Lühr, H.; Geisler, H.; Schlegel, K.: Current density models of the eastward electrojet derived from ground-based magnetic field and radar measurements. Journal of Atmospheric and Terrestrial Physics 56, pp. 81 - 91 (1994)
Lühr, H.; Schlegel, K.: Combined measurements of EISCAT and the EISCAT magnetometer cross to study Ω bands. Journal Geophysical Research 99 (A5), pp. 8951 - 8959 (1994)
Schlegel, K.; Haldoupis, C.: Observation of the modified two-stream plasma instability in the midlatitude E region ionosphere. Journal Geophysical Research 99 (A4), pp. 6219 - 6226 (1994)
Haldoupis, C.; Schlegel, K.: A 50-MHz radio Doppler experiment for midlatitude E region coherent backscatter studies: System description and first results. Radio Science 28, pp. 959 - 978 (1993)
Haldoupis, C.; Schlegel, K.; Nielsen, E.: Some observations of radio auroral backscatter at 140 MHz during E-region electron gas heating. Annales Geophysicae 11, pp. 283 - 295 (1993)
Kirchengast, G.; Leitinger, R.; Schlegel, K.; Hocke, K.: Modellsimulationen zur Interpretation von TIDs in hohen Breiten. Kleinheubacher Berichte 36, pp. 399 - 408 (1993)
Ma, S. Y.; Schlegel, K.: Nonlinear wave-wave interactions related to gravity wave reflection in the auroral upper F-region observed with the EISCAT radar. Journal of Atmospheric and Terrestrial Physics 55, pp. 719 - 738 (1993)
Shibata, T.; Schlegel, K.: Vertical structure of AGW associated ionospheric fluctuations in the E- and lower F-region observed with EISCAT - A case study. Journal of Atmospheric and Terrestrial Physics 55, pp. 739 - 749 (1993)
Jakowski, N.; Jungstand, A.; Schlegel, K.; Kohl, H.; Rinnert, K.: The ionospheric response to perturbation electric fields during the onset phase of geomagnetic storms. Canadian Journal of Physics 70, pp. 575 - 581 (1992)
Kirchengast, G.; Leitinger, R.; Schlegel, K.: A high-resolution model for the ionospheric F-region at mid- and high-latitude sites. Annales Geophysicae 10, pp. 577 - 596 (1992)
Kohl, H.; Nielsen, E.; Rinnert, K.; Schlegel, K.: EISCAT results during the ROSE campaign and comparison with STARE measurements. Journal of Atmospheric and Terrestrial Physics 54, pp. 733 - 739 (1992)
Ma, S.-Y.; Schlegel, K.: Ionospheric responses to atmospheric grvity waves in various plasma quantities and inversion of GW's parameters. Acta Geophysica Sinica 35, pp. 405 - 414 (1992)
Natorf, L.; Schlegel, K.; Wernik, A. W.: Gravity wave parameters derived from traveling ionospheric disturbances observations in the auroral zone. Journal of Atmospheric and Terrestrial Physics 27, pp. 829 - 840 (1992)
Pfaff, R. F.; Sahr, J.; Providakes, J. F.; Schwarz, W. E.; Farley, D. T.; Kintner, P. M.; Häggström, I.; Hedberg, A.; Opgenoorth, H.; Holmgren, G.et al.; McNamara, A.; Wallis, D.; Whalen, B.; Yau, A.; Watanabe, S.; Creutzberg, F.; Williams, P.; Nielsen, E.; Schlegel, K.; Robinson, T. R.: The E-region rocket/radar instability study (ERRRIS): scientific objectives and campaign overview. Journal of Atmospheric and Terrestrial Physics 54, pp. 779 - 808 (1992)
How does our star heat its outer atmosphere, the solar corona, to unimaginable temperatures of up to 10 million degrees Celsius? With unprecedented observational data from ESA's Solar Orbiter spacecraft and powerful computer simulations, ERC starting grant awardee Pradeep Chitta intends to bring new momentum to the search for the coronal heating mechanism.
The research group “Solar Lower Atmosphere and Magnetism” (SLAM) studies the conditions and dynamic processes in the atmospheric layer between the solar surface (photosphere) and the overlying chromosphere, an approximately 2000 km thick gas layer.
The main research fields of the department "Sun and Heliosphere" are covered by the research groups "Solar and Stellar Coronae", "Solar Lower Atmosphere and Magnetism", "Solar and Stellar Magnetohydrodynamics" and "Solar Variability and Climate".