This application claims priority to Chinese Patent Application No. 202210225884.5 Mar. 7, 2022, and Chinese Patent Application No. 202211573426.7 filed on Dec. 8, 2022, the disclosures of which are incorporated herein by reference in their entireties.
The present application relates to a power tool and, in particular, to a sander.
Sanders are power tools for polishing. Today, it has become a relatively common manner to provide energy input for a sander through a battery pack. However, the use of the battery pack causes some problems. For example, the weight of the battery pack and the manner in which the battery pack is mounted affect the center of gravity of the sander, affecting an operator's hand feel of holding the sander and vibration performance during operation. In addition, a space occupied by the battery pack has a certain effect on the size of the sander.
The present application adopts the technical solutions described below. A sander includes a housing and a baseplate assembly. The housing forms an accommodation space and a grip for a user to hold. The baseplate assembly includes a baseplate. The sander further includes an output shaft and an electric motor. The output shaft drives the baseplate assembly to rotate and rotates about a first axis. The electric motor drives the output shaft to rotate and includes an electric motor shaft extending along a second axis. A first included angle formed between the first axis and the second axis is less than or equal to 60 degrees.
In an example, a retracted portion which gradually retracts is below the grip, and the electric motor is at least partially disposed above the retracted portion.
In an example, the output shaft is supported by a first bearing and a second bearing, and a bushing is disposed between the first bearing and the second bearing.
In an example, the electric motor and the output shaft are connected by a transmission shaft, and at least part of the transmission shaft is a bendable flexible portion.
In an example, a distance between the baseplate of the sander and a top of the housing is a first height, and the first height is less than or equal to 120 mm.
In an example, a distance between the first axis and a first surface of a battery pack coupling portion is a first distance, and the first distance is less than or equal to 49 mm.
In an example, when a battery pack is mounted to the sander, a distance between a top of the battery pack and a top of the housing is a second distance, and the second distance is less than or equal to 25 mm.
In an example, when a battery pack mates with a battery pack coupling portion of the sander, a projection of a center of gravity of the battery pack on a rear surface of the battery pack is in a first position; when the sander is not connected to the battery pack, a projection of a center of gravity of the sander on the rear surface of the battery pack is in a second position; and a first plane passing through the second axis is defined, the first plane is substantially perpendicular to the rear surface of the battery pack, and the first position and the second position are located on two sides of the first plane separately.
In an example, the sander includes a bearing support made of a metallic material.
In an example, the sander includes a maximum speed key, where the maximum speed key is operated so that a rotational speed of the baseplate assembly is adjusted directly to a maximum rotational speed.
In an example, the first included angle is greater than or equal to 5 degrees and less than or equal to 30 degrees.
The present application further provides a sander. The sander includes a housing and a baseplate assembly. The housing forms an accommodation space and a grip for a user to hold. The baseplate assembly includes a baseplate. The sander further includes an output shaft, an electric motor, and a transmission shaft. The output shaft drives the baseplate assembly to rotate and rotates about a first axis. The electric motor drives the output shaft to rotate and includes an electric motor shaft extending along a second axis. The transmission shaft connects the electric motor shaft to the output shaft, where at least part of the transmission shaft is a bendable flexible portion.
In an example, the transmission shaft transmits a rotational speed and torque outputted from the electric motor shaft to the output shaft.
In an example, a first end of the transmission shaft and the electric motor shaft rotate together through a first conversion member, and a second end of the transmission shaft and the output shaft rotate together through a second conversion member.
In an example, the transmission shaft is made of an iron-carbon alloy having a carbon content greater than or equal to 0.65% and less than or equal to 0.75%, where the carbon content refers to a mass fraction of carbon in the iron-carbon alloy.
In an example, hardness of the transmission shaft is greater than or equal to 35 HRC and less than or equal to 40 HRC, where a hardness unit HRC is Rockwell hardness.
The present application further provides a sander. The sander includes a housing and a baseplate assembly. The housing forms an accommodation space and a grip for a user to hold. The baseplate assembly includes a baseplate. The sander further includes an electric motor and a transmission assembly. The transmission assembly connects the electric motor to the baseplate assembly and drives the baseplate assembly to rotate, where at least part of the transmission assembly is a bendable flexible portion.
In an example, the transmission assembly includes: an electric motor shaft around which the electric motor rotates; an output shaft driving the baseplate assembly to rotate; and a transmission shaft connecting the electric motor shaft to the output shaft.
In an example, at least two of the electric motor shaft, the transmission shaft, and the output shaft are integrally formed.
To make solved technical problems, adopted technical solutions, and achieved technical effects of the present application clearer, the technical solutions in the examples of the present application are further described in detail below in conjunction with the drawings. The examples described below are part, not all, of the examples of the present application.
In the description of the present application, it is to be noted that orientations or position relations indicated by terms such as “center”, “upper”, “lower”, “left”, “right”, “front”, and “rear” are based on the drawings. These orientations or position relations are intended only to facilitate and simplify the description of the present application and not to indicate or imply that a device or element referred to must have such particular orientations or must be configured or operated in such particular orientations. Thus, these orientations or position relations are not to be construed as limiting the present application. Moreover, the terms such as “first” and “second” are used only for distinguishing between different structures or components and are not to be construed as indicating or implying relative importance.
As shown in
In some examples, a power supply operation member 410 is used for controlling the start and stop of an electric motor 100. The power supply operation member 410 is disposed in the front of the housing 300 of the sander 10. In other words, the power supply operation member 410 is disposed in the front of a grip 330 of the sander 10. The sander 10 also includes a speed regulation switch 420 for adjusting a rotational speed of the baseplate assembly 500 in operation.
As shown in
The battery pack coupling portion 210 is disposed on the sander 10 and mates with the battery pack 200 to complete the transmission of energy and signals. Sliding slots 213 are disposed on two sides of the battery pack coupling portion 210, and the battery pack 200 is slid into the battery pack coupling portion 210 through the sliding slots 213. The battery pack coupling portion 210 includes a first surface 211 which is in contact with the battery pack 200 or maintains a certain gap with the battery pack 200. Male terminals are disposed on the battery pack coupling portion 210 and inserted into female terminals on the battery pack 200. In some examples, specific configurations on the battery pack coupling portion 210 may be different from the configurations in this example.
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The sander 10 includes a transmission shaft 130 which connects the electric motor shaft 110 to the output shaft 140 and transmits a rotational speed and torque outputted from the electric motor shaft 110 to the output shaft 140. An end of the transmission shaft 130 connected to the electric motor 100 is a first end 131, and an end of the transmission shaft 130 connected to the output shaft 140 is a second end 132. During the rotation of the external rotor of the electric motor 100, the electric motor shaft 110 is also driven to rotate, the first end 131 of the transmission shaft 130 and the electric motor shaft 110 rotate together through a first conversion member 120, and the second end 132 of the transmission shaft 130 and the output shaft 140 rotate together through a second conversion member 150. Two ends of the transmission shaft 130 have specific shapes which mate with an opening of the first conversion member 120 and an opening of the second conversion member 150 separately so that the transmission shaft 130 rotates synchronously with the first conversion member 120 and the second conversion member 150. In addition, the first conversion member 120 and the second conversion member 150 are inserted into the electric motor shaft 110 and the output shaft 140, respectively, where the first conversion member 120 and the electric motor shaft 110 do not rotate relative to each other, and the second conversion member 150 and the output shaft 140 do not rotate relative to each other, either.
In this example, the transmission shaft 130 includes at least a bendable flexible portion 133. In some examples, the flexible portion 133 may be an iron-carbon alloy having a carbon content greater than or equal to 0.65% and less than or equal to 0.75%, where the carbon content refers to a mass fraction of carbon in the iron-carbon alloy. In some examples, hardness of the transmission shaft is greater than or equal to 35 HRC and less than or equal to 40 HRC, where a hardness unit HRC is Rockwell hardness.
In some examples, the transmission shaft 130 may include a coupling so that when the first axis 141 and the second axis 111 are at a certain angle, the rotational speed and the torque are transmitted.
The included angle between the first axis 141 of the output shaft 140 and the second axis 111 of the electric motor shaft 110 makes the electric motor 100 tilt forward, that is, the electric motor 100 tilts toward a direction away from the battery pack 200. In this example, a distance between a center of gravity of the electric motor 100 and the first axis 141 of the output shaft 140 is 3 mm. A certain space is left for a circuit board 250 and electronic elements on the circuit board 250 because of the tilt of the electric motor 100. In this example, the circuit board 250 is disposed between the electric motor 100 and the battery pack 200. The center of gravity of the electric motor 100 tilts forward, which improves the balance of the whole machine and is conducive to reducing vibration and improving holding experience.
In some examples, the electric motor 100 is configured to tilt backward, thereby leaving a larger space for the power supply operation member 410 at a front end.
As shown in
The first surface 211 of the battery pack coupling portion 210 intersects the first plane 212 to form a first intersection line 501, where a distance between the first axis 141 and the first intersection line 501 is a first distance L1. That is to say, a distance between the first axis 141 and the first surface 211 (referring to
In this example, the second axis 111 of the electric motor 100 and the first axis 141 of the output shaft 140 are both outside the first plane 212. In some examples, the second axis 111 of the electric motor 100 is not entirely on the first plane 212, that is to say, the electric motor 100 may be deflected to the left or the right relative to the first plane 212.
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In some examples, the first bearing 610, the second bearing 620, and the bushing 660 are sealed in a bearing support 710, and a lower end of the electric motor shaft 110 and an upper end of the output shaft 140 are sealed by a first sealing rib 321 and a second sealing rib 322 on the housing 300. The sealing ribs are disposed on the housing 300 so that when the sander 10 is in operation, dust does not intrude into a movement space of the transmission shaft 130, thereby improving the service life of the transmission shaft 130. In practical application, the exterior of the transmission shaft 130 is typically installed in the electric motor shaft 110 after being soaked with grease, and the transmission shaft 130 is sealed by the sealing ribs on the housing 300.
The present application also discloses a sander. The sander includes a transmission assembly 600 connected to the electric motor 100 and the baseplate assembly 500, where the transmission assembly 600 drives the baseplate assembly 500 to rotate, and at least part of the transmission assembly 600 is the bendable flexible portion 133. In an example, the transmission assembly 600 includes the electric motor shaft 110, an output shaft 150, and the transmission shaft 130, where the electric motor 100 rotates around the electric motor shaft 110, the output shaft 150 drives the baseplate assembly 500 to rotate, and the transmission shaft 130 connects the electric motor shaft 110 to the output shaft 150. In an example, at least two of the electric motor shaft 110, the output shaft 150, and the transmission shaft 130 are integrally formed. That is to say, the electric motor shaft 110 and the transmission shaft 130 may be integrally formed, the output shaft 150 and the transmission shaft 130 may be integrally formed, or the electric motor shaft 110, the output shaft 150, and the transmission shaft 130 may be integrally formed.
As shown in
In some examples, when the battery pack 200 is transversely inserted into the sander 10, the top of the battery pack 200 is lower than or parallel to the top of the housing 300, and when the sander 10 adapts to different models of battery packs 200, the top of the battery pack 200 is generally not higher than the top of the housing 300. In this example, the battery pack 200 is inserted into the battery pack coupling portion 210 of the sander 10 along a direction parallel to the baseplate. In some examples, the battery pack 200 is inserted into the battery pack coupling portion 210 of the sander 10 from left to right. The battery pack 200 is inserted transversely so that the overall height of the sander 10 is limited and when the battery pack 200 is replaced, the overall height is not increased.
A distance between the top of the battery pack 200 and the top of the housing 300 is defined as a second distance L2. In some examples, the second distance L2 is less than or equal to 25 mm.
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With the preceding structure, the balance of the whole machine is effectively improved. In an example, a vibration value of the whole sander 10 is less than 3 m/s2.
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In some examples, the bearing support 710 is made of a metallic material. In some examples, the bearing support 710 is made of an aluminum alloy material. In some examples, the dust collector 700 is made of the metallic material. The bearing support 710 made of aluminum is more reliable in fixing the bearing, and heat generated when the bearing moves can be transmitted to the bearing support 710 made of aluminum and the dust collection cover 720 to be dissipated in time. Static electricity generated by the dust is also reduced in the dust collection cover 720 made of the metallic material. In some examples, the bearing support 710 is made of a zinc alloy material. In some examples, the dust collection tube 730 may be made of a plastic material and then assembled with the dust collection cover 720 and the bearing support 710 made of the metallic material for use.
A sander 10a disclosed in
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In this example, a fixing plate 820 is used for reinforcing the fixing between the switch box 830 and the housing 300. As shown in
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Then turn back to
To improve the uneven sanding circles shown in
With this kind of design, when user hold the sander 10 and press the sander 10 to sand a surface, the pressing force leads to a shape change of the bottom surface of the baseplate assembly 500 and makes the sunk area 531 almost even. In this way, the sanding surface comes out to be more even in a radial direction. To machine the baseplate assembly 500 in this application, the sandpaper receiver 530 and the baseplate board 540 could be integrally formed by a mould with a same shape.
The basic principles, main features, and advantages of the present application are shown and described above. It is to be understood by those skilled in the art that the preceding examples do not limit the present application in any form, and all technical solutions obtained by means of equivalent substitutions or equivalent transformations fall within the scope of the present application.
Number | Date | Country | Kind |
---|---|---|---|
202210225884.5 | Mar 2022 | CN | national |
202211573426.7 | Dec 2022 | CN | national |