AU2002210245A1 - Nozzle poker for moving nozzle ink jet - Google Patents

Nozzle poker for moving nozzle ink jet

Info

Publication number
AU2002210245A1
AU2002210245A1 AU2002210245A AU2002210245A AU2002210245A1 AU 2002210245 A1 AU2002210245 A1 AU 2002210245A1 AU 2002210245 A AU2002210245 A AU 2002210245A AU 2002210245 A AU2002210245 A AU 2002210245A AU 2002210245 A1 AU2002210245 A1 AU 2002210245A1
Authority
AU
Australia
Prior art keywords
nozzle
ink
ink jet
roof portion
jet printhead
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.)
Granted
Application number
AU2002210245A
Other versions
AU2002210245B2 (en
Inventor
Kia Silverbrook
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.)
Memjet Technology Ltd
Original Assignee
Memjet Technology Ltd
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Priority claimed from US09/693,313 external-priority patent/US6505916B1/en
Application filed by Memjet Technology Ltd filed Critical Memjet Technology Ltd
Publication of AU2002210245A1 publication Critical patent/AU2002210245A1/en
Application granted granted Critical
Publication of AU2002210245B2 publication Critical patent/AU2002210245B2/en
Priority to AU2004203501A priority Critical patent/AU2004203501B2/en
Assigned to ZAMTEC LIMITED reassignment ZAMTEC LIMITED Request for Assignment Assignors: SILVERBROOK RESEARCH PTY LTD
Assigned to MEMJET TECHNOLOGY LIMITED reassignment MEMJET TECHNOLOGY LIMITED Request to Amend Deed and Register Assignors: ZAMTEC LIMITED
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Description

NOZZLE POKER FOR MOVING NOZZLE INK JET
Field of the Invention
This invention relates to an ink jet printhead. More particularly, the invention relates to a Nozzle Poker for Moving Nozzle Ink Jet.
Background to the Invention
Most ink jet printheads of the type manufactured using micro-electro mechanical systems (MEMS) technology have been proposed in a construction using nozzle chambers formed in MEMS layers on the top of a substrate with nozzle chambers formed in the layers. Each chamber is provided with a movable paddle actuated by some form of actuator to force ink in a drop through the nozzle associated with the chamber upon receipt of an electrical signal to the actuator. Such a construction is typified by the disclosure in my International Patent Application PCT/AU99/00894.
The present invention stems from the realisation that there are advantages to be gained by dispensing with the paddles and causing ink drops to be forced from the nozzle by decreasing the size of the nozzle chamber. It has been realised that this can be achieved by causing the actuator to move the nozzle itself downwardly in the chamber thus dispensing with the paddle, simplifying construction and providing an environment which is less prone to the leakage of ink from the nozzle chamber.
Summary of the Invention According to the invention there is provided An ink jet printhead including:
a plurality of nozzles each adapted to eject drops of ink toward a surface to be printed; wherein,
each of the nozzles has an actuator operatively connected to an apertured roof portion such that the actuator moves the roof portion away from the surface to be printed to eject the ink; wherein, a projection within the nozzle is configured to extend through an aperture in the roof portion when the roof portion moves away from the surface to eject the ink.
Preferably, each of the nozzles further includes an associated nozzle chamber adapted to be supplied with ink via at least one conduit in an underlying substrate.
Preferably, the roof portion has a sidewall depending from its periphery to telescopically engage a peripheral sidewall extending from an opposing floor portion to define the nozzle chamber.
Preferably, said projection is an elongate poker member, the free end of the poker member being positioned to protrude at least into the aperture in said nozzle when the roof portion is moved downwardly by the actuator.
Preferably, the free end of the poker member protrudes through the aperture in said nozzle when the roof portion is moved downwardly by the actuator.
Preferably, the poker member is an elongate upwardly extending pin, supported by the floor member.
Preferably, the conduit in the underlying substrate communicates with the nozzle chamber through an opening in the floor portion, and wherein the lower end of the elongate pin is supported on a bridge member extending across said opening.
Brief Description of the Drawings
Notwithstanding any other forms that may fall within its scope, one preferred form of the invention will now be described by way of example only with reference to the accompanying drawings in which:
Fig. I is a partially cutaway perspective view of a moving nozzle ink jet assembly,
Fig. 2 is a similar view to Fig. 1 showing the bend actuator of the moving nozzle bent causing a drop of ink to protrude from the nozzle. Fig. 3 is a similar view to Fig. 1 showing the nozzle returned to the original position and a drop of ink ejected from the nozzle.
Fig. 4 is cross-sectional view through the mid line of the apparatus as shown in Fig. 2.
Fig. 5 is a similar view to Fig. 1 showing the use of an optional nozzle poker. Fig. 6 is a similar view to Fig. 5 showing the bend actuator bent and a drop of ink protruding from the nozzle.
Fig. 7 is a similar view to Fig. 5 showing the bend actuator straightened and the drop of ink being ejected from the nozzle. Fig. 8 is a similar view to Fig. 1 without the portions cut away.
Fig. 9 is a similar view to Fig. 8 with the nozzle and bend actuator removed and showing an optional constriction in the nozzle chamber.
Fig. 10 is a similar view to Fig. 9 with the upper layers removed, and
Fig. 11 is a similar view to Fig. 1 showing the bend actuator cut away, and the actuator anchor detached for clarity.
It will be appreciated that a large number of similar nozzles are simultaneously manufactured using MEMS and CMOS technology as described in our co-pending patent applications referred to at the beginning of this specification.
For the purposes of clarity, the construction of an individual ink jet nozzle alone will now be described.
Whereas in conventional ink jet construction of the type described in our above referenced co-pending patent applications, ink is ejected from a nozzle chamber by the movement of a paddle within the chamber, according to the present invention the paddle is dispensed with and ink is ejected through an opening (nozzle) in the upper surface of the chamber which is moved downwardly by a bend actuator, decreasing the chamber volume and causing ink to be ejected through the nozzle.
Throughout this specification, the term "nozzle" is to be understood as an element defining an opening and not the opening itself. Furthermore, the relative terms "upper" and "lower" and similar terms are used with reference to the accompanying drawings and are to be understood to be not in any way restrictive on the orientation of the ink jet nozzle in use.
Referring now to figures 1 to 3 of the accompanying drawings, the nozzle is constructed on a substrate 1 by way of MEMS technology defining an ink supply aperture 2 opening through a hexagonal opening 3 (which could be of any other suitable configuration) into a chamber 4 defined by floor portion 5, roof portion 6 and peripheral sidewalls 7 and 8 which overlap in a telescopic manner. The sidewalls 7, depending downwardly from roof portion 6, are sized to be able to move upwardly and downwardly within sidewalls 8 which depend upwardly from floor portion 5. The ejection nozzle is formed by rim 9 located in the roof portion 6 so as to define an opening for the ejection of ink from the nozzle chamber as will be described further below.
The roof portion 6 and downwardly depending sidewalls 7 are supported by a bend actuator 10 typically made up of layers forming a Joule heated cantilever which is constrained by a non-heated cantilever, so that heating of the Joule heated cantilever causes a differential expansion between the Joule heated cantilever and the non-heated cantilever causing the bend actuator 10 to bend.
The proximal end 11 of the bend actuator is fastened to the substrate 1, and prevented from moving backwards by an anchor member 12 which will be described further below, and the distal end 13 is secured to, and supports, the roof portion 6 and sidewalls 7 of the ink jet nozzle.
In use, ink is supplied into the nozzle chamber through passage 2 and opening 3 in any suitable manner, but typically as described in our previously referenced co-pending patent applications. When it is desired to eject a drop of ink from the nozzle chamber, an electric current is supplied to the bend actuator 10 causing the actuator to bend to the position shown in figure 2 and move the roof portion 6 downwardly toward the floor portion 5. This relative movement decreases the volume of the nozzle chamber, causing ink to bulge upwardly through the nozzle rim 9 as shown at 14 (Fig. 2) where it is formed to a droplet by the surface tension in the ink. As the electric current is withdrawn from the bend actuator 10, the actuator reverts to the straight configuration as shown in figure 3 moving the roof portion 6 of the nozzle chamber upwardly to the original location. The momentum of the partially formed ink droplet 14 causes the droplet to continue to move upwardly forming an ink drop 15 as shown in Fig. 3 which is projected on to the adjacent paper surface or other article to be printed. '
In one form of the invention, the opening 3 in floor portion 5 is relatively large compared with the cross-section of the nozzle chamber and the ink droplet is caused to be ejected through the nozzle rim 9 upon downward movement of the roof portion 6 by viscous drag in the sidewalls of the aperture 2, and in the supply conduits leading from the ink reservoir (not shown) to the opening 2. This is a distinction from many previous forms of ink jet nozzles where the "back pressure" in the nozzle chamber which causes the ink to be ejected through the nozzle rim upon actuation, is caused by one or more baffles in the immediate location of the nozzle chamber. This type of construction can be used with a moving nozzle ink jet of the type described above, and will be further described below with specific reference to figures 9 and 10, but in the form of invention shown in figures 1 to 3, the back pressure is formed primarily by viscous drag and ink inertia in the supply conduit. In order to prevent ink leaking from the nozzle chamber during actuation ie. during bending of the bend actuator 10, a fluidic seal is formed between sidewalls 7 and 8 as will now be further described with specific reference to figures 3 and 4.
The ink is retained in the nozzle chamber during relative movement of the roof portion 6 and floor portion 5 by the geometric features of the sidewalls 7 and 8 which ensure that ink is retained within the nozzle chamber by surface tension. To this end, there is provided a very fine gap between downwardly depending sidewall 7 and the mutually facing surface 16 of the upwardly depending sidewall 8. As can be clearly seen in Fig. 4 the ink (shown as a dark shaded area) is restrained within the small aperture between the downwardly depending sidewall 7 and inward faces 16 of the upwardly extending sidewall by the proximity of the two sidewalls which ensures that the ink "self seals" across free opening 17 by surface tension, due to the close proximity of the sidewalls.
In order to make provision for any ink which may escape the surface tension restraint due to impurities or other factors which may break the surface tension, the upwardly depending sidewall 8 is provided in the form of an upwardly facing channel having not only the inner surface 16 but a spaced apart parallel outer surface 18 forming a U-shaped channel 19 between the two surfaces. Any ink drops escaping from the surface tension between the surfaces 7 and 16, overflows into the U-shaped channel where it is retained rather than "wicking" across the surface of the nozzle strata. In this manner, a dual wall fluidic seal is formed which is effective in retaining the ink within the moving nozzle mechanism. As has been previously described in some of our co-pending applications, it is desirable in some situations to provide a "nozzle poker" to clear any impurities which may build up within the nozzle opening and ensure clean and clear ejection of a droplet from the nozzle under actuation. A configuration of the present invention using a poker in combination with a moving nozzle ink jet is shown in the accompanying figures 5, 6 and 7. Figure 5 is similar to figure 1 with the addition of a bridge 20 across the opening 3 in the floor of the nozzle chamber, on which is mounted an upwardly extending poker 21 sized to protrude into and/or through the plane of the nozzle during actuation. As can be seen in figure 6, when the roof portion 6 is moved downwardly by bending of the bend actuator 10, the poker 21 is caused to poke up through the opening of the nozzle rim 9 and part way into the bulging ink drop 14.
As the roof portion 6 returns to its original position upon straightening of the bend actuator 10 as shown in Fig. 7 the ink droplet is formed and ejected as previously described and the poker 21 is effective in dislodging or breaking any dried ink which may form across the nozzle rim and which would otherwise block the nozzle.
It will be appreciated, that as the bend actuator 10 is bent causing the roof portion to move downwardly to the position shown in Fig. 2, the roof portion tilts relative to the floor portion 5 causing the nozzle to move into an orientation which is not parallel to the surface to be printed, at the point of formation of the ink droplet. This orientation, if not corrected, would cause the ink droplet 15 to be ejected from the nozzle in a direction which is not quite perpendicular to the plane of the floor portion 5 and to the strata of nozzles in general. This would result in inaccuracies in printing, particularly as some nozzles may be oriented in one direction and other nozzles in a different, typically opposite, direction.
The correction of this non-perpendicular movement can be achieved by providing the nozzle rim 9 with an asymmetrical shape as can be clearly seen in figure 8. The nozzle is typically wider and flatter across the end 22 which is closer to the bend actuator 10, and is narrower and more pointed at end 23 which is further away from the bend actuator. This narrowing of the nozzle rim at end 23, increases the force of the surface tension at the narrow part of the nozzle, resulting in a net drop vector force indicated by arrow 24A in the direction toward the bend actuator, as the drop is ejected from the nozzle. This net force propels the ink drop in a direction which is not perpendicular to the roof portion 6 and can therefore be tailored to compensate for the tilted orientation of the roof portion at the point of ink drop ejection.
By carefully tailoring the shape and characteristics of the nozzle rim 9, it is possible to completely compensate for the tilting of the roof portion 6 during actuation and to propel the ink drop from the nozzle in a direction perpendicular to the floor portion 5.
Although, as described above, the bac pressure to the ink held within the nozzle chamber may be provided by viscous drag in the supply conduits, it is also possible to provide a moving nozzle Inkjet with back pressure by way of a significant constriction close to the nozzle. This constriction is typically provided in the substrate layers as can be clearly seen in figures 9 and 10. Figure 9 shows the sidewall 8 from which depend inwardly one or more baffle members 24 resulting in an opening 25 of restricted cross-section immediately below the nozzle chamber. The formation of this opening can be seen in figure 10 which has the upper layers (shown in Fig. 9) removed for clarity. This form of the invention can permit the adjacent location of ancillary components such as power traces and signal traces which is desirable in some configurations and intended use of the moving nozzle ink jet. Although the use of a restricted baffle in this manner has these advantages, it also results in a longer refill time for the nozzle chamber which may unduly restrict the speed of operation of the printer in some uses. The bend actuator which is formed from a Joule heated cantilever 28 positioned above a non-heated cantilever 29 joined at the distal end 13 needs to be securely anchored to prevent relative movement between the Joule heated cantilever 28 and the non-heated cantilever 29 at the proximal end 11, while making provision for the supply of electric current into the Joule heated cantilever 28. Figure 11 shows the anchor 12 which is provided in a U-shaped configuration having a base portion 30 and side portions 31 each having their lower ends formed into, or embedded in the substrate 26. The formation of the bend actuator in a U-shape, gives great rigidity to the end wall 30 preventing any bending or deformation of the end wall 30 relative to the substrate 26 on movement of the bend actuator. The non-heated cantilever 29 is provided with outwardly extending tabs 32 which are located within recesses 33 in the sidewall 31, giving further rigidity , and preventing relative movement between the non-heated cantilever 29 and the Joule heated cantilever 28 in the vicinity of the anchor 27.
In this manner, the proximal end of the bend actuator is securely and firmly anchored and any relative movement between the Joule heated cantilever and the non-heated cantilever prevented in the vicinity of the anchor. This results in enhanced efficiency of movement of the roof portion 6 of the moving nozzle ink jet.

Claims (7)

Claims
1. An ink jet printhead including: a plurality of nozzles each adapted to eject drops of ink toward a surface to be printed; wherein, each of the nozzles has an actuator operatively connected to an apertured roof portion such that the actuator moves the roof portion away from the surface to be printed to eject the ink; wherein, a projection within the nozzle is configured to extend through an aperture in the roof portion when the roof portion moves away from the surface to eject the ink.
2. An ink jet printhead as claimed in claim 1 wherein each of the nozzles further includes an associated nozzle chamber adapted to be supplied with ink via at least one conduit in an underlying substrate.
3. An ink jet printhead as claimed in claim 2 wherein the roof portion has a sidewall depending from its periphery to telescopically engage a peripheral sidewall extending from an opposing floor portion to define the nozzle chamber.
4. An ink jet printhead as claimed in claim 3, wherein said projection is an elongate poker member, the free end of the poker member being positioned to protrude at least into the aperture in said nozzle when the roof portion is moved downwardly by the actuator.
5. An ink jet printhead as claimed in claim 4, wherein the free end of the poker member protrudes through the aperture in said nozzle when the roof portion is moved downwardly by the actuator.
6. An ink jet printhead as claimed in claim 5, wherein the poker member is an elongate upwardly extending pin, supported by the floor member.
7. An ink jet printhead as claimed in claim 4, wherein the conduit in the underlying substrate communicates with the nozzle chamber through an opening in the floor portion, and wherein the lower end of the elongate pin is supported on a bridge member extending across said opening.
AU2002210245A 2000-10-20 2001-10-19 Nozzle poker for moving nozzle ink jet Ceased AU2002210245B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU2004203501A AU2004203501B2 (en) 2000-10-20 2004-08-02 Print nozzle having a nozzle poker

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US09/693,313 2000-10-20
US09/693,313 US6505916B1 (en) 2000-10-20 2000-10-20 Nozzle poker for moving nozzle ink jet
PCT/AU2001/001320 WO2002034534A1 (en) 2000-10-20 2001-10-19 Nozzle poker for moving nozzle ink jet

Related Child Applications (1)

Application Number Title Priority Date Filing Date
AU2004203501A Division AU2004203501B2 (en) 2000-10-20 2004-08-02 Print nozzle having a nozzle poker

Publications (2)

Publication Number Publication Date
AU2002210245A1 true AU2002210245A1 (en) 2002-07-11
AU2002210245B2 AU2002210245B2 (en) 2004-05-13

Family

ID=24784158

Family Applications (2)

Application Number Title Priority Date Filing Date
AU1024502A Pending AU1024502A (en) 2000-10-20 2001-10-19 Nozzle poker for moving nozzle ink jet
AU2002210245A Ceased AU2002210245B2 (en) 2000-10-20 2001-10-19 Nozzle poker for moving nozzle ink jet

Family Applications Before (1)

Application Number Title Priority Date Filing Date
AU1024502A Pending AU1024502A (en) 2000-10-20 2001-10-19 Nozzle poker for moving nozzle ink jet

Country Status (12)

Country Link
US (9) US6505916B1 (en)
EP (1) EP1361957B1 (en)
JP (1) JP3884710B2 (en)
KR (1) KR100530249B1 (en)
CN (1) CN1214924C (en)
AT (1) ATE365638T1 (en)
AU (2) AU1024502A (en)
DE (1) DE60129167D1 (en)
IL (2) IL155455A0 (en)
SG (1) SG125994A1 (en)
WO (1) WO2002034534A1 (en)
ZA (1) ZA200303162B (en)

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US6505916B1 (en) 2000-10-20 2003-01-14 Silverbrook Research Pty Ltd Nozzle poker for moving nozzle ink jet
US7066577B2 (en) * 2004-07-19 2006-06-27 Silverbrook Research Pty Ltd Pressure enhancing formations in an ink jet printhead
US6863379B2 (en) * 2002-11-23 2005-03-08 Silverbrook Research Pty Ltd Ink jet printhead that includes nozzles having pressure-enhancing formations
US6719405B1 (en) 2003-03-25 2004-04-13 Lexmark International, Inc. Inkjet printhead having convex wall bubble chamber
US7524016B2 (en) 2004-01-21 2009-04-28 Silverbrook Research Pty Ltd Cartridge unit having negatively pressurized ink storage
US8226187B2 (en) 2010-03-31 2012-07-24 Xerox Corporation Tilt mitigation methods to control reservoir ink level and printhead pressure
US9996857B2 (en) 2015-03-17 2018-06-12 Dow Jones & Company, Inc. Systems and methods for variable data publication

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US6505916B1 (en) * 2000-10-20 2003-01-14 Silverbrook Research Pty Ltd Nozzle poker for moving nozzle ink jet
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