This application is a 371 application of the International PCT application serial no. PCT/JP2017/002953, filed on Jan. 27, 2017, which claims the priority benefit of Japan application no. 2016-038316, filed on Feb. 29, 2016. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
The present invention relates to a power tool having a fan for cooling, in particular to the power tool which improves a fan guide of a fan attached to a rotation axis of a driving means and thereby suppresses the over speed of a driving source such as a motor.
A disk grinder as set forth in patent literature 1 is known as an example of a portable power tool. The disk grinder has a cylinder-shaped motor housing accommodating a motor which is a driving source. In front of the motor housing, a power transmission mechanism, which is configured to include two sets of bevel gears that change a power transmission direction determined by a rotation axis of the motor for about 90°, is arranged. The power transmission mechanism is accommodated in a gear case, and a grinding stone is attached to a spindle which protrudes downward from the gear case. A fan for cooling is arranged on a front end side of the rotation axis of the motor, and a ventilation port introducing an external air and an exhaust port for discharging an internal air are arranged on the housing. The cooling air flows from the ventilation port to the exhaust port due to the rotation of the fan and cools the heat-generating motor.
Patent literature 1: Japanese Laid-open No. 2010-173042
In recent years, out of a requirement to increase operation efficiency of an operator, output of a motor of a power tool is increased, downsizing and lightening and low cost are required, and the applicant realizes various power tools accompanying this change. In a case of merely increasing the output of the motor, it is considered to raise the speed of the motor during operation, but in this case, the speed during idling when a work machine is not pressed against an object becomes high, and the noise corresponding to the exhaust amount of a fan and so on becomes loud. For conventional power tools, the noise is solved by limiting the speed during idling by using an expensive controller, but the product cost increases in accordance with the arrangement of the controller or the arrangement of a detection element detecting the speed of the motor and so on.
The present invention is achieved in view of the aforementioned background, and aims to provide a power tool which is capable of controlling the speed of a motor during idling with simple structure. Another objective of the present invention is to provide a power tool which can use an air flow generated by a fan to suppress an increase in the speed of a motor during idling.
The characteristics of the typical invention disclosed in this application are as described below. According to one characteristic of the present invention, a power tool is configured to comprise: a fan, which is rotated by a motor; a housing, which accommodates the motor and the fan; and a fan guide, which straightens the flow of cooling air generated by the fan, wherein ventilation ports introducing an external air and exhaust ports discharging an internal air are arranged on the housing, and an air path of the cooling air is formed from the ventilation ports to the exhaust ports by the rotation of the fan, a branching passage for diverging a portion of the cooling air drawn by the fan and discharging it to a drawing side is arranged, and a portion of the cooling air circulates inside the housing instead of being discharged from the exhaust port owing to the branching passage.
According to another characteristic of the present invention, a portion of the cooling air guided by the fan guide toward the exhaust port is drawn back to an air path before entering the fan guide owing to the branching passage. Because the diverging of the cooling air is performed using the fan guide, the present invention can be easily realized using an improved fan guide only. The fan guide is substantially cup-shaped with an opening on the exhaust side or substantially cylinder-shaped with a narrowing inlet side, and an opening part which becomes the exhaust port side is covered by a cover component having exhaust holes. A ventilation hole for passing the air flowing into the fan and through holes forming the branching passages are formed in the fan guide. In this case, a total opening area of the through holes is preferable configured to be smaller than a total opening area of the exhaust holes formed in the cover component.
According to another characteristic of the present invention, a power transmission mechanism for the power machine is arranged on a front end of the rotation axis of the motor, the fan is fixed between a stator and the power transmission mechanism in the rotation axis, and the fan guide is arranged between the fan and the stator. The fan guide has a motor side wall surface which is substantially perpendicular to the axis direction, and the ventilation hole is arranged in the vicinity of the center of the motor side wall surface. The through holes of the fan guide are arranged on the outer circumference side of the ventilation hole in the motor side wall surface. The cover component is arranged between the fan and the power transmission mechanism side, and has a wall surface which is perpendicular to the axis direction.
According to another characteristic of the present invention, the fan guide is integrally molded so as to be disposed while extending from an outer edge part of the motor side wall surface toward the cover component and covering an outer circumference side of the centrifugal fan, and the through holes are arranged in a circumferential direction in several positions of the outer circumference side of the motor side wall surface with a distance between each other. The shape of the through holes are formed to be inclined so that the cooling air is made to flow out to the air path before entering the fan guide while being guided to the spinning direction of the motor, that is, the air is guided toward the rotation direction to the stator side of the motor in the axis direction. Here, an air volume flowing out of the through holes is preferably below 20% of the air volume flowing out of the exhaust holes.
According to the present invention, the power tool which is capable of suppressing the exhaust amount with a simple structure that merely improves the shape of the fan guide can be realized. The aforementioned and other objectives and new characteristics of the present invention are made clear from the description of the specification and the drawings below.
In the following part, the embodiment of the present invention is described with reference to the drawings. In the following drawings, a disk grinder 1 is used as an example of a power tool for description, the same symbols are marked for the same part and repeated description is omitted. Besides, in this specification, directions of front, back, left, right, up and down are described as the directions shown in the drawings.
The motor 6 in this embodiment uses a universal motor which operates with an alternative current. The motor 6 has a stator 8 on an outer circumference side of a rotor 7. A brush holding part 9 is arranged on a rear side of the motor 6. The motor housing 2 is fabricated to a cylinder shape or a long tube shape by the integral molding of a polymer resin such as polycarbonate, and the stator 8 is fixed by the motor housing 2 so as not to rotate in the circumferential direction. Besides, a step part 2b with a shortened internal diameter is formed on a rear side of the motor housing 2, and the motor 6 is inserted from an opening 2a in the front of the motor housing 2 to the rear side. The movement of the motor 6 in the axis direction is suppressed by a fan guide 30 in the front side. In addition, the type of shape of the motor 6 are not limited to those in this embodiment, and other types of motors such as a direct-current motor or a brushless DC motor can also be used.
A rotation axis 10 of the motor 6 is rotatably held by a bearing 18 fixed to the gear case 3 and a bearing 19 disposed on the rear side of the brush holding part 9. A fan 25 for cooling is arranged on the front side of the rotation axis 10 of the motor 6. The fan 25 is, for example, a centrifugal fan made of synthetic resin by integral molding, and is fixed to the rotation axis 10 so as to rotate synchronously with the rotation axis 10. The fan 25 rotates due to the rotation of the motor 6, thereby introducing an external air from a ventilation port 24 arranged on a rear part of the tail cover 4 as shown by an arrow 26a, and generating an air flow which passes through the tail cover 4 as shown by an arrow 26b and an arrow 26c and passes the motor 6 part as shown by an arrow 26d. The air flow passing through the motor 6 flows into a fan chamber from a ventilation hole 31a formed in the central part of the fan guide 30 as shown by an arrow 26e, flows outward in the radial direction, passes through an exhaust hole 42d formed in a bearing holder 40, enters the inner space of the gear case 3 as shown by an arrow 26f, and is discharged forward from an exhaust port 3b formed in the gear case 3 as shown by an arrow 26g. On the other hand, the air flowing into the fan chamber passes through an exhaust hole 42b formed under the bearing holder 40 from the arrow 26e below, flows as shown by an arrow 26h and is discharged outside.
The tail cover 4 is separated into a right tail cover and a left tail cover, and the right and left of the tail cover 4 is secured to the motor housing 2 by a screw that is not shown. A power supply cord 29 for supplying electric power to the motor 6 is connected to the exterior of the tail cover 4. A switch 28 for turning the motor 6 ON/OFF is accommodated inside the tail cover 4.
The gear case 3 is mounted to the motor housing 2 by four screws (not shown) which are inserted from the front to the back. Inside the gear case 3, the spindle 11 is disposed so that the axis center extends in the up and down direction, the upper end is fixed to the gear case 3 by a bearing metal 12, and is pivotally support near the center to a bearing 14 by a spindle cover 13. A wheel washer 15 is arranged at the lower end of the spindle 11, and is mounted so that a grinding stone 5 is clamped by the wheel washer 15 and a wheel nut 16. A large-diameter bevel gear 22 is arranged above the bearing 14 of the spindle 11, and the bevel gear 22 engages with a small-diameter bevel gear 21 arranged at the front end of the rotation axis 10 of the motor 6, thereby decelerating the rotation of the motor 6 with a predetermined ratio and rotating the grinding stone 5.
The grinding stone 5 can be attached to or removed from the spindle 11 by the wheel nut 16. The grinding stone 5 is, for example, a resinoid flexible grinding stone, a flexible grinding stone, a resinoid grinding stone or a sanding disk with a diameter of 100 mm, and a surface grinding or a sphere grinding for metal, synthetic resin, marble, concrete and so on may be performed according to the choice of the type of abrasive grains that are used. The maximum permissible speed of the grinding stone 5 is 12000 rpm for example, and the speed during operation is sufficiently lower than the maximum permissible speed. A wheel guard 17 is used to prevent scatter of the ground components or damaged abrasive grains.
In two opposing positions on the outer circumference side of the rear wall surface 31 of the fan guide 30, dents 33a, 33b which dent forward from the rear wall surface 31 are formed. The dents 33a, 33b are formed to prevent wires wound on the stator 8 from contacting with the rear wall surface 31 of the fan guide 30. In four positions near the outer circumference of the rear wall surface 31, branching passages 35a through 35d which become through holes for diverging a portion of the air generated by the fan 25 and turning the air to flow back to the motor 6 side are formed. Most of the air flowing into the fan guide 30 via the ventilation hole 31a is drawn by the fan 25 rotating in an arrow direction showing a rotation direction 27 of the fan 25, then is guided to the outer circumference side by a centrifugal force and flows to the gear case 3 side via exhaust holes (described below by
On the other hand, a portion of the air flowing into the fan guide 30 via the ventilation hole 31a is discharged from the fan chamber to the rear side (the motor 6 side) through branching passages 35a through 35d as shown by a dotted-line arrow. The shape of the branching passages 35a through 35d are determined so that the cooling air is discharged aslant in the circumferential direction with respect to the rotation direction 27 of the fan 25, and slant surfaces 37a through 37d (described below by
In the part near the outer circumference of the bearing holder 40, four exhaust holes 42a through 42d which extend in the circumferential direction in an elongated shape are formed. Through these exhaust holes 42a through 42d, most of the cooling air drawn by the fan 25 is discharged to the gear case 3 side from the fan chamber (a space where the fan 25 is accommodated), and is discharged outside from the exhaust port formed in the gear case 3. In
In a case when the fan guide 30 of this embodiment is used, as shown by curve 92 represented by a dotted line, a portion of the cooling air circulates inside the motor housing 2 so as to return to the motor 6 side from the interior of the fan guide 30 via the branching passages 35a through 35d. Due to the circulation (turbulent flow) of the cooling air, compared with a conventional fan guide, the load to the motor 6 in a high-speed region increases because of the increase in the loss resistance of the fan 25. Therefore, when the speed of the fan 25 is about 6,000 rpm (the actual operation region), the torque can be realized with a value comparable to a conventional value, and the highest speed of the spindle 11 during idling can be reduced to about 11,000 rpm, which is about 10% lower than the conventional value. Accordingly, in this embodiment, by arranging a turbulent flow generating means (the branching passages 35a through 35d) so as to disturb the flow of the cooling air of the fan guide 30 to increase resistance of the fan, even if the motor 6 is not electrically controlled, high-speed rotation of the motor 6 during idling can be suppressed. As a result, when the output of the motor 6 is increased than in a conventional situation and the output torque of the power tool is increased, particularly excellent result is obtained. Besides, because the speed during idling can be lowered, the exhaust amount decreases and the noise is suppressed, and by changing the specification of the fan 25 to increase the ventilation volume (increases fan loss), the exhaust amount is the same as in a conventional situation while the speed during idling can be further decreased. The load applied by the fan 25 to the motor 6 at this moment is proportional to the square of the speed of the motor 6, so that even the workload of the fan 25 increases, there is little influence caused by the fan loss in the actual operation region (close to 6,000 rpm). Moreover, in the structure of this embodiment, a control device electrically controlling the motor 6 is not necessary, and the structure is also simple, therefore a power tool with low risk of failure and high reliability can be realized.
In the above, in this embodiment, the fan guide 30 for introducing the air of the fan 25 is arranged, in the fan guide 30, the ventilation hole 31a for passing the air flowing into the fan 25 and the branching passages 35a through 35d for diverging a portion of the cooling air are arranged, and a portion of the cooling air circulates inside the motor housing 2 due to the branching passages 35a through 35d. When adjusting the amount of the circulating air, all that needs to do is to redo the fan guide 30 which is a molded article of synthetic resin to change the size, numbers, interval and positions in the radial direction of the branching passages 35a through 35d, the shapes of the rear slant surface 36a through 36d and the slant surface 37a through 37d and so on, therefore a desired circulating state can be easily realized.
Next,
About half of the saw blade 105 on the upper side is covered by a gear cover 103, and a part of the saw blade 105 protruding downward from the base 109 is covered by a safety cover 117. The safety cover 117 is arranged to be capable of revolving coaxially with the spindle 111, and abuts against the material to be cut and revolves when the base 109 is abutted against the material to be cut and the saw blade 105 is slid in the cutting direction. The operator grips the handle 104 and turns on a switch that is not shown, by which the rotation of the motor 106 is transmits to the saw blade 105 via a decelerating device and the material to be cut can be cut.
The fan guide 130 is arranged between the fan 125 and the motor 106. In the fan guide, a substantially cylinder-shaped rear wall surface 131 for guiding the air drawn to the internal side of an outer circumference part is formed. In several positions (four positions located up, down, left and right) of the outer circumference part of the rear wall surface 131, branching passages 135a, 135c are arranged (the other two branching passages cannot be seen in
According to the second embodiment, by forming branching passages in the air path of the cooling air and circulating a portion of the cooling air from the rotation space (fan chamber) of the fan 125 to the motor 106 side, an increase in the speed of the motor 106 during idling can be suppressed using the force of the air generated by the fan 125. As a result, even if the output of the motor is further increased than before, the speed of the saw blade 105 can be maintained within a predetermined range. Moreover, similar to the first embodiment, in the structure of this embodiment, a control device electrically controlling the motor 106 is not necessary either, and the structure is also simple, therefore a power tool with low risk of failure and high reliability can be realized.
In the above, the present invention is described based on the embodiment, but the present invention is not limited to the embodiment and can be modified without departing from the spirit. For example, in the abovementioned embodiment, an electric power tool using a disk grinder and an electric circular saw is descried as an example of the power tool, but it is not limited to this; as long as it is configured so that a fan for cooling or other usages is arranged in the rotation axis of the motor, and the air is taken into the interior of the housing from the outside of the housing, the present invention can be realized in any power tool. Besides, in the abovementioned embodiment, it is configured so as to mount the fan guide on the motor housing, but the housing and the fan guide may also be formed as an integrally molded article. Furthermore, it may also be configured so that the air diverged using the fan guide not only circulates on the motor side but also flows to other positions and increases the resistance of the fan.
Number | Date | Country | Kind |
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2016-038316 | Feb 2016 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/002953 | 1/27/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2017/150030 | 9/8/2017 | WO | A |
Number | Name | Date | Kind |
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6314922 | Zimmermann | Nov 2001 | B1 |
20040263008 | Voigt | Dec 2004 | A1 |
20080106159 | Yoshida | May 2008 | A1 |
20100038979 | Miller | Feb 2010 | A1 |
20120302147 | Trautner | Nov 2012 | A1 |
20140331508 | Simm | Nov 2014 | A1 |
20160193727 | Takeda | Jul 2016 | A1 |
Number | Date | Country |
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S60100107 | Jul 1985 | JP |
2002-103251 | Apr 2002 | JP |
2006-315121 | Nov 2006 | JP |
2010-173042 | Aug 2010 | JP |
2015-047668 | Mar 2015 | JP |
Entry |
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“International Search Report (Form PCT/ISA/210)” of PCT/JP2017/002953, dated Mar. 21, 2017, with English translation thereof, pp. 1-4. |
Number | Date | Country | |
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20190039228 A1 | Feb 2019 | US |