Stator Core and Motor Using the Same
20180006511 · 2018-01-04
Inventors
Cpc classification
H02K1/146
ELECTRICITY
International classification
Abstract
The present invention relates to a stator core for improving the fixing properties of a magnet wire, and a motor in which the same is applied. Provided is a stator core which comprises a protrusion pattern part for fixing the distal end portion of a magnet wire, and thus eliminates a process of fixing the wire using a separate member during a wiring process, thereby improving processability and preventing an insulating film of the magnet wire from being damaged by an external force such as vibration.
Claims
1. A stator core, the stator core comprising: a unit stator core; a coil wound on the unit stator core; and an insulation member disposed between the unit stator core and the coil to insulate the unit stator core and the coil; wherein the unit stator core includes a head part and a tooth protruded from the head part at an inner side of the head part to a central direction of the unit stator core, and wherein a the insulation member includes a protrusion pattern part disposed on a surface of the insulation member.
2. The stator core of claim 1, wherein the insulation member includes a body part disposed on an outside of the tooth to include a winding guide groove wound with the coil, and an edge part extended from the body part along an inner circumferential surface of the head part and arranged with the protrusion pattern part.
3. The stator core of claim 2, wherein the protrusion pattern part is realized by an embossed 3D (dimensional) structure on a surface of the edge part.
4. The stator core of claim 3, wherein a first bank angle is provided on a surface of the 3D structure from an outermost marginal part of the protrusion pattern part to a body part side.
5. The stator core of claim 4, wherein the protrusion pattern part is disposed by being extended along a lengthwise direction of the insulation member.
6. The stator core of claim 4, wherein the protrusion pattern part is provided, at an opposite surface realized by the first bank angle, with a fixation groove pattern that is concaved to a center of the 3D structure.
7. The stator core of claim 4, wherein the first bank angle means an angle formed by an extension line on a surface of the 3D structure, based on a surface of the edge part, and wherein the angle is an acute angle.
8. The stator core of claim 3, wherein the protrusion pattern part is formed with a discrete part fixed at one end to a surface of the edge part, and distanced at the other end from the surface of the edge part.
9. The stator core of claim 8, wherein each discrete width in the discrete part is same and uniform.
10. The stator core of claim 8, wherein the protrusion pattern part is fixed at one end near to the body part to the surface of the edge part and is formed at the other end with a third bank angle toward the body part, wherein the third bank angle means an angle formed by an extension line from a surface of the 3D structure, based on the discrete part, and wherein the angle is an acute angle.
11. The stator core of claim 8, wherein the protrusion pattern part is fixed at the other end distanced from the body part to the surface of the edge part and is formed at the other end with a fifth bank angle toward the body part, wherein the fifth bank angle means an angle formed by an extension line from a surface of the 3D structure, based on the discrete part, and wherein the angle is an acute angle.
12. The stator core of claim 10, wherein a second bank angle is realized on a surface of the 3D structure at an opposite side formed with the third bank angle.
13. The stator core of claim 12, wherein the second bank angle is an angle greater than the third bank angle.
14. A motor, the motor comprising: a housing; a stator arranged at an inside of the housing to include a unit stator coil, a coil wound on the unit stator coil, and an insulation member disposed between the unit stator coil and the coil to insulate the unit stator core and the coil; and a rotor rotatably installed at an inside of the stator and including a through hole formed at a center and a magnet module; wherein the unit stator core includes a head part and a tooth protruded from the head part that an inner side of the head part to a central direction of the unit stator core, and wherein the insulation member includes at least one protrusion pattern part disposed on a surface of the insulation member.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034] FIG.8 is a schematic view illustrating a protrusion pattern part according to still another exemplary embodiment of the present disclosure.
[0035]
BEST MODE
[0036] Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings. Like reference numerals designate like elements throughout the specification, and any overlapping explanations that duplicate one another will be omitted. Although the terms first, second, third, etc. may he used herein to describe various elements, components, regions, layers and/or sections, these elements, components, regions, layers and/or sections should not be limited by these terms. These terms may be only used to distinguish one element, component, region, layer or section from another region, layer or section.
[0037]
[0038] Referring to
[0039] When the protrusion pattern part (230) is wound with a coil later, an outermost part is prevented from being deviated to outside after the coil is wound, and an operation of temporarily fixing a coil using a separate member (tape and the like) or an operation of removing can be eliminated to improve the processibility, whereby an entire coil can be stably fixed to thereby prevent a short-circuit caused by friction between coils.
[0040] Although drawings have exemplified a structure where the insulation member (200) is divided to two sections, the present disclosure is not limited thereto, and although the unit stator core has been exemplified, the stator core conventionally forms a ring-shaped structure by coupling a plurality of unit stator cores.
[0041] The insulation member (200) may be such that a pair of mechanisms provided at an inside with a space (S) accommodating the tooth (112) is arranged in a plate shape each mechanism facing the mechanism, and a connection part (222) connecting an upper surface of the pair of mechanisms is provided.
[0042] Hereinafter, a portion formed by the pair of mechanism with a winding guide groove (221) wound with a coil is defined as a “body part (220)”, and a portion extended to a lateral surface from the body part (220) is defined as an “edge part (210)”. In addition, a distal end of the body part (220) may be formed with a coupling part (223) provided by being process in thickness thinner than that of the mechanism. The coupling part (223) may be realized at a distal end of the body part at a lower surface of the insulation member in the same structure, as illustrated in the drawing. Thereafter, the coupling parts (223) formed at distal ends of an upper surface and a lower surface of the insulation member may be coupled by being overlapped.
[0043] In particular, a protrusion pattern part (230) may be provided on a surfaced of the edge part (210) to fix a coil when the coil is wound later according to the exemplary embodiment of the present disclosure.
[0044] The protrusion pattern part (230) may be realized with a 3D (dimensional) structure in an embossed protruding shape, and may be arranged in one or in a plurality of numbers on the surface of the edge part (210) to fix the coil.
[0045] FIG, 3 is a schematic view illustrating an insulation member being coupled to a unit stator core and the insulation member being wound with a coil according to an exemplary embodiment of the present disclosure,
[0046] Referring to
[0047] Overall, the protrusion pattern part (230), as illustrated in
[0048] In addition, the protrusion pattern part (230) is not limited to a dot shape according to an exemplary embodiment of the present disclosure, and the protrusion pattern part (230) may be arranged by being extended along a lengthwise direction of the insulation member. In this case, the outermost coil may be fixed across the board to a lengthwise direction after finish of winding to enable a further increase in fixing power.
[0049]
[0050] Referring to
[0051] To be more specific, as illustrated in
[0052] Furthermore, an opposite side (242) of the third bank angle (θ3) may be formed with a fourth bank angle (θ4) to strengthen the fixibility.
[0053]
[0054] Furthermore, as elaborated in the previous exemplary embodiment, a sixth bank angle (θ6) may be also formed at the other distal end (252) of the protrusion pattern part (250), and therefore, the shape and effect of which will be omitted in further explanation thereto.
[0055]
[0056] The characteristic of
[0057] In this case where the fixation groove pattern (232) is further formed, it should be apparent that fixibility can be further enhanced by a distal end of an outermost coil being inserted into the fixation groove pattern (232) in the structure of
[0058] Hereinafter, an exemplary embodiment of an EPS motor with a unit stator core according to an exemplary embodiment of the present disclosure will be described with reference to
[0059] However, it should be apparent that the stator core according to the exemplary embodiment may be applied to other various motors. An EPS motor will be exemplified and explained in the present exemplary embodiment.
[0060] Referring to
[0061] An upper end part of the rotation shaft (400) may be protruded to an upper side through the bracket (30), and the rotation shaft (400) may be coupled to a mechanism (60) connected to a steering shaft (not shown). The housing (H) may be mounted therein with a stator and a rotor. The rotor may include a rotor core (320) coupled to the rotation shaft (400) and a magnet (310) coupled to a periphery of the rotor core (320). Although the exemplary embodiment has explained and illustrated a structure in which a magnet is coupled to a periphery of a rotor core, unlike this structure, the exemplary embodiment may be realized by a structure in which a magnet is inserted into a rotor core. Furthermore, the stator may include a stator core (200) arranged between a magnet (310) and a housing (110), and a coil (C) wound on a stator core (200).
[0062] The stator core and an insulated structure forming the stator may be applied with the structure of the exemplary embodiment explained in
[0063] In the above structure, the magnetic field generated from the stator and an electric field generated from the motor may be interacted to each other to rotate the rotation shaft (400).
[0064] Meantime, the rotation shaft (400) may rotate along with a sensing plate (190) by being coupled to the rotation shaft (400), and the sensing plate (190) may be mounted with a sensing magnet (50). The bracket (30) may be mounted with a circuit board (10), the circuit board (10) may be mounted with a sensing element (20) opposite to the sensing magnet (50). The sensing element (20) may detect a degree of the sensing magnet (50) being rotated to allow the sensing magnet (50) to detect a degree of the sensing plate (190) coupled by the sensing magnet (50) and the rotation shaft (400) being rotated.
[0065] Thus, generation of detachment of magnet wire by vibrations generated from the above rotations can be mitigated by the insulation member provided with a protrusion pattern part according to the exemplary embodiments of the present disclosure, whereby the motor itself can be enhanced in its reliability.
[0066] Although the abovementioned embodiments according to the present invention have been described in detail with reference to the above specific examples, the embodiments are, however, intended to be illustrative only, and thereby do not limit the scope of protection of the present invention. Thereby, it should be appreciated by the skilled in the art that changes, modifications and amendments to the above examples may be made without deviating from the scope of protection of the invention.