1460920001-85e06bd9-c86d-427d-baac-8619bf8794b3

1. A semiconductor device comprising:
a current generating circuit unit configured to generate and output an output current according to a resistance of a resistor connected to a predetermined external terminal;
a load circuit unit to which the output current from the current generating circuit is supplied; and
a terminal voltage detecting circuit unit configured to detect a connection state between the external terminal and the resistor based on a voltage of the external terminal, and output a signal according to a result of the detection, wherein:
the current generating circuit unit controls another current supplied to the resistor through the external terminal and controls the output current, so that the voltage of the external terminal corresponds to a predetermined first reference voltage; and
the terminal voltage detecting circuit unit detects whether a voltage difference between the voltage of the external terminal and the first reference voltage is less than or equal to a predetermined value, and stops an operation of the load circuit unit in the event that the voltage difference exceeds the predetermined value.
2. The semiconductor device according to claim 1, wherein:
the terminal voltage detecting circuit unit detects whether the voltage of the external terminal is less than or equal to a predetermined second reference voltage which is lower than the first reference voltage, to detect whether the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value.
3. The semiconductor device according to claim 1, wherein:
the terminal voltage detecting circuit unit detects whether the voltage of the external terminal is greater than or equal to a predetermined third reference voltage which is higher than the first reference voltage, to detect whether the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value.
4. The semiconductor device according to claim 1, wherein:
the load circuit unit is an oscillating circuit configured to generate and output signals having a frequency according to the output current supplied from the current generating circuit unit.
5. The semiconductor device according to claim 1, wherein:
in the event that the terminal voltage detecting circuit unit detects that the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value, the current generating circuit unit stops supplying the output current to the load circuit unit.
6. The semiconductor device according to claim 5, wherein:
the current generating circuit unit comprises a constant current source configured to generate and output a predetermined constant current; and
in the event that the terminal voltage detecting circuit unit detects that the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value, the current generating circuit unit stops outputting the output current and supplies the constant current from the constant current source to the load circuit unit.
7. The semiconductor device according to claim 5, wherein:
the terminal voltage detecting circuit unit detects whether the voltage of the external terminal is less than or equal to a predetermined second reference voltage which is lower than the first reference voltage, to detect whether the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value.
8. The semiconductor device according to claim 5, wherein:
the terminal voltage detecting circuit unit detects whether the voltage of the external terminal is greater than or equal to a predetermined third reference voltage which is higher than the first reference voltage, to detect whether the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value.
9. The semiconductor device according to claim 5, wherein:
the load circuit unit is an oscillating circuit configured to generate and output signals having a frequency according to the output current supplied from the current generating circuit unit.
10. A semiconductor device comprising:
a current generating circuit unit configured to generate and output an output current according to a resistance of a resistor connected to a predetermined external terminal;
a load circuit unit to which the output current from the current generating circuit is supplied; and
a terminal voltage detecting circuit unit configured to detect a connection state between the external terminal and the resistor based on a voltage of the external terminal, and output a signal according to a result of the detection, wherein:
the current generating circuit unit controls another current supplied to the resistor through the external terminal and controls the output current, so that the voltage of the external terminal corresponds to a predetermined first reference voltage; and
the terminal voltage detecting circuit unit detects whether a voltage difference between the voltage of the external terminal and the first reference voltage is less than or equal to a predetermined value, and in the event that the terminal voltage detecting circuit unit detects that the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value, the current generating circuit unit stops supplying the output current to the load circuit unit.
11. The semiconductor device according to claim 10, wherein:
the current generating circuit unit comprises a constant current source configured to generate and output a predetermined constant current; and
in the event that the terminal voltage detecting circuit unit detects that the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value, the current generating circuit unit stops outputting the output current and supplies the constant current from the constant current source to the load circuit unit.
12. The semiconductor device according to claim 10, wherein:
the terminal voltage detecting circuit unit detects whether the voltage of the external terminal is less than or equal to a predetermined second reference voltage which is lower than the first reference voltage, to detect whether the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value.
13. The semiconductor device according to claim 10, wherein:
the terminal voltage detecting circuit unit detects whether the voltage of the external terminal is greater than or equal to a predetermined third reference voltage which is higher than the first reference voltage, to detect whether the voltage difference between the voltage of the external terminal and the first reference voltage exceeds the predetermined value.
14. The semiconductor device according to claim 10, wherein:
the load circuit unit is an oscillating circuit configured to generate and output signals having a frequency according to the output current supplied from the current generating circuit unit.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A circuit breaker comprising:
a first dc line electrically connectable to first incoming and first outgoing dc lines, wherein the first dc line comprises a first fault-interrupting switch contact system comprising contacts; and
a first switching aid network comprising:
a first and a second rectifier string, wherein each rectifier string comprises one or more series connected reverse blocking power electronic devices that define a first H-bridge rectifier, wherein the H-bridge rectifier comprises first and second dc input terminals and first and second dc output terminals, wherein the first and second dc input terminals are connected to the first dc line in parallel with the first fault-interrupting switch contact system,
a snubber string comprising at least one series connected power electronic devices capable of being turned on by gate control and a capacitor, wherein the snubber string is connected between the first and second dc output terminals of the first H-bridge rectifier,
a pre-charge string comprising at least one series connected power electronic devices capable of being turned on by gate control and a resistor, wherein the pre-charge string is connected between the first and second dc output terminals of the first H-bridge rectifier, and
a surge arrester connected between the first and second dc output terminals of the first H-bridge rectifier.
2. The circuit breaker according to claim 1, further comprising a resistor in parallel with the capacitor (of the snubber string of the first switching aid network.
3. The circuit breaker according to claim 1, wherein the switching aid network further comprises at least one additional surge arrester connected between the first dc line and a ground reference.
4. The circuit breaker according to claim 1, further comprising at least one earthing switch connected to the first dc line.
5. The circuit breaker according to claim 1, further comprising a first isolating switch contact system connected to the first dc line and electrically connectable to the first incoming dc line, wherein the first isolating switch contact system comprises contacts.
6. The circuit breaker according to claim 5, further comprising a second isolating switch contact system connected to the first dc line and electrically connectable to the first outgoing dc line, wherein the second isolating switch contact system comprises contacts.
7. The circuit breaker according to claim 1, further comprising a controller for opening and closing of the contacts of the fault-interrupting switch contact system.
8. The circuit breaker according to claim 5, further comprising a controller for opening and closing the contacts of the first isolating switch contact system andor the second switch contact isolating system.
9. The circuit breaker according to claim 1, further comprising:
a second dc line electrically connectable to second incoming and outgoing dc lines, wherein the second dc line comprises a second fault-interrupting switch contact system comprising contacts; and
a second switching aid network comprising:
a first and a second rectifier string, wherein each rectifier string comprises one or more series connected reverse blocking power electronic devices that define a second H-bridge rectifier, wherein the second H-bridge rectifier comprises first and second dc input terminals and first and second dc output terminals, wherein the first and second dc input terminals are connected to the second dc line in parallel with the second fault-interrupting switch contact system,
a snubber string comprising at least one series connected power electronic devices capable of being turned on by gate control and a capacitor, wherein the snubber string is connected between the first and second dc output terminals of the second H-bridge rectifier,
a pre-charge string comprising at least one series connected power electronic devices capable of being turned on by gate control and a resistor, wherein the pre-charge string is connected between the first and second dc output terminals of the second H-bridge rectifier, and
a surge arrester connected between the first and second dc output terminals of the second H-bridge rectifier.
10. The circuit breaker according to claim 9, further comprising a resistor in parallel with the capacitor of the snubber string of the second switching aid network.
11. A method of interrupting fault current using a circuit breaker comprising a first dc line electrically connectable to first incoming and first outgoing dc lines, wherein the first dc line comprises a first fault-interrupting switch contact system comprising contacts; and
a first switching aid network comprising:
a first and a second rectifier string, wherein each rectifier string comprises one or more series connected reverse blocking power electronic devices that define a first H-bridge rectifier, wherein the H-bridge rectifier comprises first and second dc input terminals and first and second dc output terminals, wherein the first and second dc input terminals are connected to the first dc line in parallel with the first fault-interrupting switch contact system,
a snubber string comprising at least one series connected power electronic devices capable of being turned on by gate control and a capacitor, wherein the snubber string is connected between the first and second dc output terminals of the first H-bridge rectifier,
a pre-charge string comprising at least one series connected power electronic devices capable of being turned on by gate control and a resistor, wherein the pre-charge string is connected between the first and second dc output terminals of the first H-bridge rectifier, and
a surge arrester connected between the first and second dc output terminals of the first H-bridge rectifier,
the method comprising:
actuating the fault-interrupting switch contact system so that the contacts open, causing an arc to be formed and wherein the switching aid network causes the arc to transit into and thereafter remain in an astatic region until it is extinguished.
12. The method of interrupting fault current according to claim 11, wherein the switching aid network limits the transient recovery voltage that is applied to the fault-interrupting circuit breaker switch contact system and dissipates inductive switching energy.
13. The method of interrupting fault current according to claim 11, wherein the switching aid network moderates line current and voltage transient whilst pre-charging the dc line prior to transmission of power.
14. The method of interrupting fault current according to claim 11, wherein during pre-charging the contacts of the fault-interrupting switch contact system are closed when the voltages in the incoming and outgoing dc lines are substantially equal.
15. The method of interrupting fault current according to claim 11, wherein a dielectric liquid or gas andor the gaseous thermal decomposition phases of the dielectric liquid or gas flows between the contacts during actuation of the fault-interrupting switch contact system.