The present invention relates to an electric power tool provided with a fan for cooling a motor.
In order to reduce the size of an electric power tool, to reduce noises from the electric power tool, and to increase power output from the electric power tool, it is necessary to improve a fan for cooling a motor and a structure surrounding the fan. Patent Literature 1 discloses an electric power tool provided with a fan having a shape improved so as to increase a flow rate of air, and to reduce noises.
The electric power tool disclosed in Patent Literature 1 has a motor and a centrifugal fan housed in an outer frame (gear cover). The centrifugal fan has a fan body and a plurality of vanes formed on the fan body at a given pitch. An air discharge opening is provided to the gear cover so as to face the outer periphery of the fan body, and a fan guide is provided in the gear cover and radially disposed on the outside of the centrifugal fan. The fan guide is formed so as to encircle the centrifugal fan, and to communicate with the air discharge opening.
[PTL 1]
Japanese Patent Application Laid-Open Publication No. 2004-249386
Incidentally, in the conventional electric power tool, airflow from the motor toward the centrifugal fan tends to be disturbed in some cases, and the disturbed airflow prevents the increase in flow rate and cooling efficiency.
An object of the present invention is to provide an electric power tool improved in flow rate and cooling efficiency of a fan for cooling a motor.
In accordance with one aspect of the present invention, there is provided an electric power tool comprising: a motor serving as a driving source; a tool body in which the motor is housed, and which has an air intake port and an exhaust port; a centrifugal fan mounted on an output shaft of the motor, and configured to provide cooling air for cooling the motor; and a fan guide formed so as to encircle the centrifugal fan, and configured to guide the cooling air, characterized in that: an extended portion extending in a radial direction of the centrifugal fan is formed in the fan guide; and the extended portion is gradually sloped along a rotation direction of the centrifugal fan toward the exhaust port.
In accordance with another aspect of the present invention, there is provided an electric power tool comprising: a motor serving as a driving source; a tool body housing the motor therein and having an air intake port and an exhaust port; a centrifugal fan fitted on an output shaft of the motor, the centrifugal fan generating cooling air that cools the motor; a first flow-regulating member that guides the cooling air to outside of the output shaft in its radial direction; and a second flow-regulating member that guides the cooling air guided by the first flow-regulating member, toward a front end of the tool body, characterized in that the second flow-regulating member includes: a base portion; an outer wall extending from the base portion in an axial direction of the output shaft and located outside in a radial direction of the centrifugal fan; and a first extended portion extending from the outer wall toward radial interior of the centrifugal fan, wherein an axial distance between the first extended portion and the base portion is gradually reduced along a rotation direction of the centrifugal fan.
According to the present invention, improvement in flow rate and cooling efficiency of a fan for cooling a motor provided to the electric power tool can be achieved.
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Hereinafter, one example of an embodiment of the present invention will be described with reference to the drawings. A grinding tool (disc grinder) is explained as an electric power tool according to this embodiment.
As shown in
The motor 4 has a stator 4a, a rotor 4b, and a rotating shaft (output shaft) 3 fixed to the rotor 4b. The output shaft 3 extends through the rotor 4b. One end of the output shaft 3 is protruding from the rotor 4b and rotatably supported by a bearing 11, and the other end of the output shaft 3 is protruding from the rotor 4b and rotatably supported by a bearing 12.
The bearing 11 provided on the front side is in the gear cover 8, and the bearing 12 provided on the rear side is in the motor housing 7. An annular channel “S” is formed between the motor housing 7 and the motor 4, air (as cooling air) taken from the air intake ports 9 (
A driven shaft 16 crossing the output shaft 3 at right angles is disposed in the gear cover 8. The driven shaft 16 is rotatably supported by bearings 17a and 17b. The driven shaft 16 is provided with a driven gear 15 engaging with a driving gear 14 provided to the output shaft 3, and the grinding member 2 is attached to the tip (lower end part) of the driven gear 16.
A centrifugal fan 18 for providing cooling air for cooling the motor 4 is fixed to the output shaft 3 by, for example, press-fitting. Furthermore, in order to efficiently provide cooling air, to increase flow rate, and to improve cooling efficiency, a fan guide 50 is disposed so as to encircle the centrifugal fan 18.
As shown in
The fan guide 50 has a first flow-regulating member 51 for guiding cooling air in a radially-outward direction of the output shaft 3, a second flow-regulating member 52 for guiding cooling air guided by the first flow-regulating member 51 toward the front end side of the housing 5.
As shown in
As shown in
The cylindrical portion 51a of the first flow-regulating member 51 is fitted into the front end part of the motor housing 7, while the cup portion 51b of the first flow-regulating member 51 extends between the motor 4 and the centrifugal fan 18.
Specifically, the cup portion 51b extends inwardly in the radial direction so as to cover the vanes 21 along their front edges 21c.
It is preferable that the cup portion 51b be sloped along the front edges 21c of the vanes 21. The cup portion 51b suppresses the disturbance of an airflow traveling through the channel “S” (
As shown in
In this embodiment, along the rotation direction of the centrifugal fan 18, four outer flow-regulating portions 53 are provided on the base portion 52a, and inner flow-regulating portions 54 are respectively provided on the inner side of the outer flow-regulating portions 53.
Each of the inner flow-regulating portions 54 has an inner wall 54a located on the inside in a radial direction of the centrifugal fan 18, and a second extended portion 54b extending radially outward from the upper end of the inner wall 54a. The outer walls 53a of the outer flow-regulating portions 53 face the respective inner walls 54a of the inner flow-regulating portions 54 in the radial direction. Furthermore, the first extended portions 53b of the outer flow-regulating portions 53 and the second extended portions 54b of the inner flow-regulating portions 54 radially extend in respective directions opposite to each other, and they are lined up along the axial direction. The second extended portions 54b are opposite to the base 20 of the centrifugal fan 18 in the axial direction (see
As shown in
As shown in
The first extended portion 53b and the second extended portion 54b are sloped toward the front side of the housing 5 as shown in
Cooling air is guided along the first extended portion 53b (slope) so as to flow through the openings 55 to reach the exhaust ports 10. Therefore, disturbed flow is hardly created in the channel leading to the exhaust ports 10, and flow rate can be increased. Additionally, each shape of the first extended portion 53b and the second extended portion 54b may be given under the condition that the given shape gradually extends forward (toward the exhaust ports) along the rotation direction of the centrifugal fan 18. That is, if the extended portions 53b and 54b are formed so that the axial distance between the extended portions 53b and 54b and the base portion 52a is gradually reduced along the rotation direction of the centrifugal fan 18, the shape and slope of the extended portions 53b and 54b are not limited to a specific shape and slope.
As shown in
Then, the operation of the disc grinder 1 will be described with reference to, mainly,
After flowing radially outward along the first flow-regulating member 51, the cooling air is guided to the openings 55 (
Furthermore, cooling air introduced into the fan guide 50 (the first flow-regulating member 51 and the second flow-regulating member 52) is guided certainly to the openings 55 along the sloped extended portions 53b and 54b (i.e., the slope) of the second flow-regulating member 52. As a result, this process suppresses convection flow of the cooling air in the fan guide 50, the flow rate of the cooling air is increased, and the cooling effect of the motor 4 is enhanced.
Furthermore, if a control circuit for controlling the motor 4 is disposed in a space between the air intake ports 9 and the motor 4 in the motor housing 7, the control circuit can also be cooled. For example, if the control circuit is disposed in the channel “S”, the control circuit can also be cooled. Specifically, in the case where a brushless motor is used as the motor 4, since a switching element for controlling the brushless motor generates heat, it is preferable that the switching element be disposed in the channel “S”.
Furthermore, since the second extended portions 54b opposite to the centrifugal fan 18 are sloped along the rotation direction of the centrifugal fan 18, it is possible to suppress the generation of eddying flow in a gap between the centrifugal fan 18 and the second extended portions 54b, thereby increasing the flow rate of cooling air.
As described above, the disc grinder 1 according to this embodiment is improved so as to increase the flow rate of cooling air for cooling the motor 4, and so as to enhance its cooling efficiency. Additionally, after cooling the motor 4, the cooling air is discharged from the exhaust ports 10 provided on the front part of the motor housing 7. It is, therefore, possible to prevent an operator from being exposed to this cooling air.
The electric power tool according to the present invention is not limited by the above embodiment, and it will be obvious to those skilled in the art that various modifications may be made without departing from the scope of the invention. The present invention may be also applied to electric power tools other than the disc grinder (such as for example, cutting tools, power-actuated drills, screw-fastening machines). In other words, the present invention can be applied to every type of electric power tool having a fan and a fan guide.
Number | Date | Country | Kind |
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2013-181646 | Sep 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/004186 | 8/13/2014 | WO | 00 |