Claims
- 1. A printhead for a thermal printer comprising:
- a plurality of individual thermal print elements, each thermal print element having a first end and a second end and each being responsive to increase in temperature in response to a current passing therethrough;
- a common electrode having a voltage variation in response to an expected pattern of printing activity of the print element;
- a plurality of supply lines, each coupled between the common electrode and a respective first end of each thermal print element;
- a first electrical conductor connected to the common electrode for providing electrical power to the selected ones of the thermal print elements;
- a power supply pin connected to the first electrical conductor for coupling to a first voltage terminal of a power supply;
- a second electrical conductor being coupleable to the second ends of the plurality of thermal print elements;
- a reference power supply pin connected to the second electrical conductor for attachment to a reference terminal of the power supply for completing a current path through the power supply pin, through the first electrical conductor, through the common electrode, through the selected thermal print elements, through the second electrical conductor, and through the reference power supply pin;
- a sense conductor connected to the common electrode at a connection position in proximity to the supply lines such that said sense conductor is at a voltage potential approximately equal to the voltage potential of the first end of the thermal print elements, the connection position further being spaced a distance x from a lateral edge of the common electrode, the distance X being selected as a function of the voltage variation, the sense conductor providing a voltage sense signal path to the first ends of the thermal print elements separate from the current path; and
- a voltage sense pin connected to the sense conductor for sensing the voltage of the first end of the thermal print elements using the voltage sense signal path.
- 2. The printhead of claim 1 wherein the distance x is selected to place the connection position proximal to a point of expected maximum voltage drop across the printhead.
- 3. The printhead of claim 1 wherein the distance x is selected to place the connection position at a point of expected mean voltage drop across the printhead.
- 4. The printhead of claim 1, further comprising a plurality of sense conductors connected to the common electrode at positions in proximity to the supply lines such that a voltage potential sensed by each of said sense conductors is approximately equal to the voltage potential of the first end of the thermal printheads connected to the supply lines to which each is proximally located, respectively; and
- a plurality of voltage sense pins connected to the sense conductors respectively, the voltage sense pins for sensing the voltage of the first end of the thermal print elements proximal to each respective sense conductor using respective conductive paths different from the current path used to conduct current from the power supply.
- 5. A thermal printhead assembly, comprising:
- a plurality of print elements each having a first end and a second end, the print elements being responsive to produce heat in response to a current passing therethrough;
- a common conductor electrically coupled to the first ends;
- a first power conductor electrically coupled to the common conductor and extending from the common conductor for applying a power signal to the common conductor;
- a second power conductor coupleable to the second ends such that current flowing through the first power conductor and the print elements passes through the second power conductor; and
- a plurality of sense lines electrically coupled to the common conductor and separate from the first and second power conductors, the sense lines being coupled at respective spaced apart locations on the common conductor.
- 6. The printhead assembly of claim 5 wherein the print elements include an expected heating distribution having an expected mean location, wherein one of the spaced apart locations on the common conductor is positioned at the expected mean location.
- 7. The printhead assembly of claim 5 wherein one of the spaced apart locations on the common conductor is positioned at the midpoint of the common conductor.
- 8. The printhead assembly of claim 5 wherein the common conductor includes an expected location of maximum voltage drop and wherein one of the spaced apart locations on the common conductor is positioned at the expected location of maximum voltage drop.
- 9. The printhead assembly of claim 8 wherein the common conductor includes an expected location of mean voltage drop and wherein one of the spaced apart locations on the common conductor is positioned at the expected location of mean voltage drop.
- 10. The printhead assembly of claim 5, further including a plurality of sense pins coupled to respective ones of the sense lines at opposite ends of the sense lines from the respective spaced apart locations.
- 11. A thermal printer, comprising:
- an electronic controller;
- a printhead having a plurality of print elements each having a first end and a second end, the print elements being responsive to produce heat in response to a current passing therethrough;
- a power supply having a first terminal and a second terminal for providing a driving current to the print elements;
- a common conductor electrically coupled to the first ends, the common conductor having an expected location of mean voltage drop;
- a first power conductor electrically coupled between the first terminal and the common conductor;
- a second power conductor coupled between the second terminal and the second ends;
- a switching assembly coupled to the first or second ends and operative to control current through the print elements in response to a control signal; and
- a first sense line electrically coupled to the common conductor and separate from the power conductor, the first sense line being coupled to the electronic controller and to the common conductor at the location of expected mean voltage drop.
- 12. The printer of claim 11, further including a plurality of other sense lines coupled between the common conductor and the electronic controller, the other sense lines being coupled to the common conductor at a respective location, spaced apart from each other and from the location of the expected mean voltage drop.
- 13. The printer of claim 12 wherein the common conductor includes an expected location of maximum voltage drop and wherein one of the other sense lines is coupled to the common conductor at the expected location of maximum voltage drop.
- 14. The printer assembly of claim 11 further including a second sense line coupled between the switching assembly and the electronic controller.
- 15. The printer of claim 14 wherein the electronic controller includes a voltage monitoring circuit coupled to detect a voltage difference between the first and second sense lines.
- 16. The printer of claim 15 wherein the electronic controller is responsive to adjust a heating schedule of the print elements in response to the detected voltage between the first and second sense lines.
- 17. The printer of claim 15 wherein the electronic controller is coupled to the power supply and wherein the electronic controller is responsive to adjust an output voltage of the power supply in response to the detected voltage between the first and second sense lines.
- 18. A method of controlling heating in a thermal printhead having a plurality of thermal print elements coupled to a common electrode, comprising the steps of:
- supplying an input power signal to the common electrode through a first conductive path;
- selecting a location on the common electrode having an expected average voltage drop;
- monitoring a voltage of the selected location through a second conductive path different from the first conductive path; and
- adjusting the input power signal in response to the monitored voltage.
- 19. The method of claim 18, further comprising the steps of:
- selecting a second location on the common electrode having an expected maximum voltage drop;
- monitoring a voltage of the selected second location through a third conductive path different from the first and second conductive paths; and
- adjusting the input power signal in response to the monitored voltages of the first and second selected locations.
- 20. A method of controlling heating in a thermal printhead having a plurality of thermal print elements coupled to a common electrode, comprising the steps of:
- supplying an input power signal to the common electrode through a first conductive path;
- selecting a plurality of spaced apart locations on the common electrode;
- monitoring voltages of the selected locations through a plurality of separate other conductive paths different from the first conductive path; and
- adjusting the input power signal in response to the monitored voltages.
- 21. The method of claim 20, further wherein the step of selecting a plurality of locations on the common electrode comprises the steps of:
- determining a location of expected maximum voltage drop; and
- selecting the determined location as one of the selected locations.
- 22. The method of claim 20, further wherein the step of selecting a plurality of locations on the common electrode comprises the steps of:
- determining a location of expected mean voltage drop; and
- selecting the determined location as one of the selected locations.
CROSS-REFERENCES TO RELATED APPLICATIONS
This application is a divisional of U.S. patent application Ser. No. 08/126,284, filed Sep. 23, 1993, now U.S. Pat. No. 5,625,401, which is a continuation-in-part of U.S. patent application Ser. No. 07/951,780, filed Sep. 25, 1992, now abandoned.
US Referenced Citations (3)
Foreign Referenced Citations (3)
Number |
Date |
Country |
54-30849 |
May 1979 |
EPX |
61-185464 |
Aug 1987 |
EPX |
62-297161 |
Jun 1988 |
EPX |
Divisions (1)
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Number |
Date |
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Parent |
126284 |
Sep 1993 |
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Continuation in Parts (1)
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Number |
Date |
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951780 |
Sep 1992 |
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