Quick-Set Clevis Joint for a Three-Phase Electric Disconnect Switch Linkage
20230298836 · 2023-09-21
Inventors
- Joseph R. Rostron (Hampton, GA, US)
- Joseph Andreyo (Hampton, GA, US)
- Juan Camilo Gill-Gaviria (Hampton, GA, US)
Cpc classification
H01H2003/3089
ELECTRICITY
International classification
Abstract
A quick-set clevis joint for a three-phase electric disconnect switch linkage includes a clevis housing having a spring chamber axially aligned and disposed around a linkage pipe extending through the clevis housing. A spring positioned within the spring chamber provides play in the linkage. First and second thrust disks compress the spring in a first axial direction with the first thrust disk pushed against a first spring chamber end wall when the linkage pipe moves in the first axial direction while the clevis housing is blocked from moving in the first axial direction. In addition. the first and second thrust disks compress the spring in the second axial direction with the second thrust disk pushed against the second spring chamber end wall when the linkage pipe moves in the second axial direction while the clevis housing is blocked from moving in the second axial direction.
Claims
1. A quick-set clevis joint for a three-phase electric disconnect switch linkage, comprising: a clevis housing comprising a spring chamber axially aligned and disposed around a linkage pipe extending through the clevis housing; a support guide disposed around the linkage pipe, secured to the linkage pipe, and extending through the clevis housing; a spring positioned within the spring chamber allowing the support guide and linkage pipe to slide axially with respect to the clevis housing in first and second axial directions.
2. The quick-set clevis joint of claim 1, wherein: the spring chamber bounded in the first axial direction by a first spring chamber end wall at a junction between the spring chamber and a first channel; the spring chamber bounded in the second axial direction by a second spring chamber end wall at a junction between the spring chamber and a second channel.
3. The quick-set clevis joint of claim 2, further comprising: a first retaining disk captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in first and second axial directions within the first channel and the spring chamber; a second retaining disk captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in first and second axial directions within the second channel and the spring chamber.
4. The quick-set clevis joint of claim 3, further comprising: a first thrust disk captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the first channel by the first spring chamber end wall; a second thrust disk captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the second channel by the second spring chamber end wall.
5. The quick-set clevis joint of claim 4, wherein: the first and second thrust disks is positioned to compress the spring with the first thrust disk pushed against the first spring chamber end wall when the linkage pipe moves in the first axial direction while the clevis housing is blocked from moving in the first axial direction. the first and second thrust disks is positioned to compress the spring with the second thrust disk pushed against the second spring chamber end wall when the linkage pipe moves in the second axial direction while the clevis housing is blocked from moving in the first axial direction.
6. The quick-set clevis joint of claim 1, further comprising a clevis bracket formed by the clevis housing.
7. The quick-set clevis joint of claim 1, further comprising a self-piercing set screw attaching the support guide to the linkage pipe.
8. A quick-set clevis joint for a three-phase electric disconnect switch linkage, comprising: a clevis housing comprising a spring chamber, a first channel, and a second channel axially aligned and disposed around a linkage pipe extending through the clevis housing; a support guide disposed around the linkage pipe, secured to the linkage pipe, and extending through the clevis housing; a spring positioned within the spring chamber allowing the support guide and linkage pipe to slide axially with respect to the clevis housing in first and second axial directions; first and second thrust disks positioned to compress the spring with the first thrust disk pushed against a first spring chamber end wall when the linkage pipe moves in the first axial direction while the clevis housing is blocked from moving in the first axial direction; the first and second thrust disks positioned to compress the spring with the second thrust disk pushed against a second spring chamber end wall when the linkage pipe moves in the second axial direction while the clevis housing is blocked from moving in the first axial direction.
9. The quick-set clevis joint of claim 8, further comprising a clevis bracket formed by the clevis housing.
10. The three-phase electric disconnect switch of claim 8, wherein: the spring chamber is bounded in the first axial direction by first spring chamber end wall at a junction between the spring chamber and the first channel; the spring chamber is bounded in the second axial direction by thesecond spring chamber end wall at a junction between the spring chamber and the second channel.
11. The three-phase electric disconnect switch of claim 10, further comprising: a first retaining disk captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in first and second axial directions within the first channel and the spring chamber; a second retaining disk captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in first and second axial directions within the second channel and the spring chamber.
12. The three-phase electric disconnect switch of claim 11, further comprising: a first thrust disk captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the first channel by the first spring chamber end wall; a second thrust disk captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the second channel by the second spring chamber end wall.
13. The three-phase electric disconnect switch of claim 12, wherein: the first and second thrust disks is positioned to compress the spring with the first thrust disk pushed against the first spring chamber end wall when the linkage pipe moves in the first axial direction while the clevis housing is blocked from moving in the first axial direction; the first and second thrust disks is positioned to compress the spring with the second thrust disk pushed against the second spring chamber end wall when the linkage pipe moves in the second axial direction while the clevis housing is blocked from moving in the first axial direction.
14. The three-phase electric disconnect switch of claim 13, further comprising a clevis bracket formed by the clevis housing.
15. The three-phase electric disconnect switch of claim 9, further comprising a self-piercing set screw attaching the support guide to the linkage pipe.
16. A quick-set clevis joint for a three-phase electric disconnect switch linkage, comprising: a clevis housing comprising a spring chamber, a first channel, and a second channel axially aligned and disposed around a linkage pipe extending through the clevis housing; the spring chamber bounded in a first axial direction by a first spring chamber end wall at a junction between the spring chamber and the first channel; the spring chamber bounded in a second axial direction by a second spring chamber end wall at a junction between the spring chamber and the second channel; a support guide disposed around the linkage pipe, secured to the linkage pipe, and extending through the clevis housing; a first retaining ring captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in the first and second axial directions within the first channel and the spring chamber; a second retaining ring captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in the first and second axial directions within the second channel and the spring chamber; a first thrust disk captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the first channel by the first spring chamber end wall; a second thrust disk captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the second channel by the second spring chamber end wall; a spring positioned within the spring chamber captured between the first and second thrust disks allowing the support guide and linkage pipe to slide axially with respect to the clevis housing in first and second axial directions; the first and second thrust disks movable within the spring chamber to compress the spring in the first axial direction with the first thrust disk pushed against the first spring chamber end wall when the linkage pipe moves in the first axial direction while the clevis housing is blocked from moving in the first axial direction; the first and second thrust disks movable within the spring chamber to compress the spring in the second axial direction with the second thrust disk pushed against the second spring chamber end wall when the linkage pipe moves in the second axial direction while the clevis housing is blocked from moving in the second axial direction.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0009] The numerous advantages of the invention may be better understood with reference to the accompanying figures in which:
[0010]
[0011]
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[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0020] The problem described above is mitigated by a quick-set clevis joint for a three-phase electric disconnect switch linkage. In a representative embodiment, the quick-set clevis joint includes a clevis housing including a spring chamber, a first channel, and a second channel axially aligned and disposed around a linkage pipe extending through the clevis housing. The spring chamber is bounded in a first axial direction by a first spring chamber end wall at a junction between the spring chamber and the first channel. Similarly, the spring chamber is bounded in a second axial direction by a second spring chamber end wall at a junction between the spring chamber and the second channel. A support guide is disposed around the linkage pipe, secured to the linkage pipe, and extends through the clevis housing. While compression springs are utilized in the specific embodiments described below, tension springs, elastic springs and other suitable types of springs may be utilized as a matter of design choice.
[0021] A first retaining ring is captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in the first and second axial directions within the first channel and the spring chamber. Similarly, a second retaining ring is captured within the clevis housing, attached to the linkage pipe, sized and positioned to move in the first and second axial directions within the second channel and the spring chamber. A first thrust disk is captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the first channel by the first spring chamber end wall. Similarly, a second thrust disk is captured within the clevis housing, axially movable with respect to the linkage pipe, sized and positioned to move in the first and second axial directions within the spring chamber, while blocked from moving into the second channel by the second spring chamber end wall.
[0022] A spring is positioned within the spring chamber captured between the first and second thrust disks allowing the support guide and linkage pipe to slide axially with respect to the clevis housing in the first and second axial directions. The first and second thrust disks are movable within the spring chamber to compress the spring in the first axial direction with the first thrust disk pushed against the first spring chamber end wall when the linkage pipe moves in the first axial direction while the clevis housing is blocked from moving in the first axial direction. In addition. the first and second thrust disks are movable within the spring chamber to compress the spring in the second axial direction with the second thrust disk pushed against the second spring chamber end wall when the linkage pipe moves in the second axial direction while the clevis housing is blocked from moving in the second axial direction.
[0023]
[0024]
[0025] As the quick-set clevis joints 30a, 30b and 30c are similar, the following description refers generally to a single quick-set clevis joint 30 as shown the remaining figures. The quick-set clevis joint 30 improves upon the conventional clevis joint by creating some “play” in the clevis joint between a linkage pipe and its associated operating lever. More specifically, the quick-set clevis joint 30 includes a spring-loaded sliding connection between the linkage pipe and its associated operating lever allowing the linkage pipe to slide axially within a connection range while remaining in operational contact with operating lever. This alleviates the need for precise calibration of the length of the linkage pipe required to move the operating lever to its hard-stop, fully-open or fully-closed positions. As a result, the technician only needs to adjust the length of the linkage pipe “close enough” to get it within the connection range of the quick-set clevis joint, and the “play” in the clevis joint afforded by the of the quick-set clevis joint “makes up the difference” required to move the operating lever all the way to its hard-stop, fully-open or fully-closed positions. In other words, the plunger action of the quick-set clevis joint 30 pushes the operating lever to its hard-stop position so long as the quick-set clevis joint is positioned within its connection range with the operating lever. This results in a tremendous advantage eliminating the need for precise calibration of the length of the linkage pipe when setting up the linkage.
[0026]
[0027]
[0028] The spring 50 is axially captured between a first thrust disk 51a and second thrust disk 51b, conceptually similar to conventional washers, which are also positioned around the linkage pipe 32. The thrust disks 51a and 51b are axially movable along the linkage pipe 32 and captured between a first retaining ring 52a and second retaining ring 52b. The thrust disks 51a and 51b are floating (i.e., axially movable) on the linkage pipe 32, while the retaining rings 52a and 52b are firmly attached to the linkage pipe. The first thrust disk 51a fits within the spring chamber 43 but is larger in diameter than the first channel 44a. This allows the first thrust disk 51a to travel axially within the spring chamber 43, while it is too large to enter the first channel 44a. The first retaining ring 52a, on the other hand, can travel axially within the spring chamber 43 as well the first channel 44a. In addition, the first retaining ring 52a is small enough to move axially within the first channel 44a, yet too large to move past the axial ends of the clevis housing 41, capturing the first retaining ring 52a within the clevis housing.
[0029] Similarly, the second thrust disk 51b fits within the spring chamber 43 but is larger in diameter than the second channel 44b. This allows the second thrust disk 51b to travel axially within the spring chamber 43, while it is too large to enter the second channel 44b. Thee retaining ring 52b can travel axially within the spring chamber 43 as well the second channel 44b. In addition, the second retaining ring 52b is small enough to move axially within the second channel 44b, yet too large to move past the axial ends of the clevis housing 41, capturing the second retaining ring 52b within the clevis housing. This configuration allows the support guide 45, and thus the linkage pipe 36, to remain captured on the linkage pipe 32, yet able to move axially with the linkage pipe like a plunger biased toward the center of the clevis housing 41 in both axial directions (to the left and right in
[0030] Similarly, the spring 50 is compressed between the thrust disks 51a and 51b with the second thrust disk 51b pushed against the second spring chamber end wall 53b when the linkage pipe 32 moves in the second axial direction 55a while the clevis housing 41 is blocked from moving in the second axial direction by a hard stop of the clevis housing. This occurs when the operating lever 36 reaches its hard stop position in the counter-clockwise direction with the linkage pipe 32 at its hard stop position in the first axial direction (to the right in
[0031]
[0032] Similarly, when the support guide 45 is moved in the second axial direction 55b (to the right in
[0033] The quick-set clevis joint linkage itself is not tied to any particular switch configuration and may be employed with any suitable three-phase linkage. In view of the foregoing, it will be appreciated that present invention provides significant improvements distribution automation system for high voltage electric power transmission and distribution systems. The foregoing relates only to the exemplary embodiments of the present invention, and numerous changes may be made therein without departing from the spirit and scope of the invention as defined by the following claims.