Calibrated variable displacement pump

The calibration system for electronically adjustable dispensing pumps addresses the issue of inconsistent flow rates by using a hinge, linear actuator, and proximity sensor to precisely adjust the angle between base portions, ensuring accurate and repeatable fluid dispensing.

JP7729977B2Active Publication Date: 2025-08-26FLUID METERING INC
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Patent Information

Application Number
JP2024510359
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-08-20
Filing Date
2022-08-20
Publication Date
2025-08-26
Estimated Expiration
2042-08-20

AI Technical Summary

Technical Problem

Existing electronically adjustable dispensing pumps face challenges in accurately calibrating the volume output per revolution due to dimensional variations and inherent tolerances, leading to inconsistent flow rates.

Method used

A calibration system for electronically adjustable dispensing pumps, incorporating a base with a hinge, a linear actuator, a proximity sensor, and an adjustable flag, which allows for precise adjustment of the angle between the upper and lower base portions to achieve consistent flow rates.

Benefits of technology

Enables accurate and repeatable control of the dispense volume by determining the home position of the linear actuator, ensuring reliable and dynamic fluid dispensing.

✦ Generated by Eureka AI based on patent content.

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Abstract

A dispensing pump having a calibration system is provided that includes a base having an upper base portion having a first end and a second end for mounting a motor, and a lower base portion for mounting a pump to the first and second ends. A hinge pivotally connects the second end of the upper base portion to the second end of the lower base portion. A linear actuator includes a drive rod mounted on the base and having a coupler secured to an end thereof. The coupler couples the drive rod to a first end of a coupling member. The second end of the coupling member is secured to the lower base portion. A mounting plate mounts the motor to the first end of the upper base portion. The mounting plate extends outwardly from the motor for mounting the linear actuator. A proximity sensor is secured to an upper location on the base. A flag is secured to the drive rod coupler, the flag moving directly with the drive rod. The flag includes a body and a calibration element protruding from the body. The calibration element is positionally adjustable relative to the body of the flag. The calibration element is configured to activate the proximity sensor when the linear drive is in a home position, which is adjustable upon adjustment of the calibration member. Actuation of the linear actuator drives the linkage member to pivot the lower and upper base portions relative to one another about the hinge, thereby changing the angle between the lower and upper base portions.
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Description

[Technical Field]

[0001] This application claims the benefit of priority to U.S. Provisional Patent Application No. 63 / 235404, filed August 20, 2021, the contents of which are incorporated herein by reference in their entirety for all purposes.

[0002] The present invention relates to variable displacement pumps used to precisely dispense small amounts of fluid. In particular, the present invention relates to a mechanism that allows for calibration of electronically adjustable dispensing pumps to control dispense volume. [Background technology]

[0003] Variable displacement pumps known in the art include valveless pumps having a base interposed between a drive motor and a pump head. These bases may be injection-molded plastic and may incorporate a living hinge separating an upper base portion from a lower base portion. The upper base portion can tilt relative to the lower base portion through flexure of the living hinge. The relative angle between the upper and lower base portions establishes the pump output volume per revolution. This mechanism is described in commonly owned U.S. Patent Nos. 6,279,995; 6,279,995; and 6,279,995, each of which is incorporated herein in its entirety.

[0004] Traditionally, the method of adjusting and setting the angle is accomplished by an adjustment screw that engages pivot pins on two portions of the base, located on opposite sides of the base's central axis. Certain applications require pumps with the same target output per revolution. This has been achieved by using fixed linkage means instead of adjustable screws and pivot pins. The fixed links are injection molded from plastic resin, and the tooling used to mold these links allows for the creation of links of different lengths so that different target pump capacities can be routinely produced. An eccentric bushing that offers the combined benefits of an adjustment screw and fixed link is disclosed in commonly owned U.S. Patent No. 5,629,999.

[0005] These conventional methods of varying the volume output per revolution by adjusting the angle between the upper and lower base portions all require manual adjustment, which generally makes the conventional pumps useful only for use with a single volume output per revolution.

[0006] There are applications where it is beneficial to be able to electronically adjust the output volume per revolution. This allows an electronic system to adjust these pumps without manual intervention. U.S. Patent No. 5,623,999 discloses a method for electronically adjusting the angle of the base. However, the device disclosed in this patent uses a rigid member to convert linear motion into rotational motion. This results in a change in angular motion relative to the linear motion, creating a complex relationship when defining the linear motion required to adjust the angle between the two parts of the base.

[0007] Pumps have been developed that allow the angle to be electronically and remotely adjusted to vary the dispense volume. Such pumps are described in U.S. Patent No. 6,277,623, the entire contents of which are incorporated herein by reference for all purposes. An adjustment device adjusts the angle between the motor shaft and the piston pump. The adjustment device includes a linear actuator having a shaft operatively connected to the pump head to vary the angle. However, such designs present challenges in calibrating the pump to allow for accurate dispense volumes. The home position of the linear actuator cannot be reliably determined due to dimensional variations in components and inherent tolerances in the pump assembly. As a result, the set angle may not match the desired angle, resulting in inaccurate flow rates. [Prior art documents] [Patent documents]

[0008] [Patent Document 1] U.S. Patent No. 5,020,980 [Patent Document 2] U.S. Patent No. 4,941,809 [Patent Document 3] US Patent Application Publication No. 2016 / 0245275 [Patent Document 4] U.S. Patent No. 7,708,535 [Patent Document 5] International Publication No. 2021 / 022034 Summary of the Invention [Problem to be solved by the invention]

[0009] It is therefore desirable to provide a means for calibrating the volume output per revolution of an electronically adjustable dispensing pump. [Means for solving the problem]

[0010] The present disclosure provides a dispensing pump with a calibration system including a base having an upper base portion with a first end and a second end for mounting a motor, and a lower base portion for mounting a pump to the first and second ends. A hinge pivotally connects the second end of the upper base portion to the second end of the lower base portion. A linear actuator is mounted on the base and includes a drive rod having a coupler secured to its end. The coupler connects the drive rod to a first end of a connecting member. The second end of the connecting member is secured to the lower base portion. A mounting plate attaches the motor to the first end of the upper base portion. The mounting plate extends outward from the motor for mounting the linear actuator. A proximity sensor is secured to an upper position on the base. A flag is secured to the drive rod coupler and moves directly with the drive rod. The flag includes a body and a calibration element protruding from the body. The calibration element is positionally adjustable relative to the flag body. The calibration element is configured to activate the proximity sensor when the linear drive is in a home position, which is adjustable upon adjustment of the calibration member. Actuation of the linear actuator drives the linkage member, causing the lower and upper base portions to pivot relative to one another about the hinge, thereby changing the angle between the lower and upper base portions.

[0011] The present disclosure also provides a motor and pump assembly including a base including an upper base portion having a first end and a second end. The lower base portion has the first end and the second end, and a hinge pivotally connects the upper and lower base portions. A motor having a mounting plate is mounted to the first end of the upper base portion. The motor has a shaft rotatable about an axis of rotation. A proximity sensor is fixed to the upper base portion. A pump is mounted to the first end of the lower base portion. The pump has a piston rotatable about the axis of rotation and linearly movable along the axis of rotation. The pump piston is coupled to the motor shaft. A linear actuator is mounted to the mounting plate and has a drive member. A flag is fixed to the output of the drive member. The flag includes a body and a calibration element protruding from the body. The calibration element is positionally adjustable relative to the body of the flag and configured to activate the proximity sensor when the linear drive is in a home position. The home position is adjustable by adjusting the calibration member. Actuation of the linear actuator causes the upper base portion to pivot relative to the lower base portion about the hinge, thereby changing the angle between the axis of rotation of the motor shaft and the axis of rotation of the pump piston.

[0012] The present disclosure also provides a method of calibrating a dispense pump having electronic regulation, comprising the steps of: providing a signal to a motor to operate an actuator for adjusting a flow rate of a dispensing pump, the motor being mounted on a base including a proximity sensor, the actuator having a home position, and the pump having a flow rate responsive to the home position; operating the motor until the sensor detects the presence of a flag, the flag including a calibration element positionally adjustable relative to a body of the flag, and adjusting the position of the calibration element adjusts a home position of the actuator; and adjusting the calibration element to change the home position, thereby calibrating the flow rate of the pump to a desired value.

[0013] The present disclosure further provides a dispensing pump having a calibration system with a base including an upper base portion having a first end for mounting a motor, an upper base portion having a second end, a lower base portion for mounting a pump to the first end, and a lower base portion having a second end. A hinge pivotally connects the second end of the upper base portion to the second end of the lower base portion. A linear actuator is attached to the base. The linear actuator includes a drive rod operably coupled to the lower base portion. A mounting plate mounts the motor to the first end of the upper base portion, and the mounting plate extends outward from the motor for mounting the linear actuator. A proximity sensor is fixed to an upper position on the base. A flag is operably coupled to the drive rod coupler, such that movement of the drive rod coupler causes movement of the flag. The flag includes a body and a calibration element protruding from the body. The calibration element is positionally adjustable relative to the flag body. The calibration element is configured to activate the proximity sensor when the linear drive is in a home position. The home position is adjustable when adjusting the calibration member. Actuation of the linear actuator drives the linkage member to pivot the lower and upper base portions relative to one another about the hinge, thereby changing the angle between the lower and upper base portions.

[0014] The present disclosure further provides a dispensing pump having a calibration system including a base including an upper base portion having a first end for mounting a motor and a second end for mounting a pump to the first end, and a lower base portion having a second end. A hinge pivotally connects the second end of the upper base portion to the second end of the lower base portion. A linear actuator is attached to the base. The linear actuator includes a drive rod operably coupled to the lower base portion. A mounting plate mounts the motor to the first end of the upper base portion, and the mounting plate extends outward from the motor for mounting the linear actuator. A proximity sensor is fixed to an upper position on the base. A flag is coupled to the lower base portion. The flag includes a body and a calibration element protruding from the body. The calibration element is positionally adjustable relative to the body of the flag. The calibration element is configured to activate the proximity sensor when the linear drive is in a home position, and the home position is adjustable by adjusting the calibration member. Actuation of the linear actuator drives the linkage member to pivot the lower and upper base portions relative to one another about the hinge, thereby changing the angle between the lower and upper base portions. [Brief explanation of the drawings]

[0015] [Figure 1] FIG. 1 is a perspective view of a calibratable variable displacement pump. [Figure 2] FIG. 2 is a cross-sectional view of the pump head. [Figure 3] FIG. 2 is a side view of the pump of FIG. 1. [Figure 4] FIG. 2 is a front view of the pump of FIG. 1. [Figure 5] 5 is a cross-sectional view of the pump taken along line 5-5 of FIG. 3. [Figure 6] FIG. 1 is a detailed diagram of a pump calibration system. [Figure 7] FIG. 1 is a detailed bottom perspective view of the pump calibration system. [Figure 8] FIG. 1 is a plan view of a flag element of the calibration system. [Figure 9] FIG. 10 is a perspective view of another embodiment of a flag. [Figure 10] FIG. 10 is a perspective view of an alternative embodiment of an adjustable flag. [Figure 11] FIG. 10 is a perspective view of a further alternative embodiment of the flag system. [Figure 12] FIG. 12 is a side view of the flag system of FIG. 11. DETAILED DESCRIPTION OF THE INVENTION

[0016] Features of the present disclosure will become apparent from the following detailed description considered in conjunction with the accompanying drawings, in which: It is to be understood, however, that the drawings are designed by way of illustration only and not as a definition of the limits of the present disclosure.

[0017] FIG. 1 illustrates an adjustable variable displacement pump and motor assembly 5 of the present disclosure. Assembly 5 includes a motor 10 coupled to a pump head 12 via a base 14. The motor and pump may be of the type described in U.S. Patent No. 6,629,999, the contents of which are incorporated herein by reference. Motor 10 has a shaft that rotates about an axis of rotation. Pump 10 has a piston that rotates about the axis of rotation and translates in the direction of the axis of rotation. The motor shaft is coupled to the pump piston such that rotation of the motor shaft causes rotation of the pump piston. By tilting the axis of rotation of the pump piston relative to the axis of rotation of the motor shaft, rotation of the motor shaft also causes linear movement of the pump piston in a manner described in more detail below. Pumps and motor support apparatus of this type are shown and described in commonly owned U.S. Patent Nos. 6,629,999 and 6,629,999, the specifications of which are incorporated herein by reference in their entireties for all purposes.

[0018] 1 and 2, the pump and motor configuration operates as follows. The pump 12 generally includes a pump housing 101 and a piston 118. The pump housing 101 includes a plastic pump casing 102 having an inlet port 104 and an outlet port 106. The pump casing 102 defines a cylindrical chamber 108 having an open end 110. A ceramic piston liner 112 is housed within the cylindrical chamber 108, the ceramic piston liner having a central longitudinal bore 114 and a lateral bore 116 communicating with the longitudinal bore 114. The lateral bore 116 includes a liner inlet port 116a in fluid communication with the inlet port 104 of the pump casing 102 and a liner outlet port 116b in fluid communication with the pump casing outlet port 106, allowing liquid to be pumped from the inlet port 116a through the liner to the outlet port 116b, as described below.

[0019] A pump piston 118 is axially and rotatably slidable within a central bore 114 of the piston liner 112. One end of the piston 118 extends from the open end 110 of the pump casing 102 and includes a coupling 120 for engaging the shaft of the motor 10. The opposite end of the piston 118 is formed with a relief or "cutout" 122 that is positioned adjacent the transverse bore 116 of the pump liner. As described below, the relief 122 is designed to direct fluid flow into and out of the pump 12.

[0020] A seal assembly 124 is provided at the open end 110 of the pump casing 102 to seal the piston 118 and the pump chamber 108. The seal assembly 124 is retained in the open end 110 of the pump casing 102 by a gland nut 126 having a central opening 128 that receives the piston 118. The gland nut 126 is attached to the pump casing 102 by a threaded connection 130.

[0021] During operation, the motor 10 drives the piston 118 to translate axially and rotate within the central bore 114 of the piston liner 112. To draw liquid from the inlet port 104 into the lateral bore 116, the piston 118 is rotated as needed to align the relief 122 with the liner inlet port 116a. The piston 118 is then retracted as needed to draw a desired volume of liquid into the central bore 114 of the pump liner 112. As the piston 118 is withdrawn, a negative pressure is created within the liner inlet port 116a of the lateral bore 116, drawing liquid from the casing inlet port 104. The piston 118 is then rotated to align the relief 122 with the liner outlet port 116b. Finally, the piston 118 is driven forward the required distance to force liquid into the outlet port 116b of the lateral bore 116 and create the desired discharge flow.

[0022] Each rotation of the motor shaft therefore rotates the pump piston. Due to the angular orientation between the pump head 12 and the motor 10, each rotation of the motor shaft also causes the pump piston to reciprocate axially, alternately drawing in and pushing fluid between the pump's inlet and outlet. The amplitude of the piston stroke determines the volume of fluid delivered between the pump's inlet and outlet. By varying the angle of the pump head 12 relative to the motor 10, the stroke of the piston 118 is adjusted, thereby adjusting the volume of fluid transferred between the inlet and outlet.

[0023] In such a pump and motor configuration, the angle of the pump 12 relative to the motor 10 is adjustable via the base 14 to provide a desired volumetric flow of the pump per rotation of the motor shaft. It is therefore desirable to provide a base 14 adapted to adjust the angle between the axis of the pump and the motor shaft.

[0024] 2-5, an adjustable pump and motor assembly 5 having an angle adjustment actuator 60 is shown. The adjustable pump and motor assembly 5 includes a motor 10, such as a stepper motor, coupled to a fixed displacement pump 12 (as described above with reference to FIG. 2) via a base 26 having pivotally coupled upper and lower base portions 46, 48. The motor 10 has a shaft (not shown) coupled to a spindle coupling 120, which rotates the spindle coupling 120 about an axis of rotation. A pump piston 118 also rotates about the axis of rotation and translates in the direction of the axis of rotation. One end of the piston 118 is coupled to the spindle coupling 120.

[0025] By tilting the axis of rotation of the pump piston 12 relative to the axis of rotation of the motor shaft 28, rotation of the motor shaft also causes linear movement of the pump piston 30, increasing or decreasing the volume of the chamber 35 at the distal end of the piston 30.

[0026] The angle between the axis of the pump piston 118 and the motor shaft is determined by the base 26 having an upper base portion 46 and a lower base portion 48 pivotally connected to one another via a hinge 50. The upper base portion 46 has a flange 52 that attaches to the motor 10, and the lower base portion 48 has a flange 54 that holds the pump head 24, which houses the piston 30 and cylinder 38. The hinge 50 allows the upper base portion 46 to tilt relative to the lower base portion 48 in the direction indicated by arrow 47 in FIG. 3. The portions 46 and 48 are formed separately and are rotatably connected by the pinned hinge 50. Alternatively, it is contemplated that the base 26, including the upper and lower base portions 46 and 48, may be injection molded with a living hinge.

[0027] Angular adjustment between the motor shaft and pump piston 118 is achieved by an electronic adjustment mechanism 59, as shown in Figures 1, 3-5. The electronic adjustment mechanism 59 includes a linear actuator 60 mounted to one of the flanges of the base 26. The linear actuator 60 is mounted to the motor flange 52 of the upper base portion 46. However, it is also contemplated that the actuator 60 could be mounted to the opposite pump flange 54, in which case the arrangement of the remaining associated components described herein would be reversed.

[0028] Linear actuator 60 is preferably an electronic device capable of translating a linear actuator drive rod 62 in precise increments along a linear axis 64 that extends parallel to the axis of rotation of the motor shaft. One type of linear actuator for use in the present invention is known in the art as a captive nut linear actuator, which includes a stepper motor for precisely controlling the position of drive rod 62.

[0029] The motor flange 52 on the upper base portion 46 is preferably attached to the motor 10 by a mounting plate 66. The mounting plate 66 extends outwardly from the motor 10 and is sized and shaped to allow the linear actuator 60 of the electronic tilt mechanism 59 to be attached to an upper surface 68 of the mounting plate 66. Attachment of the linear actuator 60 and motor 10 to the upper surface 68 of the mounting plate 66, and attachment of the motor flange 52 to the lower surface 70 of the mounting plate 66, can be accomplished using conventional fasteners, such as bolts threadedly connected to the respective components. The mounting plate 66 extends outwardly from the motor 10 and is preferably formed from a single sheet of metal and shaped to accommodate the electronic tilt mechanism 59.

[0030] 5, a drive rod coupler 72 is attached to the distal end of the linear actuator drive rod 62 of the linear actuator 60. The drive rod coupler 72 extends axially outward from the linear actuator 60 along the longitudinal axis 64. The drive rod coupler 72 also extends axially through an opening defined between the upper and lower surfaces of the mounting plate 66. A coupling member 74 is attached to the distal end of the drive rod coupler 72, opposite the drive rod 62.

[0031] The linking member 74 is formed from a flexible material. The flexible linking member 74 is preferably made from a material that is strong enough to transmit the linear force applied by the drive rod 62 along its longitudinal axis 64, yet flexible enough to allow some bending, as described further below. A suitable material for the flexible member is, for example, spring steel.

[0032] The flexible connecting member 74 has a first end attached to the distal end of the drive rod coupler 72 and a second end coupled to the lower flange 54 of the base 26 opposite the first end. Thus, linear movement of the linear actuator drive rod 62 causes linear movement of the flexible member 74 in the same direction. Because the linear actuator 60 is coupled to the upper base portion 46 and the flexible member 74 is coupled to the lower base portion 48, the linear movement of the flexible member 74 causes the lower base portion 48 to pivot relative to the upper base portion 26 about the hinge 50.

[0033] The flexible member 74 initially extends from the drive rod coupler 72 in a direction along the linear axis 64 of the linear actuator drive rod 62. However, the flexible member 74 is allowed to begin to bend at a point along the longitudinal axis 64 beyond the drive rod coupler 72. Such bending of the flexible member 74 is desired to compensate for the arc-shaped path of travel of the end of the lower flange 54 opposite the base hinge 50.

[0034] Flexion of flexible member 74 may be facilitated by a cam block assembly 76 and a roller bearing assembly 78. Cam block assembly 76 includes a bracket 80 attached to the lower flange 54 of base 26 opposite base hinge 50. Any means of attachment may be used. For example, conventional screw fasteners that engage threaded holes formed in lower flange 54 would suffice.

[0035] 6, cam block assembly 76 further includes cam block 82 supported by bracket 80. Cam block 82 has a curved support surface 84 facing flexible member 74. Curved support surface 84 of cam block 82 has a radius of curvature about the pivot point of base hinge 50, defined by the distance from the pivot point to the intersection of flexible member 74 and lower flange 54 of base 26. With flexible member 74 abutting curved support surface 84 of cam block 82, flexible member 74 traverses a curved path that coincides with the path of the distal end of lower flange 54 about base hinge 50.

[0036] The roller bearing assembly 78 includes a bracket 86 attached to the mounting plate 66. The bracket 86 rotatably supports a roller bearing 88 located opposite the cam surface 84 of the cam block 82. In this regard, the roller bearing 88 may be rotatably mounted on a pin fixed to the bracket 86 of the roller bearing assembly. Here, the roller bearing 88 is used to help constrain the flexible member 74 against the curved support surface 84. One or more springs (not shown) may also be included in the roller bearing assembly 78 to provide an ongoing bias to the roller bearing 88 to urge the flexible member 74 against the cam block 82. Without the roller bearing 88, the flexible member 74 would only be constrained by the drive rod 62 and would therefore be prone to flexing outward.

[0037] 3, as can be understood from the above description, at least some embodiments of the present invention include a controller 21 coupled to the motor 10 and the linear actuator 60 via respective electrical lines 90, 92, and 94. One such example of a controller is a computing device that enables dynamic control of the linear actuator 60 and causes the electronic adjustment mechanism 59 to be precisely and repeatedly modified. In this manner, the volume of fluid dispensed is highly accurate, repeatable, and dynamic. Those skilled in the art will appreciate that the present invention can be implemented by one or more computing devices and in a variety of system configurations, including networked configurations.

[0038] As described above, moving the drive rod 62 by changing the angle between the pump shaft and the motor adjusts the travel distance of the piston 118, determining the maximum volume and flow rate of the chamber 35. Therefore, the angle between the motor and the pump directly corresponds to the position of the drive rod 62. When the system including the motor, pump, and electronic adjustment mechanism 59 is assembled, the actual set angle produced by the linear drive may not match the desired angle due to tolerances and inherent variations in the system. Consequently, the flow rate will be inaccurate. Therefore, calibration of the pump assembly and linear actuator 60 is desirable. To calibrate the pump assembly 50, it is desirable to determine the starting or home position of the linear actuator. Then, adjustments to the position of the drive rod 62 can be made relative to this known position. Knowing this position allows for reliable and repeatable adjustments to the flow rate. To enable calibration of the linear actuator, the present disclosure provides a calibration system 500.

[0039] 6-8, calibration system 500 includes a sensor 502 and an adjustable flag 504. Adjustable flag 504 cooperates with sensor 502 to provide a signal when linear actuator drive rod 62 is in a predetermined position. Sensor 502 may be a proximity sensor that generates a signal when an object approaches. Flag 504 may include a rigid flag body secured to drive rod coupler 72. Because drive rod coupler 72 is secured directly to linear actuator drive rod 62, securing flag 504 to the coupler ensures that the flag indicates the precise position of drive rod 62.

[0040] The flag 504 has a mounting portion 508 at one end for securing the flag to the coupler. The mounting portion 508 includes a through-hole 510 that allows a fastener (not shown) to extend therethrough and engage a threaded opening (not shown) in the coupler 72. An elongated flag arm 516 extends from the mounting portion 508 and terminates in a flag head 518. The head 518 may have a block shape, although other shapes are contemplated. A calibration element 520 is movably coupled to the head 518 and cooperates with the sensor 502 to generate a signal. The position of the calibration element 520 is adjustable relative to the head 518, thereby adjusting the effective length of the flag 504. The calibration element 520 may be a threaded rod or screw that threadably engages with a through-hole 522 in the head. The opening 522 provides access to the calibration element 520. The position of the calibration element 520 remains fixed relative to the head unless adjusted by the user. Rotating the calibration element 520 changes the amount that the element 520 extends from the head 518. Thus, the drive rod position considered to be the home position is adjustable. While a threaded rod and a threaded opening in the head are shown and described, it is contemplated that adjusting the position of the calibration element relative to the head may be accomplished in different ways. For example, the calibration element may include a sliding element that causes the rod to slide relative to the head, or may be a gear arrangement that adjusts the position of the shaft. Additionally, an adjustable eccentric bushing may be used to change the position of the calibration element.

[0041] When the linear actuator 60 is actuated, the flag 504 moves with the drive rod 62 by virtue of its attachment to the drive rod coupler 72. As the linear actuator 60 moves the coupler, and the flag 504 secured thereto, toward a retracted position, the calibration element 520 is ultimately brought into the sensing path 524 of the sensor 502, which generates a signal sent to the controller 21 indicating that the linear actuator 60 has reached a predetermined home position. The calibration element 520 allows this home position to be adjusted to the desired actual position of the drive rod so that an accurate flow rate can be achieved. For example, by extending the calibration element 520 outward, the sensor 502 is activated earlier in the drive rod retraction stroke. Conversely, by retracting the adjustment element 502 so that it protrudes less from the head 518, the sensor 502 is activated later in the drive rod retraction stroke. In this manner, the flow sensing home position can be adjusted to control the motor / pump angle to provide a desired output flow rate.

[0042] During operation, the pump flow rate can be calibrated by the calibration system 500. The amount of fluid dispensed by the pump assembly 5 depends on the angle between the pump head 12 and the motor 10. To control the angle, a signal is provided from the controller 21 to the linear actuator 60. In response to this signal, the linear actuator 60 advances the drive rod 62 a predetermined amount from a home position sensed by the sensor 502 and the calibration member 520 to a set position. The set position corresponds to a predetermined angle between the pump head 12 and the motor 10, providing a desired amount of fluid dispensed per stroke.

[0043] The actual volume of fluid dispensed is then measured to determine whether it corresponds to the desired volume. If the dispensed volume is incorrect, a calibration can be performed. To do this, the calibration element 520 can be adjusted to protrude more or less from the flag head 518. For example, if the output is too low, the calibration element can be extended from the flag head. This results in a home position that generates a larger initial angle, i.e., the angle when the drive rod 62 is in the home position. As a signal is given to the linear actuator 60 to adjust the angle, the set angle becomes larger, resulting in a larger dispensed volume and flow rate. The calibration element can be further adjusted until the desired dispensed volume and flow rate are achieved.

[0044] Calibration system 500 provides a simple method of calibrating the pump assembly without having to change or reprogram software or make other adjustments. When pump system 5 is utilized, it can be periodically checked and recalibrated as needed.

[0045] Referring to FIG. 9 , an alternative embodiment of a calibration system flag is shown. Flag 600 may include a body 602 having a slot 604 formed therethrough. An elongated calibration element 606 extends through the slot and terminates in an end 608. The flag's head cooperates with sensor 502 in a manner similar to flag 504 described above. Calibration element 606 is positionally adjustable along the axis of the slot. The opposite end of the calibration element includes a protruding tab 610 having a threaded adjustment member 612 extending therethrough. Adjustment member 612 is parallel to the length of slot 604. Adjustment member 612 includes a head 613 rotatably secured to tab 610. A fastener threads into a threaded opening 614 in the body, and threading the threaded adjustment member into and out of the body moves the position of the calibration element, and therefore end 608. A spring 616 is positioned over the fastener 612 and captured between the body 602 and the tab 610. The spring biases the calibration element 606 away from the body to assist in adjustment. A locking device 618, such as a set screw, extends through the body and can engage the calibration element 606 to lock it in place relative to the body 602 once the desired calibration element end position is achieved. An arm 618 extends from the body and includes an opening 617 that receives a fastener (not shown) to secure the flag 600 to the drive rod coupler 72. A user can calibrate the system by turning the adjustment member 612 and adjusting the position of the calibration element relative to the sensor 502.

[0046] Referring to FIG. 10 , in an alternative embodiment, a flag 620 is similar to the flag 600 described above, except that the flag 620 is directly coupled to the flange 54 of the lower base portion. A body 622 can have a mounting surface 623 that engages and secures to a side of the flange 54. The body 622 has a slot 624 extending therethrough, and an elongated calibration element 626 extends through the slot and terminates in an end 628. The flag's end 628 cooperates with the sensor 502 in a manner similar to flags 504 and 600 described above. The calibration element 626 is positionally adjustable along the axis of the slot. The opposite end of the calibration element includes a protruding tab 630 having a threaded adjustment member 632 extending therethrough. Rotation of the adjustment member 632 moves the calibration element 626 relative to the body 622 and the flange 54 to which it is attached. Thus, a user can calibrate the system by rotating the adjustment member 632 and adjusting the position of the calibration element relative to the sensor 502 .

[0047] 11 and 12, an alternative calibration system flag is shown. In this embodiment, a calibration element 650 is secured to the flange 54 of the lower base portion. Once the position of the flange 54 is set by the drive rod, the calibration element 650 can be positionally adjusted relative to the sensor 502 to calibrate the system. The flange 54 includes a sidewall 652 with a curved slot 654. The calibration element 650 has a curved body 656 with a curvature similar to that of the curved slot 654 so that the calibration element 650 can move within the slot 654. The body 656 includes an opening 658 extending along a portion of the length of the calibration element. One or more pins 660 pass through the opening 658 into the flange 54 to movably secure the calibration element within the slot. The end 656 of the calibration element extends beyond the flange 54 and cooperates with the sensor 502 to calibrate the system.

[0048] One side of the calibration element may include a series of teeth 662 that cooperate with a gear 664 rotatably fixed to the flange 54. Rotation of the gear 664 causes the calibration element 650 to move in a curved path 665 that follows the curvature of the curved slot 654. The curved slot has a radius that corresponds to the distance between the curved slot and the hinge 50. In this way, when the position of the calibration element 650 is adjusted relative to the flange 54 for calibration, the adjustment of the calibration element maintains its lateral position XX relative to the sensor.

[0049] Embodiments of the present invention encompass one or more computer-readable media, each of which can be configured to include data or computer-executable instructions for manipulating data. Computer-executable instructions include data structures, objects, programs, routines, or other program modules that can be accessed by a processing system, such as those associated with a general-purpose computer capable of performing a variety of different functions, or those associated with a special-purpose computer capable of performing a limited number of functions. Computer-executable instructions cause a processing system to perform a particular function or group of functions and are examples of program code means for performing steps of methods disclosed herein. Furthermore, a particular sequence of executable instructions provides examples of corresponding acts that may be used to implement such steps. Examples of computer-readable media include random access memory ("RAM"), read-only memory ("ROM"), programmable read-only memory ("PROM"), erasable programmable read-only memory ("EPROM"), electrically erasable programmable read-only memory ("EEPROM"), compact disc read-only memory ("CD-ROM"), or any other device or component capable of providing data or executable instructions that can be accessed by a processing system.

[0050] For example, the computing device may be a personal computer, a notebook computer, a personal digital assistant ("PDA") or other handheld device, a workstation, a minicomputer, a mainframe, a supercomputer, a multiprocessor system, a network computer, a controller, a processor-based consumer electronic device, etc.

[0051] While various embodiments of the present invention have been specifically illustrated and / or described herein, it will be understood that modifications and variations of the present invention can be practiced by those skilled in the art without departing from the spirit and intended scope of the invention.

Claims

1. 1. A dispensing pump having a calibration system, comprising: a base including an upper base portion having a first end and a second end for mounting a motor, a lower base portion for mounting a pump to the first end and the second end, and a hinge portion pivotally connecting the second end of the upper base portion and the second end of the lower base portion; a linear actuator mounted to the base, the linear actuator including a drive rod having a drive rod coupler secured to an end thereof, the drive rod coupler coupling the drive rod to a first end of a linkage member, the second end of the linkage member being secured to the lower base portion; a mounting plate attaching the motor to the first end of the upper base portion, the mounting plate extending outwardly from the motor for mounting the linear actuator; a proximity sensor fixed to a position above the base; a flag secured to the drive rod coupler, the flag moving directly with the drive rod, the flag including a body and a calibration element protruding from the body, the calibration element being positionally adjustable relative to the flag body, the calibration element configured to activate the proximity sensor when the linear actuator is in a home position, the home position being adjustable upon adjustment of the calibration element; The actuation of the linear actuator drives the connecting member, causing the lower base portion and the upper base portion to pivot relative to each other about the hinge portion, thereby changing the angle between the lower base portion and the upper base portion.

2. 2. The dispensing pump of claim 1, wherein the coupling member comprises a flexible member having a proximal end attached to the linear actuator and a distal end coupled to a collar attached to the lower base portion.

3. 3. The dispensing pump of claim 2, further comprising a cam block attached to said collar, said cam block having a curved bearing surface for guiding said flexible member along said curved bearing surface.

4. 4. The dispensing pump of claim 3, further comprising a roller bearing adjacent said cam block, said roller bearing urging said flexible member against a curved support surface of said cam block.

5. 3. The dispensing pump of claim 2, wherein the flexible member comprises a spring steel material or the flexible member is bendable to translate linear motion of the linear actuator into pivotal motion of the upper and lower base portions relative to one another.

6. 3. The dispensing pump of claim 2, wherein the calibration element is in threaded engagement with the body of the flag, and rotation of the calibration element adjusts the position of the calibration element relative to the body of the flag.

7. 3. The dispensing pump of claim 2, wherein said upper base portion includes a flange, said flange attaching said upper base portion to said mounting plate.

8. The dispensing pump of claim 1 , wherein the flag includes a head having a threaded opening for receiving the calibration element.

9. The dispensing pump of claim 8 , wherein the calibration element is a threaded rod.

10. The dispensing pump of claim 8 , wherein the flag includes a mounting portion fixed to the drive rod coupler.

11. The dispensing pump of claim 10 , wherein the flag includes an elongated arm extending from the mounting portion to the head.

12. 1. A motor and pump assembly comprising: a base having an upper base portion having a first end and a second end, a lower base portion having a first end and a second end, and a hinge portion pivotally connecting the upper base portion and the lower base portion; a motor having a mounting plate attached to the first end of the upper base portion, the motor shaft rotatable about an axis of rotation; a proximity sensor fixed to the upper base portion; a pump mounted to the first end of the lower base portion, the pump being rotatable about an axis of rotation and having a piston linearly movable along the axis of rotation, the pump piston coupled to the motor shaft; and a linear actuator attached to the mounting plate and having a drive member; a flag fixed to the output of the drive member, the flag including a body and a calibration element protruding from the body, the calibration element being positionally adjustable relative to the flag body, the calibration element being configured to activate the proximity sensor when the linear actuator is in a home position, the home position being adjustable upon adjustment of the calibration element; A motor and pump assembly wherein actuation of the linear actuator causes the upper base portion to pivot relative to the lower base portion about the hinge portion, thereby changing the angle between the axis of rotation of the motor shaft and the axis of rotation of a piston of the pump.

13. 13. The motor and pump assembly of claim 12, comprising a flexible member having a proximal end attached to the linear actuator and a distal end opposite the proximal end connected to a collar attached to the lower base portion, the linear actuator driving the flexible member in a curved path.

14. 14. The motor and pump assembly of claim 13, further comprising a cam block attached to said collar, said cam block having a curved bearing surface for guiding said flexible member along said curved path.

15. 15. The motor and pump assembly of claim 14, further comprising a roller bearing adjacent said cam block, said roller bearing urging said flexible member against a curved support surface of said cam block.

16. 14. The motor and pump assembly of claim 13, wherein the linear actuator comprises a drive rod movable along a linear axis and a drive rod coupler attached to a distal end of the drive rod, the flexible member attached to the drive rod coupler, and the drive rod extending parallel to an axis of rotation of the motor shaft.

17. 13. The motor and pump assembly of claim 12, wherein the flag includes a head having a threaded opening for receiving the calibration element.

18. 18. The motor and pump assembly of claim 17, wherein the calibration element is a threaded rod.

19. 17. The motor and pump assembly of claim 16, wherein the flag includes a mounting portion fixed to the drive rod coupler.

20. 20. The motor and pump assembly of claim 19, wherein the flag includes a head having a threaded opening for receiving the calibration element, and an elongated arm extending from the mounting portion to the head.

21. 1. A method of calibrating a dispense pump having electronic regulation, comprising: providing a signal to a motor to operate an actuator to adjust a flow rate of a dispense pump, the motor being mounted to a base including a proximity sensor, the actuator having a home position, and the dispense pump having a flow rate responsive to the home position; operating the motor until the proximity sensor detects the presence of a flag, the flag including a calibration element positionally adjustable relative to a body of the flag, adjusting the position of the calibration element to adjust a home position of the actuator; adjusting the calibration element to change the home position, thereby calibrating the flow rate of the dispense pump to a desired value; A method comprising:

22. 1. A dispensing pump having a calibration system, comprising: a base including an upper base portion having a first end and a second end for mounting a motor; a lower base portion having a second end for mounting a pump to the first end; and a hinge pivotally connecting the second end of the upper base portion to the second end of the lower base portion; a linear actuator mounted to the base, the linear actuator including a drive rod having a drive rod coupler attached to an end thereof, the drive rod coupler coupling the drive rod to a first end of a linkage member, the second end of the linkage member being attached to the lower base portion; a mounting plate attaching the motor to the first end of the upper base portion, the mounting plate extending outwardly from the motor for mounting the linear actuator; a proximity sensor fixed to a position above the base; a flag operably coupled to the drive rod coupler, wherein movement of the drive rod coupler causes movement of the flag, the flag including a body and a calibration element protruding from the body, the calibration element being positionally adjustable with respect to the flag body, the calibration element configured to activate the proximity sensor when the linear actuator is in a home position, the home position being adjustable upon adjustment of the calibration element; The dispensing pump, wherein actuation of the linear actuator causes the lower base portion and the upper base portion to pivot relative to each other about the hinge, thereby changing the angle between the lower base portion and the upper base portion.

23. 23. The dispensing pump of claim 22, wherein the flag is attached directly to the drive rod coupler.

24. 1. A dispensing pump having a calibration system, comprising: a base including an upper base portion having a first end and a second end for mounting a motor; a lower base portion having a second end for mounting a pump to the first end; and a hinge pivotally connecting the second end of the upper base portion to the second end of the lower base portion; a linear actuator mounted to the base, the linear actuator including a drive rod operably coupled to the lower base portion; a mounting plate attaching the motor to the first end of the upper base portion, the mounting plate extending outwardly from the motor for mounting the linear actuator; a proximity sensor fixed to a position above the base; a flag coupled to the lower base portion, the flag including a body and a calibration element protruding from the body, the calibration element being positionally adjustable relative to the flag body, the calibration element being configured to activate the proximity sensor when the linear actuator is in a home position, the home position being adjustable upon adjustment of the calibration element; The dispensing pump, wherein actuation of the linear actuator causes the lower base portion and the upper base portion to pivot relative to each other about the hinge, thereby changing the angle between the lower base portion and the upper base portion.

25. 25. The dispensing pump of claim 24, wherein the flag calibration element includes a curved body that is positionally adjustable relative to the lower base portion.

26. 26. The dispensing pump of claim 25, wherein the curved body has a toothed sidewall, and a toothed gear is rotatably fixed to the lower base portion in operative engagement with the toothed sidewall, such that rotation of the gear moves the calibration element relative to the lower base portion.

Citation Information

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