Equilibrium Temperatures and Directional Emissivity of Sunlit Airless Surfaces With Applications to the Moon

被引:13
|
作者
Rubanenko, L. [1 ]
Schorghofer, N. [2 ]
Greenhagen, B. T. [3 ]
Paige, D. A. [1 ]
机构
[1] Univ Calif Los Angeles, Dept Earth Planetary & Space Sci, Los Angeles, CA 90095 USA
[2] Planetary Sci Inst, Tucson, AZ USA
[3] Johns Hopkins Univ, Appl Phys Lab, Laurel, MD USA
关键词
Moon; emissivity; roughness; temperatures; BIDIRECTIONAL REFLECTANCE SPECTROSCOPY; THERMAL EMISSION; ROUGH-SURFACE; LUNAR; MODEL; TOPOGRAPHY; STABILITY; PLANETARY; CRATERS; ALBEDO;
D O I
10.1029/2020JE006377
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Solar irradiance dominates the heat flux incident on airless planetary bodies. In thermal equilibrium, surface roughness affects the temperature distribution by changing the incidence angle local to each slope. In order to simulate temperatures and thermal emissions at different phase angles, existing thermophysical models usually employ computationally expensive techniques such as ray tracing. Here we derive the equilibrium surface temperature distribution of sunlit Gaussian rough surfaces, providing an exact solution for the Sun at the zenith and an approximate solution for the general case. We find that although the slope distribution of realistic airless surfaces is often non-Gaussian, their temperature distribution is well modeled assuming a Gaussian slope distribution. We additionally present closed-form expressions that describe the radiation emitted from rough surfaces at different emissions angles and employ them to radiometrically estimate the roughness of the lunar surface using measurements obtained by Lunar Reconnaissance Orbiter (LRO) Diviner. Our model may also be applied to studying the roughness of resolved and unresolved surfaces on other airless planetary bodies.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] The Spectral Directional Emissivity of Photovoltaic Surfaces
    D. Labuhn
    S. Kabelac
    International Journal of Thermophysics, 2001, 22 : 1577 - 1592
  • [2] The spectral directional emissivity of photovoltaic surfaces
    Labuhn, D
    Kabelac, S
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2001, 22 (05) : 1577 - 1592
  • [3] Modeling near-surface temperatures of airless bodies with application to the Moon
    Glaeser, P.
    Glaeser, D.
    ASTRONOMY & ASTROPHYSICS, 2019, 627
  • [4] Measurement of Directional Spectral Emissivity at High Temperatures
    Y. M. Guo
    S. J. Pang
    Z. J. Luo
    Y. Shuai
    H. P. Tan
    H. Qi
    International Journal of Thermophysics, 2019, 40
  • [5] Measurement of Directional Spectral Emissivity at High Temperatures
    Guo, Y. M.
    Pang, S. J.
    Luo, Z. J.
    Shuai, Y.
    Tan, H. P.
    Qi, H.
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 2019, 40 (01)
  • [6] Normal emissivity of samples surrounded by surfaces at diverse temperatures
    Coppa, P
    Consorti, A
    MEASUREMENT, 2005, 38 (02) : 124 - 131
  • [7] Predicting the directional spectral emissivity for rough surfaces polished by sandpaper
    Li, Longfei
    Ruan, Wenyue
    Wang, Weilong
    Yu, Kun
    Zhang, Kaihua
    Liu, Yanlei
    Liu, Yufang
    TRIBOLOGY INTERNATIONAL, 2023, 185
  • [8] Tailoring the spectral and directional emissivity of functionalized laser processed surfaces
    Butler, Andrew
    Reicks, Andrew
    Alexander, Dennis
    Gogos, George
    Zuhlke, Craig
    Argyropoulos, Christos
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2024, 41 (10) : 2237 - 2246
  • [9] A conceptual model for effective directional emissivity from nonisothermal surfaces
    Li, XW
    Strahler, AH
    Friedl, MA
    IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1999, 37 (05): : 2508 - 2517
  • [10] Conceptual model for effective directional emissivity from nonisothermal surfaces
    Li, Xiaowen
    Strahler, Alan H.
    Friedl, Mark A.
    IEEE Transactions on Geoscience and Remote Sensing, 1999, 37 (5 II): : 2508 - 2517