تطبيق تحليل الشكل القائم على البيانات المتعددة في بناء محطة البحوث القمرية الدولية

  • role: First author第一作者
  • Affiliation:

    School of Land Dcience and Technology, China University of Geosciences (Beijing), Beijing 100083, China

    Research Center for Remote Sensing of the Moon and Planets, China University of Geosciences (Beijing), Beijing 100083, China

    Joint Research Center for Deep Space Exploration of the Ministry of Education, International Cooperative Research Sub Center for Lunar and Planetary Exploration, Beijing 100083, China

  • Email:595828787@qq.com
  • Introduction:E-mail 595828787@qq.com
DU Xing,  
  • role: Corresponding author通信作者
  • Affiliation:

    School of Land Dcience and Technology, China University of Geosciences (Beijing), Beijing 100083, China

    Research Center for Remote Sensing of the Moon and Planets, China University of Geosciences (Beijing), Beijing 100083, China

    Joint Research Center for Deep Space Exploration of the Ministry of Education, International Cooperative Research Sub Center for Lunar and Planetary Exploration, Beijing 100083, China

  • Email:zzkang@cugb.edu.cn
  • Introduction:E-mail zzkang@cugb.edu.cn
KANG Zhizhong*,  
  • Affiliation:

    School of Land Dcience and Technology, China University of Geosciences (Beijing), Beijing 100083, China

    Research Center for Remote Sensing of the Moon and Planets, China University of Geosciences (Beijing), Beijing 100083, China

    Joint Research Center for Deep Space Exploration of the Ministry of Education, International Cooperative Research Sub Center for Lunar and Planetary Exploration, Beijing 100083, China

HU Teng,  
  • Affiliation:

    School of Land Dcience and Technology, China University of Geosciences (Beijing), Beijing 100083, China

    Research Center for Remote Sensing of the Moon and Planets, China University of Geosciences (Beijing), Beijing 100083, China

    Joint Research Center for Deep Space Exploration of the Ministry of Education, International Cooperative Research Sub Center for Lunar and Planetary Exploration, Beijing 100083, China

XIAO Meng,  
  • Affiliation:

    School of Land Dcience and Technology, China University of Geosciences (Beijing), Beijing 100083, China

    Research Center for Remote Sensing of the Moon and Planets, China University of Geosciences (Beijing), Beijing 100083, China

    Joint Research Center for Deep Space Exploration of the Ministry of Education, International Cooperative Research Sub Center for Lunar and Planetary Exploration, Beijing 100083, China

LI Mo

ملخص

إن إنشاء محطة البحوث القمرية الدولية (ILRS) هو استراتيجية فضائية هامة للصين تتجاوب مع الوضع الراهن. لدراسة تطبيق تحليل الشكل القائم على البيانات المتعددة في عملية بناء ILRS، يقسم هذا البحث "خطة ILRS" إلى مرحلتين: مرحلة اختيار الموقع ومرحلة الاستكشاف العلمي، ويحلل القيود التي يجب مراعاتها في مرحلة اختيار موقع ILRS، ويصف بإيجاز تطبيق بيانات الصور الظلية، وتضاريس سطح القمر، وأشعة الميكروويف، والصور المتعددة/ فوق الطيفية، ورادار القمر، والأشعة الجاما، والتحليلات المنحدرية، والخرائط الجيولوجية وغيرها من بيانات متعددة المصادر في مرحلة اختيار الموقع، ويستخدم بيانات تحليل استشعار الضوء والتضاريس، ومقياس الإشعاع LRO Diviner، وقياس ارتفاع الليزر القمري LOLA، ورسومات الجيولوجية وبيانات متعددة المصادر أخرى لتحليل سمات سطح القمر في القطب الجنوبي، والظروف الحرارية، والظروف الإضاءة، والرؤية إلى الأرض، والسمات الجيولوجية، ويقدم في الختام مجموعة من العوامل التي يجب مراعاتها في مرحلة اختيار موقع ILRS وخصائص مناطق الهبوط المناسبة، ومن ثم يختار 3 نقاط هبوط مرشحة كمثال على منطقة Amundsen. وأخيراً، استناداً إلى نتائج تحليل البيانات المتعددة المصادر، يقدم هذا البحث مسارات الجولة في مرحلة الاستكشاف العلمي لـ ILRS، وتحليل الكشف عن الجليد المائي، وإقامة محطات المراقبة كمرجع. وبشكل شامل، تُقدم نتائج تحليل الشكل القائم على البيانات المتعددة الهامة إلى ILRS في الاختيار وأداء المهام العلمية للدور مرجعاً مهمًا.

مفهوم

محطة البحوث القمرية الدولية; البيانات المتعددة المصادر; تحليل الشكل; اختيار الموقع; الاستكشاف العلمي

References

  1. 1.
    Dong J and Lu Z. 2021. Guide to partners of international lunar research station (Overview). Space International, (8): 17-20
  2. 2.
    Epp C D, Robertson E A and Brady T. 2008. Autonomous landing and hazard avoidance technology (ALHAT)//IEEE Aerospace Conference. Big Sky: IEEE: 1-7
  3. 3.
    Flahaut J, Blanchette-Guertin J F, Jilly C, Sharma P, Souchon A, Van Westrenen W and Kring D A. 2012. Identification and characterization of science-rich landing sites for lunar lander missions using integrated remote sensing observations. Advances in Space Research, 50(12): 1647-1665
  4. 4.
    Flahaut J, Carpenter J, Williams J P, Anand M, Crawford I A, Van Westrenen W, Füri E, Xiao L and Zhao S. 2020. Regions of interest (ROI) for future exploration missions to the lunar South Pole. Planetary and Space Science, 180: 104750
  5. 5.
    Fortezzo C M, Spudis P D and Harrel S L. 2020. Release of the digital unified global geologic map of the moon at 1: 5,000,000-scale//51st Lunar and Planetary Science Conference. The Woodlands: Lunar and Planetary Institute
  6. 6.
    He Y. 2012. Study on Lunar Topography Surveying and Mapping Based on Lunar CCD Imagery and Laser Altimeter Data. Zhengzhou: PLA Information Engineering University
  7. 7.
    Jia Y Z and Zou Y L. 2016. Research on lunar site selection for lunar based earth observation. Spacecraft Engineering, 25(6): 116-121
  8. 8.
    Jolliff B L, Wieczorek M A, Shearer C K and Neal C R. 2006. New views of the moon. NY: Mineralogical Society of America: 172-208
  9. 9.
    Kaschubek D, Killian M and Grill L. 2021. System analysis of a Moon base at the South Pole: considering landing sites, ECLSS and ISRU. Acta Astronautica, 186: 33-49
  10. 10.
    Koebel D, Bonerba M, Behrenwaldt D, Wieser M and Borowy C. 2012. Analysis of landing site attributes for future missions targeting the rim of the lunar South Pole Aitken basin. Acta Astronautica, 80: 197-215
  11. 11.
    Kring D A and Durda D D. 2012. A global lunar landing site study to provide the scientific context for exploration of the Moon. [s.l.]: LPI
  12. 12.
    Li F, Wu B, Yang M, Zhao Y, Zhang H, Wu X Y, Xu Y Q and Ye Q. 2019. Topographic and occlusion analysis of the Chang’E-4 landing site in the Von Kármán crater. SCIENTIA SINICA Technologica, 49(12): 1385-1396
  13. 13.
    Li Y Q, Liu J Z, Ouyang Z Y, Li C L and Zou Y L. 2007. Petrologic distributions on the moon: based on the Lunar Prospector (LP) gamma-ray spectrometer data transformation. Acta Petrologica Sinica, 23(5): 1169-1174
  14. 14.
    Lin R H, Wang Q and Yang R H. 2022. Enlightenment of international major engineering cooperation mechanism on the construction of China’s international lunar scientific research station. Space International, (1): 38-43
  15. 15.
    Liu J Z, Hu C B, Pang F C, Kang Y, Li H, Ma J N and Lu X. 2020. Strategy of deep space exploration. SCIENTIA SINICA Technologica, 50(9): 1126-1139
  16. 16.
    Ma X R. 2021. China and Russia join hands to build a lunar scientific research station. Defence Industry Conversion in China, (5): 11-12
  17. 17.
    Mazarico E, Neumann G A, Smith D E, Zuber M T and Torrence M H. 2011. Illumination conditions of the lunar polar regions using LOLA topography. Icarus, 211(1): 1066-1081
  18. 18.
    Meng Z G, Chen S B, Liu C, Du X J and Lv H. 2008. Simulation on passive microwave radiative transfer in inhomogeneous lunar regolith. Journal of Jilin University (Earth Science Edition), 38(6): 1070-1074
  19. 19.
    Oberbeck V R and Quaide W L. 1968. Genetic implications of lunar regolith thickness variations. Icarus, 9(1/3): 446-465
  20. 20.
    Ouyang Z Y. 2005. Introduction to Lunar Science. Beijing: China Astronautic Publishing House: 25-275
  21. 21.
    Pei Z Y, Kang Y, Ma J N, Zhao C and Ma X S. 2022. Model-based collaborative demonstration method for international lunar research station. Acta Aeronautica et Astronautica Sinica, 43(12): 319-333
  22. 22.
    Pei Z Y, Liu J Z, Wang Q, Kang Y, Zou Y L, Zhang H, Zhang Y H, He H Y, Wang Q, Yang R H, Wang W and Ma J N. 2020. Overview of lunar exploration and International Lunar Research Station. Chinese Science Bulletin, 65(24): 2577-2586
  23. 23.
    Reedy R C. 1978. Planetary gamma-ray spectroscopy//Proc. Lunar Planet. Sci. Conf. 9th. New York: Pergamon Press, 2961-2984
  24. 24.
    Sanin A B, Mitrofanov I G, Litvak M L, Bakhtin B N, Bodnarik J G, Boynton W V, Chin G, Evans L G, Harshman K, Fedosov F, Golovin D V, Kozyrev A S, Livengood T A, Malakhov A V, McClanahan T P, Mokrousov M I, Starr R D, Sagdeev R Z, Tret’yakov V I and Vostrukhin A A. 2017. Hydrogen distribution in the lunar polar regions. Icarus, 283: 20-30
  25. 25.
    Shevchenko V V. 1992. The choice of the location of the lunar base//The Second Conference on Lunar Bases and Space Activities of the 21st Century. Houston: NASA: 155-160
  26. 26.
    Speyerer E J and Robinson M S. 2013. Persistently illuminated regions at the lunar poles: ideal sites for future exploration. Icarus, 222(1): 122-136
  27. 27.
    Wang X, Chen J P, Xu Y B, Zheng Y C, Yan B K and Wu J Z. 2012. Inversion of contents of TiO2 and MgO in Sinus Iridum Area of lunar surface based on Chang’e data. Earth Science Frontiers, 19(6): 28-36
  28. 28.
    Wilhelms D E, Oberbeck V R and Aggarwal H R. 1978. Size-frequency distributions of primary and secondary lunar impact craters//Lunar and Planetary Science Conference. New York: Pergamon Press: 3735-3762
  29. 29.
    Williams J P, Greenhagen B T, Paige D A, Schorghofer N, Sefton-Nash E, Hayne P O, Lucey P G, Siegler M A and Aye K M. 2019. Seasonal polar temperatures on the Moon. Journal of Geophysical Research: Planets, 124(10): 2505-2521
  30. 30.
    Wilson J T, Lawrence D J, Peplowski P N, Cahill J T S, Eke V R, Massey R J and Teodoro L F A. 2018. Image reconstruction techniques in neutron and gamma ray spectroscopy: improving lunar prospector data. Journal of Geophysical Research: Planets, 123(7): 1804-1822
  31. 31.
    Xiao L, Qiao L, Xiao Z Y, Huang Q, He Q, Zhao J N, Xue Z Q and Huang J. 2016. Main scientific issues worthy of attention in lunar landing exploration and suggestions on site selection of landing area. SCIENTIA SINICA: Physics, Mechanica and Astronomica, 46(2): 029602
  32. 32.
    Zhang H, Du Y, Li F, Zhang H, Ma J N, Sheng L Y and Wu K. 2020. Proposals for sites selection of soft landing on lunar south polar region. Journal of Deep Space Exploration, 7(3): 232-240

قراءة النص الكامل

The above content is generated by Large Model Translation. The translated content is for reference only. We do not assume any commercial or legal responsibilty for any consequences arising from the use of our website