Zhang Junjie. Wind Tunnel Test for Roll/Lateral Aeroservoelasticity of Aircraft[J]. Journal of Beijing University of Aeronautics and Astronautics, 2003, 29(2): 120-123. (in Chinese)
Citation: Pang Liping, Wang Jun. Grey relational analysis of fuzzy comprehesive evaluation of air quality in manned spacecraft[J]. Journal of Beijing University of Aeronautics and Astronautics, 2005, 31(05): 548-551. (in Chinese)

Grey relational analysis of fuzzy comprehesive evaluation of air quality in manned spacecraft

  • Received Date: 22 Dec 2003
  • Publish Date: 31 May 2005
  • The habitation module in manned spacecraft is a closed-chamber, and its air quality is increasingly attached importance along with longer time missions because it greatly influences the health of crew. It is necessary to put forward a new evaluation method of air quality. Based on the grading fuzzy membership functions of the trace contaminant being bought forward, a grey relational analysis of fuzzy comprehesive evaluation was adopted to assess the air quality in manned spacecraft. In addition, the membership functions of fuzzy grade of some important trace contaminants were firstly proposed. This assessment method merges the merits of the fuzzy evaluation and the grey one. It less depends on distributing rule and can analyze the trend of development. It can present fuzzy comprehensive evaluation matrix and grey relational grade at the same time, therefore reflect well air quality status and trend in development. The analysis shows it can more reasonably reflect actual air quality in manned spacecraft, and be used to assess the working performance of the trace contaminant control system.

     

  • [1] Perry J L. Trace chemical contaminant generation rates for spacecraft contamination control system design .NASA Technical Memorandum 108497, Alabama:Marshell Space Flight Center,1995.1~8 [2] Wieland Paul O. Designing for human presence in space:an introduction to environmental control and life support systems . NASA RP-1324, Alabama:Marshell Space Flight Center,1994. 204~205 [3] 初春玲. 室内空气质量的模糊性综合评判[J]. 建筑热能通风空调, 1999,18(3):9~11 Chu Chunling. Fuzzy comprehensive evaluation of the IAQ [J]. Building Energy and Environment, 1999,18(3):9~11 (in Chinese) [4] 夏 军. 区域水环境质量灰关联度评价方法的研究[J]. 水文, 1995, 15(2):4~19 Xia Jun. The study of degree of gray relationship in region water environment quality [J]. Hydrography, 1995, 15(2):4~19(in Chinese) [5] 韩 旭. 密闭空间空气质量的相似评价[J]. 建筑热能通风空调, 1997,17(1):24~26 Han Xu. The similarity evaluation on air quality in the closed room[J]. Building Energy and Environment, 1997, 17(1):24~26(in Chinese) [6] 李凡修. 相似率法在室内空气质量评价中的应用[J]. 数理医药学杂志, 2003,16(5):461~462 Li Fanxiu. The application of similarity ratio method in IAQ assessment [J]. Journal of Mathematical Medicine, 2003,16(5):461~462 (in Chinese) [7] 王红瑞. 环境质量的模糊综合评价[J]. 北京师范大学学报, 1997,33(4):543~547 Wang Hongrui. Study on fuzzy comprehensive evaluation [J]. Journal of Beijing Normal University, 1997,33(4):543~547 (in Chinese) [8] 傅 立. 灰色系统理论及其应用[M]. 北京:科学技术文献出版社, 1992. 185~210 Fu Li. The gray system theory and application [M]. Beijing:Scientific and Technical Documents Publishing House, 1992. 185~210 (in Chinese) [9] Ray C D, Salyer B H. ISS ECLSS technical task agreement summary report . Nasa/Tm-1999-209573, Alabama:Marshell Space Flight Center, 1999. 72~98 [10] Edeen M, Petete T, Henninger D L. Lunar-mars life test project phase III final reprt . JSC form 151C NASA-JSC-39144,Alabama:Marshell Space Flight Center, 2001. 57~71
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