentum provided by the initial turbulence. The protostar approximates an oblate spheroid, and its equatorial radius is more than twice the polar radius. Our results suggest that we need to consider the rapid stellar rotation to elucidate the realistic 3D protostellar evolution in the supermassive star formation.

  4. Growth of Massive Disks and Early Disk Fragmentation in Primordial Star Formation Peer-reviewed

    Kazutaka Kimura, Takashi Hosokawa, Kazuyuki Sugimura

    The Astrophysical Journal 911 (1) 52-52 2021/04/01

    DOI: 10.3847/1538-4357/abe866  

    ISSN: 0004-637X

    eISSN: 1538-4357

Misc. 1

  1. Feedback from the Vicinity of Massive Protostars in the First Star Formation

    Kazutaka Kimura

    Proceedings of the International Astronomical Union 16 (S362) 246-249 2020/06

    Publisher: Cambridge University Press (CUP)

    DOI: 10.1017/s1743921322001545  

    ISSN: 1743-9213

    eISSN: 1743-9221

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    Abstract Many simulations have been performed to elucidate the formation process of first stars. In first star formation, radiative feedback is a key process in determining stellar masses. However, previous simulations which follow the feedback process don’t resolve the small scale ( 10 AU) to realize long-term calculation, and the structure near massive protostars is still unknown. To clarify how the radiation from the protostar works, we need to resolve small scale and calculate the interaction between the radiation and the dense gas in such a region. As a first step towards understanding the phenomenon in this region, we perform the high-resolution simulation around the massive protostar without radiative transfer. We find that dense gas covers the protostar even in the polar direction and the HII region cannot expand. Solving the radiative transfer for getting accurate results is our future work. We are currently developing the new radiation hydrodynamics code for that.

Research Projects 5

  1. JWST時代における初代星・初代銀河形成過程の解明とその観測的兆候

    木村 和貴

    Offer Organization: 日本学術振興会

    System: 科学研究費助成事業

    Category: 特別研究員奨励費

    Institution: 東北大学

    2024/04 - 2027/03

  2. 第124回 早川幸男基金 海外学術研究援助

    Offer Organization: 日本天文学会

    System: 早川幸男基金 (海外学術研究援助)

    2024/01 - 2024/01

  3. 天文学振興財団 令和5年度第1回国際研究支援事業

    Offer Organization: 天文学振興財団

    System: 国際研究支援事業

    2023/07 - 2023/07

  4. 宇宙の各時代における大質量星近傍構造と大質量星形成過程の解明

    System: JST次世代研究者挑戦的研究プログラム

    2021/10 - 2023/03

  5. 初代星形成における大質量原始星近傍の構造の解明

    Offer Organization: ANRI株式会社

    System: ANRI基礎科学スカラーシップ

    2021/11 - 2022/10

Academic Activities 1

  1. Referee: The Astrophysical Journal

    Activity type: Peer review