GB2265859A - Ink jet printhead construction. - Google Patents

Ink jet printhead construction. Download PDF

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Publication number
GB2265859A
GB2265859A GB9207351A GB9207351A GB2265859A GB 2265859 A GB2265859 A GB 2265859A GB 9207351 A GB9207351 A GB 9207351A GB 9207351 A GB9207351 A GB 9207351A GB 2265859 A GB2265859 A GB 2265859A
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GB
United Kingdom
Prior art keywords
orifice
ink
foil
printhead
block
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.)
Withdrawn
Application number
GB9207351A
Other versions
GB9207351D0 (en
Inventor
Mairi Campbell Maclean
Roger William Monk
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.)
Alstom Power UK Holdings Ltd
Videojet Technologies Inc
Original Assignee
Alstom Power UK Holdings Ltd
Videojet Systems International Inc
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
Application filed by Alstom Power UK Holdings Ltd, Videojet Systems International Inc filed Critical Alstom Power UK Holdings Ltd
Priority to GB9207351A priority Critical patent/GB2265859A/en
Publication of GB9207351D0 publication Critical patent/GB9207351D0/en
Publication of GB2265859A publication Critical patent/GB2265859A/en
Withdrawn legal-status Critical Current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
    • 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
    • B41J2/135Nozzles
    • B41J2/14Structure thereof only for on-demand ink jet heads
    • B41J2/14201Structure of print heads with piezoelectric elements
    • B41J2/14274Structure of print heads with piezoelectric elements of stacked structure type, deformed by compression/extension and disposed on a diaphragm

Landscapes

  • Particle Formation And Scattering Control In Inkjet Printers (AREA)

Abstract

The printhead includes an array of orifices 5 in an orifice plate 77, each orifice 5 opening from an individual ink chamber (9 Fig 2) in the orifice plate 77 in which a piezoelectric transducer 7 is disposed to eject ink drops. A duct (11) from a manifold 13 carries ink to the rear face of the orifice plate 77. From the duct (11) to the chamber (9) the ink path is defined by an aperture (85) in a foil (79) which is interposed between the orifice plate 77 and an orifice block 83 containing the manifold (13). The width of the foil aperture 85 and the thickness of the foil 79 determines a restriction (92) in the ink path which controls the flow of ink to the orifice 5. Details of other features are disclosed. <IMAGE>

Description

Ink Jet Printhead This invention relates to a printhead for an inkjet printer.
Such printers are well known in dot matrix printing systems in which one character would commonly be made up of a 5 x 7 rectangular matrix of dots. A linear array of ink jet orifices makes a broadside scan of the paper (or, more commonly, vice versa) and selected jets are activated in each (one-dot) step of the scan.
A problem arises in such printers in the control of ink flow to the orifices. A balance has to be achieved between the flow resistance of the orifice and that of the path feeding the orifice.
In view of the extremely small size of the orifice, typically 0.1 millimetres diameter, the cross section of the feed path must be both small and very accurately determined.
An object of the present invention is to provide an orifice block in which the feed path can be very accurately and easily determined by standard manufacturing techniques.
According to the present invention an inkjet printhead comprising an orifice plate mounted on the front of a block, the orifice plate having an array of orifices with respective inkjet axes, each orifice having a respective driving means mounted for reciprocating movement to drive ink through the orifice, ink access to the orifice being provided by a duct in the block which opens onto the rear of the orifice plate at a position displaced from the orifice, a path from the position to the orifice being provided by an aperture in a foil which is interposed between the orifice plate and the block.
The printhead may further comprise a restrictor plate interposed between the foil and the block, the restrictor plate having a thickness substantially greater than that of the foil and having, for each orifice, an aperture which overlies the corresponding foil aperture for a first part of the path so that the path cross section is restricted to the cross dimension of the foil aperture and the thickness of the foil for only the latter part of the path.
The restrictor plate may have a further aperture which embraces the leading end of the driving means, the restrictor plate being sealed to the driving means in such manner as to permit the reciprocating movement.
Behind each orifice in the orifice plate there is preferably disposed a respective ink chamber the rear face of which is substantially larger than the orifice, the foil aperture encompassing this rear face of the ink chamber.
The duct providing access to the orifice plate is preferably individual to each orifice, the ducts being fed from a manifold chamber in the block.
An ink jet printhead in accordance with the invention will now be described, by way of example, with reference to the accompanying drawings, of which: Figure 1 is a cross section of the printhead showing orifice block, ink reservoir, and ink and air valve arrangement; Figure 2 is a large scale detail cross section of part of the orifice block showing one orifice and its ink feed path; Figure 3 is an exploded diagram of the orifice block; Figure 4 is a cross sectional diagram of the ink reservoir filter cap; Figure 5 is a cross sectional diagram of an attitude sensor fitted to the printhead; and Figure 6 is a diagram of the reservoir valve control arrangement.
Referring now to Figure 1, the printhead comprises an orifice block 1 mounted on the front of the printhead body 3. The block contains a linear array of perhaps 16 or 24 ink jet orifices at a pitch of the order of 1.5 millimetres. One such orifice 5 is indicated. An ink impeller or driving means 7, one for each orifice, is mounted in the block 1 with a piston face forming a rear wall of an ink chamber 9 behind the orifice 5. These details are shown more clearly in the larger scale Figure 2.
The ink feed path to the orifice 5 is by way of an individual duct 11 from a manifold 13 which is fed by a duct 15. A spigot 17 protruding from the printhead body 3 fits into an extension of the duct 15 and is sealed to the orifice block by an O-ring 18.
The spigot 17 extends from a valve body 22, which is bored to receive a sliding tube 19. The tube 19 and valve body 22 together form an Ink valve C. The valve body 22 has one or more holes 21 through its wall rearward of an O-ring or other sealing washer 24 at the root of the valve body boring. Thus, when the tube 19 moves forward against the O-ring 24 it closes the hole 21 to the inside of the tube 19. when the tube 19 is retracted, the hole 21 has access to the axial bore of the valve body 22 and thus to the duct 15.
The rear end of the tube 19 is permanently fixed by brazing for example, to a solid shaft 26 the rear end of which has a cam follower 28 bearing on a cam 27. A sleeve bearing 30 fixedly mounted in the printhead body 36 carries the shaft 26 and a compression spring 33 between the sleeve bearing 30 and the cam follower 28 bases the tube 19 rearward and consequently the valve C 'open", Immediately forward of the shaft 26, a hole 23 in the wall of the tube 19 is permanently open and admits ink to the bore of the tube 19 except when the printhead is pointing downwards.
The attitude of the printhead as shown in Figure 1 is used as a reference for present purposes the ink drop ejection axis 29 is horizontal, and the reservoir refill port 31 is at the top. In addition, 'forward' and 'rearward' refer to the direction of ink ejection and the opposite direction. When the printhead is turned to point vertically upwards, or in any upwardly inclined attitude, the forward port 21 is required to be closed, since it may be above the ink surface. As mentioned above, the rearward port 23 is always open.
Ink flow to the ports 21 and 23 from the reservoir 20 is through a filter layer 35 which separates off the Ink valve C in the lower section of the reservoir from air valves in the upper section.
There are two air valves A and B mounted, like the ink valve C, in the wall 36 of the printhead body, and vertically in line with the valve C. The two valves are similar to the ink valve in having cam driven shafts 37 and 39 which operate ports 41 and 43 at the forward ends of the valves, to provide controllable air access to the reservoir at these port locations. Valve B extends almost to the forward end of the reservoir 20 while valve A extends only to the rear end.
The reservoir is normally less than completely full of ink so that for horizontal and for downward operation the valve A, or rather, the port 41, is above the ink surface 42, while, for upwardly inclined operation, the port 41 is immersed and the port 43 above the ink surface. Air inlet to the valves A and B is by way of ports 45 and 46 outside the reservoir.
The valve shafts 37 and 39 are driven by cams 47 and 49, the three cams being mounted on a common shaft 51 manually driven by a knob 53.
Ink level sensors 55 and 57 are mounted immediately above the filter 35, one at the rear and one at the front of the reservoir.
The rear sensor 55 is used when the printhead is horizontal or pointing upwards and the forward sensor when the printhead is pointing downwards.
Mounted on the printhead body (not shown in Figure 1) is an attitude sensor shown in Figure 5. This comprises three insulated contacts 59, 61 and 63, and a gold plated metal ball 65. The body 67 of the sensor, the 'lid' 69 and the walls 71 are of metal and electronically common so that the ball can make contact between each of the contacts 59, 61 and 63 and the body according to the attitude of the device, and thus of the printhead to which it is attached. The attitude sensor is shown, diagrammatically, in section. The ball is trapped in the contact area by the side walls one of which, 71, is shown. An approximate indication of the attitude is given by the particular contact 59, 61 or 63 which is 'earthed'.
An arrangement of three mercury switches can be used instead of the ball and contact arrangement of Figure 5.
The reservoir does of course have to be sealed and a suitable filler cap is shown in Figure 4. The O-ring 73 is compressed against the ink refill port 31 by rotation of the cam lever 75 once inserted, but is freely movable in the port 31 on insertion, so avoiding pumping or pressurising of the reservoir.
Reverting now to Figure 2, this shows a cross section through part of the orifice block 1 of Figure 1, and to a much larger scale. As explained previously, the ink path is from the reservoir 20, through the duct 15 to the manifold 13 and from there through individual ducts 11 to the orifice chamber 9. It is important that the feed path to the orifice has a restriction such that an impulse from the piezoelectric 'piston' 7 will cause ink to be ejected from the orifice 5 rather than be driven back up the feed path. To achieve this the flow losses in the feed path must not be significantly less than those for the orifice, and preferably are greater. It is difficult to provide a very small, and at the same time clearly defined, duct. This is achieved however, in the present embodiment, as illustrated in Figures 2 and 3.
The orifice block, referring to Figure 3, is made up of a number of plate-like components. The front face of the printhead consists of a plate 77 of thickness 1.25 millimetres in which is formed an array, a row, of orifices 5 and associated ink chambers 9.
The ink chambers are conical, opening up to a diameter of about 1 millimetre, the orifice itself being about 0.1 millimetres diameter The orifices in the orifice plate may be formed in various ways e.g.
by a spark erosion process (EDM), punching or broaching. It may also be formed as a composite plate - a thick plate with a purely conical hole through it, and a relatively thin plate providing the final orifice in a slightly tapered cylindrical form. The pitch of the orifices is about 105 millimetres to accommodate the ink chamber diameter. This is clearly too great for the dot spacing in dot matrix printing and this difficulty is overcome by tilting the printhead relative to the scanning direction on the work face so that the orifices are effectively closer together. Progressive time staggering of the ink jets is then of course necessary.
Behind the orifice plate is a foil 79 having a series of longitudinal holes 85 the bottom end of which opens on to the ink chamber 9. Cutting, pressing or preferably etching a hole in the foil 79 can be done easily and accurately. The foil is conveniently of metal but this is not essential. The depth of the hole is defined entirely by the foil thickness which is readily obtainable in a wide range of values. Behind the foil 79 is a restrictor plate 81 thicker than the foil by about five times. For each orifice there is a divided hole which lines up with the hole 85 in the foil 79. This divided hole has an upper portion 87, a lower portion 89 and a bridge 91 dividing the two portions. The upper hole portion 87 connects the foil aperture 85 to the duct 11 in the main part 83 of the orifice block.The bridge 91, coinciding with no bridge in the hole 85, limits the cross section of the ink path to the thickness of the foil 79, as shown by the neck portion 92 in Figure 2. The flow resistance presented by this restriction is determined by the thickness of the foil 79, the width of the hole 85, and the vertical extent of the bridge 91. These dimensions, and particularly the foil 79, are chosen in conjunction with the orifice dimensions to provide the correct restrictance to flow. There are two target parameters, the "refill frequency" and the "criticality of damping ratio". The design of the ink path is such as to make the former as thigh as is practical and the latter as close to unity as is practicals These quantities are functions of various dimensions of the ink path and various characteristics of the ink employed.Thus, in the present case, referring to Figures 2 and 3, the significant dimensions are R1 the radius of the ink chamber 9 at the rear face of the orifice plate 77; R2 the radius of the orifice 5 at the front face of the orifice plate 77; L1 the axial length of the ink chamber 9; the axial length of the cylindrical orifice 5; R1 the path length of the restrictor slot 92, effectively the vertical length of the bridge 91 in the plate 81S Rw the width of this restrictor slot, again effectively the width of the bridge 91; Rt the front to back thickness of the restrictor slot 92, defined by the thickness of the restrictor foil 79; p the density of the ink; 1 the viscosity of ink; ? the surface tension of the ink;; In one particular embodiment, given by way of example, the values of these quantities are as follows: R1 = 550 microns R1 = 1000 microns R2 = 32.5 Rw = 1176 L1 = 1000 " Rt = 38 L2 = 65 p = 810 = 8000 1: - 0.275 .105 Further parameters may be derived from the above as follows:: 1o the 'inertance' of the orifice and ink chamber Ro the 'restrictance' of the orifice and ink chamber; 1r the 'inertance' of the restrictor slot; Rr the 'restrictance' of the restrictor slot; Rt the total restrictance of orifice, ink chamber and restrictor slot; Km the stiffness of the ink at the orifice; Cd the damping factor; Rf the natural refill frequency, Rt/Cd the leriticality of damping' ratio; These parameters are derived from the original quantities as follows::
Rt = Ro + Rr
Cd = 2[Km (Io + 1r)05
By substitution of the above values it may be seen that the refill frequency is 5731 and the criticality of damping is 0.877 The orifice plate 77, foil 79 and restrictor plate 81 may be fixed to the block 83 by a series of screws around the periphery.
However, this does then mean that the fixing screws put a limit on the closeness with which the ink ejection axis can approach the lower edge of the orifice block. It is desirable that this distance is reduced as far as is practicable to permit printing close to the edge of the work face. The preferred arrangement that has been devised is one in which the three components 77, 79 and 89 are welded to the block 83 around their edges by an electron beam (EBP) process. The ink jet axis 29 can then be positioned very close to the edge, eg within three millimetres of the edge.
The transducer 7 is fixed at its rear end to the orifice block 1 so that the front face 93 is free to move axially under the effect of an electric field. When this field is applied (by conventional means not shown), the transducer contraets along the axis 29 and sucks ink through the restriction or neck 92 into the chamber 9. Removal of the electric field allows the transducer to expand suddenly and cause the ejection of a drop of ink from the orifice 5.
While the transducer 7 may be a circular cylinder of piezoelectric material, it is conveniently of rectangular cross section thus facilitating the provision of electrode layers on opposite'surfaces. Where the (front) end face 93 of the transducer is square, its corners may overlap the circular opening of the ink chamber 9. The front face 93 is rearwards of the ink chamber opening and the movement of the front face is far too small to cause any fouling.
An improvement on the basic design of the transducer consists in the relieving of its upper and lower surfaces from a point behind the front face 93 so that the vertical longitudinal cross section consists of a T or hammer shape. The vertical thickness of the major part of the length, ie the shaft, of the transducer is thereby reduced, the electrodes on the upper and lower surfaces are closer together, and the voltage sensitivity is increased. In general the shaft dimension between the electrodes is smaller than any transverse dimension of the end face.
The volumetric displacement of the piston face 93 is thereby maximised for minimum applied voltage. A suitable thickness reduction is approximately half of the square dimension of the face 93.
Consistent and reliable operation of the transducers is assisted by poling of the piezoelectric material after assembly. This process involves applying a d.c, voltage in excess of that used in operation at an elevated temperature The polarity of the transducer relative to the piezoelectric force developed is thus determined All of the transducers are fixed to the orifice block before the poling process so that the fixing process does not disturb the imposed piezoelectric characteristic, as it tends to if done in the reverse order.
In addition to fixing the transducers before the poling process, the electrode flying leads are soldered to the electrodes before poling. The poling temperature is significantly lower than the soldering temperature so that, while soldering can certainly damage pre=poled elements, poling can not harm the soldered connections0 Once the leads are soldered to the electrodes the transducers are then clamped at their rear portions to the orifice block and the poling process performed.
The transducer 7 must be sealed against leakage of ink around the edge of its front face 93, and this is achieved by an elastomeric sealant 95 around the transducer on the rear face of the restrictor plate 81. This resilient seal will allow sufficient axial movement of the transducer 7.
Other designs of transducer may be employed: piezoelectric multilayers may be employed in which a number of layers of piezoelectric material are driven in parallel, so reducing the necessary driving voltage. Single and multi layer devices employing magnetostrictive or electrostrictive ceramic material, provide further alternatives. Again, while the device described above uses the longitudinal mode of the piezoelectric material, the thickness and shear modes may be used alternatively.
Heaters 99 are positioned in the orifice block and in the rear wall of the reservoir for use when hot melt ink is being used.
Referring now to Figure 6, this shows printing apparatus including, diagrammatically, the reservoir 3 of Figure 1 including air valves A and B, on/off solenoid valves 101, 102, 103 and 104, an air pump 105 and a pressure sensor 107. The air valves A and B have a common connection 109 to the solenoid valve arrangement. The latter is such that valve 101 opens to connect the pump outlet to atmosphere; valve 102 opens to connect the pump outlet to the common connection 109; valve 103 opens to connect the pump inlet to the common connection; and valve 104 opens to connect the pump inlet to atmosphere.
Suitable operation of the valves 101-104 permits the reservoir pressure to be reduced below atmosphere pressure, raised above atmosphere pressure, or maintained at atmospheric pressure. For example, if valves A, 101 and 103 are open and valves B, 102 and 104 closed, operation of the pump will evacuate the reservoir.
The pressure sensor gives a measure of the reservoir pressure and a feedback system (not shown) can be used to maintain the pressure at a pre-set value.
The valves 101-104 are operated in dependence upon the attitude of the printhead as indicated by the attitude sensor shown in Figure 5 (or other device fixed to the printhead).
In order to put the printhead into operation the following procedure is undertaken. After closing both air valves A and B by turning the knob 53 which activates the cams 47, 49, 27, the printhead is placed in a horizontal position. The filler cap is removed and the reservoir filled with ink. This ink may be poured as a granular form in the case of hot-melt ink or as a liquid in the case of ordinary ink.
Hot-melt ink could be melted first and then poured into the reservoir. A level sensor may be used to detect when the reservoir is full.
Alternatively, the level could be viewed through a sight-glass set into the side of the reservoir.
When the reservoir Is full and the printhead turned to Its required attitude the appropriate air valve A or B may be opened and the pressure in the reservoir void adjusted until the hydrostatic head of ink is balanced. The removal or addition of air can be accomplished by a bellows, pump or piston. The preferred design, shown in Figure 6, uses a diaphragm pump with two valves connected to the inlet and two to the outlet.
Although air has been specified as the working medium for pressure regulation any compatible gas may be used. Helium would have the desirable property of depressing the solubility of dissolved gases.
It may be that in changing the attitude of the printhead from printing on a horizontal surface to printing on a vertical surface, pressure in the reservoir is too negative sayo In this case the pump/valves may be set to pump air into the reservoir or both valves of one pair could be opened to allow air to flow into the reservoir.
Similarly if the pressure is too positive the pump/valves could be set to evaeuate or the valves of one pair opened as before to let air out of the reservoir.
In practice the attitude sensor (Figure 5) detects which attitude the printhead has been set to print in, an electronic circuit (not shown) transforms the signals from the attitude sensors into an appropriate sequence for the valves 101-104. The sensor 107 measures the pressure in the reservoir and a control system switches on the pump until the desired pressure is reachede As ink is used the level 42 of ink in the reservoir alters, changing the hydrostatic head of ink acting on the orifices Therefore for optimum performance of the printhead, the partial pressure applied to the reservoir needs to be changed as ink is used. One method of determining how much ink has been used, from an initially full state, is to count the number of drops that have been jetted from the printhead and from a knowledge of drop volume the total volume can be calculated. The counting may be done in a microprocessor that commands the head to print or electronically by processing the electrical signals to the piezoelectric transducers. The ink level can always be detected with a level sensor or sensors in the reservoir0 It may be necessary as a prerequisite to operation of the printhead to purge it of air in the ink channels. This may be accomplished by switching the valves 101-104 to the positive pressure mode and pressurising the reservoir at an above atmospheric pressure.
This will cause ink to jet out of all of the orifices 5 carrying any entrapped air with the ink. This process may be aided by pulsing the piezoelectric transducers 7 with a pulse train of electrical signals to provide ultrasonic agitation of the ink within the ink chambers.

Claims (12)

1. An inkjet printhead comprising an orifice plate mounted on the front of a block, the orifice plate having an array of orifices with respective inkjet axes, each orifice having a respective driving means mounted for reciprocating movement to drive ink through the orifice, ink access to the orifice being provided by a duct in said block which opens onto the rear of the orifice plate at a position displaced from the orifice, a path from said position to the orifice being provided by an aperture in a foil which is interposed between the orifice plate and the block.
2. A printhead according to Claim 1, further comprising a restrictor plate interposed between said foil and said block, the restrictor plate having a thickness substantially greater than that of the foil and having, for each orifice, an aperture which overlies the corresponding foil aperture for a first part of said path so that the path cross section is restricted to the cross dimension of the foil aperture and the thickness of the foil for only the latter part of said path
3.A printhead according to Claim 2, wherein said restrictor plate has a further aperture which embraces the leading end of the driving means, the restrictor plate being sealed to the driving means in such manner as to permit said reciprocating movement
4. A printhead according to any preceding claim wherein, behind each orifice in the orifice plate is a respective ink chamber the rear face of which is substantially larger than the orifice, said foil aperture encompassing this rear face of the ink chamber.
5. A printhead according to any preceding claim, wherein said duct providing access to the orifice plate is individual to each orifice, the ducts being fed from a manifold chamber in said block.
6. A printhead according to any preceding claim, wherein said orifice plate, said foil and said block are welded together around their edges.
7. A printhead according to Claim 4 or to Claim 5 or Claim 6 as appendent to Claim 4, wherein said driving means comprises a longitudinal piezoelectric element comprising a head portion having an end face transverse to the ink jet axis and arranged to engage ink in said ink chamber, and a shaft portion sandwiched between electrodes, said shaft portion having a smaller dimension between said electrodes than any transverse dimension of said end face.
8. A printhead according to any preceding claim, wherein said orifice is circular and said foil is matched to the diameter of the orifice to achieve optimum restrictance to ink flow.
9. A method of making a printhead as claimed in any preceding claim wherein said driving means comprises a piezoelectric element, in which method the piezoelectric element is poled after assembly in the printhead.
10. A method according to Claim 9, wherein flying leads are soldered to electrodes of said piezoelectric element before poling of said piezoelectric element.
11. A method according to any of Claim 7 to 10, wherein said piezoelectric element is fixed to said block by clamping.
12. A printhead including an orifice block as hereinbefore described and illustrated with reference to Figures 1, 2 and 3 of the acompanying drawings.
GB9207351A 1992-04-03 1992-04-03 Ink jet printhead construction. Withdrawn GB2265859A (en)

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Application Number Priority Date Filing Date Title
GB9207351A GB2265859A (en) 1992-04-03 1992-04-03 Ink jet printhead construction.

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GB2265859A true GB2265859A (en) 1993-10-13

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5812163A (en) * 1996-02-13 1998-09-22 Hewlett-Packard Company Ink jet printer firing assembly with flexible film expeller

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5812163A (en) * 1996-02-13 1998-09-22 Hewlett-Packard Company Ink jet printer firing assembly with flexible film expeller

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GB9207351D0 (en) 1992-05-13

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