Pressure regulating valve with dual valve member
The dual valve member system addresses the cost and hysteresis issues of existing pressure regulation systems by using a solenoid-actuated shut-off valve and diaphragm-controlled flow regulation, achieving efficient and precise ink pressure management for small inkjet printing systems.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-07
- Publication Date
- 2026-03-11
AI Technical Summary
Existing pressure regulation systems for inkjet printheads are costly due to the use of expensive diaphragm pumps and electronically controlled pressure regulators, and suffer from pressure fluctuations and hysteresis issues, making them unsuitable for small inkjet printing systems.
A pressure regulating valve with a dual valve member system, comprising a solenoid-actuated first valve member for shut-off and a diaphragm-controlled second valve member for flow regulation, which passively controls ink pressure without sealing or shutting off, using a spring-biased diaphragm to manage flow rates through non-sealing orifices.
The dual valve member system provides low-cost, efficient, and precise pressure regulation with minimal hysteresis, enabling stable ink flow to multiple printheads from a common ink reservoir, suitable for small inkjet printing systems.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a pressure regulator valve for controlling pressure at an inkjet printhead, which was developed primarily to supply ink to the inkjet printhead at a relatively constant pressure as well as to reduce the cost of the ink delivery system. [Background technology]
[0002] Inkjet printers using Memjet® technology are commercially available for several different printing formats, including small office / home office ("SOHO") printers, label printers, and wide-format printers. Memjet® printers typically include one or more fixed, user-replaceable inkjet printheads. For example, SOHO printers include a single, user-replaceable multicolor printhead, high-speed inkjet presses include multiple, user-replaceable monochrome printheads aligned along the media feed direction, and wide-format printers include multiple, user-replaceable printheads staggered to span the width of a wide-format page.
[0003] As the number of printheads increases, supplying ink to multiple printheads can become a problem: to maintain high print quality, each printhead must receive ink from a common ink reservoir at approximately the same ink pressure.
[0004] U.S. Pat. No. 10,252,540 (the contents of which are incorporated herein by reference) describes an ink delivery system suitable for digital inkjet printers with multiple printheads. The system uses total pressure control in a common ink delivery module and local fine pressure control in each print module containing a respective printhead. Because multiple inkjet printheads require high ink flow rates and pressure control in the positive and negative ink lines, two diaphragm pumps are required to control the ink pressure in the ink delivery module. These diaphragm pumps are necessarily large, high-quality pumps that operate in conjunction with local electronically controlled pressure regulators in each print module. Therefore, the ink delivery system is expensive due to the high cost of the two diaphragm pumps and electronically controlled pressure regulators in each print module.
[0005] For inkjet printing systems with a small number of print modules (e.g., one or two print modules), an expensive ink delivery module designed for a larger system is undesirable and would significantly increase the overall system cost. U.S. Patent Application Publication No. 17 / 180,401, filed February 19, 2021, describes an ink delivery module suitable for inkjet printing systems with a small number of printheads. The ink delivery module uses a low-cost air pump in cooperation with a flow restrictor as a means for regulating the pressure in an ink supply tank and an ink return tank connected to an ink supply line and an ink return line, respectively.
[0006] Passive pressure regulators have been proposed as a suitable means for controlling ink pressure in inkjet printing systems. For example, U.S. Patent No. 7,712,880 (assigned to Memjet Technology Ltd.) describes a pressure regulator having a diaphragm and biasing mechanism that cooperate to open and seal a valve member against a valve seat in response to changes in ink pressure. U.S. Patent No. 7,862,138 (assigned to Hewlett-Packard Development Company, LP) describes a pressure regulator that operates using a similar principle (i.e., a biased diaphragm connected to a valve member via a lever mechanism to seal or open an orifice).
[0007] Pressure regulating valves have the advantages of low cost and localized pressure control near the printhead. However, the valves described in the prior art above suffer from the drawbacks of pressure fluctuations as well as hysteresis caused by sealing the orifice closed and open. Furthermore, high flow rates cannot be easily achieved through the opening and closing of the valve. Summary of the Invention [Problem to be solved by the invention]
[0008] It would therefore be desirable to provide a low cost means for regulating ink pressure that ameliorates at least some of the shortcomings of the prior art pressure regulation systems discussed above. [Means for solving the problem]
[0009] In a first aspect, there is provided a pressure regulating valve for an inkjet printhead, the valve comprising: an inlet port; An outlet port; a fluid flow path defined between an inlet port and an outlet port; a first orifice disposed within the flow passage and having a sealable first seat; a movable first valve member configured to sealingly engage the first seat; a second orifice disposed within the flow path; a movable second valve member configured to adjust the flow of fluid through the second orifice; a regulator chamber having an outlet port and including a diaphragm operatively connected to the second valve member such that movement of the diaphragm causes movement of the second valve member relative to the second orifice; a biasing mechanism for resiliently biasing the diaphragm away from the second orifice; A pressure regulating valve is provided, comprising:
[0010] The pressure regulating valve according to the first aspect has the advantage of controlling fluid flow to the printhead without the need for a valve member that functions as a shut-off valve during idle periods of the printhead. Advantageously, the shut-off function is handled by an actuated (e.g., solenoid-actuated) first valve member, while the pressure regulating function is handled by a diaphragm-controlled second valve member that has neither a sealing nor a shut-off function.
[0011] Preferably, the second orifice is downstream of the first orifice.
[0012] Preferably, the first valve member comprises a compliant plug for sealing engagement with the first seat.
[0013] Preferably, the first valve member is operatively connected to an actuator, such as a solenoid, for opening and sealingly closing the first orifice. Typically, when the solenoid is de-energized, the first valve member is sealed closed to the first orifice.
[0014] Preferably, the biasing mechanism includes a spring operatively connected to the diaphragm, the spring biasing the second valve member in a direction to close the second orifice.
[0015] Preferably, in use, the diaphragm and spring cooperate to passively control the flow rate through the second orifice. Contraction of the diaphragm toward the second orifice, caused by, for example, a decrease in pressure within the regulator chamber, tends to move the second valve member toward the opening of the second orifice. At the same time, contraction of the diaphragm is resisted by the bias of the spring, thereby passively regulating the flow rate through the second orifice by a balance of forces between the diaphragm and the spring.
[0016] Preferably, the second valve member and the second orifice have hard mating surfaces (e.g., metal, hard plastic, etc.) that are typically non-sealing to avoid the surfaces sticking during use and causing hysteresis in pressure management.
[0017] Preferably, movement of the diaphragm toward the second orifice gradually opens the second orifice, thereby increasing the flow rate therethrough, and movement of the diaphragm away from the second orifice gradually blocks the second orifice, thereby decreasing the flow rate therethrough. Typically, the second orifice is not completely blocked (i.e., closed) during printing.
[0018] Preferably, a decrease in pressure within the regulator chamber causes the diaphragm to move toward the second orifice.
[0019] Preferably, the outer surface of the second valve member flares away from the diaphragm.
[0020] Preferably, the outer surface of the second valve member is non-linearly diverging.
[0021] Preferably, linear movement of the second valve member through the second orifice causes a linear change in the occlusion area of the second orifice, and the flow rate through the second orifice is linearly proportional to the distance traveled by the second valve member.
[0022] In a related aspect, The pressure regulating valve as described above, an ink tank connected to the inlet port; an inkjet printhead connected to the outlet port; An inkjet printer is provided, comprising:
[0023] Preferably, the ink tank is located at a height above the pressure regulator valve to supply ink to the inlet port under positive gravity pressure.
[0024] Preferably, the inkjet printhead draws a negative ink pressure at the outlet port during printing.
[0025] Preferably, a vacuum source connected to the inkjet printhead draws a negative pressure at the exit port during at least some non-printing periods.
[0026] Preferably, during use, the pressure regulator valve maintains the negative ink pressure at the printhead within a predetermined pressure range.
[0027] Preferably, the level of ink in the ink tank is at a height h1 above the orifice, the orifice being located at a height h2 relative to the printhead, and the backpressure of the ink supplied to the printhead is controlled by h1, h2, the position of the valve member relative to the orifice, and the pumping speed of a pump connected to the printhead outlet port.
[0028] In a second aspect, there is provided an ink delivery system for supplying ink to an inkjet printhead at a predetermined back pressure, the ink delivery system comprising: a pressure regulating valve having a valve outlet connected to the printhead inlet port and having a passively controlled valve member for controlling the flow rate of ink through an orifice; an ink tank connected to the valve inlet of the pressure regulating valve and positioned above the pressure regulating valve and the print head, the ink tank having a vent port open to the atmosphere for supplying ink to the pressure regulating valve by gravity; a pump connected to the printhead outlet port; Equipped with The ink level in the ink tank is at height h1 above the orifice, The orifice is positioned at a height h2 relative to the printhead, An ink delivery system is provided in which the back pressure of the ink supplied to the printhead is controlled by h1, h2, the position of the valve member relative to the orifice, and the pumping speed of the pump.
[0029] Preferably, the pump is connected to the ink tank via an ink return line.
[0030] Preferably, the pressure regulating valve comprises: a regulator chamber having a diaphragm operatively connected to the valve member such that movement of the diaphragm causes movement of the valve member relative to the orifice; a biasing mechanism for resiliently biasing the diaphragm away from the orifice; Equipped with.
[0031] Preferably, the pressure regulating valve is as described above in relation to the first aspect and preferred embodiments thereof.
[0032] Preferably, height h1 is controlled via one or more ink level sensors that cooperate with a refill pump that receives ink from a bulk ink reservoir.
[0033] Preferably, the pressure regulator is located above the printhead. Alternatively, the pressure regulator is located below the printhead or at the same height as the printhead.
[0034] In a third aspect, there is provided a pressure regulating valve for an inkjet printhead, the valve comprising: A valve inlet; a valve outlet; a fluid flow path defined between a valve inlet and a valve outlet; an orifice disposed within the flow path; a movable valve member configured to adjust the flow of fluid through the orifice; a regulator chamber having a valve outlet and including a diaphragm operatively connected to the valve member, such that movement of the diaphragm causes movement of the valve member relative to the orifice; a biasing mechanism for resiliently biasing the diaphragm away from the orifice; Equipped with A pressure regulating valve is provided in which the outer surface of the valve member diverges non-linearly in a direction away from the diaphragm.
[0035] Preferably, linear movement of the valve member relative to the orifice produces a linear change in the obstruction area of the orifice, so that the flow rate through the orifice is linearly proportional to the distance traveled by the valve member.
[0036] Preferably, the biasing mechanism comprises a spring operatively connected to the diaphragm, the spring biasing the valve member in a direction to close the orifice.
[0037] Preferably, in use, the diaphragm and spring cooperate to passively control the flow rate through the orifice.
[0038] Preferably, the valve member and the orifice have hard mating surfaces.
[0039] Preferably, movement of the diaphragm towards the orifice gradually opens the orifice, thereby increasing the flow rate through the orifice, and movement of the diaphragm away from the orifice gradually closes the orifice, thereby decreasing the flow rate through the orifice.
[0040] Preferably, a decrease in pressure within the regulator chamber causes the diaphragm to move toward the orifice.
[0041] In a related aspect, there is provided an inkjet printing system comprising a pressure regulating valve as described above in relation to the first aspect.
[0042] As used herein, the term "ink" is intended to mean any printing fluid that can be printed from an inkjet printhead. Ink may or may not contain a colorant. Thus, the term "ink" can include traditional dye-based or pigment-based inks, infrared inks, fixatives (e.g., precoats and finishers), 3D printing fluids (e.g., binder fluids), functional fluids (e.g., solar inks, sensing inks, etc.), and the like. When referring to a fluid or printing liquid, this is not intended to limit the meaning of "ink" herein. [Brief explanation of the drawings]
[0043] Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
[0044] [Figure 1] FIG. 1 shows an ink delivery system having a single printhead. [Figure 2] FIG. 2 shows an ink delivery system having two printheads. [Figure 3] FIG. 3 is a perspective view of the pressure regulating valve. [Figure 4] FIG. 4 is a cross-sectional perspective view of the pressure regulating valve. [Figure 5] FIG. 5 is a side view of a valve member for regulating flow through an orifice. DETAILED DESCRIPTION OF THE INVENTION
[0045] Ink Delivery System 1, there is shown a schematic of an ink delivery system 1 for an inkjet printing system having a print module 2 with an inkjet printhead 4. The printhead 4 is typically a user-replaceable page-wide (or "linehead") printhead of the type described, for example, in U.S. Patent Application Publication No. 2011 / 0279566, U.S. Patent No. 9,950,527, or U.S. Patent No. 10,717,282, the contents of which are incorporated herein by reference.
[0046] Ink is supplied to the printhead 4 by an intermediate ink tank 6 having a supply port 7 connected to a printhead inlet port 8 via an ink supply line 12. The intermediate ink tank 6 has a vent 14 open to the atmosphere and supplies ink to the ink supply line 12 by gravity. The intermediate ink tank 6 can be configured to handle degassed ink, as described in U.S. Pat. No. 10,639,903, the contents of which are incorporated herein by reference.
[0047] The return port 13 of the intermediate ink tank 6 is connected to the printhead outlet port 16 via an ink return line 18. Thus, the intermediate ink tank 6, ink supply line 12, printhead 4, and ink return line 18 together form a closed fluid loop. Typically, the ink supply line 12 and ink return line 18 consist of lengths of flexible tubing.
[0048] The ink return line 18 has a circulation pump 20 (eg, a diaphragm pump) downstream of the printhead 4 to circulate the ink around a closed fluid loop.
[0049] The closed fluid loop further includes a degasser 22 in the ink return line 18 downstream of the pump 20 for degassing the ink, a filter 23 in the ink supply line 12 downstream of the intermediate ink tank 6 for filtering the ink supplied to the printhead 4, and a compliance 25 in the ink return line between the printhead outlet 16 and the circulation pump 20 for damping ink pressure fluctuations. The filter 23 can be of the type described, for example, in U.S. Pat. No. 10,369,802, the contents of which are incorporated herein by reference. Alternatively, the filter 23 can be incorporated into the intermediate ink tank 6, as described in U.S. Provisional Application No. 62 / 990,911, filed March 17, 2020, the contents of which are incorporated herein by reference.
[0050] The ink delivery system 1 is designed to circulate ink around a closed fluid loop through the ink supply line 12 and the ink return line 18 in a clockwise direction as shown in Figure 1 during normal printing. In this way, the ink is continuously degassed and filtered, minimizing air bubbles and particulates from entering the printhead 4 to maintain optimal print quality.
[0051] Ink consumed by the printhead 4 during normal printing or maintenance operations is replenished from a bulk ink reservoir 24, which supplies ink to the return line 18 via an ink refill line 26 having a refill pump 28. Operation of the refill pump 28 is controlled by feedback from "high" and "low" ink level sensors 27A and 27B in the intermediate ink tank 6. When ink in the intermediate ink tank 6 is detected to be at a predetermined "high" level, the refill pump 28 is stopped, and when ink in the intermediate ink tank 6 is detected to be at a predetermined "low" level, the refill pump is activated to replenish ink from the bulk ink tank 24 into the closed fluid loop.
[0052] To deprime, isolate, and / or replace the printhead 4, the print module 2 includes a printhead shutoff valve 30 on the outlet side of the printhead 4 and an air intake line 32 controlled by an air shutoff valve 34 on the inlet side. An upstream pressure regulator valve 50 (described in detail below), which also functions as an ink shutoff valve, is located in the ink supply line 12 between the intermediate ink tank 6 and the print module 2. Thus, when depriming of the printhead 4 is necessary (e.g., for printhead replacement), the pressure regulator valve 50 is shut off and the air intake valve 34 is opened. Operation of the circulation pump 20 draws air through the printhead 4, thereby removing ink from the internal ink supply channels. Once the ink has been removed from the printhead 4, the outlet shutoff valve 30 is closed, thereby isolating the printhead so that it can be cleanly removed and replaced. Typically, when the printing system is not in use, the printhead 4 is also isolated by shutting off the pressure regulator valve 50 and the outlet shutoff valve 30.
[0053] As described in U.S. Patent Application No. 17 / 174,090, filed February 11, 2021, the contents of which are incorporated herein by reference, for priming the print head, a vacuum capper (not shown) can be used in combination with a circulation pump 20 to draw ink through the ink supply channels of the print head and into the nozzles. Pressure adjustment
[0054] As will be appreciated by those skilled in the art, it is important for the printhead 4 to receive ink at a regulated and predetermined backpressure in order to operate optimally: if the ink pressure is too negative, ink that has built up inside the inkjet nozzles can be sucked back into the printhead channels, thereby depriming the printhead, and if the ink pressure is too positive, ink can spill out of the inkjet nozzles and onto the nozzle plate of the printhead.
[0055] Gravity-fed ink delivery systems, such as those described in U.S. Pat. No. 10,639,903, have the advantage of passively controlling backpressure. However, it is often inconvenient to locate intermediate ink tanks below the printheads. In most inkjet printing systems, this space is occupied by maintenance systems, media supply systems, etc. Furthermore, intermediate ink tanks that supply ink to multiple printheads do not provide precise local pressure control for each printhead.
[0056] Active pressure control systems, such as that described in U.S. Patent No. 10,252,540, have the advantage of precise localized pressure control without design constraints regarding the placement of system components. However, such systems require expensive pumps and sensing circuitry, which may be economically impractical for small inkjet printing systems.
[0057] The ink delivery system 1 shown in FIG. 1 achieves localized passive regulation of backpressure within the printhead 4 using an intermediate ink tank 6 located above the printhead. The backpressure experienced by the printhead 4 is controlled by a combination of the height h1 of the intermediate ink tank 6 relative to the pressure regulator valve 50, the passively controlled flow rate through the orifice of the pressure regulator valve 50, the height h2 of the pressure regulator valve relative to the printhead 4, and the pumping speed of the downstream pump 20. The pressure regulator valve 50 is a key component of this system, having the dual function of passive pressure regulation through relative occlusion of the orifice and as an ink shutoff valve for isolating the printhead 4, depriming operations, etc.
[0058] Furthermore, because the pressure regulator valve 50 is designed as a compact and inexpensive component of the ink delivery system 1, it can be located in close proximity to the printheads 4 and, in some embodiments, can be incorporated into the print module 2, which itself is a replaceable module incorporating the replaceable printheads 4. Referring to FIG. 2, an ink delivery system incorporating two printheads 4 connected in parallel has a respective pressure regulator valve 50 for each printhead, thereby providing local pressure control for each printhead from a common intermediate ink tank 6. In this way, if one printhead 4 has a higher ink demand than the other, both printheads can be maintained at relatively equal ink pressures by operation of their respective pressure regulator valves 50.
[0059] 3 and 4, the pressure regulating valve 50 will now be described in detail. The pressure regulating valve 50 includes a valve inlet 52, a valve outlet 54, and a fluid flow path defined therebetween. A first orifice 56 is disposed in the flow path downstream of the valve inlet 52. The first orifice 56 has a first seat 58 that is sealable by a movable first valve member 60 having a compliant plug 62 configured to sealingly engage the first seat. As shown in FIG. 2, the first valve member 60 is in a closed position, whereby the compliant plug seals against the first seat 58. When the first valve member 60 moves away from the first valve seat (downward as shown in FIG. 2), the valve member is unseaten and the first orifice opens, allowing fluid to flow through the first orifice under positive pressure from the valve inlet 52. Movement of the first valve member 60 between the open and closed positions is controlled by an actuator in the form of a solenoid 66. When the solenoid 66 is activated, the first valve member 60 moves away from the first seat 58 to open the first orifice 56, and when the solenoid 66 is deactivated, the first valve member 60 seals against the first valve seat 58 to close the first orifice 56. The solenoid 66 operates under the control of a separate controller (not shown) operably connected to electrical terminals 68. The first orifice and first valve member thus function as a shut-off valve in the ink supply line 12 under the control of the solenoid 66.
[0060] The second orifice 70 is disposed in the flow path downstream of the first orifice 56, and the first and second orifices are connected via an intermediate flow path 72. The second orifice 70 is defined in the base of a regulator chamber 74 that forms the upper portion of the pressure regulating valve 50. The regulator chamber 74 includes the valve outlet 56 located in its sidewall and a diaphragm 76 located in its ceiling. The diaphragm 76 is operatively connected to a second valve member 78 that is slidably movable relative to the second orifice 70 to gradually close or open the second orifice. The second valve member 78 is biased away from the second orifice 70 by a spring 80 that has one end connected to the diaphragm 76 (and the second valve member 78) and the other end connected to a fixed support 82. In the embodiment shown in Figures 1 and 2, the fixed support 82 is an external structure, but it will be understood that the fixed support 82, to which one end of the spring 80 is connected, may be integrated into the ceiling of the regulator chamber 74, with the spring extending through an internal ceiling cavity (not shown).
[0061] Because the second valve member 78 expands away from the diaphragm 76, as the second valve member moves toward the second orifice 70 (i.e., downward as shown in FIG. 4 ), the second orifice gradually opens, and as the second valve member moves away from the second orifice (i.e., upward as shown in FIG. 4 ), the second orifice gradually closes. As shown in FIG. 4 , the second orifice 70 is shown in a closed position with the diaphragm 76 unflexed. However, the second orifice 70 and the second valve member 78 do not function to shut off the pressure regulating valve 50, but merely to regulate the flow rate of fluid through the second orifice. Therefore, the second valve member 78 and the second orifice 70 have hard mating surfaces that do not have a sealing function. Typically, the second valve member 78 and the second orifice 70 are formed of metal and / or hard plastic.
[0062] During printing, the first orifice 56 opens through actuation of the solenoid 66, and the flow rate through the pressure regulator valve 50 is passively controlled by the position of the second valve member 78 relative to the second orifice 70. When ink demand is high, the printhead 4 draws a relatively large negative pressure at the valve outlet 54, thereby reducing fluid pressure within the regulator chamber 74. This reduced fluid pressure tends to deflect the diaphragm 76 toward the second orifice 70 against the biasing force of the spring 80, thereby increasing fluid flow through the second orifice. Conversely, when fluid pressure within the regulator chamber 74 increases, the diaphragm deflects away from the second orifice 70, thereby reducing fluid flow through the second orifice. Therefore, the ink pressure experienced by the printhead 4 is determined, at least in part, by the balance of forces between the deflecting diaphragm 76 and the spring 80.
[0063] Advantageously, the second valve member 78, which controls the ink pressure at the printhead 4, does not have a shut-off function, minimizing hysteresis problems caused by opening and closing the valve as well as problems with valve sticking.
[0064] 5, the outer surface of the second valve member 78 diverges in a non-linear manner. For example, the second valve member 78 may be generally bell- or trumpet-shaped, whereby its curved outer surface determines the degree of obstruction of the second orifice 70. In this manner, linear movement of the second valve member 78 relative to the second orifice 70 produces a linear change in the unobstructed area of the second orifice 70. The unobstructed area of the second orifice 70 is proportional to the flow rate therethrough, which is linearly proportional to the distance traveled by the second valve member 78, e.g., having a trumpet shape.
[0065] It will, of course, be understood that the invention has been described by way of example only and modifications of detail are possible within the scope of the invention as defined in the appended claims.
Claims
1. 1. A pressure regulating valve for an inkjet printhead, said valve comprising: A valve inlet; a valve outlet; a fluid flow path defined between a valve inlet and a valve outlet; a first orifice disposed within the flow passage and having a sealable first seat; a movable first valve member configured to sealingly engage the first seat; a second orifice disposed within the flow path; a movable second valve member configured to adjust the flow of fluid through the second orifice; a regulator chamber having the valve outlet and including a diaphragm operatively connected to a second valve member, such that movement of the diaphragm causes movement of the second valve member relative to the second orifice; a biasing mechanism for resiliently biasing the diaphragm away from the second orifice; Equipped with an outer surface of the second valve member flaring away from the diaphragm; a pressure regulating valve wherein, in use, movement of the diaphragm toward the second orifice gradually opens the second orifice, thereby increasing the flow rate therethrough, and movement of the diaphragm away from the second orifice gradually closes the second orifice, thereby decreasing the flow rate therethrough.
2. The pressure regulating valve of claim 1 , wherein the second orifice is downstream of the first orifice.
3. The pressure regulating valve of claim 1 , wherein the first valve member comprises a compliant plug for sealing engagement with the first seat.
4. The pressure regulating valve of claim 1 , wherein the first valve member is operatively connected to an actuator for opening and sealingly closing the first orifice.
5. 2. The pressure regulating valve of claim 1, wherein the biasing mechanism comprises a spring operatively connected to the diaphragm, the spring biasing the second valve member in a direction to close the second orifice.
6. 6. A pressure regulating valve as claimed in claim 5, wherein in use, the diaphragm and the spring cooperate to passively control the flow rate through the second orifice.
7. The pressure regulating valve of claim 1 , wherein the second valve member and the second orifice have hard mating surfaces.
8. 2. The pressure regulating valve of claim 1, wherein a decrease in pressure within the regulator chamber causes the diaphragm to move toward the second orifice.
9. The pressure regulating valve of claim 1 , wherein the outer surface of the second valve member is non-linearly flared.
10. 10. The pressure regulating valve of claim 9, wherein linear movement of the second valve member relative to the second orifice causes a linear change in occlusion area of the second orifice such that the flow rate through the second orifice is linearly proportional to the distance traveled by the second valve member.
11. The pressure regulating valve according to claim 1; an ink tank connected to the valve inlet; an inkjet printhead having a printhead inlet port connected to said valve outlet; An inkjet printing system comprising:
12. 12. The inkjet printer of claim 11, wherein the ink tank is located at an elevation above the pressure regulating valve to supply ink to the valve inlet under positive gravity pressure.
13. The inkjet printer of claim 11, wherein the inkjet printhead draws a negative ink pressure at the valve outlet during printing.
14. 12. The inkjet printer of claim 11, wherein a pump or vacuum source connected to the inkjet printhead draws a negative pressure at the valve outlet during at least some non-printing periods.
15. 12. The inkjet printer of claim 11, wherein, during use, the pressure regulator valve maintains a negative ink pressure at the printhead within a predetermined pressure range.
16. The ink level in the ink tank is at a height h above the orifice. 1 Located in The orifice is spaced from the printhead at a height h 2 placed in The back pressure of the ink supplied to the print head is h 1 , h 2 12. The inkjet printer of claim 11, wherein the ink jet speed is controlled by the position of the second valve member relative to the second orifice and the pump speed of a pump connected to a printhead outlet port.
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