This non-provisional patent application claims priority under 35 U.S.C. ยง 119(a) from Patent Application No. 201610828092.1 filed in The People's Republic of China on Sep. 18, 2016.
The present invention relates to an electric field, and in particular to an electric motor and an armature.
A stator of a brushless motor usually comprises a stator core and a winding wound on the stator core. During operation of the motor, the winding generates a relatively large electromagnetic interference (EMI) due to change of the direction and value of current flowing through the winding, which results in the electromagnetic compatibility (EMC) of the motor not being good enough.
In one aspect, the present invention provides an electric motor which includes a stator and a rotor rotatable relative to the stator. The stator includes a stator core and a winding. The stator core includes a yoke and a plurality of teeth extending from the yoke. The winding is wound on the teeth. The stator further comprises a shielding member mounted to at least one axial end of the stator core, and at least one of opposite axial ends of the winding is completely covered by the shielding member.
In another aspect, the present invention provides an armature which comprises a core and a wining. The core comprises a yoke and a plurality of teeth extending from the yoke. The winding is wound on the teeth. The winding has ends axially extending beyond the teeth. The armature further comprise a shielding member mounted to at least one axial end of the stator core, at least one of the ends of the winding are completely covered by the shielding member.
The electric motor of the present invention has a reduced EMI and improved EMC.
The present invention will be further described below with reference to the accompanying drawings and the following embodiments.
Below, embodiments of the present invention will be described in greater detail with reference to the drawings. Elements of similar structures or functions are generally represented by like reference numerals for illustrative purposes throughout the figures. It should be noted that the figures are illustrative rather than limiting. The figures are not drawn to scale, do not illustrate every aspect of the described embodiments, and do not limit the scope of the present disclosure. Unless otherwise specified, all technical and scientific terms used in this disclosure have the ordinary meaning as commonly understood by people skilled in the art.
Referring to
Understandably, the stator 60 and the mounting bracket 10 are fixed together and thus can be considered as an integral structure.
In the embodiment, the motor 100 is an outer rotor type brushless motor. The rotor 30 and the stator 60 are respectively an excitation and an armature of the motor 100. The rotor 30 comprises a cylindrical casing 32, one or more permanent magnets 36 fixed to the inner surface of the casing 32, and a shaft 41 fixed to the casing 32. The casing 32 has a U-shaped cross section and comprises a bottomed end 33 fixed with the shaft 41 and an open end with an opening for entering of the stator 60 into the casing 32. Preferably, the bottomed end 33 of the casing 23 forms through holes 34 for allowing airflow to pass through the casing 32 to thereby cool the motor. The casing 32 is made of a magnetic conductive material.
Referring to
The stator 60 further comprises a pair of shielding members 74 respectively mounted on opposite axial ends of the stator core 62. The shielding member 74 is made of a non-ferromagnetic material with low resistance, such as copper or aluminum. Preferably, the shielding member 74 is made of a copper foil or an aluminum foil. The shielding members 74 form a shielding space therebetween and the windings 68 are located in the shielding space. That is, the exposed ends of the windings 68 extending axially beyond the teeth 66 are covered by the shielding members 74, which reduces EMI from the windings 68. Preferably, the shielding members 74 are grounded to improve the shielding effect. Alternatively, it is possible to use only one shielding member 74 according to design requirement.
In the embodiment, the stator 60 further comprises a support member 72 which is hollow tube-shaped. The support member 73 is mounted around the shaft 41 via bearings 73 such that the shaft 41 is rotatable relative to the support member 72. The yoke 64 of the stator core 62 is annular-shaped and fixed to the outer surface of the support member 72. The shielding members 74 respectively define a through hole to expose the support member 72. Specifically, the two shielding members 74 are connected together and tightly sandwiches the stator core 62 via a plurality of fasteners 76, e.g. threaded rods. The fasteners 76 are made of electrically conductive material and therefore electrically connect the two shielding members 74. The stator 60 further comprises washers 75, which is also made of electrically conductive material, mounted between the fasteners 76 and the shielding members 74. The washers 75 are connected between the fasteners 76 and tightly press against the shielding members 74 to ensure the electrically connection. Thus, the shielding members 74 are electrically connected with each other reliably via the plurality of fasteners 76 and the washers 75. Therefore, when one of the shielding members 74 is grounded all shielding members 74 are grounded. For example, when using a wire to connect one of the shielding members 74 and a grounding terminal the two shielding members 74 are grounded. In one embodiment, the circuit board mounted in the mounting bracket 30 has the grounding terminal.
In an alternative embodiment, the support member 72 is made of an electrical conductive material. The two shielding members 74 are respectively mounted to opposite ends of the support member 72 and thus electrically connected to the support member 72. In this alternative embodiment, the support member 72 electrically connects the two shielding members 74 to thereby facilitate grounding of the two shielding members 74.
In one embodiment, the support member 72 and the stator core 62 are separately formed. Understandably, the support member 72 and the stator core 62 may be formed as an integral structure.
Referring to
In the present invention, the shielding members 74 cover most areas of the opening of the casing 32. Thus, the shielding members 74 and the casing 32 cooperatively form a good shielding cover which reduces the electromagnetic interference (EMI) of the windings 68 and improve the electromagnetic compatibility (EMC) of the motor. Preferably, the mounting bracket 10 comprises a chamber 19 with one open end and the open end of the casing 32 is received in the chamber 19 with the orientation of the open end of the chamber 19 is reverse to that of the casing 32. Thus, the EMI from the winding 68 is further reduced and the EMC of the motor is further improved.
Therefore, the technical solutions of embodiments of the present invention have been clearly and completely described above. Apparently, the described embodiments are merely part of, rather than all of, the embodiments of the present invention. A person skilled in the art may make various combinations of technical features in the various embodiments to meet practical needs. Based on the described embodiments of the present invention, any other embodiment obtained by a person skilled in the art without paying creative efforts shall also fall within the scope of the present invention.
Number | Date | Country | Kind |
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2016 1082 8092.1 | Sep 2016 | CN | national |