Claims
- 1. A high-speed printing system, comprising:an ink source; and an overdamped printhead having a substrate, including a firing chamber disposed on the substrate and an entrance channel in fluid communication with the ink source and the firing chamber so that the firing chamber is capable of ejecting an ink drop having a predictable ink drop volume.
- 2. The high-speed printing system of claim 1, wherein the overdamped printhead further comprises at least one pinch point disposed in the entrance channel.
- 3. The high-speed printing system of claim 2, wherein the overdamped printhead further comprises:a plurality of outer barriers disposed in the entrance channel; a outer pinch point formed by a distance between two adjacent outer barriers.
- 4. The high-speed printing system of claim 3, wherein the distance between two outer barriers is from about 5 microns to about 25 microns.
- 5. The high-speed printing system of claim 4, wherein each of the plurality of outer barriers is circular.
- 6. The high-speed printing system of claim 3, wherein the overdamped printhead further comprises:two entrance protrusions disposed within the firing chamber; an inner pinch point formed by a distance between the two entrance protrusions.
- 7. The high-speed printing system of claim 4, wherein the distance between the two entrance protrusions is from about 10 microns to about 40 microns.
- 8. The high-speed printing system of claim 6, wherein the overdamped printhead further comprises:a peninsula extending outward from and adjacent the firing chamber; an inner barrier adjacent the firing chamber and peninsula; and a first intermediate pinch point formed by a distance between the inner barrier and the peninsula.
- 9. The high-speed printing system of claim 8, wherein the distance between the inner barrier and the peninsula is between from about 5 microns to about 25 microns.
- 10. The high-speed printing system of claim 8, wherein the overdamped printhead further comprises a second intermediate pinch point formed by a distance between the inner barrier and one of the entrance protrusions.
- 11. The high-speed printing system of claim 10, wherein the distance between the inner barrier and the entrance protrusion is from about 5 microns to about 25 microns.
- 12. The high-speed printing system of claim 2, wherein the predicable ink drop volume is between from about 3.5 nanograms to about 6.5 nanograms.
- 13. The high-speed printing system of claim 1, wherein the firing chamber is capable of ejecting a plurality of ink drops at a high frequency and the predictable ink drop volume is less than about 8 nanograms.
- 14. The high-speed printing system of claim 13, wherein the high frequency is between from about 12 kilohertz to about 18 kilohertz.
- 15. The high-speed printing system of claim 14, wherein the ink drops have a viscosity between from about 2 centipoise to about 5 centipoise.
- 16. The high-speed printing system of claim 15, wherein the ink drops have an additive to reduce or eliminate decel.
- 17. The high-speed printing system of claim 1, wherein the firing chamber comprises:a thin-film resistor structure capable of vaporizing the ink drop; a barrier layer adjacent the thin-film resistor; an orifice layer at least partially overlying the barrier layer; wherein the firing chamber is bounded by the thin-film resistor structure, the barrier layer and the orifice layer.
- 18. The high-speed printing system of claim 17, wherein a thickness of the barrier layer is between from about 10 microns to about 18 microns.
- 19. The high-speed printing system of claim 18, wherein a thickness of the orifice layer is between from about 20 microns to about 30 microns.
- 20. The high-speed printing system of claim 19, wherein the overdamped printhead further comprises an orifice disposed on the orifice layer from which the ink drop is ejected and wherein the orifice has an orifice diameter that provides a proper ejected ink drop weight.
- 21. The high-speed printing system of claim 20, wherein the proper ejected ink drop weight is less than about 8 nanograms.
- 22. The high-speed printing system of claim 21, wherein the orifice diameter is between from about 10 microns to about 15 microns.
- 23. The high-speed printing system of claim 1, further comprising:a media moving mechanism; a printhead support mechanism that supports an ink jet print cartridge in relation to the media moving mechanism.
- 24. A high-speed printing system, comprising:an ink composition having a predefined viscosity; a printhead having a high-density array of ink drop generators, each ink drop generator cooperating with the ink composition to provide an overdamping of the printhead that allows the printhead to eject ink drops having a drop weight of less than 8 nanograms.
- 25. The high-speed printing system of claim 24, wherein the ink drops are ejected at a frequency between from about 2 kilohertz to about 18 kilohertz.
- 26. The high-speed printing system of claim 25, wherein the drop weight is about 5 nanograms.
- 27. The high-speed printing system of claim 26, wherein the drop weight is between from about 3.5 nanograms to about 6.5 nanograms.
- 28. The high-speed printing system of claim 25, wherein the high-density array of ink drop generators is has at least 6 ink drop generators per square millimeter.
- 29. The high-speed printing system of claim 25, wherein the high-speed printing system further comprises a plurality of resistors capable of vaporizing the ink drops and arranged in a primitive and connected to a switching device.
- 30. The high-speed printing system of claim 29, wherein only one of the plurality of resistors in the primitive are activated at any time.
- 31. The high-speed printing system of claim 25, wherein each one of the high-density array of ink drop generators comprises an orifice layer having a thickness of about 25 microns and a barrier layer having a thickness of about 14 microns.
- 32. The high-speed printing system of claim 31, wherein the orifice layer comprise an orifice having a diameter of about 12.6 microns.
- 33. The high-speed printing system of claim 32, wherein the ink composition has a viscosity of about 3.2b centipoise and a surface tension of about 29 dynes.
- 34. The high-speed printing system of claim 25, wherein the ink composition comprises an additive to reduce or eliminate decel.
- 35. The high-speed printing system of claim 25, wherein the substrate further comprises a pinch point.
- 36. The high-speed printing system of claim 35, wherein the pinch point has a width of about 20 microns such that particles with the ink composition greater than about 20 microns will not pass through the pinch point.
- 37. A method of high-speed printing, comprising:providing an ink source; providing an overdamped printhead having a firing chamber and in fluid communication with the ink source; transporting ink from the ink source to the firing chamber via an entrance channel having at least one pinch point; and ejecting from the firing chamber an ink drop having a predictable ink drop volume.
- 38. The method of claim 37, wherein the pinch point has a width of approximately 20 microns.
- 39. The method of claim 38, further comprising refilling the ink source.
CROSS REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 09/303,250, filed on Apr. 30, 1999 by Maze et al. and entitled “INK JET PRINTHEAD WITH FLOW CONTROL MANIFOLD SHAPE”.
US Referenced Citations (6)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0314486A2 |
Oct 1988 |
EP |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09/303250 |
Apr 1999 |
US |
Child |
09/385300 |
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US |