H02M7/525

Elimination of commutation failure by hybrid HVDC system
10305370 · 2019-05-28 · ·

A line commutated converter, LCC, for a high-voltage, direct current, HVDC, power converter comprises at least one bridge circuit for connection to at least one terminal of a DC system. Each bridge circuit comprises a plurality of arms, and each arm is associated with a respective phase of an AC system. Each arm comprises an upper and lower thyristor connected in series, an associated branch extending from between the upper and lower thyristors, and at least one capacitor module for each phase. The, or each capacitor module is operable to insert a capacitor into the respective arm of the bridge circuit.

Elimination of commutation failure by hybrid HVDC system
10305370 · 2019-05-28 · ·

A line commutated converter, LCC, for a high-voltage, direct current, HVDC, power converter comprises at least one bridge circuit for connection to at least one terminal of a DC system. Each bridge circuit comprises a plurality of arms, and each arm is associated with a respective phase of an AC system. Each arm comprises an upper and lower thyristor connected in series, an associated branch extending from between the upper and lower thyristors, and at least one capacitor module for each phase. The, or each capacitor module is operable to insert a capacitor into the respective arm of the bridge circuit.

POWER STORAGE SYSTEM, APPARATUS AND METHOD FOR CONTROLLING CHARGE AND DISCHARGE, AND PROGRAM
20190103756 · 2019-04-04 · ·

The charging and discharging control apparatus is an apparatus that controls charging and discharging of a power storage apparatus. The power storage apparatus is connected to an AC power line and is connectable to a specific load without involving the AC power line. The AC power line is connected to a power system, is connected to a direct-current power line through a DC/AC conversion apparatus (PV-PCS), and is connectable to a general load. The charging and discharging control apparatus includes an acquisition unit that acquires information on a direction of a current in the AC power line, and a control unit that supplies electric power to the power storage apparatus when a current is flowing from the AC power line to the power system.

POWER STORAGE SYSTEM, APPARATUS AND METHOD FOR CONTROLLING CHARGE AND DISCHARGE, AND PROGRAM
20190103756 · 2019-04-04 · ·

The charging and discharging control apparatus is an apparatus that controls charging and discharging of a power storage apparatus. The power storage apparatus is connected to an AC power line and is connectable to a specific load without involving the AC power line. The AC power line is connected to a power system, is connected to a direct-current power line through a DC/AC conversion apparatus (PV-PCS), and is connectable to a general load. The charging and discharging control apparatus includes an acquisition unit that acquires information on a direction of a current in the AC power line, and a control unit that supplies electric power to the power storage apparatus when a current is flowing from the AC power line to the power system.

Modular embedded multi-level converter

A method for power conversion includes coupling a first string to a second string via a first connecting node and a second connecting node to form at least one leg of a power converter. The first string is operatively coupled across a first bus and a second bus and comprises a first branch and a second branch coupled via a third connecting node. The first branch and the second branch include a plurality of controllable semiconductor switches. Furthermore, the second string comprises a first chain link and a second chain link coupled via an alternating current phase bus and includes a plurality of switching units. The first chain link and/or the second chain link are controlled to generate a negative voltage across at least one of the plurality of controllable semiconductor switches during a switch turn off process.

Modular embedded multi-level converter

A method for power conversion includes coupling a first string to a second string via a first connecting node and a second connecting node to form at least one leg of a power converter. The first string is operatively coupled across a first bus and a second bus and comprises a first branch and a second branch coupled via a third connecting node. The first branch and the second branch include a plurality of controllable semiconductor switches. Furthermore, the second string comprises a first chain link and a second chain link coupled via an alternating current phase bus and includes a plurality of switching units. The first chain link and/or the second chain link are controlled to generate a negative voltage across at least one of the plurality of controllable semiconductor switches during a switch turn off process.

Model predictive pulse pattern control based on optimizing a sequence of averaged switch positions
12119737 · 2024-10-15 · ·

A method for controlling an electrical converter system is provided herein. The method includes determining a switching signal and a reference trajectory of at least one electrical quantity of the electrical converter system over a horizon of future sampling instants; generating a sequence of averaged switch positions from the switching signal over the horizon; determining a sequence of optimized averaged switch positions with optimized averaged switch positions by optimizing a cost function based on the sequence of averaged switch positions; determining an optimized switching signal for the current sampling interval by moving switching transitions in the switching signal, such that the average of the switching signal with the modified switching transitions equals the optimized averaged switch position; and applying at least the next switching transition of the optimized switching signal for the current sampling interval to the electrical converter system.

Model predictive pulse pattern control based on optimizing a sequence of averaged switch positions
12119737 · 2024-10-15 · ·

A method for controlling an electrical converter system is provided herein. The method includes determining a switching signal and a reference trajectory of at least one electrical quantity of the electrical converter system over a horizon of future sampling instants; generating a sequence of averaged switch positions from the switching signal over the horizon; determining a sequence of optimized averaged switch positions with optimized averaged switch positions by optimizing a cost function based on the sequence of averaged switch positions; determining an optimized switching signal for the current sampling interval by moving switching transitions in the switching signal, such that the average of the switching signal with the modified switching transitions equals the optimized averaged switch position; and applying at least the next switching transition of the optimized switching signal for the current sampling interval to the electrical converter system.

ELIMINATION OF COMMUTATION FAILURE BY HYBRID HVDC SYSTEM
20180159421 · 2018-06-07 ·

A line commutated converter, LCC, for a high-voltage, direct current, HVDC, power converter comprises at least one bridge circuit for connection to at least one terminal of a DC system. Each bridge circuit comprises a plurality of arms, and each arm is associated with a respective phase of an AC system. Each arm comprises an upper and lower thyristor connected in series, an associated branch extending from between the upper and lower thyristors, and at least one capacitor module for each phase. The, or each capacitor module is operable to insert a capacitor into the respective arm of the bridge circuit.

ELIMINATION OF COMMUTATION FAILURE BY HYBRID HVDC SYSTEM
20180159421 · 2018-06-07 ·

A line commutated converter, LCC, for a high-voltage, direct current, HVDC, power converter comprises at least one bridge circuit for connection to at least one terminal of a DC system. Each bridge circuit comprises a plurality of arms, and each arm is associated with a respective phase of an AC system. Each arm comprises an upper and lower thyristor connected in series, an associated branch extending from between the upper and lower thyristors, and at least one capacitor module for each phase. The, or each capacitor module is operable to insert a capacitor into the respective arm of the bridge circuit.