BALL SCREW
20220090659 · 2022-03-24
Assignee
Inventors
Cpc classification
F16H25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H25/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A ball screw includes: a screw shaft (10) having a spiral first screw groove (11) formed in an outer peripheral surface thereof; a nut (20) disposed on the periphery of the screw shaft (10) and having a spiral second screw groove (21) formed in an inner peripheral surface thereof; a plurality of balls (30) accommodated in a rolling path (23) formed by the opposing screw grooves (11, 21); and a circulation piece (40) that forms a ball return passage (42) for circulating the plurality of balls (30) through one circuit or less of the rolling path (23). Traffic variation is made to be small by determining the maximum angle of inclination (α) of the ball return passage (42) in an expression using the lead (L), the ball diameter (Da), and the lead angle (β).
Claims
1. A ball screw comprising: a screw shaft, a spiral screw groove being formed on an outer peripheral surface of the screw shaft; a nut disposed around the screw shaft, a spiral screw groove being formed on an inner peripheral surface of the nut; a plurality of balls that are housed in rolling paths formed by the two screw grooves facing each other; and a circulation portion constituting a ball return path for circulating the plurality of balls in one turn or less of the rolling paths, wherein the ball return path of the circulation portion is formed so that when a lead is L, a ball diameter is Da, and a lead angle is β, a maximum inclination angle α of the ball return path satisfies any one of the following (c1) to (c3).
α=22.63(L/Da).sup.2−32.17(L/Da)+27.00−β±5 (c1)
α=5.86(L/Da).sup.2+2.09(L/Da)+2.45−β±5 (c2)
α=7.24(L/Da).sup.2−23.65(L/Da)+44.83−β±5 (c3)
2. The ball screw according to claim 1, wherein the circulation portion includes a circulation internal deflector.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DESCRIPTION OF EMBODIMENT
[0033] An embodiment of a ball screw according to the present invention will be described in detail below with reference to the drawings.
[0034]
[0035] The ball screw 1 includes a screw shaft 10, a nut 20, a plurality of balls 30, and a plurality of circulation internal deflectors 40 as a circulation portion. A spiral first screw groove 11 having a predetermined lead is formed on an outer peripheral surface of the screw shaft 10.
[0036] The nut 20 has a substantially cylindrical shape, has an inner diameter larger than an outer diameter of the screw shaft 10, and is externally fitted to the screw shaft 10 with a predetermined gap therebetween. A flange 25 that couples with a guide target is provided at one end portion of the nut 20. An inner peripheral surface of the nut 20 has a lead which is equal to the lead of the first screw groove 11 of the screw shaft 10, and is provided with a second screw groove 21 which faces the first screw groove 11. Rolling paths 23 having a substantially circular cross section are formed by the first screw groove 11 of the screw shaft and the second screw groove 21 of the nut 20. The plurality of balls 30 are rollably filled in the rolling paths 23.
[0037] The plurality of circulation internal deflectors 40, that respectively return the balls to rolling paths 23 before, are mounted on the inner peripheral surface of the nut 20. A ball return path 42, which connects one end of a rolling path 23 to another end of another rolling path 23 which is provided one turn before the rolling path 23, is formed in each of the circulation internal deflectors 40. The balls 30 rolling from the rolling paths 23 toward the respective circulation internal deflectors 40 are scooped up in a radial direction of the screw shaft 10 by the ball return paths 42, move over screw threads 12 of the screw shaft 10, and return to the rolling paths 23 one turn before (one lead before), thereby circulating the balls 30.
[0038] Substantially annular endless circulation paths 24 are respectively formed outside the screw shaft 10 by the ball return paths 42 and the rolling paths 23. Accordingly, the nut can relatively linearly move in an axial direction of the screw shaft 10 with respect to the screw shaft 10 due to an endless circulation of the plurality of balls 30 in the endless circulation path 24 in accordance with relative rotation of the screw shaft 10 with respect to the nut 20.
[0039] Next, each circulation internal deflector 40 will be described in detail with reference to
[0040] An inclination angle formed by a surface S orthogonal to the central axis CL of the screw shaft 10 and the trajectory T.sub.2 of the balls 30 in the ball return path 42 becomes a maximum inclination angle α at an internal deflector center C on a route of the circulation internal deflector 40. An angle formed by the trajectory T.sub.1 of the balls 30 on the screw shaft and the surface S orthogonal to the central axis CL of the screw shaft 10 is a lead angle β of the screw grooves 11 and 21.
[0041] Here, as a result of intensive studies, the inventors have established a design of the circulation internal deflector 40 having a small entering-exiting fluctuation by obtaining the entering-exiting fluctuation amount by analysis.
[0042] The shape of the ball return path 42 of the circulation internal deflector 40 is substantially determined if the maximum inclination angle α and a curvature radius R of the ball return path 42 are determined. Therefore, the two values are important in design. In the present embodiment, in order to design the ball return path 42 having a small entering-exiting fluctuation by obtaining the maximum inclination angle α and the curvature radius R of the ball return path 42 having a small entering-exiting fluctuation in the ball screw 1 of various specifications, how to set the maximum inclination angle α and the curvature radius R is clarified.
[0043] As a result of calculation, in order to reduce the entering-exiting fluctuation amount, it has been found that it is more important to set the maximum inclination angle α to a certain value than the curvature radius R. Details will be described below.
[0044] Here, the curvature radius R here is not a curvature radius when the ball return path 42 is viewed from a direction shown in
[0045] First, when the curvature radius R of the ball return path 42 is constant and the maximum inclination angle α of the ball return path 42 is changed to calculate the entering-exiting fluctuation, as shown in
[0046] Next, as shown in
[0047] Further, when a vertical axis of
[0048] From
[0049] Further, it has been found that the maximum inclination angles α that minimize the entering-exiting fluctuation are almost the same if the leads/the ball diameters of the ball screws 1 are the same from
A: lead 20 mm, ball diameter 6.35 mm
B: lead 15 mm, ball diameter 4.7625 mm
C: lead 10 mm, ball diameter 3.175 mm
[0050] When γ is obtained that minimizes the entering-exiting fluctuation of 22 types of ball screws, as shown in
[0051] Here, as shown in
[0052] From
γ=22.63(L/Da).sup.2−32.17(L/Da)+27.00 (a1)
γ=5.86(L/Da).sup.2+2.09(L/Da)+2.45 (a2)
α=7.24(L/Da).sup.2−23.65(L/Da)+44.83 (a3)
Namely,
α=22.63(L/Da).sup.2−32.17(L/Da)+27.00−β (b1)
α=5.86(L/Da).sup.2+2.09(L/Da)+2.45−β (b2)
α=7.24(L/Da).sup.2−23.65(L/Da)+44.83−β (b3)
[0053] Further, it is preferable that the value of the entering-exiting fluctuation amount can be 0.1 mm or less, and it is confirmed that the entering-exiting fluctuation amount can achieve 0.1 mm or less if the value of the maximum inclination angle α that minimizes the fluctuation amount is set in a range of approximately ±5°. As an example,
α=22.63(L/Da).sup.2−32.17(L/Da)+27.00−β±5 (c1)
α=5.86(L/Da).sup.2+2.09(L/Da)+2.45−β±5 (c2)
α=7.24(L/Da).sup.2−23.65(L/Da)+44.83−β±5 (c3)
[0054] Further, it is more preferable that the entering-exiting fluctuation amount can be set to 0.06 mm or less. Therefore, if ±5° is set to ±3.5° in the above formulae (c1) to (c3) from
[0055] However, the design of the circulation internal deflector 40 has merits that the smaller the maximum inclination angle α, the shorter the total length of the ball return path 42, and a size of the circulation internal deflector 40 can be reduced to be small; conversely, when the maximum inclination angle α is large, a thickness T between the outer periphery of the circulation internal deflector 40 and the ball return path 42 shown in
[0056] Therefore, in the setting of the maximum inclination angle α, any one of the formulae (c1) to (c3) is selected in consideration of the size of the circulation internal deflector 40, the thickness T between the outer periphery of the circulation internal deflector and the ball return path 42, and the like other than the entering-exiting fluctuation amount.
[0057]
[0058] Further, as shown in
[0059] Since the balls 30 are deviated from a center of the ball return path 42 when a width of the ball return path 42 is wider with respect to the balls 30 in the circulation internal deflector 40, a state of the balls 30 becomes unstable, and the trajectory T.sub.2 of the balls 30 in the circulation internal deflector 40 is also influenced. As shown in
[0060] As described above, the ball screw 1 of the present invention includes: the screw shaft 10, in which the first screw groove 11 is formed on the outer peripheral surface of the screw shaft 10; the nut 20 disposed around the screw shaft 10, in which the second screw groove 21 is formed on the inner peripheral surface of the nut 20; the plurality of balls 30 which are housed in the rolling path 23 formed by the two screw grooves 11 and 21 facing each other; and the circulation internal deflector 40 constituting the ball return path 42 for circulating the plurality of balls 30 in the rolling path 23 of one turn or less. The ball return path 42 of the circulation internal deflector 40 is formed so that when the lead is L, the ball diameter is Da, and the lead angle is β, the maximum inclination angle α of the ball return path 42 satisfies any one of the following (c1) to (c3).
α=22.63(L/Da).sup.2−32.17(L/Da)+27.00−β±5 (c1)
α=5.86(L/Da).sup.2+2.09(L/Da)+2.45−β±5 (c2)
α=7.24(L/Da).sup.2−23.65(L/Da)+44.83−β±5 (c3)
[0061] As a result, it is possible to reduce the entering-exiting fluctuation when the balls 30 pass through the ball return path 42.
[0062] The present invention is not limited to the embodiment described above, and modifications, improvements, and the like can be made as appropriate.
[0063] The ball return paths 42 can be any form, as long as the balls 30 are circulated to the rolling paths 23 less than one turn. For example, in the present embodiment, although the ball return paths 42 are formed by the circulation internal deflectors 40 disposed on the inner surface of the nut 20, the ball return paths 42 are not limited to the circulation internal deflectors 40, and a nut with ball return paths formed integrally on the inner peripheral surface (see JP-A-2003-307623) may constitute a circulation portion. In this case, since the ball return paths are integrated with the nut, the ball return paths and the screw groove of the nut are formed without level difference, and thus the balls 30 are not stuck at a step by the level difference and a smooth operation can be realized.
[0064] The ball return paths may separate the balls from the outer peripheral surface of the screw shaft, and the balls 30 may be circulated only by the circulation internal deflectors (see JP-A-1993-10412). The ball return paths may be formed in a tunnel shape (see JP-B-4462458). The circulation internal deflectors may have a tongue portion that extends into the screw groove of the screw shaft.
[0065] This application is based on Japanese Patent Application No. 2018-083390 filed on Apr. 24, 2018, the contents of which are incorporated herein by reference.
REFERENCE SIGNS LIST
[0066] 1. Ball Screw [0067] 10. Screw Shaft [0068] 11. First Screw Groove (Screw Groove) [0069] 20. Nut [0070] 21. Second Screw Groove (Screw Groove) [0071] 23. Rolling Path [0072] 30. Ball [0073] 40. Circulation Internal Deflector (Circulation Portion) [0074] 42. Ball Return Path [0075] Da. Ball Diameter [0076] L. Lead [0077] R. Curvature Radius of Ball Return Path [0078] S. Surface Perpendicular to Axial Direction of Screw Shaft [0079] α. Angle at Internal Deflector Center on Route of Ball Return Path (Maximum Inclination Angle) [0080] β. Lead Angle of Screw Groove