The present invention relates to a rotor for a rotating electric machine and a rotating electric machine including the rotor.
There is known a rotor for a rotating electric machine including a rotor iron core having a shaft hole in which a shaft is press fitted for securing (See PTL 1, for example).
The rotor iron core 400 has a shaft hole 410 at the center. The shaft 500 is press fitted in the shaft hole. The rotor iron core 400 has a plurality of lightening holes 450 for reducing moment of inertia. The rotor iron core 400 includes an inner area 420 surrounding the shaft hole 410, the lightening holes 450 surrounding the inner area 420, an outer area 440 surrounding the lightening holes 450, and a plurality of ribs 430 connecting the inner area 420 and the outer area 440.
PTL 1: JP 2009-11011 A
Recently, a rotating electric machine has been required to withstand high-speed rotation and reduce moment of inertia.
To withstand high-speed rotation, it is necessary to widen an interference of a rotor iron core; however, a wide interference causes the increase in the stress around the internal circumference of the rotor iron core. Large lightening holes broadening toward the internal circumference of a rotor iron core to reduce moment of inertia also cause the increase in the stress around the internal circumference of the rotor iron core. A rotor iron core made of high-strength material can solve these problem; however, such a rotor iron core causes the increase in the costs.
An object of the present invention is to provide a rotor for a rotating electric machine including a shaft and a rotor iron core, and a rotating electric machine including the rotor. In the rotor, the shaft is press fitted in the rotor iron core for securing, and the rotor iron core has lightening holes. The rotor achieves low costs while having an interference and lightening holes.
To solve the above problems, the present invention adopts the structures defined in the claims, for example.
The present application includes a plurality of means for solving the above problems, and for example, a rotor for a rotating electric machine includes: a shaft and a rotor iron core, the shaft being press fitted in the rotor iron core. The rotor iron core includes: a shaft hole; an outer area; an inner area in which the shaft is press fitted; and a plurality of ribs connecting the outer area and the inner area, and each of the ribs includes: a plurality of outer rib joints adjacent to the outer area; a plurality of outer rib portions adjacent to the outer area; a plurality of inner rib joints adjacent to the inner area; and a plurality of inner rib portions adjacent to the inner area. The outer rib portions are connected to the inner rib portions, and the total number of the inner rib joints is larger than the total number of the outer rib joints.
The present invention provides a low-cost rotor for a rotating electric machine that has a wide interference to withstand high-speed rotation and large lightening holes to reduce moment of inertial, and a rotating electric machine including the rotor.
Problems to be solved, structures, and advantageous effects other than the above will be clarified in the following description of the embodiments of the present invention.
[
[
[
[
[
[
[
[
The embodiments of the present invention will described below with reference to the accompanying drawings.
An embodiment of the present invention will now be described with reference to
As illustrated in
As illustrated in
Each of the ribs 430 includes an outer rib joint 441 adjacent to the outer area, an outer rib portion 442 adjacent to the outer area, an inner rib joint 421 adjacent to the inner area, and an inner rib portion 422 adjacent to the inner area. The outer rib portions 442 are connected to the inner rib portions 422 and the total number of the inner rib joints 421 is larger than that of the outer rib joints 441.
The above structure having a larger total number of the inner rib joints than that of the outer rib joints has the number of the distributed inner rib portions necessary for reducing the maximum stress.
The reduction in the maximum stress will now be described with reference to
Another embodiment of the present invention will now be described with reference to
Different from Embodiment 1 (
As illustrated in
Another embodiment of the present invention will now be described with reference to
Different from Embodiment 2 (
As illustrated in
Another embodiment of the present invention will now be described with reference to
Different from Embodiment 3 (
As illustrated in
In any of the above embodiments, the number of the outer rib portions in one rib is not determined. One rib may have one outer rib portion, two outer rib portions, or three or more outer rib portions as long as the total number of the inner rib joints is larger than that of the outer rib joints.
In any of the above embodiments, the number of the inner rib portions in one rib is not determined. One rib may have two inner rib portions, three inner rib portions, or four or more inner rib portions as long as the total number of the inner rib joints is larger than that of the outer rib joints.
In any of the above embodiments, the description about positioning holes for assembly is not included. Positioning holes are generally made near outer rib joints; however, these positioning holes are only needed for assembly and do not affect the stress around the internal circumference of the rotor iron core with the shaft press fitted therein. Positioning holes are thus not regarded as structural elements of the outer rib joints in the present invention. The number of the outer rib joints is not changed due to the presence or absence of positioning holes.
In any of the above embodiments, the type of the rotating electric machine is not determined. The rotating electric machine may be a permanent-magnet type rotating electric machine, an induction motor, or any other rotating electric machine.
In the above embodiments, a rotor of a rotating electric machine for an electric vehicle is took as an example. A rotating electric machine for an electric vehicle is especially required to withstand high-speed rotation and reduce moment of inertia. The application of the present invention is not limited to a rotating electric machine for an electric vehicle. The present invention can be applied to rotating electric machines for other purposes to obtain similar advantageous effects.
The present invention is not limited to the above embodiments and includes various modifications. The above embodiments are described in detail to clarify the present invention and are not necessarily limited to embodiments including all the described structural elements. Some of the structural elements of one embodiment can be replaced with the structural elements of another embodiment or the structural elements of one embodiment can be added to the structural elements of another embodiment. Some of the structural elements of one embodiment can be deleted in addition to the above addition or replacement.
300 rotor
400 rotor iron core
410 shaft hole
420 inner area
421 inner rib joint
422 inner rib portion
430 rib
440 outer area
441 outer rib joint
442 outer rib portion
443 linear part substantially parallel to radial direction
450 lightening hole
500 shaft
Number | Date | Country | Kind |
---|---|---|---|
2014-194622 | Sep 2014 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2015/072984 | 8/17/2015 | WO | 00 |