Cooling fan
11181114 ยท 2021-11-23
Assignee
Inventors
Cpc classification
F04D25/0633
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K1/146
ELECTRICITY
F04D19/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D25/0646
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K11/215
ELECTRICITY
H02K5/1675
ELECTRICITY
H02K11/0094
ELECTRICITY
H02K7/14
ELECTRICITY
International classification
F04D25/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooling fan includes: a rotary shaft which is rotatably supported in a fan housing; a rotor which is fixed to the rotary shaft; a stator which is fixed to the fan housing, is arranged so as to be arranged at a predetermined gap away from the rotor, and includes a plurality of stacked stator cores on which a coil is wound; an impeller which is connected to the rotor; a printed circuit board (PCB) which is installed on the bottom side of the stator and controls the cooling fan; and a ground portion which is installed on the stator cores, is electrically connected to a ground pattern of the PCB and expands a ground surface. Thus, damage of circuit components due to electrostatic electricity is prevented, and EMI shielding properties are improved.
Claims
1. A cooling fan comprising: a rotary shaft rotatably supported by a fan housing; a rotor fixed to the rotary shaft; a stator including a plurality of stator cores which are fixed to the fan housing and arranged at a predetermined gap from a magnet of the rotor, in which the plurality of stator cores are stacked and on which a coil is wound; an impeller connected to the rotor; a printed circuit board (PCB) installed under the stator to control the cooling fan; and a grounding portion installed on the stator and electrically connected to a ground pattern of the printed circuit board (PCB) to expand a ground area, wherein the grounding portion comprises: a connection hole portion formed in the plurality of stator cores; and a joint pin which is inserted into the connection hole portion and electrically connected to the printed circuit board (PCB), and wherein a start line connection portion to which a start line of the coil is connected, an end line connection portion to which an end line of the coil is connected, and a joint pin connection portion to which the joint pin is connected are respectively formed on the printed circuit board (PCB).
2. The cooling fan of claim 1, wherein the plurality of stator cores include: an inner surface portion fixed to the fan housing; a coil winding portion formed at regular intervals in a circumferential direction from an outer surface of the inner surface portion on which the coil is wound; and an outer surface portion formed on an end of the coil winding portion and disposed to face the magnet of the rotor.
3. The cooling fan of claim 2, wherein the connection hole portion is formed in a ring shape on the inner surface portion, and formed in a position that does not interfere with the coil wound on the coil winding portion.
4. The cooling fan of claim 2, wherein the joint pin is inserted into the connection hole portion after forming a bobbin with the plurality of stator cores.
5. The cooling fan of claim 1, wherein the joint pin connection portion is connected to the ground pattern and is formed on the printed circuit board (PCB) to serve as a ground.
6. A cooling fan comprising: a rotary shaft rotatably supported by a fan housing; a rotor fixed to the rotary shaft; a stator including a plurality of stator cores which are fixed to the fan housing and arranged at a predetermined gap from a magnet of the rotor, in which the plurality of stator cores are stacked and on which a coil is wound; an impeller connected to the rotor; a printed circuit board (PCB) installed under the stator to control the cooling fan; a connection hole portion formed in a circular ring shape on the plurality of stator cores; and a joint pin inserted into the connection hole portion and electrically connected to the plurality of stator cores, one end of which is electrically connected to a ground pattern of the printed circuit board (PCB), wherein a start line connection portion to which a start line of the coil is connected, an end line connection portion to which an end line of the coil is connected, and a joint pin connection portion to which the joint pin is connected are respectively formed on the printed circuit board (PCB).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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BEST MODE
(8) Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings. The sizes and shapes of the components shown in the drawings may be exaggerated for clarity and convenience. In addition, terms defined in consideration of the configuration and operation of the present invention may vary depending on the intention or custom of the user, the operator, and the like. Definitions of these terms should be based on the content of this specification.
(9) Referring to
(10) The fan housing 10 has a front surface and a rear surface open to allow air to pass through, and a support portion 60 to which the stator 40 is fixed and which is formed in the center thereof while the rotary shaft 20 is rotatably supported in the center thereof.
(11) Referring to
(12) A printed circuit board (PCB) 70 is mounted on the lower side of the stator 40, and the PCB 70 is equipped with various circuit components required for cooling fan control and a Hall sensor for measuring the number of revolutions of the rotor 30. The coil 46 of the stator 40 is electrically connected to a cable for external power connection.
(13) The rotor 30 includes a magnet 32 which is disposed with a certain gap on the outer circumferential surface of the stator 40 and formed in a cylindrical shape, a back yoke 34 disposed on the outer circumferential surface of the magnet 32, and a rotor support 36 to which the magnet 32 and the back yoke 34 are fixed and the impeller 50 is connected.
(14) The rotor support 36 includes a disk portion 72 having a rotary shaft 20 connected to the center thereof and formed in a disk shape, and a cylindrical portion 74 vertically extending from the edge of the disk portion 72, and on the inner surface of which the magnet 32 and the back yoke 34 are fixed, and on the outer surface of which the impeller 50 is formed.
(15) The impeller 50 is integrally formed with the rotor support 36 on the outer circumferential surface of the rotor support 36. That is, the impeller 50 and the rotor support 36 are formed by performing insert injection while the magnet 32, the back yoke 34, and the rotary shaft 20 are disposed in a mold, and the rotary shaft 20, the magnet 32 and the back yoke 34 are fixed on the rotor support 36.
(16) Fastening holes 64 for fixing a mounting bracket on which a cooling fan is mounted are formed at the corners of the fan housing 10. The fastening holes 64 are formed to penetrate through the corners of the fan housing 10 and can be used to fix the cooling fan to the mounting bracket by bolt fastening, bonding, or fitting.
(17) The support portion 60 is formed in a cylindrical shape in the center of the fan housing 10, and on the inner surface of which the rotary shaft 20 is rotatably inserted, and on the outer surface of which the stator 40 is fixed.
(18) The rotary shaft 20 is rotatably supported by a sleeve bearing 66 on the inner surface of the support portion 60, and a bushing 68 is mounted on the bottom surface of the support portion 60 in which the lower end of the rotary shaft 20 is rotatably contacted on the bottom surface of the support portion 60.
(19) Since the driving force of the cooling fan is generated using an electromagnetic field, electromagnetic waves generated by the electromagnetic field are generated, and thus the driving output of the motor may be reduced. In addition, the function of the electronic equipment of the system equipped with the cooling fan may be reduced, and there may be a risk that static electricity is generated and damage to circuit components occurs.
(20) In the present invention, the stator core 42 made of a metallic material and the ground of the PCB 70 are directly electrically connected to expand a ground area, thereby improving EMI shielding and static electricity improvement performance.
(21) As shown in
(22) The ground portion includes: a connection hole portion 90 formed integrally with the stator core 42; and a joint pin 92 inserted into the connection hole portion 90 and electrically connected to the stator core 42 and connected to the ground of the PCB 70.
(23) The connection hole portion 90 is formed to protrude outside the inner surface portion 80 of the stator core 42 and electrically connected to the joint pin 92 in which the joint pin 92 is inserted into the connection hole portion 90. The connection hole portion 90 is formed between the two coil winding portions 82 so as not to interfere with the coil 46 wound around the coil winding portion 82 of the stator core 42.
(24) The joint pin 92 is formed of a metal conductor and is electrically connected to all of the plurality of pieces of stator cores when inserted into the connection hole portion 90. In addition, the lower end of the joint pin 92 is soldered to the PCB 70 and is electrically connected to a pattern that is formed on the PCB 70 to serve as a ground.
(25) That is, the stator core 42 is stacked and a plurality of pieces of stator cores. When the connection hole portion 90 is formed in the stator core 42 and the joint pin 92 is inserted into the connection hole portion 90, all the plurality of pieces of stator cores 42 and joint pins 92 are electrically connected. When the joint pin 92 is connected to the ground of the PCB 70, all the stator cores 42 and the ground of the PCB 70 are electrically connected to greatly expand the ground area.
(26) As shown in
(27) In addition, as shown in
(28) Looking at the assembly process of the PCB 70 and the stator 40, when manufacturing the stator core 42, the connection hole portion 90 is integrally manufactured, and the stator core 42 is stacked in the plurality of pieces of stator cores, and then a bobbin 44 is formed on the outer surface of the stator core 42. Then, the joint pin 92 is inserted into the connection hole portion 90 to electrically connect the stator core 42 and the joint pin 92.
(29) Then, the start line and the end line of the coil 46 are soldered on the PCB to electrically connect the coil and the PCB, and when the joint pin is shouldered to the ground of the PCB, assembly is completed.
(30) In this way, the connection hole portion 90 is integrally molded during molding of the stator, and the joint pin 92 is simply assembled when the coil is soldered on the PCB, so the assembly process is simple. In addition, by electrically connecting the plurality of pieces of stator cores 42 and the ground of the PCB 70, it is possible to expand the ground area to minimize damage caused by static electricity and improve EMI shielding performance.
(31) While the present invention has been particularly shown and described with reference to exemplary embodiments thereof, by way of illustration and example only, it is clearly understood that the present invention is not to be construed as limiting the present invention, and various changes and modifications may be made by those skilled in the art within the protective scope of the invention without departing off the spirit of the present invention.
INDUSTRIAL APPLICABILITY
(32) The present invention can be usefully applied to cooling fans for preventing overheating of electronic devices, automobiles, LED lights, etc., in particular, cooling fans for preventing damage to circuit components due to static electricity and shielding EMI.