1. Field of the Invention
The present invention relates to a brake of a moving member supported on a fluid bearing.
2. Description of the Prior Art
In order to stop operation of a rotating body and a direct-acting body such as a rotating shaft, a rotating table, and a direct-acting slide, a brake is normally used. This brake stops moving operation of the rotating body or the direct-acting body by pressing a brake shoe, a brake band, or a brake pad against a member such as a brake drum and a brake disk rotating or moving together with the rotating body or the direct-acting body. In a case in which a fluid bearing for supporting a movable portion without contact by pressurized fluid is used as a bearing for the rotating body or the direct-acting body, the above-described brake is provided to brake the rotating body or the direct-acting body.
It is disadvantageous to provide the brake for the moving member such as the rotating shaft and the direct-acting slide in respects of cost and space efficiency.
In a brake according to the present invention in a rotating shaft or a direct-acting slide supported by a fluid bearing, fluid supplied to one of opposed bearing faces of the fluid bearing is interrupted, the rotating shaft or the direct-acting slide is pressed against the bearing face where the fluid is interrupted by pressure of the fluid on the bearing face where the fluid is not interrupted, and a brake face provided to the rotating shaft or the direct-acting slide is brought into contact with a static portion to thereby brake the rotating shaft or the direct-acting slide.
With the brake of the invention, the rotating shaft or the direct-slide can be braked by only selectively interrupting any of the plurality of paths of the pressurized fluid toward the bearing faces of the fluid bearing. Therefore, it is possible to provide a low-cost brake with a simple structure.
The above and other objects and features of the present invention will become apparent from descriptions of the following embodiments by reference to the accompanying drawings, wherein:
A flange-shaped disk 1a is integrally formed with a rotating shaft 1. A bearing member 2 is mounted in such a manner as to surround an outer peripheral face and upper and lower end faces of the disk 1a. In the bearing member 2, first to third passages 3a to 3c through which fluid such as pressurized air passes are formed.
From each the first passage 3a, the fluid is injected toward the upper end face of the disk 1a from a nozzle portion 4 formed at a tip end portion of the passage 3a. From each the second passage 3b, the fluid is injected toward the lower end face of the disk 1a from a nozzle portion 4 formed at a tip end portion of the passage 3b. In this way, thrust bearing portions are formed at the respective portions in the first and second passages 3a and 3b. In other words, faces of the bearing member 2 opposed to the upper and lower end faces of the disk 1a form thrust bearing faces.
Furthermore, the fluid is injected toward the peripheral face of the disk 1a from nozzle portions 4 formed at tip end portions of the third passages 3c. In this way, radial bearing portions are formed at respective portions in the third passages 3c. In other words, faces of the bearing member 2 opposed to the peripheral faces of the disk 1a form radial bearing faces of the fluid bearing.
Normally, the fluid such as pressurized air is supplied to the respective passages 3a to 3c, the fluid is injected from the nozzle portion 4 provided to the tip end of each of the passages 3a to 3c, a gap between the bearing member 2 and the disk 1a is filled with the pressurized fluid, and the rotating shaft 1, the disk 1a, and the bearing member 2 are kept from contact with each other to thereby form the fluid bearing.
On the other hand, in order to brake the rotating shaft 1 when it is rotating, fluid supply to the second passages 3b formed in the thrust bearing face on the lower face side of the disk 1a is interrupted. A state at this time is shown in
As described above, in the first embodiment, the static portion 5 is disposed in such a position as to face the brake member 1b attached to the rotating shaft 1 and valves (not shown) for interrupting fluid supply to the second passages 3b are provided to thereby form the brake. As a result, the compact brake which does not especially require a space can be obtained easily at low cost.
In the above-described first embodiment, in order to brake rotation of the rotating shaft 1, the fluid supply from the second passages 3b is stopped to stop the fluid supply to the thrust bearing face on the lower face side of the disk 1a. In stead of that, fluid supply from the first passages 3a may be interrupted to stop fluid supply toward the thrust bearing face on the upper face side of the disk 1a, the rotating shaft 1 and the disk 1a may be pushed and moved upward by pressure of the fluid supplied from the second passages 3b, and the static portion 5 provided above and the brake member 1b attached to the rotating shaft 1 may be brought into contact with each other to thereby apply the brakes.
Furthermore, because the rotating shaft 1 moves downward or upward as described above by interruption of fluid supply to the second passages 3b or interruption of fluid supply to the first passages 3a, the static portion 5 with which the rotating shaft 1 comes in contact when the shaft 1 moves upward and the static portion 5 with which the rotating shaft 1 comes in contact when the shaft 1 moves downward may be provided, the brake members 1b opposed to the respective static portions 5 may be attached to the rotating shaft 1, and fluid supply to the second passages 3b or the first passages 3a may be selectively interrupted as required to move the rotating shaft 1 downward or upward to thereby apply the brakes.
Although the rotating shaft 1 is in a vertical orientation in the case shown in
On opposite sides of a base 12 of the direct-acting slide mechanism, recessed portion grooves 12a extending in a direction of direct action of a direct-acting slide portion 11 (in a direction perpendicular to a paper face of
Moreover, in the second embodiment, first to third passages 13a to 13c to which pressurized fluid is supplied are formed in the upper and lower faces and the tip end vertical faces of the projecting portions 11a of the direct-acting slide portion 11. These passages 13a to 13c are formed with nozzle portions 14 for injecting fluid to the fluid bearing faces.
The fluid supplied to each the first passage 13a is injected toward the upper inner face of the recessed portion groove 12a of the base 12 through the nozzle portion 14. The fluid supplied to each the second passage 13b is injected toward the lower inner face of the recessed portion groove 12a through the nozzle portion 14. The fluid supplied to each the third passage 13c is injected toward the vertical face of the recessed portion groove 12a through the nozzle portion 14.
As a result, the pressurized fluid is supplied to the respective fluid passages 13a to 13c and injected from the respective nozzle portions 14 as shown in
Brake members 11b are attached to a lower portion of the direct-acting slide portion 11 and static portions 15 are fixed to positions opposed to the brake members 11b of the base 12.
If the direct-acting slide portion 11 is driven while supplying the pressurized fluid to the respective fluid passages 13a to 13c to keep the direct-acting slide portion 11 from contact with the base 12 as shown in
In order to apply the brakes to and stop the direct-acting slide portion 11 which is moving linearly, fluid supply to the second passages 13b is interrupted and fluid supply to at least the first passages 13a is continued. In other words, fluid supply toward the fluid bearing faces of the lower inner faces in the recessed portion grooves 12a of the base 12 is interrupted while fluid supply toward the upper fluid bearing faces of the recessed portion grooves 12a is continued. As a result, the direct-acting slide portion 11 is pushed downward by pressure fluid acting on the upper faces of the projecting portions 11a and moves down under its own weight and the brake members 11b attached to the lower face of the direct-acting slide portion 11 and the static portions 15 fixed to the base 12 come in contact with each other as shown in
In this second embodiment, the brake members 11b may be provided to an upper face or the like of the direct-acting slide portion 11 and the static portions 15 may be disposed to face the brake members 11b to thereby apply the brakes. In other words, by interrupting fluid supply to the first passages 13a while continuing fluid supply to the second passages 13b, fluid supply to the fluid bearing faces of the upper inner faces of the recessed portion grooves 12a of the base 12 is interrupted. Then, the direct-acting slide portion 11 is pushed upward by the pressure fluid acting on the lower faces of the projecting portions 11a of the direct-acting slide portion 11 and the brake members 11b provided to the upper face or the like of the direct-acting slide portion 11 and the static portions 15 are brought into contact with each other to thereby apply the brakes to the direct-acting slide portion 11 to stop movement of the portion 11.
It is also possible to mount the brake members 11b to side portions of the direct-acting slide portion 11 with the static portions 15 disposed to face the brake members 11b. The fluid supply to either one of the left and right third passages 13c for supplying the fluid to the vertical face portions of the left and right recessed portion grooves 12a of the base 12 in
In the second embodiment, as described above, by selectively interrupting the first to third passages 13a to 13c for supplying fluid to the fluid bearing portions to move the direct-acting slide portion 11 upward, downward, leftward, or rightward, it is possible to apply the brakes to the direct-acting slide portion 11. Therefore, if the static portions 15 are provided above and below or on the left and right sides and the brake members 1b are provided to the direct-acting slide portion 11 while opposed to the static portions 15, the direct-acting slide portion 11 can be moved upward, downward, leftward, or rightward and the brake can be applied to the portion 11 by selectively interrupting any of the first to third passages 13a to 13c for supplying fluid to the bearing faces.
Although the passages 13a to 13c and the nozzle portions 4 for supplying the fluid for forming the fluid bearing toward the fluid bearing faces are provided to the direct-acting slide portion 11 in the above-described second embodiment, they may be provided to the base 12.
In the third embodiment, as shown in
In the third embodiment, it is also possible to interrupt the fluid supply to the first passages 3a and to push the disk 1a and the rotating shaft 1 upward in
In the third embodiment, the two opposed thrust bearing faces can selectively be used as the brake face. For example, the two thrust bearing faces can alternately be used as the brake face.
Like the second embodiment, if pressurized fluid is supplied to the first to third passages 13a to 13c, a fluid bearing is formed and a direct-acting slide portion 11 is supported while kept from contact with a base 12 and able to slide as shown in
In the fourth embodiment, as described in the second embodiment, by interrupting fluid supply to the first passages 13a while continuing fluid supply to the second passages 13b, the direct-acting slide portion 11 is pushed upward and an upper face of projecting portions 11a of the direct-acting slide portion 11 are brought into contact with the upper bearing faces in the recessed portion grooves 12a of the base 12 to thereby apply the brakes. It is also possible that the fluid supply to either one of the left and right passages 13c for supplying the fluid to vertical face portions of the left and right recessed portion grooves 12a in
In the fourth embodiment, like the second embodiment, it is possible to apply the brakes by moving the direct-acting slide portion 11 upward, downward, leftward, or rightward and the brake face can be selected.
Number | Date | Country | Kind |
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164247/2004 | Jun 2004 | JP | national |