Claims
- 1. A driver circuit comprising;
- a first electronic device having a first terminal adapted to be connected to a power supply, a second terminal and a control terminal, said first electronic device being responsive to a first control signal applied to said control terminal of said first electronic device to be in a non-conducting state to block current flow between said first and second terminals and being further responsive to a second control signal applied to said control terminal of said first electronic device to be in a conducting state to allow current flow between said first and second terminals; and
- a second electronic device having a first terminal adapted to be connected to a load, a second terminal connected to said second terminal of said first electronic device and a control terminal, said second electronic device being responsive to said first control signal applied to said control terminal of said second electronic device to be in a non-conducting state to block current flow between said first and second terminals and being further responsive to said second control signal applied to said control terminal of said second electronic device to be in a conducting state to allow current flow between said first and second terminals, said first and second electronic devices both being in said conducting state upon application of said second control signal, whereby current flows from said power supply and through both first and second electronic devices to said load.
- 2. The driver circuit according to claim 1 further including a control device electrically coupled to said control terminals of said first and second electronic devices, said control device generating said first and second control signals.
- 3. The driver circuit according to claim 2 wherein said control device is adapted to be electrically coupled to a port of a microprocessor and responsive to a signal at said microprocessor port to generate said first and second control signals.
- 4. The driver circuit according to claim 3 wherein said first and second electronic devices are field effect transistors with said first terminals being source terminals, said second terminals being drain terminals and said control terminals being gate terminals.
- 5. A driver circuit comprising;
- a first field effect transistor having a first source terminal adapted to be connected to a power supply, a first drain terminal and a first gate terminal, said first field effect transistor being responsive to a first control signal applied to said first gate terminal to be in a non-conducting state to block current flow between said first source and first drain terminals and being further responsive to a second control signal applied to said first gate terminal to be in a conducting state to allow current flow between said first source and first drain terminals;
- a second field effect transistor having a second source terminal adapted to be connected to a load, a second drain terminal connected to said first drain terminal of said first field effect transistor and a second gate terminal, said second field effect transistor being responsive to said first control signal applied to said second gate terminal to be in a non-conducting state to block current flow between said second source and second drain terminals and being further responsive to said second control signal applied to said second gate terminal to be in a conducting state to allow current flow between said second source and second drain terminals;
- a control device electrically coupled to said first and second gate terminals, said control device being adapted to be electrically coupled to a port of a microprocessor and responsive to a signal at said microprocessor port to generate said first and second control signals; and
- a voltage limiting device electrically coupled between said source and gate terminal of said first field effect transistor.
- 6. The driver circuit according to claim 5 wherein said voltage limiting device includes a Zener diode and a diode, said Zener diode having a cathode electrically coupled to said source terminal of said first field effect transistor, said Zener diode having an anode connected to an anode of said diode, said diode having a cathode connected to said gate terminal of said first field effect transistor.
- 7. The driver circuit according to claim 6 wherein said source of said first field effect transistor is connected to a power supply which generates an output voltage, and further wherein said control device includes a field effect transistor gate driver circuit, said gate driver circuit including a circuit which generates a voltage at said gate terminals which is greater than said output voltage generated by said power supply and is sufficient to cause said field effect transistors to be in a conducting state.
- 8. The driver circuit according to claim 7 wherein said the driver circuit is included in an anti-lock brake system controller for a vehicle and further wherein said load includes a coil for actuating a solenoid valve.
- 9. A driver circuit comprising;
- a first electronic device having a first terminal adapted to be connected through a load to a power supply, a second terminal and a control terminal, said first electronic device being responsive to a first control signal applied to said control terminal of said first electronic device to be in a non-conducting state to block current flow between said first and second terminals and being further responsive to a second control signal applied to said control terminal of said first electronic device to be in a conducting state to allow current flow between said first and second terminals; and
- a second electronic device having a first terminal adapted to be connected to ground, a second terminal connected to said second terminal of said first electronic device and a control terminal, said second electronic device being responsive to said first control signal applied to said control terminal of said second electronic device to be in a non-conducting state to block current flow between said first and second terminals and being further responsive to said second control signal applied to said control terminal of said second electronic device to be in a conducting state to allow current flow between said first and second terminals, said first and second electronic devices both being in said conducting state upon application of said second control signal, whereby current flows from said power supply and through said load and both first and second electronic devices to said ground.
- 10. The driver circuit according to claim 9 further including a control device electrically coupled to said control terminals of said first and second electronic devices, said control device generating said first and second control signals.
- 11. The driver circuit according to claim 10 wherein said first and second electronic devices are field effect transistors with said first terminals being source terminals, said second terminals being drain terminals and said control terminals being gate terminals.
- 12. A driver circuit comprising;
- a first field effect transistor having a first source terminal adapted to be connected through a load to a power supply, a first drain terminal and a first gate terminal, said first field effect transistor being responsive to a first control signal applied to said first gate terminal to be in a non-conducting state to block current flow between said first source and first drain terminals and being further responsive to a second control signal applied to said first gate terminal to be in a conducting state to allow current flow between said first source and first drain terminals;
- a second field effect transistor having a second source terminal adapted to be connected to ground, a second drain terminal connected to said first drain terminal of said first field effect transistor and a second gate terminal, said second field effect transistor being responsive to said first control signal applied to said second gate terminal to be in a non-conducting state to block current flow between said second source and second drain terminals and being further responsive to said second control signal applied to said second gate terminal to be in a conducting state to allow current flow between said second source and second drain terminals;
- a control device electrically coupled to said first and second gate terminals, said control device generating said first and second control signals; and
- a Zener diode having a cathode electrically coupled to said source terminal of said first field effect transistor, said Zener diode having an anode connected to an anode of a diode, said diode having a cathode connected to said gate terminal of said first field effect transistor.
- 13. A driver circuit comprising:
- a first field effect transistor having a first source terminal adapted to be connected to a power supply, said first field effect transistor further having a first drain terminal and a first gate terminal;
- a second field effect transistor having a second source terminal adapted to be connected to a load and a second drain terminal connected to said first drain terminal of said first field effect transistor, said second field effect transistor further having a second gate terminal, said second field effect transistor being responsive to a first control signal being applied to said second gate terminal to be in a conducting state and being further responsive to a second control signal being applied to said second gate terminal to be in a non-conducting state;
- a Zener diode having an anode and a cathode, said Zener diode cathode connected to said source terminal of said first field effect transistor;
- a diode having an anode and a cathode, said diode anode being connected to said Zener diode anode and said diode cathode being connected to said first gate of said first field effect transistor;
- a resistor having a first end and a second end, said first end being connected to said first gate of said first field effect transistor and second end being connected to said second gate of said second field effect transistor; and
- a control device electrically coupled to said second gate terminal of said second field effect transistor, said control device generating said first and second control signals.
- 14. The driver circuit according to claim 13 wherein said source of said first field effect transistor is connected to a power supply which generates an output voltage, and further wherein said control device includes a field effect transistor gate driver circuit, said gate driver circuit including a circuit which generates a voltage at said gate terminals which is greater than said power supply output voltage and is sufficient to cause said field effect transistors to be in a conducting state.
- 15. The driver circuit according to claim 14 wherein said control device is connected to said power supply and is responsive to said power supply voltage exceeding a predetermined value to apply said second control signal to said second gate terminal of said second field effect transistor.
- 16. The driver circuit according to claim 15 wherein said control device is connected to a port on a microprocessor, said control device being responsive to a signal at said microprocessor port to generate said first and second control signals.
- 17. The driver circuit according to claim 16 wherein said the driver circuit is included in an anti-lock brake system controller for a vehicle and further wherein said load includes a coil for actuating a solenoid valve.
- 18. The driver circuit according to claim 17 wherein said power supply generates an output voltage, and further wherein said control device includes a field effect transistor gate driver circuit, said gate driver circuit including a circuit which generates a voltage at said second gate terminal of said second field effect transistor which is greater than said power supply output voltage and is sufficient to cause said second field effect transistor to be in said conducting sate.
- 19. A driver circuit comprising:
- a first field effect transistor having a first source terminal adapted to be connected through a load to a power supply, said first field effect transistor further having a first drain terminal and a first gate terminal;
- a second field effect transistor having a second source terminal adapted to be connected to a ground and a second drain terminal connected to said first drain terminal of said first field effect transistor, said second field effect transistor further having a second gate terminal, said second field effect transistor being responsive to a first control signal being applied to said second gate terminal to be in a conducting state and being further responsive to a second control signal being applied to said second gate terminal to be in a non-conducting state;
- a Zener diode having an anode and a cathode, said Zener diode cathode connected to said source terminal of said first field effect transistor;
- a diode having an anode and a cathode, said diode anode being connected to said Zener diode anode and said diode cathode being connected to said first gate of said first field effect transistor;
- a resistor having a first end and a second end, said first end being connected to said first gate of said first field effect transistor and second end being connected to said second gate of said second field effect transistor; and
- a control device electrically coupled to said second gate terminal of said second field effect transistor, said control device generating said first and second control signals.
CROSS REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Application No. 60/020,659, filed Jun. 27, 1996.
US Referenced Citations (11)