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Patent · US6693656B1 · B1 · US

Laser processing method, method for manufacturing ink jet recording head using such method of manufacture, and ink jet recording head manufactured by such method of manufacture

(11) Publication number
US6693656B1
(21) Application number
09/604,913
(22) Filing date
2000-06-28
(30) Priority date
1999-06-30
(43) Publication date
2004-02-17
(45) Date of grant
2004-02-17
(51) IPC
B23K 26/06; B23K 26/40; B41J 2/005; B41J 2/15; B41J 2/16
(52) CPC
  • B41J Typewriters; selective printing mechanisms, i.e. mechanisms printing otherwise than from a forme; correction of typographical errors: 2/1634, 2/005, 2/15, 2/1601, 2/1607, 2/162, 2/1623, 2/1626, 2002/14379, 2002/14387
  • B23K Soldering or unsoldering; welding; cladding or plating by soldering or welding; cutting by applying heat locally, e.g. flame cutting; working by laser beam: 2103/08, 2103/42, 2103/50, 2103/54, 26/0624, 26/066, 26/40
(73) Assignee
Canon Inc
(72) Inventors
Jun Koide
(54) Title
Laser processing method, method for manufacturing ink jet recording head using such method of manufacture, and ink jet recording head manufactured by such method of manufacture
(57) Abstract

A laser processing method for performing laser ablation process on a work piece by radiating laser beam on the work piece includes the step of forming simultaneously a plurality of process shapes arranged at a predetermined interval by use of laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as the laser beam oscillating at the pulse radiation time of one picosecond or less. With the laser processing method thus structured, it is possible to perform a highly precise processing without creating by-product, as well as to fundamentally prevent the converted thermal energy from being accumulated on a work piece, such as resin, which causes the work piece to be fused or thermally expanded during the operation of laser processing.

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Claims (24)

  1. A laser processing method for performing laser ablation processing by irradiating laser beam to a work piece comprising the steps of: using laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to converge beam with more than predetermined energy density inside a transparent work piece with respect to the light wavelength of said laser beam; and processing said work piece by sublimation, wherein when a structural member is processed by sublimation inside said work piece at the time of said work piece being processed by sublimation, a discharge port is formed in advance to discharge to the outside the by-product created by sublimation and evaporation caused by said processing, and then, said structural member is processed.
  2. A laser processing method according to claim 1, wherein when said structural member is processed, the structural member is processed in a position close to said discharge port.
  3. A laser processing method according to either one of claims 1 or 2, wherein said work piece is colored by mixing therein a dye for absorbing wavelength in a domain corresponding to the oscillating wavelength of said laser beam, and processed.
  4. A laser processing method according to either one of claims 1 or 2, wherein the wavelength of said laser beam is within a domain of 350 to 1000 mm.
  5. A laser processing method according to either one of claims 1 or 2, wherein the pulse radiation time of said laser beam is 500 femtoseconds or less.
  6. A laser processing method according to either one of claims 1 or 2, wherein said laser oscillator is a laser oscillator provided with a spatial compression device for propagating beam.
  7. A laser processing method according to claim 6, wherein said spatial compression device for propagating beam comprises chirping pulse generating means and longitudinal mode synchronous means utilizing light wavelength dispersion characteristics.
  8. A laser processing method according to claim 6, wherein said spatial compression device for propagating beam is structured using chirping pulse generating means and a longitudinal mode synchronous method utilizing a light wavelength dispersion characteristic of diffraction phase grating.
  9. A method for manufacturing an ink jet recording head having a member for forming at least a part of ink passage for ink to flow to be formed in a transparent ink flow path formation member and processed by laser beam, provided with an ink discharge port for discharging ink droplets adhering to a recording medium: a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating element arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising the steps of: using laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to converge beam with more than predetermined energy density inside the transparent ink flow path formation member with respect to the light wavelength of said laser beam; and processing an ink flow path and others by sublimation, wherein when said ink flow path and others are processed, a discharge port is formed in advance to discharge to the outside the by-product created by the sublimation and vaporization of said processing, and then, said ink flow path and others are processed.
  10. A method for manufacturing an ink jet recording head having a member for forming at least a part of ink passage for ink to flow to be formed by a substantially transparent material (A) having low light absorptance of laser beam, and a material (B) having higher light absorptance than that of said material (A) and positioned inside a work piece, and processed by the laser processing method, provided with an ink discharge port for discharging ink droplets adhering to a recording medium; a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating element arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising the steps of: using laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to pass beam through said material (A) having low light absorptance of said laser beam, and radiate beam on said material (B) having higher light absorptance than that of said material (A) and positioned inside said work piece; processing said material (B) by sublimation, wherein when said ink flow path and others are processed, a discharge port is formed in advance to discharge to the outside the by-product created by the sublimation and vaporization of said processing, and then, said ink flow path and others are processed.
  11. A method for manufacturing an ink jet recording head according to either claim 9 or 10, wherein when said ink flow path and others are processed, the ink flow path and others are processed in a position close to said discharge port.
  12. An ink jet recording head having a member for forming at least a part of ink passage to be formed in a transparent ink flow path formation member and processed by laser beam, provided with an ink discharge port for discharging ink droplets adhering to a recording medium; a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating clement arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising: said member processed by sublimation by use of laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to be converged with more than predetermined energy density inside the transparent ink flow path formation member with respect to the light wavelength of said laser beam, wherein when said ink flow path and others are processed, a discharge port is formed in advance to discharge to the outside the by-product created by the sublimation and vaporization of said processing, and then, said ink flow path and others are processed.
  13. An ink jet recording head according to claim 12, wherein the ink flow path and others are processed in a position close to said discharge port, when said ink flow path and others are processed.
  14. An ink jet recording head according to claim 12, further comprising said member colored by mixing therein a dye for absorbing wavelength in a domain corresponding to the oscillating wavelength of said laser beam, and processed.
  15. A laser processing method for performing laser ablation processing by irradiating laser beam to a work piece comprising the steps of: preparing laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less; preparing the work piece formed from a transparent material with respect to the light wavelength of said laser beam, having a processing portion inside thereof and a discharge port for communicating the processing portion with the outside; and laser ablation processing said processing portion by irradiating said laser beam through said transparent material to converge beam with more than predetermined energy density, wherein said discharge port is formed to discharge to the outside the by-product created at the processing portion by said laser ablation processing.
  16. A laser processing method according to claim 15, wherein when said processing portion is processed, the processing portion is processed in a position close to said discharge port.
  17. A laser processing method according to either one of claims 15 or 16, wherein said work piece is colored by mixing therein a dye for absorbing wavelength in a domain corresponding to the oscillating wavelength of said laser beam, and processed.
  18. A laser processing method according to either one of claims 15 or 16, wherein the wavelength of said laser beam is within a domain of 350 to 1000 mm.
  19. A laser processing method according to either one of claims 15 or 16, wherein the pulse radiation time of said laser beam is 500 femtoseconds or less.
  20. A laser processing method according to either one of claims 15 or 16, wherein said laser oscillator is a laser oscillator provided with a spatial compression device for propagating beam.
  21. A laser processing method according to claim 20, wherein said spatial compression device for propagating beam comprises chirping pulse generating means and longitudinal mode synchronous means utilizing light wavelength dispersion characteristics.
  22. A laser processing method according to claim 20, wherein said spatial compression device for propagating beam is structured using chirping pulse generating means and a longitudinal mode synchronous method utilizing a light wavelength dispersion characteristic of diffraction phase grating.
  23. A method for manufacturing an ink jet recording head having a member for forming at least a part of ink passage for ink to flow to be formed in a transparent ink flow path formation member and processed by laser beam, provided with an ink discharge port for discharging ink droplets adhering to a recording medium; a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating element arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising the steps of: preparing laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less; preparing the transparent ink flow path formation member, which is formed from a transparent material with respect to the light wavelength of said laser beam; and laser ablation processing an ink flow path and others by irradiating said laser beam through said transparent material to converge beam with more than predetermined energy density, wherein said discharge port is formed to discharge to the outside the by-product created at the ink flow path and others by said laser ablation processing.
  24. A method for manufacturing an ink jet recording head according to claim 23, wherein when said ink flow path and others are processed, the ink flow path and others are processed in a position close to said discharge port.

Description

1. Field of the Invention

The present invention relates to a laser processing method. More particularly, the invention relates to a method of manufacture that uses such laser processing, for example, to manufacture an ink jet recording head for enabling ink droplets to fly and adhere to a recording medium, and also, relates to an ink jet recording head manufactured by such method of manufacture.

2. Related Background Art

Conventionally, there has been known the laser processing method that uses ultraviolet laser in order to precisely process a structural object that requires minute structures formed in high precision.

As an example of such precise processing, there is such one as processing ink flow paths or ink discharge ports of an ink jet head.

In the specification of Japanese Patent Application Laid-Open No. 2-121842 or 2-121845, is disclosed the high precision processing of ink flow paths or ink discharge ports using excimer layer, the typical ultraviolet laser.

In other words, the excimer laser can oscillate ultraviolet rays of short pulses (15 to 35 ns) by the discharge excitation of a mixed gas of rare gas and halogen. The oscillation energy thereof is 100 mJ/pulse, and pulse repetition frequency is 10 to 500 Hz. Then, when the highly bright ultraviolet rays, such as the excimer layer, are radiated on the surface of resin polymer, the ablative photodecompotion (APD) process occurs to decompose such portion to be scattered instantaneously with plasma emission and impact noises, thus making it possible to perform the so-called laser ablation process of polymer resin.

Citations (16)

  • US4504726A
  • EP0309146B1
  • JPH02121842A
  • JPH02121845A
  • US5208604A
  • US5312396A
  • US5808644A
  • US5296674A
  • EP0542656A1
  • EP0552058A1
  • US5656186A
  • US5786560A
  • US5720894A
  • EP0836906A1
  • WO1998055035A1
  • DE19736110A1
Record as JSON
{
  "publication_number": "US6693656B1",
  "country": "US",
  "kind": "B1",
  "title": "Laser processing method, method for manufacturing ink jet recording head using such method of manufacture, and ink jet recording head manufactured by such method of manufacture",
  "abstract": "A laser processing method for performing laser ablation process on a work piece by radiating laser beam on the work piece includes the step of forming simultaneously a plurality of process shapes arranged at a predetermined interval by use of laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as the laser beam oscillating at the pulse radiation time of one picosecond or less. With the laser processing method thus structured, it is possible to perform a highly precise processing without creating by-product, as well as to fundamentally prevent the converted thermal energy from being accumulated on a work piece, such as resin, which causes the work piece to be fused or thermally expanded during the operation of laser processing.",
  "claims": [
    "1. A laser processing method for performing laser ablation processing by irradiating laser beam to a work piece comprising the steps of: using laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to converge beam with more than predetermined energy density inside a transparent work piece with respect to the light wavelength of said laser beam; and processing said work piece by sublimation, wherein when a structural member is processed by sublimation inside said work piece at the time of said work piece being processed by sublimation, a discharge port is formed in advance to discharge to the outside the by-product created by sublimation and evaporation caused by said processing, and then, said structural member is processed.",
    "2. A laser processing method according to claim 1, wherein when said structural member is processed, the structural member is processed in a position close to said discharge port.",
    "3. A laser processing method according to either one of claims 1 or 2, wherein said work piece is colored by mixing therein a dye for absorbing wavelength in a domain corresponding to the oscillating wavelength of said laser beam, and processed.",
    "4. A laser processing method according to either one of claims 1 or 2, wherein the wavelength of said laser beam is within a domain of 350 to 1000 mm.",
    "5. A laser processing method according to either one of claims 1 or 2, wherein the pulse radiation time of said laser beam is 500 femtoseconds or less.",
    "6. A laser processing method according to either one of claims 1 or 2, wherein said laser oscillator is a laser oscillator provided with a spatial compression device for propagating beam.",
    "7. A laser processing method according to claim 6, wherein said spatial compression device for propagating beam comprises chirping pulse generating means and longitudinal mode synchronous means utilizing light wavelength dispersion characteristics.",
    "8. A laser processing method according to claim 6, wherein said spatial compression device for propagating beam is structured using chirping pulse generating means and a longitudinal mode synchronous method utilizing a light wavelength dispersion characteristic of diffraction phase grating.",
    "9. A method for manufacturing an ink jet recording head having a member for forming at least a part of ink passage for ink to flow to be formed in a transparent ink flow path formation member and processed by laser beam, provided with an ink discharge port for discharging ink droplets adhering to a recording medium: a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating element arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising the steps of: using laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to converge beam with more than predetermined energy density inside the transparent ink flow path formation member with respect to the light wavelength of said laser beam; and processing an ink flow path and others by sublimation, wherein when said ink flow path and others are processed, a discharge port is formed in advance to discharge to the outside the by-product created by the sublimation and vaporization of said processing, and then, said ink flow path and others are processed.",
    "10. A method for manufacturing an ink jet recording head having a member for forming at least a part of ink passage for ink to flow to be formed by a substantially transparent material (A) having low light absorptance of laser beam, and a material (B) having higher light absorptance than that of said material (A) and positioned inside a work piece, and processed by the laser processing method, provided with an ink discharge port for discharging ink droplets adhering to a recording medium; a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating element arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising the steps of: using laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to pass beam through said material (A) having low light absorptance of said laser beam, and radiate beam on said material (B) having higher light absorptance than that of said material (A) and positioned inside said work piece; processing said material (B) by sublimation, wherein when said ink flow path and others are processed, a discharge port is formed in advance to discharge to the outside the by-product created by the sublimation and vaporization of said processing, and then, said ink flow path and others are processed.",
    "11. A method for manufacturing an ink jet recording head according to either claim 9 or 10, wherein when said ink flow path and others are processed, the ink flow path and others are processed in a position close to said discharge port.",
    "12. An ink jet recording head having a member for forming at least a part of ink passage to be formed in a transparent ink flow path formation member and processed by laser beam, provided with an ink discharge port for discharging ink droplets adhering to a recording medium; a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating clement arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising: said member processed by sublimation by use of laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less to be converged with more than predetermined energy density inside the transparent ink flow path formation member with respect to the light wavelength of said laser beam, wherein when said ink flow path and others are processed, a discharge port is formed in advance to discharge to the outside the by-product created by the sublimation and vaporization of said processing, and then, said ink flow path and others are processed.",
    "13. An ink jet recording head according to claim 12, wherein the ink flow path and others are processed in a position close to said discharge port, when said ink flow path and others are processed.",
    "14. An ink jet recording head according to claim 12, further comprising said member colored by mixing therein a dye for absorbing wavelength in a domain corresponding to the oscillating wavelength of said laser beam, and processed.",
    "15. A laser processing method for performing laser ablation processing by irradiating laser beam to a work piece comprising the steps of: preparing laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less; preparing the work piece formed from a transparent material with respect to the light wavelength of said laser beam, having a processing portion inside thereof and a discharge port for communicating the processing portion with the outside; and laser ablation processing said processing portion by irradiating said laser beam through said transparent material to converge beam with more than predetermined energy density, wherein said discharge port is formed to discharge to the outside the by-product created at the processing portion by said laser ablation processing.",
    "16. A laser processing method according to claim 15, wherein when said processing portion is processed, the processing portion is processed in a position close to said discharge port.",
    "17. A laser processing method according to either one of claims 15 or 16, wherein said work piece is colored by mixing therein a dye for absorbing wavelength in a domain corresponding to the oscillating wavelength of said laser beam, and processed.",
    "18. A laser processing method according to either one of claims 15 or 16, wherein the wavelength of said laser beam is within a domain of 350 to 1000 mm.",
    "19. A laser processing method according to either one of claims 15 or 16, wherein the pulse radiation time of said laser beam is 500 femtoseconds or less.",
    "20. A laser processing method according to either one of claims 15 or 16, wherein said laser oscillator is a laser oscillator provided with a spatial compression device for propagating beam.",
    "21. A laser processing method according to claim 20, wherein said spatial compression device for propagating beam comprises chirping pulse generating means and longitudinal mode synchronous means utilizing light wavelength dispersion characteristics.",
    "22. A laser processing method according to claim 20, wherein said spatial compression device for propagating beam is structured using chirping pulse generating means and a longitudinal mode synchronous method utilizing a light wavelength dispersion characteristic of diffraction phase grating.",
    "23. A method for manufacturing an ink jet recording head having a member for forming at least a part of ink passage for ink to flow to be formed in a transparent ink flow path formation member and processed by laser beam, provided with an ink discharge port for discharging ink droplets adhering to a recording medium; a liquid chamber for retaining ink to be supplied to said discharge port; an ink flow path communicated with said discharge port and said liquid chamber; an energy generating element arranged for a part of said ink flow path for generating energy for discharging ink; and an ink supply port for supplying ink from the outside into said liquid chamber, comprising the steps of: preparing laser beam of plural pulses having extremely large spatial and temporal energy density radiated from a laser oscillator as said laser beam oscillating at the pulse radiation time of one picosecond or less; preparing the transparent ink flow path formation member, which is formed from a transparent material with respect to the light wavelength of said laser beam; and laser ablation processing an ink flow path and others by irradiating said laser beam through said transparent material to converge beam with more than predetermined energy density, wherein said discharge port is formed to discharge to the outside the by-product created at the ink flow path and others by said laser ablation processing.",
    "24. A method for manufacturing an ink jet recording head according to claim 23, wherein when said ink flow path and others are processed, the ink flow path and others are processed in a position close to said discharge port."
  ],
  "description_excerpt": "1. Field of the Invention\n\nThe present invention relates to a laser processing method. More particularly, the invention relates to a method of manufacture that uses such laser processing, for example, to manufacture an ink jet recording head for enabling ink droplets to fly and adhere to a recording medium, and also, relates to an ink jet recording head manufactured by such method of manufacture.\n\n2. Related Background Art\n\nConventionally, there has been known the laser processing method that uses ultraviolet laser in order to precisely process a structural object that requires minute structures formed in high precision.\n\nAs an example of such precise processing, there is such one as processing ink flow paths or ink discharge ports of an ink jet head.\n\nIn the specification of Japanese Patent Application Laid-Open No. 2-121842 or 2-121845, is disclosed the high precision processing of ink flow paths or ink discharge ports using excimer layer, the typical ultraviolet laser.\n\nIn other words, the excimer laser can oscillate ultraviolet rays of short pulses (15 to 35 ns) by the discharge excitation of a mixed gas of rare gas and halogen. The oscillation energy thereof is 100 mJ/pulse, and pulse repetition frequency is 10 to 500 Hz. Then, when the highly bright ultraviolet rays, such as the excimer layer, are radiated on the surface of resin polymer, the ablative photodecompotion (APD) process occurs to decompose such portion to be scattered instantaneously with plasma emission and impact noises, thus making it possible to perform the so-called laser ablation process of polymer resin.",
  "cpc": [
    "B41J 2/1634",
    "B23K 2103/08",
    "B23K 2103/42",
    "B23K 2103/50",
    "B23K 2103/54",
    "B23K 26/0624",
    "B23K 26/066",
    "B23K 26/40",
    "B41J 2/005",
    "B41J 2/15",
    "B41J 2/1601",
    "B41J 2/1607",
    "B41J 2/162",
    "B41J 2/1623",
    "B41J 2/1626",
    "B41J 2002/14379",
    "B41J 2002/14387"
  ],
  "ipc": [
    "B23K 26/06",
    "B23K 26/40",
    "B41J 2/005",
    "B41J 2/15",
    "B41J 2/16"
  ],
  "assignees": [
    "Canon Inc"
  ],
  "inventors": [
    "Jun Koide"
  ],
  "filing_date": "2000-06-28",
  "publication_date": "2004-02-17",
  "grant_date": "2004-02-17",
  "priority_date": "1999-06-30",
  "application_number": "US-60491300-A",
  "family_id": "27528872",
  "cited_by_count": 11,
  "citations": [
    "US4504726A",
    "EP0309146B1",
    "JPH02121842A",
    "JPH02121845A",
    "US5208604A",
    "US5312396A",
    "US5808644A",
    "US5296674A",
    "EP0542656A1",
    "EP0552058A1",
    "US5656186A",
    "US5786560A",
    "US5720894A",
    "EP0836906A1",
    "WO1998055035A1",
    "DE19736110A1"
  ]
}

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