Uninterruptable power supply device
11476701 · 2022-10-18
Assignee
Inventors
Cpc classification
H02J3/32
ELECTRICITY
H02J3/00125
ELECTRICITY
Y02E40/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
Abstract
Provided is an uninterruptable power supply device. An uninterruptable power supply device 100, which is provided between a commercial power system 10 and an essential load 30 and which provides AC power to the essential load 30, wherein the uninterruptable power supply device 100 is provided with: a power supply unit 2, which has a power converter 22 and a storage battery 21 and which is connected to a power line L1; an open switch 3 for opening the power supply line L1; a system abnormality detection unit 5 for detecting a system abnormality, which is at least one of voltage rise, phase fluctuation, voltage imbalance, harmonic abnormality, and flicker, in addition to at least one of frequency fluctuation and voltage drop including instantaneous voltage drop; and a control unit 6 which, opens the open switch 3 and supplies AC power to the essential load 30.
Claims
1. An uninterruptable power supply device that is provided between a commercial power system and an essential load and provides alternating-current power to the essential load, the uninterruptable power supply device comprising: a power supply unit comprising a power converter and a storage battery connected to a power line for supplying power from the commercial power system to the essential load; an open switch provided on the power line closer to the commercial power system side than the power supply unit and configured to open or close the power line which connects the commercial power system to the power supply unit and the essential load; a system abnormality detection unit configured to continuously detect a plurality of system abnormalities, the system abnormality detection unit comprising a voltage drop detection circuit capable of detecting a voltage drop abnormality of the plurality of system abnormalities of the commercial power system and outputting a voltage drop abnormality signal in response to detecting the voltage drop abnormality, a frequency fluctuation detection circuit capable of detecting a frequency fluctuation abnormality of the plurality of system abnormalities of the commercial power system and outputting a frequency fluctuation abnormality signal in response to detecting the voltage drop abnormality, a voltage rise detection circuit capable of detecting a voltage rise abnormality of the plurality of system abnormalities of the commercial power system and outputting a voltage rise abnormality signal in response to detecting the voltage rise abnormality, a phase fluctuation detection circuit capable of detecting a phase fluctuation abnormality of the plurality of system abnormalities of the commercial power system and outputting a phase fluctuation abnormality signal in response to detecting the phase fluctuation abnormality, a voltage imbalance detection circuit capable of detecting a voltage imbalance abnormality of the plurality of system abnormalities of the commercial power system and outputting a voltage imbalance abnormality signal in response to detecting the voltage imbalance abnormality, a harmonic abnormality detection circuit capable of detecting a harmonic abnormality of the plurality of system abnormalities of the commercial power system and outputting a harmonic abnormality signal in response to detecting the harmonic abnormality, and a flicker detection circuit capable of detecting a flicker abnormality of the plurality of system abnormalities of the commercial power system and outputting a flicker abnormality signal in response to detecting the flicker abnormality, and a control unit configured to receive a plurality of signal outputs comprising the voltage drop abnormality signal, the frequency fluctuation abnormality signal, the voltage rise abnormality signal, the phase fluctuation abnormality signal, the voltage imbalance abnormality signal, the harmonic abnormality signal, and the flicker abnormality signal, performing a logical OR operation on the plurality of signal outputs to detect at least one of the plurality of system abnormalities, and based on the plurality of signal outputs, the control unit is further configured to: keep detecting any of the plurality of system abnormalities and in response to any system abnormality of the plurality of system abnormalities having been detected as the open switch is closed to continue supplying power from the commercial power system to the essential load, perform a compensation for the commercial power system in response to the detected system abnormality being equal or greater than a corresponding system abnormality threshold while the open switch remains closed, and open the open switch in response to the detected system abnormality being equal or greater than a smaller of a tolerance of the essential load and a tolerance of the power supply unit; and a generator connected to the power line apart from the power supply unit, configured to provide power to the essential load.
2. The uninterruptable power supply device according to claim 1, wherein the power supply unit performs autonomous running within a tolerance limit in which the tolerance of the essential load or the power supply unit against the system abnormality is smaller n a state in which the open switch is an opened state.
3. The uninterruptable power supply device according to claim 1, wherein in response to the detected system abnormality being the phase fluctuation, the control unit is connected to the open switch and the power supply unit and causes the power supply unit to perform a compensation operation for the system abnormality resulting in overcurrent caused by a phase jumping of the commercial power system when the system abnormality detected by the system abnormality detection unit is equal to or greater than a predetermined threshold in which the degree of abnormality is less than the tolerance of the essential load or the power supply unit against the system abnormality.
4. The uninterruptable power supply device of claim 1 further comprising: a voltage detecting unit connected to a transformer and the system abnormality detection unit and configured to detect a voltage of the commercial power system and output the voltage to a plurality of modules of the system abnormality detection unit as each of the plurality of modules of the system abnormality detection unit output a different one of the plurality of signal outputs.
5. The uninterruptable power supply device of claim 4, wherein the transformer is connected between the voltage detection unit and a position of the power line between the commercial power system and the open switch.
6. The uninterruptable power supply device of claim 1, wherein the control unit is configured to perform a compensation for the commercial power system in response to the detected system abnormality being equal or greater than the corresponding system abnormality threshold further comprising: the detected system abnormality being below the tolerance of the essential load and the tolerance of the power supply unit.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
First Embodiment
(9) Hereinafter, a first embodiment of an uninterruptable power supply device according to the present invention will be described with reference to the drawings.
(10) As illustrated in
(11) Here, the commercial power system 10 is s power supply network of a power company (electric utility) and has a power station, a transmission system, and a distribution system. An essential load 30 is a load to which power has to be stably supplied even at the time of system abnormality such as power failure or instantaneous voltage drop and although only essential load is illustrated in
(12) Specifically, the uninterruptable power supply device 100 includes a power supply unit 2, an open switch 3 connecting the commercial power system 10 to the power supply unit 2 and the essential load 30, a system-side voltage detection unit 4 that detects a voltage on the commercial power system 10 side of the open switch 3, a system abnormality detection unit 5 that detects a system abnormality from a voltage detected by the system-side voltage detection unit 4, and a control unit 6 that opens the open switch 3 in accordance with a detection signal of the system abnormality detection unit 5.
(13) The power supply unit 2 is connected to a power line L1 for supplying power from the commercial power system 10 to the essential load 30. The power supply unit 2 is interconnected to the commercial power system 10 and includes a power storage device (a storage device) 21 such as a secondary cell (a storage cell) and a power converter (a power conditioner) 22.
(14) The open switch 3 is provided on the commercial power system 10 side of a connection point of the power supply unit 2 on the power line L1 and opens or closes the power line L1. For example, an uninterruptable switch capable of performing high-speed switching, such as a semiconductor switch or a hybrid switch in which a semiconductor switch and a mechanical switch are combined, can be used. For example, when a semiconductor switch is used, a switching time can be set to be equal to or less than 2 milliseconds. Thus, cutoff can be realized irrespective of a zero point. When a hybrid switch is used, a switching time can be set to be equal to or less than 2 milliseconds. Thus, not only cutoff can be realized irrespective of a zero point, but a conduction loss of zero can be achieved. The open switch 3 is controlled by the control unit 6 such that the open switch 3 is opened or closed.
(15) The system-side voltage detection unit 4 detects a voltage on the commercial power system 10 side of the open switch 3 on the power line L1 via a potential transformer 41. Specifically, the system-side voltage detection unit 4 is connected closer to the commercial power system 10 side than the open switch 3 via the potential transformer 41.
(16) The system abnormality detection unit 5 detects each system abnormality on the commercial power system 10 side of the open switch 3 from a detected voltage detected by the system-side voltage detection unit 4. The system abnormality in the embodiment is voltage drop including instantaneous voltage drop, voltage rise, frequency fluctuation, phase fluctuation, voltage imbalance, a harmonic abnormality, or flicker.
(17) Therefore, the system abnormality detection unit 5 includes a voltage drop detection unit 51 that detects voltage drop including instantaneous voltage drop, a frequency fluctuation detection unit 52 that detects frequency fluctuation, a voltage rise detection unit 53 that detects voltage rise, a phase fluctuation detection unit 54 that detects phase fluctuation, a voltage imbalance detection unit 55 that detects voltage imbalance, a harmonic abnormality detection unit 56 that detects a harmonic abnormality, and a flicker detection unit 57 that detects flicker.
(18) The voltage drop detection unit 51 detects voltage drop by comparing the voltage detected by the system-side voltage detection unit 4 with a predetermined set value. Here, the set value for detecting voltage drop is a voltage value for detecting an instantaneous voltage drop and is, for example, a remaining voltage of 20%.
(19) The frequency fluctuation detection unit 52 detects frequency fluctuation (frequency rise (OF) or frequency drop (UF)) from the voltage detected by the system-side voltage detection unit 4. The frequency fluctuation is, for example, stepwise rise or ramped rise or drop.
(20) The voltage rise detection unit 53 detects voltage rise by comparing the voltage detected by the system-side voltage detection unit 4 with a predetermined set value. Here, the set value for detecting voltage rise is, for example, a voltage of 107% of the system voltage.
(21) The phase fluctuation detection unit 54 detects phase fluctuation such as phase jump of, for example, 10° from the phase of the voltage detected by the system-side voltage detection unit 4.
(22) The voltage imbalance detection unit 55 detects that the magnitude of an amplitude or a phase difference of 120° among three phases from the voltage detected by the system-side voltage detection unit 4 becomes a different state.
(23) The harmonic abnormality detection unit 56 detects a harmonic voltage from the voltage detected by the system-side voltage detection unit 4. The flicker detection unit 57 detects voltage fluctuation (flicker) from the voltage detected by the system-side voltage detection unit 4.
(24) The control unit 6 outputs a control signal to the open switch 3 and opens the open switch 3 based on each of the detected signals detected by the system abnormality detection unit 5. The control unit 6 according to the embodiment opens the open switch 3 when the detected signal from each of the detection units 51 to 57 is received and any one detected signal satisfies a predetermined condition (OR condition).
(25) Specifically, the control unit 6 opens the open switch 3 when at least one of the system abnormalities detected by the detection units 51 to 57 is equal to or greater than tolerance of the essential load 30 or the power supply unit 2 against each system abnormality.
(26) An operation of the power supply unit 2 along with specific opening and closing control on the open switch 3 by the control unit 6 will be described with reference to
(27) At a normal time, the uninterruptable power supply device 100 closes the open switch 3, and the power supply unit 2 and the essential load 30 are in a state in which the power supply unit 2 and the essential load 30 are connected to the commercial power system 10 via the open switch 3.
(28) (1) When each of the detected system abnormalities is less than a system abnormality tolerance which is less between system abnormality tolerances of the power supply unit 2 and the essential load 30 (
(29) (2) When the detected system abnormality is equal to or greater than system abnormality tolerance less between the system abnormality tolerances of the power supply unit 2 and the essential load 30 (
(30) The detection units 51 to 57 detect each system abnormality of the commercial power system 10 irrespective of opening and closing of the open switch 3, and the control unit 6 closes the open switch 3 when each system abnormality of the commercial power system 10 is less the less system abnormality tolerance.
Simulation of First Embodiment
(31) An influence on the power supply unit when phase jump (phase jump of 10°) occurs in a commercial power system as an example of a system abnormality was simulated. A system model for the simulation and a monitoring control model for phase jump Δθ of a voltage ν of a switch output point are illustrated in
(32) A voltage v, a current i, and the phase jump Δθ of the switch output point when the open switch does not operate are illustrated in
(33) A phase jump of 10° occurs in the commercial power system at a time of 0.5 seconds and an overcurrent which is twice a steady amplitude occurs in the current i to a PCS which is an essential load immediately after.
(34) A voltage v, a current i, and the phase jump Δθ of the switch output point when the open switch operates are illustrated in
(35) The phase jump of 10° occurs in the commercial power system at a time of 0.5 seconds and the open switch is opened after 2 milliseconds by detecting the phase jump. While the switch is opened, control is performed such that detection of the phase jump is not performed.
(36) From the foregoing simulation result, it can be understood that voltage fluctuation at the time of occurrence of the phase jump is about 10% of the voltage amplitude and an overcurrent occurs. In this case, when phase jump is monitored and the open switch is opened before large phase jump, it is possible to inhibit the essential load from being opened (being dropped) due to an overcurrent if an overcurrent tolerance of a PCS (an inverter) of the essential load is equal to or less than twice (conversely, the essential load may be dropped due to an overcurrent if this countermeasure is not taken).
(37) From the simulation result, it can be understood that countermeasures cannot be taken against the system abnormality despite the effective detection of a phase jump with only the function of detecting voltage drop including instantaneous voltage drop.
Advantageous Effects of First Embodiment
(38) In the uninterruptable power supply device 100 that has the configuration according to the first embodiment, the system abnormality detection unit detects a system abnormality which is at least one of voltage rise, phase fluctuation, voltage imbalance, a harmonic abnormality, and a flicker in addition to at least one of frequency fluctuation and voltage drop including instantaneous voltage drop. Thus, when the detected system abnormality is equal to or greater than tolerance of the essential load 30 or the power supply unit 2 against the system abnormality, the open switch 3 is opened. Therefore, it is possible to respond to various system abnormalities in addition to frequency fluctuation and voltage drop including instantaneous voltage drop. Since the open switch 3 is opened using not only the tolerance of the essential load against the system abnormality but also tolerance of the power supply unit 2 against the system abnormality as parameters, it is possible to respond to a system abnormality taken into consideration for not only the essential load 30 but also the power supply unit 2.
Second Embodiment
(39) Next, a second embodiment of the uninterruptable power supply device according to the present invention will be described.
(40) The uninterruptable power supply device of the second embodiment differs from that of the foregoing embodiment in a configuration of the control unit 6 and an operation of the power supply unit 2, as illustrated in
(41) That is, the control unit 6 according to the second embodiment does not open the open switch 3 and the power supply unit 2 performs a compensation operation for each system abnormality when at least one of system abnormalities detected by the detection units 51 to 57 is equal to or greater than a predetermined threshold which is less than tolerance of the essential load 30 or the power supply unit 2 against the system abnormality in addition to the foregoing embodiment.
(42) An operation of the power supply unit 2 along with specific opening and closing control on the open switch 3 by the control unit 6 will be described with reference to
(43) At the normal time, the uninterruptable power supply device 100 closes the open switch 3, and the power supply unit 2 and the essential load 30 are in a state in which the power supply unit 2 and the essential load 30 are connected to the commercial power system 10 via the open switch 3.
(44) (1) When the detected system abnormality is less than the predetermined threshold (
(45) (2) When the detected system abnormality is equal to or greater than the predetermined threshold (
(46) (3) When the detected system abnormality is equal to or greater than system abnormality tolerance less between the system abnormality tolerances of the power supply unit 2 and the essential load 30 (
Advantageous Effect of Second Embodiment
(47) In the uninterruptable power supply device 100 that has the configuration according to the second embodiment, it is possible to reduce a frequency of transition to the autonomous running in which running cost is high in addition to the advantageous effects of the first embodiment.
Other Modified Embodiments
(48) The present invention is not limited to the foregoing embodiments.
(49) For example, as illustrated in
(50) In each of the foregoing embodiments, when any one condition for the system abnormality is satisfied, the open switch 3 is opened. However, when a combination of two or more system abnormalities satisfies a predetermined condition, the open switch 3 may be opened.
(51) The present invention is not limited to the foregoing embodiments and it is needless to say that various modifications can be made within the scope of the present invention without departing from the gist of the present invention.