PREDICTIONS OF PLUME RADIATION OUTPUT AS A FUCTION OF ARTIFICIAL SIGNATURES

被引:0
|
作者
Nwaneri, Sam [1 ]
Nwaneri, Benjamin Uchenna
Weathersby, TeAmbreya [1 ]
机构
[1] Alcorn State Univ, Dept Adv Technol, Alcorn State, MS 39096 USA
关键词
Target emission; emissivity; derived pixel; and effective and brightness temperatures;
D O I
10.1109/IGARSS.2012.6352276
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The category of plume radiation [1][2] discussed in this project is the characteristics molecular sensitivity or emission of water vapor (HO2v) and carbon dioxide (CO2), and other gases. [10] shows that the electromagnetic spectrum has specific bands that strongly represent this water vapor. At 2.7 and 6.3 mu m, the weaker and stronger bands show. On the other hand, the CO2 is stronger at about 4.3 mu m. The radiation is temperature-driven so the spatial thermodynamics and the surface emission of these two primary contents promote the plume or shifting radiation, which is transmitted irrespective of atmospheric attenuation. This temperature dependence affects pixel composition and velocity; hence, the plume that creates the target signature [4]. Continuous-point radiation category will be referred to as field radiation target [3]. It varies from smoldering forest fire to nuclear plant exhaust plume radiation, and further to hypervelocity jet engine exhaust plume radiation. In moderate discussions, this project evaluated two target categories: environmentally initiated and security initiated targets (EIT and SIT). To separate these targets, EIT is identified as taga and SIT, as target.
引用
收藏
页码:5860 / 5863
页数:4
相关论文
共 50 条
  • [41] Infrared radiation from turbojet exhaust plume
    Levy, Y.
    Lev, M.
    Ovcharenko, V.
    PROCEEDINGS OF THE ASME TURBO EXPO 2007, VOL 1, 2007, : 595 - 603
  • [42] SHORT SURVEY OF SRM PLUME RADIATION MODELLING
    Pandey, Ullekh
    Chacko, M. J.
    Shine, S. R.
    COMPUTATIONAL THERMAL SCIENCES, 2018, 10 (03): : 211 - 224
  • [43] Evidence of a plume on Europa from Galileo magnetic and plasma wave signatures
    Jia, Xianzhe
    Kivelson, Margaret G.
    Khurana, Krishan K.
    Kurth, William S.
    NATURE ASTRONOMY, 2018, 2 (06): : 459 - 464
  • [44] THE DOMINANT EFFECT OF ALUMINA ON NEARFIELD PLUME RADIATION
    LAREDO, D
    NETZER, DW
    JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 1993, 50 (05): : 511 - 530
  • [45] TRANSITION-FLOW EFFECTS ON PLUME RADIATION
    ELGIN, JB
    PROCEEDINGS OF THE SOCIETY OF PHOTO-OPTICAL INSTRUMENTATION ENGINEERS, 1983, 366 : 180 - 187
  • [46] The Plume Infrared Radiation Based on Visualization Computing
    Du, W.
    Fang, N.
    MECHANICAL, CONTROL, ELECTRIC, MECHATRONICS, INFORMATION AND COMPUTER, 2016, : 115 - 121
  • [47] Accelerated-Cherenkov radiation and signatures of radiation reaction
    Lynch, Morgan H.
    Cohen, Eliahu
    Hadad, Yaron
    Kaminer, Ido
    NEW JOURNAL OF PHYSICS, 2019, 21 (08):
  • [48] Study On Short-Term Predictions About Photovoltaic Output Power From Plants Lacking In Solar Radiation Data
    Shi, Xiao-yu
    Huang, Qiang
    Li, Jiang-feng
    Lei, Xu-wen
    2018 11TH INTERNATIONAL CONFERENCE ON INTELLIGENT COMPUTATION TECHNOLOGY AND AUTOMATION (ICICTA 2018), 2018, : 75 - 78
  • [49] Artificial Intelligence-Based Detection of Smoke Plume
    Jeong, Yemin
    Youn, Youjeong
    Kim, Seoyeon
    Kang, Jonggu
    Choi, Soyeon
    Im, Yungyo
    Seo, Youngmin
    Yu, Jeong-Ah
    Sung, Kyoung-Hee
    Kim, Sang-Min
    Lee, Yangwon
    KOREAN JOURNAL OF REMOTE SENSING, 2023, 39 (02) : 859 - 873
  • [50] AN INVESTIGATION OF THE ENVIRONMENTAL-IMPACT OF AN ARTIFICIAL THERMAL PLUME
    BENECH, B
    NOILHAN, J
    ATMOSPHERIC ENVIRONMENT, 1986, 20 (04) : 785 - 792