中文核心期刊

中国科技核心期刊

中国科学引文数据库(CSCD)来源期刊

中国高校百佳科技期刊

中国宇航学会深空探测技术专业委员会会刊

高级检索

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

载人深空探测活动中的尿液处理回收技术分析

朱国荣,谢倍珍,刘红

downloadPDF
朱国荣, 谢倍珍, 刘红. 载人深空探测活动中的尿液处理回收技术分析[J]. 深空探测学报(中英文), 2018, 5(6): 582-590. doi: 10.15982/j.issn.2095-7777.2018.06.012
引用本文: 朱国荣, 谢倍珍, 刘红. 载人深空探测活动中的尿液处理回收技术分析[J]. 深空探测学报(中英文), 2018, 5(6): 582-590.doi:10.15982/j.issn.2095-7777.2018.06.012
ZHU Guorong, XIE Beizhen, LIU Hong. Analysis of Urine Treatment and Recovery Technology Used in Manned Deep Space Exploration[J]. Journal of Deep Space Exploration, 2018, 5(6): 582-590. doi: 10.15982/j.issn.2095-7777.2018.06.012
Citation: ZHU Guorong, XIE Beizhen, LIU Hong. Analysis of Urine Treatment and Recovery Technology Used in Manned Deep Space Exploration[J].Journal of Deep Space Exploration, 2018, 5(6): 582-590.doi:10.15982/j.issn.2095-7777.2018.06.012

载人深空探测活动中的尿液处理回收技术分析

doi:10.15982/j.issn.2095-7777.2018.06.012
基金项目:载人航天计划预研资助项目(020302)

Analysis of Urine Treatment and Recovery Technology Used in Manned Deep Space Exploration

  • 摘要:生物再生生命保障系统(Bioregenerative Life Support System,BLSS)是人类进行深空探测活动,实现长期载人空间飞行必需的关键技术,对于太空的探索开发具有重要意义。在BLSS系统内,航天员尿液废水的处理回收是非常重要的一部分。将尿液中所含有的大量的水分和丰富的营养物质回收用于系统内植物生长所需营养液的配制,既可以保证植物的正常生长,也有助于实现系统内物质的循环利用进而提高BLSS的闭合度。尿液中所含的大量盐分会威胁植物生长,所以需通过一定的技术手段处理尿液废水并回收其中的水分和营养。为了探索适用于BLSS中的尿液处理回收技术,首先分析了几种面向空间站应用的尿液处理技术,如蒸馏技术等;然后基于回收营养物质的需求,分析了面向民用的、发展较为成熟的尿液处理回收技术,如离子交换吸附技术、氨气吹脱技术和鸟粪石沉淀技术,并讨论了这些尿液处理回收技术在BLSS中的应用前景。最后基于BLSS的实际需求,提出了有望用于BLSS中的尿液处理回收技术流程。
  • [1]

    HARRY W. J. The life cycle cost (LCC) of life support recycling and resupply[C]//45th International Conference on Environmental Systems. Washington,USA:ICES,2015.

    [2] FU Y M,LI L Y,XIE B Z,et al. How to establish a bioregenerative life support system for long-term crewed missions to the Moon or Mars[J]. Astrobiology,2016,16(12):925-936
    [3] LIU H,YU C Y,MANUKOVSKY N S,et al. A conceptual configuration of the lunar base bioregenerative life support system including soil-like substrate for growing plants[J]. Advances in Space Research,2008,42(6):1080-1088
    [4] HU E,BARTSEV S I,LIU H. Conceptual design of a bioregenerative life support system containing crops and silkworms[J]. Advances in Space Research,2010,45(7):929-939
    [5] 刘红,GITELZON I I,胡恩柱,等. 生物再生生命保障系统理论与技术[M]. 北京:科学出版社,2009:1-10. LIU H,GITELZON I I,HU E Z. et al. Theory and technology of bioregenerative life Support system[M]. Beijing:Science Press,2009:1-10.
    [6] 刘红,胡恩柱,胡大伟,等. 生物再生生命保障系统设计的基本问题[J]. 航天医学与医学工程,2008,21(4):372-376 LIU H, HU E Z, HU D W,et al. Fundamental issues of bioregenerative life support system design[J]. Space Medicine&Medical Engineering,2008,21(4):372-376
    [7] LIND B B,BAN Z,BYDEN S. Volume reduction and concentration of nutrients in human urine[J]. Ecological Engineering,2001,16(4):561-566
    [8] UDERT K M,LARSEN T A,BIEBOW M,et al. Urea hydrolysis and precipitation dynamics in a urine-collecting system[J]. Water Research,2003,37(11):2571-2582
    [9] GRIGORIEV A I,SINYAK Y E,SAMSONOV N M,et al. Regeneration of water at space stations[J]. Acta Astronautica,2011,68(9):1567-1573
    [10] SAMSONOV N M,BOBE L S,NOVIKOV V M. Systems for water reclamation from humidity condensate and urine for space station[C]//24th International Conference On Environmental Systems and 5th European Symposium For Advancing Mobility on Space Environmental Control Systems. Friedrichshafen,Germany:SAE,1994.
    [11] 丁平,赵成坚,姚菲菲,等. 空间站洗浴废水净化技术研究[J]. 载人航天,2017,23(1):39-44 DING P,ZHAO C J,YAO F F,et al. Study on treatment technology of bathing wastewater in space station[J]. Manned Spaceflight,2017,23(1):39-44
    [12] 杨祺,张文瑞,于锟锟. 空间站尿液处理技术研究及进展[J]. 真空与低温,2014(6):315-318 YANG Q,ZHANG W R,YU K K. Research and development of techniques of urine processing[J]. Vacuum & Cryogenics,2014(6):315-318
    [13] 杨松林,丁平,赵成坚,等. 中国空间站水回收系统关键技术分析[J]. 航天医学与医学工程,2013,26(3):221-226 YANG S L,DING P,ZHAO C J,et al. Analysis of key techniques for water reclamation system in Chinese space station[J]. Space Medicine & Medical Engineering,2013,26(3):221-226
    [14] 蔡玉强. 蒸汽压缩蒸馏装置关键技术研究[D]. 北京:北京交通大学,2016. CAI Y Q. The research of key technology on vapor compression distillation assembly[D]. Beijing:Beijing Jiaotong University,2016.
    [15] CARRASQUILLO R L,CLOUD D,BEDARD J. Status of the node 3 regenerative ECLSS water recovery and oxygen generation systems[C]//34th International Conference on Environmental Systems. Colorado,USA:SAE,2004.
    [16] HOLDER D W,HUTCHENS C F. Development status of the international space station urine processor assembly[J]. Molecular Ecology,2003,24(18):4679-4696
    [17] BARTA D. Spacecraft water quality and monitoring needs for long duration human missions water recovery systems for human exploration of space[R]. Houston,USA:NASA Johnson Space Center,2017.
    [18] CARTER D L. Status of the regenerative ECLSS water recovery system[C]//International Conference on Environmental Systems. USA:SAE,2009.
    [19] EL-BOURAWI M S,DING Z,MA R,et al. A framework for better understanding membrane distillation separation process[J]. Journal of Membrane Science,2006,285(1):4-29
    [20] CARTINELLA J L,CATH T Y,FLYNN M T,et al. Removal of natural steroid hormones from wastewater using membrane contactor processes[J]. Environmental Science & Technology,2006,40(23):7381-7386
    [21] BOBE L,SAMSONOV N,GAVRILOV L,et al. Regenerative water supply for an interplanetary space station The experience gained on the space stations "Salut","Mir",ISS and development prospects[J]. Acta Astronautica,2007,61(1-6):8-15.
    [22] SAMSONOV N M,BOBE L S,NOVIKOV V M,et al. Experience in development and operation of a regenerative system for water supply on mir space station[C]//30th International Conference on Environmental Systems. Toulouse,France:SAE,2000.
    [23] SAMSONOV N M,BOBE L S,NOVIKOV V M,et al. Water supply based on water reclamation from humidity condensate and urine on a space station[C]//30th International Conference on Environmental Systems. Monterey,USA:SAE,1996.
    [24] HOLLAND P J,MILLER C L,BIRD D M. Recovering potable water from wastewater in space platforms by lyophilization[C]//22nd International Conference on Environmental Systems. Seattle,USA:SAE,1992.
    [25] 于涛,马军. 冷冻浓缩-RO空间站尿处理系统与试验研究[J]. 哈尔滨商业大学学报(自然科学版),2007,23(3):298-302 YU T,MA J. Combined freeze concentration and reverse osmosis technique for urine treatment in space station[J]. Journal of Harbin Institute of Technology (Natural Sciences Edition),2007,23(3):298-302
    [26] LIU X,CHEN M,BIAN Z,et al. Studies on urine treatment by biological purification using Azolla and UV photocatalytic oxidation[J]. Advances in Space Research,2008,41(5):783-786
    [27] UDERT K M,LARSEN T A,GUJER W. Fate of major compounds in source-separated urine[J]. Water Science & Technology,2006,54(11-12):413-420
    [28] 雷锡琼. 不同氮肥配施有机物料对翠冠梨树体生长及品质的影响[D]. 南京:南京农业大学,2014. LEI X Q. Effects of different nitrogen fertilizers combined with organic marerials on the growth of pear tree and fruit quality[D]. Nanjing:Nanjing Agricultural University,2014.
    [29] SAHU J N,PATWARDHAN A V,MEIKAP B C. Response surface modeling and optimization for production of ammonia from urea in a batch reactor[J]. Asia-Pacific Journal of Chemical Engineering,2010,4(4):462-470
    [30] 张向宇,高宁,张波,等. 高浓度尿素水解制氨试验研究[J]. 热力发电,2016,45(6):57-62 ZHANG X Y,GAO N,ZHANG B,et al. Experimental study on ammonia preparation by high concentration urea hydrolysis[J]. Thermal Power Generation,2016,45(6):57-62
    [31] SHEN S,LI M,LI B,et al. Catalytic hydrolysis of urea from wastewater using different aluminas by a fixed bed reactor[J]. Environmental Science & Pollution Research,2014,21(21):1-6
    [32] 李美娜. 原位镁铝水滑石的制备及其催化废水中尿素水解的研究[D]. 太原:太原理工大学,2015. Li M N. Preparation of In-situ Mg-Al Hydrotalcite and Its research on catalytic hydrolysis of urea in wastewater preparation of in-situ Mg-Al hydrotalcite and its research on catalytic hydrolysis of urea in wastewater[D]. Tai Yuan:TaiYuan University of Technology,2015.
    [33] AMTUL Z,RAHMAN A U,SIDDIQUI R A,et al. Chemistry and mechanism of urease inhibition[J]. Current Medicinal Chemistry,2002,9(14):1323-1348
    [34] RAY H,SAETTA D,BOYER T H. Characterization of urea hydrolysis in fresh human urine and inhibition by chemical addition[J]. Environmental Science Water Research & Technology,2018,4(1):87-98
    [35] WUANG R,PENGKANG J,CHENGGANG L,et al. A study on the migration and transformation law of nitrogen in urine in municipal wastewater transportation and treatment[J]. Water Science & Technology A Journal of the International Association on Water Pollution Research,2013,68(5):1072
    [36] LV M,MA X,ANDERSON D P,et al. Immobilization of urease onto cellulose spheres for the selective removal of urea[J]. Cellulose,2018,25(1):233magnesium ammonium phosphate[J]. Water Research,2001,35(17):4191-4199
    [37] SALISBURY F B,GITELSON J I,LISOVSKY G M. Bios-3 Siberian experiments in bioregenerative life support attempts to purify air and grow food for space exploration in a sealed environment began in 1972[J]. BioScience,1997,47(9):575-585
    [38] DUSSAP C G,CORNET J F,GROS J B. Simulation of mass fluxes in the MELISSA microorganism based ecosystem[C]//23rd International Conference on Environmental Systems. Colorado,USA:SAE,1993.
    [39] POUGHON L,DUSSAP C G,GROS J B. Preliminary study and simulation of the MELISSA loop including a higher plants compartment[C]//6th European Symposium on Space Environmental Control Systems. Noordwijk,The Netherlands:European Space Agency,1997.
    [40] ABDALLAH S B,AUNG B,AMYOT L,Et al. Salt stress (NaCl) affects plant growth and branch pathways of carotenoid and flavonoid biosyntheses in Solanum nigrum[J]. Acta Physiologiae Plantarum,2016,38(3):1-13
    [41] XIE B,ZHU G,LIU B,et al. The water treatment and recycling in 105-day bioregene乲乡噴i彶艥礠l卩赦e笠su湰剰祯屲浴萠入牸走噥敲乩奭瑥扮杴砠穩轮尠the p獡塬嵡穣e 1[J]. Acta Astronautica,2017(140):420-426
    [42] HUBER S J,THESIS M'S,WÄCHTER M,et al. Temperature dependent removal of sodium chloride (NaCl) from synthetic nitrified urine[D]. Karlsruhe:Karlsruhe Institute of Technology,2011.arated human urine using clinoptilolite and preliminary results of its use as fertilizer[J]. Water Science & Technology:A Journal of the International Association on Water Pollution Research,2011,63(4):811-817
    [43] KOCATÜRK N P,BAYKAL B B. Recovery of plant nutrients from dilute solutions of human urine and preliminary investigations on pot trials[J]. Clean-Soil Air Water,2012,40(5):538-544
    [44] BOYER T H,LANDRY K,SENDROWSKI A,et al. Nutrient recovery from urine using selective ion exchange[J]. Proceedings of the Water Environment Federation,2012,2012(15):1942-1943
    [45] TARPEH W A,KAI M U,NELSON K L. Comparing ion exchange adsorbents for nitrogen recovery from source-separated urine[J]. Environmental Science & Technology,2017,51(4):2373-2381
    [46] BAŞAKÇILARDAN-KABAKCI S,İPEKOĞLU A N,TALINLI I. Recovery of ammonia from human urine by stripping and absorption[J]. Environmental Engineering Science,2007,24(5):615-624
    [47] LIU B,GIANNIS A,ZHANG J,et al. Air stripping process for ammonia recovery from source-separated urine modeling and optimization[J]. Journal of Chemical Technology & Biotechnology,2015,90(12):2208-2217
    [48] 郝晓地,兰荔,王崇臣,等. MAP沉淀法目标产物最优形成条件及分析方法[J]. 环境科学,2009,30(4):1120-1125 HAO X D,LAN L,WANG C C,et al. Optimal formation conditions and analytical methods of the target product by map precipitation[J]. Chinese Journal of Environmental Science,2009,30(4):1120-1125
    [49] GANROT Z. Urine processing for efficient nutrient recovery and reuse in agriculture[D]. Gothenburg:University of Gothenburg,2005.
    [50] ETTER B,TILLEY E,KHADKA R,et al. Low-cost struvite production using source-separated urine inNepal[J]. Water Research,2011,45(2):852-862
    [51] ANTONINI S,PARIS S,EICHERT T,et al. Nitrogen and phosphorus recovery from human urine by struvite precipitation and air stripping in vietnam[J]. Acta Hydrochimica Et Hydrobiologica,2011,39(12):1099-1104
    [52] GAO Y,LIANG B,CHEN H,et al. An experimental study on the recovery of potassium (K) and phosphorous (P) from synthetic urine by crystallization of magnesium potassium phosphate[J]. Chemical Engineering Journal,2018(337):19-29
    [53] XU K,LI J,ZHENG M,et al. The precipitation of magnesium potassium phosphate hexahydrate for P and K recovery from synthetic urine[J]. Water Research,2015(80):71-79
    [54] GANROT Z. Use of zeolites for improved nutrient recovery from decentralized domestic wastewater[M]. The Netherlands:Bentham Science Publishers,2012.
    [55] LIND B B,BAN Z,BYDÉN S. Nutrient recovery from human urine by struvite crystallization with ammonia adsorption on zeolite and wollastonite[J]. Bioresource Technology,2000,73(2):169-174
    [56] STRATFUL I,SCRIMSHAW M D,LESTER J N. Conditions influencing the precipitation of
  • [1] 牛东文, 段建锋, 欧阳琦, 张宇, 陈略, 王美.“嫦娥四号”中继星再生伪码测距数据定轨精度分析. 深空探测学报(中英文), 2022, 9(1): 21-28.doi:10.15982/j.issn.2096-9287.2022.20191213002
    [2] 宋征宇, 黄兵, 汪小卫, 张宏剑.重复使用运载器回收技术现状与挑战. 深空探测学报(中英文), 2022, 9(5): 457-469.doi:10.15982/j.issn.2096-9287.2022.20220021
    [3] 伊鑫, 潘豪, 黄聪, 胡海峰, 赵海滨.垂直回收运载火箭高精度姿态控制技术. 深空探测学报(中英文), 2022, 9(5): 492-497.doi:10.15982/j.issn.2096-9287.2022.20210116
    [4] 胡振兴, 张希, 宋征宇, 田建东, 章凌, 陈献平, 黄海忠, 王辰.基于地面拦阻系统的火箭垂直着陆回收机构设计. 深空探测学报(中英文), 2022, 9(5): 477-482.doi:10.15982/j.issn.2096-9287.2022.20210109
    [5] 黄兵, 李东, 张树杰, 于子文.氢强迫循环预冷的系统仿真研究. 深空探测学报(中英文), 2021, 8(4): 399-406.doi:10.15982/j.issn.2096-9287.2021.20210051
    [6] 林敏, 张佳宁, 徐林丰, 祝伟, 任宁.“长征五号”火箭大容量调频遥测系统研制. 深空探测学报(中英文), 2021, 8(4): 372-379.doi:10.15982/j.issn.2096-9287.2021.20210040
    [7] 于志坚, 李海涛.月球与行星探测测控系统建设与发展. 深空探测学报(中英文), 2021, 8(6): 543-554.doi:10.15982/j.issn.2096-9287.2021.20210125
    [8] 李贺, 王禹, 杜小振, 曾庆良.一种可跳跃的月面移动机器人系统设计. 深空探测学报(中英文), 2020, 7(3): 304-310.doi:10.15982/j.issn.2095-7777.2020.20191011011
    [9] 周东, 徐晓伟, 贾阳, 郭坚, 李珂, 朱玛, 张红军.火星车机构集成控制系统设计与实现. 深空探测学报(中英文), 2020, 7(5): 450-457.doi:10.15982/j.issn.2096-9287.2020.20200033
    [10] 陈如荣, 张海燕, 金乘进, 高智胜, 朱岩, 岳友岭, 朱凯.FAST VLBI系统和观测研究. 深空探测学报(中英文), 2020, 7(2): 136-143.doi:10.15982/j.issn.2095-7777.2020.20190618001
    [11] 刘红, 姚智恺, 付玉明.深空探测生物再生生命保障系统研究进展和发展趋势. 深空探测学报(中英文), 2020, 7(5): 489-499.doi:10.15982/j.issn.2096-9287.2020.20191021001
    [12] 许心铭, 胡大伟, 付玉明, 张金晖, 刘红.低剂量电离辐射环境下微生物群落物种多样性的产生和维持机制. 深空探测学报(中英文), 2019, 6(1): 31-36.doi:10.15982/j.issn.2095-7777.2019.01.005
    [13] 甄贺伟, 徐晓玲, 李果, 周祚万.应用于空间微生物防护的多尺度杂化抗菌剂研究. 深空探测学报(中英文), 2019, 6(1): 37-45.doi:10.15982/j.issn.2095-7777.2019.01.006
    [14] 薛彬, 刘生润, 杨建峰.用于火星表面生命信息探测的激光拉曼技术进展. 深空探测学报(中英文), 2019, 6(5): 503-512.doi:10.15982/j.issn.2095-7777.2019.05.012
    [15] 刘建军, 苏彦, 左维, 任鑫, 孔德庆, 温卫斌, 张洪波, 李春来.中国首次火星探测任务地面应用系统. 深空探测学报(中英文), 2018, 5(5): 414-425.doi:10.15982/j.issn.2095-7777.2018.05.003
    [16] 郭祥艳, 刘传凯, 王晓雪.加拿大移动服务系统地面遥操作模式综述. 深空探测学报(中英文), 2018, 5(1): 78-84.doi:10.15982/j.issn.2095-7777.2018.01.011
    [17] 李宗良, 高俊, 刘国西, 周成, 汤章阳, 邹达人.小行星探测电推进系统方案研究. 深空探测学报(中英文), 2018, 5(4): 347-353.doi:10.15982/j.issn.2095-7777.2018.04.004
    [18] 任德鹏, 李青, 许映乔.月球基地能源系统初步研究. 深空探测学报(中英文), 2018, 5(6): 561-568.doi:10.15982/j.issn.2095-7777.2018.06.009
    [19] 张迅与, 徐天奕, 李翠.冯·卡门撞击坑物质成分研究. 深空探测学报(中英文), 2018, 5(1): 66-70.doi:10.15982/j.issn.2095-7777.2018.01.009
    [20] 秦旭东, 龙乐豪, 容易.我国航天运输系统成就与展望. 深空探测学报(中英文), 2016, 3(4): 315-322.doi:10.15982/j.issn.2095-7777.2016.04.003
  • 加载中
计量
  • 文章访问数:1184
  • HTML全文浏览量:57
  • PDF下载量:790
  • 被引次数:0
出版历程
  • 收稿日期:2018-03-28
  • 修回日期:2018-04-20
  • 刊出日期:2018-12-01

载人深空探测活动中的尿液处理回收技术分析

doi:10.15982/j.issn.2095-7777.2018.06.012
    基金项目:载人航天计划预研资助项目(020302)

摘要:生物再生生命保障系统(Bioregenerative Life Support System,BLSS)是人类进行深空探测活动,实现长期载人空间飞行必需的关键技术,对于太空的探索开发具有重要意义。在BLSS系统内,航天员尿液废水的处理回收是非常重要的一部分。将尿液中所含有的大量的水分和丰富的营养物质回收用于系统内植物生长所需营养液的配制,既可以保证植物的正常生长,也有助于实现系统内物质的循环利用进而提高BLSS的闭合度。尿液中所含的大量盐分会威胁植物生长,所以需通过一定的技术手段处理尿液废水并回收其中的水分和营养。为了探索适用于BLSS中的尿液处理回收技术,首先分析了几种面向空间站应用的尿液处理技术,如蒸馏技术等;然后基于回收营养物质的需求,分析了面向民用的、发展较为成熟的尿液处理回收技术,如离子交换吸附技术、氨气吹脱技术和鸟粪石沉淀技术,并讨论了这些尿液处理回收技术在BLSS中的应用前景。最后基于BLSS的实际需求,提出了有望用于BLSS中的尿液处理回收技术流程。

English Abstract

朱国荣, 谢倍珍, 刘红. 载人深空探测活动中的尿液处理回收技术分析[J]. 深空探测学报(中英文), 2018, 5(6): 582-590. doi: 10.15982/j.issn.2095-7777.2018.06.012
引用本文: 朱国荣, 谢倍珍, 刘红. 载人深空探测活动中的尿液处理回收技术分析[J]. 深空探测学报(中英文), 2018, 5(6): 582-590.doi:10.15982/j.issn.2095-7777.2018.06.012
ZHU Guorong, XIE Beizhen, LIU Hong. Analysis of Urine Treatment and Recovery Technology Used in Manned Deep Space Exploration[J]. Journal of Deep Space Exploration, 2018, 5(6): 582-590. doi: 10.15982/j.issn.2095-7777.2018.06.012
Citation: ZHU Guorong, XIE Beizhen, LIU Hong. Analysis of Urine Treatment and Recovery Technology Used in Manned Deep Space Exploration[J].Journal of Deep Space Exploration, 2018, 5(6): 582-590.doi:10.15982/j.issn.2095-7777.2018.06.012
参考文献 (56)

目录

    /

      返回文章
      返回
        Baidu
        map