The present invention relates to a screw device in which a rolling member is interposed to be rotatable between a screw shaft and a nut.
There is known a ball screw in which balls are disposed to be movable between the screw shaft and the nut member. When the screw shaft is rotated relatively to the nut, a plurality of balls interposed between a ball rolling groove of the screw shaft and a loaded ball rolling groove of the nut roll and move, and the nut is moved in an axial direction of the screw shaft. The use of the ball screw can reduce frictional resistance at a time of rotating the screw shaft with respect to the nut.
In a tendency that an electrically driven power steering device is generalized, it is required to reduce thickness of the nut and simplify a circulation structure, and in the current tendency, deflector-type ball screw has taken main stream. In the deflector-type ball screw, deflector (which may be called “piece”) is embedded to circulate the balls in the nut. The deflector is formed with a ball circulation groove to be connected to a loaded ball circulation groove of the nut. The ball circulation groove of the deflector serves to return the ball rolling on a spiral ball rolling groove around the screw shaft by get over a screw thread of the screw shaft before one turn of groove.
In order to smoothly circulate the ball, it is important to precisely manufacture a portion connecting the loaded ball rolling groove of the nut and the ball circulation groove of the deflector. However, in the conventional deflector-type ball screw, a deflector is embedded in a hole formed to the nut and, thereafter, the deflector is fixed to the nut by means of binding, so that the deflector is easily shifted in its position in the axial and radial direction of the nut, and hence, it was difficult to precisely manufacture that portion connecting the loaded ball rolling groove of the nut and the ball circulation groove of the deflector.
In order to solve such problem as mentioned above of the deflector-type ball screw, there is provided a ball screw in which the loaded ball rolling groove and the ball circulation groove are integrally formed to the nut without incorporating the deflector as independent member to the nut (see Patent Publication 1).
Patent Publication 1: Japanese Patent Laid-open Publication No. 2003-307263
Problems to be Solved by The Invention
When the nut is quenched in order to increase the strength of the nut, a distortion is caused by heat (thermal) treatment to the loaded ball rolling groove and the ball circulation groove of the nut even in a cylindrical nut. This distortion may disturb smooth circulation of the ball in a region at which the loaded ball rolling groove is connected to the ball circulation groove.
Then, an object of the present invention is to provide a screw device capable of precisely setting a positional relationship between a loaded ball rolling groove and a ball circulation groove both formed to the nut and also provide applied examples of such screw device.
Means for Solving the Problem
Hereunder, the present invention will be described. Further, in order to easy understanding of the present invention, reference numerals in the drawings are added with parentheses, but the present invention is not limited thereby to embodiments shown in the drawings.
In order to solve the above problem, the invention of claim 1 is a screw device comprising: a screw shaft (5) formed, on an outer peripheral surface thereof, with a rolling member rolling groove (6) in form of spiral; a nut (1) formed, on an inner peripheral surface thereof, with at least single one-turn of groove (4) constituted by a loaded rolling member rolling groove (2) having a partial circle less than one circle of groove and corresponding to the rolling member rolling groove (6) of the screw shaft (5) and a rolling member circulation groove (3) connecting one and another ends of the loaded rolling member rolling groove (2); and a plurality of rolling members arranged and accommodated between the rolling member rolling groove (6) of the screw shaft (5) and the loaded rolling member rolling groove (2) and the rolling member circulation groove (3) of the nut (1), wherein the loaded rolling member rolling groove (2) and the rolling member circulation groove (3) of the nut (1) are formed in the inner peripheral surface, which is preliminary heat-treated, by performing a cutting working.
The invention of claim 2 is characterized, in the screw device in claim 1, in that only the loaded rolling member rolling groove (2) of the nut (1) is ground after the cutting working, and the rolling member circulation groove (3) of the nut (1) is not subjected to the cutting working.
The invention of claim 3 is a screw device comprising: a screw shaft (5) formed, on an outer peripheral surface thereof, with a rolling member rolling groove (6) in form of spiral; a nut (1) formed, on an inner peripheral surface thereof, with a plurality of rings (21) each formed from at least single one-turn groove (4) constituted by a loaded rolling member rolling groove (2) having a partial circle less than one circle of groove and corresponding to the rolling member rolling groove (6) of the screw shaft (5) and a rolling member circulation groove (3) connecting one and another ends of the loaded rolling member rolling groove (2); and a plurality of rolling members arranged and accommodated between the rolling member rolling groove (6) of the screw shaft (5) and the loaded rolling member rolling groove (2) and the rolling member circulation groove (3) of the ring (21).
The invention of claim 4 is a screw device comprising: a screw shaft (5) formed, on an outer peripheral surface thereof, with a rolling member rolling groove (6) in form of spiral; a nut (1) formed, on an inner peripheral surface thereof, with at least single one-turn (4) of groove constituted by a loaded rolling member rolling groove (2) having a partial circle less than one circle of groove and corresponding to the rolling member rolling groove (6) of the screw shaft (5) and a rolling member circulation groove (3) connecting one and another ends of the loaded rolling member rolling groove (2); and a plurality of rolling members arranged and accommodated between the rolling member rolling groove (6) of the screw shaft (5) and the loaded rolling member rolling groove (2) and the rolling member circulation groove (3) of the nut (1), wherein a crowning (19) is formed at a connecting portion of the loaded rolling member rolling groove (2) to the rolling member circulation groove (3) so that a gap between the rolling member rolling groove (6) of the screw shaft (5) and the loaded rolling member rolling groove (2) is gradually widened toward the rolling member circulation groove (3).
The invention of claim 5 is a screw device comprising: a screw shaft (5) formed, on an outer peripheral surface thereof, with a rolling member rolling groove (6) in form of spiral; a nut (22) formed, on an inner peripheral surface thereof, with at least single one-turn of groove constituted by a loaded rolling member rolling groove (25) having a partial circle less than one circle of groove and corresponding to the rolling member rolling groove (6) of the screw shaft (5) and a rolling member circulation groove (24) connecting one and another ends of the loaded rolling member rolling groove (25); and a plurality of rolling members arranged and accommodated between the rolling member rolling groove (6) of the screw shaft (5) and the loaded rolling member rolling groove (25) and the rolling member circulation groove (24) of the nut (22), wherein a foreign material (26) different in substance from that of the nut (22) is fitted to the rolling member circulation groove (24) of the nut (22), and the loaded rolling member rolling groove (25) of the nut (22) and the rolling member circulation groove (24) of the foreign material (26) are formed by preliminarily cutting the nut (22) to which the foreign material (26) is fitted.
The invention of claim 6 is a method of manufacturing a screw device in which a rolling member is interposed between a screw shaft (5) and a nut (1), wherein the nut (1) is heat-treated and, thereafter, at least single one-turn of groove constituted by a loaded rolling member rolling groove (2) having a partial circle less than one circle of groove and corresponding to the rolling member rolling groove (5) of the screw shaft (6) and a rolling member circulation groove (3) connecting one and another ends of the loaded rolling member rolling groove (2) is formed, by a cutting working, to an inner peripheral surface of the nut (1).
The invention of claim 7 is characterized, in the screw device manufacturing method of claim 6, in that one-turn of groove is subjected to cutting working by imparting a rotational cutting main motion to a cutting tool (13) disposed inside the nut (1) and imparting a feeding motion to at least one of the nut (1) and the cutting tool (13).
According to the invention of claim 1, since the loaded rolling member rolling groove and the rolling member circulation groove are formed to the inner peripheral surface of the nut after the heat-treatment to the nut, any distortion is not caused to these grooves due to the heat-treatment. Accordingly, the loaded rolling member rolling groove and the rolling member circulation groove of the nut can be precisely manufactured.
According to the invention of claim 2, the loaded rolling member rolling groove on which the loaded rolling member rolls with the load being applied can be finished further finely. On the other hand, with the rolling member circulation groove, the rolling member does not roll with any load, and the rolling member circulation groove has itself a complicated groove shape, so that it is desired for the rolling member circulation groove is not to be subjected to any grinding working.
According to the invention of claim 3, since a plurality of rings, each being formed with the loaded rolling member rolling groove and the rolling member circulation groove, are assembled in the axial direction of the screw shaft so as to constitute a nut, a nut strong in the moment load can be provided. In addition, the rings can be sold as a standardized product such as bearing.
According to the invention of claim 4, in the case when the rolling member advances in a meandering manner into the rolling member circulation groove, resistance in the advancing direction of the rolling member can be reduced.
According to the invention of claim 5, by assembling the nut with a foreign material, attenuation effect, lubricating effect, noise-absorbing effect or vibration damping effect can be applied.
Furthermore, the invention of the screw device of claim 1 can be constituted as an invention of a manufacturing method such as the invention of claim 6.
In the invention of claim 7, by applying the rotational cutting main motion to a cutting tool disposed inside the nut and giving the feeding motion to at least one of the nut and the cutting tool, one-turn of groove can be formed to the inner peripheral surface of the nut.
1, 22, 31—nut, 2, 25—loaded ball rolling groove, 3, 24, 33—ball circulation groove, 6—ball rolling groove, 13—cutting tool (end mill), 19—crowing, 21—ring, 26—foreign material.
The ball circulation groove 3 of the nut 1 corresponds to the deflector of a conventional structure. The ball circulation groove 3 serves such that the ball can get over the screw thread 7 of the screw shaft 5 so that the ball rolling on the loaded ball rolling groove 2 of the screw shaft 5 circulates around the screw shaft 5 and returns to the loaded ball rolling groove 2.
The groove shapes of the loaded ball rolling groove 2 and the ball circulation groove 3 of the nut 1 will be described hereunder.
The loaded ball rolling groove 2 forming a locus of the ball to be loaded is formed, as like as a groove shape of a general ball screw nut, so that the ball moves in the axial direction of the screw shaft 5 at a constant rate in accordance with a rotation angle of the screw shaft with respect to the axis.
The loaded ball rolling groove 2 is formed, for example, to a portion having 330 degrees of angle within 360 degrees of angle of one round of the inner peripheral surface of the nut 1, and on the other hand, the ball circulation groove 3 is formed, for example, to a portion having 30 degrees of angle thereon. This is because the loaded ball rolling area makes large to increase a load capacity. In order not to rapidly change the advancing direction of the ball moving on the loaded ball rolling groove 2 in the ball circulation groove, an inclination angle θ of the line of the ball circulating groove 3 with respect to the line in the loaded ball rolling groove 2 is set to be less than 60 degrees of angle, for example.
In the ball circulation groove 3, the ball jumps up the thread 7 of the screw shaft 5, so that the ball can move in the radial direction of the screw shaft 5.
The moving locus of the ball is described hereinabove, moving loci of other members, such as spacers, running in association with the balls is considered to be substantially the same as the moving locus of the ball.
Three-dimensional shape of the ball circulation groove 3 of the nut is defined as an envelop (enveloping surface) of an aggregation of the sectional shapes of the ball circulation groove 3 in a plane perpendicular to a surface formed by contact lines of the ball center locus 9 on dividing points at which the ball center locus 9 of the ball circulation groove 3 shown in
As an exemplary embodiment, the sectional shape of the ball circulation groove 3 was made so as to have a circular-arc shape having a radius slightly larger than a radius of the ball, and a plane was rotated by an inclination of the developed view of the ball center locus 9 shown in
If the described ball circulation groove 3 and the loaded ball rolling groove 2 can be worked precisely, the ball can be moved with substantially no play, and the ball can be smoothly circulated. The working method of the ball circulation groove 3 and the loaded ball rolling groove will be described hereunder.
First, the nut 1 having a cylindrical shape is subjected to heat treatment of quenching or tempering. In this state, the inner peripheral surface of the nut 1 maintains its cylindrical surface shape and any loaded ball rolling groove 2 and ball circulation groove are not formed. Next, the inner peripheral surface of the nut 1 which was preliminarily heat-treated is cut to thereby form the loaded ball rolling groove 2 and the ball circulation groove 3. In this working, since the loaded ball rolling groove 2 and the ball circulation groove 3 are formed at the same time with same cutting step by the same cutting tool, the loaded ball rolling groove 2 and the ball circulation groove 3 can be precisely worked to the nut 1. Since the cutting step is performed after the heat treatment, the influence of the distortion due to the heat treatment can be eliminated. In addition, if the cutting is performed after the heat treatment, surface roughness of the loaded ball rolling groove 2 and the ball circulation groove 3 can be improved.
In this embodiment, only the loaded ball rolling groove 2 of the nut 1 is ground by a grinding stone, for example, after the cutting working, and the ball circulation groove 3 is not ground. On the loaded ball rolling groove 2, the ball rolls with the load being applied, it is desired for the groove 2 to be finely worked in the grinding working. On the other hand, since the ball rolls on the ball circulation groove 3 with the load being not applied, and in addition, the groove 3 has a complicated shape, it is advantageous for the groove 3 not to be ground in term of cost.
A highly pressurized fluid is struck to a turbine 14, The end mill 13 rotatably supported by a dynamic pressure bearing 15 is rotated at, for example, 2 to 4000 rpm to thereby cut in a groove to the inner peripheral surface of the nut 1. The rotation of the nut 1 around its axis and the movement of the end mill 13 in the z-axis and y-axis directions are synchronized with each other in conformity with the lead angle of the loaded ball rolling groove 2 and the shape of the ball circulation groove 3, and as shown in
Other than the above, it is possible to manufacture the grooves by an inner diameter grooving working called conventionally as “inner cam”.
The circulation of the ball will be explained hereunder. In the loaded ball rolling groove 2 of the nut 1, the ball rolls, in a snapped state, between the loaded ball rolling groove 2 of the nut 1 and the ball rolling groove 6 of the screw shaft 5. The ball given with a force for moving in the advancing direction in the loaded ball rolling groove 2 is not given with a force for moving in the advancing direction in the ball circulation groove 3, so that it becomes necessary to push inside the ball in the ball circulation groove 3 by the ball in the loaded ball rolling groove 2. The balls in the ball circulation groove 3 alternately include a ball pushed against the nut side and a ball pushed against the screw shaft side, and in the ball circulation groove 3, the balls advance in a meandering manner. At the time when the balls advancing in the meandering manner in the ball circulation groove 3 enter the loaded ball rolling groove 2, in order to reduce resistance n the ball advancing direction, a crowing 19 is formed at a connecting portion of the loaded ball rolling groove 2 connected to the ball circulation groove 3 as shown in
Next, the ball insertion method will be explained. The ball is inserted between the loaded ball rolling groove 2 and the ball circulation groove 3 of the nut 1 and the ball rolling groove 6 of the screw shaft 5 in a state that the nut 1 is shifted near the end of the screw shaft 5. Since the loaded ball rolling groove 2 and the ball circulation groove 3 of the nut 1 are formed in one turn, it is prevented the ball from entering an extra portion as in a conventional deflector-type ball screw, thus making easy the ball insertion working. In addition, when the loaded ball rolling groove 2 and the ball circulation groove 3 are integrally cut out, the lengths thereof in the circumferential directions can be made constant, so that there cause any no inconvenience at a time of interposing the spacer between the adjacent balls.
Further, one-turn groove of the ring 21 in this second embodiment may be formed as like as the nut in the first embodiment by performing the cutting working or, different from the first embodiment, may be formed by a bulging formation from a pipe material, an assembling method of a powder sintering and groove burnishing, or an injection molding of a resin material.
For an application to a multi-thread screw, the application would be done by providing plural pairs of loaded ball rolling grooves and the ball circulation grooves during one-turn circulation of the rolling member around the screw shaft. It is also applicable by jumping over the screw thread by means of lid of the fifth embodiment.
Number | Date | Country | Kind |
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2004-114474 | Apr 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP05/06945 | 4/8/2005 | WO | 10/6/2006 |