IP Library Granted Patent US 11,462,938
Granted Patent B2
US 11,462,938 · App. 17/421,489 · Granted Oct 4, 2022

Uninterruptible power supply system

Inventor: Toshiki Nakamori (Chuo-ku, JP)
Assignee: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
H02J9/062H02M3/158H02M7/219H02M7/5387
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Quick Facts
Patent No.
US 11,462,938
App. No.
17/421,489
Granted
Oct 4, 2022
Kind
B2
Abstract

A master controller controls a plurality of uninterruptible power supply apparatuses each including a slave controller and detection circuits that detect at least a DC input voltage, an AC output voltage, and an output current of an inverter. The master controller generates a first voltage command value and a second voltage command value common to the plurality of uninterruptible power supply apparatuses based on detection values from the detection circuits transmitted from the slave controller of each of the uninterruptible power supply apparatuses. The master controller transmits the generated first and second voltage command values to the slave controller of each of the uninterruptible power supply apparatuses. The slave controller generates a first control signal for controlling a converter in accordance with the received first voltage command value. The slave controller generates a second control signal for controlling the inverter in accordance with the received second voltage command value.

Claims (76)

1. An uninterruptible power supply system comprising:

a plurality of uninterruptible power supply apparatuses connected in parallel to a load; and

a master controller that controls the plurality of uninterruptible power supply apparatuses,

each of the plurality of uninterruptible power supply apparatuses including:

a converter that converts AC power supplied from an AC power supply to DC power,

an inverter that converts DC power supplied from the converter or a power storage device to AC power and supplies AC power to the load,

a detection circuit that detects at least a DC input voltage to the inverter, an AC output voltage from the inverter, and an output current from the inverter, and

a slave controller communicatively connected to the master controller, the slave controller controlling the converter and the inverter; wherein

the master controller generates a first voltage command value and a second voltage command value common to the plurality of uninterruptible power supply apparatuses based on a detection value from the detection circuit transmitted from the slave controller of each of the plurality of uninterruptible power supply apparatuses, and transmits the generated first and second voltage command values to the slave controller of each of the plurality of uninterruptible power supply apparatuses, and

the slave controller generates a first control signal for controlling the converter in accordance with the received first voltage command value, and generates a second control signal for controlling the inverter in accordance with the received second voltage command value, wherein

the master controller calculates a first average value by averaging detection values of the DC input voltages in the plurality of uninterruptible power supply apparatuses, and generates the first voltage command value such that the first average value follows a first target value, and

the slave controller corrects the first voltage command value in accordance with a difference of the detection value of the DC input voltage in a corresponding uninterruptible power supply apparatus from the first target value, and generates the first control signal based on the corrected first voltage command value.

2. The uninterruptible power supply system according to claim 1 , wherein

the convener includes first and second semiconductor switching elements that are connected in series to each other and complementarily turned on and off in response to the first control signal, and

the slave controller provides a deadtime for simultaneously turning off the first and second semiconductor switching elements to the first control signal.

3. An uninterruptible power supply system comprising:

a plurality of uninterruptible power supply apparatuses connected in parallel to a load; and

a master controller that controls the plurality of uninterruptible power supply apparatuses,

each of the plurality of uninterruptible power supply apparatuses including:

a converter that converts AC power supplied from an AC power supply to DC power,

an inverter that converts DC power supplied from the converter or a power storage device to AC power and supplies AC power to the load,

a detection circuit that detects at least a DC input voltage to the inverter, an AC output voltage from the inverter, and an output current from the inverter, and

a slave controller communicatively connected to the master controller, the slave controller controlling the converter and the inverter; wherein

the master controller generates a first voltage command value and a second voltage command value common to the plurality of uninterruptible power supply apparatuses based on a detection value from the detection circuit transmitted from the slave controller of each of the plurality of uninterruptible power supply apparatuses, and transmits the generated first and second voltage command values to the slave controller of each of the plurality of uninterruptible power supply apparatuses, and

the slave controller generates a first control signal for controlling the converter in accordance with the received first voltage command value, and generates a second control signal for controlling the inverter in accordance with the received second voltage command value, wherein

the master controller calculates a second average value by averaging detection values of the output currents in the plurality of uninterruptible power supply apparatuses, and generates the second voltage command value such that the second average value follows a second target value, and

the slave controller corrects the second voltage command value in accordance with a difference of the detection value of the output current in a corresponding uninterruptible power supply apparatus from the second target value, and generates the second control signal based on the corrected second voltage command value.

4. The uninterruptible power supply system according to claim 3 , wherein

the inverter includes third and fourth semiconductor switching elements that are connected in series to each other and complementarily turned on and off in response to the second control signal, and

the slave controller provides a deadtime for simultaneously turning off the third and fourth semiconductor switching elements to the second control signal.

5. An uninterruptible power supply system comprising:

a plurality of uninterruptible power supply apparatuses connected in parallel to a load; and

a master controller that controls the plurality of uninterruptible power supply apparatuses,

each of the plurality of uninterruptable power supply apparatuses including:

a converter that converts AC power supplied from an AC power supply to DC power,

an inverter that converts DC power supplied from the converter or a power storage device to AC power and supplies AC power to the load,

a detection circuit that detects at least a DC input voltage to the inverter, an AC output voltage from the inverter, and an output current from the inverter, and

a slave controller communicatively connected to the master controller, the slave controller controlling the converter and the inverter; wherein

the master controller generates a first voltage command value and a second voltage command value common to the plurality of uninterruptible power supply apparatuses based on a detection value from the detection circuit transmitted from the slave controller of each of the plurality of uninterruptible power supply apparatuses, and transmits the generated first and second voltage command values to the slave controller of each of the plurality of uninterruptible power supply apparatuses, and

the slave controller generates a first control signal for controlling the converter in accordance with the received first voltage command value, and generates a second control signal for controlling the inverter in accordance with the received second voltage command value, wherein

each of the plurality of uninterruptible power supply apparatuses further includes

a DC line connected between the converter and the inverter, and

a bidirectional chopper that supplies and receives DC power between the power storage device and the DC line,

the master controller generates a third voltage command value common to the plurality of uninterruptible power supply apparatuses based on the detection value from the detection circuit transmitted from the slave controller of each of the plurality of uninterruptible power supply apparatuses, and transmits the generated third voltage command value to the slave controller of each of the plurality of uninterruptible power supply apparatuses, and

the slave controller generates a third control signal for controlling the bidirectional chopper in accordance with the received third voltage command value.

6. The uninterruptible power supply system according to claim 5 , wherein

the master controller calculates a third average value by averaging detection values of the DC input voltages in the plurality of uninterruptible power supply apparatuses, and generates the third voltage command value such that the third average value follows a third target value, and

the slave controller corrects the third voltage command value in accordance with a difference of the detection value of the DC input voltage in a corresponding uninterruptible power supply apparatus from the third target value, and generates the third control signal based on the corrected third voltage command value.

7. The uninterruptible power supply system according to claim 6 , wherein

the bidirectional chopper includes fifth and sixth semiconductor switching elements that are connected in series to each other and complementarily turned on and off in response to the third control signal, and

the slave controller provides a deadtime for simultaneously turning off the fifth and sixth semiconductor switching elements to the third control signal.

8. The uninterruptible power supply system according to claim 1 , wherein

the master controller and each of the slave controller further includes a communication unit that transmits and receives data by serial communication.

9. An uninterruptible power supply system comprising:

a plurality of uninterruptible power supply apparatuses connected in parallel to a load; and

a master controller that controls the plurality of uninterruptible power supply apparatuses,

each of the plurality of uninterruptible power supply apparatuses including:

a converter that converts AC power supplied from an AC power supply to DC power,

an inverter that converts DC power supplied from the converter or a power storage device to AC power and supplies AC power to the load,

a detection circuit that detects at least a DC input voltage to the inverter, an AC output voltage from the inverter, and an output current from the inverter, and

a slave controller communicatively connected to the master controller, the slave controller controlling the converter and the inverter: wherein

the master controller generates a first voltage command value and a second voltage command value common to the plurality of uninterruptible power supply apparatuses based on a detection value from the detection circuit transmitted from the slave controller of each of the plurality of uninterruptible power supply apparatuses, and transmits the generated first and second voltage command values to the slave controller of each of the plurality of uninterruptible power supply apparatuses, and

the slave controller generates a first control signal for controlling the converter in accordance with the received first voltage command value, and generates a second control signal for controlling the inverter in accordance with the received second voltage command value,

the master controller and each of the slave controller further includes a communication unit that transmits and receives data by serial communication,

the slave controller further includes a check circuit that senses a communication error in the serial communication, and when the check circuit senses the communication error, the slave controller holds previous first and second voltage command values, wherein

when the check circuit senses the communication error continuously for a prescribed period, the slave controller disconnects a corresponding uninterruptible power supply apparatus from the uninterruptible power supply system.

10. The uninterruptible power supply system according to claim 1 , wherein

the slave controller stops operation of the converter and the inverter when a corresponding uninterruptible power supply apparatus fails.

11. The uninterruptible power supply system according to claim 3 , wherein

when the corresponding uninterruptible power supply apparatus fails, the slave controller stops operation of the converter and the inverter, and transmits a failure detection signal to the master controller, and

the master controller determines the second target value based on currents to be allocated to uninterruptible power supply apparatuses other than a failed uninterruptible power supply apparatus among the plurality of uninterruptible power supply apparatuses.

12. The uninterruptible power supply system according to claim 1 , further comprising a power cable for supplying control power supply from the master controller to the slave controller of each of the plurality of uninterruptible power supply apparatuses.

13. The uninterruptible power supply system according to claim 1 , wherein

the master controller is separate from the plurality of uninterruptible power supply apparatuses.

14. The uninterruptible power supply system according to claim 1 , wherein

the master controller is integrated with the slave controller of any one of the plurality of uninterruptible power supply apparatuses.

Assignments (2)
CHANGE OF NAME Recorded Apr 26, 2024
From: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
To: TMEIC CORPORATION
Reel/Frame 067244/0359 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 8, 2021
From: NAKAMORI, TOSHIKI
To: TOSHIBA MITSUBISHI-ELECTRIC INDUSTRIAL SYSTEMS CORPORATION
Reel/Frame 056791/0731 →
Continuity (1)
Related Publication 20220069616A1 · Mar 3, 2022