Title :
Basic equations of linear electric and magnetic circuits in quasi-stationary state based on principle of minimum absorbed power and energy
Author :
Andrei, H. ; Andrei, P.C. ; Oprea, G. ; Botea, B.
Author_Institution :
Doctoral Sch. of Eng. Sci., Univ. Valahia of Targoviste, Targoviste, Romania
Abstract :
Principle of Minimum absorbed Power (PMP) is defined and demonstrated as a fundamental for electrical circuits in stationary and quasi-stationary regime. By imposing the PMP natural conditions result Kirchhoff Current Law (KCL) and Nodal Method (NM). First aim of this paper is to propose a new formulation of basic forms of circuit equations by substituting the KCL or NM equations with PMP equations. Furthermore this paper proves the co-existence of PMP and of Maximum Power Transfer Theorem (MPTT) as one of the basic concepts of electrical circuit theory. All the above considerations can be extrapolated and demonstrated as a natural sequel to linear magnetic circuits in quasi-stationary state by considering their equivalence with electrical circuits. In this case, by imposing the conditions of Principle of Minimum absorbed Energy (PME) one proves that the equations of Kirchhoff´s fascicular Fluxes Law (KFL) and Nodal Method for Magnetic circuits (NMM) are achieved. The numerical examples presented hereinafter refer to classical linear electric and magnetic circuits in quasi-stationary state and prove the originality of the theoretical concepts introduced.
Keywords :
circuit theory; equivalent circuits; magnetic circuits; Kirchhoff current law; Kirchhoff fascicular fluxes law; circuit equations; electrical circuits; magnetic circuits; maximum power transfer theorem; nodal method; principle of minimum absorbed energy; principle of minimum absorbed power; quasistationary state; Educational institutions; Magnetic circuits; Magnetic flux; Magnetic resonance imaging; RLC circuits; Reactive power; Vectors; Kirchhoff´s laws; basic form of circuit equations; linear electric and magnetic circuits; maximum power transfer theorem; principle of minimum absorbed power and energy; quasi-stationary state;
Conference_Titel :
Fundamentals of Electrical Engineering (ISFEE), 2014 International Symposium on
Print_ISBN :
978-1-4799-6820-6
DOI :
10.1109/ISFEE.2014.7050536