Eccentric Mechanism and A Power Tool
20210006129 ยท 2021-01-07
Inventors
Cpc classification
B24B23/03
PERFORMING OPERATIONS; TRANSPORTING
B25F5/02
PERFORMING OPERATIONS; TRANSPORTING
B24B41/007
PERFORMING OPERATIONS; TRANSPORTING
International classification
B24B23/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention discloses an eccentric mechanism, comprising an eccentric block assembly and a weight structure and a heat dissipating component. The weight structure is used to balance the eccentric block assembly when rotating, so that the shaft passage one and the shaft passage two provided on the eccentric block are located on the same axis when the eccentric block assembly is rotated. And the heat dissipating component is connected with the eccentric block assembly, and is provided with an fan structure comprising a plurality of fan blade structures driven by a drive mechanism, wherein the heat dissipating component rotates synchronously with a working part, to dissipate heat for structural units.
There is also provided a power tool, comprising a housing mechanism, a driving mechanism, an output mechanism and a working component, the output mechanism comprising an output shaft and the eccentric mechanism described above, the output shaft has one end connected to the driving mechanism, the eccentric mechanism passing the rotating shaft and the working parts are connected. The power tool is provided with a heat dissipating mechanism to dissipate heat from the power tool, especially for working parts such as a grinding head and a polishing head, thereby greatly improving the service life of the tool and better protecting the product such as the surface medium of the automobile. The surface of the product is smoother.
Claims
1. An eccentric mechanism, comprising: an eccentric block assembly; a weight structure, for balancing the eccentric block assembly while rotating, so that a shaft passage one and a shaft passage two provided on the eccentric block are located on the same axis when the eccentric block assembly is rotated; and a heat dissipating component, wherein the heat dissipating component is connected with the eccentric block assembly, and is provided with a fan structure comprising a plurality of fan blade structures driven by a drive mechanism, wherein the heat dissipating component rotates synchronously with a working part, to dissipate heat for structural units of a power tool.
2. The eccentric mechanism according to claim 1, wherein the heat dissipating component further comprises: a mounting structure, configured to mount the eccentric block assembly and the weight structure, comprising a mounting base, a first placement region disposed on the mounting base and a second placement region disposed on the mounting base, wherein the first placement region is configured to place the weight structure, and the second placement region is configured to place the eccentric block assembly; and wherein the fan structure, comprising the plurality of the fan blade structures, is disposed on the mounting structure.
3. The eccentric mechanism according to claim 1, wherein the weight structure further comprises: a counterweight section one; a counterweight section two, wherein an upper end surface of the counterweight section two is lower than an upper end surface of the counterweight section one, and the upper end surface of the counterweight section two is used for supporting and/or mounting of the eccentric block assembly, and/or a counterweight section three disposed on the eccentric block assembly.
4. The eccentric mechanism according to claim 1, wherein the weight structure comprises: a counterweight section one; a counterweight section two, wherein the counterweight section one is formed from a radial extension of the counterweight section two, and the upper end surface of the counterweight section two is used for supporting and/or mounting the eccentric block assembly, and/or; a counterweight section three disposed on the eccentric block assembly.
5. The eccentric mechanism according to claim 1, wherein the mounting base further comprises: a first base, provided with a first positioning mechanism for positioning the weight structure; a second base, provided with a second positioning mechanism for positioning the eccentric block assembly; and a joint portion, comprising a juncture of the first base and the second base.
6. The eccentric mechanism according to claim 5, wherein the first positioning mechanism comprises: a first support assembly, disposed at a lower portion of the first base, and configured to support the weight structure; and a first clamping assembly, disposed at an upper portion of the first base, and configured to clamp the weight structure.
7. The eccentric mechanism according to claim 6, wherein the first support assembly comprises at least a support portion one, comprising a protrusion structure formed by radially extending from an inner wall of the first base, wherein the support portion one can be continuous or disconnected internally.
8. The eccentric mechanism according to claim 6, wherein the first support assembly comprises at least a support member one, wherein the support member one is detachably connected to the lower portion of the weight structure or the lower portion of the first base, or both, and is configured to support the weight structure.
9. The eccentric mechanism according to claim 6, wherein the first support assembly comprises at least a support member one, wherein the support member one can be continuous or disconnected internally, wherein the support member one further comprises: a connecting portion one, comprising a protruding structure formed by extending a lower end surface of the first base in an axial direction; and a support portion, comprising a protruding structure formed by extending the connecting portion one in a radial direction, and is configured to support the weight structure.
10. The eccentric mechanism according to claim 6, wherein the first clamping assembly comprises at least a clamping member one, wherein the clamping member one can be continuous or disconnected internally, and wherein the clamping member one further comprises: a first connecting portion, comprising a protrusion structure formed by extending an upper end surface of the first base in an axial direction; and a first clamping portion, comprising a protrusion structure formed by extending from the first connecting portion in a radial direction, and configured to block the axial movement of the weight structure.
11. The eccentric mechanism according to claim 10, wherein the first placement region is formed by the area enclosed by the joint portion, the first clamping portion, the first base and the support portion one.
12. The eccentric mechanism according to claim 5, wherein the second positioning mechanism comprises: a second support assembly disposed at a lower portion of the second base, and configured to support the eccentric block assembly; and a second clamping assembly disposed at an upper portion of the second base, and configured to clamp the eccentric block assembly.
13. The eccentric mechanism according to claim 12, wherein the second support assembly comprises at least a support portion two, comprising a protrusion structure formed by radially extending from the inner wall of the second base, wherein the support portion two can be continuous or disconnected internally.
14. The eccentric mechanism according to claim 12, wherein the second support assembly comprises at least a support member two, wherein the support member two is detachably connected to the lower portion of the weight structure, or the lower portion of the second base, or both, and is configured to support the eccentric block assembly.
15. The eccentric mechanism according to claim 12, wherein the second support assembly comprises at least a support member two, wherein the support member two is continuous or disconnected internally, wherein the support member two further comprises: a connecting portion two, comprising a protruding structure formed by extending from a lower end surface of the second base in the axial direction; and a support portion two, comprising a protruding structure formed by extending from the connecting portion two in a radial direction, and configured to support the eccentric block assembly.
16. The eccentric mechanism according to claim 12, wherein the second clamping assembly comprises at least a clamping member two, wherein the clamping member two can be continuous or disconnected internally, and wherein the clamping member two further comprises: a second connecting portion, comprising a protrusion structure formed by extending from an upper end surface of the second base in an axial direction; and a second clamping portion, comprising a protrusion structure formed by extending from the second connecting portion in a radial direction, and configured to block the axial movement of the eccentric block assembly.
17. The eccentric mechanism according to claim 16, wherein the second placement region is formed by the area enclosed by the second clamping portion, the second base and the support portion two.
18. The eccentric mechanism according to claim 17, further comprising a first supporting portion disposed on the weight structure, wherein the first supporting portion is provided with a connecting passage one, wherein the lower portion of the eccentric block assembly is provided with a connecting passage two; wherein when the eccentric block assembly is placed in the second placement region, the eccentric block assembly is integrated with remaining components of the eccentric mechanism through fasteners inserted through the connecting passage one and the connecting passage two.
19. The eccentric mechanism according to claim 2, wherein the fan structure is disposed on an outer end surface of the mounting structure, further comprising: the fan blade structure is distributed along a circumferential direction of the mounting base, and extending in a radial direction from an outer end surface of the mounting base; and a second flow guiding passage, comprising a space formed between neighboring fan blade structure, wherein airflow is generated by the rotation of the fan blade structure driven by the rotation of the driving mechanism and/or working part and/or vane structure, wherein the airflow is outputted towards the working part through the second flow guiding channel, and wherein heat generated by an electric tool is dissipated.
20. The eccentric mechanism according to claim 2, wherein the fan structure is disposed on the outer end surface of the mounting structure, further comprising: the fan blade structure, distributed along a circumferential direction of the mounting base, and extending in a radial direction from an outer end surface of the mounting base; an outer ring structure, comprising an annular structure disposed around the outer end of the blade structure; a second flow guiding passage, comprising a space formed by neighboring fan blade, as well as space between the blade structure and the outer ring structure, wherein airflow is generated by the rotation of the fan blade structure driven by the rotation of the driving mechanism and/or working part and/or vane structure, wherein the airflow is outputted towards the working part through the second flow guiding channel, and wherein heat generated by an electric tool is dissipated.
21. The eccentric mechanism according to claim 19, wherein the direction in which the fan blade structure is disposed does not parallel with the axial direction of the mounting base, thus forming an angle A.
22. The eccentric mechanism according to claim 21, wherein the fan blade structure further comprises: a blade one, configured to have a length direction disposed along the outer end surface of the first base; and a blade two, configured to have a length direction disposed along the outer end surface of the second base.
23. The eccentric mechanism according to claim 22, wherein the blade one or the blade two are equidistantly distributed.
24. The eccentric mechanism according to claim 22, wherein the blade one and the blade two are unequally distributed.
25. The eccentric mechanism according to claim 20, wherein the direction in which the fan blade structure is disposed does not parallel with the axial direction of the mounting base, thus forming an angle A.
26. The eccentric mechanism according to claim 25, wherein the fan blade structure further comprises: a blade one, configured to have a length direction disposed along the outer end surface of the first base; and a blade two, configured to have a length direction disposed along the outer end surface of the second base.
27. The eccentric mechanism according to claim 26, wherein the blade one or the blade two are equidistantly distributed.
28. The eccentric mechanism according to claim 26, wherein the blade one and the blade two are unequally distributed.
29. A power tool, comprising: a housing mechanism; a driving mechanism disposed in the housing mechanism; an output mechanism connected to the driving mechanism and disposed in the housing mechanism; working parts configured for the operation of the power tool; the output mechanism further comprises an output shaft having one end connected to the driving mechanism; and the eccentric mechanism of claim 1, wherein the eccentric mechanism is coupled to the working parts via a rotating shaft.
30. A power tool according to claim 25, further comprising a flow guiding device disposed on the housing mechanism, comprising: a flow guiding body, composed of a part of the housing mechanism; a baffle, disposed on the deflector body and disposed at an angle to the flow guiding body; and at least a first guiding channel, comprising a channel formed between the baffle and the flow guiding body, and a channel formed between adjacent baffles, wherein the flow guiding path of the first guiding channel is disposed at an angle with the flow guiding body.
31. The power tool according to claim 26, wherein the first flow guiding channel further comprises: a first passage, comprising an opening portion of the flow guiding body; a second passage, comprising a space formed by a joint surface of the flow guiding body, the first end surface and the second end surface of the baffle; wherein a flow path formed by the first channel and/or the second channel is gradually increased; and wherein with the rotation of the drive mechanism and/or the working parts and/or the blade structure, the airflow generated by the rotation of the blade structure passes, through the second flow channel to the working parts or the first flow channel, to realize the dissipation of heat from the power tool.
32. The power tool according to claim 25, wherein the housing mechanism comprises: a first housing assembly, disposed in a lateral direction for wrapping internal members; a second housing assembly, disposed longitudinally relative to the first housing assembly; and at least one of the following: a first holding device for a user to hold and disposed on the first housing assembly, and a second holding device for a user to hold and disposed on the second housing assembly; wherein the second holding device is disposed on a side of the second housing assembly remote from a control structure, and wherein the first holding device and the second holding device are disposed to match the curvature of the user's fingers, and wherein the respective holding portions can be set to different concave surfaces.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0069] In order to make the objects, technical solutions and advantages of the embodiments of the present invention more clearly, the technical solutions of the embodiments of the present invention, will be clearly and completely described in the following with reference to the accompanying drawings. It is apparent that the described embodiments are part of the embodiments of the invention, and not all of the embodiments. All other embodiments obtained by a person of ordinary skill in the art based on the described embodiments of the present invention without departing from the scope of the invention are within the scope of the invention.
[0070] In the description of the present invention, it is to be understood that the terms center, longitudinal, transverse, length, width, thickness, upper, lower, front, Orientation or position of indications such as back, left, right, vertical, horizontal, top, bottom, inside, outside, clockwise, counterclockwise, etc. The relationship is based on the orientation or positional relationship shown in the drawings, and is merely for the convenience of the description of the invention and the simplification of the description, and does not indicate or imply that the device or component referred to has a specific orientation, is constructed and operated in a specific orientation, and thus it is not to be understood as limiting the invention.
[0071] Moreover, the terms first and second, are used for descriptive purposes only and are not to be construed as indicating or implying a relative importance, or implicitly indicating the number of technical features indicated. Thus, features defining first and second may include one or more of the features either explicitly or implicitly. In the description of the present invention, the meaning of a plurality is two or more unless specifically and specifically defined otherwise.
[0072] In the present invention, the terms installation, connected, connected, fixed and the like shall be understood broadly; and may be either a fixed connection or a detachable connection, unless explicitly stated and defined otherwise, or connected integrally. May be mechanical connection or electrical connection. May be directly connected, or may be indirectly connected through an intermediate medium, and may be internal communication between the two elements. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood on a case-by-case basis.
[0073] In the present invention, the first feature on or under the second feature may include direct contact of the first and second features, and may also include first and second features, unless otherwise specifically defined and defined. It is not in direct contact but through additional features between them. Moreover, the first feature above, above and above the second feature includes the first feature directly above and above the second feature, or merely indicating that the first feature level is higher than the second feature. The first feature below, below and below the second feature includes the first feature directly below and below the second feature, or merely the first feature level being less than the second feature.
[0074] Unless otherwise defined, the technical terms or scientific terms used herein shall be taken to mean the ordinary meaning of the ordinary skill in the art to which the invention pertains. The words first, second and similar terms used in the specification and claims of the present invention does not denote any order, quantity, or importance, but are merely used to distinguish different components. Similarly, the words a or an and the like do not denote a quantity limitation, but mean that there is at least one.
[0075] As shown in
[0076] As seen from the positional structure, if the working component 400 is visible as the lower end, the heat dissipating component 2 can be disposed above the eccentric block assembly 1, that is, the heat dissipating component 2, the eccentric block component 1 and the working component 400 are sequentially disposed from top to bottom. The heat dissipating component 2 may also be disposed below the eccentric block assembly 1, that is, the eccentric block assembly 1, the heat dissipating component 2, and the working component 400 are sequentially disposed from top to bottom. The heat dissipating component 2 of the present invention is provided with a plurality of blade structure 221, which are driven to rotate synchronously with the working component 400, under the driving of the driving mechanism 200 to achieve heat dissipation of the power tool, especially for the working component 400, then the components are cooled.
[0077] In the present embodiment, as shown in
[0078] According to an embodiment of the invention, the heat dissipation assembly 2 comprises a mounting structure 21 and an fan structure 22, wherein the mounting structure 21 is mainly used for the mounting of the weight structure 3 and the eccentric block assembly 1, In other words, for the mounting and connection of the counterweight structure 3 and the eccentric block assembly 1. The fan structure 22 may be provided in an integral structure with the mounting structure 21, or may be provided as a separate structure. When the component body structure is provided, the fan structure 22 is preferably disposed on the outside of the mounting structure 21, the fan structure 22 is blocked with the mounting structure 21, and when the blade structure 221 is rotated, the air or the heats in the power tool and the working member 400 can be well circulated, thereby being from the inside of the power tool housing, the heat is circulated to the outside, preferably in the direction in which the working member 400 is mounted, to achieve heat dissipation to the power tool. When provided in a unitary configuration, the fan structure 22 is preferably disposed at the outer end of the mounting structure 21, to ensure circulation of air during rotation of the fan blade structure 221 to thereby direct air from the interior of the power tool housing to the exterior, preferably to the working member 400. The direction is circulated to achieve heat dissipation from the power tool.
[0079] In this embodiment, the weight structure 3 is used to balance the eccentric mechanism 500, to ensure that the two axes of the eccentric block assembly 1 are on the same straight line when rotating. The weight structure 3 of the present embodiment may be disposed integrally with the mounting structure 21, or may be a separate structure. when the split structure is provided, the weight structure 3 is located in the first placement area 212 disposed on the mounting structure 21, Moreover, the axis of the weight structure 3 is not in line with the axis of the transmission shaft, and the weight structure 3 is used to balance the axis of the eccentric block assembly 1.
[0080] The weight structure 3 of the present embodiment may also be provided as an integral structure with the eccentric block assembly 1, or may be a separate structure. When the split structure is provided, the weight structure 3 is located at the first placement area 212 provided on the mounting structure 21. Internally, and the axis of the weight structure 3 is not in the same line as the axis of the transmission shaft. The weight structure 3 may be an independent structure, or may be a separate structure and may also be disposed on the eccentric block assembly 1, all are within the scope of protection of the present invention.
[0081] According to an embodiment of the present invention, as shown in
[0082] In the present embodiment, the weight structure 3 may further include a weight portion three 33, and the weight portion three 33 is disposed on the eccentric block assembly 1. From the set position, the weight portion three 33 is disposed on one side of the eccentric block assembly 1, that is, the weight portion three 33 is disposed on the eccentric block body 11, wherein is away from the weight portion one 31 on the eccentric block body 11 and on the side of the counterweight portion 32. Its function is to achieve a balance when the eccentric mechanism 500 and the working member 400 are rotated.
[0083] In this embodiment, the setting of the weight portion three 33 is defined according to the overall layout of the eccentric block assembly 1. When the arrangement of the weight portion one 31 and the weight portion two 32 is sufficient to balance the rotation of the eccentric block assembly 1, The weight portion three 33 may be omitted, or the type and position required for the weight portion three 33 may be correspondingly set according to the arrangement of the weight portion one 31 and the weight portion two 32. The weight portion three 33 may be omitted, or the type and position required for the weight portion three 33, may be correspondingly set according to the arrangement of the weight portion one 31 and the weight portion two 32. In terms of implementation and configuration. The structure of the weight portion three 33 is not limited to the structure of the embodiment and the drawings. For example, in the embodiment, the weight portion three 33 is provided as a crescent-shaped structure, and may also be various shapes such as an ellipse, a circle, a square, a polygon, a star, and so on.
[0084] According to an embodiment of the present invention, as shown in
[0085] In this embodiment, the setting of the weight portion three 33 is defined according to the overall layout of the eccentric block assembly 1. When the arrangement of the weight portion one 31 and the weight portion two 32 is sufficient to balance the rotation of the eccentric block assembly 1, The weight portion three 33 may be omitted, or the type and position required for the weight portion three 33 may be correspondingly set according to the arrangement of the weight portion one 31 and the weight portion two 32. In terms of implementation and configuration, the structure is limited to the structure of the embodiment and the drawings. For example, in the embodiment, the weight portion three 33 is provided as a crescent-shaped structure. It can also be a structure of various shapes such as an ellipse, a circle, a square, a polygon, a star, and so on.
[0086] According to an embodiment of the present invention, as shown in
[0087] In this embodiment, the mounting base 211 includes a first base 214 and a second base 215 and a joint portion 216, wherein the joint portion 216 is formed by the juncture of the first base 214 and the second base 215. In this embodiment, the first placement area 212 is disposed on the first base 214, and correspondingly disposed on the first base 214 is a first positioning mechanism 7 for positioning the weight structure 3. When the weight structure 3 is placed and installed in the first placement area 212, the position of the weight structure 3 is positioned by the first positioning mechanism 7, and effectively preventing the axial and radial movement of the weight structure 3, then ensuring that the weight structure 3 is placed stably. Therefore, during the grinding process, the weight structure 3 and the working member 400 do not slide or move when rotating. The second placement area 213 is disposed on the second base 215, and the second positioning mechanism 8 is disposed on the second base 215, for positioning of the eccentric block assembly 1. When the eccentric block assembly 1 is placed and mounted in the second placement area 213, the position of the eccentric block assembly 1 is positioned by the second positioning mechanism 8, effectively preventing axial and radial movement of the eccentric block assembly 1. It is ensured that the eccentric block assembly 1 is placed stably, then the eccentric block assembly 1 and the working member 400 do not slide or move during the grinding process.
[0088] According to an embodiment of the present invention, as shown in
[0089] According to an embodiment of the present invention, as shown in
[0090] According to an embodiment of the present invention, as shown in
[0091] According to an embodiment of the present invention, as shown in
[0092] According to an embodiment of the present invention, as shown in
[0093] The clamping member one 721 includes a first connecting portion 722 and a first clamping portion 723, wherein the first connecting portion 722 extends from the upper end surface of the first base 214 to form a protruding structure, and the first clamping portion 723 is The protrusion structure formed by the radial extension of the first connecting portion 722 together forms the holding member 721 of the present embodiment for holding the weight structure 3 to realize the positioning of the weight structure 3. wherein the first connecting portion 722 extends from the upper end surface of the first base 214 to form a protruding structure, and the first clamping portion 723 is formed by a protruding structure extending from the first connecting portion 722 in a radial direction. The clamping member one 721 of the present embodiment is formed for clamping the weight structure 3, to realize the positioning of the weight structure 3. The clamping surface of the first clamping portion 723 abuts against the upper end surface of the weight structure 3, and effectively prevents the upper end of the weight structure 3 from loosening and moving in the axial direction.
[0094] In this embodiment, the first clamping portion 723 may be a ring formed continuously and surrounding the upper portion of the first base 214, or may be a partial structure formed around the upper portion of the first base 214. And each of the first clamping portions 723 has a breaking structure, that is, some or all of the adjacent first clamping portions 723 are disconnected, and the clamping and positioning of the weight structure 3 can be realized. In addition, the clamping member one 721 can also be a separate component, that is, a clamping member one 721 disposed on the upper portion of the first base 214, is disposed at an upper portion of the first base 214, and can be equally spaced. It may be unequal spacing setting, one may be set, or multiple may be set, and the like is within the protection scope of the embodiment.
[0095] According to an embodiment of the invention, the weight structure 3 is placed in the first placement area 212 of the mounting base 211, the first placement area 212 is composed of a plurality of positioning surfaces, etc.
[0096] In this embodiment, the first placement area 212 of supporting the weight structure 3, is composed of a region enclosed by the joint portion 216, the first clamping portion 723, the first base 214, and the support portion one 711. And the bottom of the weight structure 3 abuts against the support surface formed by the support portion one 711, and the side one side of the portion abuts against the joint surface formed by the joint portion 216, and the other side faces are defined by the end surface formed by the inner wall of the first base 214, and the upper end surface is clamped by the first clamp portion 723, and is clamped with the first clamp. The clamping surface formed by the holding portion 723 abuts, Most of the structure of the weight structure 3 is located in the space formed in the first base 214, thereby realizing the installation and placement of the weight structure 3 of the present embodiment, and ensuring the mounting stability of the weight structure 3. In this embodiment, the radial direction of the weight structure 3 is restricted by the inner wall of the first base 214 and the joint surface of the joint portion 216, and the axial direction is restricted by the support portion one 711 and the first clamping portion 723, thereby, the installation and positioning of the weight structure 3 is achieved.
[0097] According to an embodiment of the invention, the second positioning mechanism 8 includes a second support assembly 81 and a second clamping assembly 82, the second support assembly 81 being disposed at a lower portion of the second base 215, the second clamping assembly 82 is disposed at an upper portion of the second base 215 to collectively realize positioning of the eccentric block assembly 1. In the present invention, the movement of the eccentric block assembly 1 in the axial direction is mainly limited, wherein the second support assembly 81 is for supporting the eccentric block assembly 1, that is, the lower end of the eccentric block assembly 1 is placed on the second support assembly 81 through the second support. The assembly 81 realizes support to effectively prevent the eccentric block assembly 1 from moving in the direction of gravity, and the second clamping assembly 82 is used for clamping the upper portion of the eccentric block assembly 1, effectively preventing the eccentric block assembly 1 from moving toward the workpiece member as it moves during rotation, and the polishing of the sanding structure has a negative impact.
[0098] According to an embodiment of the present invention, as shown in
[0099] According to an embodiment of the present invention, as shown in
[0100] In this embodiment, the support member two 812 can be disposed to completely wrap the bottom of the mounting base 211, or the bottom of the eccentric block assembly 1, and the support member two 812 is provided with a connecting hole or the like on the support member two 812, for facilitating connection with the eccentric block assembly 1. Alternatively, the eccentric block assembly 1 and the mounting base 211 are integrally connected to each other, then the support of the eccentric block assembly 1 can be realized, which is within the protection scope of the embodiment.
[0101] According to an embodiment of the present invention, as shown in
[0102] According to an embodiment of the present invention, as shown in
[0103] According to an embodiment of the present invention, as shown in
[0104] According to an embodiment of the present invention, as shown in
[0105] When the eccentric block assembly 1 is located on the second base 215 and the weight structure 3, the bearing structure disposed inside the eccentric block assembly 1 also abuts against the support end surface formed by the first support portion 23 of the weight structure 3, and passes through the support end face formed by the first support portion 23 is limited, mainly in the axial direction, preventing the bearing structure from slipping out of the shaft passage two of the lower end of the eccentric block assembly 1. In this embodiment, when the lower end surface of the eccentric mass body 11 and the bottom assembly of the bearing structure are located on the second base 215 and the weight structure 3, the eccentric block assembly 1 and the bearing structure and the working component 400 and the mounting are further determined. Stability of the connection of the base 211, etc. A connecting passage 331 is further disposed on the first supporting portion 23, and a connecting passage 2111 is disposed at a lower portion of the eccentric block assembly 1. When the eccentric block assembly 1 is placed in the second placing region 213, the connecting passage is penetrated through the fastener. In a 331 and connecting passage two 111, the eccentric block assembly 1 is integrated with the weight structure 3, so that the weight structure 3 and the eccentric block assembly 1 as a whole are more stable under high speed rotation.
[0106] According to the embodiment of the present invention, as shown in
[0107] The heat dissipation medium generated by the rotation of the fan blade structure 221, that is, the wind force, is further transported into the power tool housing through the second flow guiding channel 222, and is transported to the working component 400. This embodiment preferably generates the rotation of the fan blade structure 221. The wind flow direction is conveyed in the direction of the working member 400, that is, from the direction in which the protective cover is disposed toward the working member 400. The second flow guiding channel 222 of this embodiment may be composed of a space formed between adjacent blade structures 221, and with the rotation of the driving mechanism 200 and/or the working component 400 and/or the fan blade structure 221, The airflow or the wind generated by the rotation of the fan blade structure 221 is outputted to the working component 400 through the second flow guiding channel 222, so as to dissipate the heat generated by the power tool, thereby achieving the purpose of heat dissipation, especially for the working component 400. Not only can the service life of the power tool be improved, but also the medium of the working component 400, such as the surface of the automobile, can be well protected, so that the polishing effect is good when the power tool is used as a grinding device.
[0108] According to an embodiment of the present invention, as shown in
[0109] According to an embodiment of the present invention, as shown in
[0110] In this embodiment, the end surface of the blade one 224 may be arranged in a planar structure. To further improve the heat dissipation effect, the end surface, that is, the outer surface may also be provided with a curved structure, that is, other structures capable of improving wind power or airflow are provided on the end surface thereof. Of course, it can also be set to other irregular planar structures, which are all within the protection scope of the embodiment; Similarly, the end surface of the blade two 225 can be arranged in a planar structure. To further improve the heat dissipation effect, the end surface, that is, the outer surface can also be provided with a curved surface structure, that is, other structures for improving wind power or air flow are provided on the end surface thereof, of course. It can be set to other irregular planar structures, all within the scope of protection of this embodiment. In the present embodiment, when the blade one 224 is disposed on the outer circumference or the end surface of the first pedestal 214, the adjacent blades are also disposed to be equidistantly distributed, or may be disposed as unequal distance distribution, and the preferred scheme is set to be equidistant. The structure is intended to be more uniform in the flow guiding or airflow guiding. When the unequal distance structure is arranged, the fan blade can be arranged on the blade one 224 or the first base 214 to provide other auxiliary airflow circulation structures. The force of the flow of the structure 221, which in turn enhances or enhances or better results in better heat dissipation, provides better conditions for heat dissipation of the working component 400.
[0111] According to an embodiment of the present invention, as shown in
[0112] According to an embodiment of the invention, the flow guiding member 601 includes a deflector body 6011 and a baffle 603, wherein the baffle 603 is spaced apart on the deflector body 6011, and the deflector 601 can be used as a stand-alone unit. A certain structure, that is, a part or a partial structure of the structure, is within the scope of the embodiment. As shown in the figure, the flow guide 601 and the second housing assembly 102 have the same structure, or the partial structure of the flow guide 601 disposed on the second housing assembly 102 is illustrated as an example. When the flow guiding device 600 is disposed on the power tool, when disposed on the second housing assembly 102 as shown, the flow guiding device 600 is mainly used for heat generated during the rotation of the power tool or when the workpiece component is in operation. The generated heat dissipates heat, and the heat in the first housing assembly 101 and the second housing assembly 102 of the power tool is dissipated into the external space. By the flow guiding device 600 of the embodiment, the heat can be performed more quickly. Dissipating, which reduces the temperature of the tool, can greatly extend the life of the tool. In this embodiment, the baffle 603 is disposed in plurality, and the baffle 603 is disposed on the baffle body 6011 at intervals, and a channel is formed between the adjacent baffles 603, which constitutes the first guide of the present invention. The flow channel 602 is formed with a channel between the two outer guiding fins 603 and the deflector body 6011, and also constitutes the first guiding channel 602 of the present invention. Therefore, the first guiding channel 602 of the embodiment passes the diversion flow. The sheet 603 is disposed in a positional relationship with the deflector body 6011. The baffle 603 of this embodiment may be disposed in an equally spaced structure or in an unequal pitch setting, and is within the scope of the present embodiment.
[0113] According to an embodiment of the invention, the end of the baffle 603 is provided with a first joint 604 and/or a second joint 605 and passes through the first joint 604 and/or the second joint 605 and the deflector body. a first end surface 606 and a second end surface 607 are disposed on the body of the guide vane 603. The first end surface 606 is an end surface disposed on the upper portion of the body of the baffle 603. The first end surface 606 of the embodiment is combined by the first end. The space formed by the portion 604 is composed; The second end surface 607 is another end surface disposed on the upper portion of the body of the baffle 603, and the second end surface 607 is composed of a space enclosed by the second joint portion 605, and the first end surface 606 and the second end surface 607 are oppositely disposed. Since the first joint portion 604 and the second joint portion 605 of the embodiment are disposed at an angle with the deflector body 6011, that is, at a certain angle, the first end surface 606 and the second end surface 607 are also formed and diverted. The body 6011 is disposed at an angle, at least not parallel or perpendicular to the end face of the deflector body 6011 or the joint face 608.
[0114] In the present embodiment, the first guiding channel 602 includes a first channel 6021 and a second channel 6022, wherein the first channel 6021 is an opening portion disposed on the deflector body 6011, and the opening portion can be disposed with a certain depth. a structure for facilitating heat concentration to be led out from the opening. The second passage 6022 is formed by the joint surface 608 of the guide body 6011 and the space between the first end surface 606 and the second end surface 607 of the baffle 603, and is convenient for heat to be quickly taken from the chamber or the housing or the tool. Exported inside, the flow guiding path 609 formed by the first channel 6021 and the second channel 6022 of the present embodiment is gradually increased, that is, the guiding path 609 formed by the first channel 6021 and the second channel 6022, and the starting end is from the first channel 6021. The terminal from the beginning to the second channel 6022 is gradually increased, so that the heat-conducting flow path 609 formed through the first channel 6021 and the second channel 6022 increases with the size of the flow guiding path 609 or The area of the flow path 609 is increased, or the volume of the flow guiding path 609 is increased. In general, the size of the flow guiding path 609 is gradually increased and can be quickly exported to the external environment. In this embodiment, the flow guiding path 609 formed by the first channel 6021 can be set to be equidistant. Once the heat enters the second channel 6022, the guiding path 609 formed by the second channel 6022 is gradually increased to facilitate rapid heat dissipation. Distribute.
[0115] According to an embodiment of the present invention, a heat dissipating mechanism 700 is also disclosed for dissipating heat of a workpiece, such as heat dissipation for the internal structure of the power tool and the heat generated during operation of the workpiece component, for the present embodiment. For example, when the power tool is taken as an example, the heat dissipation mechanism 700 of the present embodiment is mainly used for heat dissipation of the heat generated by the power tool during operation. In the present embodiment, the heat dissipation mechanism 700 includes a second housing assembly 102, a heat dissipation assembly 2 (shown as being disposed on the eccentric block assembly), and a flow guiding device 600, wherein the heat dissipation assembly is disposed within the second housing assembly 102. The flow guiding device 600 is disposed on the second housing assembly 102, and may be covered on the second housing assembly 102, or may be a partial or partial structure disposed on the second housing assembly 102. When the power tool is in operation, the heat generated by the internal component during the rotation process and the heat generated by the working component under high-speed operation are dissipated by the heat dissipation component of the embodiment, and are exported to the outside through the flow guiding device 600 of the embodiment. In the space, the heat dissipation assembly 2 of the present embodiment is disposed as in the above embodiment.
[0116] As shown in
[0117] According to an embodiment of the present invention, the housing mechanism 100 can be used on most products for wrapping internal structures, on the one hand, to protect the internal structure from damage, and on the other hand, to protect against dust and rain. Thereby increasing the service life of the active product. In the present embodiment, the housing mechanism 100 is preferably used in the stomach of a power tool for enclosing and protecting the structure included in the power tool, such as the drive mechanism 200, the output mechanism 300, the transmission mechanism, and various connection mechanisms. In the present embodiment, the housing mechanism 100 includes a first housing assembly 101 and a second housing assembly 102, both of which are used to wrap the internal structure. As shown, the first housing assembly 101 is disposed laterally with respect to the direction of placement, corresponding to the second. The outer casing assembly 102 is disposed longitudinally, and together with the first outer casing assembly 101, constitutes a housing mechanism 100 of various power tools. The angle formed between the first outer casing assembly 101 and the second outer casing assembly 102 is not limited to being completely vertical, ie, 90 degrees. The arrangement can form a corresponding angle, and the positional relationship after the connection between the installations can be set to an angle required by the angle, and the first outer casing assembly 101 is used for wrapping the internal structure and the like. In this embodiment, when the housing mechanism 100 is used on a power tool, the inner component wrapped by the first outer casing assembly 101 is preferably a driving mechanism 200, an output mechanism 300, a transmission mechanism, etc., and the inner component of the second outer casing assembly 102 is preferably Is the output mechanism 300 or the transmission mechanism, etc., when the power tool of the embodiment is, for example, a grinding device, the internal component wrapped by the corresponding first housing assembly 101 is a drive mechanism 200 such as a motor, and the output mechanism 300 is a gear transmission structure, etc. The inner member wrapped by the second outer casing assembly 102 is an eccentric mechanism or the like, and a sanding member is attached to the free end of the second outer casing assembly 102 for sanding a medium such as a car surface.
[0118] The first housing assembly 101 of the embodiment is provided with a first holding device 4, and when the user operates the power tool, the first holding device 4 can be hand-held to facilitate the holding of the tool for work, so as to further ensure the user is in use. When the tool is held, it is more convenient to hold the tool, and it is not easy to be slipped. The first holding device 4 is provided with an uneven structure, which is convenient for the user to hold; similarly, the second housing assembly 102 of the embodiment is provided with a second holding device 5, and when the user operates the power tool, the second holding device 5 can be hand-held to facilitate the holding of the tool for further work. When the user is in use, it is more convenient to hold the tool, and it is not easy to slip. The second holding device 5 is provided with an uneven structure, which is convenient for the user to hold; Therefore, the power tool provided with the outer casing mechanism of the present invention, when the operator performs close-range grinding, for example, when working on an object of a horizontal plane or a similar horizontal plane, the control structure 10 is held by one hand to adjust the gear position of the tool, or Open or close, when held in the set open state, and through the housing one 1011 of the outer end of the control structure 10, that is, the third holding device 6 of the embodiment, the other hand can be gripped by the embodiment. The second holding device 5 performs a grinding operation on the surface of the automobile or the like, and the second holding device 5 is disposed on the second housing assembly 102, which is just opposite to the third holding device 6, and is also located in the fourth grip. At the lower position of the holding device 9, the tool is held by both hands for work, and the stability is good. When performing long-distance grinding, such as when the grinding position is substantially perpendicular to the horizontal plane, when the control structure 10 is opened, and through the housing one 1011 of the outer end of the hand-held control structure 10, that is, the third holding device 6 of the present embodiment. The other hand can perform the grinding and the like by holding the first holding device 4 of the embodiment, and the first holding device 4 is disposed on the first housing assembly and can be disposed adjacent to the third holding device 6. The position, such as the housing one 1011, the housing two 1012 and the housing three 1013, is convenient for the operator to apply force, and is more labor-saving when operating the electric tool, and the holding power tool is more stable, and the corresponding work effect is more effective. Excellent, such as polished flat or curved surface is more flat and smoother.
[0119] According to an embodiment of the present invention, as shown in
[0120] In this embodiment, the outer free end of the housing three 1013 is provided with a fourth holding device 9 disposed opposite to the third holding device 6 disposed on the housing one 1011. When the tool is operated, one hand can be used. Holding the third holding device 6, the other hand holding the fourth holding device 9 to operate the tool. The first holding device 4, the second holding device 5, the third holding device 6, and the fourth holding device 9 of the embodiment can be selected and used according to the position of the working medium, for example, when performing fine grinding. The second holding device 5 and the third holding device 6 can be selectively held, one hand grasps the overall structure of the tool by holding the third holding device 6, and then holds the second holding device 5 through the other hand. The force applied to the sanding member of the lower portion of the second holding device 5 by the second holding device 5 can be used to polish the surface of the workpiece, and the force is applied to the second holding device 5, that is, the working member. Grinding parts to better control the work of the working parts, thus polishing the surface of the car more finely; When a certain edge is disposed at an angle to the horizontal plane, for example, when the position where the operator stands is a vertical position, one hand grasps the overall structure of the tool by holding the third holding device 6, and then holds the other hand Holding the first holding device 4 to jointly support the power tool, so that the working part such as the sanding part polishes the surface of the workpiece, the stability is good, and the grinding effect is good; Similarly, when the required working angle or range is performed, the first holding device 4, the second holding device 5, the third holding device 6, and the fourth holding device 9 are selectively combined, when the tool is working, stable holding of the power tool, so that the grinding effect is better.
[0121] According to an embodiment of the present invention, as shown in
[0122] According to the embodiment of the present invention, on the basis that the grip portion 41 included in the first holding device 4 is disposed in a recessed structure, the first anti-slip structure is also disposed on the grip portion 41, of course, the first anti-slip structure. It is possible to cover all of the grip portion 41 and the joint portion 42, and it is also possible to completely cover the entire first housing assembly, which is within the scope of the present embodiment. The first anti-slip structure is arranged to prevent the finger from sliding when the operator operates, that is, when the finger is located at the grip portion 41 or is held to the engaging portion 42, the friction is increased to further ensure the holding of the electrician's tool. Stability, in the present embodiment, the first anti-slip structure is disposed on the housing one 1011 and/or the housing two 1012 and/or the housing three 1013 and covers the first holding device 4. The first anti-slip structure can be configured to The bumps, either arranged in a stripe structure or in a bonded structure, may also be a combination of these structures, or may be non-limiting and within the scope of the present example, and may be used for slip resistance.
[0123] According to an embodiment of the present invention, as shown in
[0124] According to the embodiment of the present invention, on the basis that the grip portion 51 included in the second holding device 5 is provided as a recessed structure, the second anti-slip structure is also provided on the grip portion 51, and of course, the second anti-slip structure can be Covering all of the grip portion two 51 and the engaging portion two 52, it is also possible to completely cover the entire first housing assembly, which is within the scope of the present embodiment. The second anti-slip structure is arranged to prevent the sliding of the finger when the operator operates, that is, when the finger is located at the grip portion 51 or the grip portion 52, the friction is increased to further ensure the holding of the electrician's tool. Stability, in the present embodiment, the second anti-slip structure is disposed on the housing one 1011 and/or the housing two 1012 and/or the housing three 1013 and covers the second holding device 5. The second anti-slip structure can be configured to The bumps, either arranged in a stripe structure or in a bonded structure, may also be a combination of these structures, or may be non-limiting and within the scope of the present example, and may be used for slip resistance.
[0125] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and are not limited thereto; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that The technical solutions described in the foregoing embodiments are modified, or some of the technical features are equivalently replaced; and the modifications or substitutions do not deviate from the scope of the technical solutions of the embodiments of the present invention.
[0126] In summary, the above description is only the preferred embodiment of the present invention, and all changes and modifications made by the scope of the present invention should be covered by the present invention.