Electronic circuit breaker with physical open-contact construction and fail-safe protection
10290448 ยท 2019-05-14
Inventors
Cpc classification
International classification
H01H47/00
ELECTRICITY
Abstract
A circuit breaker includes main contacts movable between closed and open positions such that a line terminal and a load terminal are, respectively, in electrical communication or electrically isolated. A trip coil is connected to the contacts, causing the contacts to move from the closed position to the open position in response to a trip current, thereby tripping the circuit breaker. A normally closed relay having a relay activating circuit and a switching circuit is provided, with the switching circuit being electrically connected to the trip coil. A monitoring circuit is electrically connected to the relay activating circuit, supplying activating power to the relay activating circuit so long as a determination is made that the breaker is operating within acceptable parameters, and ceasing to supply activating power to the relay activating circuit upon a determination being made that the breaker is not operating within acceptable parameters, thereby tripping the breaker.
Claims
1. A circuit breaker comprising: a pair of main contacts movable with respect to each other between a closed position wherein a line terminal and a load terminal are in electrical communication with each other via a main power circuit, and an open position wherein the line terminal and the load terminal are electrically isolated from each other; a trip coil connected to at least one of said pair of main contacts, said trip coil causing said pair of main contacts to move from the closed position to the open position in response to a trip current, thereby tripping said circuit breaker; a normally closed relay having a relay activating circuit and a switching circuit, the switching circuit defaulting to an on state, but being switchable to an off state when an activating power is supplied to the relay activating circuit, the switching circuit automatically returning to the on state when the activating power to the relay activating circuit is interrupted; wherein the switching circuit of said normally closed relay is electrically connected to said trip coil, such that the switching circuit of said normally closed relay provides the trip current to said trip coil when the switching circuit is in the on state, thereby tripping said circuit breaker, but ceases to provide the trip current to said trip coil when the switching circuit is in the off state, thereby allowing the line terminal and the load terminal to be in electrical communication with each other; and a monitoring circuit electrically connected to the relay activating circuit of the normally closed relay, said monitoring circuit supplying the activating power to the relay activating circuit so long as a determination is made that said circuit breaker is operating within acceptable parameters, and ceasing to supply the activating power to the relay activating circuit upon a determination being made that said circuit breaker is not operating within acceptable parameters, thereby tripping said circuit breaker.
2. The circuit breaker of claim 1, wherein the determination is made that said circuit breaker is not operating within acceptable parameters upon detection of at least one of the following: an inrush current above a threshold level and an overcurrent above a threshold level.
3. The circuit breaker of claim 2, wherein the determination is made that said circuit breaker is not operating within acceptable parameters upon detection of at least one of the following: a ground fault condition and an arc fault condition.
4. The circuit breaker of claim 1, wherein said normally closed relay comprises a solid state normally closed relay and wherein the relay activating circuit comprises a solid state activating circuit.
5. The circuit breaker of claim 1, wherein said normally closed relay comprises an electro-mechanical normally closed relay and wherein the relay activating circuit comprises an activating coil.
6. The circuit breaker of claim 1, wherein said monitoring circuit receives power directly from a power supply supplying power to the line terminal, whereby whenever power is supplied to the line terminal, said monitoring circuit is powered on, and, when said monitoring circuit be operating properly, the activating power is supplied to the relay activating circuit.
7. The circuit breaker of claim 1, further comprising an internal switch selectively supplying power to said monitoring circuit, said internal switch being switched to an on state prior to said main contacts being closed so as to allow the monitoring circuit to supply the activating power to the relay activating circuit of said normally closed relay.
8. The circuit breaker of claim 7, wherein said internal switch also selectively supplies power to the switching circuit of said normally closed relay.
9. The circuit breaker of claim 7, wherein the switching circuit of said normally closed relay receives power from the main power circuit, downstream of said pair of main contacts.
10. The circuit breaker of claim 9, further comprising a surge protector electrically connected between the pair of main contacts and the switching circuit of said normally closed relay.
11. The circuit breaker of claim 9, further comprising a trip circuit switch electrically connected between the pair of main contacts and the switching circuit of said normally closed relay.
12. The circuit breaker of claim 11, wherein during switching of said circuit breaker from an off state to an on state, said internal switch is switched to an on state so as to allow the monitoring circuit to supply the activating power to the relay activating circuit of said normally closed relay, then subsequently, said trip circuit switch is switched to an on state to supply power to the switching circuit of the normally closed relay, and then subsequently, the pair of main contacts are moved to their closed position.
13. The circuit breaker of claim 12, wherein said pair of main contacts are moveable between their open and closed positions by movement of a contact arm, and wherein said trip circuit switch comprises a leaf spring contact which contacts the contact arm and thereby provides power to the trip circuit just prior to the contact arm closing said pair of main contacts, thereby assuring that the trip current provided to said trip coil is instantaneous, as the trip current ends immediately as said circuit breaker is tripped.
14. The circuit breaker of claim 13, wherein the leaf spring contact comprises a double leaf spring contact, and wherein the double leaf spring contact further acts as the internal switch.
15. A circuit breaker comprising: a pair of main contacts movable with respect to each other between a closed position wherein a line terminal and a load terminal are in electrical communication with each other via a main power circuit, and an open position wherein the line terminal and the load terminal are electrically isolated from each other; a trip coil connected to at least one of said pair of main contacts, said trip coil causing said pair of main contacts to move from the closed position to the open position in response to a trip current, thereby tripping said circuit breaker; a normally closed relay having a relay activating circuit and a switching circuit; wherein the switching circuit of said normally closed relay is electrically connected to said trip coil; and a monitoring circuit electrically connected to the relay activating circuit of the normally closed relay, said monitoring circuit supplying an activating power to the relay activating circuit so long as a determination is made that said circuit breaker is operating within acceptable parameters, and ceasing to supply the activating power to the relay activating circuit upon a determination being made that said circuit breaker is not operating within acceptable parameters, thereby tripping said circuit breaker.
16. A circuit breaker comprising: a pair of main contacts movable with respect to each other between a closed position wherein a line terminal and a load terminal are in electrical communication with each other via a main power circuit, and an open position wherein the line terminal and the load terminal are electrically isolated from each other; a trip coil connected to at least one of said pair of main contacts, said trip coil causing said pair of main contacts to move from the closed position to the open position in response to a trip current, thereby tripping said circuit breaker; a normally closed relay having a relay activating circuit and a switching circuit; wherein the switching circuit of said normally closed relay is electrically connected to said trip coil and wherein the switching circuit of said normally closed relay receives power from the main power circuit, downstream of said pair of main contacts; a monitoring circuit electrically connected to the relay activating circuit of the normally closed relay, said monitoring circuit supplying an activating power to the relay activating circuit so long as a determination is made that said circuit breaker is operating within acceptable parameters, and ceasing to supply the activating power to the relay activating circuit upon a determination being made that said circuit breaker is not operating within acceptable parameters, thereby tripping said circuit breaker; a trip circuit switch electrically connected between the pair of main contacts and the switching circuit of said normally closed relay; and wherein said pair of main contacts are moveable between their open and closed positions by movement of a contact arm, and wherein said trip circuit switch comprises a leaf spring contact which contacts the contact arm and thereby provide power to the trip circuit just prior to the contact arm closing said pair of main contacts, thereby assuring that the trip current provided to said trip coil is instantaneous, as the trip current ends immediately as said circuit breaker is tripped.
17. The circuit breaker of claim 16, wherein the determination is made that said circuit breaker is not operating within acceptable parameters upon detection of at least one of the following: an inrush current above a threshold level and an overcurrent above a threshold level.
18. The circuit breaker of claim 17, wherein the determination is made that said circuit breaker is not operating within acceptable parameters upon detection of at least one of the following: a ground fault condition and an arc fault condition.
19. The circuit breaker of claim 16, wherein said normally closed relay comprises a solid state normally closed relay and wherein the relay activating circuit comprises a solid state activating circuit.
20. The circuit breaker of claim 16, wherein said normally closed relay comprises an electro-mechanical normally closed relay and wherein the relay activating circuit comprises an activating coil.
21. The circuit breaker of claim 16, wherein said monitoring circuit receives power directly from a power supply supplying power to the line terminal, whereby whenever power is supplied to the line terminal, said monitoring circuit is powered on, and, when said monitoring circuit be operating properly, the activating power is supplied to the relay activating circuit.
22. The circuit breaker of claim 16, further comprising an internal switch selectively supplying power to said monitoring circuit, said internal switch being switched to an on state prior to said main contacts being closed so as to allow the monitoring circuit to supply the activating power to the relay activating circuit of said normally closed relay.
23. The circuit breaker of claim 22, wherein during switching of said circuit breaker from an off state to an on state, said internal switch is switched to an on state so as to allow the monitoring circuit to supply the activating power to the relay activating circuit of said normally closed relay, then subsequently, said trip circuit switch is switched to an on state to supply power to the switching circuit of the normally closed relay, and then subsequently, the pair of main contacts are moved to their closed position.
24. The circuit breaker of claim 23, wherein the leaf spring contact comprises a double leaf spring contact, and wherein the double leaf spring contact further acts as the internal switch.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(11) Referring to the figures in detail and first to
(12) The circuit breaker (10) is electrically connected to an alternating current (AC) supply (12) via a line terminal that supplies power to an internal switch (18) of the circuit breaker (10), with the output of the internal switch (18) being fed to both an electronic monitoring circuit (20) and to the input terminal of the switching circuit (28) of a relay (22).
(13) The relay (22) may be of various types, such as a solid state relay or an electro-mechanical relay, so long as the relay is of the normally closed type, meaning that the switching circuit (28) of the relay (22) will stay in, or will return to, the closed (i.e., ON) state when less than threshold activating power is being supplied to the activating circuit/coil (24) of the relay (22). As will be recognized by those of ordinary skill in the art, this lack of threshold activating power (i.e., causing the switching circuit (28) to be closed) may be the result of an intentional removal of power to the activating circuit/coil (24), may be the result of a failure in the circuit upstream of the relay (such as a failure in the monitoring circuit (20)), may be the result of a failure in the activating circuit/coil (24) of the relay (22) itself, etc. However, whatever the cause, when threshold activating power is not supplied to the activating circuit/coil (24) of the relay (22), the switching circuit (28) of the relay (22) is closed (i.e., on), as shown in
(14) The electronic monitoring circuit (20) of the breaker (10) has an output to either the activating input of the solid state relay circuit, or the coil of the electro-mechanical relay, depending upon which type of relay (22) is employed, which will, when energized (indicated at 30 in
(15) As should be recognized, the internal switch (18) may be omitted if desired, and the electronic monitoring circuit (20) may instead receive power directly from the power supply (12) supplying power to the line terminal. In this configuration, whenever power is supplied to the circuit breaker line terminal from power supply (12), the electronic monitoring circuit (20) would be powered on, and, should the electronic monitoring circuit (20) be operating properly, power would be supplied to the to the activating circuit/coil (24) of the normally closed relay (22), switching the switching circuit (28) of the relay (22) to its open (i.e., off) state. The normally closed relay (22) would thereby remain in its off state while the breaker (10) is in its off state as long as power is being supplied to the line input of the breaker (10) and the electronic monitoring circuit (20) is operating properly. With the switching circuit (28) of the normally closed relay (22) being in its open (i.e., off) state, the breaker (10) would be able to be operated normally.
(16) Turning now specifically to
(17) The electronic monitoring circuit (20) continually monitors itself, and, should it detect a problem in its operability, ceases to send activating power to the activating circuit/coil (24) of the relay (22), resulting in the closing of the relay's normally-closed switching circuit (28) thereby powering the trip coil (32) and tripping the contacts (11) of the breaker (10). Also, should the power to the electronics fail for any reason, the activating circuit/coil (24) of the relay (22) does not receive power, and the switching circuit (28) of the relay (22) would thereby be in, or return to, its normally closed state, and the breaker (10) would be tripped.
(18) With reference now to
(19) This internal switch (18) is actuated back to its closed (i.e., on) state prior to the breaker's contacts (11) of main output circuit (16) being switched to their closed (i.e., on) state (as shown again in
(20) Turning now to
(21) Referring specifically to
(22) As with circuit breaker (10), the electronic monitoring circuit (20) of the breaker (10) has an output to either the activating input of the solid state relay circuit, or the coil of the electro-mechanical relay, depending upon which type of relay (22) is employed, which will, when energized (indicated at (30)), result in the relay's normally closed switching circuit (28) being switched to the open (i.e., off) position. Thus, under normal conditions (as shown in
(23) The electronic monitoring circuit (20) is programmed with the operating parameters desired for the breaker's application, such as current trip point and inrush capability. Should any of these parameters not be met, the electronic monitoring circuit (20) ceases sending activating power to the normally closed relay (22), resulting in the relay returning to its normally closed (i.e., on) state (as shown in
(24) The electronic monitoring circuit (20) continually monitors itself, and, should it detect a problem in its operability, ceases to send activating power to the relay, again resulting in the closing of the relay's normally-closed switching circuit (28) and tripping the breaker whether the breaker is already on or is in the process of being switched to its on state, since power would flow through the switching circuit (28) of the relay (22) to the trip coil (32). Also, should the power to the electronics fail for any reason, the relay would not receive activating power, and would thereby be in, or return to, its normally closed state, and the breaker (10) would be tripped.
(25) Furthermore, as shown in
(26) Turning now to
(27) Referring first to
(28) Trip circuit switch (38) will then be switched to its closed (i.e., on) position, again prior to the breaker's main contacts (11) being in the closed (i.e., on) position, but subsequent to the internal switch (18) being switched to its closed (i.e., on) position. This state is shown in
(29) Trip circuit switch (38) is configured to be activated downstream of the breaker's trip mechanism (32) which results in the power from the trip circuit switch (38) being immediately switched off (i.e., opened) when the breaker (10) is tripped. Closing of the trip circuit switch (38) may be accomplished by contact being made with a contact arm of the breaker (10) prior to the contact arm closing the breaker's main contacts (11). This configuration assures that the trip coil (32) only experiences a short, momentary power pulse as it trips the breaker (10).
(30) More specifically, a leaf spring contact may be employed as trip circuit switch (38) to contact with the contact arm of the breaker (10) and thereby provide power to the relay's normally-closed switching circuit (28) just prior to the contact arm closing the main contacts (11) of the breaker (10). This assures the trip current to the trip coil (32) would only be instantaneous as it would end immediately as the breaker is tripped. If desired, a double leaf spring contact arrangement could be employed to additionally embody internal switch (18) to enable, first, power being sent to the electronics and, subsequently, power being sent to the relay's normally-closed switching circuit (28), again prior to the breaker main contacts (11) being closed.
(31) Thus, as the breaker (10) is turned on, the electronic protection circuitry (20) is first powered, and, conditionally, upon power being provided to the electronics and the correct functioning of the electronic control circuitry (20), power is provided by the electronic control circuitry (20) to activating circuit/coil (24) of the normally-closed relay (22). The switching circuit (28) of the relay (22) is thereby powered to its open (i.e., off) position. As the breaker (10) is continuing to be actuated to its on position, trip circuit switch (38) is turned to its closed (i.e., on) position and it provides power to the switching circuit (28) of the relay (22). With the electronic circuitry operating properly and providing power to the relay, no power will be provided to the coil of the trip solenoid (32) and the main contacts (11) of the breaker (10) will be able to be turned to their closed (i.e., on) position, thereby providing power the connected load (14). This is illustrated in
(32) If, however, power is not provided to the electronic circuitry or if the electronic circuitry itself fails, no activating power would be provided to the activating circuit/coil (24) of the relay (22) and the normally closed switching circuit (28) would remain in its closed (i.e., on) position. As trip circuit switch (38) closes (i.e., turns on), power would be provided to the switching circuit (28) of the relay (22) and thus to the trip solenoid (32), with the trip solenoid (32) thereby immediately tripping the circuit breaker (10). Furthermore, if there were a failure of the normally-closed relay (22), the breaker (10) would be unusable as, whenever the breaker (10) was actuated and the trip circuit switch (38) closed (i.e., turned on), the switching circuit (28) of the relay (22) would be in its normally closed position and thus conduct current to actuate the trip solenoid (32) and trip the breaker (10).
(33) The electronic monitoring circuit (20) is programmed with the operating parameters desired for the breaker's application, such as current trip point and, if provided, inrush capability. Should any of these parameters be violated, the electronic monitoring circuit (20) ceases sending activating power to the activating circuit/coil (24) of the normally-closed relay (22) and the relay's switching circuit (28) would then return to its normally-closed (i.e., on) state, thereby connecting power to the trip coil (32) and tripping the breaker (10).
(34) The electronic monitoring circuit (20) may be programmed to continually monitor itself, and, should it detect a problem in its operability, to cease sending activating power to the activating circuit/coil (24) of the relay (22), resulting in the closing of the relay's normally-closed switching circuit (28), which would then power the trip coil (32) and trip the breaker (10).
(35) Although the invention has been described with reference to particular arrangement of parts, features, and the like, these are not intended to exhaust all possible arrangements or features, and indeed many modifications and variations will be ascertainable to those of skill in the art.
(36) Additionally, various ancillary features may be provided as considered appropriate. For example, the breaker (10, 10, 10) may include a second trip solenoid, which, upon being powered, would insert a lever arm that would remain permanently in place to trip the breaker's trip link mechanism, whether the breaker was already in the on state or was in the process of being actuated. This lever arm would permanently prevent the trip link mechanism from being rearmed and would thus result in the breaker being permanently disabled. This feature may be optionally incorporated to provide an enhanced level of fail-safe operability by providing a level of protection against failure of the main trip coil powering the trip solenoid.
(37) In this example, the electronic monitoring circuit would have an output to power this second coil, and would also have connections to the main trip coil to enable the processor to monitor the main trip coil. As the breaker (10, 10, 10) is actuated toward the on position, the processor would be activated and would immediately check the status of the main trip coil. Should the processor determine the main trip coil to be open, or faulty, the processor will send power to the second coil, thereby triggering the permanent placement of the second coil's trip lever arm to render the breaker permanently inoperable.
(38) Alternately, or in addition, the breaker (10, 10, 10) may incorporate the capability (as may be enabled by Wi-Fi, Bluetooth, Zigbee, Z-Wave, and/or hard wiring to a central processor) to enable remote communication, thereby allowing remote monitoring, control, and/or programming.
(39) The electronic circuit breaker (10, 10, 10) may be manufactured without the electronic control circuitry (20) being programmed for circuit protection. In this state, the circuit breaker (10, 10, 10) would provide no protection and would be kept inoperable, as the electronic control circuitry (20) would not provide any power to the normally-closed relay (22). Thus, if the breaker (10, 10, 10) were installed and actuated, it would trip prior to any current being supplied to any connected load.
(40) In this state, the breaker (10, 10, 10) could be stocked un-programmed by the manufacturer or a retailer. The circuit breaker's electronic control circuitry (20) would require a high level security protection code to enable it to be programmed. A programming device could be provided that would enable selection of the desired circuit protection parameters, and, with the circuit breaker (10, 10, 10) properly connected to said device, the circuit breaker could be programmed with the desired protective parameters and labeled accordingly. This capability would tremendously reduce investment in inventory, as a single generic breaker would be able to be programmed to provide specific protection as selected from a large range of voltage and current ratings, inrush, ground-fault, arc-fault, and other protective attributes.
(41) The present invention thus provides an electronically controlled circuit breaker that incorporates a mechanical contact mechanism while maximizing the fail-safe level of the breaker to insure its ability to provide the required circuit protection.