Claims
- 1. A method for calibrating a thermal printer comprising a thermal head incorporating a plurality of energisable heating elements, said method comprising the steps of:supplying to said thermal printer a thermographic material m, a plurality of printer data Pi each intended to be recorded as a pixel having a density Di, and default reference values for printing parameters Π comprising a value Pref for a reference printing power; printing a calibration pattern for said plurality of printer data Pi, said calibration pattern comprising a multiple step density wedge such that a whole range of a relation Di(Pi) between said printer data Pi and said density Di is covered; measuring a density Dexpi for each patch of said density wedge of said calibration pattern in relation to said plurality of printer data Piand storing a set S1=(Pref, Pi, Dexpi) in a memory M1; calculating, for a desired density Dwantj, a corresponding value Prefnewj for said reference printing power and storing a set S2=(Dwantj, Prefnewj)in a memory M2; and calculating, for said desired density Dwantj, for each printer data Pi a corresponding density Di and storing a set S3=(Dwantj, Prefnewj, Pi, Di) in a memory M3.
- 2. A method according to claim 1, wherein said step of printing a calibration pattern is preceded by the steps ofsupplying to said thermal printer a plurality of image data d to be recorded on said thermographic material m; first converting said image data d into density data Di according to a desired relation U between each of said image data d and a corresponding density Di; second converting said density data Di into printer data Pi by using the (P, Di) information in a previous set S3prev corresponding to said Dwantj; and storing thus (twice) converted image data d as a set S7=(d,Pi) into a memory M7.
- 3. A method according to claim 2, wherein said steps of first converting said image data d and of second converting said density data Di are carried out by a transforming according to T=S−1 o U.
- 4. A method according to claim 1 wherein said default reference values for printing parameters Π are selected from the group of a reference value for a resistance value Reref of a heating element, a reference value DCref for a duty cycle, and a reference value Tref for a temperature of a heating element.
- 5. A method according to claim 1, wherein said thermographic material comprises on a support a thermosensitive layer incorporating an organic silver salt and a reducing agent contained in said thermosensitive layer and/or in another optional layer.
- 6. A method for calibrating a thermal printer comprising a thermal head incorporating a plurality of energisable heating elements, said method comprising the steps of:supplying a thermographic material m, a plurality of printer data Pi to be recorded, and default reference values for printing parameters Π comprising a value Pref for a reference printing power; printing a calibration pattern for said plurality of printer data Pi, said calibration pattern comprising a multiple step density wedge such that a whole range of a relation Di(Pi) between said printer data Pi and said density Di is covered; measuring a density Dexpi for each patch of said density wedge of said calibration pattern in relation to said plurality of printer data Pi and storing a set S1=(Pref, Pi, Dexpi) in a memory M1; transforming said printer data Pi to thermal head data THi according to a transformation H applying H(Pi)≧TH0 and H(Pm)≧H(Pn) for Pm>Pn, wherein TH0 is a minimal value of thermal head data to be addressed, and wherein Pm and Pn are arbitrary values of said printer data Pi; finding a value THDwantj for said thermal head data THj corresponding with said desired density Dwantj; calculating, at said desired density Dwantj, a corresponding value Prefnewj for said reference printing power taking into account said Pref, said THDwantj and THmax, wherein THmax is a maximal value of thermal head data that can be addressed, and storing a set S4=(Dwantj, Prefnewj) in a memory M4; and calculating, for said desired density Dwantj, for each available printer data Pi a corresponding density Di and storing a set S6=(Dwantj, Prefnewj, Pj, Dj) into a memory M6.
- 7. A method according to claim 6, wherein said calculating, a corresponding value Prefnewj is carried out according to Prefnewj=Pref·THDwantjTHmax.
- 8. A method according to claim 6, wherein said converting said thermal head data THi into rescaled thermal head data THi′ is carried out according to THi′=THi·THmaxTHDwantj.
- 9. A method according to claim 6, wherein said transforming said printer data Pi to thermal head data THi is carried out according to THi=TH0+Pi·(2N-1-TH0)2N-1wherein N is a bitdepth (representing a number of bits pro value) of said thermal head data THi.
- 10. A method according to claim 6, wherein said recalculating said rescaled thermal head data THi′ into rescaled printer data Pi′ is carried out according to Pi′=(THi′-TH0)·2N-12N-1-TH0.
- 11. A method according to claim 6, further comprising the step of searching two consecutive values of thermal head data THk and THl which correspond with densities Dk and Dl wherein between a desired density Dwantj is enclosed.
- 12. A method according to claim 6, wherein said step of transforming said printer data Pi to thermal head data THi applies according to following equation: THi=TH0+Pi·(2N-1-TH0)2M-1wherein N is a bitdepth (representing a number of bits) of said thermal head data TH, and M is a bitdepth (representing a number of bits) of said printer data Pi, and wherein M is different from N.
- 13. A method for calibrating a thermal printer comprising a thermal head incorporating a plurality of energisable heating elements, said method comprising the steps of:supplying a thermographic material m, a plurality of printer data Pi to be recorded, and default reference values for printing parameters Π comprising a value Pref for a reference printing power; printing a calibration pattern for said plurality of printer data Pi, said calibration pattern comprising a multiple step density wedge such that a whole range of a relation Di(Pi) between said printer data Pi and said density Di is covered; measuring a density Dexpi for each patch of said density wedge of said calibration pattern in relation to said plurality of printer data Pi and storing a set S1=(Pref, Pi, Dexpi) in a memory M1; transforming said printer data Pi to thermal head data Ti according to a transformation H applying H(Pi)≧TH0 and H(Pm)≧H(Pn) for Pm>Pn, wherein TH0 is a minimal value of thermal head data to be addressed, and wherein Pm and Pn are arbitrary values of said printer data Pi; finding a value THDwantj for said thermal head data THi corresponding with said desired density Dwantj; calculating, at said desired density Dwantj, a corresponding value Prefnewj for said reference printing power taking into account said Pref, said THDwantj and THmax, wherein THmax is a maximal value of thermal head data that can be addressed, and storing a set S4=(Dwantj, Prefnewj) in a memory M4; converting said thermal head data THi into rescaled thermal head data THi′ taking into account THi, said THDwantj and said Thmax; recalculating said rescaled thermal head data THi′ into rescaled printer data Pi′ according to a transformation H′ characterised by H′(TH′)≧0 and H′(TH′m)≧H′(TH′n) for TH′m>TH′n; storing a relation S5 between said rescaled printer data Pi′ and said measured density Dexpi (from S1) into a memory M5; and deriving from said relation S5 (in memory M5), for said desired density Dwantj, for each available printer data Pi a corresponding density Di and storing a set S6=(Dwantj, Prefnewj, Pj, Dj) into a memory M6.
- 14. A method for thermal recording by means of a thermal head incorporating a plurality of energisable heating elements Hn and using a calibration method comprising the steps of:supplying to said thermal printer a thermographic material m, a plurality of printer data Pi each intended to be recorded as a pixel having a density Di, and default reference values for printing parameters Π comprising a value Pref for a reference printing power; printing a calibration pattern for said plurality of printer data Pi, said calibration pattern comprising a multiple step density wedge such that a whole range of a relation Di(Pi) between said printer data Pi and said density Di is covered; measuring a density Despi for each patch of said density wedge of said calibration pattern in relation to said plurality of printer data Pi and storing a set S1=(Pref, Pi, Dexpi) in a memory M1; calculating, for a desired density Dwanti, a corresponding value Prefnewj, for said reference printing power and storing a set S2=(Dwantj, Prefnewj) in a memory M2; and calculating, for said desired density Dwantj, for each printer data Pi a corresponding density Di and storing a set S3=(Dwantj, Prefnewj, Pi, Di) in a memory M3.
- 15. A thermal printer for thermal recording an image on a thermographic material having a calibration mechanism comprising:supply mechanism for supplying a thermographic material m, a plurality of printer data Pi each intended to be recorded as a pixel having a density Di, and default reference values for printing parameters Π comprising a value Pref for a reference printing power to said thermal printer, printing mechanism for printing a calibration pattern for said plurality of printer data Pi,said calibration pattern comprising a multiple step density wedge such that a whole range of a relation Di(Pi) between said printer data Pi and said density Di is covered; measuring device for measuring a density Dexpi for each patch of said density wedge of said calibration pattern in relation to said plurality of printer data Pi; memory M1 for storing set S1=(Pref, Pi, Dexpi); calculator for calculating, for a desired density Dwantj, a corresponding value Prefnewj for said reference printing power; memory M2 for storing set S2=(Dwantj, Prefnewj); calculator for calculating, for said desired density Dwantj, for each printer data Pi a corresponding density Di; and a memory M3 for storing set S3=(Dwantj, Prefnewj, Pi, Di).
Priority Claims (1)
Number |
Date |
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01000107 |
Apr 2001 |
EP |
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Parent Case Info
This application claims the benefit of U.S. Provisional Patent Application No. 60/291,398, filed May 16, 2001, which is incorporated by reference.
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Provisional Applications (1)
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Number |
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60/291398 |
May 2001 |
US |