IP Library Granted Patent US 7,319,473
Granted Patent B2
US 7,319,473 · App. 11/315,106 · Granted Jan 15, 2008

Thermal recording system and method

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Quick Facts
Patent No.
US 7,319,473
App. No.
11/315,106
Granted
Jan 15, 2008
Kind
B2
Abstract

A recording apparatus includes a plurality of thermal elements, a strobe generator, and a data sequencer. The strobe generator provides a strobe signal comprising a sequence of N pulses, each pulse having a same period, the sequence including a first group of pulses having an active state for a first duration a second group of pulses having an active state for a second duration, wherein each pulse of the second group is positioned next to a pulse of the first group such their active states combine form a continuous active state. The data sequencer provides an N-bit data sequence representative of a gradation level to each thermal element, each bit corresponding to one of the N pulses, wherein the N bits have active states such that whenever the corresponding gradation level is within a predetermined range and whenever a bit corresponding to a pulse of the second group has an active state the bit corresponding to adjacent pulse of the first group has an active state, wherein each thermal element generates heat based on the strobe signal and the corresponding N-bit sequence.

Claims (32)

1. A recording apparatus comprising:

a plurality of thermal elements;

a strobe generator configured to provide a strobe signal comprising a sequence of N pulses, the sequence including a first group of pulses having an active state for a first duration and a second group of pulses having an active state for a second duration, wherein each pulse of the second group is positioned next to a pulse of the first group such that their active states combine to form a substantially continuous active state; and

a data sequencer configured to provide an N-bit sequence representative of a gradation level for each thermal element, each bit corresponding to one of the N pulses, wherein the N bits have active states such that whenever the corresponding gradation level is within a predetermined range and whenever a bit corresponding to a pulse of the second group has an active state the bit corresponding to the adjacent pulse of the first group has an active state, wherein each thermal element is configured to generate heat based on the strobe signal and the corresponding N-bit sequence.

2. The recording apparatus of claim 1 , wherein the pulses of the second group are positioned at substantially equal intervals throughout the sequence of N pulses.

3. The recording apparatus of claim 1 , wherein each of the N pulses has a same period, and wherein the first duration is substantially equal to a period.

4. The recording apparatus of claim 1 , wherein the second duration is a fraction of the first duration.

5. The recording apparatus of claim 1 , wherein a sum of the second durations of all pulses of the second group is substantially equal to a first duration of one pulse of the first group minus a second duration of one pulse of the second group.

6. The recording apparatus of claim 1 , wherein the first group of pulses comprises a total of S pulses and the second group of pulses comprises a total of P pulses, where the sum of S and P is equal to N, and wherein the recording apparatus provides up to G gradation levels where G is equal to the product of (S+1) multiplied by (P+1).

7. The recording apparatus of claim 6 , wherein S is equal to 511 and P is equal to 15 such that the N-bit sequence comprises 526 bits and the recording apparatus provides up to 8,192 gradation levels.

8. The recording apparatus of claim 7 , wherein a ratio of the second duration to the first duration is substantially equal to 1/16.

9. The recording apparatus of claim 6 , wherein S is equal to 511 and P is equal to 7 such that the N-bit sequence comprises 518 bits and the recording apparatus provides up to 8,192 gradation levels.

10. The recording apparatus of claim 9 , wherein a ratio of the second duration to the first duration is substantially equal to ⅛.

11. The recording apparatus of claim 1 , wherein the strobe generator is configured to adjust the first and second durations based on a plurality of operating parameters associated with the recording apparatus.

12. The recording apparatus of claim 11 , wherein one of the plurality of operating parameters comprises a temperature which is representative of a temperature of the thermal elements.

13. The recording apparatus of claim 1 , wherein the predetermined range is from a minimum gradation level to a maximum gradation level.

14. The recording apparatus of claim 13 , wherein the minimum gradation level comprises a minimum printing density associated with a thermosensitive media intended for use with the recording apparatus.

15. The recording apparatus of claim 13 , wherein the maximum gradation level comprises a maximum desired printing density associated with a thermosensitive media for intended use with the recording apparatus.

16. The recording apparatus of claim 1 , wherein the strobe generator is configured to provide a strobe signal comprising a third group of pulses each having an inactive state.

17. The recording apparatus of claim 1 , wherein the recording apparatus comprises a direct thermal printer.

18. A method of operating a thermal processor including a plurality of thermal elements, the method comprising:

providing a strobe signal comprising a sequence of N pulses, the sequence including a first group of pulses having an active state for a first duration and a second group of pulses having an active state for a second duration, wherein each pulse of the second group is positioned next to a pulse of the first group such that their active states combine to form a substantially continuous active state; and

providing an N-bit data sequence representative of a gradation level for each thermal element, each bit corresponding to one of the N pulses, wherein the N bits have active states such that whenever the corresponding gradation level is within a predetermined range and whenever a bit corresponding to a pulse of the second group has an active state the bit corresponding to the adjacent pulse of the first group has an active state, wherein each thermal element is configured to generate heat based on the strobe signal and the corresponding N-bit sequence.

19. The method of claim 18 , wherein providing the strobe signal includes positioning the second group of pulses at substantially equal intervals through the sequence of N pulses.

20. The method of claim 19 , wherein each of the N strobe pulses has a same period, and wherein providing the strobe signal includes providing a first duration which is substantially equal to a period.

21. The method of claim 19 , wherein providing the strobe signal includes providing a second duration which is a fraction of the first duration.

22. The method of claim 18 , wherein providing the strobe signal includes providing a second group of pulses such that a sum of the second duration of all pulses of the second group is substantially equal to a first duration of one pulse of the first group minus a second duration of one pulse of the second group.

23. The method of claim 18 , wherein providing the strobe signal includes adjusting the first and second durations based on a plurality of operating parameters associated with the thermal processor.

24. A direct thermal processor, comprising:

a plurality of thermal recording elements;

means for providing a strobe signal comprising a sequence of N pulses, the sequence including a first group of pulses having an active state for a first duration and a second group of pulses having an active state for a second duration, wherein each pulse of the second group is positioned next to a pulse of the first group such that their active states combine to form a substantially continuous active state; and

means for providing an N-bit data sequence representative of a gradation level for each thermal element, each bit corresponding to one of the N pulses, wherein the N bits have active states such that whenever the corresponding gradation level is within a predetermined range and whenever a bit corresponding to a pulse of the second group has an active state the bit corresponding to the adjacent pulse of the first group has an active state, wherein each thermal element is configured to generate heat based on the strobe signal and the corresponding N-bit sequence.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded Oct 14, 2022
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
To: CARESTREAM HEALTH, INC.; CARESTREAM DENTAL, LLC; QUANTUM MEDICAL IMAGING, L.L.C.; QUANTUM MEDICAL HOLDINGS, LLC; TROPHY DENTAL INC.
Reel/Frame 061681/0380 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded May 12, 2011
From: CARESTREAM HEALTH, INC.; CARESTREAM DENTAL, LLC; QUANTUM MEDICAL IMAGING, L.L.C.; QUANTUM MEDICAL HOLDINGS, LLC; TROPHY DENTAL INC.
To: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
Reel/Frame 026269/0411 →
RELEASE OF SECURITY INTEREST IN INTELLECTUAL PROPERTY (FIRST LIEN) Recorded Apr 4, 2011
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
To: CARESTREAM HEALTH, INC.
Reel/Frame 026069/0012 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2008
From: EASTMAN KODAK COMPANY
To: CARESTREAM HEALTH, INC.
Reel/Frame 020756/0500 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 7, 2008
From: EASTMAN KODAK COMPANY
To: CARESTREAM HEALTH, INC.
Reel/Frame 020741/0126 →
FIRST LIEN OF INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jul 27, 2007
From: CARESTREAM HEALTH, INC.
To: CREDIT SUISSE, CAYMAN ISLANDS BRANCH, AS ADMINISTRATIVE AGENT
Reel/Frame 019649/0454 →
SECOND LIEN INTELLECTUAL PROPERTY SECURITY AGREEME Recorded Jul 27, 2007
From: CARESTREAM HEALTH, INC.
To: CREDIT SUISSE, CAYMAN ISLANDS BRANCH, AS ADMINISTRATIVE AGENT
Reel/Frame 019773/0319 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 10, 2006
From: WIENS, CURT A.
To: EASTMAN KODAK COMPANY
Reel/Frame 017650/0352 →