This application claims the benefit of Korean Patent Application No. 10-2012-0040973, filed on Apr. 19, 2012, entitled “Rotor Assembly”, which is hereby incorporated by reference in its entirety into this application.
1. Technical Field
The present invention relates to a rotor assembly.
2. Description of the Related Art
Generally, a motor generating a rotation driving power by embedding a permanent magnet into a rotor may be classified into a permanent magnet surface-mounted motor and an interior permanent motor according to a coupling structure of a permanent magnet mounted in a rotor.
As described in Korean Patent Laid-Open Publication No. 2009-0072209, the interior permanent motor may use reluctance torque due a difference between a d-axis (magnetic flux) inductance and a q-axis (torque) inductance in addition to a torque of the permanent magnet by embedding a plurality of permanent magnets in the rotor. In addition, the interior permanent motor may structurally prevent a separation of the permanent magnet that may occur at the time of high-speed rotation and has been more prevalently used than the surface-mounted motor in which the permanent magnet is mounted on a surface of the rotor.
However, the interior permanent motor according to the prior art has problems in using a high-performance permanent magnet, for example, rare-earth magnet components so as to increase a flux amount or obtain high-efficiency torque, additionally forming an interior permanent hole, and limiting a design embedding the permanent magnet so as to maintain rigidity of the rotor portion. Further, there are problems in that when increasing the embedded amount of the permanent magnet, the rigidity of the rotor portion may be weak due to the secure of the embedded space and when a small amount of permanent magnet is embedded, an expensive permanent magnet needs to be used so as to exhibit high performance or performance is degraded at the time of using a general permanent magnet.
In particular, a structural design of a more effective and high-performance flux concentrating motor is urgently needed in the same interior permanent structure.
The present invention has been made in an effort to provide a rotor assembly capable of improving a torque value by radially forming slits between a pair of permanent magnets while positioning the pair of permanent magnets in a V-letter shape, in a structure in which the permanent magnets are radially embedded outwardly from a rotor portion.
According to a preferred embodiment of the present invention, there is provided a rotor assembly, including: a rotor portion provided with an embedded hole in which a rotating shaft is embedded; and a first magnet and a second magnet embedded into a first embedded hole and a second embedded hole that are formed at a cross section axially vertical to the shaft of the rotor portion radially outwardly from the rotor portion and formed so that a width of a spaced space increases radially outwardly from the rotor portion from a rotating central shaft of the rotor portion, wherein a slit is formed between the first magnet and the second magnet.
The first magnet and the second magnet may be each embedded along a V letter radially outwardly from the rotor portion, based on the rotating central shaft of the rotor portion as an apex.
The slit may be formed between the first magnet and the second magnet and may be formed by setting the outward radial direction of the rotor part as a longitudinal direction.
Both ends of the first embedded hole and the second embedded hole may be further provided with a leakage preventing gap drawing an arc outwardly from both ends thereof.
At least a pair of first magnets and second magnets may be consecutively formed along an outer circumference of the rotor portion.
According to another preferred embodiment of the present invention, there is provided a rotor assembly, including: a rotor portion provided with an embedded hole into which a rotating shaft is embedded and including a first magnet and a second magnet embedded into a first embedded hole and a second embedded hole formed at a cross section axially vertical to the shaft so that a width of a spaced space increases radially outwardly from the rotor portion 10 based on a rotating central shaft; and a stator portion including at least one stator salient pole formed to correspond to the first magnet and the second magnet of the rotor portion and a stator yoke accommodating the rotor portion, wherein a slit is formed between the first magnet and the second magnet.
The first magnet and the second magnet may be each embedded along a V letter radially outwardly from the rotor portion, based on the rotating central shaft of the rotor portion as an apex.
The slit may be formed between the first magnet and the second magnet and may be formed by setting the outward radial direction of the rotor part as a longitudinal direction
Both ends of the first embedded hole and the second embedded hole may be further provided with a leakage preventing gap drawing an arc outwardly from both ends thereof.
At least a pair of first magnets and second magnets may be consecutively formed along an outer circumference of the rotor portion.
Eight pairs of first magnets and second magnets may be formed along an outer circumference of the rotor portion, and a pair of magnets including the first magnet and the second magnet and six stator salient poles may be formed to face each other.
The above and other objects, features and advantages of the present invention will be more clearly understood from the following detailed description taken in conjunction with the accompanying drawings, in which:
The objects, features and advantages of the present invention will be more clearly understood from the following detailed description of the preferred embodiments taken in conjunction with the accompanying drawings. Throughout the accompanying drawings, the same reference numerals are used to designate the same or similar components, and redundant descriptions thereof are omitted. Further, in the following description, the terms “first”, “second”, “one side”, “the other side” and the like are used to differentiate a certain component from other components, but the configuration of such components should not be construed to be limited by the terms. Further, in the description of the present invention, when it is determined that the detailed description of the related art would obscure the gist of the present invention, the description thereof will be omitted.
Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings.
The rotor assembly according to a preferred embodiment of the present invention may include: a rotor portion 10 provided with an embedded hole 11 in which a rotating shaft 12 is embedded; and a first magnet 14a and a second magnet 14b embedded into a first embedded hole 13a and a second embedded hole 13b that are formed at a cross section axially vertical to the shaft 12 of the rotor portion 10 radially outwardly from the rotor portion 10 and formed so that a width w of a spaced space increases radially outwardly from the rotor portion 10 from a rotating central shaft of the rotor portion 10, wherein a slit 30 may be formed between the first magnet 14a and the second magnet 14b.
A hollow portion of the rotor portion 10 is provided with the embedded hole 11 into which the rotating shaft 12 may be embedded. The rotor portion 10 may be generally formed in a cylindrical member and may be embedded with the shaft 12 or integrally formed with the shaft 12 so that the rotor portion 10 may be mounted at the outside of the housing (not shown) to axially rotate with a general housing (see
The magnet 14 is embedded into the embedded hole 13 that is formed on a cross section of the rotor part 10 axially vertical to the shaft 12. The embedded hole 13 may be formed to correspond to the shape of the magnet 14. In the preferred embodiment of the present invention, at least one pair of the first magnet 14a and the second magnet 14b embedded into the first embedded hole 13a and the second embedded hole 13b may be formed at the outer circumferential surface of the rotor portion 10. In particular, a first magnet 14a and a second magnet 14b are radially embedded outwardly from the rotor portion 10 in a V-letter shape and the slit 30 may be formed between the first magnet 14a and the second magnet 14b. In detail, as shown in
The slit 30 may be formed between the first magnet 14a and the second magnet 14b. As shown in
Both ends of the first embedded hole 13a and the second embedded hole 13b may be further provided with a leakage preventing gap 13c drawing an arc outwardly from both ends thereof. The leakage preventing gap 13c may be formed to prevent the leakage of flux due to the magnet 14 embedded into the embedded hole 13.
A rotor assembly according to another embodiment of the present invention includes: a rotor portion 10 provided with the embedded hole 11 into which the rotating shaft 12 is embedded and including the first magnet 14a and the second magnet 14b embedded into the first embedded hole 13a and the second embedded hole 13b formed at a cross section axially vertical to the shaft 12 so that the width w of the spaced space increases radially outwardly from the rotor portion 10 from the rotating central shaft; and a stator portion 20 including at least one stator salient pole 21 formed to correspond to the first magnet and the second magnet 14b of the rotor portion 10 and a stator yoke 22 accommodating the rotator portion 10, wherein the slit 30 may be formed between the first magnet 14a and the second magnet 14b.
In another preferred embodiment of the present invention, each component and effects of the rotor portion 10, the embedded hole 13 embedded into the rotor portion, and the magnet are the same as the preferred embodiment of the present invention and the detailed description thereof will be omitted.
The rotor portion 10 is provided with the embedded hole 11 into which the rotating shaft 12 is embedded and at least one magnet 14 is embedded into the embedded hole 13 in a V-letter shape radially outwardly from the rotor portion 10 based on the embedded hole 11. The rotor portion 10 with which the shaft 12 is coupled is the same as the drawings of
The stator portion 20 may include at least one stator salient pole 21 and the stator yoke 22 accommodating the rotor portion 10 formed to correspond to the magnet 14 of the rotor portion 10. The stator portion 20 is generally formed in an annular shape formed to surround the rotor portion 10 and may be changed and selectively applied by those skilled in the art according to a structure of a device in which the rotor assembly is mounted. As shown in
In particular, as shown in
Hereinafter, a difference in the torque value and the cogging torque value between the rotor assembly according to the preferred embodiment of the present invention and the comparison embodiment will be described through graphs with reference to each drawing.
In addition, an X axis of each graph represents a machine angle in which the rotor assembly including the stator portion 20 rotates and a Y axis represents the torque value and the cogging torque value. That is, the Y-axis value in
As shown in
As shown in
The cogging torque is the radial force moving to the position (equilibrium state) at which the magnetic energy of the motor system is minimum, which is generated by the interaction of the stator salient pole 21 of the stator portion 20 and the pole of the corresponding rotor portion 10 As the cogging torque value is reduced, the rotation of the motor is smooth and the driving efficiency of the motor may be improved.
According to the preferred embodiment of the present invention, it is possible to implement the relatively higher torque performance while minimizing the number of permanent magnets embedded in the interior permanent synchronous machine (IPMSM).
Further, the permanent magnets according to the preferred embodiments of the present invention are formed radially from the rotor portion but the pair of permanent magnets is embedded in a V-letter shape and the radial slits are formed between the pair of interior magnets, thereby concentrating flux and improving the torque performance.
In addition, it is possible to reduce the cogging torque by radially forming the slits between the permanent magnets embedded in a V-letter shape formed in the rotor portion.
Further, it is possible to improve the operation performance of the rotor assembly including the rotor portion and the reliability of the driving by concentrating the flux to the radial slits formed in the rotor portion.
Moreover, it is possible to form the small amount of permanent magnet embedding hole and more improve the rigidity of the rotor portion together with the high efficiency by effectively forming the concentration of the flux amount of the interior permanent magnet, by using the interior permanent synchronous machine having the same structure.
Although the embodiments of the present invention have been disclosed for illustrative purposes, it will be appreciated that the present invention is not limited thereto, and those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention.
Accordingly, any and all modifications, variations or equivalent arrangements should be considered to be within the scope of the invention, and the detailed scope of the invention will be disclosed by the accompanying claims.
Number | Date | Country | Kind |
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1020120040973 | Apr 2012 | KR | national |