Welcome to Journal of Beijing Institute of Technology
Volume 27Issue 4
.
Turn off MathJax
Article Contents
Hamed Ahmadloo, Jingrui Zhang. Cutting-Edge Space Exploration Technology Maturity Level Facilitation with Support of Space Debris Removal Missions[J]. JOURNAL OF BEIJING INSTITUTE OF TECHNOLOGY, 2018, 27(4): 477-484. doi: 10.15918/j.jbit1004-0579.180103
Citation: Hamed Ahmadloo, Jingrui Zhang. Cutting-Edge Space Exploration Technology Maturity Level Facilitation with Support of Space Debris Removal Missions[J].JOURNAL OF BEIJING INSTITUTE OF TECHNOLOGY, 2018, 27(4): 477-484.doi:10.15918/j.jbit1004-0579.180103

Cutting-Edge Space Exploration Technology Maturity Level Facilitation with Support of Space Debris Removal Missions

doi:10.15918/j.jbit1004-0579.180103
  • Received Date:2018-01-26
  • Considering current space debris situation in outer space environment, different methods for debris removal missions are proposed. In addition, advanced technologies are needed to be demonstrated for future human space exploration programs. The main issue regarding to these missions is high mission cost for both debris removal missions and space environmental tests to achieve high maturity level for new space-usable technologies. Since, these missions are unavoidable for future of human space activities, a solution which can tackle these challenges is necessary. This paper will address to an idea which has the possibility to give a solution for facilitating technology readiness level (TRL) maturity tests by debris removal mission platform consideration.
  • loading
  • [1]
    Bonnal C, Ruault J, Desjean M. Active debris removal:recent progress and current trends[J]. Acta Astronaut, 2013, 85:51-60.
    [2]
    Nock K T, Aaron K M. Removing orbital debris with less risk[J]. J Spacecr Rockets, 2013,50(2):365-380.
    [3]
    Inter-Agency Space Debris Coordination Committee. IADC space debris mitigation guidelines[M].[S.l.]:IADC, 2007:1-10.
    [4]
    Zhang Juan, Liu Wei, Peng Xiamei. Research on technology transfer readiness level and its application in university technology innovation management[C]//International Confernce on E-Business and E-Government, 2010:3-6.
    [5]
    Macdonald M, Badescu V. The international handbook of space technology[M].[S.l.]:Springer Praxis Books, 2014.
    [6]
    Macauley M K. The economics of space debris:estimating the costs and benefits of debris mitigation[J]. Acta Astronaut, 2015, 115:160-164.
    [7]
    Shan M, Guo J, Gill E. Review and comparison of active space debris capturing and removal methods[J]. Prog Aerosp Sci, 2016, 80:18-32.
    [8]
    Schaub H, Jasper L E X, Anderson P V, et al. Cost and risk assessment for spacecraft operation decisions caused by the space debris environment[J]. Acta Astronaut, 2015, 113:66-79.
    [9]
    Ahmadloo H, Zhang J. De-orbiting collision risk assessment and detailed orbital simulation of LEO space debris removal drag sail[C]//The 9th Asian-Pacific Conference on Aerospace Technology and Science & The 2nd Asian Joint Symposium on Aerospace, 2017:201-215.
    [10]
    Bolden C F Jr. NASA strategic space technology investment plan[R]. Washington, D.C.:NASA, 2012.
    [11]
    Industrial Policy Committee of ESA. Science programme technology development plan[R].[S.l.]:ESA, 2017.
  • 加载中

Catalog

    通讯作者:陈斌, bchen63@163.com
    • 1.

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (621) PDF downloads(467) Cited by()
    Proportional views
    Related

    /

      Return
      Return
        Baidu
        map