BALL SCREW SPLINE
20200355249 ยท 2020-11-12
Inventors
Cpc classification
F16C29/0695
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H25/2214
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2025/204
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H25/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A ball screw spline with reduced size and weight includes: a shaft formed in such a manner that a helical ball screw groove and a straight ball spline groove intersect each other; a ball screw nut having a helical ball screw groove facing the ball screw groove in the shaft, the ball screw nut being configured to allow recirculating a screw ball fitting in the ball screw groove in the shaft; and a ball spline outer race having a straight ball spline groove facing the ball spline groove in the shaft, the ball spline outer race being configured to allow recirculating a spline ball fitting in the ball spline groove in the shaft. The ball screw groove in the shaft is made as deep as or deeper than the ball spline groove in the shaft, and the screw ball is made smaller in diameter than the spline ball.
Claims
1. A ball screw spline comprising: a shaft formed in such a manner that a helical ball screw groove and a straight ball spline groove intersect each other; a ball screw nut including a helical ball screw groove facing the ball screw groove in the shaft, the ball screw nut being configured to allow recirculating a screw ball fitting in the ball screw groove in the shaft; and a ball spline outer race including a straight ball spline groove facing the ball spline groove in the shaft, the ball spline outer race being configured to allow recirculating a spline ball fitting in the ball spline groove in the shaft, wherein the ball screw groove in the shaft is made as deep as or deeper than the ball spline groove in the shaft, the screw ball is made smaller in diameter than the spline ball, the ball screw groove in the shaft is made deeper than the ball screw groove in the ball screw nut, and a BCD of a ball screw including the shaft, the ball screw nut, and the screw ball is made greater than a diameter of the shaft.
2. A ball screw spline comprising: a shaft formed in such a manner that a helical ball screw groove and a straight ball spline groove intersect each other; a ball screw nut including a helical ball screw groove facing the ball screw groove in the shaft, the ball screw nut being configured to allow recirculating a screw ball fitting in the ball screw groove in the shaft; and a ball spline outer race including a straight ball spline groove facing the ball spline groove in the shaft , the ball spline outer race being configured to allow recirculating a spline ball fitting in the ball spline groove in the shaft, wherein the ball screw nut includes a nut body in which the ball screw groove is formed and in which a through-hole penetrating the nut body in an axial direction is formed, and a recirculation component provided at end portions of the nut body in the axial direction and including a turn-around path connected to the screw groove and the through-hole of the nut body, the ball screw groove in the shaft is made as deep as or deeper than the ball spline groove in the shaft, the screw ball is made smaller in diameter than the spline ball, and the ball screw groove in the shaft is made deeper than the ball screw groove in the ball screw nut.
3. The ball screw spline according to claim 2, wherein a BCD of a ball screw including the shaft, the ball screw nut, and the screw ball is made greater than a diameter of the shaft.
4. The ball screw spline according to claim 1, wherein a cross-section of the ball screw groove in the shaft has a Gothic arch shape, and at least part of a cross-section of the ball spline groove in the shaft has a circular arc shape.
5. The ball screw spline according to claim 2, wherein a cross-section of the ball screw groove in the shaft has a Gothic arch shape, and at least part of a cross-section of the ball spline groove in the shaft has a circular arc shape.
6. The ball screw spline according to claim 3, wherein a cross-section of the ball screw groove in the shaft has a Gothic arch shape, and at least part of a cross-section of the ball spline groove in the shaft has a circular arc shape.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0012]
[0013]
[0014]
[0015]
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[0018]
[0019]
[0020]
DESCRIPTION OF EMBODIMENT
[0021] A ball screw spline of an embodiment of the present invention is described in detail hereinafter with reference to the accompanying drawings. However, the ball screw spline of the present invention can be embodied in various modes, and is not limited to the embodiment described in the description. The embodiment is provided with the intention of enabling those skilled in the art to fully understand the scope of the invention by fully disclosing the description.
[0022]
[0023] As illustrated in
[0024]
[0025]
[0026] As illustrated in
[0027] As illustrated in
[0028]
[0029] The nut 2 includes the tubular nut body 24, recirculation components 25a and 25b provided at end portions of the nut body 24 in the axial direction, and lid members 26a and 26b covering the recirculation components 25a and 25b. As illustrated in
[0030] As illustrated in
[0031] A substantially arc-shaped turn-around path 28 for recirculating the screw ball 27 is formed in each of the recirculation components 25a and 25b. A straight through-hole 29 is formed in the nut body 24, penetrating the nut body 24 in the axial direction. The turn-around paths 28 are connected to the screw groove 24b and the through-hole 29 of the nut body 24.
[0032] A helical loaded rolling path 20 between the screw groove 24b and the screw groove 1a in the shaft 1, the substantially arc-shaped turn-around paths 28, and the straight through-hole 29 configure a recirculation path. The turn-around path 28 of the recirculation component 25a deflects the screw ball 27 rolling along the helical loaded rolling path 20 toward a tangential direction, and guides the screw ball 27 to the through-hole 29. The screw ball 27 that has been guided to the through-hole 29 passes through the turn-around path 28 of the opposite recirculation component 25b, and then is returned again to the loaded rolling path 20.
[0033]
[0034] The cross-section of the screw groove 1a illustrated in
[0035]
[0036] The outer race 3 includes the tubular outer race body 34, and ring-shaped recirculation components 35a and 35b mounted at end portions of the outer race body 34 in the axial direction.
[0037] A straight return path 39 is formed in the outer race body 34, penetrating the outer race body 34 in the axial direction and parallel to the spline groove 34b. The return path 39 is not placed in a radial direction of the spline groove 34b (that is, on a line linking the axis 1c of the shaft 1 and the spline groove 34b) but placed near the shaft 1 in order to reduce the diameter of the outer race body 34.
[0038] The retainer 41 is assembled onto the inner surface of the outer race body 34. The retainer 41 holds the spline ball 37 in such a manner as to prevent the spline ball 37 from falling off even if the outer race 3 is pulled out from the shaft 1.
[0039] As illustrated in
[0040] A straight loaded rolling path 36 between the spline grooves 1b and 34b, the U-shaped turn-around paths 38, and the straight return path 39 configure a recirculation path. The turn-around path 38 of the recirculation component 35a deflects the spline ball 37 rolling along the straight loaded rolling path 36, in a substantially U-shape, and guides the spline ball 37 to the return path 39 near the shaft 1. The spline ball 37 that has been guided to the return path 39 passes through the turn-around path 38 of the opposite recirculation component 35b, and then is returned again to the loaded rolling path 36.
[0041] According to the embodiment, although the screw groove 1a in the shaft 1 is deeper than the spline groove 1b, the screw ball 27 is made smaller in diameter than the spline ball 37. The nut 2 and the outer race 3 are different in recirculation structure. Accordingly, the nut 2 is likely to be greater in outside diameter than the outer race 3. This is because the spline ball 37 rolling along the straight spline groove 1b in the shaft 1 is deflected near the shaft 1 in the outer race 3, whereas the screw ball 27 rolling along the helical screw groove 1a in the shaft 1 is deflected toward the tangential direction in the nut 2. According to the embodiment, the screw ball 27 is made smaller in diameter than the spline ball 37. Accordingly, the outside diameters of both of the nut 2 and the outer race 3 can be reduced with a good balance. Therefore, reductions in the size and weight of the ball screw spline can be promoted.
[0042] In order to increase the depth of the screw groove 1a in the shaft 1, either an increase in the diameter of the screw ball 27 or a reduction in BCD is required. According to the embodiment, the depth d1 of the screw groove 1a in the shaft 1 is greater than the depth d2 of the screw groove 24b in the nut 2. Accordingly, the BCD of the ball screw is reduced. Hence, the depth of the screw groove 1a in the shaft 1 can be increased without increasing the diameter of the screw ball 27.
[0043] The BCD of the ball screw is greater than the diameter d3 of the shaft 1. Accordingly, it is possible to prevent occurrence of edge load on the screw groove 24b in the nut 2 due to the excessively shallow screw groove 24b in the nut 2.
[0044] The cross-section of the ball screw groove 1a in the shaft 1 has a Gothic arch shape. At least part of the cross-section of the spline groove 1b in the shaft 1 has a circular arc shape. Accordingly, the screw groove 1a in the shaft 1 can be made deeper than the spline groove 1b.
[0045] The present invention is not limited to the realization of the above embodiment, and can be modified into other embodiments within the scope that does not change the spirit of the present invention.
[0046] In the above embodiment, the screw groove in the shaft is made deeper than the spline groove in the shaft. However, it is also possible to make the depth of the screw groove in the shaft equal to the depth of the spline groove in the shaft. The screw ball is guided by not only the screw groove in the shaft but also the screw groove in the nut. Accordingly, even if they are made equal, it is possible to prevent the screw ball from changing course from the screw groove to the spline groove at the intersection.
[0047] In the above embodiment, the cross-sections of the spline grooves in the shaft and the outer race are formed into a circular arc shape, but can also be formed into a Gothic arch shape. Moreover, the cross-sections of the screw grooves in the shaft and the nut are formed into a Gothic arch shape, but can also be formed into a circular arc shape.
[0048] The description is based on Japanese Patent Application No. 2017-227937 filed on Nov. 28, 2017, the entire contents of which are incorporated herein.
REFERENCE SIGNS LIST
[0049] 1 Shaft [0050] 1a Ball screw groove in the shaft [0051] 1b Ball spline groove in the shaft [0052] 2 Ball screw nut [0053] 3 Ball spline outer race [0054] 24b Ball screw groove in the ball screw nut [0055] 34b Ball spline groove in the outer race [0056] 27 Screw ball [0057] 37 Spline ball