The present invention relates to a circulation component retainer and a ball screw.
Ball screws for use in injection molding machines and the like are deteriorated by wear and peeling caused in a spiral groove due to long-term use. This tends to cause clogging of balls in a ball circulation component, such as a return tube, due to peeled powder or the like. The clogging of the balls increases force loaded to the circulation component, which may result in breakage of the circulation component if it is made of resin. When the circulation component is broken, the balls may jump out of the broken part thereof, thereby causing malfunction of the ball screw.
PTL 1 discloses a ball screw in which a resinous circulation component is fixed to a nut in such a manner as to cover a portion of the circulation component that is exposed from the nut by means of a circulation component retainer made of metal. In the ball screw disclosed in PTL 1, the circulation component is covered by the circulation component retainer. Thus, the portion covered by the circulation component retainer is hardly broken, and even if broken, the circulation component retainer suppresses jumping out of balls.
However, in the ball screw disclosed in PTL 1, the circulation component is covered by the circulation component retainer to prevent the circulation component from being detached from the nut during circulation of the balls. Therefore, it is unnecessary to cover an entire region of the portion of the circulation component exposed from the nut by the circulation component retainer. Thus, an exposed portion not covered by the circulation component retainer may be broken, and when broken, the balls may jump out of the broken part, which may cause malfunction of the ball screw.
PTL 1: JP 2005-155887 A
It is an object of the present invention to provide a circulation component retainer configured to suppress breakage of a circulation component and jumping out of balls and a ball screw in which breakage of a circulation component and jumping out of balls are suppressed, and thus malfunction hardly occurs.
A circulation component retainer according to one aspect of the present invention is configured to be used in a ball screw including a screw shaft including a spiral groove on an outer peripheral surface of the screw shaft, a nut including a spiral groove facing the spiral groove of the screw shaft on an inner peripheral surface of the nut, a plurality of balls rollably arranged in a ball rolling path formed by both the spiral grooves, and a circulation component including a ball returning path configured to return the balls from an end point to a start point of the ball rolling path, in which the circulation component is a resinous tubular member formed into a substantially C-shape and including a leg portion at both ends and an intermediate portion arranged between both the leg portions, and is attached to the nut such that both the leg portions are respectively inserted from an outer surface side of the nut into a pair of through holes opening to the outer surface of the nut and communicating with the spiral groove of the nut, and the intermediate portion is positioned on the outer surface of the nut. The circulation component retainer is a circulation component retainer made of metal and configured to fix the circulation component to the nut, and includes an intermediate portion pressing portion configured to press the intermediate portion of the circulation component in such a manner as to cover, among surfaces of the intermediate portion of the circulation component, all surfaces exposed from the outer surface of the nut and leg portion pressing portions configured to press the leg portions of the circulation component in such a manner as to cover, among surfaces of the leg portions of the circulation component, all surfaces exposed from the outer surface of the nut.
A ball screw according to another aspect of the present invention includes the circulation component retainer according to the above one aspect.
The circulation component retainer according to the present invention suppresses breakage of the circulation component and jumping out of the balls. In the ball screw according to the present invention, breakage of the circulation component and jumping out of the balls are suppressed, so that malfunction hardly occurs.
One embodiment of the present invention will be described in detail with reference to the drawings. It should be noted that the following first and second embodiments illustrate merely one example of the present invention, and the present invention is not limited to the following respective embodiments. Furthermore, various modifications or alterations can be made to the following respective embodiments, and such modified or altered embodiments can also be included in the scope of the present invention.
As illustrated in
It should be noted that
On an outer peripheral surface of the screw shaft 1 is formed a spirally continuous spiral groove 1a, and on an inner peripheral surface of the nut 2 is formed a spirally continuous spiral groove 2a. The spiral grooves 1a and 2a face ether other to form a spiral ball rolling path 11 in which the balls 3 roll. Then, the plurality of balls 3 are rollably arranged in the ball rolling path 11. Note that the spiral grooves 1a and 2a each have a cross-sectional shape (the shape of a cross-section taken along a plane orthogonal to a continuous direction of each of the spiral grooves 1a and 2a) that maybe a Gothic arc shape having a substantially V shape formed by combining two circular arcs having different curvature centers or a curved shape formed by a single circular arc.
Furthermore, the ball screw of the first embodiment includes the ball returning path 12 configured to return and circulate the balls 3 from an end point to a start point of the ball rolling path 11. In other words, as illustrated in
The balls 3 rolling in the ball rolling path 11 are adapted to circulate through the circulation component 20. Specifically, while moving in the ball rolling path 11, the balls 3 revolve around the screw shaft 1, and reach the end point of the ball rolling path 11, where they are in turn scooped up from the ball rolling path 11 into the circulation component 20, and enter one end portion of the ball returning path 12. The balls 3 having entered the ball returning path 12 pass through an inside of the ball returning path 12 of the circulation component 20, then reach another end portion of the ball returning path 12, and from which they are returned to the start point of the ball rolling path 11.
Thus, the ball screw of the first embodiment is adapted such that with relative rotation movement of the screw shaft 1 and the nut 2, the screw shaft 1 and the nut 2 move relatively linearly in the axial direction via the balls 3 circulating through the circulation path formed by the ball rolling path 11 and the ball returning path 12 and rolling in the inside of the ball rolling path 11. Then, the balls 3 are adapted to infinitely circulate through an inside of the endless circulation path, so that the screw shaft 1 and the nut 2 can continuously move relatively linearly.
Herein, the circulation component 20 will be described in detail with reference to
A part of the outer peripheral surface of the nut 2 is scraped flat and cut out to form a flat surface portion 2b parallel to the axial direction. Additionally, the nut 2 is provided with a pair of through holes 13 and 13 opening to the flat surface portion 2b and communicating with the spiral groove 2a of the nut 2 at the start point and the end point of the ball rolling path 11. Note that a plurality of circulation components 20 may be attached to a single nut 2, and, in that case, two or more pairs of through holes are provided.
The circulation component 20 is attached to the nut 2 such that both the leg portions 21 and 21 are respectively inserted into both the through holes 13 and 13 from the flat surface portion 2b side, and the intermediate portion 22 positioned outside both the through holes 13 and 13 is positioned on the flat surface portion 2b. Then, the circulation component 20 is fixed onto the flat surface portion 2b by being pressed from above by the circulation component retainer 30 made of metal.
In this case, both the through holes 13 and 13 extend not in a direction orthogonal to the flat surface portion 2b (downward in
Next, the circulation component retainer 30 will be described in detail with reference to
The leg portion pressing portions 31 can be configured to have, for example, a substantially plate shape formed in such a manner as to protrude on the nut 2 side from the intermediate portion pressing portion 32 (see
The circulation component retainer 30 is arranged on the flat surface portion 2b of the nut 2 such that the intermediate portion 22 of the circulation component 20 fixed onto the flat surface portion 2b is fitted into the intermediate portion pressing portion 32, and the proximal end portions of the leg portions 21 and 21 exposed from the through holes 13 and 13 are pressed by one plate surfaces (plate surfaces thereof facing the nut 2 side) of the leg portion pressing portions 31 and 31. Then, in this state, the flange portions 33 and 33 are, for example, screwed to the flat surface portion 2b of the nut 2.
By doing this, the circulation component retainer 30 can be fixed to the nut 2 in such a manner that the leg portion pressing portions 31 and 31 cover, among the surfaces of the leg portions 21 and 21 of the circulation component 20, all the surfaces exposed from the outer surface (the through holes 13 and 13) of the nut 2, and the intermediate portion pressing portion 32 covers, among the surfaces of the intermediate portion 22 of the circulation component 20, all the surfaces exposed from the outer surface (the flat surface portion 2b) of the nut 2. The circulation component retainer 30 as above can be produced, for example, by performing drawing of a metallic plate material by using a press machine.
In such a ball screw of the first embodiment, the circulation component 20 is pressed by the circulation component retainer 30 such that all the surfaces exposed from the outer surface of the nut 2 among the surfaces of the circulation component 20 are covered. Thus, even when ball clogging occurs and thereby force loaded to the circulation component 20 increases, breakage of the circulation component 20 and jumping out of the balls 3 are suppressed, so that malfunction hardly occurs.
Thus, even when the spiral grooves 1a and 2a are deteriorated by wear and peeling caused in the spiral grooves 1a and 2a due to long-term use, a period from the breakage of the circulation component 20 to the occurrence of malfunction in the ball screw can be extended. Enabling extension of the period from the breakage of the circulation component 20 to the occurrence of malfunction in the ball screw allows a new ball screw to be prepared and replaced within the extended period. This can minimize the time during which an apparatus using the ball screw is stopped.
In addition, when the balls 3 in the circulation component 20 are pushed out to the ball rolling path 11, force in a direction opposite to a direction in which the balls 3 are pushed out is applied to the leg portions 21 and 21, so that the leg portions 21 and 21 tend to be broken. On the other hand, when while the intermediate portion 22 is pressed by the intermediate portion pressing portion 32, the leg portions 21 and 21 are not pressed, shear force occurs at boundary portions between the intermediate portion 22 and the leg portions 21, whereby the leg portions 21 tend to be broken. Pressing both the intermediate portion 22 and the leg portions 21 as in the ball screw of the first embodiment suppresses breakage of the leg portions 21 as described above.
Furthermore, when the circulation component 20 is a member formed by dividing a component into two along the moving direction of the balls 3 moving in the intermediate portion 22 and bonding together the divided components on the divided surfaces thereof, the balls 3 push the circulation component 20 from inside to try to push and widen a joint between the divided surfaces when ball clogging occurs. However, pressing the circulation component 20 by the circulation component retainer 30 suppress opening of the joint between the divided surfaces.
Still furthermore, since substantially all the surfaces of the circulation component 20 are covered by the nut 2 and the circulation component retainer 30, sound emitted from the circulation component 20 is insulated, which can therefore reduce noise of the ball screw. Moreover, scattering of a lubricant or the like to an outside of the ball screw and intrusion of foreign matter into thereinside can also be suppressed by the circulation component retainer 30. The ball screw of the first embodiment as above can be suitable to use in, for example, machine tools, injection molding machines, and semiconductor manufacturing apparatuses.
To facilitate occurrence of ball clogging, ball screws, which had been deteriorated due to peeling caused in spiral grooves of the screw shafts thereof, were prepared to perform durability tests. In a ball screw of Comparative Example (see
By contrast, in the ball screw of Example (see
A ball screw of the second embodiment will be described in detail with reference to
As illustrated in
1: Screw shaft
1
a: Spiral groove
2: Nut
2
a: Spiral groove
2
b: Flat surface portion
3: Ball
11: Ball rolling path
12: Ball returning path
13: Through hole
20: Circulation component
21: Leg portion
22: Intermediate portion
30: Circulation component retainer
31: Leg portion pressing portion
31
a: Rib
32: Intermediate portion pressing portion
Number | Date | Country | Kind |
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2016-198980 | Oct 2016 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/036358 | 10/5/2017 | WO | 00 |