This application is based upon and claims the benefit of priority of the prior Japanese Patent Application No. 2017-176205, filed on Sep. 13, 2017, the entire contents of which are incorporated herein by reference.
The present invention relates to a blower device.
Japanese Unexamined Patent Application Publication No. 2004-197714 discloses a device that cools a capacitor provided in a drive circuit for driving a motor by a fan connected to a rotational shaft of the motor.
According to an aspect of the present invention, there is provided a blower device including: a motor; a fan rotated by the motor; a printed circuit board electrically connected to the motor; an electronic part electrically connected to the printed circuit board; a first case, the motor and the fan being positioned in one side with respect to the first case, the printed circuit board and the electronic part being positioned in another side with respect to the first case; a holder holding the electronic part such that the electronic part is spaced apart from the printed circuit board and is in thermal contact with the first case; and a second case fixed in the other side with respect to the first case and covering the printed circuit board, the electronic part, and the holder.
The motor M will be described. As illustrated in
The rotor 40 includes a rotational shaft 42, a yoke 44, and one or more permanent magnets 46. The yoke 44, having a substantially cylindrical shape, is made of a metal. One or more permanent magnets 46 are fixed to an inner circumferential surface of the yoke 44. The yoke 44 is provided around the rotational shaft 42 with vent holes 44a for promoting heat dissipation of the motor M. The permanent magnets 46 face an outer side of the teeth portions of the stator 50. When the coils 30 are energized to excite the teeth portions of the stator 50, the magnetic attractive force and the magnetic repulsive force are exerted between the permanent magnets 46 and the teeth portions, whereby the yoke 44, that is, the rotor 40 rotates relative to the stator 50. In such a manner, the motor M is an outer rotor type motor in which the rotor 40 rotates.
Next, a description will be given of the capacitors 100a and 100b and a holder 80 holding the capacitors 100a and 100b.
Firstly, the capacitors 100a and 100b will be described. As illustrated in
In the above example, the heat transfer sheet 19 is used as an example of a heat transfer member having good thermal conductivity, but the heat transfer member is not limited thereto. For example, it may be a metal plate having high thermal conductivity. In addition, the main body portions 102a and 102b and the wall portion 18 of the case 10 may be adhered to each other with an adhesive silicone. Further, the main body portions 102a and 102b may be in direct contact with the wall portion 18 of the case 10 without interposing a heat transfer member therebetween. As an example of an electronic part whose heat dissipation property is ensured by the wall portion 18 of the case 10, it is not limited to the capacitors 100a and 100b. The electronic part may be any that generates heat, for example, an FET, a choke coil, a shunt resistor, an IC chip, or the like.
The heat dissipation properties of the capacitors 100a and 100b are ensured by the wall portion 18 of the case 10 as described above. This eliminates the need for the heat dissipation properties of the capacitors 100a and 100b at the expense of airtightness in the cases 10 and 20. This ensures the heat dissipation properties of the capacitors 100a and 100b while ensuring airtightness, dustproofness, and waterproofness in the cases 10 and 20.
Next, the holder 80 will be described. As illustrated in
The holding portions 82a and 82b respectively hold both end portions of the main body portions 102a and 102b each having a substantially column shape. The holding portions 82a and 82b have respective frame shapes having openings 83a and 83b that partially expose the outer circumferential surfaces of the main body portions 102a and 102b, respectively. This ensures the heat dissipation properties of the main body portions 102a and 102b, and permits the inner surface of the wall portion 18 to be in thermal contact with parts of the outer circumferential surfaces of the main body portions 102a and 102b exposed from the openings 83a and 83b.
The holding portions 82a and 82b are provided at their inner wall surfaces with supporting surfaces 821 that are curved along the outer circumferential surface of the main body portion 102a or 102b and support the outer circumferential surface thereof. Further, the holding portion 82a is provided with engaging claw portions 823 and 824 for pressing the outer circumferential surface of the main body portion 102a against the supporting surfaces 821 by the elastic force, in order to prevent the main body portion 102a from dropping out. Similarly, the holding portion 82b is provided with other engaging claw portions 823 and 824. In assembling the capacitors 100a and 100b into the holder 80, the outer circumferential surfaces of the main body portions 102a and 102b are respectively inserted into the holding portions 82a and 82b against the elastic forces of the engaging claw portions 823 and 824. This facilitates the work of assembling the capacitors 100a and 100b into the holder 80.
As illustrated in
Also, each of the holding portions 82a and 82b is provided with a leg portion 826 that is in contact with an outer edge of the printed circuit board PB as illustrated in
The surrounding portion 84 is positioned between the holding portions 82a and 82b. The surrounding portion 84 is formed into a semi-chasing shape surrounding the terminals 104 of the capacitors 100a and 100b. The surrounding portion 84 includes a low wall portion 841 and side wall portions 843a and 843b facing each other. The side wall portions 843a and 843b, facing the main body portions 102a and 102b, are provided with grooves 844a and 844b for positioning the terminals 104, respectively. The terminal pins 90a and 90b include ends 91a and 91b electrically connected to the printed circuit board PB and the other ends 93a and 93b electrically connected to the capacitors 100a and 100b, respectively, as will be described later in detail. The other ends 93a and 93b of the terminal pins 90a and 90b protrude from the low wall portion 841. Specifically, the other ends 93a and 93b are fitted through two respective holes formed in the low wall portion 841.
The other ends 93a and 93b of the terminal pins 90a and 90b are each formed into a bifurcated shape. The other end 93a, sandwiching one of the two terminals 104 of the main body portion 102a and one of the two terminals 104 of the main body portion 102b, is electrically conductively connected thereto. Likewise, the other end 93b, sandwiching the other of the two terminals 104 of the main body portion 102a and the other of the two terminals 104 of the main body portion 102b, is electrically conductively connected thereto. In assembling the capacitor 100a into the holder 80, the two terminals 104 of the capacitor 100a are inserted into the respective grooves 844a so as to be electrically conductively connected to the respective other ends 93a and 93b. The same is true in assembling the capacitor 100b into the holder 80. This improves workability of electrically conductive connection between the capacitors 100a and 100b and the terminal pins 90a and 90b.
The support portion 89 is positioned outside a line in which the holding portion 82a, the surrounding portion 84, and the holding portion 82b are aligned. The ends 91a and 91b of the terminal pins 90a and 90b protrude from the support portion 89. The ends 91a and 91b are fixed to the printed circuit board PB by soldering. In addition, like the terminal pins 90a and 90b, the support portion 89 is provided with a support pin 90c by insert molding. Also, the support pin 90c is fixed to the printed circuit board PB by soldering. However, the support pin 90c, not connected to any other electronic parts, is used for stably supporting the holder 80 on the printed circuit board PB.
The support portion 89 is provided on its surface facing the printed circuit board PB with protruding portions 891, 892, and 893. The projecting heights of the protruding portions 891 to 893 from the surface of the support portion 89 are substantially the same. The protruding portions 891 to 893, arranged in the form of a triangle, are in contact with the surface of the printed circuit board PB. This defines a clearance between the holder 80 and the surface of the printed circuit board PB. Covering portions 87a and 87b are provided around the support portion 89 so as to guide intermediate ports of the terminal pins 90a and 90b.
The terminal pins 90a and 90b support the holder 80 holding the capacitors 100a and 100b in the state where the ends 91a and 91b are fixed to the printed circuit board PB by soldering. Therefore, the number of parts is reduced, the production cost is reduced, and the weight is also reduced, as compared with, for example, a case of providing a member for stably supporting the holder 80 in addition to the terminal pins 90a and 90b.
In addition, the capacitors 100a and 100b and the holder 80 are sandwiched between the cases 10 and 20 as described above, which suppresses the holder 80 from rattling in the cases 10 and 20. This suppresses the application of a load to the joining portions of the ends 91a and 91b of the terminal pins 90a and 90b and the printed circuit board PB due to the rattling of the holder 80, which ensures the electrical conductivity between the terminal pins 90a and 90b and the printed circuit board PB.
Also, the holder 80 holds the capacitors 100a and 100b spaced apart from the printed circuit board PB and outside in the planar direction thereof as illustrated in
Next, the attitudes of the capacitors 100a and 100b held by the holder 80 will be described.
While the exemplary embodiments of the present invention have been illustrated in detail, the present invention is not limited to the above-mentioned embodiments, and other embodiments, variations and modifications may be made without departing from the scope of the present invention.
In the above embodiment, the holder 80 holds the two capacitors 100a and 100b, but is not limited thereto. The holder 80 may hold one or three or more electronic parts. In the above embodiment, the two terminal pins 90a and 90b support the holder 80, but the present invention is not limited thereto. For example, only one of the terminal pins 90a and 90b may support the holder 80. In the above embodiment, the motor M is the outer rotor type, but is not limited thereto. The motor may be an inner rotor type. In the above embodiment, the terminal pins 90a and 90b are integrally formed with the holder 80 by insert molding, but are not limited thereto. For example, at least one of the terminal pins 90a and 90b may be molded separately from the holder 80, and may be assembled into the holder 80 thereafter.
Number | Date | Country | Kind |
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2017-176205 | Sep 2017 | JP | national |