1. Field of the Invention
The present invention relates to a rolling groove with combined curve profile for linear guide way, and more particularly, to a specially constructed rolling groove for linear guide way, wherein the rolling groove, is constructed in such a way that its profile is a combination of several arcs so as to permit the balls rolling therein to have a good contact with the rolling groove.
2. Description of the Prior Art
So far, a linear guide way is widely used in the field of precision machines, automation industry, semiconductor industry, medical apparatus, aerospace industry etc. The frictional resistance in this apparatus during operation is reduced by the balls rolling in the rolling groove so as to contribute to creation of many merits such as saving energy, alleviating machine abrasion, lowering temperature rise, prolonging the machine durability, improving working efficiency and machining precision etc.
An exemplary conventional linear guide way for ordinary use is shown in
Sin α=n/(k−1), or n=(k−1)*sin α
Here, n is a ratio of allowable displacement of a ball for traveling (self-aligning) between point P and pint Q on arc AB to the radius of the ball. Generally, all the self-aligning effect and load carrying capability are important to a linear guide way. Therefore, K is generally maintained at a value larger than 1 but very close to 1 so as to maximize the allowable contact area between the ball and the rolling groove thereby improving load carrying capability of the linear guide way. Meanwhile, it is problematic that if K approaches 1, (K−1) approaches zero, which means that the aforesaid contact area between the ball and the rolling groove is minimized by giving the value of or only about 30°, and bringing n to approach zero that results in a very poor self-aligning effect. For example, if K=1.02, α=30°, then n=0.01, which means allowable self-aligning range is remained only 1/100 of the length of the radius of ball.
It should be understood that owing to the existing limitation on the machine design, the angle AOB (see
For this defect noticeable on the prior art, an improvement is seriously required for a linear guide way to optimize its self-aligning effect and load carrying capability.
The present invention is to provide a linear guide way with a rolling groove having a sufficient load carrying capability and a good self-aligning possibility so as to prevent the ball from contacting the edge portion of the rolling groove.
To achieve the above object, the present invention provides a rolling groove whose profile is constructed by at least three arcs tangentially connected with adjacent ones, and the ratio of the radius of curvature of the intermediate arc to the radius of the ball is made approaching to 1, whereas the radii of curvature of the arcs formed at both sides are larger than that of the intermediate one.
For increasing the load carrying capability of a linear guide way, generally the radius of curvature of the intermediate arc is made 1˜1.05 times the radius of the ball.
For achieving an optimistic self-aligning effect, the curvature of the arcs at two sides have to be slightly larger than that of the intermediate one, generally, the formers are designed to have the value 1.08˜1.20 times the radius of ball.
For improving both the self-aligning effect and the load carrying capability, the center angle of the intermediate arc (2α) is made at 35°˜50°.
In proof of the innovative and technological content of the invention herein, please refer to the detailed description of the embodiment and the accompanying brief description of the drawings appended below. Furthermore, the drawings and embodiment are provided for purposes of reference and explanation, and shall not be construed as limitations applicable to the invention herein.
The geometrical explanation to
sin α=n/(k−1) or n=(k−1)·sin α
As arc CA and arc BD are respectively tangent to arc AB on point A from the left side, and tangent to arc AB on point B from the right side, if circle P moves along the rolling groove (arc AB) with a horizontal distance nR to reach point B bringing its center to point Q, and continue to advance to the right side along the rolling groove, circle P will move entering arc BD by passing point B, where arc AB and arc BD are tangentially contacted with each other, and reach a point D where circle P is tangentially in contact with arc BD, the center of circle P will be removed to point S as shown in
mR=(j−1)R·[sin(α+β)−sin α]
In general, the rolling groove encircles the ball at a range about 60° which makes (α+β)=30°. In order to achieve a reliable load carrying capability for the rolling groove, the value K, which is the ratio of the radius of curvature of arc AB to the radius of circle P (e.g. ball) may be designed to be nearly equal to 1. As the radii of curvature of arcs at both sides are larger than that of the intermediate arc, by letting α=20° (angle TOB), then the center angle of the intermediate arc will be 40°, and β=10°. By letting k=1, j=1.20, substitute these values into the above formula, we obtain
n+m=0.0316
If α=20°, β=10°, k=1.05, j=1.08, this time we obtain
n+m=0.0297
Such self-aligning effect is significantly more optimistic than the value 0.010 obtained by the prior art by letting α=30°, k=1.02.
In all, the cross sectional profile of the rolling groove according to the present invention is formed of three successively and tangentially contacted circular arcs. The ratio of radius of curvature of the intermediate arc to the radius of ball is made approaching to 1, while the radii of curvature of arcs at both sides are larger than that of the intermediate arc. By so, the design of the present invention can achieve a sufficient load carrying capability and provide an optimistic self-aligning effect as well for the linear guide way so as to prevent the traveling ball from being in contact with the edge of the rolling groove.
Many changes and modifications in the above described embodiment of the invention can, of course, be carried out without departing from the scope thereof. Accordingly, to promote the progress in science and the useful arts, the invention is disclosed and is intended to be limited only by the scope of the appended claims.
This application is a continuation-in-part of U.S. patent application Ser. No. 11/102,675, filed on Apr. 11, 2005.
Number | Date | Country | |
---|---|---|---|
Parent | 11102675 | Apr 2005 | US |
Child | 11864908 | Sep 2007 | US |