https://doi.org/10.1140/epjd/e2019-100339-y
Regular Article
Obliquely propagating electron-acoustic solitary waves in magnetized plasmas: the role of trapped superthermal electrons
1
Department of Physics, Jahangirnagar University, Savar, Dhaka 1342, Bangladesh
2
Fakultät für Physik und Astronomie, Ruhr-Universität Bochum, 44780 Bochum, Germany
3
Institut für Mathematik, Martin Luther Universität Halle-Wittenberg, 06099 Halle(Saale), Germany
a e-mail: abdulmannan@juniv.edu
Received:
14
July
2019
Received in final form:
5
September
2019
Published online:
29
October
2019
The properties of obliquely propagating electron-acoustic solitary waves (OPEASWs) have been investigated in a magnetized superthermal plasma (containing inertial cold electron species, inertialess electrons following Vasyliunas-Schamel distribution function, and static ions) via the fluid dynamical approach. The reductive perturbation technique is employed to derive the Schamel equation and the solitary wave solution of the Schamel equation is used to examine the basic features of small but finite amplitude OPEASWs in such a magnetized plasma in the presence of trapped k-superthermal hot electron population. The basic features (width, amplitude, speed, etc.) of OPEASWs are found to be significantly modified by the different plasma configuration parameters, such as plasma superthermality, obliqueness, the particle trapping effect, and external magnetic field effect. The nature of electrostatic disturbances, that may propagate in different realistic space and laboratory plasma systems (e.g., in Saturn ring), is briefly discussed.
Key words: Plasma Physics
© EDP Sciences / Società Italiana di Fisica / Springer-Verlag GmbH Germany, part of Springer Nature, 2019