Abstract :
This paper, on the base of the two-dimensional magnetic equations of linear induction motor (LIM), achieves the phase current and excited voltage expressions by dummy electric potential method. Then it deduces the air-gap flux linkage expression by connecting Maxwell electromagnetic field equations, complex power method with conformal transformation method fully considering half-filled slots, york magnetic saturation, back iron resistance. This article, by the equal complex power relationship between magnetic and circuit, obtains some expressions involving excited reactance xm0, secondary resistance r2´, secondary leakage reactance x2, longitudinal end effect coefficients Kr(s) and Kx(s), transverse end edge effect coefficients Cr(s) and Cx(s), skin effect coefficient Kf. Depending on the T-model of rotary induction motor (RIM), this paper presents a new revised T-model equivalent circuit for LIM by superposition theorem. This new model makes calculation for Japanese 12000-LIM in detail. Many curves attained by new model including thrust force, phase current, power factor and efficiency are compared with those of space harmonic method and experience. The contrastive curves and error analysis indicate that this model is credible and accords with engineering application requirement. Therefore, it is so useful that establishes foundation for design and optimization of high-power LIM in transportation.
Keywords :
Maxwell equations; electric potential; equivalent circuits; error analysis; linear induction motors; power factor; traction motors; Japanese 12000-LIM; Maxwell electromagnetic field equations; RIM; T-model; air-gap flux linkage expression; back iron resistance; complex power method; conformal transformation method; dummy electric potential method; equivalent circuit; error analysis; half-filled slots; high power linear induction motor; rotary induction motor; skin effect; space harmonic methods; superposition theorem; transportation systems; two-dimensional magnetic equations; york magnetic saturation; Air gaps; Couplings; Electric potential; Induction motors; Joining processes; Magnetic flux; Maxwell equations; Saturation magnetization; Transportation; Voltage;