Claims
- 1. An apparatus for depositing a particulate marking material onto a substrate, comprising;a print head having at least two adjacent channels therein, each said channel having an exit orifice with a width no larger than 250 μm; a propellant source connected to each said channel such that propellant provided by said propellant source may flow through said channels to form propellant streams therein, said propellant streams having kinetic energy, each said channel directing said propellant stream through said exit orifice toward said substrate; and a marking material reservoir communicatively connected to each said channel such that particulate marking material from said reservoir may be controllably introduced into said propellant stream in each said channel so that the kinetic energy of said propellant stream may cause said particulate marking material to exit said orifice in a marking material stream that has a width which does not deviate by more than 10 percent from the width of the exit orifice, for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width, the marking material stream to impact said substrate.
- 2. The apparatus of claim 1, wherein each of said at least two adjacent channels are no more than 250 μm apart from any other adjacent channel.
- 3. The apparatus of claim 1, further including a plurality of marking material reservoirs, each reservoir communicatively connected to at least one of said channels such that marking material from each of said reservoirs may be controllably introduced into said propellant streams.
- 4. The apparatus of claim 3, wherein each marking material reservoir contains a different marking material.
- 5. The apparatus of claim 4, wherein each different marking material is a particulate colorant of a different color than each other different marking material.
- 6. The apparatus of claim 5, wherein each colorant is a particulate toner.
- 7. The apparatus of claim 4, wherein at least one of said marking materials is a finish material.
- 8. The apparatus of claim 4, wherein at least one of said marking materials is material for communicating information not visible to the unaided eye.
- 9. The apparatus of claim 1, wherein said propellant source contains a pressurized propellant.
- 10. The apparatus of claim 9, wherein each said channel has a converging region and a diverging region, and wherein said propellant is introduced in said converging region and flows into said diverging region, whereby said propellant is at a first velocity and first pressure in said converging region and a second velocity and a second pressure in said diverging region, said first pressure greater than said second pressure and said first velocity less than said second velocity.
- 11. The apparatus of claim 1, wherein said marking material reservoir is removably and replacably located adjacent said print head.
- 12. The apparatus of claim 1, wherein said marking material reservoir includes a port through which the reservoir may be refilled.
- 13. The apparatus of claim 1, wherein said propellant source is removably and replacably located adjacent said print head.
- 14. The apparatus of claim 1, wherein said propellant source is refillable with propellant.
- 15. The apparatus of claim 1, wherein said marking material reservoir and said propellant source are housed together in a body removably and replacably located adjacent said print head.
- 16. The apparatus of claim 1, wherein said propellant may flow through one or more of said exit orifices at a velocity greater than the speed of sound.
- 17. The device of claim 1, wherein said print head includes at least two adjacent channels, each channel spaced apart from an adjacent channel by a first distance, the sum of all first distances equal to a second distance, and further wherein said print head is moveably mounted such that said print head may be selectively positioned to deposit marking material onto at least two regions of said substrate spaced apart by a third distance greater than said second distance.
- 18. The device of claim 1, wherein for each said channel when marking material introduced into a propellant stream in said channel exits said exit orifice a marking material stream is thereby produced, said marking material stream having a width which does not deviate by more than 10 percent from the width of the exit orifice for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width.
- 19. The apparatus of claim 1 wherein the propellant is a gas.
- 20. The apparatus of claim 1 wherein the propellant is a dry gas.
- 21. The apparatus of claim 1 wherein each channel includes a nozzle having a converging region and a diverging region to achieve marking material stream that has a width which does not deviate by more than 10 percent form the width of the exit orifice.
- 22. The apparatus of claim 21 wherein the propellant is a gas.
- 23. An apparatus for providing particulate marking material to a substrate, comprising:a print head, having defined therein a plurality of channels, each said channel having a plurality of inlet ports; a substrate region located proximate said print head; a propellant source receiving region, configured such that propellant from a propellant source located in said propellant source receiving region may be provided to certain of said inlet ports and flow through said channels to form a propellant stream in each said channel; and a marking material reservoir receiving region, configured such that particulate marking material from a marking material reservoir located in said marking material reservoir receiving region may be controllably introduced through certain other of said inlet ports into a propellant stream in said channel; whereby, when particulate marking material is introduced into a propellant stream such that the particulate marking material exits said orifice in a marking material stream that has a width which does not deviate by more than 10 percent from the width of the exit orifice, for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width, the marking material stream, said marking material is provided with sufficient kinetic energy to impact a substrate located in said substrate region.
- 24. An apparatus for providing particulate marking material to a substrate, comprising:a print head receiving region, configured to receive a print head having defined therein a plurality of channels, each said channel having a plurality of inlet ports; a substrate region located proximate said print head; a propellant source receiving region, configured such that propellant from a propellant source located in said propellant source receiving region may be provided to certain of said inlet ports and flow through said channels to form a propellant stream for each said channel; and a marking material reservoir receiving region, configured such that particulate marking material from a marking material reservoir located in said marking material reservoir receiving region may be controllably introduced through certain other of said inlet ports into a propellant stream in said channel; whereby, when such particulate marking material is introduced into said propellant stream such that the particulate marking material exits said orifice in a marking material stream that has a width which does not deviate by more than 10 percent from the width of the exit orifice, for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width, the marking material stream, said marking material is provided with sufficient kinetic energy to impact a substrate located in said substrate region.
- 25. An apparatus for providing particulate marking material to a substrate, comprising:a print head receiving region, configured to receive a print head having defined therein a plurality of channels, each said channel having a plurality of inlet ports, said print head further including a marking material reservoir in communication with certain of said inlet ports such that particulate marking material located in said reservoir may be controllably introduced into each said channel; a substrate region located proximate said print head; a propellant source receiving region, configured such that propellant from a propellant source located in said propellant source receiving region may be provided to certain other of said inlet ports and flow through said channels to form a propellant stream for each said channel; whereby, when particulate marking material is introduced into said channel such that the particulate marking material exits said orifice in a marking material stream that has a width which does not deviate by more than 10 percent from the width of the exit orifice, for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width, the marking material stream, said marking material is provided with sufficient kinetic energy by said propellant stream to impact a substrate located in said substrate region.
- 26. An apparatus for providing particulate marking material to a substrate, comprising:a print head receiving region, configured to receive a print head having defined therein a plurality of channels, each said channel having a plurality of inlet ports; a substrate region located proximate said print head; a combined propellant source and particulate marking material reservoir receiving region, configured such that propellant from a propellant source located in said receiving region may be provided to certain of said inlet ports and flow through said channels to form a propellant stream for each said channel and further such that particulate marking material from a marking material reservoir located in said receiving region may be controllably introduced through certain other of said inlet ports into a propellant stream in said channel; whereby, when such particulate marking material is introduced into said propellant stream such that the particulate marking material exits said orifice in a marking material stream that has a width which does not deviate by more than 10 percent from the width of the exit orifice, for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width, the marking material stream, said marking material is provided with sufficient kinetic energy to impact a substrate located in said substrate region.
- 27. An apparatus for providing particulate marking material to a substrate, comprising:a print head receiving region, configured to receive a print head having defined therein a plurality of channels, each said channel having a plurality of inlet ports, said print head further including a propellant source configured such that propellant from said propellant source may be provided to certain of said inlet ports and flow through said channels to form a propellant stream in each said channel, said print head further including a particulate marking material reservoir in communication with certain other of said inlet ports such that particulate marking material located in said reservoir may be controllably introduced into each propellant stream; and a substrate region located proximate said print head; whereby, when particulate marking material is introduced into said propellant stream such that the particulate marking material exits said orifice in a marking material stream that has a width which does not deviate by more than 10 percent from the width of the exit orifice, for a distance, in a direction of travel of the marking material stream, of at least 4 times the exit orifice width, the marking material stream, said particulate marking material is provided with sufficient kinetic energy by said propellant stream to impact a substrate located in said substrate region.
CROSS-REFERENCE TO RELATED APPLICATIONS
The present invention is related to U.S. patent application Ser. No. 09/164,124 now U.S. Pat. No. 6,416,157 filed Sep. 30, 1998, Ser. No. 09/164,250 now U.S. Pat. No. 6,340,216 filed Sep. 30, 1998, Ser. No. 09/163,808 now allowed, filed Sep. 30, 1998, Ser. No. 09/163,765 now allowed, filed Sep. 30, 1998, Ser. No. 09/163,839 now U.S. Pat. No. 6,250,342 filed Sep. 30, 1998, Ser. No. 09/163,954 now U.S. Pat. No. 6,328,409 filed Sep. 30, 1998, Ser. No. 09/163,924 now U.S. Pat. No. 6,954,384 filed Sep. 30, 1998, Ser. No. 09/163,904 now U.S. Pat. No. 6,116,718 filed Sep. 30, 1998, Ser. No. 09/163,799 filed Sep. 30, 1998, Ser. No. 09/163,664 now U.S. Pat. No. 6,265,050 filed Sep. 30, 1998, Ser. No. 09/163,518 now U.S. Pat. No. 6,291,088 filed Sep. 30, 1998, Ser. No. 09/164,104 now U.S. Pat. No. 6,416,156 filed Sep. 30, 1998, Ser. No. 09/163,825 now U.S. Pat. No. 6,136,442 filed Sep. 30, 1998, issued U.S. Pat. No. 5,717,986, and U.S. patent application Ser. No. 09/128,160 now U.S. Pat. No. 6,289,196 filed Aug. 3, 1998, Ser. No. 08/670,734 now U.S. Pat. No. 5,833,015 filed Jun. 24, 1996, Ser. No. 08/950,300 now U.S. Pat. No. 5,868,674 filed Oct. 14, 1997 and Ser. No. 08/950,303 each of the above being incorporated herein by reference.
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