Monitoring middle-atmospheric water vapor over Seoul by using a 22 GHz ground-based radiometer, SWARA

被引:0
|
作者
Ka, Soohyun [1 ]
de Wachter, Evelyn [2 ]
Kaempfer, Niklaus [2 ]
Oh, Jung Jin [1 ]
机构
[1] Sookmyung Womens Univ, Reaserch Inst Global Environm, 52 Hyochangwon Gil, Seoul 140742, South Korea
[2] Univ Bern, Inst Appl Phys, CH-3012 Bern, Switzerland
关键词
Water vapor; Remote Sensing; Microwave; Middle atmosphere; Retrieval;
D O I
10.1117/12.869501
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Water vapor is the strongest natural greenhouse gas in the atmosphere. It is most abundant in the troposphere at low altitudes, due to evaporation at the ocean surface, with maximum values of around 6 g/kg. The amount of water vapor reaches a minimum at tropopause level and increases again in the middle atmosphere through oxidation of methane and vertical transport. Water vapor has both positive and negative effects on global warming, and we need to study how it works on climate change by monitoring water vapor concentration in the middle atmosphere. In this paper, we focus on the 22 GHz ground-based radiometer called SWARA (Seoul Water vapor Radiometer) which has been operated at Sookmyung women's university in Seoul, Korea since Oct. 2006. It is a joint project of the University of Bern, Switzerland, and the Sookmyung Women's University of Seoul, South Korea. The SWARA receives 22.235 GHz emitted from water vapor spontaneously and converts down to 1.5 GHz with +/-0.5 GHz band width in 61 kHz resolution. To represent 22.235 GHz water vapor spectrum precisely, we need some calibration methods because the signal shows very weak intensity in similar to 0.1 K on the ground. For SWARA, we have used the balancing and the tipping curve methods for a calibration. To retrieve the water vapor profile, we have applied ARTS and Qpack software. In this paper, we will present the calibration methods and water vapor variation over Seoul for the last 4 years.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Retrieval of atmospheric water vapour using a ground-based single-channel microwave radiometer
    Jarlemark, P
    Elgered, G
    INTERNATIONAL JOURNAL OF REMOTE SENSING, 2003, 24 (19) : 3821 - 3837
  • [22] EXPERIMENTAL-DETERMINATION OF WATER-VAPOR PROFILES FROM GROUND-BASED RADIOMETER MEASUREMENTS AT 21.0 AND 31.4 GHZ
    SKOOG, BG
    ASKNE, JIH
    ELGERED, G
    JOURNAL OF APPLIED METEOROLOGY, 1982, 21 (03): : 394 - 400
  • [23] GROUND-BASED MEASUREMENTS OF WATER-VAPOR IN THE MIDDLE ATMOSPHERE
    NEDOLUHA, GE
    BEVILACQUA, RM
    GOMEZ, RM
    THACKER, DL
    WALTMAN, WB
    PAULS, TA
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1995, 100 (D2) : 2927 - 2939
  • [24] OZONE AND WATER VAPOR MONITORING USING A GROUND-BASED LIDAR SYSTEM.
    Megie, G.
    Pelon, J.
    Lefrere, J.
    Cahen, C.
    Flamant, P.H.
    1600, (39):
  • [25] Monitoring the Migration of Water Vapor Using Ground-Based GNSS Tropospheric Products
    Li, Haobo
    Choy, Suelynn
    Wang, Xiaoming
    Liang, Hong
    Zhang, Kefei
    IEEE GEOSCIENCE AND REMOTE SENSING LETTERS, 2023, 20
  • [26] ARIS-Campaign: intercomparison of three ground based 22 GHz radiometers for middle atmospheric water vapor at the Zugspitze in winter 2009
    Straub, C.
    Murk, A.
    Kaempfer, N.
    Golchert, S. H. W.
    Hochschild, G.
    Hallgren, K.
    Hartogh, P.
    ATMOSPHERIC MEASUREMENT TECHNIQUES, 2011, 4 (09) : 1979 - 1994
  • [27] Validation of integrated water vapor from numerical models using ground-based GPS, SSM/I, and water vapor radiometer measurements
    Köpken, C
    JOURNAL OF APPLIED METEOROLOGY, 2001, 40 (06): : 1105 - 1117
  • [28] Passive ground-based remote sensing of atmospheric temperature, water vapor, and cloud liquid water profiles by a frequency synthesized microwave radiometer
    Solheim, F
    Godwin, JR
    METEOROLOGISCHE ZEITSCHRIFT, 1998, 7 (06) : 370 - 376
  • [29] Atmospheric water parameters measured by a ground-based microwave radiometer and compared with the WRF model
    Cossu, Federico
    Hocke, Klemens
    Martynov, Andrey
    Martius, Olivia
    Maetzler, Christian
    ATMOSPHERIC SCIENCE LETTERS, 2015, 16 (04): : 465 - 472