The present application relates to a power tool.
A power tool with a microswitch is safer and less expensive. However, the relatively short turn-on stroke of the microswitch is not applicable to a working condition of the power tool and a user's usage habits. The switch is easily turned off by vibrations generated when the power tool runs. If the stroke of a trigger coincides with the stroke of the microswitch, it is inconvenient for the user to accurately manipulate the power tool. In this case, the feel of using an operating element is poor. In addition, the structure of the microswitch is easily damaged, resulting in a relatively short life of the microswitch.
A power tool includes: a housing; an electric motor disposed in the housing; a switch including a trigger point for controlling the electric motor to be turned on; an operating element to be operated to trigger the switch; a contact rod connected to the operating element, where the operating element is capable of pushing the contact rod to move along a straight line; a pressing block elastically connected to the contact rod and capable of being driven by the contact rod to push the trigger point; and a reset element connected to the contact rod.
Optionally, the operating element is capable of pushing the contact rod to move along the straight line.
Optionally, a mounting cavity is formed in the contact rod, and the pressing block is disposed in the mounting cavity; and the power tool further includes a biasing element disposed in the mounting cavity, connecting the contact rod to the pressing block, and causing the contact rod and the pressing block to move at different speeds.
Optionally, the electric motor includes an electric motor shaft extending along a first axis, and the operating element is a push button capable of being pushed along a first straight line, where the first straight line is substantially parallel to the first axis.
Optionally, the electric motor includes an electric motor shaft extending along a first axis, the operating element is rotatably connected to the housing, and the contact rod and the pressing block are capable of being driven by the operating element to move along a first straight line and are capable of being reset by the reset element, where the first straight line is a radial direction of the first axis.
Optionally, the first straight line passes through the switch, and the trigger point is capable of being pushed in a direction parallel to the first straight line so that the electric motor is turned on.
Optionally, at least one second straight line perpendicular to the first straight line exists, where a projection of the switch in the direction of the second straight line at least partially overlaps a projection of the contact rod in the direction of the second straight line.
Optionally, the power tool further includes a contact piece abutting against the pressing block, where when the contact rod moves along the first straight line, the contact piece is capable of being driven by the pressing block to rotate so as to trigger the switch.
Optionally, the power tool further includes a switch box, where at least part of the switch, the contact rod, and the reset element are disposed in the switch box, and the contact rod includes an exposed portion exposed from the switch box.
Optionally, the power tool further includes a dust-proof member surrounding at least part of the exposed portion of the contact rod, where the exposed portion of the contact rod is in contact with the operating element.
Optionally, the volume of the switch box is greater than or equal to 5000 cubic millimeters and less than or equal to 9500 cubic millimeters.
A power tool includes: a housing; an electric motor disposed in the housing; a switch including a trigger point for controlling the switch to be turned on; and an operating element to be operated to trigger the switch. The power tool further includes: a contact rod capable of abutting against the operating element to be pushed; a pressing block disposed between the contact rod and the trigger point, where the contact rod forms a mounting cavity, and the pressing block is at least partially disposed in the mounting cavity; a biasing element connecting the pressing block to the contact rod; and a switch box supporting the pressing block, the switch, the biasing element, and the contact rod.
Optionally, the operating element is capable of pushing the contact rod to move along a straight line from a first stage to a second stage.
The pressing block is separated from the trigger point when the contact rod is in the first stage, the trigger point is pressed and triggered by the pressing block when the contact rod is in the second stage, and the ratio of the stroke of the contact rod in the first stage to the stroke of the contact rod in the second stage is higher than or equal to 1 and lower than or equal to 1.5.
Optionally, the biasing element compresses the stroke of the contact rod and transmits the stroke of the contact rod to the pressing block, and the biasing element is disposed in the mounting cavity.
Optionally, the power tool includes a reset element connected to the contact rod, where the contact rod compresses the reset element when the contact rod moves in a first stage.
Optionally, the contact rod and the pressing block are capable of being driven by the operating element to move along a first straight line and are capable of being reset by the reset element.
Optionally, the contact rod includes connecting holes, and the pressing block is provided with a connecting pin, where the connecting pin is placed into the connecting holes so that the contact rod and the pressing block are connected to each other and are movable relative to each other in the direction of the first straight line.
Optionally, the contact rod includes a mounting slot, the pressing block is provided with an adapter, and the adapter is placed into the mounting slot so that the pressing block is positioned and the pressing block and the contact rod are movable relative to each other in the direction of the first straight line.
Optionally, the reset element is disposed in the switch box.
Optionally, the ratio of the elastic force of the biasing element to the elastic force of the trigger point is higher than or equal to 2 and lower than or equal to 3 when the contact rod is in the second stage.
Optionally, the stroke range of the operating element is greater than or equal to 4 mm and less than or equal to 6 mm.
Examples of the present application are described below in detail with reference to the drawings. The same or similar reference numerals indicate the same or similar elements or elements having the same or similar functions. The examples described below with reference to the drawings are only intended to explain the present application and are not to be construed as limiting the present application.
Technical solutions of the present application are further described below through the examples in conjunction with the drawings. Referring to
The power tool 100 further includes a switch 130, the electric motor 120 is disposed in the housing 110, and the switch 130 can control the electric motor 120 to be turned on and off. The switch 130 may be a switch with a relatively short stroke such as a microswitch or a membrane switch so that a cost can be reduced and the volume of the whole power tool can be reduced. The switch 130 may be triggered by a small force. The power tool 100 further includes an operating element 140 for a user to operate. The user presses the operating element 140 to trigger the switch 130 so as to turn on the electric motor 120.
Referring to
Referring to
Optionally, referring to
In a first example of the present application, the contact rod 150 includes connecting holes 153, and the pressing block 160 is provided with a connecting pin 162, where the connecting pin 162 is placed into the connecting holes 153 so that the contact rod 150 and the pressing block 160 are connected to each other and are movable relative to each other in the direction of the first straight line 101. Both the biasing element 180 and the reset element 170 are springs and extend in the direction of the first straight line 101 so that both the biasing element 180 and the reset element 170 can be telescopic substantially along the direction of the first straight line 101. The first line 101 passes through the switch 130, and the trigger point 131 can be pushed in a direction parallel to the first line 101 so that the electric motor 120 is turned on. The connecting holes 153 extend to certain lengths in the direction of the first straight line 101 so that the pressing block 160 and the contact rod 150 can move a certain distance relative to each other in the direction of the first straight line 101, thereby causing the pressing block 160 and the contact rod 150 to move relative to each other at different speeds. Optionally, when the contact rod 150 is in the second stage, the ratio of the elastic force of the biasing element 180 to the elastic force of the trigger point 131 is higher than or equal to 2 and lower than or equal to 3, thereby improving the overall reliability of the operating assembly 200 and improving the feel of the user.
Optionally, the power tool 100 further includes a switch box 190, where at least part of the switch 130, the contact rod 150, and the reset element 170 are configured to be supported by the switch box 190, and the contact rod 150 is indirectly supported by the housing 110 in this case. Optionally, at least part of the switch 130, the contact rod 150, and the reset element 170 are disposed in the switch box 190. The contact rod 150 includes an exposed portion exposed from the switch box 190, and the exposed portion of the contact rod 150 is in contact with or connected to the operating element 140 so that the operating element 140 can drive the contact rod 150 to move or the contact rod 150 drives the operating element 140 to move. The operating assembly 200 is packaged by the switch box 190 so that the operating assembly 200 is modular and adaptable to a variety of power tools 100. The switch box 190 is sealed by a sealing member so that the operating assembly 200 in the switch box 190 is protected against dust. The switch box 190 may have a two-half structure. An accommodating space is formed in the middle of the two-half structure through splicing. The joint of the two-half switch box 190 is sealed by the sealing member, where the sealing member may be made of a sealing material such as silica gel. The power tool 100 further includes a dust-proof member 191 surrounding the exposed portion of the contact rod 150. The dust-proof member 191 is an elastic member and can deform as the contact rod 150 moves and is always in the state of wrapping the contact rod 150. The dust-proof member 191 may be made of a rubber material. The dust-proof member 191 is connected to the switch box 190 so that the inside of the dust-proof member 191 communicates with the accommodating space formed by the switch box 190. The whole operating assembly 200 is located in the accommodating space formed by the switch box 190 and the accommodating space formed by the dust-proof member 191. A relatively airtight dust-proof space is integrally formed by the switch box 190 and the dust-proof member 191.
The contact rod 150 is supported directly or indirectly by the housing 110, and the contact rod 150 can be in contact with the operating element 140. Optionally, the contact rod 150 abuts against the operating element 140. Optionally, when the operating element 140 is not pressed by the user, there is a gap between the contact rod 150 and the operating element 140, the operating element 140 is pressed such that the contact rod 150 and the operating element 140 are in contact with each other, and the operating element 140 is continuously pressed such that the contact rod 150 is pushed to move.
Optionally, the contact rod 150 is rotatably connected to the housing directly or indirectly, and the contact rod 150 can be pushed by the operating element 140 to rotate so that the pressing block 160 is driven to move toward the switch and trigger the switch 130 to be turned on.
The electric motor 120 includes an electric motor shaft extending along a first axis 102, where the first straight line 101 is a radial direction of the first axis 102. In this example, the operating element 140 is rotatable relative to the housing. The operating element 140 is configured to be a trigger. The user presses the operating element 140 to drive the contact rod 150 to move, where the direction in which the operating element 140 is pressed is substantially the same as the direction of the first straight line 101. The trigger point 131 can be pushed in a direction parallel to the first straight line 101 so that the electric motor 120 is turned on. The contact rod 150 and the pressing block 160 can be driven by the trigger to move along the first straight line 101 and can be driven by the reset element 170 so that the contact rod 150 and the pressing block 160 return to the initial position along the first straight line 101.
The stroke range of the operating element 140 is greater than or equal to 4 mm and less than or equal to 6 mm so that the stroke range of the contact rod 150 is greater than or equal to 4 mm and less than or equal to 6 mm, and the ratio of the stroke of the contact rod 150 in the first stage to the stroke of the contact rod 150 in the second stage is higher than or equal to 1 and lower than or equal to 1.5. The power tool 100 with the switch 130 is safer and less expensive than a power tool with a current switch. However, the relatively short turn-on stroke of the switch 130 is not applicable to a working condition of the power tool 100 and the user's usage habits. The switch 130 is easily turned off by the vibrations generated when the power tool 100 runs. If the stroke of the operating element 140 coincides with the stroke of the switch 130, it is inconvenient for the user to accurately manipulate the power tool 100. In this case, the feel of using the operating element 140 is poor. In addition, the structure of the switch 130 is easily damaged, resulting in a relatively short life of the switch 130. The reset element 170 and the biasing element 180 are provided so that the stroke of the switch 130 is increased and it is implemented that the stroke range of the operating element 140 is greater than or equal to 4 mm and less than or equal to 6 mm. Thus, the performance of the operating element 140 more conforms to the working condition under which the power tool 100 is used. The biasing element 180 can effectively prevent the switch 130 from being turned off due to the vibrations of the power tool 100 and buffers the impact force of the operating element 140, thereby reducing the impact on the switch 130 and prolonging the service life of the switch 130.
The mounting cavity 151 is formed in the middle portion of the contact rod 150, the biasing element 180 and the pressing block 160 are placed in the mounting cavity 151, both the reset element 170 and the biasing element 180 can be telescopic in the direction of the first straight line 101, and the first straight line 101 passes through the switch 130 so that the whole operating element 140 is simple and reliable. In addition, the overall structure of the operating assembly 200 and the switch box 190 is compact, and elements such as the contact rod 150, the reset element 170, the pressing block 160 are added to increase the stroke of the operating element 140, which does not make the overall structure of the operating assembly 200 complicated and increase the overall dimension of the power tool 100 indirectly.
During assembly, the biasing element 180 and the pressing block 160 are assembled in the contact rod 150, and the connecting pin 162 is placed into the connecting holes 153 to limit the pressing block 160. The switch 130, the contact rod 150, and the reset element 170 are assembled in the switch box 190, the two-half switch box 190 is spliced by snaps or screws, the switch is encapsulated by the sealing member, and the dust-proof member 191 is sleeved on the exposed portion of the contact rod 150. The whole constituted by the operating assembly 200 and the switch box 190 is then mounted in the housing 110.
Optionally, the power tool 100 provided by the present application may be provided with no switch box 190, and the operating assembly 200 is directly fixed or supported by the housing 110.
Referring to
The contact rod 150a is connected to the trigger, the trigger can push the contact rod 150a to move along a straight line to trigger the switch 130a, the pressing block 160a is elastically connected to the contact rod 150a, the pressing block 160a can be driven by the contact rod 150a to push the trigger point 131a, and the reset element 170a is connected to the contact rod 150a and the switch box 190a. The operating element 140a can push the contact rod 150a to move along the straight line from a first stage to a second stage. When the user does not press the operating element 140a, the reset element 170a keeps the contact rod 150a away from the switch 130a so that the pressing block 160a and the trigger point 131a are separated from each other. When the operating element 140a is pressed and the contact rod 150a is in the first stage, the pressing block 160a is separated from the trigger point 131a. When the user presses the operating element 140a so that the contact rod 150a is in the second stage, the contact rod 150a compresses the reset element 170a, and the trigger point 131a is pressed by the pressing block 160a such that the electric motor 120a is turned on.
The contact rod 150a includes a mounting slot 152a, the pressing block 160a is provided with an adapter 161a, and the adapter 161a is placed into the mounting slot 152a so that the pressing block 160a is positioned and the pressing block 160a and the contact rod 150a are movable relative to each other in the direction of a first straight line 101a. Both the reset element 170a and the biasing element 180a can be telescopic in the direction of the first straight line 101a passing through the switch 130a. The switch box 190a includes a positioning pin, and the reset element 170a is configured to be a torsion spring and connected to the positioning pin. One end of the reset element 170a is connected to the contact rod 150a. Thus, the operating element 140a is pressed to perform a leading movement, which is an idle stroke. In addition, the contact rod 150a and the pressing block 160a are reset by the reset element 170a so that it is convenient to control the power tool 100a to be turned on next time.
Referring to
With the structural configuration in this example, the projection of the switch 130b in the direction of the second straight line 103b at least partially overlaps the projection of the contact rod 150b in the direction of the second straight line 103b. Thus, the dimension of the whole operating assembly in the direction of the first straight line 101b can be reduced so that the dimension of the switch box 190b is reduced. Further, it is implemented that the volume of the switch box 190b is greater than or equal to 5000 cubic millimeters and less than or equal to 9500 cubic millimeters, and the area of a vertical projection of the switch box 190b on the plane in which the first straight line 101b and the second straight line 103b are located is greater than or equal to 400 square millimeters and less than or equal to 750 square millimeters.
Referring to
A user pushes the operating element to drive the contact rod 150c to move, where the direction in which the operating element is pushed is substantially the same as the direction of the first straight line 101c. A trigger point can be pushed in a direction parallel to the first straight line 101c so that the electric motor 120c is turned on. The contact rod 150c and a pressing block 160c can be driven by a trigger to move along the first straight line 101c and can be driven by a reset element 170c so that the contact rod 150c and the pressing block 160c return to an initial position along the first straight line 101c. In this example, the contact rod 150c, the reset element 170c, and a switch 130c are directly supported by ribs formed by the housing 110c, and no switch box 190c is provided. The reset element 170c may be disposed between the switch 130c and the contact rod 150c. Optionally, one end of the reset element 170c is connected to a housing 110c or fixed to a connector of the housing 110c, and the other end of the reset element 170c is connected to the switch 130c. A biasing element is disposed between the pressing block 160c and the contact rod 150c so that the pressing block 160c and the contact rod 150c can move a certain distance relative to each other in the direction of the first straight line 101c.
Number | Date | Country | Kind |
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202110316477.0 | Mar 2021 | CN | national |
202110316496.3 | Mar 2021 | CN | national |
202111503443.9 | Dec 2021 | CN | national |
202111503453.2 | Dec 2021 | CN | national |
This application is a continuation of International Application Number PCT/CN2022/074489, filed on Jan. 28, 2022, through which this application also claims the benefit under 35 U.S.C. § 119(a) of Chinese Patent Application No. CN 202110316477.0, filed on Mar. 25, 2021, Chinese Patent Application No. CN 202110316496.3, filed on Mar. 25, 2021, Chinese Patent Application No. CN 202111503443.9, filed on Dec. 9, 2021, and Chinese Patent Application No. CN 202111503453.2, filed on Dec. 9, 2021, which applications are incorporated herein by reference in their entireties.
Number | Date | Country | |
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Parent | PCT/CN2022/074489 | Jan 2022 | US |
Child | 18451236 | US |