Profile Information
- Affiliation
- Japan Aerospace Exploration AgencyTokyo University of Science
- Degree
- 博士(工学)(東京工業大学)
- J-GLOBAL ID
- 202101020564375130
- researchmap Member ID
- R000015338
Research Interests
17Research Areas
3Committee Memberships
4-
Mar, 2008 - Present
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2020 - 2021
Awards
2-
Dec, 2020
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Apr, 2016
Papers
38-
High Temperature Materials and Processes, 44(1), Jan 1, 2025Abstract In this study, thermal effusivity distributions of two polished JSC-1A particles, a lunar regolith-simulating material, were measured using a thermal microscope. The results confirmed that the average thermal effusivity of the JSC-1A single particle was approximately half that of the FJS-1 single particle, a different type of lunar regolith-simulating material measured by a similar method. Also, the thermal effusivities of the existing mineral phases of pyroxene and anorthite in the particles were obtained and were comparable to those reported in the literature. A possible reason for the lower thermal conductivity of JSC-1A than that of FJS-1 could be the differences in the ratio of the mineral phases, and phase boundaries between the mineral phases.
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INTERNATIONAL JOURNAL OF THERMOPHYSICS, 43(7), Jul, 2022 Peer-reviewedThis study aimed to measure the thermal effusivity distribution on a lunar regolith simulant (FJS-1) using a thermal microscope and to calculate the average thermal effusivity and thermal conductivity using density and specific heat. Moreover, discussions were conducted based on the results of the microstructural analysis of the sample. The FJS-1 particles were embedded in an epoxy resin and polished to a mirror finish. The samples were analyzed using scanning electron microscopy equipped with energy-dispersive X-ray spectroscopy (SEM-EDS). X-ray diffraction (XRD) was performed to identify the mineral phases in FJS-1. The results of SEM-EDS and XRD showed that a single sand particle was composed of several minerals, such as anorthite and olivine. Then, the thermal microscope was used to obtain the distribution of the thermal effusivity of a particle from the mirror-finished sample in a 1 x 1 mm(2) area with intervals of 10 mu m. The measured thermal effusivity correlates with the SEM image of the sample. Anorthite has a small thermal effusivity of 1.99 +/- 0.31 kJ center dot s(-0.5)center dot m(-2)center dot K-1, while olivine has a large thermal effusivity of 2.73 +/- 0.35 kJ center dot s(-0.5)center dot m(-2)center dot K-1. In both cases, the thermal effusivity was found to be of the same order of magnitude as the reported values. The average thermal effusivity and conductivity of a single particle were determined to be 2.4 +/- 0.6 kJ center dot s(-0.5)center dot m(-2)center dot K-1 and 2.6 +/- 1.3 W m(-1)center dot K-1, respectively, based on the proportion of existing phases.
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International Journal of Thermophysics, 43(6), Jun, 2022 Peer-reviewedAbstract In recent planetary exploration space missions, spacecraft are exposed to severe thermal environments that are sometimes more extreme than those experienced in earth orbits. The development of advanced thermal control materials and devices together with reliable and accurate measurements of their thermophysical properties are needed for the development of systems designed to meet the engineering challenges associated with these space missions. We provide a comprehensive review of the state-of-the-art advanced passive thermal control materials and devices that are available for space applications, specifically, variable emissivity thermal control materials and microelectromechanical systems (MEMS), radiofrequency (RF)-transparent and/or tunable solar absorptivity and total hemispherical emissivity thermal control materials, and a passive re-deployable radiator with advanced materials and insulation. Prior to our in-depth review of these thermal control materials, we briefly summarize the thermal environments surrounding spacecraft, the characteristics of thermophysical properties for spacecraft materials that differ from those of materials for ground use, and the significance of solar absorptivity and total hemispherical emissivity for passive thermal control in space. In all four topics of materials and devices, the following subjects are overviewed: the basic principle of passive thermal control techniques in space, the measurement of thermophysical properties of those novel materials, simulation and/or on-orbit verification thermal performance tests, degradation tests in space environments, and some aspects of the implementation of the above-described materials and devices in actual space missions.
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熱物性 : 日本熱物性学会会誌, Japan journal of thermophysical properties, 35(3) 97-104, Aug, 2021 Peer-reviewed
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熱物性, 35(1), 2021 Peer-reviewed
Misc.
16-
令和2年度宇宙航行の力学シンポジウム = Symposium on Flight Mechanics and Astrodynamics: 2020, Dec, 2020令和2年度宇宙航行の力学シンポジウム(2020年12月14日-15日. オンライン開催) Symposium on Flight Mechanics and Astrodynamics: 2020 (December 14-15, 2020. Online Meeting) PDF再処理の為、2023年3月8日に差替 資料番号: SA6000164044
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Aeronautical and Space Sciences Japan, 68(5) 142-148, 2020
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Planetary People - The Japanese Society for Planetary Sciences, 27(3) 258-261, 2018
Books and Other Publications
1Presentations
30-
Meeting Abstracts of the Physical Society of Japan, 2018, The Physical Society of Japan
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Meeting Abstracts of the Physical Society of Japan, 2018, The Physical Society of Japan
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Meeting Abstracts of the Physical Society of Japan, 2018, The Physical Society of Japan
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Dec, 2016, Institute of Space and Astronautical Science, Japan Aerospace Exploration Agency(JAXA)(ISAS)32nd Symposium on Aerospace Structure and Materials (December 9, 2016. Institute of Space and Astronautical Science, Japan Aerospace Exploration Agency (JAXA)(ISAS)), Sagamihara, Kanagawa Japan
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Sep 6, 2016, Institute of Space and Astronautical Science, Japan Aerospace Exploration Agency(JAXA)(ISAS)Symposium on Flight Mechanics and Astrodynamics: 2017 (December 7-8, 2017. Institute of Space and Astronautical Science, Japan Aerospace Exploration Agency (JAXA)(ISAS)), Sagamihara, Kanagawa Japan
Major Professional Memberships
4Works
7Major Research Projects
7-
科学研究費助成事業 基盤研究(B), 日本学術振興会, Apr, 2021 - Mar, 2024
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科学研究費助成事業 挑戦的研究(萌芽), 日本学術振興会, Jul, 2020 - Mar, 2022
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, Apr, 2016 - Mar, 2019
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Grants-in-Aid for Scientific Research Grant-in-Aid for Challenging Exploratory Research, Japan Society for the Promotion of Science, Apr, 2014 - Mar, 2016
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, Apr, 2013 - Mar, 2016
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Grants-in-Aid for Scientific Research Grant-in-Aid for Scientific Research (C), Japan Society for the Promotion of Science, 2010 - 2012
Industrial Property Rights
6Academic Activities
3● 指導学生等の数
6-
Fiscal Year2021年度(FY2021)Doctoral program0人Students under Cooperative Graduate School System2人(東京理科大学大学院)Students under Skills Acquisition System1人(慶應義塾大学)、2人(慶應義塾大学大学院)
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Fiscal Year2020年度(FY2020)Doctoral program0人Students under Cooperative Graduate School System3人(東京理科大学大学院)Students under Skills Acquisition System1人(東京理科大学)、3人(慶應義塾大学大学院)
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Fiscal Year2019年度(FY2019)Doctoral program0人Students under Cooperative Graduate School System3人(東京理科大学大学院)Students under Skills Acquisition System1人(東京理科大学)、2人(慶應義塾大学)、2人(慶應義塾大学大学院)
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Fiscal Year2018年度(FY2018)Doctoral program1人Students under Cooperative Graduate School System1人(東京理科大学大学院)Students under Skills Acquisition System2人(東京理科大学)、1人(慶應義塾大学)、2人(慶應義塾大学大学院)
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Fiscal Year2022年度(FY2022)Doctoral program0人Students under Cooperative Graduate School System2人(東京理科大学大学院)Students under Skills Acquisition System1人(慶應義塾大学)、1人(慶應義塾大学大学院)、1人(東京理科大学)、1人(新潟大学大学院)
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Fiscal Year2023年度(FY2023)Doctoral program0人Students under Cooperative Graduate School System1人(東京理科大学大学院)Students under Skills Acquisition System1人(慶應義塾大学)、2人(慶應義塾大学大学院)、2人(新潟大学大学院)、1人(上智大学大学院)
● 所属する所内委員会
1-
ISAS Committee化学物質専門部会(2019.12~現在)