Incoherent backscatter observations of the F region during the November 12, 1966 solar eclipse
Incoherent backscatter observations of F region during solar eclipse
SEARCH · Search NASA
Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Incoherent backscatter observations of F region during solar eclipse
Coronal structure for solar eclipse of September 22, 1968
Sounding rocket Solar Eclipse Sensor for 7 March 1970 event, discussing mission, capabilities, data acquisition and design
We observed the 2 July 2019 total solar eclipse with a variety of imaging and spectroscopic instruments recording from three sites in mainland Chile: on the centerline at La Higuera, from the Cerro Tololo Inter-American Observatory, and from La Serena, as well as from a chartered flight at peak totality in mid-Pacific. Our spectroscopy monitored Fe X, Fe XIV, and Ar X lines, and we imaged Ar X with a Lyot filter adjusted from its original H-alpha bandpass. Our composite imaging has been compared with predictions based on modeling using magnetic-field measurements from the pre-eclipse month. Our time-differenced sites will be used to measure motions in coronal streamers.
We present an analysis of the gravity wave structure and the associated forcing of the middle atmosphere induced by the screening of the ozone layer from solar heating during a solar eclipse. Fourier integral techniques and numerical evaluation of the integral solutions were used to assess the wave field structure and to compute the gravity wave forcing of the atmosphere at greater heights. Our solutions reveal dominant periods of a few hours, characteristic horizontal and vertical scales of about 5000 to 10,000 km and 200 km, respectively, and an integrated momentum flux in the direction of eclipse motion of about 5.6 x 10 exp 8 N at each height above the forcing level. These results suggest that responses to solar eclipses may be difficult to detect above background gravity wave and tidal fluctuations until well into the thermosphere. Conversely, the induced body forces may penetrate to considerable heights because of the large wave scales and will have significant effects at levels where the wave field is dissipated.
Airborne scientific equipment procurement and installation aboard CV-990 aircraft for NASA SOLAR eclipse flight
Colorimetric measurements of solar eclipse and earth from Surveyor 3
Measurement of suprathermal electron flux caused by total solar eclipse of 7 Mar. 1970
Intra-Mercurial planets and comets discovered during solar eclipses, discussing size, orbital eccentricity, albedo and equilibrium temperature
In conjunction with the total solar eclipse on July 11, 2010 we coordinated a campaign between ground and space based observations. Our specific goal was to augment the ground based measurement of corona) prominence cavity temperatures made using iron lines in the IR (Habbal et al. 2010 ApJ 719 1362) with measurements performed by space based instruments. Included in the campaign were Hinode/EIS, XRT and SOT, PROBA2/SWAP, SDO/AIA, SOHO/CDS and STEREO/SECCHI/EUVI, in addition to the ground based IR measurements. We plan to use a combination of line ratio and forward modeling techniques to investigate the density and temperature structure of the cavities at that time.
Electron density and temperature, Lyman beta radiation, and X-ray band measurements during solar eclipse
Photographic search for small bright comets during solar eclipse
Response of ionospheric and exospheric electron contents to partial solar eclipse, using OGO 1 satellite
Ionospheric electron density measurements during solar eclipse by ATS 3 satellite
The effects of the removal of solar radiation, through solar eclipse, on the structure of the thermosphere are examined. The March 7, 1970 eclipse was explored with pilot probe rockets at times during the 42 minute period corresponding to 40, 80, and 100 percent totality. Measuring results show small temperature disturbances especially below 90 km. At levels above 100 km, temperature changes were very large. Results also show that temperature profiles have a warming trend at the start of the eclipse followed by a continuous cooling as the eclipse progresses.
Photographic observations made during the solar eclipses of 1963, 1966, 1968, and 1970 indicate the presence of previously unidentified celestial objects in the near-angular vicinity of the sun. Observational data and equipment are described. Possible origins of the objects are enumerated, as well as suggested future experiments to confirm the results.
Lower ionosphere electron densities measured during solar eclipse by Nike-Apache rockets
D region electron density measurements during solar eclipse of 12 Nov. 1966