Title :
Derivation of equations of circuits of electromechanical devices
Author :
Malinin, L.I. ; Malinin, V.I. ; Makelsky, V.D. ; Tyukov, V.A.
Author_Institution :
Novosibirsk State Tech. Univ., Russia
Abstract :
Equations of electromechanical electric and magnetic circuits are written in terms of particle derivatives where the initial point and time are independent variables (Lagrange co-ordinates). The division of the induced electric motive force (EMF) into transformer EMF and motion EMF follows from the Maxwell equations in terms of partial derivatives, where the space co-ordinates and time are independent variables (Euler co-ordinates). Commonly this is not taken into account. However, relativistic electrodynamics shows that current, voltage drop and induced EMF magnitudes are invariant with respect to the co-ordinates transformation at low speeds and the division of the induced EMF into the transformer EMF and the motion EMF is dependent on a system of coordinates. Additionally, current magnitude inside a device should be considered as a function of both space and time. For derivation of the equation it is enough to use the simplest mathematical model, considering electromagnetic processes in one moving contour of a linear electromagnetic device. This paper derives circuit equations in terms of partial derivatives and total derivatives
Keywords :
Maxwell equations; electric machines; electric potential; machine theory; magnetic circuits; network analysis; Euler co-ordinates; Lagrange co-ordinates; Maxwell equations; circuit equations derivation; current magnitude; electric circuits; electromagnetic processes; electromechanical devices; independent variables; induced EMF magnitudes; induced electric motive force; linear electromagnetic device; magnetic circuits; mathematical model; motion EMF; partial derivatives; relativistic electrodynamics; space co-ordinates; total derivatives; transformer EMF; voltage drop; Electromagnetic devices; Electromagnetic fields; Electromechanical devices; Lagrangian functions; Magnetic circuits; Magnetic flux; Mathematical model; Maxwell equations; Solids; Voltage;
Conference_Titel :
Science and Technology, 1999. KORUS '99. Proceedings. The Third Russian-Korean International Symposium on
Conference_Location :
Novosibirsk
Print_ISBN :
0-7803-5729-9
DOI :
10.1109/KORUS.1999.876282