Claims
- 1. An apparatus for exposing both sides of a sheet with one or more optical beams, the apparatus comprising:
(a) a carrier for fixing the sheet thereto; (b) an optical system to generating one or more moving light beams onto each side of the sheet, each light beam forming a scan line on a surface of the sheet in a scan line direction relative to the sheet; (c) a drive system to generate relative motion between any point on any scan line on the sheet and the sheet in a transverse direction, the transverse direction substantially transverse to the scan line direction, the drive system configured to enable each light beam to trace on each side a set of one or more substantially parallel scan lines in the scan line direction, each scan line of the set of scan lines mutually separated in the transverse direction, the sets of scan lines covering a desired region on the side of the sheet; and (d) a mutual-positioning mechanism coupled to the optical system to accurately position the sets of scan lines on one side of the sheet relative to the sets of scan lines on the other side of the sheet.
- 2. The apparatus according to claim 1, wherein the carrier holds the sheet in an upright position during exposing.
- 3. The apparatus according to claim 1, further comprising a frame, wherein the drive system is directly coupled to the frame, the carrier is directly coupled to the drive system, the mutual positioning mechanism is directly coupled to the frame, and the optical system is directly coupled to the mutual positioning system.
- 4. The apparatus according to claim 1, further comprising:
(e) a controller coupled to the optical system and the drive system, the controller synchronizing the drive system with the optical system such that each light beam traces the set of one or more substantially parallel scan lines.
- 5. The apparatus according to claim 1, wherein the drive system includes drive to provide relative motion in the transverse direction between the carrier and the optical system.
- 6. The apparatus according to claim 5, wherein the drive is a linear motor.
- 7. The apparatus according to claim 5, wherein the drive includes a motor and a spindle and lead screw mechanism.
- 8. The apparatus according to claim 1, wherein the sheet is a light sensitive sheet and wherein the light beam generating exposes one or both sides of the light sensitive sheet according to imaging data.
- 9. The apparatus according to claim 1, wherein the light spot illuminates one or more scan lines on each side of the sheet, the method further comprising a light sensor for reading the light output from an area illuminated by the beam.
- 10. The apparatus according to claim 8, wherein the optical system comprises:
(i) two optical scanning units, one for each side of the sheet, each scanning unit exposing the desired region of its side of the sheet.
- 11. The apparatus according to claim 10, wherein the exposing by the two optical scanning units occurs substantially simultaneously.
- 12. The apparatus according to claim 11, wherein each of the optical scanning units comprises a source of light energy.
- 13. The apparatus according to claim 11, wherein the optical system further comprises:
(i) a source of light energy, and (ii) a mechanism to direct light energy from the energy source to both optical scanning units simultaneously.
- 14. The apparatus according to claim 11, wherein the optical system further comprises:
(i) a source of light energy, and (ii) an optical switch for selectively switching light energy from the energy source to one or the other of the optical scanning units.
- 15. The apparatus according to claim 14, wherein the optical switch alternates the output of the energy source to one and then to the other optical scanning unit.
- 16. The apparatus according to claim 10, wherein the carrier holds the sheet in an upright position during exposing.
- 17. The apparatus according to claim 16, the sheet having an upper and a lower edge, wherein the carrier comprises a clamping device for holding the sheet at its upper edge, the sheet hanging down during exposing.
- 18. The apparatus according to claim 16, wherein the scan line direction is vertical.
- 19. The apparatus according to claim 16, wherein the scan line direction is horizontal and the transverse direction is vertical.
- 20. The apparatus according to claim 10, wherein the optical scanning units are located on opposite sides of the sheet.
- 21. The apparatus according to claim 10, wherein each optical scanning unit includes:
(i) an optical head for scanning the beams in the scan line direction.
- 22. The apparatus according to claim 21, wherein the optical head is a rotating polygon:
- 23. The apparatus according to claim 21, wherein each optical scanning unit further includes:
(ii) a beam steering element for adjusting the position of the beams in the transverse direction.
- 24. The apparatus according to claim 21, further including:
(iii) a first optical detecting module and a second optical detecting module for each optical scanning unit, the first detecting module and second detecting module respectively detecting the start and end of beam of each scan line of the optical scanning unit, and (iv) a control system coupled to the first and second detecting modules and to the beam steering element, the controller controlling each scan line.
- 25. The apparatus according to claim 23, wherein each optical scanning unit is configured to generate a scan line of up to at least (1.6×10−7)/l m in length, where l is the wavelength of the light energy in meters.
- 26. The apparatus according to claim 25, wherein each optical scanning unit is configured to generate a scan line of up to at least (2.1×10−7)/l m in length, where l is the wavelength of the light energy in meters.
- 27. The apparatus according to claim 10, wherein the mutual-positioning mechanism includes a detection module for determining the cross-beam variation of one of the beams from each optical scanning unit, the determining substantially independent of the focus of the beam.
- 28. The apparatus according to claim 27, wherein the cross beam variation determining is substantially independent of the focus of the beam.
- 29. The apparatus according to claim 27, wherein the detection module includes:
(i) a first photo-detector cell having a front edge and a back edge transverse to the in-beam direction; (ii) a second photo-detector cell adjacent to the first cell in the in-beam direction and having a front edge and a back edge transverse to the in-beam direction, the second cell front edge and the first cell back edge adapted to fit together and mutually adjacent to form a first interface between the first cell and the second cell, (ii) one or more preamplifiers coupled to the photo-detector cells to measure the response to light traversing the cell, the one or more preamplifier outputs processed to generate a detection module output dependent on the cross-scan position, the two cells positioned such that a moving beam first hits the first cell front surface, then crosses the interface, and then crosses the second cell back surface, the first and second cell front and back surfaces shaped such that the relative amount of time the beam traverses each of the cells is indicative of the cross-scan position of the beam, whereby the accuracy of the detection module output is substantially independent of the focus of the beam.
- 30. The apparatus according to claim 1, wherein the optical system comprises:
(i) a source of light energy, (ii) an optical scanning unit for generating one or more light beams onto either side of the sheet, and (iii) a mechanism to move the carrier relative to the optical scanning unit to successively present:
a first side of the sheet to the optical scanning unit to form the sets of scan lines covering the desired region of the first side, and the side other than the first side of the sheet to the optical scanning unit to form the sets of scan lines covering the desired region of the other side of the sheet, wherein the sheet remains in the carrier until both desired regions on both sides of the sheet are covered.
- 31. An apparatus for exposing both sides of a light sensitive sheet according to imaging data, the imaging data including a first side's imaging data for exposing a first side of the sheet and a second side's imaging data for exposing the side other than the first, the apparatus comprising:
(a) carrier for fixing the sheet thereto (b) an optical system for exposing the first side's imaging data onto a first desired region on the first side of the sheet and the second side's imaging data onto a second desired region on the other side of the sheet; and (c) a mutual-positioning mechanism to accurately position the first side's imaging data on the first side relative to the second side's imaging data on the other side of the sheet, the mutual-positioning mechanism active during the exposing of the sides by the optical system.
- 32. The apparatus of claim 31, wherein the optical system comprises:
two optical exposing units, one for exposing each side of the sheet, the side exposed by any optical exposing unit being that optical exposing unit's corresponding side.
- 33. The apparatus of claim 32, wherein each optical exposing unit is an optical scanning unit for scanning one or more light beams onto the corresponding side, each light beam forming a scan line in a scan line direction relative to the sheet, the apparatus further comprising
(d) a drive system for generating relative motion between any point on any scan line on any side of the sheet and the sheet in a transverse direction, the transverse direction substantially transverse to the scan line direction, the drive system configured to enable each the each light beams to trace on each side a set of one or more substantially parallel scan lines in the scan line direction, each of the set of scan lines mutually separated in the transverse direction, each of the sets of scan lines covering a desired region on the side of the sheet.
- 34. The apparatus according to claim 31, wherein the drive system is synchronized with the optical system to enable each light beam to trace the set of one or more substantially parallel scan lines.
- 35. The apparatus of claim 32, wherein each optical exposing unit is an optical projection unit that projects at least part of the corresponding side's imaging data onto the corresponding side.
- 36. The apparatus of claim 35, wherein each optical projection unit projects part of the corresponding side's imaging data onto the corresponding side to form a partial image, the apparatus further including:
(e) a controller for providing a step and repeat action for each side, the step and repeat action translating the optical projection unit of any one side after each partial image formation and repeating the partial image forming until all the one side's desired region has been exposed.
- 37. The apparatus of claim 32, wherein the mutual positioning mechanism includes an optical detection apparatus fixed in position relative to the sheet during scanning and fixed in the transverse position relative to the transverse position of the beams from one optical scanning unit, the optical detecting apparatus detecting a beam from the other optical scanning unit.
- 38. The apparatus of claim 32, wherein the mutual positioning mechanism includes an optical detection apparatus fixed in position relative to the sheet during scanning and capable to detecting a beam from either optical scanning units.
- 39. The apparatus of claim 37, wherein the optical detection module comprises an optical detection unit sensitive to the position of any beam in the transverse direction relative to the detection unit position, the sensitivity to the relative position substantially independent of the thickness of the sheet being scanned.
- 40. The apparatus of claim 37, wherein the optical detection apparatus comprises a pair of optical detection units, one for each side and sensitive to the position in the transverse direction of a beam from that side relative to the detection unit position, the sensitivity to the relative position substantially independent of the thickness of the sheet being scanned.
- 41. The apparatus of claim 39, wherein the optical detection unit comprises a plurality of photodiodes cooperating to form a differential signal indicative of the position of any beam in the transverse direction relative to the detection unit position.
- 42. The apparatus of claim 32, wherein each optical scanning unit further includes a beam steering element to control cross beam positioning of the one or more beams, the beam steering elements coupled to said mutual positioning mechanism (d).
- 43. The apparatus of claim 37, wherein each optical scanning unit further includes a beam steering element to control cross beam positioning of the one or more beams, the beam steering elements coupled to said mutual positioning mechanism (d) and under control of the output of the optical detection apparatus.
- 44. The apparatus according to claim 8, wherein the sheet is a PCB panel.
- 45. The apparatus according to claim 8, wherein the sheet is sensitive to UV light and the light beams are UV light beams.
- 46. An optical detection module for measuring the cross-scan position of a moving optical beam in a scanning apparatus, the beam moving in an in-beam direction, the detection module comprising:
(a) a first photo-detector cell having a front edge and a back edge transverse to the in-beam direction; (b) a second photo-detector cell adjacent to the first cell in the in-beam direction and having a front edge and a back edge transverse to the in-beam direction, the second cell front edge and the first cell back edge adapted to fit together and mutually adjacent to form a first interface between the first cell and the second cell, (c) one or more preamplifiers coupled to the photo-detector cells to measure the response to light traversing the cell, the one or more preamplifier outputs processed to generate a detection module output dependent on the cross-scan position, the two cells positioned such that the moving beam first hits the first cell front surface, then crosses the interface, and then crosses the second cell back surface, the first and second cell front and back surfaces shaped such that the relative amount of time the beam traverses each of the cells is indicative of the cross-scan position of the beam, whereby the accuracy of the detection module output is substantially independent of the focus of the beam.
- 47. The detection module of claim 46, wherein the photo-detector cells are photodiode cells.
- 48. The detection module of claim 46, wherein one edge of each cell is straight and perpendicular to the beam direction.
- 49. The detection module of claim 46, wherein the one or more preamplifiers include a differential integrator.
- 50. The detection module of claim 48, wherein the straight edges are the front edge of the first cell and the back edge of the second cell, the module further comprising:
(c) a third cell having a front and a back edge, both edges being straight and perpendicular to the in-beam direction, the third cell placed adjacent to the first and second cell combination, one of the third cell edges agains one of the straight edges of the first and second cell combination and forming a second interface between the third cell and the first and second cell combination, (d) a differential amplifier coupled to the third cell and the cell of the first and second cell combination adjacent to the third cell, the differential amplifier detecting when the beam crosses the second interface, whereby the detection of when the beam crosses the second interface is substantially independent of the focus of the beam.
- 51. The detection module of claim 48, wherein the straight edges are the edges of the first interface, the detection module further comprising:
(c) a differential amplifier coupled to the first cell and the second cell, the differential amplifier detecting when the beam crosses the first interface, whereby the detection of when the beam crosses the first interface is substantially independent of the focus of the beam.
- 52. The detection module of claim 48, wherein each shape of the shaped edges includes an approximately straight line region that provides for an approximately linear response of the detection module output to cross-scan position.
- 53. The detection module of claim 48, wherein each shape of the shaped edges includes a first cross-beam region and a second cross-beam region such that the detection module output has a different sensitivity to cross-scan position at each of the regions.
- 54. The detection module of claim 53, wherein the first region and the second region have a distinct boundary.
- 55. The detection module of claim 53, wherein the first region and the second merge such that there is no distinct boundary therebetween.
- 56. A method for exposing both sides of a sheet with optical beams the method comprising:
(a) scanning each side of the sheet with one or more moving light beams, each moving light generating a scan line in a scan line direction; (b) generating relative motion between the sheet and the scan lines in a direction transverse to the scan line direction, wherein the scan lines on one side are accurately positioned relative to the scan lines of the other side of the sheet.
- 57. The method according to claim 56, wherein the sheet is a light sensitive sheet and wherein the scanning exposes one or both sides of the light sensitive sheet according to imaging data.
- 58. The method according to claim 56, wherein the scanning of both sides is carried out simultaneously.
- 59. The method according to claim 58, wherein the actuation of the beams of the two sides occurs in an interlaced manner.
- 60. The method according to claim 58, wherein said scanning of both sides is carried out using a single source of a light beam.
- 61. The method according to claim 60, wherein the beam produced by said one source is deflected alternately to one side of the sheet and to the other side of the sheet.
- 62. The method according to claim 60, wherein the light beam produced by said one source is split into two beams for scanning the respective sides of the sheets.
- 63. The method according to claim 56, wherein the sheet is kept in an upright position during scanning.
- 64. The method according to claim 63, further comprising,
(c) fixing the sheet to a carrier in a vertical orientation prior to exposure.
- 65. The method according to claim 64, said sheet having an upper and a lower edge, wherein said fixing to the carrier fixed the sheet to the carrier at its upper edge such that the sheet hangs down during exposing.
- 66. The method according to claim 57, wherein the sheet is a PCB panel.
- 67. The method according to claim 58, wherein the scanning is carried out by moving a beam along each of both sides by means of respective optical scanning units substantially located opposite to each other, and wherein the accurate positioning of the scan lines of one side relative to the scan liens of the other side includes adjusting the position of each optical scanning unit relative to the other optical scanning unit.
- 68. The method according to claim 67, wherein accurate positioning further includes sensing a beam of at least one of said scanning units using at least one detection module belonging to the other of said optical scanning units.
- 69. The method according to claim 68, wherein one or more detection modules are used and wherein at least one of said detection modules is used for the adjustment of the scanning movement of both beams.
- 70. A method for scanning both sides of a light sensitive sheet,
(a) fixing the sheet to a carrier (b) presenting one side of the sheet to an optical scanning unit, and exposing the one side; (b) presenting the side other than the one side to the optical scanning unit, and exposing the other side, the sheet remaining in the carrier until both sides have been exposed by the optical scanning unit such that the exposure of one side is accurately positioned relative to the exposure of the other side.
- 71. The method according to claim 70, wherein the carrier consists of a movable clamp.
- 72. A method for exposing both sides of a PCB panel according to imaging data, the method comprising:
(a) simultaneously generating scan lines on both side of the sheet, the scan lines modulated by the imaging data; and (b) holding the sheet in an upright position during scanning.
- 73. An apparatus for exposing both sides of a light sensitive sheet according to imaging data, the apparatus comprising:
- 74. The apparatus according to claim 73, wherein the two optical scanning units are configures to scan both sides of the sheet simultaneously.
- 75. The apparatus according to claim 74, wherein the two scanning units are disposed opposite to each other, the apparatus further comprising
one source for producing a light beam a mechanism for alternately feeding said source from to one and then the other optical scanning unit.
- 76. The apparatus according to claim 73, wherein the two scanning units are disposed opposite to each other, and wherein at least one of said optical scanning units includes at least one detection module which can co-operate with a beam produced by the second optical scanning unit, the cooperation providing for a mutual adjustment of the beam position on one side of the sheet relative to the beam positions on the other side of the sheet.
- 77. The apparatus according to claim 8, wherein the sheet is sensitive to IR light and the light beams are IR light beams.
- 78. The apparatus according to claim 73, further comprising:
a carrier for fixing the sheet thereto in a vertical position by its upper edge, such that the sheet can hang down freely during exposure.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Patent Application Ser. No. 60/107,842 for METHOD AND DEVICE FOR EXPOSING BOTH SIDES OF A SHEET to inventors Vernackt, et al., Assignee Barco Graphics, N.V., filed Nov. 10, 1998.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60107842 |
Nov 1998 |
US |
Divisions (1)
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Number |
Date |
Country |
| Parent |
09435983 |
Nov 1999 |
US |
| Child |
09811137 |
Mar 2001 |
US |