Infrared-line emission from planetary nebulae.
Planetary nebulae IR emission intensities, discussing radiative recombination, ionization equilibrium and fine structure level population
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Planetary nebulae IR emission intensities, discussing radiative recombination, ionization equilibrium and fine structure level population
Weak scattering, wave optics results are given for the first-order log-amplitude and phase, and for the second-order phase and angle of arrival, of radiation propagating through a turbulent planetary atmosphere. The analytical results include the effects of coupling to the inhomogeneous background upon which the turbulence is superimposed. Such coupling significantly affects signal characteristics in stellar and spacecraft occultation experiments, in contrast to situations involving much shorter paths, as in terrestrial propagation experiments.
Shock layer radiation predictions from molecular band systems in Martian and Venusian atmospheres
Cosmic radiation intensity decreases observed at earth and in nearby interplanetary magnetic fields
Outward flux and intensity of scattered radiation for top of Rayleigh atmosphere lying above smooth water surface that reflects radiation according to Fresnel law
Some 40 publications that appeared in scientific journals from 1973 to 1981 as well as 45 scientific reports issued during the grant period are listed by title. Topics cover the development of a matrix operator theory of radiative transfer which made possible the exact model calculations of the radiance as a function of height in planetary atmospheres; calculation of the Mie phase matrix for various types of particles as well as for radiance and polarization in planetary atmospheres; analysis of high dispersion spectroscopic observations of Venus; calculation of curves of growth for Venus; the development of a theory for calculating radiative transfer in spherical shell atmospheres; investigations of zonal winds on Venus; and examination of Rayleigh scattering.
Higher-plant leaves survival under UV along and under simulated solar UV radiation corresponding to radiation incident on Mars, Earth and Venus
Inverse problem of radiative transfer as applied to remote measurements of infrared radiation from planetary atmospheres
Convective and radiative heat transfer to reentry vehicles at superorbital velocities
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The original problem of anisotropic scattering in an atmosphere illuminated by a unidirectional source is replaced by an analogous formulation where the incident light is omnidirectional. A radiative-transfer equation for the omnidirectional case is obtained in which the direction of illumination plays no role and the source-function analog, Sobolev's (1972) source function Phi exponent m, contains only a single integral term. For radiation incident on the top or the bottom of the atmosphere, this equation involves the functions b exponent m and h exponent m, respectively, with m corresponding to the order of the harmonic component of the scattered radiation field; these two functions are shown to be only one through some simple reciprocity relations. The transfer problem is then reformulated for the function a exponent m, in which case the source-function analog (Sobolev's function D exponent m) involves incident direction.
The research accomplished during this period is briefly summarized. The interior radiances within an optically deep absorbing medium scattering according to the Haze L phase function is discussed along with a method for calculating the radiance and color of the twilight sky. The application of the matrix operator method to calculations of radiance, polarization, and ellipticity of the radiation scattered from homogeneous layers scattering is reported. Reports, and publications are listed.
Radiative heating and cooling provide primary source and ultimate sink of energy driving lower planetary atmospheres. Evaluating the sensitivities of atmospheric dynamics models on these primary atmospheric parameters requires knowing how heating and cooling rates depend on these same parameters. We discuss two approaches that make it possible to directly compute the sensitivities of heating and cooling rates in parallel with evaluation of heating and cooling rates themselves.
Methods for obtaining temperature profile of planetary atmosphere from remote radiometric measurements
Diopside, peridot and oligoclase optical constants found by measuring reflectance and transmittance spectra at high temperatures
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Outward flux and intensity of scattered radiation for top of Rayleigh atmosphere lying above smooth water surface that reflects radiation according to Fresnel law
Target: Europa lander mission, plus future NASA outer planetary missions in radiation environments