Linear motion guide device
The linear motion guide device addresses durability and surface damage issues by using a cylindrical scooping section to reduce collision forces between rolling elements and end caps, ensuring smooth operation and improved durability.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-27
- Publication Date
- 2026-04-08
AI Technical Summary
Existing linear guide devices experience durability issues and surface damage due to high collision forces between rolling elements and end caps, particularly during high-speed operations, as the scooping angle for rolling elements is large, leading to potential fatigue and surface damage.
A linear motion guide device with a scooping section at the end of the direction change path on the guide rail side, where the inner surface of the scooping portion is part of a cylindrical surface, and its center line intersects tangentially with the track groove axis, reducing the scooping angle and minimizing collision forces.
The solution enhances the durability of the end cap and ensures smooth movement of rolling elements by mitigating impact forces, reducing surface damage and fatigue.
Smart Images

Figure 2026060266000001_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a linear guide device.
Background Art
[0002] A linear guide device that linearly guides a guided object such as a workpiece while infinitely circulating rolling elements such as rollers and balls inside is an important mechanical element that has a great influence on the motion accuracy of semiconductor manufacturing devices, ultra-precision machining machines, ultra-precision measuring instruments, and the like.
[0003] The linear guide device includes a guide rail provided with a rail-side rolling element raceway groove, a slider-side rolling element raceway groove provided to face the rail-side rolling element raceway groove, and a slider body supported by the guide rail so as to be axially movable through the rolling of a plurality of rolling elements disposed in a rolling passage formed between the slider-side rolling element raceway groove and the rail-side rolling element raceway groove. The linear guide device further includes a rolling element return path provided in the slider body so as to be substantially parallel to the rolling passage, and a direction conversion path provided in end caps attached to both ends in the moving direction of the slider body for communicating the rolling passage and the rolling element return path.
[0004] In a linear guide device, when a rolling element rolling in the rolling passage enters the direction conversion path, there is a concern about fatigue failure of the collided part due to the rolling element repeatedly colliding with a wedge-shaped rolling element scooping-up part. Particularly during high-speed operation, the collision of the rolling element against the rolling element scooping-up part becomes remarkable, and various countermeasures have been proposed.
[0005] As an example of a countermeasure, Patent Document 1 proposes a linear guide device in which an end cap is continuous with a direction conversion path so as to intersect the rolling passage, and has an introduction part of the rolling passage including a first contact surface for guiding a rolling element from one side part of the rolling passage to the other side part, and a second contact surface located on the opposite side of the first contact surface across the rolling passage, and on which the rolling element rides over via the first contact surface.
Prior Art Documents
Patent Documents
[0006] [Patent Document 1] International Patent Publication No. 2013 / 065663 [Overview of the project] [Problems that the invention aims to solve]
[0007] However, in the configuration shown in Patent Document 1, the first contact surface is positioned deep within the direction change path, which results in a large scooping angle (angle of intersection with the rolling passage) for the rolling element at the first contact surface. As a result, the collision force between the end cap and the rolling element becomes large, and there remains a concern about surface damage to the direction change path of the end cap and the rolling element.
[0008] The present invention has been made in view of the above problems, and aims to provide a linear motion guide device that can improve the durability of the end cap and ensure smooth movement of the rolling elements while mitigating impact forces. [Means for solving the problem]
[0009] The linear motion guide device of the present invention, Guide rail and A slider positioned to move relative to the guide rail in the longitudinal direction, A linear motion guide device comprising a plurality of rolling elements arranged to roll freely along a rolling element path formed between the guide rail and the slider, The aforementioned slider is A slider body having a track groove positioned opposite to the track groove of the guide rail to form a track path for the rolling element, and a return path for the rolling element, The end cap includes a direction-changing passage that connects the return passage and the rolling element rolling passage, A scooping section is formed at the end of the direction change path on the guide rail side for scooping up the rolling body into the direction change path. The inner surface of the scooping portion is part of the cylindrical surface, The center line of the cylindrical surface intersects with the axis of the track groove of the slider body and is connected tangentially to the center line of the direction change path. [Effects of the Invention]
[0010] According to the present invention, it is possible to provide a linear motion guide device that improves the durability of the end cap and ensures smooth movement of the rolling elements while mitigating impact forces. [Brief explanation of the drawing]
[0011] [Figure 1] Figure 1 is a perspective view showing a linear motion guide device according to a first embodiment of the present invention. [Figure 2] Figure 2 is a front view of the end cap of the linear motion guide device shown in Figure 1, with the return guide attached, as seen from the slider body side along the longitudinal direction of the guide rail. [Figure 3] Figure 3 is a cross-sectional view taken along line III-III in Figure 2, showing the end cap with the return guide attached to the slider body. [Figure 4] Figure 4 shows the directional change path along the centerline of the track groove, with the guide rail and slider combined. [Figure 5] Figure 5 is a cross-sectional view similar to Figure 3, showing the end cap of Comparative Example 1, which has a return guide attached, attached to the slider body. [Figure 6] Figure 6 is a cross-sectional view similar to Figure 4, relating to Comparative Example 1. [Figure 7] Figure 7 is a cross-sectional view similar to Figure 3, showing the end cap of Comparative Example 2, which has a return guide attached, attached to the slider body. [Figure 8] Figure 8 is a cross-sectional view similar to Figure 4, relating to Comparative Example 2. [Figure 9] Figure 9 is a cross-sectional view similar to Figure 3, showing the end cap of the second embodiment, which has a return guide attached, attached to the slider body. [Figure 10]FIG. 10 is a cross-sectional view taken along the line X-X of FIG. 7.
Mode for Carrying Out the Invention
[0012] Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings. In this specification, terms indicating directions (such as upward and downward) refer to the respective directions in FIG. 2 unless otherwise specified. Further, the "longitudinal direction" refers to the longitudinal direction of the guide rail or the slider.
[0013] (First Embodiment) FIG. 1 is a perspective view showing a linear guide device according to the first embodiment of the present invention. FIG. 2 is a front view of the end cap 2B of the linear guide device of FIG. 1 as viewed from the slider body 2A side along the longitudinal direction of the guide rail 1 with the return guide 24 attached. FIG. 3 is a cross-sectional view taken along the line III-III of FIG. 2 showing the state where the end cap with the return guide attached is attached to the slider body.
[0014] In FIG. 1, a slider 2 having a substantially U-shaped cross-sectional shape is assembled movably in the longitudinal direction of a guide rail 1 having a substantially rectangular cross-sectional shape extending linearly. On the ridge portions where the left and right side surfaces 1a, 1a and the upper surface 1b of the guide rail 1 in the width direction intersect, track grooves 10A, 10A each having a cross-sectional shape of a substantially 1 / 4 arc shape are formed along the longitudinal direction.
[0015] Further, on the substantially central portions in the vertical direction of the left and right side surfaces 1a, 1a of the guide rail 1 in the width direction, track grooves 10B, 10B each having a cross-sectional shape of a substantially semicircular shape are formed along the longitudinal direction. Further, on the groove bottoms of the track grooves 10B, 10B, a retainer groove 10Ba (wire groove) for accommodating a part of a retainer (not shown) and guiding the retainer when the slider 2 moves is formed along the longitudinal direction between both ends of the movement region of the slider 2 (for example, between both ends in the longitudinal direction of the guide rail 1). The cross-sectional shape of the retainer groove 10Ba is, for example, substantially rectangular.
[0016] The cross-sectional shape of the raceway grooves 10A and 10B may be an arc shape consisting of a single arc, or it may be a roughly V-shape (Gothic arc-shaped groove) formed by combining two arcs with different centers of curvature.
[0017] Slider 2 comprises a slider body 2A and end caps 2B, 2B detachably attached to both ends (both ends in the longitudinal direction) of the slider body 2A. Furthermore, side seals 5, 5 are fitted to both ends of the slider 2 (the longitudinal outer end faces of each end cap 2B) to slide against the outer surface (top surface 1b and side surfaces 1a, 1a) of the guide rail 1, sealing the portion of the gap opening between the guide rail 1 and the slider 2 that faces the longitudinal end face. An underseal (not shown) is fitted to the lower part of the slider 2 to seal the portion of the gap opening between the guide rail 1 and the slider 2 that faces the lower surface of the slider 2. These side seals 5, 5 and underseal prevent foreign matter from entering the gap from the outside and prevent lubricant from leaking out of the gap.
[0018] As shown in Figure 2, the end cap 2B is made up of a pair of legs 22a and a body 22b connected together. On the slider body side of each leg 22a, there are arc grooves 221 and 222 that form the outer circumferential surface of the direction change path, and a recess 223 into which the return guide 24 is fitted.
[0019] The return guide 24 has a pair of inner arcuate surfaces 241 and 242 that form the inner circumferential surface of the direction change passage. When the return guide 24 is fitted into the recess 223 of the end cap 2B, the arcuate grooves 221 and 222 of the end cap 2B and the inner arcuate surfaces 241 and 242 of the return guide 24 face each other, forming semi-torus-shaped direction change passages 42, 42. An oil filler port 243 may be provided on the inner arcuate surfaces 241 and 242 of the return guide 24, and lubricant may be supplied to the direction change passage 42 through the oil filler port 243 (see Figure 3).
[0020] In the linear motion guide device of this embodiment, two pairs of four rows of rolling paths are formed by the track grooves 10A and 10B of the guide rails 1 and the track grooves 211 and 212 of the slider 2 (Figure 1), and each track and each return path 216 are connected by a direction change path 42 (Figure 3). In other words, two pairs of four rows of balls 3 are formed by the rolling paths, return paths 216 and direction change paths 42, and multiple balls (rolling elements) 3 are arranged within each circulation path. As a result, the slider 2 is supported by the balls 3 rolling under load within the two pairs of four rows of rolling paths, enabling it to move linearly along the guide rails 1.
[0021] The track grooves 211 and 212 of slider 2 are connected to the arcuate grooves 221 and 222 of end cap 2B, respectively. Also, as shown in Figure 3, the return path 216 has an annular recess 216a at its end. The direction change path 42, which consists of the arcuate grooves 221 and 222 of end cap 2B and the inner arcuate surface 241 of return guide 24, opens at the end of the cylindrical projection 42a that protrudes from end cap 2B. By fitting the cylindrical projection 42a into the annular recess 216a, the return path 216 and the direction change path 42 are connected with their axes aligned.
[0022] The end cap 2B has a scooping section 25 formed at the track-side end of the arc groove 221 of the upper track, which scoops up the ball 3 from the track and guides it to each direction change path. The scooping section 25 of the arc groove 221 of the upper track will be described below, but the scooping section 25 of the arc groove 222 of the lower track is similar and will not be described.
[0023] The shape of the scooping section 25 will be explained in detail using Figures 3 and 4. Figure 4 is a view of the direction change path 42 along the axis O of the track groove 211, looking from bottom to top as shown in Figure 3, with the guide rail 1 and slider 2 combined. The inner circumferential surface of the track groove 211 constitutes a part of the cylindrical surface, and here the axis O is the center line of the cylindrical surface.
[0024] The inner surface 251 of the scooping portion 25 facing the return guide 24 has a maximum length L in the cross-section shown in Figure 3 and is connected along the tangential direction of the arc groove 221. The inner surface 251 constitutes part of the cylindrical surface, and the boundary between the inner surface 251 and the arc groove 221 is smoothly connected. The inner diameter of the cylindrical surface formed by the inner surface 251 is equal to or slightly larger than the outer diameter of the ball 3.
[0025] When the axis of the cylindrical surface described above is Y, the axis (also called the centerline) Y connects to the arc-shaped centerline Z of the direction change path 42 and extends in the tangential direction. At this time, let α be the angle of intersection between the axis O of the track groove 211 and the centerline Y.
[0026] The ball 3 is scooped up by the scooping section 25 from the rolling element track 41 formed by the track groove 10A (not shown in Figure 3) and track groove 211 of the guide rail 1, and guided to the direction change track 42 which consists of the arc groove 222 of the end cap 2B and the inner arc surface 242 of the return guide 24.
[0027] According to this embodiment, the center line Y of the cylindrical surface formed by the scooping portion 25 is continuously connected to the center line Z of the direction change path 42. This allows the intersection angle α to be set small, which reduces the collision force between the end cap 2B and the ball 3, further enhancing the effect of suppressing surface damage and fatigue of the end cap 2B and surface damage of the ball.
[0028] As shown in the cross-sectional view of Figure 3, the axis of the track groove 211 (center line of the rolling element's rolling path) O, the center line of the rolling element's return path 216, the center line Z of the direction change path 42, and the center line Y of the cylindrical surface formed by the scooping section 25 are all on the same plane, and in this embodiment, they are arranged in a plane parallel to the upper surface 1b of the guide rail 1.
[0029] Therefore, when viewed from the direction shown in Figure 4, the edge of the scooping portion 25 facing the raceway groove 10A is straight, and unlike Comparative Example 1 described later, the scooping portion 25 does not overlap with the raceway groove 10A. As a result, there is no need to provide a gap with the raceway groove 10A, and the position where the ball 3 rolling in the raceway groove 10A collides with the scooping portion 25 can be brought closer to the outer circumference of the ball 3. Therefore, the collision force between the end cap 2B and the ball 3 is reduced, which further enhances the effect of suppressing surface damage and fatigue of the end cap 2B and surface damage of the ball. Here, "not overlapping" means that, in Figure 4, when the widthwise boundary between the raceway groove 10A and the area outside the raceway groove 10A is connected by the dotted line DL, the scooping portion 25 does not extend beyond the dotted line DL into the raceway groove 10A side.
[0030] Furthermore, in this embodiment, the guide rail 1 has a chamfered portion 1c formed by removing the intersection between the track groove 10A and the upper surface 1b. The chamfered portion 1c extends longitudinally adjacent to the track groove 10A and has a shape and dimensions that do not interfere with the scooping portion 25 when the guide rail 1 is assembled to the slider 2. By forming the chamfered portion 1c, interference between the guide rail 1 and the scooping portion 25 can be avoided. As a result, the scooping portion 25 can be designed to be as thick as possible, and the strength of the end cap 2B can be increased.
[0031] In this embodiment, a scooping portion 25 formed at the end of the direction change path 42 of the end cap 2B has a cylindrical surface formed to guide the ball 3 to the direction change path 42. The center line Y of the cylindrical surface of the scooping portion 25 intersects the axis O of the raceway groove 211 of the slider body 2A at an angle α, and is continuously connected to the center line Z of the direction change path 42.
[0032] Since the center line Y of the cylindrical surface of the scooping section 25 intersects the axis O of the raceway groove 211 of the slider body 2A at an angle α, the ball 3 is smoothly scooped up along the surface formed by the axis O and the center line Y, and rolls along the inner surface 251 of the scooping section 25 in the tangential direction of the direction change path 42. As a result, the force that the scooping section 25 receives from the ball 3 can be mitigated, and combined with the improvement in the strength of the scooping section, fatigue and damage can be prevented.
[0033] Furthermore, because the centerline Y of the cylindrical surface of the scooping section 25 is continuously connected to the centerline Z of the direction change path 42 (extending tangentially to the centerline Z of the direction change path 42), the scooping angle (intersection angle α) can be set to be small. As a result, the collision force between the end cap 2B and the ball 3 during scooping is reduced, and fatigue of the end cap 2B can be suppressed. In addition, as is clear from Figure 4, the scooping section 25 has a cylindrical surface with a cutout on the raceway groove 10A side. As a result, the ball 3 is in surface contact with this cylindrical surface, so the surface pressure acting on the scooping section is reduced, and fatigue and damage can be prevented. The effects of this embodiment will be explained below with reference to a comparative example.
[0034] (Comparative Example 1) Figure 5 is a cross-sectional view similar to Figure 3, showing the end cap 2B' attached to the slider body 2A for Comparative Example 1, which has the return guide 24 attached. Figure 6 is a cross-sectional view similar to Figure 4 for Comparative Example 1.
[0035] In Comparative Example 1, the inner surface of the tongue portion 25' of the end cap 2B' does not have a cylindrical shape, but is an extended surface of the arc groove 221. Furthermore, the scoop angle of the tongue portion 25' is β (>α). The other components (including the return guide 24 and the slider body 2A) are the same as in the first embodiment, so they are given the same reference numerals and their description is omitted.
[0036] In Comparative Example 1, as shown in Figure 6, a wedge-shaped tongue portion 25' is provided so as to overlap the raceway groove 10A of the guide rail 1. A gap is provided between this tongue portion 25' and the raceway groove 10A to account for assembly errors of the end cap 2B', etc. Therefore, as shown in Figure 5, the ball 3 rolling in the raceway groove 10A collides with the tongue portion 25' at a position slightly away from the contact point with the raceway groove 10A, that is, at the thicker portion of the ball 3, and is scooped up. As a result, the scooping angle β becomes large, and problems such as chipping of the tongue portion 25' are likely to occur.
[0037] In contrast, according to this embodiment, since the scooping portion 25, which corresponds to the tongue portion 25', does not overlap the raceway groove 10A, there is no need to provide a gap with the raceway groove 10A as described in Comparative Example 1, and the position in which the ball 3 rolling in the raceway groove 10A collides with the scooping portion 25 can be brought closer to the outer circumference of the ball 3. Furthermore, by setting the intersection angle α to be small, the scooping portion 25 can smoothly scoop up the ball 3, thereby mitigating the impact force on the scooping portion 25 and reducing damage.
[0038] (Comparative Example 2) Figure 7 is a cross-sectional view similar to Figure 3, showing the end cap 2B'' of Comparative Example 2, with the return guide 24 attached, attached to the slider body 2A. Figure 8 is a cross-sectional view similar to Figure 4 of Comparative Example 2. Comparative Example 2 corresponds to, for example, the linear motion guide device described in International Patent Publication No. 2013 / 065663.
[0039] In Comparative Example 2, the trackway groove 10A intersects with the direction change path 42 and is continuous with the trackway 42, providing a first contact surface CP1 that guides the ball 3 from one side to the other of the rolling element track 41, and a second contact surface CP2 located on the opposite side of the rolling element track 41 from the first contact surface CP1, onto which the rolling elements transfer. In addition, the inner surface of the tongue portion 25" of the end cap 2B" does not have a cylindrical shape. The other components (including the return guide 24 and the slider body 2A) are the same as in the first embodiment, so they are given the same reference numerals and their description is omitted.
[0040] In Comparative Example 2, the first contact surface CP1 needs to be positioned in a recessed location within the direction change passage 42. Although the contact area is a thick-walled portion and therefore has high strength, the scooping angle γ becomes large, and as a result the impact force of the ball 3 also increases, raising concerns about surface damage to the direction change passage 42 and the ball 3.
[0041] In contrast, according to this embodiment, unlike Comparative Example 2, the scooping section 25 positioned at the entrance of the direction change passage 42 has a cylindrical surface on which the ball 3 rolls on its inner side. By adopting this configuration, a scooping angle (intersection angle α) smaller than the scooping angle γ of Comparative Example 2 can be achieved, and the scooping section 25 can smoothly scoop up the ball 3.
[0042] (Second Embodiment) Figure 9 is a cross-sectional view similar to Figure 3, showing the end cap 2B of the second embodiment with the return guide 24 attached, mounted on the slider body 2A. Figure 10 is a cross-sectional view of XX in Figure 9.
[0043] In this embodiment, the inner cylindrical surface of the scooping portion 25B is circular in shape, with a central angle θ of 90° or more in any cross-section perpendicular to its centerline. The other components (including the return guide 24 and the slider body 2A) are the same as in the first embodiment, and are therefore given the same reference numerals and their description is omitted. A central angle θ of 180° or less is preferable.
[0044] According to this embodiment, since the inner cylindrical surface of the scooping portion 25B is circular with a central angle of 90° or more, when the outer surface of the ball 3 is scooped up while surrounded by the end cap 2B and the return guide 24, the ball 3 can be scooped up stably. This makes it possible to reliably scoop up the ball 3 with the thick portion of the scooping portion 25B, further enhancing the effect of suppressing fatigue and damage to the end cap 2B. In particular, as with the first embodiment, if the center line Y of the cylindrical surface is on a plane parallel to the upper surface of the guide rail, it becomes easier to secure a central angle of 90° or more. Conversely, if the center line Y of the cylindrical surface is inclined with respect to the upper surface of the guide rail, it becomes difficult to secure a central angle of 90° or more.
[0045] In the above embodiment, the scooping portion is located outside the slider body 2A, but it may also be located opposite the raceway groove 10B of the slider body 2A. Furthermore, the outer wall of the direction change path 42 may be composed of multiple parts. For example, the arc groove may be made up of an end cap, and the scooping portion may be made up of a rolling element holder.
[0046] The present invention is not limited to the embodiments described above. It is also intended and within the scope of protection to be provided for the combination of each configuration of the embodiments, as well as for modifications and applications by those skilled in the art based on the description in the specification and well-known art. [Explanation of Symbols]
[0047] 1 Guide rail 2 Sliders 2A Slider Body 2B End Cap 25,25B Scoop-up section 3 balls 10A,10B raceway groove 42 Turnaround
Claims
1. Guide rail and A slider positioned to move relative to the guide rail in the longitudinal direction, A linear motion guide device comprising a plurality of rolling elements arranged to roll freely along a rolling element path formed between the guide rail and the slider, The aforementioned slider is A slider body having a track groove positioned opposite to the track groove of the guide rail to form a track path for the rolling element, and a return path for the rolling element, The end cap includes a direction-changing passage that connects the return passage and the rolling element rolling passage, A scooping section is formed at the end of the direction change path on the guide rail side for scooping up the rolling body into the direction change path. The inner surface of the scooping portion is part of the cylindrical surface, The center line of the cylindrical surface intersects with the axis of the track groove of the slider body and is connected tangentially to the center line of the direction change path. A linear motion guide device characterized by the following features.
2. When viewed in the axial direction of the track groove of the slider body, the scooping portion does not overlap with the track groove of the guide rail. The linear motion guide device according to feature 1.
3. When viewed in the axial direction of the track groove of the slider body, a chamfered portion is formed on the guide rail adjacent to the track groove of the guide rail and facing the scooping portion. The linear motion guide device according to feature 1.
4. In any cross-section perpendicular to the center line of the inner surface of the scooping portion, the inner surface of the scooping portion is circular in shape of 90° or more. The linear motion guide device according to feature 1.
Citation Information
Patent Citations
Motion guide device
WO2013065663A1