The present invention relates to an electric motor, more specifically, to an axial gap motor having a small axial dimension and installable inside a wheel of a vehicle.
A hybrid vehicle and an electric vehicle (EV) are gathering attention due to steep rise in the prices of fossil fuels. In particular, an EV with an in-wheel type axial gap motor built inside the wheel requires no intricate and heavy-weight transmission, contributing effective utilization of space, cost reduction and weight reduction. As a vehicle that can use such in-wheel type axial gap motor, a 1-seater or 2-seater compact car intended for short-distance travel, also referred to as city commuter, has been gathering attention. Since high performance is required in the in-wheel type driving motor used in the EV vehicle including the city commuter, rare-earth magnets using expensive rare-earth elements have been used so far.
However, prices of rare earth elements have witnessed steep rise in recent times, and it has become difficult to procure the rare earth elements. Therefore, an in-wheel motor for EV that uses ferrite magnet, which is cheaper and easily available, is being considered to be used instead of the rare-earth magnet. Since residual magnetic flux density of ferrite magnet is approximately 30% lower as compared to the rare-earth magnet, decrease in torque is at issue. In order to solve this issue; (1) an axial gap motor type structure was employed with an expectation for increase in torque and thinning in the axial direction, (2) permanent magnets (SPM) were mounted inside a rotor of this structure for maximizing torque and reducing iron loss inside a stator core; (3) further, a prototype of 5 kW size motor structure with a reduction gear installed inside a stator was manufactured in order to effectively utilize space inside the motor, and acute experimentation and researches were repeated on operating characteristics thereof.
When a prototype of 10 kW size motor (16 poles and 18 slots) was manufactured for further increasing output and was measured on operating characteristics thereof, a problem of increase in eddy current loss inside the rotor was ascertained, while this problem not apparent in the 5 kW size motor structure.
Therefore, the present invention has been made in order to solve the above-described problem, and the object of the present invention is to provide an electric motor, especially an axial gap motor, with little eddy current loss.
The above-described problems is solved by an axial gap motor has a disk-shaped supporting member and a plurality of permanent magnet segments installed on the supporting member in such a state that the plurality of permanent magnet segments is spaced in a circumferential direction at a predetermined equal pitch angle between a hub section and an outer peripheral section of the disk-shaped supporting member. The axial gap motor includes a rotor fixed to an output shaft so as to rotatable together with the output shaft, and a stator arranged, on at least one side of the rotor, opposite to the rotor, with a predetermined gap from the rotor. A plurality of field winding slots for generating a rotating magnetic field is spaced on an outer peripheral section of the stator at an equal pitch angle in the circumferential direction. A notched part radially extending is provided between a mounting hole of the supporting member, in which each of the plurality of permanent magnet segments is fitted, and an outer peripheral edge of the supporting member.
Each of the notched parts may be a dent that is at least one side of the supporting member thinned in the width direction.
Each of the notched parts may be a through hole penetrating in the width and radial directions of the supporting member.
Each of the notched parts may be gradually narrowed in width in the radially outward direction.
A rim member composed of high-strength insulating material may be wound on an outer peripheral section of the supporting member.
The high-strength insulating material may be plastic reinforced with glass fiber, carbon fiber or high-strength polymer fiber.
Each of the notched parts may be filled with non-conductive material.
The non-conductive material may be thermoplastic resin selected from a group including phenol resin, epoxy resin and melamine resin.
According to the present invention, eddy current loss that occurs at the supporting member of the rotor arranged between the stators can be reduced, and electrical efficiency of the axial gap motor can be increased.
Hereinafter, an embodiment of the present invention will be described in detail with reference to the appending drawings. Still, this embodiment is merely intended to describe the invention, and thus the present invention is not limited to this embodiment
First,
In
Next,
As shown clearly in
A predetermined skew angle (angle of a side surface of the magnet segment 11 with respect to a radial axis extending from a central axis) is formed on the side surface of the magnet segment 11 in order to reduce torque ripple and cogging torque, and a planar shape of the magnet segment 11 is substantially trapezoidal. Spoke-shaped parts 15 are formed between these magnet segments 11, and these spoke-shaped parts 15 extend radially from the hub section 13 to an outer peripheral edge 17 of the supporting member 12.
As shown in
As shown in a magnified drawing in
Further, a rim member 19 composed of high-strength insulating material may also be wound around the outer peripheral edge 17 of the supporting member 11. This high-strength insulating material may be plastic reinforced with glass fiber or carbon fiber. Providing such rim member 19 can prevent thrusting out of the filling material along with compensating for deterioration in strength of the supporting member 11. It has been found that the rim member 19 provided in this way enables the supporting member 11 to actually withstand high-speed rotation (10,000 rpm) burst test (two-fold safety factor).
As described above, according to the present invention, by providing the notched part 18 to the outer peripheral edge 17 of the supporting member 11 constituting the rotor 10, the eddy current that flows without the notched part 18 is either cut off or reduced, and the eddy current loss that occurred in the motor is reduced.
Further, as shown in
To each of the stators 20 and 22 arranged with a predetermined gap on both sides of the rotor 10, a plurality of slots and slots between the plurality of slots are spaced, at an equal pitch angle in the circumferential direction, so as to be opposed to the magnet segments 11. However, since the structure of the stator of the axial gap motor is well known to those skilled in the art, a description thereof is omitted.
Number | Date | Country | Kind |
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2013/256013 | Dec 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/076513 | 10/3/2014 | WO | 00 |