1. Field of the Invention
The present invention relates to a fluid bearing.
2. Description of the Related Art
Normally, in order to stop the operation of rotary bodies or linear motion bodies such as rotary shafts, rotary tables and linear motion slides, a braking device is used. The braking device stops the movement of the rotary body or linear motion body by pressing a brake shoe or a brake band and a brake pad against a member such as a brake drum or a brake disk that rotates or moves linearly as a single unit together with the rotary body or the linear motion body.
At the same time, as a bearing for the rotating body or the linear motion body, a fluid bearing that contactlessly supports moving parts using a fluid under pressure is well known. In the braking of such a rotary body or a linear motion body using this fluid bearing as well, a braking device is commonly used.
In addition, a method is known in which, in a mechanism that supports a slide member with a hydrostatic bearing and slides a slide member, when the rigidity of the bearing is weakened and pressurized fluid is supplied to the bearing, the bearing elastically deforms and a gap is formed between the bearing and a ram to smoothen the slide of the slide mechanism and the supply of pressurized fluid is stopped, causing the deformation of the bearing to disappear and the bearing to tighten on the slide member so as to constrict the movement of the slide member and providing braking, and a slide device is known in which a guided member is provided on a table that moves while being guided by a guide base, such that, when a hydrostatic bearing is formed between the bottom of the table and the top of the guide pedestal as well as between the guided member and the guide base and pressurized fluid is supplied to the hydrostatic bearing, a gap is formed between the bottom of the table and the top of the guide base so as to raise the table, and further, when the guided member elastically deforms to form a gap between the guided member and the guide base so as to permit the table to move while being guided in the direction of movement of the table and the supply of pressurized fluid is stopped, the weight of the table causes the bottom of the table to contact the top of the guide base, and moreover, the deformation of the guided member disappears and the guided member and the guide base contact each other so as to dampen the movement of the table (for example, JP 06-094031A).
However, providing a braking device for the rotary shaft and linear motion slide moving members as is commonly used conventionally has proportionate disadvantages in terms of cost and in terms of efficient use of space.
With respect to the foregoing point, the slide device described in JP 06-094031A utilizes hydrostatic bearing pressurized fluid in a structure in which a guide surface of the hydrostatic bearing is compressed, and does not provide a special braking device. However, since the guide surfaces of the fluid bearing forms the braking surfaces, in the course of countless compressing and braking actions the guide surfaces becomes scratched, uneven and warped, causing a risk of the fluid bearing surface biting or of operational accuracy deteriorating.
The present invention provides a fluid bearing capable of braking without requiring a special braking device and without affecting fluid bearing surfaces.
According to one aspect of the present invention, the fluid bearing comprises: a slide member having a bearing surface; and a guide member having a bearing surface for supporting and guiding the slide member linearly movably with fluid supplied between the bearing surfaces of the guide member and the slide member, wherein at least one of the slide member and the guide member has a deformable portion that deforms with pressure of the fluid supplied between the bearing surfaces, and both of the slide member and the guide member have braking surfaces provided separate from the bearing surfaces to come in contact with each other when pressure of the fluid supplied between at least part of the bearing surfaces is decreased below a predetermined value such that deformation of the deformable portion is reduced. When fluid of sufficient pressure is supplied between the bearing surfaces of the slide member and the guide member, a gap appears between the braking surfaces, and the slide member becomes movably supported in non-contact with the guide member. When the pressure of the fluid is decreased, the braking surfaces press against each other to brake the movement of the slide member.
According to another aspect of the present invention, the fluid bearing comprises: a rotary member having a bearing surface; and a stationary member having a bearing surface for rotatably supporting the rotary member with fluid supplied between the bearing surfaces of the stationary member and the rotary member, wherein at least one of the rotary member and the stationary member has a deformable portion that deforms with pressure of the fluid supplied between the bearing surfaces, and both of the rotary member and the stationary member have braking surfaces provided separate from the bearing surfaces to come in contact with each other when pressure of the fluid supplied between at least par of the bearing surfaces is decreased below a predetermined value such that deformation of the deformable portion is reduced. When fluid of sufficient pressure is supplied between the bearing surfaces of the rotary member and the stationary member, a gap appears between the braking surfaces, and the rotary member becomes rotatably supported in non-contact with the stationary member. When the pressure of the fluid is decreased, the braking surfaces press against each other to brake the rotation of the rotary member.
As a result, the present invention achieves a fluid bearing that operates simply by adjusting the pressure of the fluid that is supplied under pressure to the fluid bearing, without the need for a special braking device, and that is capable of braking simply and at low cost.
In addition, since the braking surface is provided separately from the bearing surface of the fluid bearing, there is no risk of the fluid bearing surface biting or of operational accuracy deteriorating.
a and 2b are diagrams illustrating the operation of the fluid bearing of the present invention using central sectional views of the first embodiment;
a and 4b are diagrams illustrating the operation of the fluid bearing of the present invention using central sectional views cut along the central axis of rotation of a rotary member of the second embodiment.
A slide member 10 is formed so as to enclose a guide member 11 except for a portion of the bottom edge thereof, with opposed surfaces of the slide member 10 and the guide member 11 forming fluid bearing surfaces 15 (indicated by hatching in
A portion of the bottom of the guide member 11 protrudes from an opening in the bottom edge of the slide member 10, so that lateral wall surfaces of the protruding portion of the guide member 11 and corresponding inner lateral wall surfaces of the opening in the slide member 10 are disposed opposite each other, so as to form braking surfaces 12, 13, In other words, the lateral wall surfaces of the protruding guide member 11 form guide member side braking surfaces 12 and the inner lateral wall surfaces of the opening in the slide member 10 form slide member side braking surfaces 13. In addition, so that these two braking surfaces 12, 13 are alternatively pressed against and separated from each other by the pressure of a fluid supplied to the fluid bearing surfaces 15, in this embodiment a deformable portion 14 is provided in the slide member 10.
As shown in
In this first embodiment of the present invention, the dimensions and materials of each portion of the slide member 10 are designed so that the deformable portion 14 deforms under pressure from the inside toward the outside when fluid of an adequate pressure is supplied to the fluid bearing surfaces 15. As a result, when fluid of an adequate pressure is supplied to the fluid bearing surfaces 15, the braking surfaces 13 of the inner lateral wall surfaces separate from the braking surfaces 12 of the slide member 10. It should be noted that, in
When fluid of an adequate pressure is supplied to the fluid bearing surfaces 15, as shown in
It should be noted that, although in the first embodiment described above the guide member 11 is fixed and the slide member 10 moves, alternatively, the slide member 10 may be fixed and treated as the stationary member while the guide member 11 is made into the moving member. In other words, in
In addition, although in the embodiment described above the deformable portion that is deformed by the pressurized fluid is provide on the slide member, alternatively the deformable portion may be provided on either the slide member or the guide member or on both the slide member and the guide member, such that, when fluid of an adequate pressure is supplied to the fluid bearing surfaces, this deformable portion deforms so as to permit a gap to be formed between the two braking surfaces.
A disc part 26 with a portion of expanded diameter is provided on a rotary shaft that comprises a rotary member 20. A stationary member 21 provided with surfaces disposed opposite the top and bottom as well as the periphery of the disc part 26 is provided, such that the top and bottom as well as the periphery of the disc part 26 comprise fluid bearing surfaces (portions indicated by hatching in
In addition, the dimensions of each part of the stationary member 21 are designed so that a deformable portion 24 deforms and a gap appears between the two braking surfaces 22, 23 as shown in
Thus, as described above, when fluid of an adequate pressure is supplied to the fluid bearing surfaces 25, as shown in
It should be noted that, in this second embodiment as well, the rotary member 20 and the stationary member 21 may be reversed. In other words, in
Number | Date | Country | Kind |
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241673/2005 | Aug 2005 | JP | national |