Title :
Thermal Modeling of a Claw-Pole Electrical Generator: Steady-State Computation and Identification of Free and Forced Convection Coefficients
Author :
Maloberti, Olivier ; Gimeno, Anthony ; Ospina, A. ; Friedrich, G. ; El Kadri Benkara, K. ; Charbonnier, Loic
Author_Institution :
Lab. de Maitrise des Besoins Energetiques (LMBE), ESIEE Amiens, Amiens, France
Abstract :
The production of heat is a key characteristic of a machine´s behavior. Heat sources come mainly from energy losses (electrical in copper, magnetic in iron, aerolic in fans, and mechanical in bearings). Temperature changes can be described owing to thermal conduction, convection, and radiation equations. To understand and design a machine, it is important to construct a dedicated model and to know every physical loss. The aim is therefore to build a static thermal model adapted to the simulation and sizing of claw-pole car alternators. Currently, in cars with internal combustion engines, generators rotors are wire wound, doubly excited with a dc concentrated winding and small permanent magnets, and self-air-cooled with fans. This paper proposes a nodal model with 16 nodes, taking all the heat transfers and space directions into account. The thermal characterization of the machine is permitted by only four physical parameters, varying with the temperature T and the rotating velocity Ω, shown to be sufficient to deduce the model conductances. These properties are as follows: the thermal exchange coefficients due to free and forced convection into the air gap and the cavity, the thermal exchange coefficient due to free superficial convection at the external surface, and the thermal equivalent conductivity within the bearings. The consistency and usefulness of both the model and identifications are checked against numerical studies and measurements.
Keywords :
air gaps; alternators; electric generators; forced convection; heat conduction; internal combustion engines; machine insulation; machine windings; permanent magnets; thermal conductivity; air gap; claw-pole car alternators; claw-pole electrical generator; dc concentrated winding; forced convection coefficients; free convection coefficients; generator rotors; heat sources; heat transfers; internal combustion engines; permanent magnets; radiation equations; static thermal model; steady-state computation; steady-state identification; thermal conduction; thermal equivalent conductivity; thermal exchange coefficients; thermal modeling; wire wound; Heating; Rotors; Stators; Steady-state; Temperature; Temperature measurement; Thermal conductivity; Claw-pole alternator; free and forced convection coefficients; lumped thermal model; steady state; temperature prediction; thermal parameter identification;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2013.2270222