1. Field of Invention
The invention relates to a ball screw.
2. Related Art
The ball screw is widely applied to various kinds of mechanical devices for providing precise transmission. By the rotation and linear movement of the ball screw, the carrying stage or the object on the carrying stage can move in a linear direction.
Because the ball screw is mostly applied to the high-precision machining, it needs to achieve high-level requirement to maintain a stable and smooth operation. Besides, if an external object or liquid enters into the nut of the ball screw during the operation of the ball screw, the ball screw will generate noise, pause or lose stability and may be even damaged. In order to avoid this situation, it is necessary to dispose dust-proof structures on the two ends of the nut for preventing the external object or liquid from entering into the nut, especially, along the movement axis of the nut due to the moving force.
There are many different types for the dust-proof structure, but most of them are disposed on the two ends of the nut body of the nut and fixed to the nut body by the screws so as not to move upward along the axis of the nut. However, in the prior art, in order to make the dust-proof structure and the nut body tightly fit each other with a high precision, the more time and cost are necessary for the assembly.
Therefore, it is an important subject to provide a ball screw in which the dust-proof structure can be easily fixed due to a kind of novel design so that the assembly can be simplified and the error of the dust-proof structure or nut body caused by the machining can be reduced.
In view of the foregoing subject, an objective of the invention is to provide a ball screw in which the dust-proof structure can be easily fixed due to a kind of novel design so that the assembly can be simplified and the error of the dust-proof structure or nut body caused by the machining can be reduced.
To achieve the above objective, a ball screw according to the invention comprises a screw, a nut and a plurality of balls. The screw includes at least two track grooves. The nut is slidingly disposed on the screw and includes a nut body and at least one end assembly. The nut body has two assembly openings. The inside of the nut body includes at least two inner ball grooves corresponding to the track grooves, respectively, the inner ball grooves and the track grooves constitute two inner ball channels, the nut body includes two reflowing channels corresponding to the inner ball channels, and the reflowing channels and the inner ball channels constitute a part of two ball circulation channels of the ball screw. The end assembly includes an end circulation member, a dust-proof member and a fastening member. The end circulation member is disposed to the nut body and includes at least two circulation portions which are disposed in the assembly openings, respectively. The dust-proof member is disposed on the side of the end circulation member away from the nut body. The fastening member is disposed on the side of the dust-proof member away from the end circulation member. One side of the fastening member includes a plurality of projections and the other side of the fastening member includes a plurality of indentations corresponding to the projections. The balls are disposed within the ball circulation channels.
In one embodiment, the projections and the indentations are projected and concaved along the lengthwise direction of the nut body, respectively.
In one embodiment, the fastening member is compressible or deformable along the lengthwise direction of the nut body.
In one embodiment, one end of the nut body includes a first annular containing recess and a second annular containing recess, the end circulation member is disposed in the first annular containing recess, and the dust-proof member and the fastening member are disposed in the second annular containing recess.
In one embodiment, the axial thicknesses of the dust-proof member and the fastening member are greater than the axial thickness of the second annular containing recess.
In one embodiment, the inner diameter of the second annular containing recess is greater than that of the first annular containing recess.
In one embodiment, the material of the dust-proof member is a flexible material, and the material of the fastening member is a rigid material.
In one embodiment, the projections are connected continuously.
In one embodiment, a plurality of the intervals exist among the projections, and the projections are not continuous.
In one embodiment, the projections are arched, convex or taper.
In one embodiment, the dust-proof member is composed of a plurality of dust-proof units.
In one embodiment, a strengthening member is disposed in each of the circulation portion.
As mentioned above, the ball screw of the invention is designed in an innovative way so that the fastening member of the end assembly for fastening the dust-proof member is compressible, and therefore the precision requirement of the ball screw can be reduced and the assembly speed can be increased. Besides, by the disposition of the fastening member, the displacements of all the components will not occur even after a long time usage of the ball screw. In comparison with the prior art, the dust-proof member is fastened within the annular containing recess of the ball screw by the fastening member, so the tolerances of the dust-proof member and the annular containing recess can be both allowed, and therefore the manufacturing process can be made easier and the cost can be lowered down.
On the whole, due to the innovative design of the structure, the ball screw can be made by a simpler machining, and this not only reduces the difficulty and time of the machining but also absorbs the tolerance of the dust-proof member or nut body.
The invention will become more fully understood from the detailed description and accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
In this embodiment, the nut body 21 is obtained by processing a nut body material (not shown). Physically, the nut body material can be a metal piece or pillar, and is formed into the nut body 21 with its detailed structure by a grinding process. Of course, the nut body 21 can be formed by other kinds of processes. For example, the nut body 21 can be made by casting molding, forge forming, or turning and milling machining The nut body 21 can be an annular pillar and the inside thereof is configured with the inner ball groove 212. In other embodiments, some functional structure, such as a flange hole, oil filler hole or reflowing hole, can be disposed on the nut body according to the practical requirements, and even the nut body can undergo a surface heat treatment to obtain the enhanced hardness. However, the invention is not limited thereto.
As shown in
In detail, for the assembly, the end circulation member 221 of the end assembly 22 is engaged at the assembly opening 211 of the nut body 21, and the other members of the end assembly 22 are contained and engaged in a containing recess. Furthermore, the end circulation member 221 includes two circulation portions 224, which are disposed at the assembly opening 211. The circulation portion 224 further includes a reflowing curve 225, which communicates with the reflowing channel 213 of the nut body 21 and the inner ball channel to collectively constitute the two ball circulation channels of the ball screw S.
Accordingly, in a whole sense, the inner ball channel and the reflowing channel 213 complete the ball circulation channel by the reflowing curve 225. The balls 3 are disposed in the ball circulation channels and roll frontward to drive the nut 2 to move relative to the screw 1.
In this embodiment, because the ball 3 causes a force to the reflowing curve 225 when passing through the reflowing curve 225, a strengthening member 226 is disposed in the reflowing curve 225 to intensify its strength. The material of the strengthening member 226 is not limited, and can be, for example, stainless steel with a high impact-resistant property or other kinds of metal material.
As shown in
To be noted, because the assembly opening 211 can be made by an open-type machining and communicate with the outer surface and inner surface, the detection thereof will be easier and the detection tools for the quality control operation will be simpler. For example, the precision of the product can be assured just by a two-dimensional detection, and this will shorten the manufacturing process or quality control process and lower down the cost, in comparison with the prior art. On the whole, the nut body 21 with the assembly opening 211 of the embodiment, in comparison with the prior art, can be made by an open-type machining due to the particular structural design, so the machining difficulty and time can be both reduced and the precision of the assembly opening 211 can be enhanced a lot.
In this embodiment, the double-threaded ball screw S includes the two ball circulation channels which can contain two independent sets of the balls 3. When the balls 3 move within the two ball circulation channels, the nut 2 will rotate around the axis of the screw 1 so that the rotating movement can be converted into the linear movement. To be noted, although only one set of the balls 3 is shown in the figures for the purpose of clarity, the operation manner and related technology of the two sets of the balls 3 can be comprehended by those skilled in the art. To be noted, a triple-threaded or multiple-threaded ball screw can be used in other embodiments, and the track grooves, inner ball grooves, assembly opening and reflowing channels can be formed accordingly with a corresponding number.
As shown in
As shown in
Accordingly, the fastening member 223 is disposed on the outermost side relative to the nut body 21 and contained by the second annular containing recess 215. The fastening member 223 favorably has a C-type structure. In the assembly, the fastening member 223 can be compressed by the external force so as to be decreased in volume, and thus can pass through the annular recess 216, as shown in
In this embodiment, the axial thicknesses of the dust-proof member 222 and the fastening member 223 are greater than the axial thickness of the second annular containing recess 215. However, the invention is not limited thereto, and the practical condition can be adjusted according to the requirements of the process and the usage of the ball screw.
Accordingly, because the nut body 21 has the assembly opening 211 for linking the end assembly 22 and the end assembly 22 includes the fastening member 223, the displacement of the nut body 21 and the end assembly 22 can be avoided even when they are connected to each other without any screw. To be noted, in other embodiments, if the ball screw is a small-type ball screw or has no space for the usage of screws for the connection, the better effect can be provided by using the above-mentioned structure.
The dust-proof member can be composed of at least a dust-proof unit. In this embodiment, as shown in
Furthermore, the fastening member includes a plurality of projections, as a technical feature.
Because the fastening member 223 includes projections 223a and indentations 223b which correspond to each other, the fastening member 223 can have the largest thickness W with the relatively smaller wall thickness, since the thickness W of the fastening member 223 is defined according to the farthest distance thereof away from the screw. Besides, the projections 223a and the indentations 223b can be projected or concaved along the lengthwise direction of the nut body 21, and that means the fastening member 223 is compressible or deformable along the lengthwise direction of the nut body 21. Therefore, the fastening member 223 can be slightly compressed to be fit within the second annular containing recess 215, and this effectively absorb the tolerance of the nut 2 caused during the machining Therefore, the purpose of fastening the dust-proof member 222 can be achieved.
Because the fastening structure used in the prior art can not be compressed, the assembly precision of the ball screw is demanded to be higher. In contrast to the prior art, the fastening member 223 of the invention can be compressed, so the requirement of the assembly precision of the ball screw can be reduced, and therefore the manufacturing process can be simplified, the assembly speed can be increased and the cost can lowered down. Moreover, by the disposition of the fastening member 223, the displacements of all the components will not occur even after a long time usage of the ball screw S.
The projections can be embodied otherwise, and for example, the fastening member can have a plurality of continuous projections. As shown in
The shape of the projection is not limited in this invention. For example, in the embodiment of
In summary, the ball screw of the invention is designed in an innovative way so that the fastening member of the end assembly for fastening the dust-proof member is compressible, and therefore the precision requirement of the ball screw can be reduced and the assembly speed can be increased. Besides, by the disposition of the fastening member, the displacements of all the components will not occur even after a long time usage of the ball screw. In comparison with the prior art, the dust-proof member is fastened within the annular containing recess of the ball screw by the fastening member, so the tolerances of the dust-proof member and the annular containing recess can be both allowed, and therefore the manufacturing process can be made easier and the cost can be lowered down.
On the whole, due to the innovative design of the structure, the ball screw can be made by a simpler machining, and this not only reduces the difficulty and time of the machining but also absorbs the tolerance of the dust-proof member or nut body.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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102214028 | Jul 2013 | TW | national |
This Non-provisional application claims priority under 35 U.S.C. §119(a) on Patent Application No(s). 102214028 filed in Taiwan, Republic of China on Jul. 25, 2013, the entire contents of which are hereby incorporated by reference.