CA2883229C - System and method for efficient power distribution and backup - Google Patents
System and method for efficient power distribution and backup Download PDFInfo
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- CA2883229C CA2883229C CA2883229A CA2883229A CA2883229C CA 2883229 C CA2883229 C CA 2883229C CA 2883229 A CA2883229 A CA 2883229A CA 2883229 A CA2883229 A CA 2883229A CA 2883229 C CA2883229 C CA 2883229C
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/38—Arrangements for feeding a single network from two or more generators or sources in parallel; Arrangements for feeding already energised networks from additional generators or sources in parallel
- H02J3/46—Controlling the sharing of generated power between the generators, sources or networks
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J9/00—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting
- H02J9/04—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source
- H02J9/06—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source with automatic change-over, e.g. UPS systems
- H02J9/062—Circuit arrangements for emergency or stand-by power supply, e.g. for emergency lighting in which the distribution system is disconnected from the normal source and connected to a standby source with automatic change-over, e.g. UPS systems for AC powered loads
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Abstract
Description
BACKGROUND
Field [0001] This application is directed generally to power distribution and backup systems, and specifically to uninterrupted power supply systems.
SUMMARY
The uninterrupted power supply system includes a first uninterrupted power supply (UPS), a second UPS connected electrically parallel to the first UPS, a third UPS, and a fourth UPS connected electrically parallel to the third UPS. At least one of the first, the second, the third, and the fourth UPSs include at least two input inlets to directly receive power supply from at least two independent power sources without an active component in between the two independent power sources and the first, the second, the third, and the fourth UPSs, such that the first, the second, the third, and the fourth UPSs supply uninterrupted power to a load.
BRIEF DISCUSSION OF THE DRAWINGS
DETAILED DESCRIPTION
Power backup system 100 includes connections C1-C8 that electrically couple first power source 102 and second power source 104 to first pair of uninterruptible power supplies 106 and second pair of uninterruptible power supplies 108 in the exemplary manner illustrated in FIG.
1. In addition, first power source102 and second power source 104 are electrically coupled to a legacy load 112 via electrical connections C9 and C10, respectively. In one embodiment, power backup system 100 includes a generator 114(1) coupled to first power source 102 and generator 114(2) coupled to second power source 104. Electrical power provided by power source 102, power source 104, or both is used by first pair of uninterruptible power supplies 106, second pair of uninterruptible power supplies 108, or both, and generators 114(1) or 114(2), or both, to drive one or more loads, e.g., load 110(1) and/or load 110(2) coupled at respective output terminals (not shown) of first pair of uninterruptible power supplies 106 and second pair of uninterruptible power supplies 108, respectively. The features and functionalities of power backup system 100 may be achieved using fewer or higher number of components than those disclosed herein. For example, one or more of connections Cl-C10 may be routed via passive components, e.g., circuit breakers or fuses, and the specific arrangement of components shown in power backup system 100 of FIG. 1 is by way of example only, and not by way of limitation. Also, one or more generators may be coupled as 114 for example, a 2MW generator may feed two 1MW capacity switches 102 or conversely, two 600KW generator fees may be synchronized to feed a single 1MW
102.
In one embodiment, part of power backup system may be located inside building 118, whereas part of power backup system 100 may be located outside building 118. For example, first and second power sources 102 and 104 may be located outside building 118, and first and second pair of uninterruptible power supplies 106 and 108 may be located inside building 118.
Accordingly, various embodiments described herein are not limited by specific location of components of power backup system 100, and the arrangement illustrated in FIG.
1 is by way of example only.
102(3) is further coupled to a bus 102(4). Bus 102(4) outputs power at one or more connections (e.g., connections Cl, C3, C5, C7, and C9).
In one embodiment, AC mains power source 102(1) and AC mains power source 104(1) may both be coupled to the same power grid 116(1) or 116(2). An output of transformer 104(2) may be coupled to an automatic transfer switch (ATS) 104(3). ATS 104(3) includes an inlet (not shown) to receive power from generator 114(1) in an event of a failure of AC
mains power source 104(1). An output of ATS 104(3) is further coupled to a bus 104(4). Bus 104(4) outputs power at one or more connections (e.g., connections C2, C4, C6, C8, and C10).
In one embodiment, second power source 104 is independent of first power source 102.
Alternatively, second power source 104 may be same as or may be dependent upon first power source 102 for power. In one embodiment, first power source 102 and/or second power source 104 may allow for "net-metering" in which owners of loads 110(1) and 110(2) may receive financial or energy credit for at least a portion of electricity regenerated and supplied back to power grids 116(1) and/or 116(2). In one embodiment, first power source 102 and/or second power source 104 may allow for "peak shaving" that lets power users (e.g., loads 110(1) and/or 110(2)) take advantage of the relatively low cost of utility power during periods of off-peak demand and generate (a portion or all of) their own power during peak periods to avoid high demand charges. In one embodiment, first power source 102 and/or second power source 104 may be in a co-generation mode in coordination with the mains power supplier for cost-savings, energy efficiency, or environmentally friendly "green" applications.
However, in one embodiment, AC mains power source 104(1) may output current or power that is unsynchronized with respect to an output at AC mains power source 102(1).
The term 4 4unsynchronized" relates to output at AC mains power source 102(1) and AC
mains power source 104(1) being substantially out of phase, substantially out of frequency, substantially out of amplitude, or combinations thereof, with each other. For example, an output phase of AC
mains power source 102(1) may be substantially different from an output phase of AC mains power source 104(1). For example, when respective phases of output waveforms at AC mains power source 102(1) and AC mains power source 104(1) are outside a predetermined window of tolerance, the two phases are deemed as unsynchronized. In an alternative embodiment, current or power output from AC mains power source 102(1) and AC mains power source 104(1) may be synchronized. For example, when respective phases, frequencies, amplitudes, or combinations thereof, of AC mains power source 102(1) and AC mains power source 104(1) are within the predetermined window of tolerance of each other, the outputs are deemed as "synchronized." In one embodiment, AC mains power source 102(1) and AC mains power source 104(1) may be supplied synchronized power by the utility power provider. In one embodiment, such synchronization may be achieved without using a paralleling board or a switch board. In one embodiment, output from AC mains power source 102(1) is exactly same as an output from AC mains power source 104(1) for all practical purposes.
Specific parametric values of output from each of AC mains power source 102(1) and AC mains power source 104(1) may depend on specific geographical locations where power backup system 100 is implemented. As noted above, AC mains power source 102(1) and AC mains power source 104(1) may be located outside building 118 or in a power/electrical room of building 118 (e.g., a data center). In one embodiment, AC mains power source 102(1) and AC mains power source 104(1) may be replaced by direct current (DC) power sources. By way of example only, and not by way of limitation, AC mains power source 102(1) and AC mains power source 104(1) may provide a minimum of 1 MW power. Furthermore, AC mains power source 102(1) and/or AC
mains power source 104(1) may be single phase, dual phase, or three-phase power sources.
mains power source 102(1) and AC mains power source 104(1), respectively. In one embodiment, transformers 102(2) and 104(2) may each be step up transformers. By way of example only, and not by way of limitation, transformers 102(2) and 104(2) may each provide a step down voltage of 480V, or 400V from a value in MV range. Transformers 102(2) and 104(2) may step-up or step-down voltages to two or more levels, as needs by loads 110(1) and/or 110(2). Typically, the output ranges needed by UPSs 106(1), 106(2), 108(1), and/or 108(2) and/or loads 110(1) and/or 110(2) may be standard voltages such as 480/400/277/240/220/208/120/110V.
mains power source 104(1) fail or under perform. For example, in addition to transferring a load (e.g., load 110(1)) to generators 114(1) and 114(2), ATS 102(3) and ATS 104(3) also command generators 1104(1) and 114(2), respectively, to start, based on the voltage monitored on the primary supply (e.g., AC mains power sources 102(1) and 104(1)). ATS 102(3) and ATS 104(3) also isolate generators 114(1) and 114(2), respectively, from the electric utility, when generators 114(1) and 114(2) are on and are providing temporary power. The control capability of ATS
102(3) and ATS 104(3) may be manual only, or a combination of automatic and manual. For example, a controller or processor inside ATS 102(3) and ATS 104(3) may continuously, or at preprogrammed time intervals, monitor various quality factors associated with AC mains power source 102(1), generator 114(1), AC mains power source 104(1), and/or generator 114(2), respectively, and make a decision to connect/disconnect one or more of AC
mains power source 102(1), generator 114(1), AC mains power source 104(1), and/or generator 114(2) to provide high or acceptable quality of power to buses 102(4) and 104(4). Likewise, ATS
102(3) and ATS
104(3) may be operated by a human operator who monitors power quality of output from AC
mains power source 102(1), generator 114(1), AC mains power source 104(1), and/or generator 114(2) and selects the best ones amongst them. Further, such monitoring may be performed remotely in a control room where power quality parameters are computed at ATS
102(3) and ATS 104(3) but analyzed and displayed in the control room by computers, and provided to human operators for decision making. In one embodiment, ATS 102(3) and ATS
104(3) may have a logic controller implemented using a processor and a memory therein to condition output therefrom. Such conditioning may include, but is not limited to, noise filtering, smoothing, distortion reduction, and analog or digital signal processing performed on inputs to ATS 102(3) and ATS 104(3) prior to outputting.
There is no requirement that "generator" need to be standby or emergency power and instead may be primary "utility" power as well, though for reliability purposes, generators 114(1) and 114(2) may be completely different power feeds than power feeds of either AC
mains power source 102(1) or AC mains power source 104(1).
Likewise, connections C5 and C7 from bus 102(4), and connections C6 and C8 from bus 104(4) connect to and provide power to second pair of uninterruptible power supplies 108.
mains power source 104(1), and/or generator 114(2) and first pair of UPSs 106, second pair of UPSs 108, and legacy load 112, in one embodiment connections Cl-C10 may be physically routed via passive components such as inductive chokes, circuit breakers, and/or fuses. In one embodiment, connections Cl-C10 may be made of copper, however, any power grade material, e.g., Copper-aluminum alloy material, may be used for connections Cl-C10.
106(1) and 106(2) may be configured to rectify alternating current (AC) to direct current to drive load 110(1). In one embodiment, when load 110(1) is an alternating current load, such rectification may not be carried out. In one embodiment, input current to UPS 106(1) is provided via connections Cl and C2 to first power source 102 and second power source 104, respectively.
Likewise, input current to UPS 106(2) is provided via connections C3 and C4 to first power source 102 and second power source 104, respectively. The input currents received by UPSs 106(1) and 106(2) may be unsynchronized relative to each other. In one embodiment, input current to UPS 106(1) provided via connections Cl and C2, and input current to UPS 106(2) provided by connections C3 and C4 may be synchronized. Regardless of whether the input currents are synchronized or unsynchronized, UPS 106(1) and UPS 106(2) provide a digitally synchronized output current to drive load 110(1). It is to be noted that although two UPSs 106(1) and 106(2) are illustrated, first pair of uninterruptible power supplies 106 may include a higher number of UPSs, in which case the phrase "pair" would no longer be applicable. For example, when first pair of uninterruptible power supplies 106 has three UPSs, it may be referred to as first triplet of uninterruptible power supplies 106, or generally, first set of power supplies 106, and the features and functionalities of the embodiments disclosed herein are not limited by specific numbers of UPSs.
relates to a direct connection between respective components being described, without intermediate active devices (e.g., active switches, panel boards, etc.). For example, as described above, connection Cl forms or is a direct connection between first primary feed 106(11) and bus 102(4).
In one embodiment, such direct connections may include passive components in between (e.g., fuses, circuit breakers, breaker panels, etc.) with no substantial active components for switching between buses 102(4) and 104(4) of first power source 102 and second power source 104, respectively.
Second primary feed 106(21) is coupled directly to bus 104(4) by connection C4 to receive AC
current or power from second power source 104 (e.g., from AC mains power source 104(1) or generator 114(2)) at the first input inlet/terminal of UPS 106(2). Second maintenance bypass feed 106(22) is coupled directly to bus 102(4) by connection C3 to receive AC
current or power from first power source 102 (e.g., from AC mains power source 102(1) or generator 114(1)) at the second input inlet/terminal of UPS 106(2). It is to be noted that in the arrangement of connections illustrated in FIG. 1, first primary feed 106(11) and second primary feed 106(21) are both directly connected to different power sources, viz., first power source 102 and second power source 104, respectively. Likewise, first maintenance bypass feed 106(12) and second maintenance bypass feed 106(22) are both directly connected to different power sources, viz., second power source 104 and first power source 102, respectively. In one embodiment, such direct connections may include passive components in between (e.g., fuses, circuit breakers, breaker panels, etc.) with no substantial active components for switching between buses 102(4) and 104(4) of first power source 102 and second power source 104, respectively. An output of second UPS 106(2) is connected to load 110(1) with standard impedance matching circuitry in-between (not shown) to drive load 110(1) in parallel with output from first UPS 106(1). In one embodiment, these outputs from first UPS 106(1) and second UPS 106(2) are synchronized (e.g., digitally synchronized).
108(1) provided by connections C5 and C6, and input current to UPS 108(2) provided by connections C7 and C8 may be synchronized. Regardless of whether the input currents are synchronized or unsynchronized, UPS 108(1) and UPS 108(2) provide a digitally synchronized output current to drive load 110(2). It is to be noted that although two UPSs 108(1) and 108(2) are illustrated, second pair of uninterruptible power supplies 108 may include a higher number of UPSs, in which case the phrase "pair" would no longer be applicable. For example, when second pair of uninterruptible power supplies 108 has three UPSs, it may be referred to as second triplet of uninterruptible power supplies 108, or generally, as second set of uninterruptible power supplies 108, and the features and functionalities of the embodiments disclosed herein are not limited by specific numbers of UPSs.
current or power from second power source 104 (e.g., from AC mains power source 104(1) or generator 114(2)) at the second input inlet/terminal of third UPS 108(1). In one embodiment, such direct connections may include passive components in between (e.g., fuses, circuit breakers, breaker panels, etc.) with no substantial active components for switching between buses 102(4) and 104(4) of first power source 102 and second power source 104, respectively.
Fourth primary feed 108(21) is coupled directly to bus 104(4) by connection C8 to receive AC
current or power from second power source 104 (e.g., from AC mains power source 104(1) or generator 114(2)) at the first input inlet/terminal of fourth UPS 108(2).
Fourth maintenance bypass feed 108(22) is coupled directly to bus 102(4) by connection C7 to receive AC current or power from second power source 102 (e.g., from AC mains power source 102(1) or generator 114(1)) at the second input inlet/terminal of fourth UPS 108(2). It is to be noted that in the arrangement of connections illustrated in FIG. 1, third primary feed 108(11) and fourth primary feed 108(21) are both directly connected to different power sources, viz., first power source 102 and second power source 104, respectively. Likewise, third maintenance bypass feed 108(12) and fourth maintenance bypass feed 108 (22) are both directly connected to different power sources, viz., second power source 104 and first power source 102, respectively. In one embodiment, such direct connections may include passive components in between (e.g., fuses, circuit breakers, breaker panels, etc.) with no substantial active components for switching between buses 102(4) and 104(4) of first power source 102 and second power source 104, respectively. In one embodiment, these outputs from third UPS 108(1) and fourth UPS 108(2) are synchronized (e.g., digitally synchronized).
108(1), and/or fourth UPS 108(2) to load 110(1) and/or load 110(2). Further, the term "uninterruptible" may refer to outputting electricity or power from one or more of first UPS 106(1), second UPS
106(2), third UPS 108(1), and/or fourth UPS 108(2) to load 110(1) and/or load 110(2) in a manner that does not disrupt acceptable performance of loads 110(1)-110(n).
For example, power output from first UPS 106(1) may, for a period of time, fluctuate.
However, as long as such fluctuation does not affect normal operation of load 110(1), output current or power from first UPS 106(1) may still be deemed as "uninterrupted" power supply. The acceptable or normal operation of loads 110(1) and 110(2) may depend on specific application for which loads 110(1) and 110(2) are used, and as such, the definition of such acceptable performance may vary based on specific circumstances. Contrastingly, when power supply becomes discontinuous, or substantially prevents operation of loads 110(1) and 110(2), then such a power output or supply is deemed as "interrupted" or "discontinuous," and is by definition, not uninterruptible. In one embodiment, upon a failure of any two UPSs out of first UPS 106(1), second UPS
106(2), third UPS 108(1), and/or fourth UPS 108(2), the other two UPSs may continue providing power to a load. In one embodiment, each of first UPS 106(1), second UPS 106(2), third UPS 108(1), and/or fourth UPS 108(2) may be a 500 kW output UPS. By way of example only, and not by way of limitation, one or more of first UPS 106(1), second UPS 106(2), third UPS 108(1), and/or fourth UPS 108(2) may be, but are not limited to single or double conversion, AC-AC, AC-DC-AC, DC-AC, rotary (flywheel, etc.), or the like.
108(1) that synchronize their output but not necessarily from all four UPSs 106(1), 106(2), 108(1), and 108(2). An example of such a load would be a typical monitor for a personal computer (PC).
While servers may be designed with two or more power supplies that may be able to rectify totally unsynchronized loads, consumer and desktop equipment tends to have a single load. In this case, legacy load 112 may power building systems that only support a single input (e.g., Chiller or other heating, ventilation, and air conditioning (HVAC) component, etc.). This shows how power backup system 100may be applied to existing buildings and designs with little or no modification to the components that don't need the protection. Likewise, ATSs 102(3) and 104(3) may be applied after each of respective first and second pairs of UPSs 106 and 108 to provide UPS power to those components that could benefit from the UPS
protection. Legacy load 112 may include a three-phase sensing switch 112(1) to receive AC current or power from first power source 102 and second power source 104. Three phase sensing switch 112(1) may be for a utility to utility feed. Based upon sensed power received from first power source 102, second power source 104, or both, three-phase sensing switch 112(1) may drive legacy and single feed equipment 112(2) or other loads. The term "single feed" refers to loads that have only one input terminal, in contrast with dual feed equipment/devices, e.g., UPSs 106(1), 106(2), 108(1), and 108(2), which have at least two input inlets/terminals configured as primary feed and maintenance bypass feed, as described above. In one embodiment, legacy load 112 is optional in which case power backup system 100 will not include connections C9 and C10.
As a result, loads 110(1) and 110(2), as well as legacy load 112, if present, continue to receive power over respective connections Cl-C10. Likewise, only a failure of generator 114(2), does not affect power backup system 100's capability to drive loads 110(1) and 110(2).
Such back feeding may be useful, for example, in testing the failed components of power back system 100.
However, even with a total failure of first power source 102 and generator 114(1), loads 110(1) and 110(2) receive power from second power source 104 and/or generator 114(2).
For example, in this failure mode, first primary feed 106(11) does not receive any power over connection Cl.
However, first maintenance bypass feed 106(12) receives power from second power source 104 over connection C2. As a result, output to load 110(1) from first UPS 106(1) is maintained.
Likewise, second primary feed 106(21) of second UPS 106(2) connected to second power source 104 by connection C4 is unaffected by the failure of first power source 102, and continues outputting power to load 110(1). However, second maintenance feed 106(22) connected to and receiving power from first power source 102 over connection C3 does not receive any electrical power when first power source 102 as well as generator 114(1) both fail.
108(1) and fourth primary feed 108(21) of fourth UPS 108(2) continue to receive power from second power source 104 or generator 114(2) and therefore, can drive load 110(2) with no disruption resulting from failure of first power source 102 and generator 114(1). In addition, in the second failure mode, legacy load 112 still receives power from second power source 104 over connection C10.
106(1) does not receive any power from second power source 104 and/or generator 114(2) over connection C2. However, first primary feed 106(11) and second maintenance bypass feed 106(22) receive power from first power source 102 over connections Cl and C3, respectively.
As a result, output to load 110(1) from first UPS 106(1) is maintained.
106(1) and second UPS 106(2), and third UPS 108(1) and fourth UPS 108(2) may digitally synchronize.
mains power source 104(1), generator 114(1), and generator 114(1). Further, in one embodiment, when a primary feed of any UPS is not receiving power, that UPS
may initially rely on a battery included therein to provide power to a load (e.g., load 110(1)), and then gracefully transfer power to the load from its maintenance bypass feed. Such graceful transfer may be controlled by a controller (not shown) having a processor and a memory coupled to each other by an internal bus inside the UPS.
Likewise, the maintenance bypass feed of the first UPS in the third pair of UPSs may share a common power source with the primary feed of the second UPS in the third pair of UPSs. As a result, the failure mode analysis described above may similarly be extended to any number of UPS
pairs or sets, in the manner of connections described above.
Alternatively, the first and second power sources may provide synchronized power even though they may be independent sources of power.
106(1)) is directly coupled to the second power source (e.g., AC mains source 104(1) and/or generator 114(2)), and a maintenance bypass feed is directly coupled to the first power source (e.g., AC
mains source 102(1) and/or generator 114(1)). The couplings are made such that the primary feed of the second UPS is coupled to a power source different from the power source coupled to the primary feed of the first UPS. Likewise, the couplings are made such that the maintenance bypass feed of the second UPS is coupled to a power source different from the power source coupled to the maintenance bypass feed of the first UPS.
Such providing of power to the one or more loads is carried out such that, such that failure of one of the power sources does not affect the output of the first and the second UPSs. In one embodiment, the output from the two UPSs is digitally synchronized to drive the one or more loads.
106(2), third UPS
108(1), and/or fourth UPS 108(2) individually may have static transfer switches inside them.
Likewise, in one embodiment, switching between first power source 102 and second power source 104 to provide power to first and second pairs of UPSs 106 and 108 may be contactless.
Yet another exemplary advantage of various embodiments described herein is that component costs are reduced by up to 70% as compared to active switch implementations.
Furthermore, loss of synchronization between first AC mains power source 102(1) and generator 114(1), and/or second AC mains power source 104(1) and generator 114(2), e.g., in an emergency, does not impact the downstream load. Power backup system 100 is scalable linearly for additional power sources and UPSs, with no complex costs associated with centrally controlled components that have to be upsized. Additionally, in one embodiment, the lengths of the conductors between components may be significantly reduced to reduce resistive loads and further increase efficiency; these are in part enhanced through the increased use of passive components.
108(2). For example, power may be shared between any pair of UPSs, e.g., first UPS 106(1) and second UPS 106(2). Alternatively, loads 110(1) and/or 110(2) may independently receive power from first UPS 106(1), second UPS 106(2), third UPS 108(1), and/or fourth UPS
108(2). Still alternatively, power from one power outlet of first UPS 106(1), second UPS
106(2), third UPS
108(1), and/or fourth UPS 108(2) can provide power to dual power servers or other loads. In one embodiment, power backup system 100, and specifically first pair of UPSs 106 and/or second pair of UPSs 108 is configured to provide power outputs of 1 MW to 100 MW, although other higher or lower values of power output may be achieved using other number of UPSs (or different sizes of UPSs).
Claims (18)
a first uninterruptible power supply and a second uninterruptible power supply configured to drive a load in parallel, wherein the first uninterruptible power supply and the second uninterruptible power supply are both connected through a direct connection to at least two power sources, wherein the direct connection comprises a connection between the first and second uninterruptible power supplies and the at least two power sources without an active switch device interposed therebetween.
a third uninterruptible power supply and a fourth uninterruptible power supply driving the load in parallel, wherein the third uninterruptible power supply and the fourth uninterruptible power supply are both connected through the direct connection to the at least two power sources.
a first uninterrupted power supply (UPS);
a second UPS connected electrically parallel to the first UPS;
a third UPS; and a fourth UPS connected electrically parallel to the third UPS, wherein at least one of the first, the second, the third, and the fourth UPSs comprise at least two input inlets to directly receive power supply from at least two independent power sources without an active switch device interposed between the two independent power sources and the first, the second, the third, and the fourth UPSs, such that the first, the second, the third, and the fourth UPSs supply uninterrupted power to a load.
coupling at least two uninterrupted power supplies (UPSs) through a direct connection to at least two independent power sources such that each of the at least two UPSs receives power from the at least two independent power sources, wherein the direct connection comprises a connection between the at least two independent power sources and the at least two UPSs without an active switch device interposed therebetween; and providing from the at least two UPSs, uninterrupted power to a load connected in parallel to the at least two UPSs, wherein upon a failure of one of the at least two independent power sources, the other power source continues supplying power to the at least two UPSs for the providing.
the at least two UPSs switching between power supplied from the at least two power sources, each of the at least two power sources comprising at least one of a generator and an interface to mains power.
and a second UPS, such that the first UPS comprises a first primary feed and a first maintenance bypass feed and the second UPS comprises a second primary feed and a first maintenance bypass feed, and wherein the coupling comprises:
coupling the first primary feed and the second maintenance bypass feed to a first power source of the at least two independent power sources; and coupling the second primary feed and the first maintenance bypass feed to a second power source of the at least two independent power sources.
coupling at least one additional UPS through the direct connection to at least one of the at least two independent power sources, wherein upon a failure of the at least two UPSs, the at least one additional UPS continues to supply uninterrupted power to the load.
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/594,533 | 2012-08-24 | ||
| US13/594,533 US9130406B2 (en) | 2012-08-24 | 2012-08-24 | System and method for efficient power distribution and backup |
| PCT/US2013/054003 WO2014031343A1 (en) | 2012-08-24 | 2013-08-07 | System and method for efficient power distribution and backup |
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| Publication Number | Publication Date |
|---|---|
| CA2883229A1 CA2883229A1 (en) | 2014-02-27 |
| CA2883229C true CA2883229C (en) | 2021-04-20 |
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| CA2883229A Active CA2883229C (en) | 2012-08-24 | 2013-08-07 | System and method for efficient power distribution and backup |
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|---|---|
| US (1) | US9130406B2 (en) |
| EP (1) | EP2888798B1 (en) |
| JP (2) | JP6342398B2 (en) |
| AU (1) | AU2013306202B2 (en) |
| CA (1) | CA2883229C (en) |
| IL (1) | IL237231A0 (en) |
| WO (1) | WO2014031343A1 (en) |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| EP2888798A1 (en) | 2015-07-01 |
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| WO2014031343A1 (en) | 2014-02-27 |
| EP2888798B1 (en) | 2020-04-29 |
| AU2013306202A1 (en) | 2015-03-19 |
| JP2015530067A (en) | 2015-10-08 |
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