This application claims the benefit of Taiwan Patent Application Serial No. 107114056, filed on Apr. 25, 2018, the subject matter of which is incorporated herein by reference.
The invention relates to a multi-axis polishing apparatus, and more particularly to the multi-axis polishing apparatus that implements a driving module to rotate a plurality of shaft assemblies and workpieces to conduct polishing actions.
Generally speaking, while in manufacturing metallic or nonmetallic parts, cutting and trimming steps to reach final geometric dimensions and profiles are inevitable. Thus, managing surface roughness to a desired fine level on such parts is definitely an issue. Taking metallic parts as examples, in order to improve surface finish of the metallic parts, a final polish or a combination of grinding and polishing process is usually introduced to remove all possible sharpness and rough texture over the part surfaces, particularly at the edges and important stress bearing or decorating surfaces.
As mentioned, current polishing technique utilizes mainly a polisher and the like apparatus for polishing. However, since these polishers can only process a single workpiece at a unique polish step for parts having complex geometry or contours, thus it is obvious that the production rate for such parts would be limited. Even that an automated process or machine is introduced to increase the production rate, yet due to the limitation of one workpiece per each polisher, the improvement is limited. Hence, the resulted increase in the production rate for such parts is still far from satisfactory.
In view that the conventional competing active polisher for processing complex surfaces simultaneously is limited to process only one workpiece each time, thus the production rate can't be effectively increased; therefore, the production cost is kept relatively high. Accordingly, an object of the present invention is to provide a multi-axis polishing apparatus that can process multiple parts simultaneously in one manufacturing step.
In present invention, the multi-axis polishing apparatus includes at least a machine body, a multi-axis transmission device, and an abrasive container set. The multi-axis transmission device, mounted onto a moving mechanism in a main vertical column of the machine body that can move up and down along a vertical track, includes a driving module and a plurality of rotatable shaft assemblies that are transmissively linked to the driving module. The plurality of shaft assemblies are used to mount a plurality of workpieces, respectively. The abrasive container set, located below the multi-axis transmission device, can be filled with abrasive materials. The multi-axis transmission device moves along the vertical track to position the plurality of shaft assemblies as well as the plurality of workpieces downward into the abrasive container set, and then the driving module rotates the plurality of shaft assemblies and the plurality of workpieces to utilize the free moving granular abrasive materials to polish the plurality of workpieces.
In one embodiment of the present invention, each of the plurality of shaft assemblies includes a shaft sub-assembly, a gear disk, and a transmission member. The gear disk is fixed to individual shaft sub-assembly. The transmission member links the gear disk and the driving module to drive shaft assembly.
Preferably, the driving module includes a motor, a driving shaft, and a plurality of outer ring gears which are individually fixed to the driving shaft in a parallel arrangement. Each of the plurality of outer ring gears links to the corresponding gear disk of the respective shaft assembly via the transmission member. In addition, each of the shaft sub-assembly includes a shaft body and an engagement member. Each of the shaft bodies is firmly mounted with a gear disk; the engagement member is also rigidly connected to a shaft body; the engagement member is used for mounting a connection arm; and the connection arm is used for mounting at least one workpiece.
In one embodiment of the present invention, the abrasive container set includes a plurality of container spaces filled individually with respective sets of the abrasive materials, and the sets of the abrasive materials may have respective (i.e., different) combinations of grit sizes of the abrasive materials. Thereupon, various types or levels of polishing can be performed simultaneously or sequentially via these container spaces.
As stated above, the multi-axis polishing apparatus described by this invention utilizes the driving module to rotate a plurality of rotational members for effectively polishing a plurality of workpieces simultaneously. In addition, by arranging or partitioning the whole container space of the abrasive container set in accordance with the present invention, different manufacturing processes may be performed simultaneously.
All these objects can be achieved by the multi-axis polishing apparatus described below.
The present invention will now be specified with reference to its preferred embodiment illustrated in following drawings, in which:
The invention disclosed herein is directed to a multi-axis polishing apparatus. In the following description, numerous details are set forth in order to provide a thorough understanding of the present invention. It will be appreciated by one skilled in the art that variations of these specific details are possible while still achieving the results of the present invention. In other instance, well-known components are not described in detail in order not to unnecessarily obscure the present invention.
Refer to
The multi-axis transmission device 2 includes a co-moving linkage 21, a driving module 22, a transmission housing 23, and eight shaft assemblies 24 (one labeled in
Referring also to
The transmission housing 23 includes an outer frame 231, a top plate 232, a bottom plate 233, and a positioning turn-plate 234. The top plate 232 is firmly secured to top of the outer frame 231, and the co-moving linkage 21 is firmly connected to the top plate 232. The bottom plate 233 is firmly secured to bottom of the outer frame 231 and is furnished with an opening 2331. The positioning turn-plate 234, that can rotate shaft assemblies, is mounted through the opening 2331.
The eight shaft assemblies 24 are evenly positioned to surround the driving shaft 222 along a circular line. Each of the shaft assemblies 24 includes a locating bearing 241, a shaft sub-assembly 242, a gear disk 243, and a transmission member 244.
The locating bearings 241 are mounted onto the positioning turn-plate 234. The shaft sub-assembly 242 includes a shaft body 2421 and an engagement member 2422. The shaft body 2421 is mounted into its respective locating bearing 241 so as to space the driving shaft 222 by a fixed distance. This arrangement allows the shaft body 2421 to rotate controllably via the rotation of driving shaft 222. The total eight shaft bodies 2421 of the eight corresponding shaft assemblies 24 are evenly arranged around the driving shaft 222, and each of the shaft bodies 2421 is spaced from the driving shaft 222 by an identical distance.
The engagement member 2422, fixed to the lower end of respective shaft body 2421, is positioned below the locating bearing 241. Therefore, with a lower portion of the shaft body 2421 penetrating through locating bearing 241 and the positioning turn-plate 234, the engagement member 2422 can thus be exposed below the transmission housing 23. The gear disk 243 is rigidly fixed to respective shaft body 2421, is to transmissively engage the corresponding outer ring gear 223 via the transmission member 244, so that the driving motor 221 can drive each of the shaft bodies 2421 via the corresponding combined motions of the driving shaft 222, the outer ring gear 223, and the gear disk 243. In this embodiment, the diameter of the driven gear disk 243 is larger than that of the driving outer ring gear 223. Therefore, as the driving shaft 222 and outer ring gear 223 rotates at a higher speed, the shaft body 2421 driven by the gear disk 243 would be rotated at a speed lower than that of the driving shaft 222. With this arrangement, a larger torque can be provided by the shaft body 2421. Practically, with designing a specific gear ratio of the outer ring gear 223 to the gear disk 243, an expected torque output from the shaft body 2421 can be obtained.
As described, the transmission member 244 in this example is embodied as a chain. However, in some other embodiments, the transmission member 244 can also be a belt or any other likewise functional object. In addition, in this embodiment, since all the eight shaft assemblies 24 are similarly structured, the only difference is that each of the gear disks 243 has its own installation height position in the shaft sub-assembly 242.
The material-carrying table set 3, located under the multi-axis transmission device 2, includes a driven end 31 and a carrying platform 32. The carrying platform 32, mounted fixedly on the driven end 31, is co-moved with the driven end 31 to displace reciprocally in a horizontal direction D2 which is perpendicular to the insertion direction D1. In this embodiment, the driven end 31 is part of a conveying belt device that has a conveying belt to move the carrying platform 32.
The abrasive container set 4, constructed on top of the carrying platform 32 so as to locate under the multi-axis transmission device 2, includes a first material tank 41 and a second material tank 42. The first material tank 41 has a first container space 411, and similarly the second material tank 42 has a second container space 421. The container spaces can either be in circular or noncircular forms. In this embodiment, both of the first container space 411 and the second container space 421 are non-circular spaces.
Refer to
As shown in
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In addition, since the abrasive container set 4 of this embodiment has a second container space 421 that is filled with another set of granular abrasive materials G2, thus, after the workpieces 300 are ground/polished to a target level by the abrasive materials G1 in the container space 411, the workpieces 300 can be further polished by the granular abrasive materials G2 in the container space 421. Practically, after the workpieces 300 have been polished by the abrasive materials G1 in the container space 411, the co-moving linkage 21 is activated to lift the entire multi-axis transmission device 2 upward in the direction D1 so as to retrieve the workpieces 300 from the container space 411; and then the driven end 31 as well as the carrying platform 32 are repositioned in the reciprocating direction D2 to align the container space 421 of the abrasive container set 4 on the carrying platform 32 directly below the multi-axis transmission device 2. At this time, the co-moving linkage 21 can move the entire multi-axis transmission device 2 in the insertion direction D1 to dip the workpieces 300 into the second container space 421. Subsequently, the driving module 22 is activated to rotate the workpieces 300 in the second container space 421, so that the workpieces 300 can be polished by the granular abrasive materials G2. Practically, the grit size of granular polishing materials of the first set of abrasive materials G1 is usually coarser than the grit size of granular polishing materials of the second set of abrasive materials G2. Therefore, the first set of abrasive materials G1 can be used to perform coarse polishing on the workpieces 300; and the second set of abrasive materials G2 can be used to perform fine polishing on the workpieces 300.
Referring now to
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In summary, in comparison with the conventional polishing of metallic parts with complex surfaces that can only handle one workpiece in each polishing step, thus leading to a low production rate and high production cost, the multi-axis polishing apparatus provided by this invention applies a driving module to rotate a plurality of rotational members for effectively and efficiently polishing a plurality of workpieces simultaneously. Furthermore, through adjusting the gear ratio between the outer ring gear and the gear disk as well as the rotational speed of the driving shaft, the output torque of the rotational members can be controlled. Thus, versatile workpieces can be processed simultaneously. In addition, by arranging or partitioning the whole container space of the abrasive container set in accordance with the present invention, different manufacturing processes can be performed simultaneously.
While the present invention has been particularly shown and described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes in form and detail may be constructed without departing from the spirit and scope of the present invention, and thus, should be treated as covered by this invention.
Number | Date | Country | Kind |
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107114056 | Apr 2018 | TW | national |