POWER TOOL
20220016753 · 2022-01-20
Inventors
Cpc classification
F16D3/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25F5/001
PERFORMING OPERATIONS; TRANSPORTING
F16H57/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B25F5/00
PERFORMING OPERATIONS; TRANSPORTING
F16H57/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A power tool includes an output shaft, a planet carrier, and a buffer mechanism. The planet carrier is configured to be rotatably connected with the output shaft to drive the output shaft during operation, and there is a gap between an inner side surface of the planet carrier and a circumferential surface of the output shaft. A buffer mechanism is provided on at least one of the inner side surface of the planet carrier and the circumferential surface of the output shaft near the gap. The buffer mechanism is configured not to actively apply pressure to the output shaft and the planet carrier, and to buffer the impact force between the output shaft and the planet carrier, when the output shaft slides relative to the planet carrier under the action of inertial force.
Claims
1. A power tool, comprising: an output shaft with a circumferential surface; a planet carrier with an inner side surface configured to be rotatably connected to the output shaft to drive the output shaft; there being a gap between the inner side surface of the planet carrier and the circumferential surface of the output shaft; and a buffer mechanism provided on at least one of the inner side surface of the planet carrier and the circumferential surface of the output shaft near the gap; the buffer mechanism configured to not actively apply a pressure to the output shaft and the planet carrier, and to buffer the impact force between the output shaft and the planet carrier when the output shaft slides relative to the planet carrier under the action of inertial force.
2. The power tool according to claim 1, wherein the circumferential surface of the output shaft comprises an outer anti-sliding surface and an outer positioning surface; the inner side surface of the planet carrier comprising an inner anti-sliding surface and an inner positioning surface; the inner anti-sliding surface corresponding to the outer anti-sliding surface, the inner positioning surface corresponding to the outer positioning surface, and the buffer mechanism provided on the inner anti-sliding surface.
3. The power tool according to claim 1, wherein the buffer mechanism comprises two or more buffer members, each of the two or more buffer members provided on the corresponding inner anti-sliding surface of the inner side surface of the planet carrier.
4. The power tool according to claim 1, wherein the buffer mechanism comprises an elastic material.
5. The power tool according to claim 4, wherein the elastic material is soft rubber.
6. The power tool according to claim 1, wherein an adhesive is provided between the buffer mechanism and the inner side surface, and the adhesive is configured to engage the buffer mechanism and the inner side surface together.
7. The power tool according to claim 1, wherein the buffer mechanism has a spherical shape, a cylindrical shape, or a square shape.
8. The power tool according to claim 1, wherein the buffer mechanism is provided on the inner surface in a point contact manner or a surface contact manner.
9. A power tool, comprising: an output shaft with a circumferential surface; a planet carrier with an inner side surface configured to be rotatably connected to the output shaft to drive the output shaft; there being a gap between the inner side surface of the planet carrier and the circumferential surface of the output shaft; and a buffer mechanism provided near the gap on at least one of the inner side surface of the planet carrier and the circumferential surface of the output shaft, the buffer mechanism being a single member and configured to buffer the impact force between the output shaft and the planet carrier when the output shaft slides relative to the planet carrier under the action of inertial force.
10. The power tool according to claim 9, wherein the buffer mechanism is soft rubber.
11. A power tool, comprising: a housing; a planet carrier; an outer support ring fixed on the housing; a cam disk provided in the outer support ring and coaxial with the outer support ring; a lock pin provided between the outer support ring and the cam disk; an output shaft fixedly connected to the cam disk; there being a gap between a circumferential surface of the output shaft and an inner side surface of the planet carrier; and a soft rubber provided on at least one of the inner side surface of the planet carrier and the circumferential surface of the output shaft near the gap; the soft rubber configured to buffer the impact force between the output shaft and the planet carrier when the output shaft slides relative to the planet carrier under the action of inertial force.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0016] In order to facilitate understanding of the disclosure, a plurality of exemplary embodiments will be described below with reference to the related drawings. It should be understood by those skilled in the art that the embodiments herein are only for the purpose of illustrating the disclosure, and are not a limitation on the disclosure.
[0017] As used herein, the term “power tool” may refer to a generic power tool, such as a power drill, or a part of the power tool described, such as a power drill roller overrunning clutch.
[0018] As used herein, “actively applying pressure” by component A to component B generally refers to the situation where, due to the configuration of the component A itself, company A will actively apply force to the component B which is in contact with the component A to maintain itself in a certain state S. In other words, if the component B does not exist, the state S of the component A cannot be maintained by itself.
[0019] As used herein, the term “single member” refers to an assembly made up of one part or object of the same kind, rather than two or more parts or objects of the same or different kind.
[0020] According to an embodiment of the disclosure, the structure shown in
[0021]
[0022] Referring to
[0023] There is a gap or empty position between the planet carrier 5 and the output shaft 1. The buffer mechanism 6 is provided on the inner side of the planet carrier 5 near the gap. The buffer mechanism 6 does not actively apply any pressure to the output shaft 1 and the planet carrier 5. When the power tool stops operating, the output shaft 1 slides relative to the planet carrier 5 under the action of inertia force, and the buffer mechanism 6 can buffer the impact force generated between the output shaft 1 and the planet carrier 5 at this time. When the power tool is started and normally operating, the buffer mechanism 6 does not apply resistance to the output shaft 1 and therefore does not generate undesired resistance.
[0024]
[0025] As shown in
[0026] An outer positioning surface 11 and an outer anti-sliding surface 12 are formed on the circumferential surface of the output shaft 10. An inner anti-sliding surface 53 and an inner positioning surface 54 are formed on the inner side surface of the planet carrier 50. When the output shaft 10 is connected to the planet carrier 50, the inner anti-sliding surface 53 corresponds to the outer anti-sliding surface 12, and the inner positioning surface 54 corresponds to the outer positioning surface 11. A buffer mechanism 60 is provided on the inner anti-sliding surface 53 of the planet carrier 50. The buffer mechanism 60 includes two buffer members 61, 62, each of which is a single member, and they are respectively provided on the corresponding inner anti-sliding surfaces 53.
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[0031] The buffer mechanism according to the embodiment of the disclosure may comprise an elastic material. The buffer mechanism may be, for example, a soft rubber having elasticity. Soft rubber can be polypropylene (PP), polyethylene (PE), etc., whose surface hardness is relatively low. This kind of soft rubber can be formed by injection molding of plastic, and it feels softer at normal temperature. Because of its elasticity, it can absorb impacts between objects and play a buffering role. The buffer mechanism may also be formed from other appropriate elastic or flexible materials according to actual needs, as long as it can play a role in buffering the impact force.
[0032] The buffer mechanism can be provided on the inner side surface of the planet carrier in an appropriate manner. For example, the buffer mechanism may be bonded to the inside surface by an adhesive. That is, an adhesive is provided between the buffer mechanism and the inner side surface for bonding them together. A groove of an appropriate size can also be provided on the inner side surface to carry the buffer mechanism.
[0033] In addition, the shape of the buffer mechanism is highly plastic, which is also advantageous for power tools. For example, the specifications (such as size, shape, etc.) of the components of the power tool, such as the planet carrier and the output shaft, can be with low requirements. In other words, the combination of the buffer mechanism according to the embodiment is flexible and it can be used in power tools of different specifications
[0034] In addition, although the buffer mechanism shown in the above exemplary embodiment comprises two buffer members, those skilled in the art should understand that one or more than two buffer members may be provided according to actual needs. The shape of the buffer member may take other suitable shapes, such as a full circle, a sphere, a column, or other regular or irregular shapes. The contact between the buffer member and the inner side surface of the planet carrier may be a surface contact type or a point contact type.
[0035] Those skilled in the art should also understand that the buffer mechanism can be provided not only on the inner side surface of the planet carrier as illustrated, but also on the circumferential surface of the output shaft, such as the outer anti-sliding surface of the output shaft. In this case, when the output shaft slides relative to the planet carrier under the effect of the inertia force, the buffer mechanism can apply a force to the planet carrier, thereby buffering the impact between the output shaft and the planet carrier. In some embodiments, the buffer mechanism according to the disclosure can be provided on both the planet carrier and the output shaft, which is very advantageous in power tools with relatively large power, because the impact between the output shaft and the planet carrier in the power tool may be relatively strong.
[0036] Unless otherwise defined, technical and scientific terms used herein have the same meaning as commonly understood by one of those skilled in the art. Embodiments of the disclosure are illustrated in non-limiting examples. On the basis of the embodiments disclosed above, various modifications that can be conceived by those skilled in the art fall into the scope of the disclosure.