Spectrophotometric results from the Copernicus satellite. IV - Molecular hydrogen in interstellar space.
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Publications and source records attributed to Jenkins, E. B..
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An f/2 objective-grating spectrograph aboard an Aerobee rocket recorded a faint image of Comet Tago-Sato-Kosaka (1969g) in L-alpha emission. Some sharpening of the image and reduction of film grain noise was accomplished by multiplying the picture's Fourier transform by an optimum filter function. After this processing, which was carried out digitally, the L-alpha comet image appeared as a nearly circularly symmetric diffuse glow approximately 800,000 km in diameter. There was also the suggestion of a faintly visible core of emission whose dimensions are less than 100,000 km. The sublimation of ice in the nucleus of the comet and the subsequent dissociation of the free water molecules by sunlight could produce a large cloud of hydrogen atoms around the comet. Resonant reradiation of solar L-alpha emission by this cloud is probably responsible for the most of the observed emission.
A far UV spectrometer aboard OAO-2 observed the wavelength region near 1216 A for 69 stars of spectral type B2 or earlier. From the strength of the observed interstellar L-alpha absorption, column densities of atomic hydrogen were derived over distances averaging 300 pc away from the sun. Measurements of the equivalent widths of this absorption were found to be inappropriate for deducing column densities because of the blending of nearby strong stellar lines by the 12 A wide instrumental profile of the OAO. Instead, the OAO data were compared with synthetic UV spectra, originally derived from earlier higher-resolution rocket observations, which were computer processed to simulate the effects of absorption by different amounts of hydrogen followed by the instrumental blending.
The Wisconsin far ultraviolet spectrometer aboard OAO-2 observed the wavelength region near 1216 A for 69 stars of spectral type B2 or earlier. From the strength of the observed interstellar L sub alpha absorption, atomic hydrogen column densities were derived over distances averaging 300 pc away from the sun. The OAO data were compared to synthetic ultraviolet spectra, originally derived from earlier higher resolution rocket observations, which were computer processed to simulate the effects of absorption by different amounts of hydrogen followed by the instrumental blending.
Interstellar Lyman alpha absorption equivalent widths in hot stars spectra, examining rocket and satellite observations
Lyman alpha absorption by interstellar neutral hydrogen observed in O and B stars UV spectra
L-alpha absorption equivalent width measurements in rocket UV spectra of beta-one, delta and pi Scorpii for interstellar hydrogen densities
Interstellar Lyman alpha absorption spectra discrepancies emphasizing neutral hydrogen
Alterations in transthoracic electrical impedance with acute intravascular overload and pulmonary edema
Far UV spectroscopy of Jupiter by rocket-borne spectrograph
Far UV spectra of zeta Puppis and gamma super two Velorum with 1.6 A resolution photographed with all reflective objective spectrograph on Aerobee rocket
Far UV spectra of O and B stars in Orion photographed from Aerobee rocket, describing wavelength measurements and line identifications
Far UV spectra of brighter stars in vicinity of epsilon Orionis photographed with objective spectrograph carried by rocket
Correction to second approximation calculation of geomagnetic field, solar wind interface