EP3452292B1 - Ink delivery system for supplying ink to multiple printheads at constant pressure - Google Patents

Ink delivery system for supplying ink to multiple printheads at constant pressure Download PDF

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Publication number
EP3452292B1
EP3452292B1 EP17720382.5A EP17720382A EP3452292B1 EP 3452292 B1 EP3452292 B1 EP 3452292B1 EP 17720382 A EP17720382 A EP 17720382A EP 3452292 B1 EP3452292 B1 EP 3452292B1
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EP
European Patent Office
Prior art keywords
ink
line
positive
negative
module
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EP17720382.5A
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German (de)
French (fr)
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EP3452292A1 (en
Inventor
Jason Thelander
Mark Profaca
Stuart Wheatley
Craig Meyer
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Memjet Technology Ltd
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Memjet Technology Ltd
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    • 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
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/005Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by bringing liquid or particles selectively into contact with a printing material
    • B41J2/01Ink jet
    • B41J2/17Ink jet characterised by ink handling
    • B41J2/175Ink supply systems ; Circuit parts therefor

Definitions

  • This invention relates to an ink delivery system for an inkjet printer. It has been developed primarily for supplying ink to multiple printheads at a relatively constant pressure.
  • Memjet® printers employing Memjet® technology are commercially available for a number of different printing formats, including small-office-home-office (“SOHO") printers, label printers and wideformat printers.
  • Memjet® printers typically comprise one or more stationary inkjet printheads, which are user-replaceable.
  • SOHO printer comprises a single user-replaceable multi-colored printhead
  • high-speed label printer comprises a plurality of user-replaceable monochrome printheads aligned along a media feed direction
  • a wideformat printer comprises a plurality of user-replaceable printheads in a staggered overlapping arrangement so as to span across a wideformat pagewidth.
  • Printheads furthest from the accumulator tank are affected by pressure drops across printheads closer to the accumulator tank. Hence, there is a tendency for printheads to experience difference ink pressures, especially when printing at full bleed or when different printheads in the system have different ink demands.
  • ink delivery system which supplies ink to multiple printheads at a reliable and highly controlled hydrostatic ink pressure. It would further be desirable to provide a scalable ink delivery system, which can be adapted to supply ink to multiple printheads, the number of which may vary from printing system to printing system.
  • an ink delivery system for an inkjet printer as defined hereinbelow in the claims appended hereto.
  • the present invention advantageously provides local pressure control for each printhead in the system. In this way, increasing the number of printheads does not affect the degree of pressure control in the system.
  • the present invention interconnects printheads between a positive ("high") and negative ("low") pressure ink lines. This enables excellent local control of pressure using a relatively low tolerance valve at the high pressure side of the printhead; all valve adjustments are dynamically modulated by feedback from the ink pressure sensor.
  • the use of a positive pressure line provides a sufficient head of pressure for multiple printheads without being affected by pressure drops across any of the printheads in the system during printing.
  • FIG. 1 there is shows schematically an ink delivery system 1 comprising a positive ink line 3 ("positive rail”) and a negative ink line 5 (“negative rail”) connected to an ink delivery module 7, which regulates the ink pressure in each of the positive and negative ink lines.
  • a plurality of print modules 9 are interconnected between the positive ink line 3 and the negative ink line 5 via respective inlet and outlet lines 10 and 12. Although three print modules 9 are shown in Figure 1 , it will be appreciated that any number of print modules may be interconnected between the positive ink line 3 and the negative ink line 5.
  • Print modules 9 may be physically positioned in a staggered overlapping arrangement so as to extend across a print zone media wider than an individual print module. In this way, multiple print modules 9 may be employed for printing onto print media having widths of more than about 8 inches ( e.g. at least 16 inches, at least 32 inches or at least 40 inches).
  • an individual print module 9 is comprised of a supply module 14 and a printhead cartridge 16 releasably connected to the supply module.
  • the printhead cartridge 16 comprises an inkjet printhead 17 for printing onto print media and may be a color or monochrome printhead (e.g. two color or four color printhead), as known in the art.
  • the printhead may of the type described in the Applicant's co-filed application entitled "MONOCHROME INKJET PRINTHEAD CONFIGURED FOR HIGH-SPEED PRINTING" (Attorney Docket No. RRG00 US).
  • an ink delivery system for one color of ink is described herein, although it will be appreciated that multiple ink delivery systems may be used for supply of multiple colors of ink.
  • the supply module 14 comprises a body 20 housing drive and logic circuitry (e.g. one or more PCBs having a print engine controller chip, drive transistors etc ) for the printhead 17, as well as an inlet module 22 and an outlet module 24.
  • the inlet module 22 has an inlet port 26 connected to the inlet line 10
  • the outlet module 24 has an outlet port 28 connected to the outlet line 12.
  • Suitable print module couplings 29 allow convenient replacement of entire print modules, when required.
  • the printhead cartridge 16 is fluidically connected to the supply module 14 by means of printhead inlet and outlet couplings 30 and 32.
  • the printhead inlet and outlet couplings 30 and 32 are typically quick-connect couplings which enable convenient removal of a spent printhead cartridge 16 from each print module 9 and replacement with a new printhead cartridge by the user.
  • the inlet module 22 contains all the necessary components for providing local control of ink pressure in the printhead 17 for a respective print module 9.
  • each print module 9 provides local, independent control of ink pressure in its respective printhead 17, so that local ink pressures can be fine-tuned automatically and in response to localized pressure fluctuations.
  • the inlet module 22 contains a control valve 33, which regulates ink pressure dynamically in response to feedback from an ink pressure sensor 35 sensing ink pressure downstream of the control valve.
  • the ink pressure sensor 35 provides feedback to a controller 37 (e.g. microprocessor), which in turn controls a variable position of the control valve 33 so as to regulate ink pressure in the printhead 17 within a predetermined backpressure range.
  • the control valve 33 allows fine control of ink pressure with minimal hysteresis by virtue of being connected between the positive and negative ink lines 3 and 5, which already provide gross control of ink pressure.
  • relatively large adjustments of the control valve 33 produce only relatively small changes in ink pressure in the print module 9.
  • the inlet module 22 comprises an air inlet 40 for introducing air into the printhead and a corresponding air valve 42, which can shut off air flow into the printhead.
  • the air valve 42 is typically a solenoid valve, which may be controlled by the controller 37. For most operations the air valve 42 is closed. However, when it is necessary to de-prime the printhead 16 ( e.g. for replacement of a printhead cartridge 17), the air valve 42 is opened with the control valve 33 fully closed so as to draw air into the printhead 16 and remove ink.
  • the outlet module 24 comprises a shut-off valve 44 for isolating the print module 9, in combination with the control valve 33, when required.
  • the shut-off valve 44 incorporates a flow restrictor in the form an orifice which restricts ink flow and controls backpressure in the printhead 17 in combination with the negative ink line 5.
  • both the inlet module 22 and the outlet module 24 each comprises a compliance 45 (e.g. an air chamber or flexible-walled chamber) proximal the respective inlet and outlet ports 26 and 28 for dampening ink pressure fluctuations or 'spikes'.
  • a compliance 45 e.g. an air chamber or flexible-walled chamber
  • the ink delivery module 7 comprises an intermediary ink reservoir 50 which is connected to the positive ink line 3 via a positive pressure regulating system in the form of a positive pressure circuit 52.
  • the intermediary ink reservoir 50 is connected to the negative ink line via a negative pressure regulating system in the form of a negative pressure circuit 54.
  • the intermediary ink reservoir is vented to atmosphere via, for example, a serpentine vent path (not shown).
  • the positive pressure circuit 52 regulates a positive ink pressure in the positive ink line 3, while the negative pressure circuit 54 regulates a negative ink pressure in the negative ink line 5.
  • ink circulates from the intermediary ink reservoir 50 into the positive ink line 3, through each print module, 8 and returns to the intermediary ink reservoir via the negative ink line 5.
  • the intermediary ink reservoir 50 is replenished with ink from a bulk ink supply tank 56 via a refill pump 58 in the ink delivery module 7.
  • the intermediary ink reservoir 50 has suitable ink sensors (not shown) for detecting a low ink level and providing feedback for actuating the refill pump 58 when required.
  • the ink delivery module 7 is typically a self-contained unit with various external couplings: a supply coupling 61 for connecting the refill pump 58 to the bulk ink supply tank 56; an overflow coupling 63 for connecting the refill pump to an overflow tank (now shown); a positive line coupling 65 for connecting the positive ink line 3 to the positive pressure circuit 52; and a negative line coupling 67 for connecting the negative ink line 5 to the negative pressure circuit 54.
  • the positive pressure circuit 52 comprises a positive circuit pump 70, which pumps ink from the intermediary ink reservoir 50 towards a positive pressure regulator 72.
  • Ink between the positive circuit pump 70 and the positive pressure regulator 72 is maintained at a regulated positive pressure, and the positive ink line 3 is tapped from this regulated portion 75 of the positive pressure circuit 52 via the positive line coupling 65.
  • Downstream of the positive pressure regulator 72, ink is at unregulated pressure and returns to the intermediary ink reservoir 50 in the direction indicated by the arrow P in Figure 4 .
  • the negative pressure circuit 54 comprises a negative circuit pump 80, which pumps ink from the intermediary ink reservoir 50, through a negative pressure regulator 82 and into a pump inlet of the negative circuit pump. Ink between the negative pressure regulator 82 and the negative circuit pump 80 and is maintained at a regulated negative pressure, and the negative ink line 5 is tapped from this regulated portion 85 of the negative pressure circuit 54 via the negative line coupling 67. Downstream of the negative circuit pump 80, ink is at unregulated pressure and returns to the intermediary ink reservoir 50 in the direction indicated by the arrow N in Figure 4 .
  • a pressure sensor 91 provides feedback to the respective positive and negative pressure regulators 72 and 82. Therefore, the regulated portions 75 and 85 of each circuit are maintained at optimum positive and negative pressures, respectively.
  • Each of the positive and negative pressure circuits 52 and 54 further comprises a filter for filtering particulates from ink and a compliance for dampening ink pressure fluctuations.
  • the ink delivery module 7 may also comprise a degasser, as known in the art, for removing air bubbles from the ink before it is delivered to the print modules 9.
  • the ink delivery module 7 may comprise alternative positive and negative pressure regulating systems.
  • the positive and negative pressure circuits 52 and 54 may be absent and the ink delivery module 7 may provide inline regulation of ink pressures between the intermediary ink reservoir 50 and the positive and negative line couplings 65 and 67.
  • each print module 9 draws ink from the positive ink line 3 and the ink is fed back to the ink delivery module 7 at a regulated negative pressure via the negative ink line 5.
  • a relatively constant backpressure is provided at each print module 9. Additional local control of backpressure in each printhead 17 is provided by the control valve 33 in the input module 22 of each print module 9.
  • the control valve 33 is adjustable using feedback from the ink pressure sensor 35 to maintain optimum backpressure. When the pressure is too high, the control valve 33 is closed somewhat; when the pressure is too low, the control valve 33 is opened somewhat.
  • the present invention provides excellent control of printhead backpressures in a number of printheads 17 which are supplied with ink from a common ink reservoir.
  • the combination of bulk pressure regulation via the ink delivery module 7 and local pressure regulation via the control valve 33 in each print module 9 ensures that each printhead 17 has sufficient ink pressure for different ink demands and, further, that each printhead in the system is maintained at a relatively constant backpressure.
  • the ink delivery system 1 is scalable for use with any number of print modules 9 ( e.g. from 1 to 50 print modules).

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  • Ink Jet (AREA)

Description

    Field of the Invention
  • This invention relates to an ink delivery system for an inkjet printer. It has been developed primarily for supplying ink to multiple printheads at a relatively constant pressure.
  • Background of the Invention
  • Inkjet printers employing Memjet® technology are commercially available for a number of different printing formats, including small-office-home-office ("SOHO") printers, label printers and wideformat printers. Memjet® printers typically comprise one or more stationary inkjet printheads, which are user-replaceable. For example, a SOHO printer comprises a single user-replaceable multi-colored printhead, a high-speed label printer comprises a plurality of user-replaceable monochrome printheads aligned along a media feed direction, and a wideformat printer comprises a plurality of user-replaceable printheads in a staggered overlapping arrangement so as to span across a wideformat pagewidth.
  • Supplying ink to multiple printheads can be problematic as the number of printheads increases. In order to maintain high print quality, each printhead should receive ink at about the same ink pressure from a common ink tank. One system for supplying ink to multiple inkjet printheads is described in US 8,480,21 . In the prior art system, a common accumulator tank incorporating a pressure control system (e.g. float valve regulator) feeds ink to multiple printheads via an ink supply line. A return ink line enables various priming, de-priming and purging operations when the printheads are not printing. However, a problem with the ink delivery system described in US 8,480,211 is that not all printheads necessarily receive the same ink pressure. Printheads furthest from the accumulator tank are affected by pressure drops across printheads closer to the accumulator tank. Hence, there is a tendency for printheads to experience difference ink pressures, especially when printing at full bleed or when different printheads in the system have different ink demands.
  • It would be desirable to provide an ink delivery system, which supplies ink to multiple printheads at a reliable and highly controlled hydrostatic ink pressure. It would further be desirable to provide a scalable ink delivery system, which can be adapted to supply ink to multiple printheads, the number of which may vary from printing system to printing system.
  • Additionally, documents EP2050572 , US2016/089897 , JP2011068033 and US2007/081052 disclose ink delivery systems with pressure control.
  • Summary of the Invention
  • In a first aspect, there is provided an ink delivery system for an inkjet printer as defined hereinbelow in the claims appended hereto.
  • The present invention advantageously provides local pressure control for each printhead in the system. In this way, increasing the number of printheads does not affect the degree of pressure control in the system. Moreover, the present invention interconnects printheads between a positive ("high") and negative ("low") pressure ink lines. This enables excellent local control of pressure using a relatively low tolerance valve at the high pressure side of the printhead; all valve adjustments are dynamically modulated by feedback from the ink pressure sensor. Furthermore, the use of a positive pressure line provides a sufficient head of pressure for multiple printheads without being affected by pressure drops across any of the printheads in the system during printing. These and other advantages will be readily apparent from the detailed description hereinafter.
  • Brief Description of the Drawings
  • Embodiments of the present invention will now be described by way of example only with reference to the accompanying drawings, in which:
    • Figure 1 shows schematically an ink delivery system according to the present invention;
    • Figure 2 shows schematically an ink delivery module for connection to positive and negative ink lines;
    • Figure 3 shows schematically a print module interconnected between positive and negative ink lines; and
    • Figure 4 is a perspective view of a print module.
    Detailed Description of the Invention
  • Referring to Figure 1, there is shows schematically an ink delivery system 1 comprising a positive ink line 3 ("positive rail") and a negative ink line 5 ("negative rail") connected to an ink delivery module 7, which regulates the ink pressure in each of the positive and negative ink lines. A plurality of print modules 9 are interconnected between the positive ink line 3 and the negative ink line 5 via respective inlet and outlet lines 10 and 12. Although three print modules 9 are shown in Figure 1, it will be appreciated that any number of print modules may be interconnected between the positive ink line 3 and the negative ink line 5. Print modules 9 may be physically positioned in a staggered overlapping arrangement so as to extend across a print zone media wider than an individual print module. In this way, multiple print modules 9 may be employed for printing onto print media having widths of more than about 8 inches (e.g. at least 16 inches, at least 32 inches or at least 40 inches).
  • Referring now to Figures 3 and 4, an individual print module 9 is comprised of a supply module 14 and a printhead cartridge 16 releasably connected to the supply module. The printhead cartridge 16 comprises an inkjet printhead 17 for printing onto print media and may be a color or monochrome printhead (e.g. two color or four color printhead), as known in the art. For example, the printhead may of the type described in the Applicant's co-filed application entitled "MONOCHROME INKJET PRINTHEAD CONFIGURED FOR HIGH-SPEED PRINTING" (Attorney Docket No. RRG00 US). In the interests of clarity, an ink delivery system for one color of ink is described herein, although it will be appreciated that multiple ink delivery systems may be used for supply of multiple colors of ink.
  • The supply module 14 comprises a body 20 housing drive and logic circuitry (e.g. one or more PCBs having a print engine controller chip, drive transistors etc) for the printhead 17, as well as an inlet module 22 and an outlet module 24. The inlet module 22 has an inlet port 26 connected to the inlet line 10, and the outlet module 24 has an outlet port 28 connected to the outlet line 12. Suitable print module couplings 29 allow convenient replacement of entire print modules, when required.
  • The printhead cartridge 16 is fluidically connected to the supply module 14 by means of printhead inlet and outlet couplings 30 and 32. The printhead inlet and outlet couplings 30 and 32 are typically quick-connect couplings which enable convenient removal of a spent printhead cartridge 16 from each print module 9 and replacement with a new printhead cartridge by the user.
  • The inlet module 22 contains all the necessary components for providing local control of ink pressure in the printhead 17 for a respective print module 9. Thus, each print module 9 provides local, independent control of ink pressure in its respective printhead 17, so that local ink pressures can be fine-tuned automatically and in response to localized pressure fluctuations.
  • The inlet module 22 contains a control valve 33, which regulates ink pressure dynamically in response to feedback from an ink pressure sensor 35 sensing ink pressure downstream of the control valve. The ink pressure sensor 35 provides feedback to a controller 37 (e.g. microprocessor), which in turn controls a variable position of the control valve 33 so as to regulate ink pressure in the printhead 17 within a predetermined backpressure range. Notably, the control valve 33 allows fine control of ink pressure with minimal hysteresis by virtue of being connected between the positive and negative ink lines 3 and 5, which already provide gross control of ink pressure. Hence, relatively large adjustments of the control valve 33 produce only relatively small changes in ink pressure in the print module 9.
  • Additionally, the inlet module 22 comprises an air inlet 40 for introducing air into the printhead and a corresponding air valve 42, which can shut off air flow into the printhead. The air valve 42 is typically a solenoid valve, which may be controlled by the controller 37. For most operations the air valve 42 is closed. However, when it is necessary to de-prime the printhead 16 (e.g. for replacement of a printhead cartridge 17), the air valve 42 is opened with the control valve 33 fully closed so as to draw air into the printhead 16 and remove ink.
  • The outlet module 24 comprises a shut-off valve 44 for isolating the print module 9, in combination with the control valve 33, when required. The shut-off valve 44 incorporates a flow restrictor in the form an orifice which restricts ink flow and controls backpressure in the printhead 17 in combination with the negative ink line 5.
  • In the embodiment shown in Figure 3, both the inlet module 22 and the outlet module 24 each comprises a compliance 45 (e.g. an air chamber or flexible-walled chamber) proximal the respective inlet and outlet ports 26 and 28 for dampening ink pressure fluctuations or 'spikes'.
  • Returning to Figure 1, the ink delivery module 7 comprises an intermediary ink reservoir 50 which is connected to the positive ink line 3 via a positive pressure regulating system in the form of a positive pressure circuit 52. Likewise, the intermediary ink reservoir 50 is connected to the negative ink line via a negative pressure regulating system in the form of a negative pressure circuit 54. The intermediary ink reservoir is vented to atmosphere via, for example, a serpentine vent path (not shown). The positive pressure circuit 52 regulates a positive ink pressure in the positive ink line 3, while the negative pressure circuit 54 regulates a negative ink pressure in the negative ink line 5. During printing, ink circulates from the intermediary ink reservoir 50 into the positive ink line 3, through each print module, 8 and returns to the intermediary ink reservoir via the negative ink line 5.
  • The intermediary ink reservoir 50 is replenished with ink from a bulk ink supply tank 56 via a refill pump 58 in the ink delivery module 7. The intermediary ink reservoir 50 has suitable ink sensors (not shown) for detecting a low ink level and providing feedback for actuating the refill pump 58 when required.
  • The ink delivery module 7 is typically a self-contained unit with various external couplings: a supply coupling 61 for connecting the refill pump 58 to the bulk ink supply tank 56; an overflow coupling 63 for connecting the refill pump to an overflow tank (now shown); a positive line coupling 65 for connecting the positive ink line 3 to the positive pressure circuit 52; and a negative line coupling 67 for connecting the negative ink line 5 to the negative pressure circuit 54.
  • Turning now to Figure 2, the internal components of the ink delivery module 7 are shown in more detail. In particular, the positive pressure circuit 52 comprises a positive circuit pump 70, which pumps ink from the intermediary ink reservoir 50 towards a positive pressure regulator 72. Ink between the positive circuit pump 70 and the positive pressure regulator 72 is maintained at a regulated positive pressure, and the positive ink line 3 is tapped from this regulated portion 75 of the positive pressure circuit 52 via the positive line coupling 65. Downstream of the positive pressure regulator 72, ink is at unregulated pressure and returns to the intermediary ink reservoir 50 in the direction indicated by the arrow P in Figure 4.
  • Similarly, the negative pressure circuit 54 comprises a negative circuit pump 80, which pumps ink from the intermediary ink reservoir 50, through a negative pressure regulator 82 and into a pump inlet of the negative circuit pump. Ink between the negative pressure regulator 82 and the negative circuit pump 80 and is maintained at a regulated negative pressure, and the negative ink line 5 is tapped from this regulated portion 85 of the negative pressure circuit 54 via the negative line coupling 67. Downstream of the negative circuit pump 80, ink is at unregulated pressure and returns to the intermediary ink reservoir 50 in the direction indicated by the arrow N in Figure 4.
  • In each of the positive and negative pressure circuits 52 and 54, a pressure sensor 91 provides feedback to the respective positive and negative pressure regulators 72 and 82. Therefore, the regulated portions 75 and 85 of each circuit are maintained at optimum positive and negative pressures, respectively. Each of the positive and negative pressure circuits 52 and 54 further comprises a filter for filtering particulates from ink and a compliance for dampening ink pressure fluctuations. The ink delivery module 7 may also comprise a degasser, as known in the art, for removing air bubbles from the ink before it is delivered to the print modules 9.
  • It will, of course, be appreciated that the ink delivery module 7 may comprise alternative positive and negative pressure regulating systems. For example, the positive and negative pressure circuits 52 and 54 may be absent and the ink delivery module 7 may provide inline regulation of ink pressures between the intermediary ink reservoir 50 and the positive and negative line couplings 65 and 67.
  • During printing, ink at a regulated positive pressure is supplied to the positive ink line 3. Each print module 9 draws ink from the positive ink line 3 and the ink is fed back to the ink delivery module 7 at a regulated negative pressure via the negative ink line 5. By maintaining control of the relative positive and negative pressures in the positive and negative ink lines 3 and 5, a relatively constant backpressure is provided at each print module 9. Additional local control of backpressure in each printhead 17 is provided by the control valve 33 in the input module 22 of each print module 9. The control valve 33 is adjustable using feedback from the ink pressure sensor 35 to maintain optimum backpressure. When the pressure is too high, the control valve 33 is closed somewhat; when the pressure is too low, the control valve 33 is opened somewhat.
  • Accordingly, the present invention provides excellent control of printhead backpressures in a number of printheads 17 which are supplied with ink from a common ink reservoir. The combination of bulk pressure regulation via the ink delivery module 7 and local pressure regulation via the control valve 33 in each print module 9 ensures that each printhead 17 has sufficient ink pressure for different ink demands and, further, that each printhead in the system is maintained at a relatively constant backpressure. Moreover, the ink delivery system 1 is scalable for use with any number of print modules 9 (e.g. from 1 to 50 print modules).
  • The scope of the invention is defined by the appended claims.

Claims (11)

  1. An ink delivery system (1) for an inkjet printer comprising:
    (a) an ink reservoir (50);
    (b) a positive ink line (3) connected to the ink reservoir, the positive ink line having a positive ink pressure controlled by a respective regulator pump (70);
    (c) a negative ink line (5) connected to the ink reservoir, the negative ink line having a negative ink pressure controlled by a respective regulator pump (80); and
    (d) a plurality of print modules (9) interconnected between the positive ink line and the negative ink line via respective inlet and outlet lines (10, 12), each print module comprising:
    an inlet port (26) connected to the inlet line;
    an outlet port (28) connected to the outlet line;
    a printhead (17) interconnected between the inlet port and the outlet port;
    a control valve (33) positioned at the inlet port for dynamically controlling an ink pressure in a respective printhead;
    an ink pressure sensor (35) for sensing an ink pressure in a respective print module; and
    a controller (37) responsive to feedback from the pressure sensor and configured for controlling the control valve using the feedback from the pressure sensor;
    wherein, during printing, the ink pressure sensor, the controller and the control valve are configured to dynamically control a backpressure in the respective printhead within a predetermined backpressure range.
  2. The ink delivery system of claim 1, wherein each print module (9) comprises:
    a supply module (14) having the inlet port (26) and the outlet port (28); and
    the printhead (17).
  3. The ink delivery system of claim 2, wherein the printhead (17) is contained in a replaceable printhead cartridge (16) releasably connected to the supply module (14).
  4. The ink delivery system of claim 2 or claim 3, wherein the supply module (14) comprises:
    an inlet module (22) comprising the inlet port (26), the control valve (33) and the pressure sensor (35); and
    an outlet module (24) comprising the outlet port (28).
  5. The ink delivery system of claim 4, wherein the inlet module (22) further comprises an air inlet (40) for introducing air into the printhead and a corresponding air valve (42).
  6. The ink delivery system of claim 4 or claim 5, wherein the outlet module (24) further comprises a stop valve and/or a flow restrictor (44).
  7. The ink delivery system of claim any one of the preceding claims, further comprising an ink delivery module (7) having a positive line coupling (65) connected to the positive ink line (3), a negative line coupling (67) connected to the negative ink line (5) and a supply coupling (61) for connection to a bulk ink supply tank (56).
  8. The ink delivery system of claim 8, wherein the ink delivery module (7) further comprises one or more components selected from the group consisting of:
    a positive pressure sensor (91) for sensing positive ink pressure in the positive pressure regulating system;
    a negative pressure sensor for sensing negative ink pressure in the negative pressure regulating system; and
    a refill pump (58) positioned between the supply coupling and the ink reservoir.
  9. The ink delivery system of claim 7, further comprising the bulk ink supply tank (56) connected to the supply coupling (61).
  10. The ink delivery system of any one of the preceding claims, wherein the positive ink line (3) is a common positive ink line for each printhead (17) and the negative ink line (5) is a common negative ink line for each printhead.
  11. An inkjet printer comprising an ink delivery system (1) according to any one of the preceding claims.
EP17720382.5A 2016-05-02 2017-04-12 Ink delivery system for supplying ink to multiple printheads at constant pressure Active EP3452292B1 (en)

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US201662330785P 2016-05-02 2016-05-02
PCT/EP2017/058893 WO2017190934A1 (en) 2016-05-02 2017-04-12 Ink delivery system for supplying ink to multiple printheads at constant pressure

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EP3452292B1 true EP3452292B1 (en) 2021-06-16

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JP (1) JP2019514732A (en)
CN (1) CN109153265B (en)
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Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR102191837B1 (en) * 2019-01-08 2020-12-17 주식회사 고산테크 Pressure controller for ink-jet printer
EP3878655B1 (en) 2020-03-13 2023-09-13 United Barcode Systems, S.L. System for regulating ink injector supply in a print head and printing equipment including same
WO2022066171A1 (en) * 2020-09-25 2022-03-31 Hewlett-Packard Development Company, L.P. Print agent delivery systems

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5880748A (en) * 1994-09-20 1999-03-09 Hewlett-Packard Company Ink delivery system for an inkjet pen having an automatic pressure regulation system
US20070081052A1 (en) * 2005-10-12 2007-04-12 Lebron Hector J Back pressure control in inkjet printing
EP2050572A2 (en) * 2007-10-19 2009-04-22 Fujifilm Corporation Inkjet recording apparatus and recording method
JP2011068033A (en) * 2009-09-25 2011-04-07 Fujifilm Corp Method for checking valve operation of liquid supply device, liquid supply device, and ink jet recorder
US20130169710A1 (en) * 2010-10-19 2013-07-04 Brian J. Keefe Dual regulator print module
US20160089897A1 (en) * 2014-09-29 2016-03-31 Riso Kagaku Corporation Ink circulation type inkjet printer

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6428156B1 (en) * 1999-11-02 2002-08-06 Hewlett-Packard Company Ink delivery system and method for controlling fluid pressure therein
US7556365B2 (en) * 2006-03-22 2009-07-07 Hewlett-Packard Development Company, L.P. Inkjet printing system with compliant printhead assembly
JP5121767B2 (en) * 2009-03-27 2013-01-16 富士フイルム株式会社 Droplet discharge device
US8480221B2 (en) 2009-07-31 2013-07-09 Zamtec Ltd Wide format printer with multiple printheads each supplied by multiple conduits
JP5404498B2 (en) * 2010-03-30 2014-01-29 理想科学工業株式会社 Printing device
CN201712257U (en) * 2010-05-07 2011-01-19 童舟 Stepless automatic circulating ink supply device of digital spraying printer
US8523341B2 (en) 2010-05-17 2013-09-03 Zamtec Ltd Multi-channel gas vent apparatus for ink containers
JP5577388B2 (en) * 2012-08-30 2014-08-20 富士フイルム株式会社 Droplet discharge device and maintenance method thereof
JP6139099B2 (en) * 2012-10-30 2017-05-31 エスアイアイ・プリンテック株式会社 Liquid ejecting unit, method of using liquid ejecting unit, and liquid ejecting apparatus
CN103895357B (en) * 2012-12-25 2016-04-27 研能科技股份有限公司 Ink feeding system
CN203157378U (en) * 2013-03-06 2013-08-28 佛山市三水盈捷精密机械有限公司 Ink supply system of ink jet printer

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5880748A (en) * 1994-09-20 1999-03-09 Hewlett-Packard Company Ink delivery system for an inkjet pen having an automatic pressure regulation system
US20070081052A1 (en) * 2005-10-12 2007-04-12 Lebron Hector J Back pressure control in inkjet printing
EP2050572A2 (en) * 2007-10-19 2009-04-22 Fujifilm Corporation Inkjet recording apparatus and recording method
JP2011068033A (en) * 2009-09-25 2011-04-07 Fujifilm Corp Method for checking valve operation of liquid supply device, liquid supply device, and ink jet recorder
US20130169710A1 (en) * 2010-10-19 2013-07-04 Brian J. Keefe Dual regulator print module
US20160089897A1 (en) * 2014-09-29 2016-03-31 Riso Kagaku Corporation Ink circulation type inkjet printer

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CN109153265B (en) 2020-08-21
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CN109153265A (en) 2019-01-04
EP3452292A1 (en) 2019-03-13
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AU2017259594A1 (en) 2018-10-25
SG11201807298VA (en) 2018-11-29

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