The present invention generally pertains to a print head for ejecting droplets of a fluid, such as ink, wherein a flexible wall of a pressure chamber is deformed by actuation of a piezo actuator. The present invention further pertains to a method for manufacturing such a print head.
Print heads for ejecting droplets of fluid are commonly known as inkjet print heads. Such print heads may eject fluids like ink or any other fluids having suitable properties. Droplet ejection may be generated by a number of different kinds of methods. In a particular method, a piezo actuator is actuated to generate a pressure wave in a pressure chamber that is filled with the fluid to be ejected. The pressure chamber is in fluid communication with a nozzle of the print head and due to the generated pressure wave a droplet may be ejected through the nozzle.
Commonly, the piezo actuator is arranged on a membrane, which membrane forms a flexible wall of the pressure chamber. The piezo actuator is arranged on a surface of the membrane opposite of a surface that forms the wall of the pressure chamber, i.e. the piezo actuator is arranged outside the pressure chamber, although this is not required. In order to generate the pressure wave in the pressure chamber, the membrane is deformed by the piezo actuator. The membrane is deformed at the position of the piezo actuator, but as a consequence also at the position where the membrane is clamped, i.e. at the perimeter of the pressure chamber.
In order to have a dense arrangement of nozzles for high resolution printing, it is desirable to have small structures, including a small pressure chamber. Having a small pressure chamber and consequently a small membrane results in a relatively high stiffness of the membrane. In order to be able to expel droplets, a certain volume displacement is needed in the pressure chamber upon actuation. However, in view of the desired dense arrangement, it may require a relatively large actuation voltage to deform the relatively stiff membrane such that the needed volume displacement is achieved. Using a relatively large actuation voltage on the other hand decreases the lifetime of the piezo actuator, which is of course also not desirable.
In US2008/0018204 it is disclosed to have a bending-stiffness lowering portion. Such bending-stiffness lowering portion may include thinning of the membrane or providing of a through hole through the membrane outside an area that forms the flexible wall of the pressure chamber. Thus, stiffness of the membrane is reduced and bending is eased. However, it is desirable to reduce a resistance of the area of the membrane forming the flexible wall of the pressure chamber to actuation even further.
In an aspect of the present invention, a print head is provided. The print head is configured to eject a droplet of a fluid through a nozzle. The print head comprises a pressure chamber in fluid communication with the nozzle and an actuator structure in operative communication with the pressure chamber for generating a pressure wave in the pressure chamber. The actuator structure comprises a membrane, wherein a first surface of the membrane forms a flexible wall of the pressure chamber, and a piezo actuator, wherein the piezo actuator is arranged on a second surface of the membrane, the second surface being opposite of the first surface, such that the membrane is deformed at the position of the piezo actuator upon actuation of the piezo actuator. The membrane is pivotably supported such that the membrane pivots at the position of support upon deformation of the membrane due to actuation of the piezo actuator. In the print head according to the invention, the stiffness of the membrane is decreased by arranging the membrane such that at its position of support the membrane is enabled to pivot instead of—compared to the prior art—being deformed at a position of clamping. Compared to deforming the membrane, hinging the membrane about its point of support requires a significant less amount of energy and consequently a significantly lower actuation voltage is sufficient to induce a same volume displacement in the pressure chamber upon actuation.
In order to enable hinging, the membrane should be supported over a relatively short distance, viewed in the plane of the membrane in a direction substantially perpendicular to an adjacent wall of the pressure chamber. Further, the membrane may preferably have a free end arranged at or close to the position of support. Considering that the ink containing pressure chamber is arranged on one side of the position of support, the free end is arranged on an opposite side of the position of support in order to be able to fluidly close the pressure chamber using the pivotably supported membrane.
In an embodiment, the membrane is pivotably clamped between a first structure layer and a second structure layer. In a particular embodiment, the membrane is clamped between a first protrusion on the first structure layer and a second protrusion on the second structure layer. Such protrusion may for example be a metal track, or the like. The first and second protrusions may have predetermined contact area's such that a predetermined width of clamping is obtained. A small clamping width provides that the membrane may pivot instead of bend as above mentioned.
The membrane may be supported or clamped directly at a perimeter of the pressure chamber or may be supported or clamped at a predetermined distance from the perimeter, thereby increasing a flexibility of the membrane and hence a volume displacement of the actuator (or requiring a lower actuation voltage for a same volume displacement).
Depending on a desired functionality, at least the predetermined distance may be constant along the perimeter of the pressure chamber or the predetermined distance may vary.
The present invention further provides a method for manufacturing a print head configured to eject a droplet of a fluid through a nozzle by generating a pressure wave in a pressure chamber, which pressure chamber is in fluid communication with the nozzle, the pressure chamber having a piezo actuator arranged on a flexible wall of the pressure chamber, the method comprising providing a first structure layer; providing a membrane layer and bonding the membrane layer on the first structure layer; separating a part of the membrane layer from the membrane layer by patterning the membrane layer, said part being arranged and configured to become the flexible wall of the pressure chamber. In particular, an edge of said part of the membrane layer may be loosened from a remainder of the membrane layer such to enable free movement of such edge in a direction substantially perpendicular to a plane of the membrane layer. In an embodiment, the method further comprises providing a second structure layer and bonding the second structure layer on the membrane layer, thereby clamping the membrane part between the first structure layer and the second structure layer. Thus, a print head according to the present invention may be provided.
Further scope of applicability of the present invention will become apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific examples, while indicating embodiments of the invention, are given by way of illustration only, since various changes and modifications within the scope of the invention will become apparent to those skilled in the art from this detailed description.
The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying schematical drawings which are given by way of illustration only, and thus are not limitative of the present invention, and wherein:
The present invention will now be described with reference to the accompanying drawings, wherein the same reference numerals have been used to identify the same or similar elements throughout the several views.
Images are printed on a image receiving member, for example paper, supplied by a roll 28, 30. The roll 28 is supported on the roll support R1, while the roll 30 is supported on the roll support R2. Alternatively, cut sheet image receiving members may be used instead of rolls 28, 30 of image receiving member. Printed sheets of the image receiving member, cut off from the roll 28, 30, are deposited in the delivery tray 32. Each one of the marking materials for use in the printing assembly are stored in four containers 20 arranged in fluid connection with the respective print heads for supplying marking material to said print heads.
The local user interface unit 24 is integrated to the print engine and may comprise a display unit and a control panel. Alternatively, the control panel may be integrated in the display unit, for example in the form of a touch-screen control panel. The local user interface unit 24 is connected to a control unit 34 placed inside the printing apparatus 36. The control unit 34, for example a computer, comprises a processor adapted to issue commands to the print engine, for example for controlling the print process. The image forming apparatus 36 may optionally be connected to a network N. The connection to the network N is diagrammatically shown in the form of a cable 22, but nevertheless, the connection could be wireless. The image forming apparatus 36 may receive printing jobs via the network. Further, optionally, the controller of the printer may be provided with a USB port, so printing jobs may be sent to the printer via this USB port.
The image receiving member 2 may be a medium in web or in sheet form and may be composed of e.g. paper, cardboard, label stock, coated paper, plastic or textile. Alternatively, the image receiving member 2 may also be an intermediate member, endless or not. Examples of endless members, which may be moved cyclically, are a belt or a drum. The image receiving member 2 is moved in the sub-scanning direction A by the platen 1 along four print heads 4a- 4d provided with a fluid marking material. A scanning print carriage 5 carries the four print heads 4a- 4d and may be moved in reciprocation in the main scanning direction B parallel to the platen 1, such as to enable scanning of the image receiving member 2 in the main scanning direction B. Only four print heads 4a- 4d are depicted for demonstrating the invention. In practice an arbitrary number of print heads may be employed. In any case, at least one print head 4a- 4d per color of marking material is placed on the scanning print carriage 5. For example, for a black-and-white printer, at least one print head 4a-4d, usually containing black marking material is present. Alternatively, a black-and-white printer may comprise a white marking material, which is to be applied on a black image-receiving member 2. For a full-color printer, containing multiple colors, at least one print head 4a- 4d for each of the colors, usually black, cyan, magenta and yellow is present. Often, in a full-color printer, black marking material is used more frequently in comparison to differently colored marking material. Therefore, more print heads 4a- 4d containing black marking material may be provided on the scanning print carriage 5 compared to print heads 4a -4d containing marking material in any of the other colors. Alternatively, the print head 4a-4d containing black marking material may be larger than any of the print heads 4a-4d, containing a differently colored marking material.
The carriage 5 is guided by guiding means 6, 7. These guiding means 6, 7 may be rods as depicted in
Each print head 4a - 4d comprises an orifice surface 9 having at least one orifice 8, in fluid communication with a pressure chamber containing fluid marking material provided in the print head 4a - 4d. On the orifice surface 9, a number of orifices 8 is arranged in a single linear array parallel to the sub-scanning direction A. Eight orifices 8 per print head 4a - 4d are depicted in
Upon ejection of the marking material, some marking material may be spilled and stay on the orifice surface 9 of the print head 4a-4d. The ink present on the orifice surface 9, may negatively influence the ejection of droplets and the placement of these droplets on the image receiving member 2. Therefore, it may be advantageous to remove excess of ink from the orifice surface 9. The excess of ink may be removed for example by wiping with a wiper and/or by application of a suitable anti-wetting property of the surface, e.g. provided by a coating.
A print head according to the present invention may be employed in a printer as shown in
D is selected such that the membrane 45 is clamped at a distance D from the perimeter 431 not equal to zero in order to select a suitable flexibility of the membrane 45. Between the membrane 45 and the remaining material of the membrane layer 44 a void 451 is provided to enable an edge portion of the membrane 45 to move freely.
The first protrusion 411 and the second protrusion 421 have a first contact area 412 and a second contact area 422, respectively. The membrane 45 engages the first structure layer 41 at the first contact area 412 and engages the second structure layer 42 at the second contact area 422. A width W of the contact areas 412, 422, i.e. the dimension of the contact areas perpendicular to a direction in which the perimeter 431 of the pressure chamber 43 extends is suitably selected such that the membrane 45 will pivot between the first protrusion 411 and the second protrusion 421 upon actuation. In particular, the width W is preferably smaller than a thickness of the membrane in order to enable pivoting. The operation of the actuator 46 and membrane 45 are described in more detail hereinafter with reference to
A suitable coupling between the membrane 45 and the first protrusion 411 may be provided by a suitable adhesive. Such suitable adhesives are known in the art.
Moreover, in case the membrane 45 is actuated to bend in the first direction Dincr to increase the volume of the pressure chamber 43, the membrane 45 pivots at the clamping position, while in case the membrane 45 is made to bend in the second direction Ddecr to decrease the volume of the pressure chamber 43, the membrane 45 is required to bend at the clamping position, further reducing the effectiveness of the actuation in view of displaced volume. In practice, the embodiment according to
The first support protrusion 414 of the first structure layer 41 is arranged on the second support protrusion 424 of the second structure layer 42, thereby forming the basic print head structure. The first support protrusion 414 and the second support protrusion 424 are arranged such that at least one of the first support protrusion 414 and the second support protrusion 424 extend through an opening between the membrane 45 and an adjacent membrane. However, in an embodiment, a remainder of a membrane layer (cf. membrane layer 44 in
Thus, in the embodiment of
Detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention, which can be embodied in various forms. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a basis for the claims and as a representative basis for teaching one skilled in the art to variously employ the present invention in virtually any appropriately detailed structure. In particular, features presented and described in separate dependent claims may be applied in combination and any advantageous combination of such claims are herewith disclosed.
Further, the terms and phrases used herein are not intended to be limiting; but rather, to provide an understandable description of the invention. The terms “a” or “an”, as used herein, are defined as one or more than one. The term plurality, as used herein, is defined as two or more than two. The term another, as used herein, is defined as at least a second or more. The terms including and/or having, as used herein, are defined as comprising (i.e., open language). The term coupled, as used herein, is defined as connected, although not necessarily directly.
The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are intended to be included within the scope of the following claims.
Number | Date | Country | Kind |
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11191249.9 | Nov 2011 | EP | regional |
Number | Date | Country | |
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Parent | PCT/EP2012/073161 | Nov 2012 | US |
Child | 14279583 | US |