The present invention relates to a ball screw in which a plurality of balls are caused to run in a circulating manner between a screw shaft and a nut and which is used to effect conversion between a linear motion and a rotational motion.
A ball circulation method for a ball screw is classified into a method in which a return tube is provided outside the nut, and a method in which a circulation component called a bridge is provided in a part of the screw groove of the nut. The former method is adopted when balls corresponding to a plurality of screw grooves are to be returned, and the latter method is adopted when balls corresponding to one row of screw groove are to be returned.
In a case in which the nut moves along a long screw shaft, a position of arrangement for the circulating portion is restricted to the nut side. However, in the case of a ball screw for use in pulley width adjustment in a metal belt type traction drive device, the stroke involved is small, so the ball screw functions as such regardless of whether the circulating portion is provided on the nut side or on the screw shaft side. JP 2003-148573 A discloses a construction in which the width of a V-pulley is controlled by a ball screw actuator whose nut is equipped with a bridge.
In assembling the ball screw as disclosed in JP 2003-148573 A, after putting the balls between the screw shaft and the nut, the bridge is inserted from outside the nut, and then bonded to the nut. Apart from this process, this ball screw involves a number of factors leading to an increase in cost. For example, a bridge of a complicated configuration is required, and it is necessary to provide the nut with a window allowing insertion of the bridge. Further, since the screw groove and the circulation groove provided in the bridge are two separate things, generation of a step is likely to be involved, which may hinder a smooth flow of the balls.
In this connection, there has been devised a system in which the circulation groove is cut in the screw shaft. By machining the screw groove (ball rolling groove) of the screw shaft and the circulating portion by a single end mill, it is possible to avoid generation of a step as involved in the case of the bridge type ball screw (see JP 2003-97663 A and JP 2003-166616 A).
In either of the methods, however, it is impossible to positively cause the balls to sink in the circulating portion provided in the screw shaft, and jamming of the balls is involved.
It is a main object of the present invention to realize a smooth ball circulating motion in a ball screw in which balls are caused to run in a circulating manner along a ball rolling groove of a screw shaft and a ball rolling groove of a nut.
The present invention achieves the object by arranging permanent magnets at an inlet and an outlet, respectively, of a ball circulating portion in a ball screw in which the ball circulating portion is provided on a screw shaft side.
According to an embodiment of the present invention, a ball screw includes: a screw shaft having a screw groove in an outer peripheral surface thereof; a nut having a screw groove in an inner peripheral surface thereof; and a plurality of balls provided between the screw groove of the screw shaft and the screw groove of the nut, in which the screw groove of the screw shaft forms a closed loop composed of a ball rolling groove corresponding to approximately one turn and a circulating portion connecting a start point and a terminal point of the ball rolling groove, in which the circulating portion is composed of an inlet portion gradually deepening from the ball rolling groove, a portion deep enough to allow the balls to pass through a bore of the nut, and an outlet portion gradually lessened in depth toward the ball rolling groove, and in which guide means for attracting the balls to the groove bottom are provided at the inlet portion and the outlet portion of the circulating portion.
The guide means may attract a ball with a force larger than a force applied to the ball from contiguous balls before and behind and pushing the ball away from the groove bottom.
The guide means may be formed by permanent magnets embedded in the screw shaft.
The guide means may be formed by partially magnetizing the circulating portion of the screw shaft.
According to the present invention, the ball rolling groove and the circulating portion are continuous with each other and involves no step, so it is possible to realize a smooth ball circulating motion. Further, since the bridge can be abolished, it is possible to achieve a reduction in the thickness and weight of the nut, thereby achieving a reduction in cost.
These and other objects and features of the present invention will become more apparent from the following description given with reference to the accompanying drawings.
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When a single row of ball rolling groove does not provide the requisite load capacity, a plurality of ball rolling grooves (inclusive of the circulating portions 16) are provided. In this case, the circumferential positions of the circulating portions 16 are designed taking balance into consideration as in a case of the bridge type ball screw. For example, when the grooves are provided in two rows or three rows, it is desirable to arrange them at an interval of 180 degrees or 120 degrees, respectively.
The ball screw device of the present invention is not restricted to the above-described embodiment. Various modifications are of course possible without departing from the gist of the present invention.
Number | Date | Country | Kind |
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2004-163374 | Jun 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP05/08363 | 5/6/2005 | WO | 00 | 4/29/2008 |