FULLY INTEGRATED MANUAL OPEN MECHANISM FOR MVDC HYBRID CIRCUIT BREAKER
20230290588 · 2023-09-14
Assignee
Inventors
- Tyler Holp (Coraopolis, PA, US)
- Brad R. Leccia (Bethel Park, PA, US)
- Douglas Michael Brandt (Wampum, PA, US)
- Logan Weigle (McKees Rocks, PA, US)
- Xin Zhou (Wexford, PA)
Cpc classification
H01H33/6661
ELECTRICITY
H01H2033/6667
ELECTRICITY
International classification
Abstract
A manual opening mechanism for use with an isolation switch of a circuit interrupter is fully integrated into the circuit interrupter. The manual opening mechanism includes a rotating handle that is accessible from the front panel of the circuit interrupter. Rotating the handle applies force to the centerline of the isolation switch drive shaft, which prevents uneven loading and thus optimizes robustness during manual opening of the isolation switch. In addition, the handle has an ergonomic design, and is proportioned to minimize the force that an operator must apply to the handle in order to open the isolation switch.
Claims
1. An isolation switch for use with a hybrid circuit interrupter, the isolation switch comprising: a fixed separable contact; a moving assembly, the moving assembly comprising: a moving stem comprising a moving separable contact; and a drive rod assembly coupled to the moving stem, the drive rod assembly comprising a drive shaft; and a manual opening assembly, the manual opening assembly comprising: a drive shaft coupling coupled to a distal end of the drive shaft, the drive shaft coupling comprising a first end and a second end disposed opposite the first end, the first end facing toward the moving separable contact; and a manual opening mechanism, the manual opening mechanism comprising: a body comprising two arms coupled to one another; and a handle operatively coupled to the body, wherein the moving assembly is structured to move the moving separable contacts between a closed state and an open state, wherein the body of the manual opening mechanism is interposed between the first end and the second end of the drive shaft coupling, and wherein the manual opening mechanism is structured to actuate the moving assembly to move from the closed state to the open state when the handle is rotated.
2. The isolation switch of claim 1, further comprising: an actuator housing that houses a portion of the moving assembly, wherein a first end of the body of the manual opening mechanism is coupled to the handle, and wherein a second end of the body of the manual opening mechanism disposed opposite the first end of the body is coupled to the actuator housing.
3. The isolation switch of claim 2, wherein the second end of the body comprises a u-bracket and a pivoting pin, wherein the pivoting pin couples a first of the two arms to a first leg of the u-bracket and couples a second of the two arms to a second leg of the u-bracket such that the two arms are able to pivot relative to the u-bracket, and wherein a base of the u-bracket is fixedly coupled to the actuator housing.
4. The isolation switch of claim 2, wherein the first end of the body comprises a number of rotating pins that couple the two arms to one another, and wherein at least one of the number of rotating pins couples the two arms to the handle such that the handle is able to rotate relative to the two arms.
5. The isolation switch of claim 3, wherein the first end of the body comprises a number of rotating pins that couple the two arms to one another, and wherein at least one of the number of rotating pins couples the two arms to the handle such that the handle is able to rotate relative to the two arms.
6. The isolation switch of claim 5, wherein each of the two arms comprises both a proximal edge and a distal edge, the proximal edge facing toward the fixed separable contact and the moving separable contact, and the distal edge being disposed opposite the proximal edge, wherein the distal edge of each of the two arms is disposed opposite the proximal edge and comprises a protrusion, wherein the drive shaft coupling comprises a base with an impact surface disposed to face and be adjacent to the protrusion of each of the two arms, wherein the manual opening assembly is structured such that, when the handle is rotated, force is applied by the protrusion of each of the two arms to a centerline of the drive shaft via the impact surface of the drive shaft coupling base.
7. The isolation switch of claim 6, wherein each of the two arms comprises a handle-adjacent portion coupled to the handle, wherein each of the two arms comprises an actuating portion coupled to the actuator housing, wherein each of the two arms comprises a sloped edges coupling the handle-adjacent portion to the actuating portion. wherein, for each of the two arms, the handle-adjacent portion and the actuating portion are structured such that no lines coincident with an exterior surface of the handle-adjacent portion and parallel to the proximal edge can be co-linear with any lines coincident with an exterior surface of the actuating portion and parallel to the proximal edge.
8. The isolation switch of claim 1, wherein the manual opening mechanism is structured to require less than 10 pounds force to rotate the handle in order to actuate the moving assembly to move from the closed state to the open state.
9. The isolation switch of claim 1, wherein the isolation switch is a vacuum switch.
10. A hybrid circuit interrupter, the circuit interrupter comprising: a line conductor structured to connect a load to a power source; a hybrid switch assembly disposed between the power source and the load, the hybrid switch assembly comprising: mechanical separable contacts structured to move between a closed state and an open state; and an electronic interrupter comprising a number of electronic components, the electronic interrupter being structured to commutate current when a fault is detected on the line conductor; an operating mechanism structured to open and close the separable contacts; an electronic trip unit structured to monitor the line conductor for fault conditions and actuate the operating mechanism; and a vacuum isolation switch disposed between the hybrid switch assembly and the load, the vacuum isolation switch comprising: an isolation fixed separable contact; a moving assembly, the moving assembly comprising: a moving stem comprising an isolation moving separable contact; and a drive rod assembly coupled to the moving stem, the drive rod assembly comprising a drive shaft; and a manual opening assembly, the manual opening assembly comprising: a drive shaft coupling coupled to a distal end of the drive shaft, the drive shaft coupling comprising a first end and a second end disposed opposite the first end, the first end facing toward the isolation moving separable contact; and a manual opening mechanism, the manual opening mechanism comprising: a body comprising two arms coupled to one another; and a handle operatively coupled to the body; and wherein the isolation switch moving assembly is structured to move the isolation moving separable contact between a closed state and an open state, wherein the body of the manual opening mechanism is interposed between the first end and the second end of the drive shaft coupling, wherein the manual opening mechanism is structured to actuate the isolation switch moving assembly to move from the closed state to the open state when the handle is rotated, and wherein the isolation switch is disposed along the line conductor such that opening the isolation switch disconnects the load from the power source.
11. The hybrid circuit interrupter of claim 10, further comprising: a control module in electrical communication with the electronic trip unit, the hybrid switch assembly, and the vacuum isolation switch, a solenoid disposed in proximity to the drive shaft and in electrical communication with the control module, wherein the control module is configured to power off the electronic interrupter after commutation of current to the electronic interrupter and to supply current to the solenoid to actuate the isolation switch moving assembly in order to open the vacuum isolation switch under a number of predetermined conditions, and wherein the manual opening assembly is structured to not interfere with movement of the isolation switch moving assembly when the drive shaft assembly is actuated to move by the solenoid.
12. The hybrid circuit interrupter of claim 10, wherein the manual opening assembly is configured such that the handle cannot be moved if the mechanical separable contacts are closed such that power is flowing from the power source to the load.
13. The hybrid circuit interrupter of claim 10, wherein the vacuum isolation switch further comprises an actuator housing that houses a portion of the moving assembly, wherein a first end of the body of the manual opening mechanism is coupled to the handle, and wherein a second end of the body of the manual opening mechanism disposed opposite the first end of the body is coupled to the actuator housing, wherein the second end of the body comprises a u-bracket and a pivoting pin, wherein the pivoting pin couples a first of the two arms to a first leg of the u-bracket and couples a second of the two arms to a second leg of the u-bracket such that the two arms are able to pivot relative to the u-bracket, and wherein a base of the u-bracket is fixedly coupled to the actuator housing.
14. The hybrid circuit interrupter of claim 13, wherein the first end of the body of the manual opening mechanism comprises a number of rotating pins that couple the two arms to one another, and wherein at least one of the number of rotating pins couples the two arms to the handle such that the handle is able to rotate relative to the two arms.
15. The hybrid circuit interrupter of claim 10, wherein each of the two arms of the manual opening assembly comprises both a proximal edge and a distal edge, the proximal edge facing toward the isolation moving separable contact, and the distal edge being disposed opposite the proximal edge, wherein the distal edge of each of the two arms is disposed opposite the proximal edge and comprises a protrusion, wherein the drive shaft coupling comprises a base with an impact surface disposed to face and be adjacent to the protrusion of each of the two arms, wherein the manual opening assembly is structured such that, when the handle is rotated, force is applied by the protrusion of each of the two arms to a centerline of the drive shaft via the impact surface of the drive shaft coupling base.
16. The hybrid circuit interrupter of claim 15, wherein each of the two arms comprises a handle-adjacent portion coupled to the handle, wherein each of the two arms comprises an actuating portion coupled to the actuator housing, wherein each of the two arms comprises a sloped edges coupling the handle-adjacent portion to the actuating portion. wherein, for each of the two arms, the handle-adjacent portion and the actuating portion are structured such that no lines coincident with an exterior surface of the handle-adjacent portion and parallel to the proximal edge can be co-linear with any lines coincident with an exterior surface of the actuating portion and parallel to the proximal edge.
17. The hybrid circuit interrupter of claim 10, wherein the circuit interrupter is a medium voltage DC circuit interrupter, and wherein the manual opening mechanism is structured to require less than 10 pounds force to rotate the handle in order to actuate the moving assembly to move from the closed state to the open state.
18. An isolation switch for use with a hybrid circuit interrupter, the isolation switch comprising: a fixed separable contact; a moving assembly, the moving assembly comprising: a moving stem comprising a moving separable contact; and a drive rod assembly coupled to the moving stem, the drive rod assembly comprising a drive shaft; a solenoid disposed in proximity to the drive shaft and in electrical communication with a control module, and a manual opening assembly, the manual opening assembly comprising: a drive shaft coupling coupled to a distal end of the drive shaft, the drive shaft coupling comprising a first end and a second end disposed opposite the first end, the first end facing toward the moving separable contact; and a manual opening mechanism, the manual opening mechanism comprising: a body comprising two arms coupled to one another; and a handle operatively coupled to the body, wherein the solenoid is configured to receive power from the control module and to actuate the moving assembly in order to open the vacuum isolation switch under a number of predetermined conditions, wherein the manual opening assembly is structured to not interfere with movement of the isolation switch moving assembly when the drive shaft assembly is actuated to move by the solenoid, wherein the moving assembly is structured to move the moving separable contacts between a closed state and an open state, and wherein the manual opening mechanism is structured to actuate the moving assembly to move from the closed state to the open state when the handle is rotated.
19. The isolation switch of claim 18, wherein the body of the manual opening mechanism is interposed between the first end and the second end of the drive shaft coupling, wherein each of the two arms comprises both a proximal edge and a distal edge, the proximal edge facing toward the moving separable contact, and the distal edge being disposed opposite the proximal edge, wherein the distal edge of each of the two arms is disposed opposite the proximal edge and comprises a protrusion, wherein the drive shaft coupling comprises a base with an impact surface disposed to face and be adjacent to the protrusion of each of the two arms, wherein the manual opening assembly is structured such that, when the handle is rotated, force is applied by the protrusion of each of the two arms to a centerline of the drive shaft via the impact surface of the drive shaft coupling base.
20. The isolation switch of claim 18, wherein the manual opening mechanism is structured to require less than 10 pounds force to rotate the handle in order to actuate the moving assembly to move from the closed state to the open state.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] A full understanding of the invention can be gained from the following description of the preferred embodiments when read in conjunction with the accompanying drawings in which:
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
DETAILED DESCRIPTION OF THE INVENTION
[0018] Directional phrases used herein, such as, for example, left, right, front, back, top, bottom and derivatives thereof, relate to the orientation of the elements shown in the drawings and are not limiting upon the claims unless expressly recited therein.
[0019] As employed herein, the statement that two or more parts are “coupled” together shall mean that the parts are joined together either directly or joined through one or more intermediate parts.
[0020] As employed herein, when ordinal terms such as “first” and “second” are used to modify a noun, such use is simply intended to distinguish one item from another, and is not intended to require a sequential order unless specifically stated.
[0021] As employed herein, the term “number” shall mean one or an integer greater than one (i.e., a plurality).
[0022] As employed herein, the term “processing unit” or “processor” shall mean a programmable analog and/or digital device that can store, retrieve, and process data; a microprocessor; a microcontroller; a microcomputer; a central processing unit; or any suitable processing device or apparatus.
[0023]
[0024] The circuit interrupter 1 further includes a hybrid switch assembly 6, an operating mechanism 8, an electronic trip unit 10, and a control power and logic module 12 (referred to hereinafter as “control module 12” for brevity) in electrical communication with the trip unit 10. The hybrid switch assembly 6 comprises a set of mechanical separable contacts 14 and an electronic interrupter 15. In an exemplary embodiment of the disclosed concept, the mechanical contacts 14 are the fixed and moving contacts of a vacuum interrupter 15 (vacuum interrupter 15 being shown in
[0025] The hybrid switch assembly 6 in
[0026] The electronic interrupter 15 comprises a number of electronic components with switching functionality, such as transistors. The hybrid switch assembly 6 is configured such that, when current is commutated from the mechanical contacts 14 to the electronic interrupter 15 (i.e. due to the detection of a fault by the trip unit 10), the mechanical contacts 14 are able to be opened rapidly with a reduced risk of arcing such that current cannot reflow through the mechanical contacts 14 after current is interrupted by the electronic interrupter 15. In addition to the trip unit 10, the control module 12 is also in electrical communication with the electronic interrupter 15 and an isolation switch 18. When current is commutated to the electronic interrupter 15, the control module 12 is configured to execute a tripping sequence that only allows the electronic interrupter 15 to remain powered on for a short interval of time and deactivates the electronic interrupter 15 after the prescribed interval of time, such that the line connection between the power source 3 and the load 4 is broken shortly after the current is commutated. Limiting the interval of time during which current can flow through the electronic interrupter 15 is important, as the electronic components of electronic interrupter 15 are not intended to withstand sustained continuous current flow. By enabling current to commutate past the mechanical contacts 14 and flow through the electronic interrupter 15 for only a limited time before the connection between the power source 3 and load 4 is completely opened, the effects of arcing are reduced. In addition to being configured to turn off the electronic interrupter 15 after current has been commutated, control module 12 is also configured to activate isolation switch 18 to open under certain predetermined conditions, in the event that the bus and/or downstream load 4 needs to be completely isolated from power. In an exemplary embodiment of the disclosed concept, isolation switch 18 comprises an electromagnetic actuator as detailed further later herein with respect to
[0027] The mechanical branch of the circuit interrupter 1 (i.e. the current path followed when the mechanical contacts 14 are closed) is intended to carry continuous current with low resistance and losses, while the electronics branch (i.e. the current path followed when the electronic interrupter 15 is powered on) is intended to carry current for only the short interval of time it takes to commutate and interrupt the flow of current after detection of a fault in the circuit interrupter 1. It will be appreciated that proper interruption of current flow to the load 4 after a fault is detected in the circuit interrupter 1 depends upon the control module 12 functioning properly and turning off the electronic interrupter 15 shortly after the current is commutated. However, control modules such as control module 12 are often connected to their own upstream circuit breaker, meaning that, if there is a control power fault (for example and without limitation, an overload) that causes the control power circuit breaker to trip, the control module 12 will not receive power until the control power circuit breaker is reset.
[0028] In the event of a loss of control power resulting in the inability of the circuit interrupter 1 to be operated remotely or automatically, a mechanical means of isolating the circuit interrupter 1 from the downstream load 4 is necessary. Accordingly, the isolation switch 18 is structured to be manually opened, as detailed further herein with respect to
[0029]
[0030] Referring now to
[0031] Referring to
[0032] The drive shaft 27 comprises a distal end 29 (the distal end 29 being numbered in
[0033] As shown in
[0034] Still referring to
[0035] Still referring to
[0036] Pivoting pin 115 facilitates arms 104, 106 being able to pivot relative to u-bracket 116, and rotating pin 108A facilitates handle 102 being able to rotate relative to arms 104, 106 when an operator rotates handle 102 as indicated by arrow 200 to open the isolation switch 18. The pivoting of arms 104, 106 relative to u-bracket 116 and the rotating of handle 102 relative to arms 104, 106 ensure that, when an operator rotates handle 102 to open the isolation switch 18, force is generated that results in protrusions 136 and 138 applying force orthogonally to impact surface 36 of drive assembly coupling 32 in order to move the drive assembly 26 and the moving stem 25 away from the isolation fixed contact 22.
[0037] Referring now to
[0038] Each arm 104, 106 comprises a planar interior surface and a planar exterior surface. The interior surface of each arm 104, 106 is the surface that faces space 105 such that the interior surface of each arm 104, 106 faces the interior surface of the other arm 106, 104. The exterior surface of each arm 104, 106 is the surface disposed opposite the interior surface, and the exterior and interior surfaces are equal in surface area. In
[0039] Referring again to
[0040] Still referring to
[0041] Lastly, manual opening mechanism 100 and drive assembly coupling 32 are designed to prevent interference with normal operation of the isolation switch 18, normal operation being that which occurs when control module 12 is receiving upstream power and is able to provide current to solenoid 28 to activate drive rod assembly 26 to move moving stem 25 away from isolation fixed contact 22. Specifically, the manual opening assembly 40 is structured such that, during normal operation, the drive rod assembly 26 can move the moving stem 25 freely between the closed state (shown in
[0042] While specific embodiments of the invention have been described in detail, it will be appreciated by those skilled in the art that various modifications and alternatives to those details could be developed in light of the overall teachings of the disclosure. Accordingly, the particular arrangements disclosed are meant to be illustrative only and not limiting as to the scope of disclosed concept which is to be given the full breadth of the claims appended and any and all equivalents thereof.