Claims
- 1. An apparatus for applying an adjustable bipolar current to a load comprising:
a voltage-controlled power supply having a unipolar output; an H-bridge, having a first side with two active elements connected at a first node in series on each side between said unipolar output of the power supply and ground, and having a second side with two active elements connected at a second node in series between said unipolar output of the power supply and ground, wherein said first node and said second node are adapted to be coupled to said load so that current flows between said first and second nodes through the load, the current having a polarity determined by a direction of said flow; at least one of the two active elements on the first and second sides of the H-bridge comprising active conductive elements responsive to control signals which set a magnitude of current flow through the conductive elements; control logic that provides the control signals to said active elements on the first and second sides to set the polarity of the current from said unipolar output of the power supply through said load.
- 2. The apparatus of claim 1 comprising a thermoelectric cooler coupled to the first and second nodes, which comprises at least a portion of said load.
- 3. The apparatus of claim 1 comprising a thermoelectric cooler coupled to the first and second nodes, which comprises at least a portion of said load, and further including a sensor to determine a temperature of a thermal load affixed to said thermoelectric cooler, and wherein the control logic includes circuitry coupled to the sensor by which the temperature of said thermal load is maintained near predetermined value.
- 4. The apparatus of claim 1, wherein said active conductive elements are characterized by linear operation within a range of voltage drops across said active conductive elements, and further including
logic, coupled to said voltage-controlled power supply and to said H-bridge, to supply a control voltage to maintain the unipolar output above a voltage across the first and second node so that a voltage drop across at least one of said active conductive elements remains within said range, including for a magnitude of load voltage below a threshold voltage, clamping the unipolar output at or near a clamp value, and for a magnitude of load voltage above said threshold voltage, maintaining the unipolar output at a level above the load voltage by a headroom value sufficient to maintain a voltage drop across said active conductive element near a lower limit of said range.
- 5. The apparatus of claim 4 in which said logic coupled to said voltage-controlled power supply to supply a control voltage comprises analog circuitry.
- 6. The apparatus of claim 4 in which said logic coupled to said voltage-controlled power supply to supply a control voltage comprises analog circuitry including an absolute value circuit, followed by a voltage inversion and offset addition circuit, followed by a clamping circuit, and followed by a final voltage inversion circuit.
- 7. The apparatus of claim 4 in which said voltage-controlled power supply is a commercially-available switching-mode power supply with a controlling terminal by which the output voltage of said power supply may be adjusted over a range between some minimum and maximum voltage.
- 8. The apparatus of claim 4 in which in which said logic coupled to said voltage-controlled power supply to supply a control voltage comprises digital circuitry.
- 9. The apparatus of claim 4 in which in which said logic coupled to said voltage-controlled power supply to supply a control voltage comprises a software controlled processor.
- 10. The apparatus of claim 4 wherein at least one of the conductive elements comprises a voltage-controlled current sink, including an N-channel MOSFET transistor connected in series with a current-sensing resistor, across said current-sensing resistor there being a voltage drop representative of current flow through said current sink, said voltage drop then subsequently being applied across a summing resistor, causing a sense current to flow through said summing resistor, said sense current being representative of the current through said current sink and being subsequently added to a current representative of a command current by an operational amplifier which is used to control said MOSFET transistor.
- 11. The apparatus of claim 10 wherein at least one of the conductive elements comprises a circuit including a level shifter and polarity inverter, whose output is then connected to a P-channel MOSFET transistor wherein the voltage applied across gate and source terminals of said P-channel MOSFET is proportional to the voltage applied across gate and source terminals of the N-channel MOSFET.
- 12. A system for applying an adjustable bipolar current to a load comprising:
a voltage-controlled unipolar power supply; an H-bridge with four active elements; said H-bridge in which at least one of the two said active elements on each side of the bridge are linear voltage-controlled conductive elements; means for controlling the action of said active elements to direct the polarity of the current flow from said voltage-controlled power supply through said load; means for controlling the action of said linear conductive elements so as to control the magnitude of the current flow through said load.
- 13. The system of claim 12, in which said load is a thermoelectric cooler.
- 14. The system of claim 13, further including means for determining the temperature of a thermal load affixed to said thermoelectric cooler and including means for controlling said bipolar current through said thermoelectric cooler so as to maintain the temperature of said thermal load to a predetermined value.
- 15. The system of claim 12, further including
means for controlling said voltage-controlled power supply such that the voltage drop across said conductive elements is minimized to a value no greater than that necessary for linear operation of said conductive elements in response to a commanding control voltage, unless this condition results in said voltage-controlled power supply operating below some stable minimum voltage, in which case the output of said voltage-controlled power supply is fixed at said minimum stable voltage.
- 16. The system of claim 15, in which said controlling means consists of four sections of analog circuitry including an absolute value circuit, followed by a voltage inversion and offset addition circuit, followed by a clamping circuit, and followed by a final voltage inversion circuit.
- 17. The system of claim 15, in which said voltage-controlled power supply is a commercially-available switching-mode power supply with a controlling terminal by which the output voltage of said power supply may be adjusted over a range between some minimum and maximum voltage.
- 18. The system of claim 15, in which said controlling means is achieved through the use of digital software control rather than by means of analog electronic circuitry.
- 19. An apparatus for applying an adjustable bipolar current to a load comprising:
a voltage-controlled power supply having a unipolar output; an H-bridge with four active elements having a first side with two active conductive elements, connected at a first node in series on each side between said unipolar output of the power supply and ground, and having a second side with two active conductive elements, connected at a second node, in series on each side between said unipolar output of the power supply and ground, wherein said first node and said second node are adapted to be coupled to said load so that current flows between said first and second nodes through the load, the current having a polarity determined by a direction of said flow; at least one of the two active conductive elements on each of the first and second sides of the H-bridge comprising active conductive elements responsive to control signals which set a magnitude of current flow through the conductive elements; control logic that provides the control signals to said active conductive elements on the first and second sides to enable one conductive element on each of said first and second sides to set the polarity of the current from said unipolar output of the power supply through said load, and to control the magnitude of the current flow through said load; and logic, coupled to said voltage-controlled power supply and to said H-bridge, to supply a control voltage to maintain the unipolar output above a load voltage across the first and second node so that a voltage drop across at least one of said active conductive elements remains within said range, including for a magnitude of load voltage below a threshold voltage, clamping the unipolar output at or near a clamp value, and for a magnitude of load voltage above said threshold voltage, maintaining the unipolar output at a level above the load voltage by a headroom value sufficient to maintain a voltage drop across said at least one active conductive element near a lower limit of said range.
- 20. The apparatus of claim 19, comprising a thermoelectric cooler, which acts as said load, and further including a sensor to determine a temperature of a thermal load affixed to said thermoelectric cooler, and wherein the control logic includes circuitry coupled to the sensor by which the temperature of said thermal load is maintained near predetermined value.
REFERENCE TO RELATED APPLICATION
[0001] The benefit of U.S. Provisional Patent Application No. 60/338,778, entitled METHOD FOR PROVIDING AN EFFICIENT BIPOLAR CURRENT SOURCE FROM A UNIPOLAR POWER SUPPLY, invented by Anthony J. Alfrey, and filed on Dec. 5, 2001, is hereby claimed.
Provisional Applications (1)
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Number |
Date |
Country |
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60338778 |
Dec 2001 |
US |