Parallel feeders for continued operation
US-2024310424-A1 · Sep 19, 2024 · US
US2016013644A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016013644-A1 |
| Application number | US-201514750243-A |
| Country | US |
| Kind code | A1 |
| Filing date | Jun 25, 2015 |
| Priority date | Jul 10, 2014 |
| Publication date | Jan 14, 2016 |
| Grant date | — |
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A power supply includes a load, an electric power line connected to the load, first and second DC power supplies which supply electric power to the load, an electric power converter connected between the electric power line and the first and the second DC power supplies, and a controller controlling the electric power converter. The first DC power supply serves for a voltage control, while the second DC power supply serves for an electric power control. The controller sets a difference between an electric power requested by the load and target output electric power of the first DC power supply as target output electric power of the second DC power supply, and compensates the target output electric power of the first DC power supply in accordance with a difference between the actual and the target output electric powers of the second DC power supply.
Opening claim text (preview).
1 . A power supply system comprising: a load; an electric power line connected to the load; a first DC power supply and a second DC power supply which are capable of supplying electric power to the load; an electric power converter connected to at least one of connections between the first DC power supply and the electric power line and between the second DC power supply and the electric power line; and a controller controlling an operation of the electric power converter, wherein the first and the second DC power supplies are connected in parallel to the electric power line and the first DC power supply serves as a power supply for an electric power control for the electric power line, while the second DC power supply serves as a power supply for a voltage control for the electric power line; and the controller sets a difference between an electric power requested by the load and target output electric power of the first DC power supply as target output electric power of the second DC power supply, and compensates the target output electric power of the first DC power supply in accordance with a difference between actual output electric power of the second DC power supply and the target output electric power of the second DC power supply. 2 . The power supply system according to claim 1 , wherein the controller compensates the target output electric power of the first DC power supply by obtaining the difference between the actual output electric power of the second DC power supply and the target output electric power of the second DC power supply when an output state of the first DC power supply is stable. 3 . The power supply system according to claim 2 , wherein the controller obtains the difference between the actual output electric power of the second DC power supply and the target output electric power of the second DC power supply by determining that the output state of the first DC power supply is stable when the target output electric power of the first DC power supply is equal to or larger than a predetermined value and a time change ratio of the target output electric power of the first DC power supply is equal to or less than a predetermined value. 4 . The power supply system according to claim 1 , wherein the controller obtains a smoothed reference value by applying a smoothing process to a reference value which is obtained by dividing the difference between the actual output electric power of the second DC power supply and the target output electric power of the second DC power supply by the target output electric power of the first DC power supply, calculates a learned value which is used to perform the compensation by using the smoothed reference value, and compensates the target output electric power of the first DC power supply by using the learned value. 5 . The power supply system according to claim 2 , wherein the controller obtains a smoothed reference value by applying a smoothing process to a reference value which is obtained by dividing the difference between the actual output electric power of the second DC power supply and the target output electric power of the second DC power supply by the target output electric power of the first DC power supply, calculates a learned value which is used to perform the compensation by using the smoothed reference value, and compensates the target output electric power of the first DC power supply by using the learned value. 6 . The power supply system according to claim 3 , wherein the controller obtains a smoothed reference value by applying a smoothing process to a reference value which is obtained by dividing the difference between the actual output electric power of the second DC power supply and the target output electric power of the second DC power supply by the target output electric power of the first DC power supply, calculates a learned value which is used to perform the compensation by using the smoothed reference value, and compensates the target output electric power of the first DC power supply by using the learned value. 7 . The power supply system according to claim 4 , wherein the controller updates the learned value by adding, after applying the smoothing process, a difference between the smoothed reference value and a previous learned value obtained in a previous process to the previous learned value, and finishes the compensation of the target output electric power of the first DC power supply when the updated learned value is in a deadband defining a range including the reference value. 8 . The power supply system according to claim 5 , wherein the controller updates the learned value by adding, after applying the smoothing process, a difference between the smoothed reference value and a previous learned value obtained in a previous process to the previous learned value, and finishes the compensation of the target output electric power of the first DC power supply when the updated learned value is in a deadband defining a range including the reference value. 9 . The power supply system according to claim 6 , wherein the controller updates the learned value by adding, after applying the smoothing process, a difference between the smoothed reference value and a previous learned value obtained in a previous process to the previous learned value, and finishes the compensation of the target output electric power of the first DC power supply when the updated learned value is in a deadband defining a range including the reference value. 10 . The power supply system according to claim 7 , wherein the controller sets an upper limit and a lower limit of the updated learned value and performs the compensation of the target output electric power of the first DC power supply when the updated learned value is in a range defined by the upper limit and the lower limit, while performing no compensation when the updated value is out of the range. 11 . The power supply system according to claim 8 , wherein the controller sets an upper limit and a lower limit of the updated learned value and performs the compensation of the target output electric power of the first DC power supply when the updated learned value is in a range defined by the upper limit and the lower limit, while performing no compensation when the updated value is out of the range. 12 . The power supply system according to claim 9 , wherein the controller sets an upper limit and a lower limit of the updated learned value and performs the compensation of the target output electric power of the first DC power supply when the updated learned value is in a range defined by the upper limit and the lower limit, while performing no compensation when the updated value is out of the range.
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