This invention relates to the improvement of a rolling-bearing unit for wheel support for supporting a wheel of an automobile to the suspension apparatus such that it rotates freely.
Construction of a rolling-bearing unit for wheel support, as disclosed in Japanese patent publication No. Tokukai 2001-221243, is shown in
A double row of outer-race tracks 10a, 10b, which are both rotating race tracks, are formed around the inner peripheral surface of the hub 7, and an installation flange 11 is formed around the outer peripheral surface of the hub 7. The wheel rim 1, together with the drum 12 of the braking apparatus, is connected to and fastened to the surface on one side of the installation flange 11 (outside surface in the example in the figure) by the studs 8, 8 and nuts 9, 9.
A plurality of rolling bodies or balls 14, 14 are located between the outer-race tracks 10a, 10b and the inner-race tracks 13, 13, which are stationary race tracks and are formed around the outer peripheral surface of the inner races 5, 5, and are held by retainers 15, 15 such that they can roll freely. By combining all of these components in this way, a back-to-back double-row angular ball bearing is formed, and it supports the hub 7 around the inner races 5, 5 such that it rotates freely, and supports radial load and thrust loads. Seal rings 16a, 16b are located between the inner peripheral surfaces on both ends of the hub 7 and the outer peripheral surface of the end sections of the inner races 5, 5, and they seal off the space where the balls 14, 14 are located from the outside space. Furthermore, a cap 17 covers the opening sections on the outside end of the hub 7 (throughout this disclosure, the outside in the width direction when the bearing is installed in the vehicle is referred to as the outside in the axial direction, and similarly, the center in the width direction is referred to as the inside).
As shown in
Next, a second example of prior construction as shown in
In the case of the rolling-bearing unit for wheel support described above, an increase in the torque (rotation resistance of the rolling-bearing unit for wheel support) required to rotate the hub 7 (or 7a) due to the existence of the seal rings 16a, 16b (or 16c, 16d), which seal off the openings on both ends of the internal space where the balls 14, 14 are located, is unavoidable. As a result, the driving performance, centered on the acceleration performance and fuel consumption of the automobile in which the rolling-bearing unit for wheel support is installed, becomes poor, so in the recent trend for more energy efficiency, improvement is desired.
Construction for reducing the resistance of the section of the sealing rings, and reducing the rotation torque of the rolling bearing has been considered in the past, such as the construction disclosed in Japanese Patent Publication No. Tokukai Hei 10-252762 in which the design of the interference of the seal lip is considered, and also the internal design such as the type of bearing, amount of pre-loading, shape of the components, contact angle or the radius of curvature of the race track surfaces, or also the type of grease used, and shape and material of the seal rings, and the like have all been considered. However, performing design work that correlates and properly regulates all of these elements, maintains the necessary seal performance and reduces the aforementioned rotation torque is troublesome. Therefore, simpler construction that is capable of reducing the rotation torque of a rolling-bearing unit for wheel support is desired.
The object of the rolling-bearing unit for wheel support of this invention is to solve the problems described above.
The rolling-bearing unit for wheel support of this invention comprises a stationary race, rotating race, a plurality of rolling bodies and a pair of seal rings as in the conventionally known rolling-bearing unit for wheel support described above.
Of these, the stationary race is supported by and fastened to the suspension apparatus when used.
Also, the rotating race supports and fastens to the road wheel when used.
Moreover, the rolling bodies are located between the surface of the stationary race tracks and the surface of the rotating race tracks that are formed on the surfaces of the stationary race and rotating race such that they face each other.
Furthermore, the pair of seal rings seals off the openings on both ends of the space between the opposing surfaces of the stationary race and rotating race where the rolling bodies are located.
Also, both seal rings have two to three seal lips made of elastic material.
Particularly, in the case of the rolling-bearing unit for wheel support of this invention, the rotation resistance of both seal rings due to the friction between the seal lips and the opposing surface is a total of 0.06 N·m to 0.4 N·m for both seal rings.
In the case of the rolling-bearing unit for wheel support of this invention constructed as described above, it is possible to maintain the necessary seal performance and to sufficiently reduce the rotation torque. In other words, since the total rotation resistance of the pair of seal rings is up to 0.4 N·m, it is possible to reduce the rotation torque of the entire rolling-bearing unit for wheel support.
On the other hand, since the total rotation resistance of the seal rings is kept at least 0.06 N·m, it is possible to maintain the necessary seal performance (mainly the mud protection performance for preventing muddy water from getting inside the bearing).
In other words, from the results of tests performed by the inventors, it was found that as long as the seal rings had at least two or three seal lips, it is possible to determine the adequacy of the seal performance according to the size of the total rotation resistance of both seal rings regardless of the construction of the seal rings, including the shape and material of the seal rings. Of course, it is important from the aspect of maintaining the seal performance of seal rings with a small rotation resistance that the difference in rotation resistance between the pair of seal rings be small. From this aspect, even for seal rings having a low rotation resistance, it is necessary to maintain a rotation resistance of at least 0.03 N·m. It was found that the necessary seal performance could be obtained when the rotation resistance of the seal rings having lower rotation resistance is maintained at least 0.03 N·m, and when the total rotation resistance of the pair of seal rings is at least 0.06 N·m.
From this, in the case of the rolling-bearing unit for wheel support of this invention in which the total rotation resistance of the pair of seal rings is 0.06 N·m to 0.4 N·m, it was found that it is possible to maintain the necessary seal performance and to sufficiently reduce the rotation torque.
First, two embodiments of the construction of the rolling-bearing unit for wheel support to which this invention is applied is explained. This invention can be applied to the construction shown in
First, the first embodiment shown in
In this embodiment, the total rotation resistance of both seal rings 16c, 16d is regulated to be within the range 0.06 to 0.4 N·m. Also, these seal rings 16c, 16d prevent foreign matter such as muddy water and the like from getting inside the space where the balls 14, 14 are located. The construction of the other parts is substantially the same as the construction shown in
Next, in the case of the second embodiment shown in
Next,
First, the first embodiment shown in
Next, the second embodiment shown in
Next, the third embodiment shown in
Next, the fourth embodiment shown in
Next,
Next, the two embodiments shown in
First, the seal ring 35 of the first embodiment shown in
Next, in the case of the second embodiment shown in
A pair of seal rings is selected from among those shown in
Next, the results of tests performed to check the effect of the invention will be explained. In the tests, a pair of seal rings was selected from among the seven types of seal rings shown in
The results of the tests performed under these conditions are shown in Table 1.
In Table 1, the circled numbers indicate the drawing numbers where the seal rings are shown. For example, {circle around (3)} indicates the seal ring shown in
Next, tests that were performed in order to learn the effects that the seal torque (rotation resistance) has on the rotation torque of the overall rolling-bearing unit are explained. The tests were performed by installing the seal ring shown in
The test results under these conditions are shown in Table 2 below.
As can be clearly seen from Table 2 of the test results, when the seal torque becomes 0.5 N·m or greater, it becomes impossible to keep the rotation torque of the rolling-bearing unit for wheel support sufficiently low.
The rolling-bearing unit for wheel support of this invention is constructed and functions as described above, and reduces the rotation torque of the hub that rotates with the wheel, and contributes to making it possible improve the driving performance of the automobile which centers on the acceleration performance and fuel consumption.
Number | Date | Country | Kind |
---|---|---|---|
2002-042046 | Feb 2002 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP03/01758 | 2/19/2003 | WO | 00 | 11/12/2004 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO03/071146 | 8/28/2003 | WO | A |
Number | Date | Country |
---|---|---|
10-252762 | Sep 1998 | JP |
11-023598 | Jan 1999 | JP |
2001-221243 | Aug 2001 | JP |
Number | Date | Country | |
---|---|---|---|
20050157968 A1 | Jul 2005 | US |