AU693532B2 - Method of printing - Google Patents

Method of printing Download PDF

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Publication number
AU693532B2
AU693532B2 AU20085/95A AU2008595A AU693532B2 AU 693532 B2 AU693532 B2 AU 693532B2 AU 20085/95 A AU20085/95 A AU 20085/95A AU 2008595 A AU2008595 A AU 2008595A AU 693532 B2 AU693532 B2 AU 693532B2
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AU
Australia
Prior art keywords
carrier
printing
print head
substrate
print
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired
Application number
AU20085/95A
Other versions
AU2008595A (en
Inventor
Steven John Buckby
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Markem Imaje Ltd
Original Assignee
Prestek Ltd
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Filing date
Publication date
Priority claimed from GB9410273A external-priority patent/GB9410273D0/en
Application filed by Prestek Ltd filed Critical Prestek Ltd
Publication of AU2008595A publication Critical patent/AU2008595A/en
Application granted granted Critical
Publication of AU693532B2 publication Critical patent/AU693532B2/en
Anticipated expiration legal-status Critical
Expired legal-status Critical Current

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J17/00Mechanisms for manipulating page-width impression-transfer material, e.g. carbon paper
    • B41J17/02Feeding mechanisms
    • B41J17/12Special adaptations for ensuring maximum life
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J33/00Apparatus or arrangements for feeding ink ribbons or like character-size impression-transfer material
    • B41J33/14Ribbon-feed devices or mechanisms
    • B41J33/54Ribbon-feed devices or mechanisms for ensuring maximum life of the ribbon

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  • Electronic Switches (AREA)
  • Ink Jet (AREA)

Description

AUSTRALIA
Patents Act 1990 COMPLETE SPECIFICATION FOR A STANDARD PATENT
ORIGINAL
Applicant(s): PRESTEK LIMITED 00 S..6 0 0 00.
Actual Inventor(s): Address for Service: Steven John Buckby PATENT ATTORNEY SERVICES 26 Ellingworth Parade Box Hill Victoria 3128 Australia Title: METHOD OF PRINTING Associated Provisional Applications: No(s).: The following statement is a full description of this invention, including the best method of performing it known to me/us:- METHOD OF PRINTING Description of Invention This invention relates to a method of printing.
In pixel based printing systems such as dot matrix ribbon printing, or thermal transfer printing which utilises a carrier or web which carries print medium such as ink, (known in thermal printing, as ribbon or foil), one major expense for a user is the cost of the ribbon or foil.
According to the invention there is provided a method of printing utilising a printing apparatus having a print head with an array of printing elements each of which is individually :i 10 selectable in a plurality of pixel row positions along the image to transfer a pixel of print S.0 So medium from a carrier onto an adjacent substrate, the printing apparatus being capable of printing, an image at a maximum print density determined by the number of printing elements in the array and the number of pixel row positions along the image, the method including the o 0.
S steps of carrying out a first printing operation by means of causing relative movement S between the substrate and carrier, and the print head, such that the print head moves relative S to an area of the carrier from a start position to an end position whilst printing elements are individually selected from a first set only of the printing elements to transfer a first set of pixels S of print medium from the area of the carrier onto the substrate, whereby the resultant image is 20 of a print density less than the maximum print density; causing relative movement between the print head and the carrier to replace the print head at the start position of the carrier; causing relative movement between the carrier and the substrate and presenting fresh substrate adjacent to the area of the carrier, and carrying out a second printing operation by means of causing relative movement between the fresh substrate and carrier, and the print head, such that the print head moves again relative to the area of the carrier from the start position to the end position whilst printing elements are individually selected from a second set of the printing elements to transfer a second set of pixels of print medium from the area of the carrier onto the fresh substrate, whereby the resultant image is of a print density less than the maximum print density.
S• 10 The invention also provides a method of printing utilising a printing apparatus having a print head with an array of printing elements each of which is individually selectable in a plurality of pixel row positions along the image to transfer a pixel of print medium from a 0 0 66606" carrier onto an adjacent substrate, the printing apparatus being capable of printing an image at S a maximum print density determined by the number of printing elements in the array and the number of pixel row positions along the image, the method including the steps of 0 carrying out a first printing operation by means of causing relative movement between the substrate and carrier, and the print head, such that the print head moves relative to to an area of the carrier from a start position to an end position whilst printing elements are individually selected in a first set only of the pixel row positions along the image to transfer a to: 20 first set of pixels of print medium from the area of the carrier onto the substrate, whereby the resultant image is of a print density less than the maximum print density; causing relative movement between the print head and the carrier to replace the print head at the start position of the carrier; 00 e 0 of0 0 0*
S
0*
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50 0 0 5 causing relative movement between the carrier and the substrate and presenting fresh substrate adjacent to the area of the carrier, and carrying out a second printing operation by means of causing relative movement between the fresh substrate and carrier, and the print head, such that the print head moves again relative to the area of the carrier from the start position to the end position whilst printing elements are individually selected in a second set of the pixel row positions along the image to transfer a second set of pixels of print medium from the area of the carrier onto the fresh substrate, whereby the resultant image is of a print density less than the maximum print density.
In all pixel based printing systems, print density is determined by dot resolution. The invention offers a way for a user to save the cost of thermal printing ribbon or foil, or other carrier and print medium where the relatively high density print which can be obtained by at least the higher resolution dot based printing systems, is not required.
By "fresh substrate" we mean an entirely fresh substrate, such as a different label, or a 15 further part of the same substrate, onto which pixels of print medium have not previously been transferred from the carrier.
After each printing operation the printing head may be moved e.g. laterally, away from the carrier and substrate, and held a short distance away from the carrier whilst the carrier and/or substrate are moved in preparation for the next printing operation, and then moved e.g.
laterally, back towards the carrier and substrate.
If desired, during printing, during the first relative movement between the substrate and the carrier, and the print head, a first set only of the printing elements is employed to transfer the first set of pixels of print medium onto the substrate. Likewise, during printing, 3 A4T O7 II I at 00 0 e 0* S 00
S
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during the relative movement between the fresh substrate and carrier, and the print head, a second set of printing elements is employed to transfer the second set of pixels of print medium onto the substrate.
Thus for exanmple, two separate substrates or separate areas of substrate can be printed for example, with the same information, but the apparatus only consumes one area of ribbon or foil.
Particularly where the printing head includes a high density of printing elements, the method may be repeated several times for the same area of carrier, with each relative movement between substrate and carrier, and the print head, utilising different printing elements to transfer different pixels of print medium onto substrate. During a final printing operation on a particular area of the carrier all, or substantially all, the printing elements may be used thus ensuring that, even if there is some misalignment between the printing elements and the remaining pixels of print medium, the remaining pixels of print medium will be transferred.
Alternatively, during printing, during the first relative movement between the substrate and carrier, and the print head from the start position to the end position, pi ting elements are utilised to transfer pixels of print medium from the area of the carrier onto the substrate, and during printing, during the relative movement between fresh substrate and carrier, and the print head, printing elements are utilised to transfer pixels of print medium from the area of the carrier onto the fresh substrate such that the pixels of print medium are transferred from different pixel positions of the carrier to the pixel positions from which the print medium was transferred during the previous relative movement between the substrate and carrier, and the print head.
,II In this case, during a final printing operation on a particular area of the carrier, the printing elements may be used such that printing elements are utilised in pixel positions at least partially coincidental with pixel positions of the carrier from which print medium was transferred in a previous printing operation.
In one embodiment, the relative movement between the substrate and carrier, and the print head, is produced by movement of the print head whilst the substrate and carrier are held stationary.
In another embodiment, the relative movement between the substrate and carrier, and the print head, is produced by movement of the substrate and carrier whilst the print head is 10 held stationary.
i The invention is particularly but not exclusively applicable to thermal transfer printing, *000 where the print medium includes ink carried on a carrier comprising a continuous backing *o~o web, and the printing elements are energised to produce heat to transfer pixels of ink from goo.o a the carrier onto a substrate.
In such an application, there are typically at least six, commonly eight or twelve or 0. more printing elements per millimetre of printing head, arranged in a single line array. The S printing elements may, however, be arranged in a multiple line, or other non-single line array.
S00 However the invention may be applied to any other dot based printing system such as a dot matrix printer which utilises a woven ribbon as a carrier for ink and where printing 20 elements are arranged in an array.
According to a second aspect of the invention there is provided a printing apparatus for performing a method of printing in accordance with the invention. The apparatus in one embodiment comprises a print head operable to transfer pixels of print medium from a carrier 4a _I _1 onto an adjacent substrate, means to maintain the print head during printing, stationary, and to move the carrier and substrate in a first direction past the print head from a start position to an end of print position over an area of the carrier and means to cause the carrier, after a first printing operation, to move relative to the print head in a second direction generally opposite to the first direction and to present fresh substrate adjacent to the print head so that in a subsequent printing operation, the fresh substrate is moved with carrier, in the first direction past the printing head.
According to a third aspect of the invention the invention can provide a method of printing with a thermal printer having a print head with an array of heating elements, and a :10 print ribbon with a layer of thermally sensitive ink for deposition on a print area of a medium 0 00 to be printed, wherein the method includes: selectively energizing a first set of heating elements to deposit ink from a first portion o of the ribbon onto the print area of the medium to be printed, and then a second set of go heating elements to deposit ink on another print area using ink from undepleted parts of the first ribbon portion displacing the ribbon and repeating the above selective energizing steps on fUrther print areas using a second ribbon portion.
CS
The method may include using a printer in which the print head is movable relatively to the print ribbon and generally parallel to the surface of the ribbon and has an array of heating elements extending laterally with respect to the direction of print head movement, and 65S5 20 moving the print head in a first stroke whilst selectively energizing the first set of heating elements, subsequently moving the print medium, and then moving the print head in a second stroke whilst energizing the second set of heating elements, using the same ribbon portion for both print head strokes.
A method may further include using a printer in which the print head is movable relatively to the print ribbon and has a linear array of heating elements extending laterally with respect to the direction of movement of the print head, and moving the print head in a first stroke relative to the print ribbon f
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O
a *o o a a
S.
a.
S. f a ff t a.
a ft ft~ f and the print area of the print medium, controlling the print head to energize the first set of heating elements during the first stroke, thereby to heat the first portion of the ribbon and to deposit ink onto the print medium, controlling the print head to energize the second set of heating elements during a subsequent print stroke to heat the same first ribbon portion so as to use ink on the first ribbon portion not used in a previous print stroke, and displacing the ribbon after the print strokes in which alternate heating elements are used so that the print head may heat a second portion o f the ribbon during a subsequent specific number of print strokes.
The invention will now be described with reference to the accompanying drawings in which FIGURE 1 is a side illustrative view of a printing apparatus which may be operated by a method in accordance with the invention, without a print medium carrying carrier being shown, for clarity.
S. 15 FIGURE 2 is a top plan view of the printing apparatus of figure 1, showing the print medium carrying carrier.
FIGURE 3 is a front illustrative view of the printing apparatus of •oo• figure 1 again without the print medium carrying carrier for clarity.
FIGURE 4 is a plan view of part of an alternative embodiment of a printing apparatus in accordance with the invention.
o Referring to Figures 1 to 3, there is shown a printing apparatus comprising a print head assembly 11 which mounts a plurality of individually energisable thermal printing elements, preferably provided on an edge of the print head assembly 11, in a single line array. The print head assembly 11 is movable S. 25 relative to carrier, being a web 12 which carries print medium comprising ink, whilst the thermal printing elements are individually selectively energised under *D computer control, wherein the elements will become hot, thus to cause pixels of ink to be removed from the web 12 maJ deposited onto a substrate (not shown) to the right hand side of the apparatus 10 as seen in figure 1. The substrate may for example be a label which is subsequently applied to an article, or packaging 6 material, or may be the article itself, which substrate moves past the printing apparatus 10 and is temporarily halted at the printing apparatus 10 whilst printing thereon is effected.
In this way, information can be printed, in ink, on the substrate.
The information usually is, one or more alpha-numeric characters, to indicate for example, a sell-by date. The or each such character is defined by a plurality of pixels of print medium i.e. ink, transferred from the web 12 or other carrier by the energised printing elements of the printing head assembly 11 as the print head assembly 11 is moved relative to the carrier and substrate.
The web 12 carrying the ink is provided on a supply spool 14 carried on a hub 15, the web 12 passing around a web guide path comprising idler rollers 16,17,18, around a further roller 19 between the roller 19 and a drive roller R and then on to a take up spool mounted on a hub 20. The drive roller R and take up spool are driven, as hereinafter explained, from a motive means 21 which is 15 in this example, a stepper motor.
ooo The hub 15 and hence spool 14 provides some resistance to web 12 being paid out therefrom, this being provided by a friction means being a clutch material W and a spring S configured as is well known in the art. The take up S* spool is also mounted on a hub 20 having a similar friction means.
20 The print head assembly 11 is driven for movement relative to the web i eooo *12 by the motor 21 via a transmission. The transmission comprises a pair of generally parallel spaced apart flexible drive members comprising belts 23,24, which are entrained respectively about pairs of rollers 25,26, and rollers 27,28.
The first pair of rollers 2',26, are mou.-ted on respective generally parallel and vertical drive shafts 30,31, with shaft 31 being driven via a belt 32 or :chain drive or otherwise as required, from an output shaft 33 of the stepper motor 21.
The second pair of rollers 27,28, are each mounted on respective generally parallel and vertical shafts 34,35, via bearings so that the rollers 27,28, are free to rotate relative to their respective shafts 34,35.
Drive shaft 30 has secured to it, a gear 30a which meshes with a gear on a shaft L on which roller R is provided.
As can be seen from figure 1, the print head assembly 11 is of generally rectangular configuration, and is secured to a mounting structure T which is clamped at screws 36,37, (see figure 3) to the belts 23,24. Upon operation of the motor 21 drive is transmitted from the drive shaft 33 of the motor to each of the belts 23,24, via the shaft 31, and hence the print head assembly 11 is caused to move either in the direction indicated by arrow A, relative to the web 12, or an opposite direction depending upon the sense of rotation of the output shaft 33 of the motor 21.
The structure T comprises a slider element V and a bearing B which is fixed relative to the print head assembly 11 and is slidable relative to the slider element V. Hence the print head assembly 11 can slide in the direction of arrow B and in an opposite direction, relative to the slider element V.
The mounting structure T is also clamped at its rear edge 40 to a third belt 41 as Shown at 42 in figure 2, the third belt 41 being driven in synchronism with belts 23,24, from shaft 31, but being entrained only about the shafts 31 and The print head assembly 11 also carries at its rear edge, a guide roller 44 which is rotatable about a generally vertical axis 45 transverse to the direction A of movement of the print head assembly 11 during printing. The roller 44 bears 9* on a generally horizontal post 46 of generally circular cro, s section, the post being to:o mounted via a lever arm 47 for rotation about a horizontal axis 48 generally .r parallel to but spaced from the post 46, on a bearing 50 which is fixed relative to a body of the printing assembly Hence as the print head assembly 11 moves from side to side, in the S I direc,-ion of arrow A or oppositely, the print head assembly 11 is guided for movement via the guide roller 44 and post 46.
A strong spring 47a is provided between the post 46 and a frame part P of the apparatus 10 to bias the post 46 about axis 48 away fromrn the print head.
assembly 11. The print head assembly 11 carries a hook formation H which engages with post 46 so that as the post 46 moves in the direction generally opposite to that of arrow B, the print head assembly 11 is moved with it, and slides relative to the mounting structure T.
The amount that the post 46 can be moved by the spring 47a is restricted by means of an air cylinder 50 which is positioned behind the post 46.
In the figures, the print head assembly 11 is shown in a start position spaced away from a substrate, but with the web 12 carrying the ink, entrained over an edge of the print head assembly 11 mounting the thermal printing elements.
To bring the print head assembly 11 towards the web 12 and substrate to effect printing, the print head assembly 11 is moved in a direction indicated by arrow B, i.e. laterally, which is transverse to the direction of movement of the print head assembly 11 during printing, as indicated by arrow A.
Movement of the post 46 and hence of the print head assembly 11 in direction B is achieved by means of the air cylinder 50 and its piston 51, which, 6. when actuated, rotates the guide post 46 about axis 48, thus to urge the print head assembly 11 towards the substrate, against the restoring force of the spring 47a.
The piston 51 is arranged to retain the print head assembly 11 in its extended position against the restoring force of the springs 47a, whilst the print head 0o. assembly 11 moves from the beginning, to end of printing positions in direction a. of arrow A, to effect printing on the substrate.
At the end of printing, when the print head assembly 11 is in its end of printing position, the piston 51 is deactuated and the print head assembly 11 is moved in an opposite direction to arrow B by the restoring force of the spring 47a away from the substrate and, by actuating the motor 21 in an opposite sense of rotation, the print head assembly 11 is moved back to the start position shown in the drawings in a direction opposite to the direction of arrow A.
The hub 20 of the take up spool carried by hub 20 is driven from the motor 21 via a drive belt 80 shown in dotted lines in figure 2, which is fixed to rotate with the drive roller R. Between drive roller R and the shaft L which is rotated by gear 30b there is a mechanical one-way clutch which permits the shaft L to rotate relative to the roller R as the stepper motor 21 rotates in one sense of rotation (clockwise in figure 2) during a printing operation. Thus the web 12 and take-up spool 20 remain stationary during a printing operation as tilhe extended print head 11 moves downwardly as seen in figure 2. A one-way clutch suitable for this purpose is well known in itself and is a purely mechanical unit.
Of course, when the stepper motor 21 is rotated in an opposite sense of rotation, in the absence of any other means, the one-way clutch would cause the drive roller R to rotate clockwise as seen in figure 2, and thus drive the web 12 which is entrained about it, as well as the take up spool 20, so that the web 12 advances as the print head assembly 11 is moved back to the start of print position indicated in the drawings.
To enable the apparatus 10 to operate in accordance with the present S 15 invention, there is provided a further clutch between the gear 30b and shaft L so g •that during the return movement of the printing head 11 to the start of print
S.
position, the shaft L and hence the drive roller R can be prevented from rotating sees S: with the gear 30b. Such a clutch preferably comprises an electrically operated clutch which is under the control of the computer control of the apparatus.
Further features of the printing apparatus are as follows.
sees 0199 In this embodiment described, the spools 14 and spool carried by hub go 20 as well as the drive roller R (but not its shaft L) and idler rollers 19, 18 and 001 17 are carried by a cassette 55 which can be removed from the body of the o printing apparatus 10 to facilitate replenishing the printing apparatus 10 with web 12.
sees The web guide path includes a peeler bar P' behind which the web 12 0 S passes immediately after passing over the print head assembly 11, the bar P' being operable to ensure proper separation of ink deposited on the substrate, and remaining web 12.
The belt 41 is maintained under tension by means of a tensioning roller 59 and the belts 23,24, can also be kept under constant tension by tensioning rollers When the cassette 55 carrying the spools 14 and 20 is removed, a micro switch 61 which feeds power to the stepper motor 21 is tripped so that there is no risk of the mechanism of the printing apparatu; 10 being actuated without the cassette 55 being in position.
In the event that the web feeu spool 14 becomes empty, an electronic sensor carried by a clamp 62 past which the web 12 passes, will signal the lack of web 12 to an operator, and/or disable printing apparatus The amount of movement of the print head assembly 11 in a direction opposite to that of arrow A i.e. the return movement, is restricted by means of a **microswitch carried on a clamp means 63 which senses the print head assembly 11 when returned to its start position, immediately to stop motor 21.
oeoe It will be appreciated that by virtue of the print head assembly 11 being mounted on the flexible belts 23,24, and 41 via the mounting structure T, the assembly 11 is able to float to a smaller degree about the central axis of post 46. The roller 44 mounted at the rear of the printing assembly 11 engages with the post 46 to restrict other movements.
20 Hence in the event that the substrate onto which print medium is to *be transferred is not exactly at right angles to the array of printing elements mounted by the print head assembly 11, the assembly 11 can move slightly about the central axis of post 46 as the print head assembly 11 is moved towards the substrate by the actuator 50 to accommodate such slight misalignment.
Hence, improved quality of print can be achieved throughout the entire printing operation, In the absence of ome means to accommodate misalignment of the substrat;', quality of print would tend to suffer over at least some of the area of the substrate onto which information is printed.
The printing apparatus described above may be operated by a method in accordance with the first invention as follows.
11 In the apparatus described, the print head assembly 11 may comprise at least six, but possibly eight, twelve, or more energisable printing elements per millimetre width of the print head assembly 11, with all of the energisable print elements arranged in a single line array across the printing head assembly 11.
Rather than utilising all of the printing elements for printing, as the print head assembly 11 is traversed relative to the webs 12 and substrate, a first set only of the printing elements may be utilised on a first printing operation. For example, every alternate printing element may be utilised whilst the print head assembly 11 is traversed over or otherwise moves over an area of the web 12 from its start to end of print positions to transfer pixels of ink from the web 12 onto the substrate.
Hence an alpha-numeric character or a plurality of such characters may be printed on the substrate. However, as only some of the printing elements are utilised, the print density will obviously be less overall than if all the printing 15 elements of the print head assembly 11 were used during printing. Whereas this S' might nriot be acceptable for printing machine-readable information such as a bar code, where the information printed is for example a sell-by date comprising a plurality of alpha-numeric characters, a human reader will have little difficulty in reading the information.
20 At that stage, rather than advancing the web 12, the print head assembly 11 is moved as hereinbefore described relative to the web 12 back to the start of print position, but the electronically operated clutch between the gear 30b and its shaft L is operated so as to isolate the roller R so that the web 12 is not advanced. The substrate may be advanced, or an entirely fresh substrate may be presented adjacent to the same area of the web 12 which was traversed by the print head assembly 11 immediately previously.
The print head assembly 11 may then be operated to traverse the same area of the web 12, but different printing elements are utilised during printing to transfer pixels of ink from the web 12 onto the substrate.
Thus only some of the printing elements are utilised the first time the print head assembly 11 traverses the area of the web 12, and only some, and different, printing elements are utilised the second time the print head assembly 11 traverses the same area of the web 12.
At this stage, when the print head assembly 11 is returned to the start of print position, the clutch between the gear 30b and its shaft L is operated to cause the roller R and the take-up spool 20 to rotate so that the web 12 is advanced.
The take up spool 20 may have a slipping clutch which permits differential movement between the spool 20 and the drive roller R as the spool becomes filled with used web 12.
Thus the amount of web 12 utilised for printing will be reduced by half, in this example, assuming that the web 12 is advanced after the print head assembly 11 has relatively traversed the web 12 for a second time.
15 In arrangements where a large number of printing elements per millimetre are provided, it might be possible for the print head assembly 11 to traverse or otherwise move over the same area of the web 12 more than twice, but each traverse of the same area of the web 12 will utilise different printing elements with a consequent saving in web 12.
20 During second or other the final printing operation using a particular area of web 12 all of the printing elements may be used. This ensures that, even if there is some misalignment between the printing elements and the remaining pixels of ink on the web 12, sufficient of the remaining pixels of ink will be transferred to achieve satisfactory printing.
It will be appreciated that during any printing operation when only alternative printing elements are thermally energised, it may be necessary to provide added power to the individually energised printing elements compared with the power supplied when all the printing elements are utilised in a printing operation. This is because the individual printing elements may be less able to produce, retain and dissipate heat to the respective ink pixels of the ink carrier, when a reduced number of the printing elements in a given area of print head are energised compared with the number which would be utilised in a conventional method.
Hence in a printing operation performed by the method of the invention, during a first printing operation when only alternate printing elements for example are energised selectively, the individual printing elements may have a first power provided to them, whereas in a subsequent printing operation using the same area of ink carrier, when all of the printing elements are energized selectively, a second reduced power may be provided to each of the printing elements when they are energised.
Where the print head assembly 11 traverses the same area of the web So, 12 more than twice, it will be appreciated that for each such traverse, fresh substrate, being either a fresh area of substrate, or an entirely different substrate, S would need to be presented adjacent to that area of the web 12.
15 The apparatus described with reference to the drawings may alternately be operated by the method of the invention as follows.
During a first traverse or other movement of the print head assembly 11 relative to the web 12 between the start and end positions, each of the printing elements may be utilised to transfer pixels of print medium i.e. ink, from the web 20 12 dnto the substrate. However the printing elements may only be operated for certain pixel positions (rows) between the start and end of printing positions.
Again the print density will be lower than if the printing elements were all actuated in all pixel positions, but again, where the information to be printed is intended for a human reader, the print density will in most instances be sufficient for the human reader to read the information.
Once the print head assembly 11 is returned to the start position (without the web 12 having been advanced) and traversed over or otherwise moved relative to the same area of the web 12 a second time, each of the printing elements may again be utilised, but by ensuring that each printing element is not operated when in the same pixel position that the printing element was previously operated during the first traverse of the print head 11 relative to the web 12, pixels of ink are transferred from different pixel positions of the web 12 to the pixel positions from which ink was transferred during the previous traverse of the print head assembly relative to that area of web 12.
Utilising this method, again the amount of web 12 utilised by the apparatus will be reduced by half, assuming that the web 12 is advanced after the print head assembly 11 has relatively traversed the web 12 for the second time.
Again, the method of the invention may cause the print head assembly 11 to traverse or otherwise move relative to the carrier for more than two times, provided that for each such movement during printing, no printing element is operated in the same pixel position between the start and end of printing positions, that the printing element was operated in a previous printing movement of the print head 11 relative to the same area of the web 12.
However, during the final printing operation using a particular area 15 of carrier all the printing elements may be used in all possible pixel positions to S•ensure that an adequate amount of ink is transferred onto the fresh substrate in the event of any slight misalignment between the web 12 and the printing ,r •elements.
Various modifications may be made to the apparatus described with 20 refeietce to the drawings, as follows.
The printing apparatus 10 may be used in other orientations to that described, as appropriate to the position and orientation of the substrate.
For example, although the printing apparatus 10 described has been of the type which utilises a web 12 carrying ink which is deposited by means of thermal printing elements onto a substrate, the invention may be applied to any other printing apparatus having a plurality of selectively operable printing elements to effect printing, such as a 24 dot matrix printer. The print head assembly 11 may incorporate an array being a single line of printing elements as described, or an array being a matrix i.e. multiple lines of such elements.
Although in the arrangement described, the print head assembly 11 is carried via the mounting structures T by three drive belts 23,24,41, in another arrangement, less than three drive belts, or more than three drive belts, may be provided.
In place of drive belts, any other suitable endless loop members, such as chains, could be used to provide a transmission and mounting for the print head assembly 11, or indeed any other suitable flexible or rigid drive member or members which is/are able to provide drive to, and a means of mouiiting the print head assembly 11, could be used.
Although it is preferred for single stepper motor 21 to be used as a motive means for the printing apparatus 10, with suitable logic control e.g.
utilising a computer, if desired more than one stepper motor 21 or other motive means may be provided. For example a separate motor may be provided to diive the drive roller R and take up spool 20 for the web 12.
Any alternative means to the piston and cylinder arrangement 50 for effecting movement of the print head assembly 11 towards the substrate, may be .provided.
Although the invention has been described with reference to an apparatus in which the print head assembly 11 moves relative to the carrier of 20 prini medium i.e. web 12, and substrate during printing, the invention may be applied to an apparatus of the type in which the print head is at a fixed position, .and the carrier carrying print medium, and the substrate are together moved goo relative to the print head during printing. In such an embodiment, rather than a print head assembly moving back to a start position of an area of th, carrier in order relatively to traverse or otherwise move relative to the carrkic a second time, the carrier may be arranged to be moved back relative to the print head assembly whilst fresh substrate is presented adjacent that area of the carrier, and the carrier and fresh substrate is traversed past the fixed pr;- it head assembly a second, and where appropriate, further, times.
Referring now to figure 4, a partial view of one embodiment of such an apparatus 100 shows web path and drive components. A web 112 carrying the ink is provided on a supply spool 114 carried on a hub 115, the web 112 passing around a web guide path comprising guide roller 116, print head roller 117 against which the print head 111 exerts a force during printing, guide roller 118, web drive roller 119, which is operable to drive the web 112 and is solely responsible for the amount of web 112 movement in either direction, as hereinafter explained. The web is then guided on to a take-up spool 120 carried on a hub 121. Supply spool 114, web drive roller 119, and take-up spool 120 are driven from a single motive means 122, which in this example is a two-way stepper motor, via a drive and timing belt 123. Spool 114 is driven through a one-way clutch and slip clutch and spool 120 is driven through a one way clutch and slip clutch, the one way clutches operating in tandem such that the two .clutches are operable so that when the stepper motor 122 is operated so as to 15 move the timing belt 122 in a clockwise direction as seen in figure 4, the take up Sspool 120 is driven, whilst spool 114 is not driven. Thus web 112 may be paid out from the supply spool 114 and taken Iup onto spool 120. Conversely, if stepper motor 122 is operated so as to move the timing belt 123 in an anti-clockwise direction as seen in figure 4, the supply spool 114 is driven so as to rotate 20 antilockwise and take-up web 112 onto it, whilst spool 120 is not driven and web 112 can be paid out from spool 120 for a purpose hereinafter described.
SAdditionally, slip clutches are provided for each of these spools 114 and 120 to accommodate differential movement between the spools 114 and 120 as increasingly, web is fed out from the supply spool 114 onto the take-up spool 120. The slip clutches also provide slight resistance (drag) when the respective spools 114,120, are paying out web 112.
If desired, at least the one-way clutches may be electrically operated, although simple mechanical devices are adequate to perform this function.
A substrate 124 is supplied from a supply spool (not shown) and passes between the web 112 and print head roller 117. Particularly if the substrate 124 consists of labels on a web, the path can continue around the print head drive roller 117, around a nip roller 125 and a guide roller 126. If the substrate is of another form such as polythene film, the path may continue in substantially the same direction, as indicated by chain line 127. The substrate 124 is driven by a second motive means (not shown) so that the substrate 124 moves in synchronism with the web 112 past the print head assembly ,hich is indicated by arrow 111.
Movement of the substrate may be continuous or intermittent as desired.
During printing, the stepper motor 122 drives the timing belt 123 in a clockwise direction, the one-way clutch and slip clutch of spool 114 offers only slip/drag resistance to clockwise rotation and spool 114 acts as a supply spool. At the same time, thile one way clutch and slip clutch of spool 120 allow spool 120 to 'be driven with web drive roller 119 in a clockwise direction so that the web 112 is taken up on to spool 120. By virtue of the slip clutch on the take-up spool 120, the actual amount of web 112 which traverses the print head 111, is governed o 15 entirely by the web drive roller 119 which is directly driven via belt 123 from the motor 122, and preferably comprises a rubber coated roller which gives good stiction with the web 112.
After completion of the first printing operation using an area of web 112,'the print head assembly 111 is pulled back a small distance, in the order of 20 half to one millimetre, from the web 112 in the direction of arrow C, thus releasing the pressure exerted on roller 117 during printing. This is achieved as the print head assembly 111 is mounted on an arm 130 which is rotatable about axis 130a of idler roller 16. The arm 130 is spring biased by a spring wound about the central axis 130 of idler roller 116, or otherwise, to urge the arm 130 away from the reaction roller 117.
The arm 130 and hence the print head 111, can be moved against the force of that spring by a pneumatically operated actuator which acts on the arm 130 in the direction of arrow D. Other suitable arrangements are no doubt possible.
18 The substrate 124 is then driven on so that an area of fresh substrate is provided adjacent to the print head 111. At the same time, the stepper motor 122 drives the timing belt 123 in an anticlockwise direction, the one way and slip clutches of spool 120 offering only slip/drag resistance to web 112 being paid out from spool 120 so that spool 120 acts as a supply spool whilst the one-way and slip clutches of spool 114 causes the spool 114 to be driven so that spool 114 acts as a pick-up spool. However, the amount of web 112 driven is again governed by the web drive roller 119. By this means, the same area of web 112 from which pixels of ink were removed during the previous printing operation can be aligned with the print head 111 and fresh substrate in preparation for a second printing operation.
This process may be repeated as often as required for an area of web 0 112. When that area of web 112 has been fully used, the web 112 is not wound back as the substrate 114 is wound on, but a first printing operation is carried out using a fresh area of web 112.
S"The operation of the two-way stepper motor 122 and the second stepper motor which drives the substrate 124, must be accurately co-ordinated.
This may be achieved by mechanical means but is most conveniently provided by means of computer control. Alternatively, the stepper motor 122 may be arranged 20 to diiVe the substrate.
In each case, the print head assembly 112, where the printing elements are energised thermally to transfer pixels of print medium i.e. ink from the carrier web 112 onto the substrate, control is preferably achieved by a computer, together with the. relative movements of the print head and/or carrier and/or substrate as appropriate to cause either selective printing elements to be energised during each print operation, or for all or substantially all of the printing elements to be used during each printing operation but the printing elements are only energised in selected pixel positions during each printing operation to enable the samine area of web 112 or other carrier respectively to be used to print information, by a 19 method as described in detail above with reference to the embodiment of figures 1 to 3.
The mechanism of figure 4, although ideal for performing a method of the first aspect of the invention, may be used in other apparatus where it is desired to move carrier in an appropriate direction to the direction the carrier and substrate move during printing.
oo
S.
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Claims (12)

1. A method of printing utilising a printing apparatus having a print head with an array of printing elements each of which is individually selectable in a plurality of pixel row positions along the image to transfer a pixel of print medium from a carrier onto an adjacent substrate, the printing apparatus being capable of printing, an image at a maximum print density determined by the number of printing elements in the array and the number of pixel row positions along the image, the method including the steps of carrying out a first printing operation by means of causing relative movement between the substrate and carrier, and the print head, such that the print head moves relative 6: 10 to an area of the carrier from a start position to an end position whilst printing elements are individually selected from a first set only of the printing elements to transfer a first set of pixci, of print medium from the area of the carrier onto the substrate, whereby the resultant S• image is of a print density less than *e maximum print density; causing relative movement between the print head and the carrier to replace the print head at the start position of the carrier; causing relative movement between the carrier and the substrate and presenting 4 a fresh substrate adjacent to the area of the carrier, and 0: carrying out a second printing operation by means of causing relative movement between the fresh substrate and carrier, and the print head, such that the print 20 head moves again relative to the area of the carrier from the start position to the end position whilst printing elements are individually selected from a second set of the printing elements to transfer a second set of pixels of pnrint medium from the area of the carrier onto the fresh substrate, whereby the resultant image is ofa print density less than the maximum print _1 _~I density.
2. A method according to claim 1 wherein the printing elements of the second set of printing elements are different from the printing elements of the first set.
3. A method according to claim 1 wherein the second set u' printing elements which are used to print the image on the fresh substrate during the relative movement between the fresh substrate and carrier, and the print head, includes all, or substantially all, of the printing elements.
4. A method of printing utilising a printing apparatus having a print head with an array of printing elements each of which is individually selectable in a plurality of pixel row positions along the image to transfer a pixel of print medium from a carrier onto an adjacent substrate, the printing apparatus being capable of printing an image at a maximum print density determined by the numbet of printing elements in the array and the number of pixel row S positions along the image, the method including the steps of carrying out a first printing operation by means of causing relative movement between the substrate and carrier, and the print head, such that the print head moves relative to an area of the carrier from a start position to an end position whilst printing elements are individually selected in a first set only of the pixel row positions along the image to transfer a o i, first set of pixels of print medium from the area of the carrier onto the substrate, whereby the resultant image is of a print density less than the maximum print density; 64 20 causing relative movement between the print head and the carrier to replace the print head at the start position of the carrier; causing relative movement between the carrier and the substrate and presenting fresh substrate adjacent to the area of the carrier, and 21 carrying out a second printing operation by means of causing relative movement between the fresh substrate and carrier, and the print head, such that the print head moves again relative to the area of the carrier from the start position to the end position whilst printing elements are individually selected in a second set of the pixel row positions along the image to transfer a second set of pixels of print medium from the area of the carrier onto the fresh substrate, whereby the resultant image is of a print density less than the maximum print density. A method according to claim 4 wherein the second set of pixel row positions in which printing elements are used to print the image on the fresh substrate during the relative 10 movement between the fresh substrate and carrier, and the print head, includes all of the pixel 0 00 6 row positions at which the printing elements are individually selectable. 0 1 6. A method according to claim 4 wherein during a final printing operation using the area aO.. of the carrier, the printing elements are individually selected in pixel row positions at least partially coincidental with pixel row, positions of the carrier from which print medium was transferred in a previous printing operation.
7. A method according to any one of the preceding claims wherein after each printing OO operation the print head is moved away from the carrier and substrate and held a short S°distance away from the carrier whilst the steps of causing relative movement between the print head and carrier to replace the print head at the start position of the carrier, and causing S 20 relative movement between the carrier and the substrate such that fresh substrate is presented adjacent to the area of the carrier, are performed, and then the print head is moved back towards the carrier and fresh substrate. L
8. A method according to any one of the preceding claims wherein the pixel positions of the carrier from which the print medium is transferred during the first printing operation and the pixel positions of the carrier from which the print medium is transferred during the second printing operation, are interleaved.
9. A method according to any one of the preceding claims wherein the relative movement between the substrate and carrier, and the print head, is produced by movement of the print head whilst the substrate and carrier are held stationary. A method according to any one of claims 1 to 8 wherein the relative movement between the substrate and carrier, and the print head, is produced by movement of the substrate and carrier whilst the print head is held stationary.
11. A method according to any one of the preceding claims wherein the printing elements *f are arranged in a single line array or in a non-single line array. 4)
12. A method according to any one of the preceding claims wherein the array extends S..o laterally with respect to the direction of relative movement between the carrier and substrate, and the print head.
13. A method according to any one of the preceding claims wherein the printer is a thermal printer, the printing elements comprising heating elements, and the carrier includes a print S ribbon with a layer of thermally sensitive ink for deposition on an adjacent substrate.
14. A method of printing substantially as hereinbefore described with reference to the S 20 accompanying drawings. 5@55 A printing apparatus adapted for performing a method of printing according to any one of the preceding claims. 23 Na .El .r04
16. A printing apparatus substantially as hereinbefore described with reference to and as shown in figures 1 to 3 or figure 4 of the accompanying drawings. Dated this 29th day of April 1998 PATENT ATTORNEY SERVICES Attorneys for PRESTEK LIMTED 0 6* S S .0 T- 014
AU20085/95A 1994-05-20 1995-05-16 Method of printing Expired AU693532B2 (en)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
GB9410273 1994-05-20
GB9410273A GB9410273D0 (en) 1994-05-20 1994-05-20 Printing apparatus
GB9419469 1994-09-27
GB9419469A GB2289441B (en) 1994-05-20 1994-09-27 Method of printing

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AU2008595A AU2008595A (en) 1995-11-30
AU693532B2 true AU693532B2 (en) 1998-07-02

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GB2302523B (en) * 1995-04-12 1998-03-25 Prestek Ltd Method of printing
GB9606647D0 (en) * 1996-03-29 1996-06-05 Prestek Ltd Method of printing
GB2315244B (en) * 1996-03-29 1999-09-15 Markem Tech Ltd Method of printing
GB9621475D0 (en) * 1996-10-15 1996-12-04 Itw Ltd A method of operating a thermal printer
US5815193A (en) * 1997-12-03 1998-09-29 Illinois Tool Works Inc. Printing with sealable housing and adjustable back-up plate and method therefor
US5873662A (en) * 1997-12-03 1999-02-23 Illinois Tool Works Inc. Printer with dancer arm and reel brake and method therefor
ATE511449T1 (en) 2000-09-11 2011-06-15 Zipher Ltd PRINTING DEVICE
GB2448302B (en) 2007-03-07 2009-04-08 Zipher Ltd Tape drive
EP2134549B1 (en) 2007-03-31 2014-11-19 Videojet Technologies, Inc. Tape drive

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GB2175253A (en) * 1985-05-10 1986-11-26 Toshiba Kk Thermal-transfer printer
DE3608360A1 (en) * 1986-03-13 1987-09-17 Olympia Ag Multicolour printer in typewriters or similar office machines
US4705405A (en) * 1986-04-09 1987-11-10 Cca, Inc. Mixing apparatus

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JPS6052386A (en) * 1983-08-31 1985-03-25 Copal Co Ltd Ink film feeding method for thermal transfer type printer
JPH0696322B2 (en) * 1986-04-18 1994-11-30 ブラザー工業株式会社 Printer
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GB2175253A (en) * 1985-05-10 1986-11-26 Toshiba Kk Thermal-transfer printer
DE3608360A1 (en) * 1986-03-13 1987-09-17 Olympia Ag Multicolour printer in typewriters or similar office machines
US4705405A (en) * 1986-04-09 1987-11-10 Cca, Inc. Mixing apparatus

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DE69517089T2 (en) 2000-11-02
AU2008595A (en) 1995-11-30
EP0683055B1 (en) 2000-05-24
ES2121707T1 (en) 1998-12-16
DE69517089D1 (en) 2000-06-29
EP0683055A2 (en) 1995-11-22
EP0683055A3 (en) 1996-11-06
ES2121707T3 (en) 2000-07-16

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