Method of capping a nozzle face of an ink jet print head
A method of capping a nozzle face of an ink jet print head comprises the step of ejecting an amount of ink from a nozzle opening within the nozzle face, so as to form an ink body covering the nozzle opening, adheringly suspended from a surrounding portion of the nozzle face.
1. Method of protecting a nozzle face of an ink jet print head, comprising the step of:
ejecting an amount of ink from a nozzle opening within the nozzle face, so as to form an ink body covering the nozzle opening, adheringly suspended from a surrounding portion of the nozzle face, wherein the ink comprises a phase-change ink which is ejected to form the ink body in a fluid state, wherein the method further comprises the step of allowing the ink within the ink body to cool down to a temperature below the phase change temperature.
2. The method according to claim 1 , wherein the step of allowing ink within the ink body to cool down to a temperature below the phase change temperature comprises allowing a heated part of the ink jet print head to cool down to a temperature below the phase change temperature.
3. The method according to claim 1 , further comprising the step of promoting ink within the ink body to change phase back to a fluid state after a phase-change of the ink into the more solid state.
4. The method according to claim 1 , wherein the step of allowing ink within the ink body to change phase back to a fluid state comprises heating up a part of the ink jet print head to a temperature above the phase change temperature.
5. The method according to claim 3 , further comprising the step of wiping the ink of the ink body from the nozzle face.
6. The method according to claim 1 , wherein the ink has a temperature-dependent viscosity.
7. The method according to claim 6 , wherein the ink is a gellink ink.
8. The method according to claim 1 , wherein ink is ejected from multiple nozzle openings within an array of nozzle openings, such that the amounts of ink ejected from individual nozzle openings within the array form a single ink body covering the array of nozzle openings, suspended from a portion of the nozzle face surrounding the array of nozzle openings.
9. The method according to claim 1 , wherein ink is ejected from multiple arrays of nozzle openings to form multiple ink bodies each covering one array of nozzle openings.
10. The method according to claim 1 , comprising the step of waiting for a heated part of the print head to cool down before the amount of ink is ejected.
11. A printing apparatus comprising:
an ink jet print head, the ink jet print head comprising a nozzle opening within a nozzle face;
a phase-change ink; and
a controller, wherein the controller is configured to control the printing apparatus to perform the steps of:
ejecting an amount of the phase-change ink from the nozzle opening within the nozzle face, so as to form an ink body covering the nozzle opening, adheringly suspended from a surrounding portion of the nozzle face, wherein the phase-change ink is ejected to form the ink body in a fluid state; and
allowing the ink within the ink body to cool down to a temperature below the phase change temperature.
12. The printing apparatus according to claim 11 , wherein the step of allowing ink within the ink body to cool down to a temperature below the phase change temperature comprises allowing a heated part of the ink jet print head to cool down to a temperature below the phase change temperature.
13. The printing apparatus method according to claim 11 , wherein the controller is further configured to control the printing apparatus to perform the step of promoting ink within the ink body to change phase back to a fluid state after a phase-change of the ink into the more solid state.
14. The printing apparatus according to claim 11 , wherein the controller is further configured to control the printing apparatus to perform the step of allowing ink within the ink body to change phase back to a fluid state comprises heating up a part of the ink jet print head to a temperature above the phase change temperature.
15. The printing apparatus according to claim 13 , wherein the controller is further configured to control the printing apparatus to perform the step of wiping the ink of the ink body from the nozzle face.
16. The printing apparatus according to claim 11 , wherein the ink has a temperature-dependent viscosity.
17. The printing apparatus according to claim 16 , wherein the ink is a gellink ink.
18. The printing apparatus according to claim 11 , wherein the controller is further configured to control the printing apparatus to eject ink from multiple nozzle openings within an array of nozzle openings, such that the amounts of ink ejected from individual nozzle openings within the array form a single ink body covering the array of nozzle openings, suspended from a portion of the nozzle face surrounding the array of nozzle openings.
19. The printing apparatus according to claim 11 , wherein the controller is further configured to control the printing apparatus to eject ink from multiple arrays of nozzle openings to form multiple ink bodies each covering one array of nozzle openings.
20. The printing apparatus according to claim 11 , wherein the controller is further configured to control the printing apparatus to perform the step of waiting for a heated part of the print head to cool down before the amount of ink is ejected.