Claims
- 1. A nozzle for dispensing a liquid, comprising:
a dispenser including an internal flow passageway with an inlet and an outlet, wherein liquid exits the dispenser at the outlet; a land adjoining and surrounding the outlet, the land is substantially perpendicular to a longitudinal axis of the internal flow passageway; and a substantially axisymmetric external surface adjoining and surrounding the land, the external surface having a surface tangent angle nearest the land which is greater than 90 degrees, wherein a surface energy of the external surface is less than about 17 dyne/cm.
- 2. The nozzle of claim 1, wherein the substantially axisymmetric external surface is frusto-conical.
- 3. The nozzle of claim 1, wherein the substantially axisymmetric external surface is shaped in a concave curve.
- 4. The nozzle of claim 1, wherein the substantially axisymmetric external surface is shaped in a convex curve.
- 5. The nozzle of claim 1, wherein the internal flow passageway, the land, and the external surface are all substantially axisymmetric around a common axis.
- 6. The nozzle of claim 1, wherein the land has an outer edge that is substantially sharp, and wherein the outer edge is adjacent to the substantially axisymmetric external surface.
- 7. The nozzle of claim 1, wherein the land has an inner edge that is substantially angular, and wherein the inner edge is adjacent to the internal flow passageway.
- 8. The nozzle of claim 1, wherein the surface tangent angle nearest the land is greater than or approximately equal to 135 degrees.
- 9. The nozzle of claim 8, wherein the surface tangent angle nearest the land is greater than or approximately equal to 165 degrees.
- 10. The nozzle of claim 9, wherein the surface tangent angle nearest the land is greater than or approximately equal to 170 degrees.
- 11. The nozzle of claim 10, wherein the surface tangent angle nearest the land is greater than or approximately equal to 175 degrees.
- 12. The nozzle of claim 1, wherein the land has an outer circular boundary and an inner circular boundary that is substantially concentric with each other.
- 13. The nozzle of claim 1, wherein the land has an outer circular boundary and an inner circular boundary that is approximately concentric with each other.
- 14. The nozzle of claim 1, wherein the land has an outside diameter and an inside diameter, and the outside diameter divided by the inside diameter is less than or approximately equal to 5.
- 15. The nozzle of claim 1, wherein the land has an outside diameter and an inside diameter, and the outside diameter divided by the inside diameter is between 1.1 and 1.5.
- 16. The nozzle of claim 1, wherein the land has a flat land surface energy, and the land surface energy is greater than or equal to about 17 dyne/cm.
- 17. The nozzle of claim 1, wherein the land has a flat land surface energy, and the land surface energy is less than about 17 dyne/cm.
- 18. The nozzle of claim 1, wherein the internal flow passageway is tapered, having a cross-sectional flow area that becomes smaller upon progressing from the inlet to the outlet.
- 19. The nozzle of claim 1, wherein the internal flow passageway has an internal surface having an internal-surface surface-energy, and the internal-surface surface-energy is greater than 50 dyne/cm.
- 20. The nozzle of claim 1, wherein, at a distance greater than 0.5 inch away from the outlet, the external surface changes to a shape different from what it was closer to the outlet, or changes so as to have a surface energy different from what it had closer to the outlet.
- 21. The nozzle of claim 1, wherein the surface energy of the external surface is less than about 12 dyne/cm.
- 22. The nozzle of claim 1, wherein the surface energy of the external surface is less than about 8 dyne/cm.
- 23. The nozzle of claim 1, wherein the external surface is a coating on top of a substrate.
- 24. The nozzle of claim 23, wherein the substrate is made of a material selected from the group consisting of tungsten carbide, other ceramics, metals, silicon and polymers.
- 25. The nozzle of claim 23, wherein the coating is a substance that hardened from liquid after being applied to the nozzle.
- 26. The nozzle of claim 23, wherein the coating cures or hardens from a liquid by heat, by ultraviolet light, by the passage of time since the mixing of two components, or by evaporation of a solvent.
- 27. The nozzle of claim 23, wherein the coating has a thickness of less than about 50 microns.
- 28. The nozzle of claim 23, wherein the coating has a lower surface energy at its surface than it does in its interior.
- 29. The nozzle of claim 23, wherein the coating comprises a fluoropolymer.
- 30. The nozzle of claim 23, wherein the coating comprises a fluoroepoxy.
- 31. The nozzle of claim 23, wherein the coating has an exposed surface and the exposed surface comprises exposed terminal trifluoromethyl radicals.
- 32. The nozzle of claim 30, wherein a majority of the exposed surface is terminal trifluoromethyl radicals.
- 33. The nozzle of claim 23, wherein the coating comprises exposed CF2H radicals.
- 34. The nozzle of claim 23, wherein the coating is applied by gaseous deposition or reaction.
- 35. The nozzle of claim 23, wherein the coating is selected from the group consisting of fluoropolymers, fluoroepoxies, fluorinated diamond-like carbon, fluorinated amorphous carbon, a siliconic polymer, poly-p-xylylene, tantalum, gold, partially fluorinated alkyl silane, perfluorinated alkane, and perfluorooctyl methacrylate.
- 36. The nozzle of claim 23, wherein the coating is a material that solidifies with a plurality of small cracks in its surface, whereby it becomes effectively more hydrophobic compared to the same material in a smooth-surfaced condition.
- 37. The nozzle of claim 36, wherein the coating is alkyl ketene dimer.
- 38. The nozzle of claim 1, wherein the external surface has a predetermined roughness.
- 39. The nozzle of claim 38, wherein the external surface has a dimensional scale of roughness that is between 1 and 50 microns.
- 40. The nozzle of claim 38, wherein the external surface has a total surface area and has a projected surface area, and the total surface area is more than 1.1 times the projected surface area.
- 41. The nozzle of claim 38, wherein the external surface is a coating on top of a substrate, and the substrate has roughness.
- 42. The nozzle of claim 39, wherein the substrate has roughness in a random pattern.
- 43. The nozzle of claim 42, wherein the roughness is produced by spark erosion.
- 44. The nozzle of claim 42, wherein the substrate comprises a collection of particles.
- 45. The nozzle of claim 41, wherein the substrate has roughness in a prescribed geometric pattern.
- 46. The nozzle of claim 45, wherein the pattern comprises circumferential grooves.
- 47. The nozzle of claim 46, wherein the grooves have a depth of about 0.001 inch and a width of about 0.001 inch.
- 48. The nozzle of claim 46, wherein the external surface has a projected surface area of a grooved region and the grooves in the grooved region occupy a groove area where material was removed to make the grooves, and the groove area is more than half of the projected surface area.
- 49. The method of claim 45, wherein the pattern comprises circumferential grooves intersected by slant-height grooves.
- 50. The nozzle of claim 49, wherein both the circumferential grooves and the slant-height grooves have a depth of about 0.001 inch and a width of about 0.001 inch.
- 51. The nozzle of claim 50, wherein the external surface has a projected surface area of a grooved region and the grooves in the grooved region occupy a groove area where material was removed to make the grooves, and the groove area is more than 60% of the projected surface area.
- 52. The nozzle of claim 41, wherein the coating is sufficiently thin that at least some of the substrate roughness appears as the roughness of the external surface.
- 53. The nozzle of claim 41, wherein the coating has a thickness of less than about 50 microns.
- 54. The nozzle of claim 1 further including a dispensed liquid comprising a solvent which is selected from the group consisting of ethanol, methanol, isopropanol, other alcohols, chloroform, other fluorocarbons, acetone, methylene chloride, and other organic solvents.
- 55. The nozzle of claim 1 further including a dispensed liquid comprising water or an aqueous solution.
- 56. The nozzle of claim 1, further including a dispensed liquid comprising dissolved solutes, or insoluble solid particles, or colloidal particles or micelles suspended in it.
- 57. The nozzle of claim 1, further including a dispensed liquid comprising an Active Pharmaceutical Ingredient.
- 58. The nozzle of claim 1, further including a dispensed liquid comprising blood or another bodily fluid, or a reagent or diagnostic substance, or liquid for three-dimensional printing, or liquid for high throughput screening, or liquid for performing medical or veterinary tests.
- 59. The nozzle of claim 1, wherein the dispenser is made by coating a substrate, which provides the shape of the substantially axisymmetric external surface, on the external surface with a coating having a surface energy less than about 17 dyne/cm.
- 60. A microvalve-based printhead comprising the dispenser of claim 1.
- 61. A piezoelectrically actuated printhead comprising the dispenser of claim 1.
- 62. A bubble-jet printhead comprising the dispenser of claim 1.
- 63. A continuous-jet printhead comprising the dispenser of claim 1.
- 64. A nozzle for dispensing a liquid, comprising:
a nozzle having an external surface and an internal passageway, the internal passageway having a passageway diameter, an inlet and an outlet, the passageway allowing a fluid to flow therethrough, the external surface and the internal passageway substantially axisymmetric, the external surface having a surface tangent angle nearest the outlet that is greater than 90 degrees; and a transition region adjoining and surrounding the outlet connecting the external surface and the internal passageway, the transition region having an outer diameter and an inner diameter, wherein the outer diameter minus the inner diameter is less than one-tenth of the passageway diameter.
- 65. The nozzle of claim 64, further including a surface energy of the external surface wherein the surface energy is less than about 17 dyne/cm.
- 66. The nozzle of claim 65, wherein the surface energy of the external surface is less than about 8 dyne/cm.
- 67. The nozzle of claim 64, wherein the external surface is rough.
- 68. The nozzle of claim 64, wherein the internal flow passageway is tapered, having a cross-sectional flow area that becomes smaller upon progressing in the downstream direction.
- 69. A nozzle for dispensing a liquid, comprising:
a nozzle having a substantially axisymmetrical internal and an external surface, the internal surface allowing liquid to pass therethrough, the external surface having a surface energy less than about 17 dyne/cm and a surface tangent angle from the shared axis that is greater than 90 degrees.
- 70. The nozzle of claim 69, wherein the internal surface has an inlet and an outlet to form an internal flow passageway that conducts the liquid along a principal flow direction to the outlet.
- 71. The nozzle of claim 70, wherein the substantially axisymmetric external surface has a surface tangent angle nearest the outlet that is greater than 135 degrees and the external surface energy is less than about 12 dyne/cm.
- 72. The nozzle of claim 69, wherein the surface energy of the external surface is less than about 8 dyne/cm.
- 73. The nozzle of claim 69, wherein the external surface is curved.
- 74. The nozzle of claim 69, wherein the external surface is a portion of a sphere.
- 75. The nozzle of claim 69, wherein the external surface meets the flow passageway at an edge that is substantially sharp.
- 76. The nozzle of claim 68, wherein the internal flow passageway is gradually tapered, having a cross-sectional flow area that becomes smaller upon progressing in the downstream direction.
- 77. The nozzle of claim 69, wherein the external surface is formed from a drop of resin.
- 78. The nozzle of claim 69, wherein the nozzle is made by depositing a drop of a first resin at the end of a hollow tube, curing or partly curing the first resin to form a partly cured shape, depositing a drop of a second resin upon the partly cured shape of the first resin so as to make an outwardly curving surface, curing both resins, and making a hole through both cured resins.
- 79. The nozzle of claim 77, wherein the hole is made by laser drilling or mechanical drilling or by embedding a leachable placeholder and then leaching out the leachable placeholder.
- 80. The nozzle of claim 77, wherein the drop of second resin has a spherical shape with a spherical radius, and the hole has a hole radius, and the hole radius divided by the spherical radius is greater than 0.05.
- 81. A nozzle for dispensing a liquid, comprising:
an internal flow passageway along an axis that conducts a liquid along a principal flow direction toward an exit; a fillet adjoining and surrounding the exit; and a substantially axisymmetric external surface having a surface tangent angle nearest the fillet which is greater than 90 degrees.
- 82. The nozzle of claim 81, wherein the fillet has a fillet surface energy and the fillet surface energy is less than about 17 dyne/cm.
- 83. The nozzle of claim 81, wherein the fillet has a fillet surface energy and the fillet surface energy is greater than or equal to about 17 dyne/cm.
- 84. The nozzle of claim 81, further comprising a transition region between the internal flow passageway and the external surface at the exit that is substantially perpendicular to the principal flow direction.
- 85. A method of manufacturing a nozzle for dispensing liquid, comprising:
manufacturing a nozzle having an internal flow passageway which conducts a liquid along a principal flow direction to an exit, a flat land which is substantially perpendicular to the principal flow direction, a substantially axisymmetric external surface having a surface tangent angle nearest the flat land which is greater than 90 degrees; coating the external surface; and curing the coating so that it has a surface energy of less than about 17 dyne/cm.
- 86. The method of claim 85 further comprising, coating the external surface with a liquid coating and directing a jet of gas at the coating prior to curing to thin the coating.
- 87. The method of claim 85 further comprising, roughening the external surface.
- 88. The method of claim 85 wherein the coating is gaseously applied.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of Provisional Application No. 60/247,176, filed on Nov. 10, 2000, and Provisional Application No. 60/284,783, filed Apr.18, 2001, and Provisional Application No. 60/288,025, filed May 1, 2001, each of which is incorporated herein by reference in its entirety.
Provisional Applications (3)
|
Number |
Date |
Country |
|
60247176 |
Nov 2000 |
US |
|
60284783 |
Apr 2001 |
US |
|
60288025 |
May 2001 |
US |