Claims
- 1. A control circuit comprising:
a plurality of drive current output circuit groups, each of which includes at least one drive current output circuit; a control voltage generating circuit which has an output node; a voltage divider which has a plurality of control voltage outputting nodes and a plurality of resistance elements, wherein each of said resistance elements is connected between the respective control voltage outputting nodes, wherein the plurality of control voltage outputting nodes including a first end node which is located at one end of the voltage divider and a second end node which is located at the other end of the voltage divider, wherein the first end node is connected to the output node of the control voltage generating circuit, and wherein each of the control voltage outputting nodes supplies a control voltage to the respective drive current output circuit groups; a first current output circuit which outputs a first current based on the voltage of the first end node; a second current output circuit which outputs a second current based on the voltage of the second end node; and a compensation voltage generating circuit which outputs a compensation voltage to the second end of the voltage divider, wherein the compensation voltage compensates a difference between the first current and the second current.
- 2. The control circuit according to claim 1, wherein the drive current output circuit groups are located in series of the drive current output circuit groups, wherein the first current output circuit is located one end of the series and the second current output circuit is located the other end of the series of the drive current output circuit groups.
- 3. The control circuit according to claim 1, wherein each of the drive current output circuit groups includes a first transistor having a first terminal which is supplied a first power supply voltage, a second terminal and a gate terminal which is connected to the control voltage outputting node, and a second transistor having a first terminal which is connected to the second terminal of the first transistor, a second terminal which is supplied a second power supply voltage and a gate terminal which is supplied a switching signal.
- 4. The control circuit according to claim 1, wherein the drive current output circuit groups are located in series, wherein the control voltage generating circuit is located near the one end of the drive current output circuit groups.
- 5. The control circuit according to claim 1, wherein each of the drive current output circuit groups includes a plurality of the drive current output circuits.
- 6. A control circuit comprising:
a first drive current output circuit which has a first, a second and a third nodes, wherein the first power supply voltage is supplied from the first node and a first drive current is outputted from the third node; a second drive current output circuit which has a first, a second and a third nodes, wherein the first power supply voltage is supplied from the first node and a second drive current is outputted from the third node; a control voltage generating circuit which is located near the first current output circuit, the control voltage generating circuit has an output node which outputs a first control voltage to the second node of the first drive current output circuit and a second control voltage to the second node of the second drive current output circuit via a resistor element; a first current output circuit which outputs a first detected current based on the first control voltage; a second current output circuit which outputs a second detected current based on the second control voltage; and a compensation voltage generating circuit which outputs a compensation voltage to the second current output circuit, so as to equalize the first control voltage and the second control voltage.
- 7. A control circuit comprising:
a plurality of drive current output circuit groups each of which includes at least one drive current output circuit; a voltage divider which has a plurality of control voltage outputting nodes each of which is divided by a resistance element each other, wherein the plurality of control voltage outputting nodes including a first end node which is located at one end of the voltage divider and a second end node which is located at the other end of the voltage divider, wherein each of the control voltage outputting node supplies a control voltage to the respective drive current output circuit group; a first converter which outputs a control voltage of the first end node based on a first reference current; a second converter which outputs a control voltage of the second end node based on a second reference current; and a reference current generator which includes an operational amplifier, the reference current generator controls the first current and the second current to be approximately equal.
- 8. The control circuit according to claim 7, wherein the drive current output circuit groups are located in series, wherein the first converter is located one end of the series of the drive current output circuit groups and the second converter is located the other end of the series of the drive current output circuit groups.
- 9. The control circuit comprising according to claim 7, wherein the first converter includes a first transistor has a source connected to a power supply voltage, a gate connected to the first end node and a drain, and a second transistor has a source connected to the drain of the first transistor, a gate connected to the ground potential and a drain outputting the first current, and wherein the second converter includes a third transistor has a source connected to the power supply voltage, a gate connected to the second end node and a drain, and a fourth transistor has a source connected to the drain of the third transistor, a gate connected to the ground potential and a drain outputs the second current.
- 10. The control circuit according to claim 7, wherein the first converter includes a first transistor, a second transistor a third transistor and a first resistor, wherein the first transistor has a source connected to a power supply voltage, a gate connected to the first end node and a drain, wherein the second transistor has a source connected to the drain of the first transistor, a gate connected to a ground potential and a drain outputs the first current, wherein the first resistor has a first end connected to the power supply voltage and second end connected to the gate of the first transistor, wherein the third transistor has a first terminal connected to the second end of the first resistor, a second terminal connected to the ground potential and a gate connected to the drain of the second transistor; and wherein the second converter includes a fourth transistor, a fifth transistor, a sixth transistor and a second resistor, wherein the fourth transistor has a source connected to a power supply voltage, a gate connected to the second end node and a drain, wherein the fifth transistor has a source connected to the drain of the fourth transistor, a gate connected to a ground potential and a drain outputs the second current, wherein the second resistor has a first end connected to the power supply voltage and second end connected to the gate of the fourth transistor, wherein the sixth transistor has a first terminal connected to the second end of the second resistor, a second terminal connected to the ground potential and a gate connected to the drain of the fifth transistor.
Priority Claims (1)
Number |
Date |
Country |
Kind |
169636/2002 |
Jun 2002 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATION
[0001] The present application claims priority under 35 U.S.C. §119 to Japanese Patent Application No. 2002-169636, filed Jun. 11, 2002, which is herein incorporated by reference in their entirety for all purposes.