EP0466772A1 - Methods and apparatus for dispensing plural fluids in a precise proportion - Google Patents
Methods and apparatus for dispensing plural fluids in a precise proportionInfo
- Publication number
- EP0466772A1 EP0466772A1 EP90905925A EP90905925A EP0466772A1 EP 0466772 A1 EP0466772 A1 EP 0466772A1 EP 90905925 A EP90905925 A EP 90905925A EP 90905925 A EP90905925 A EP 90905925A EP 0466772 A1 EP0466772 A1 EP 0466772A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- drive
- proportioning
- fluid
- piston
- cylinder
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05D—SYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
- G05D11/00—Control of flow ratio
- G05D11/02—Controlling ratio of two or more flows of fluid or fluent material
- G05D11/13—Controlling ratio of two or more flows of fluid or fluent material characterised by the use of electric means
- G05D11/131—Controlling ratio of two or more flows of fluid or fluent material characterised by the use of electric means by measuring the values related to the quantity of the individual components
- G05D11/132—Controlling ratio of two or more flows of fluid or fluent material characterised by the use of electric means by measuring the values related to the quantity of the individual components by controlling the flow of the individual components
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01F—MIXING, e.g. DISSOLVING, EMULSIFYING OR DISPERSING
- B01F35/00—Accessories for mixers; Auxiliary operations or auxiliary devices; Parts or details of general application
- B01F35/80—Forming a predetermined ratio of the substances to be mixed
- B01F35/88—Forming a predetermined ratio of the substances to be mixed by feeding the materials batchwise
- B01F35/882—Forming a predetermined ratio of the substances to be mixed by feeding the materials batchwise using measuring chambers, e.g. volumetric pumps, for feeding the substances
- B01F35/8822—Forming a predetermined ratio of the substances to be mixed by feeding the materials batchwise using measuring chambers, e.g. volumetric pumps, for feeding the substances using measuring chambers of the piston or plunger type
- B01F35/88222—Forming a predetermined ratio of the substances to be mixed by feeding the materials batchwise using measuring chambers, e.g. volumetric pumps, for feeding the substances using measuring chambers of the piston or plunger type without external means for driving the piston, e.g. the piston being driven by one of the components
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B67—OPENING, CLOSING OR CLEANING BOTTLES, JARS OR SIMILAR CONTAINERS; LIQUID HANDLING
- B67D—DISPENSING, DELIVERING OR TRANSFERRING LIQUIDS, NOT OTHERWISE PROVIDED FOR
- B67D1/00—Apparatus or devices for dispensing beverages on draught
- B67D1/08—Details
- B67D1/10—Pump mechanism
- B67D1/101—Pump mechanism of the piston-cylinder type
- B67D1/105—Pump mechanism of the piston-cylinder type for two or more components
- B67D1/106—Pump mechanism of the piston-cylinder type for two or more components the piston being driven by a liquid or a gas
- B67D1/107—Pump mechanism of the piston-cylinder type for two or more components the piston being driven by a liquid or a gas by one of the components to be dispensed
Definitions
- This invention relates to devices for dispensing a plurality of fluids in a precise ratio to each other. More particularly, the invention disclosed herein relates to an improved fluid-driven liquid proportioning pump that effects the positive displacement of the fluids involved.
- an immediate application of the present invention resides in meeting the demand in the carbonated beverage industry for an improved manner by which the constituent fluids of such beverages may be dispensed and mixed into a consumer product having narrow specifications that are dictated by desired product taste.
- aromatic flavoring agents in liquid form such as syrups and concentrates
- carbonated water is pressurized and mixed with the syrups to form a finished beverage that may be dispensed either into reusable or disposable containers.
- the proportioning ratio of a given device was either fixed, or if not fixed, was extremely 0 difficult to alter, requiring in most instances disassembly and reassembly in a trial-by-error method.
- the effort to integrate such proportioning mechanisms resulted in some devices having the proportioning aspects built into the heads of the pistons that are used to advance the 5 constituent fluids. In this location, any alteration of the proportioning ratio was at best difficult to achieve without suffering the expense of substantial down time.
- One object of the present invention is to provide methods and apparatus for simultaneously dispensing precisely measured quantities of three or more different constituent fluids.
- Another object of the present invention is to provide a fluid proportioning apparatus which effects the positive displacement of the constituent fluids involved, but which does so with a consistent precision of operation acceptable in the industry in which it is applied.
- Yet another object of the present invention is a fluid proportioning apparatus and method as described above which is driven exclusively by the pressure exerted by one of the constituent fluids being processed.
- An additional object of the invention is a method and apparatus for proportioning fluids as described above which utilizes reciprocating motion and which is capable of continuously dispensing the constituent fluids involved.
- Another object of the invention is an apparatus for proportioning fluids in which the dynamic seals thereof avoid exposure to the atmosphere, and therefore enjoy effective lifetimes of enhanced duration.
- Another object of the present invention is a fluid proportioning pump as described above in which the proportioning aspect thereof is adjustable, and further is adjustable without requiring major disassembly of the device.
- Yet another object of the present invention is a fluid proportioning pump for three or more fluids which is mechanically streamlined in relation to prior proportioning pumps so as to be compact, easily assemblable, and minimally demanding of maintenance. Additional objects and advantages of the invention will be set forth in the description which follows, and in part will be obvious from the description, or may be learned by the practice of the invention. The objects and advantages of the invention may be realized and obtained by means of the instruments and combinations particularly pointed out in the appended claims.
- a fluid-driven proportioning pump for dispensing in a precise, predetermined ratio quantities of an externally pressurized drive fluid and a first and a second constituent fluid.
- a proportioning pump comprises a drive cylinder having closed ends and a drive piston disposed therein.
- the drive piston is propelled by the drive fluid in a reciprocatingmotion comprising successive strokes in opposite directions.
- the drive piston in effect separates the drive cylinder into a first and a second drive fluid chamber.
- the inventive proportioning pump further comprises a drive reversal means for admitting the pressurized drive fluid alternately into the first and the second drive fluid chambers to cause the reciprocating motion in the drive piston.
- a drive reversal means for admitting the pressurized drive fluid alternately into the first and the second drive fluid chambers to cause the reciprocating motion in the drive piston.
- the drive reversal means comprises a pressurized drive fluid passageway and a drive fluid exit passageway formed in each of a pair of plate assemblies closing the opposite ends of the drive cylinder.
- First and second valve means are provided for placing the first and second drive fluid chambers, respectively, in communication alternately with the pressurized drive fluid passageway and the drive fluid exit passageway in the adjacent plate assembly.
- a linkage means for operating the first and second valve means together insures that when one of the drive fluid chambers is in communication with a drive fluid passageway, the other is in communication with a drive fluid exit passageway. In this manner, the pressure of the drive fluid in one of the drive fluid chambers advances the drive piston in the direction of the other drive fluid chamber, positively displacing drive fluid from the preceding opposite stroke of the reciprocating motion of the drive piston.
- An over-center means in turn drives the linkage means between a first operative mode, in which the first drive fluid chamber is in communication with a pressurized drive fluid passageway, and a second operative mode, in which the second drive fluid chamber is in communication with a pressurized drive fluid passageway.
- the over-center means functions in this manner responsive to the completion of each successive stroke of the reciprocal motion of the drive piston.
- the over- center means is located entirely within the drive cylinder and comprises a pair of resilient springs located on opposite sides of the drive piston, each being compressed between a linkage bearing surface rigidly attached to the linkage means and a drive bearing surface rigidly attached to the drive piston.
- the proportioning aspect of the inventive proportioning pump resides in a pair of proportioning cylinders for each of the constituent fluids involved.
- One proportioning cylinder for each of the constituent fluids opens opposite the drive piston into each of the first and second drive fluid chambers.
- the axis of each of the proportioning cylinders be parallel to the axis of the drive cylinder.
- To each proportioning cylinder corresponds a single constituent fluid passageway through which the constituent fluid corresponding therefor is admitted into and positively displaced from the proportioning cylinder.
- the proportioning pump is provided with a ratio adjustment means for selectively varying the quantity of at least one of the constituent fluids that is drawn into and displaced from one of the proportioning cylinders.
- a ratio adjustment means for selectively varying the quantity of at least one of the constituent fluids that is drawn into and displaced from one of the proportioning cylinders.
- the means to permit waste movement comprises a footing projecting from the drive cylinder toward the meteri.ng cylinder and a proportioning piston shaft extending from the footing.
- the piston shaft slidably passes through the proportioning piston head into the meterable proportioning cylinder.
- a radially enlarged retaining head is provided on the end of proportioning piston shaft within the meterable proportioning cylinder. In each stroke of the drive piston, waste movement occurs as the proportioning piston slides the length of the piston shaft between the retaining head and the footing.
- Means are provided for selectively varying the extent of the waste movement involved.
- an internal adjustment fitting on the retaining head permits the retaining head to be rotated to change the distance between the retaining head and the footing. This varies the amount of waste movement permitted in each stroke of the proportioning pump.
- An external access means cooperates to enable the selective rotating of the internal adjustment fitting from the exterior of the proportioning pump.
- the external access means comprises an adjustment opening formed through the end of the meterable proportioning cylinder opposite the proportioning piston head, and an adjusting rod slidably and rotatably mounted in the adjusting opening.
- the end of the adjusting rod interior to the proportioning cylinder includes an adjustment transfer tool for mating with the internal adjustment fitting.
- the other end of the adjusting rod is provided with an external adjustment fitting by which the adjustment rod may be rotated.
- a proportioning pump for dispensing in a precise, predetermined ratio quantities of a first and a second fluid.
- the portioning pump comprises reciprocating means for continuously dispensing the first fluid.
- the reciprocating means includes a stationary portion enclosing opposed first and second fluid chambers and an active portion housed within the stationary portion. The active portion is driven in a reciprocating motion comprising successive strokes in opposite directions alternately towards the first and towards the second fluid chambers.
- the proportioning pump further comprises first and second reservoir means for holding a predetermined quantity of the second fluid. These are located individually in said first and second fluid chambers, respectively.
- Fluid advancement means operably connected to the active portion of the reciprocating means are provided for continuously dispensing the second fluid. The fluid advancement means draws a predetermined quantity of the second fluid into one of the reservoir means and positively displaces the predetermined quantity of the second fluid from the other of the reservoir means in the stroke of the motion of the reciprocating means.
- Figure 1 is an exploded perspective view of one embodiment of a fluid proportioning pump incorporating the teachings of the present invention
- 5 Figure 2 is a cross-sectional view of the proportioning pump of Figure 1 in an assembled condition taken along section line 2-2 shown therein;
- Figure 3 is a cross-sectional view of the proportioning pump of Figure 1 in an assembled condition o taken along section line 3-3 shown therein and illustrating the relative positions of the components thereof in a first stage of operation;
- Figure 4 is a cross-sectional view of the device shown in Figure 3 in a succeeding second stage of operation; 5 Figure 5 is a cross-sectional view of the device shown in Figures 3 and 4 shown in a succeeding third stage of operation;
- Figure 6 is a cross-sectional view of the device shown in Figures 3-5 shown in a succeeding fourth stage of 0 operation;
- Figure 7 is an enlarged cross-sectional view of the seal assembly identified in Figure 3-6 with the value stem in the foreground thereof deleted;
- Figure 8 is an exploded disassembled perspective view of the drive cylinder of the proportioning pump shown in Figure 1;
- Figure 9 is an exploded disassembled perspective view of a second embodiment of an over-center mechanism for use with the proportioning pump of Figure 1.
- a liquid proportioning pump 10 is shown in a disassembled condition as including a drive cylinder 12 having first and second ends 14, 16, respectively.
- first end 14 of drive cylinder 12 abuts against an inner face 18 of a first plate assembly 20.
- inner face 18 is provided with an annular recess 22 which receives an O-ring not shown in Figure l, and first end 14 of drive cylinder 12.
- a second plate assembly 24 closes drive cylinder 12 by abutment against end 16 thereof.
- This state of assembly is maintained by four elongated assembly bolts 26 which pass through eyes 28 in first plate assembly 20 and thereafter through eyes 30 in second plate assembly 24.
- Nuts 32 are then threaded onto leading ends 34 of assembly bolts 26 to draw first plate assembly 20 and second plate assembly 24 against the opposite ends of drive cylinder 12.
- Formed in first and second plate assemblies 20, 24, respectively, but not visible in Figure 1, are a plurality of passageways for the constituent fluids to be dispensed by proportioning pump 10. These fluids enter the passageways referred to through openings identified generally in Figure 1 by reference character 36.
- openings 36 are provided with fittings by which to connect to proportioning pump 10 tubes bringing the constituent fluids to proportioning pump 10 from reservoirs or container thereof, as well as tubes conveying away metered quantities of the same.
- fittings and tubing have been omitted from
- proportioning pump 10 Aside from the tubes and constituent fluid sources discussed above, all other operating components of proportioning pump 10 are located interior to first and second plate assemblies 20, 24, respectively, or within drive cylinder 12. Such additional components will be identified briefly by reference to Figure 1, but discussed subsequently in more detail and interrelated with the other components of proportionate pump 10.
- a drive piston 40 is disposed in drive cylinder 12 and propelled in a reciprocating motion of successive strokes in opposite directions by the pressurized drive fluid.
- the details of the structure of a preferred embodiment of a drive piston, such as drive piston 40, for use in proportioning pump 10 will be discussed subsequently in relation to Figure 4. Nevertheless, alternative forms of such a drive piston could easily be accommodated within the limitation and teachings of the present invention.
- drive cylinder 12 as shown in Figure 1 is circular and while the cross-section of drive piston 40 corresponds thereto, it would be equally workable, although not presently preferable, to employ a drive cylinder in proportioning pump 10 that has virtually any workable prismatic cross- section.
- a drive cylinder such as drive cylinder 12, could be elliptical, rectangular, or of any other workable cross-section, provided that the size and shape of the drive piston to function therewith is modified accordingly from that shown for dri.ve pi.ston 40 m. Fi.gure 1.
- proportioning pump 10 which in the assembled state thereof are contained within drive cylinder 12 include a pair of proportioning cylinders
- proportioning cylinders 42, 44, 46, 48 oriented toward drive piston 40 are open.
- the longitudinal axis of the proportioning cylinders are parallel to the longitudinal axis of drive cylinder 12, although this need not absolutely be the case within ' the scope of the present invention.
- One of the two proportioning cylinders on each of first plate assembly 20 and second plate assembly 24 corresponds to the first of the constituent fluids, other than the drive fluid, that is to be dispensed in a predetermined quantity by proportioning pump 10.
- the other proportioning cylinder on each of first and second plate assemblies 20, 24, respectively, corresponds to the second of the constituent fluids.
- the constituent fluid for each proportioning cylinder enters and exits through passageways in the respective plate assembly from which each proportioning cylinder projects. These passageways terminate in openings on the exterior of the plate assemblies, such as openings 36.
- Constituent fluid is drawn into each proportioning cylinder and positively displaced therefrom by a proportioning piston which projects from the face of drive piston 40 opposite thereto.
- the proportioning pistons move backwards and forwards in each respective proportioning cylinder with drive piston 40 in the reciprocating motion in which it is propelled by the drive fluid.
- a proportioning piston 50 extending from the face of drive piston 40 not visible in Figure 1 is received in proportioning cylinder 42, whereby reciprocating motion of drive piston 40 alternately advances and retracts proportioning piston 50 within proportioning cylinder 42 to correspondingly draw thereinto and to positively displace therefrom precisely measured quantities of the constituent fluid corresponding thereto.
- the operation of proportioning pistons 52, 54 within their respective proportioning cylinders is reversed with respect to that of proportioning piston 50 described above.
- proportioning pistons 52, 54 are simultaneously being retracted within proportioning cylinders 46, 48, respectively, to draw thereinto the constituent fluid.
- a fourth proportioning piston not visible in Figure 1 but appearing hereafter in various figures of this disclosure will be identified by the reference character 58. This proportioning piston extends from the side of drive piston 40 not visible in Figure 1 into proportioning cylinder 44 when proportioning pump 10 is assembled.
- drive piston 40 In its reciprocating motion within drive cylinder 12, drive piston 40 is stabilized by means of a guide shaft 60 which slidably passes through drive piston 40 and has each end thereof secured in one of first plate assembly 20 and second plate assembly 24.
- Drive piston 40 is also guided by a shaft 62 which also slidably passes through drive piston 40 and is secured from lateral, although not longitudinal, motion at its opposite ends in first plate assembly 20 and second plate assembly 24.
- Shaft 62 plays an integral role in the valving of the pressurized drive fluid into drive cylinder 12 alternately on opposite sides of drive piston 40 so as to induce a reciprocating motion therein. This role will be explored in close detail presently.
- first and second valve blocks 64, 66 which in the assembled state of proportioning pump 10 are rigidly secured to valving shaft 62 near the remote ends thereof.
- a roller bearing 71 that facilitates the free lateral movement of valving shaft 62 with first valving block 64 and second valving block 66, attached thereto.
- first and second springs 68, 70 respectively, comprise resilient loops, which may be discontinuous at one point in the circumferences thereof having free ends that facilitate the resiliency desired.
- First spring 68 is held in compression between first valve block 64 and a first spring shoe 72 which in the assembled condition of proportioning pump 22 is slidably mounted on guide shaft 60 and rigidly attached to the side of drive piston 40 not visible in Figure 1.
- second spring 70 is held in compression between second valve block 66 and a second spring shoe 74 which similarly is slidably mounted on guide shaft 60 and rigidly secured to side 56 of drive piston 40.
- Guide shaft 60 passes through a bore 75 formed in spring shoe 74.
- the free ends of the loops of first and second springs 68, 70, respectively, are covered and clamped to first and second spring shoes 72, 74, respectively, and covered by spring clamp plates 69.
- First and second springs 68, 70 are so configured and so positioned by the locations of the valve block and shoe spring between which each is constrained that when first and second plate assemblies 20, 24, respectively, are in place against drive cylinder 12, first spring 68 encircles proportioning cylinders 42 and 44 together in the space between those proportioning cylinders and inner surface 67 of drive cylinder 12. Similarly, second spring 70 encircles proportioning cylinders 46 and 48 together in the space between those proportioning cylinders and inner surface 67 of drive cylinder 12.
- a pressurized drive fluid is valved into drive cylinder 12 alternately on opposite sides of drive piston 40 in a manner yet to be fully disclosed.
- This valving of the pressurized drive fluid sets drive piston 40 into a reciprocating motion in which drive fluid on the side of drive piston 40 that is no longer pressurized is vented, and the driven motion of drive piston 40 positively displaces that non-pressurized drive fluid therefrom.
- the previously vented side of drive piston 40 is made to communicate with the drive fluid in a pressurized state, while the drive fluid on the opposite side of drive piston 50, which was previously pressurized, is vented and begins to be positively displaced from drive cylinder 12 by the reversed movement by drive piston 40.
- proportioning pistons 50, 52, 54, and 58 alternately advance and retract within their corresponding proportioning cylinders due to their attachment to drive piston 40.
- the pair of proportioning pistons oriented in the direction of each stroke of drive piston 40 move into the proportioning cylinders corresponding thereto, positively displacing a predetermined volume of constituent fluid from each.
- the pair of proportioning pistons oriented counter to the motion on the opposite side of drive piston 40 are retracted within their corresponding proportioning piston on the same stroke. This draws constituent fluid thereinto.
- the proportioning pistons reverse their functions as well.
- an apparatus for dispensing in a precise, predetermined ratio quantities of a first and a second fluid.
- the apparatus includes reciprocating means for continuously dispensing the first fluid.
- the reciprocating means comprises a stationary portion, including drive cylinder 12, first plate assembly 20, and second plate assembly 24, and an active portion housed therewithin.
- the active portion includes drive piston 40 and valving shaft 62 is driven in a reciprocating motion comprising successive strokes in opposite directions alternately toward first end plate 20 and second end plate 24.
- first and second reservoir means for holding a predetermined quantity of the second fluid.
- Each is located individually within drive cylinder 12 on opposite sides of drive piston 40. As shown by way of example in Figure 1, proportioning cylinders 42, 44 project into drive cylinder 12 from first plate assembly 20, while proportioning cylinders 46, 48 project from second plate assembly 24 into drive cylinder 12.
- the apparatus of the present invention includes a fluid advancement means that is operably connected to drive piston 40 for continuously dispensing the second fluid.
- a fluid advancement means that is operably connected to drive piston 40 for continuously dispensing the second fluid.
- proportioning pistons 52, 54 project from side 56 of drive piston 40 and extend into proportioning cylinders 46, 48, respectively.
- proportioning piston 50 and proportioning piston 58 project from the opposite side of drive piston 40 into proportioning cylinders 42, 44, respectively.
- the reciprocating means thus disclosed draws a predetermined quantity of the second fluid into the proportioning cylinders on one side of drive piston 40 while displacing a predetermined quantity of the second fluid from the proportioning cylinders on the opposite side of drive piston 40.
- the use of the term "continuously" in relation to the advancement of any fluid by reciprocating components of the present invention refers both to a discharge of fluid which occurs at each moment during operation, as well as the discharge of at least some of the fluid during each successive stroke of the reciprocating motion.
- the fluid advancement means which comprises the recited proportioning pistons is to be considered to continuously dispense the second fluid. This will be the case even where the second fluid is not dispensed during the entire line of travel of each stroke of drive piston 40.
- ratio adjustment means are provided for selectively varying the quantity of at least one of the constituent fluids drawn into and displaced from the proportioning cylinders corresponding thereto. While in all likelihood it is preferable that all proportioning cylinders in a proportioning pump according to the present invention be ° provided with such a ratio adjustment means, any proportioning cylinder so provided will herein, and particularly in the claims hereafter, be referred to as a meterable proportioning cylinder to enhance descriptive clarity.
- first and second plate assemblies 20, 24, respectively, comprise a drive cylinder end plate 80 which actually effects closure of the ends of the drive cylinder 12 by engaging first and second ends 14, 16 thereof and a valve plate 82 on the outside of each drive cylinder end plate
- each valve plate 82 In each valve plate 82 are formed a plurality of constituent fluid passageways 84, one of which communicates with each of proportioning cylinders 42, 44, 46, 48. Each constituent fluid passageway 84 communicates through an
- each intake passageway 86 to one of the openings 36 shown in Figure 1 on the exterior of each plate assembly.
- a check valve 88 oriented to permit one-way flow of constituent fluid into each proportioning cylinder. Constituent fluid enters each of
- constituent fluid passageway 84 is connected through a venting passageway 90 to other of openings 36.
- a check valve 92 oriented to permit one-way flow of constituent fluid out of each proportioning cylinder.
- Constituent fluid is displaced from each proportioning cylinder through constituent fluid passageway 84, venting passageway 90, and check valve 92.
- Check valves 88 and 92 can be of any type of check valve known in the art capable of insuring an appropriate one-way flow. Umbrella, duck bill, or ball-and-spring check valves are thus suitable in this regard.
- Figure 2 further reveals that drive piston 40 is comprised of a pair of substantially identical drive piston plates 100, shown to better advantage in the perspective view of Fig re 4.
- Drive piston plates 100 are mated in a ba-ck-to-back relationship to form therebetween a circumferential retaining slot 102 in which is disposed a sealing ring 104. Sealing ring 104 engages inner surface 67 of drive cylinder 12 to enable reciprocal sliding of drive"'piston 40 therewithin.
- Sealing ring 104 isolates drive cylinder 12 into a first drive fluid chamber 106 on the side of drive piston 40 that contains proportioning cylinders 42, 44, and a second drive fluid chamber 108 on the side of drive piston 40 opposite therefrom that contains proportioning cylinders 46, 48.
- drive piston 40 has reached the full extent of its movement leftwardly in the direction shown by arrow A, a movement that is induced by placing first drive fluid chamber 106 in communication with a drive fluid under pressure. In the process of movement in the direction of arrow A, drive fluid was positively displaced from second drive fluid chamber 108 due to the advancement of drive piston 40.
- the inventive proportioning pump disclosed herein includes a ratio adjustment means for selectively varying the quantity of at least one of the constituent fluids drawn into and displaced from one of said proportioning cylinders.
- Any proportioning cylinder provided with this feature will ° herein, and particularly in the claims hereafter, be referred to as a meterable proportioning cylinder.
- Each of the proportioning cylinders 42, 44, 46, and 48 shown in Figure 2 are meterable in this sense, but for illustrative purposes only one, namely proportioning cylinder 44 with 5 proportioning piston 58 corresponding thereto, will be discussed and labeled in complete detail.
- Proportioning piston 58 comprises three main elements. First, a footing 110 projects from first drive piston plate 100 opposite proportioning cylinder 44. The end of 0 footing 100 remote from drive piston 40 is formed into a flat bearing surface 112 from which a proportioning piston shaft 114 further projects toward proportioning cylinder 44. Proportioning piston shaft 114 is threaded into a bore 115 longitudinally formed at the center of footing 110. 5 The end of proportioning piston shaft 114 remote from footing 110 slidably and rotatably passes through a disc ⁇ shaped proportioning piston head 116 to terminate in a radially enlarged retaining head 118.
- Proportioning piston head 116 has a front surface 120 0 oriented toward the interior of proportioning cylinder 44 and a rear surface 122 oriented toward drive cylinder 40 and bearing surface 112.
- the fixed cross-section of proportioning cylinder 44 would, under normal circumstances, determine in a fixed manner the ratio of the 5 constituent fluid positively displaced therefrom in relation to the quantity of drive fluid positively displaced from first drive fluid chamber 106.
- the ratio adjustment means of the present invention which includes proportioning piston head 116, is in turn provided with means to permit waste movement of drive cylinder 40 relative to proportioning piston head 116 in each direction of the reciprocating motion of drive cylinder 40.
- Footing 110, proportioning piston shaft 114, and retaining head 118 comprise such a means to permit waste movement.
- the rule thus does not apply that the ratio of fluids displaced in each pumping stroke is equal to the ratio of the areas of the piston heads involved.
- proportioning shaft 114 of proportioning piston 58 is also drawn in the direction of arrow A with drive piston 40. Initially, proportioning shaft 114 slides through the corresponding proportioning piston head 116 until retaining head 118 encounter front surface 120 thereof. Thereafter, continued movement of drive piston 40 in the direction of arrow A causes retaining head 118 to pull proportioning piston head 116 in the direction of arrow A thereafter. This draws constituent fluid into proportioning cylinder 44.
- proportioning piston shaft 114 of proportioning piston 58 slides through the corresponding proportioning piston head 116 until bearing surface 112 of proportioning piston 58 engages rear surface 122 of corresponding proportioning piston head 116. Thereafter, continued movement of drive piston 40 in the direction opposite that shown by arrow A will advance proportioning piston head 116 into proportioning cylinder 44.
- the sliding of proportioning piston shaft 114 relative to proportioning piston head 116 thus results in waste movement of drive cylinder 40 relative to proportioning piston head 116 on each stroke of the reci.procating movement of drive cylinder 40.
- this waste movement is in an amount illustrated in Figure 2 by a distance D extending between bearing surface 112 and rear surface 122 of proportioning piston head 116 when retaining head 118 is engaging front surface 120 thereof.
- the greater the amount of such waste movement the less constituent fluid will be displaced through proportioning cylinder 44 during each stroke of drive piston 40.
- adjustment means are provided to selectively vary the extent of the waste movement undertaken by drive piston 40 in relation to each of the meterable proportioning cylinder of proportioning pump 10.
- the adjustment means of the present invention comprises threadings 124 on one end of proportioning piston shaft 114. Threadings 124 engage cooperating threadings in bore 115 in footing 110 and secure proportioning piston shaft 114 thereto.
- proportioning pistons 52, 54 are shown in Figure 2 as including O-rings
- proportioning piston shaft 114 encircling proportioning piston shafts 114.
- retaining head 118 is provided with an internal adjustment fitting 128 by which proportioning piston shaft 114 may be rotated.
- this varies the distance D, and correspondingly the amount of waste movement, associated with each stroke of drive piston 40.
- Rotati ⁇ n of proportioning piston shaft 114 fully into bore 115 will bring rear surface 122 of proportioning piston head 116 into abutment with bearing surface 112.
- Such a situation is shown in relation to proportioning piston 50 in proportioning cylinder 42. Under such conditions, no waste movement of drive cylinder 40 occurs relative to proportioning piston head 116 of proportioning piston 50, and a maximum predetermined quantity of constituent fluid is displaced from proportioning cylinder 42 on each stroke of drive piston 40.
- proportioning piston heads 116 of proportioning pistons 52, 54 are advanced into their respective proportioning cylinders by the movement of drive piston 40.
- Adjustment rod 132 Slidably and rotatably mounted in adjustment opening 130 is an adjustment rod 132 which is provided at the end thereof internal to proportioning pump 10 with an adjustment transfer tool 134 by which to engage internal adjustment fitting 128. Adjustment rod 132 may be selectively advanced into proportioning cylinder 48 to engage internal adjustment fitting 128 on proportioning piston shaft 114 therein.
- the end of adjustment rod 132 opposite from transfer tool 134 is equipped with an external adjustment fitting 136 by which adjustment rod 132 may be rotated by a common tool, such as a screw driver or wrench. When external adjustment fitting 136 is thus rotated, this motion is transferred by transfer tool 134 to proportioning piston shaft 114.
- proportioning piston shaft 114 varies the distance D representing waste motion between drive piston 40 and the proportioning piston involved. This in turn affects the quantity of constituent fluid displaced from the corresponding proportioning cylinder on each of the strokes of drive piston 40.
- adjustment rod 132 associated with proportioning piston 54 is shown thusly advanced into the proportioning cylinder 48, and is engaging internal adjustment fitting 128 on retaining head 118 with transfer tool 134. Adjustment rod 132 is sealingly retained in adjustment opening 130 by an O-ring 138.
- Proportioning pump 10 accordingly is not only capable of dispensing a drive fluid and at least two constituent fluids in a predetermined proportion, but of permitting the selective adjustment of the predetermined proportion from exterior proportioning pump 10 without the inconvenience of any disassembly whatsoever.
- drive piston 40 can be seen to be positioned within drive cylinder 12 separating first drive fluid chamber 106 from second drive fluid chamber 108.
- Drive piston 40 engages in reciprocating motion stabilized by guide shaft 60 and valving shaft 62 the ends of both of which are constrained from lateral movement by first and second plate assemblies 20, 24, respectively.
- Drive piston 40 slides freely upon both guide shaft 60 and valving shaft 62. while guide shaft 60 is also constrained from movement in its longitudinal direction, valving shaft 62 is longitudinally slidable back and forth in first plate assembly 20 and second plate assembly 24.
- the proportioning pump disclosed herein includes a drive reversal means.
- a pressurized drive fluid passageway 140 is formed in each drive cylinder end plate 80 for receiving pressurized drive fluid.
- the pressurized drive fluid presented at passageways 140 advances through one or the other thereof into either first or second drive fluid chambers 106, 108 in drive cylinder 12.
- the advancement of the pressurized drive fluid through one of drive fluid passageways 140 is shown in Figures 3-6 by arrow X.
- a drive fluid exit passageway 142 is formed in each valve plate 82 for permitting drive fluid to be expelled from drive cylinder 12.
- drive fluid is expelled from one or the other of first or second drive fluid chambers 106, 108 through the drive fluid exit passageway 142 communicating therewith.
- this advancement of drive fluid out of drive cylinder 12 through one of drive fluid passageways 142 is indicated by arrow Y.
- pressurized drive fluid passageway 140, nor drive fluid , . . . exit passageway 142 communicate directly with the interior of drive cylinder 12.
- a first valve means is provided for placing pressurized drive fluid passageway 140 and drive fluid exit passageway 142 in first plate assembly 20 alternately in communication with first drive fluid chamber 106.
- this first valve means comprises a first valve bore 144 extending from first drive fluid chamber 106 into first plate assembly 20 and communicating with both pressurized drive fluid passageway i4o and drive fluid exit passageway 142 therein.
- valve stem 146 formed on the end of valving shaft 62 is slidably mounted in valve bore 144 in first plate assembly 20.
- valve stem 146 Longitudinally formed in valve stem 146 is a valving passageway 148.
- Valving passageway 148 opens at one end thereof into first drive fluid chamber 106 and at the other end thereof through an aperture 150 into either of pressurized drive fluid passageway 140 or drive fluid exit passageway 142, depending upon the longitudinal position of first valve stem 146 in first valve bore 144.
- first valve stem 146 As shown in Figure 3, the position of first valve stem 146 is such that aperture 150 is within drive fluid exit passageway 142, whereby first drive fluid passageway 106 is vented through valving passageway 148 to permit the positive displacement of drive fluid from first drive fluid chamber 106, as shown by arrow Y.
- a second valve means is provided for placing pressurized drive fluid passageway 140 and drive fluid exit passageway 142 in second plate assembly 24 alternately in communication with second drive fluid chamber 108.
- this second valve means comprises a second valve stem 152 at the end of valving shaft 62 remote from first valve stem 146 and a second valve bore 154 in which second valve stem 152 is slidably mounted. Second valve bore 154 extends from second drive fluid chamber 108 into second plate assembly
- second valve stem 152 Formed longitudinally in second valve stem 152 is a valving passageway 148 which opens at one end thereof into second drive fluid chamber 108. The other end of valving passageway 148 in second valve stem 152 opens through an aperture 150 into either pressurized drive fluid passageway 140 or drive fluid exit passageway 142 in second plate assembly 24, depending on the longitudinal position of second valve stem 152 in second valve bore 154. As shown in Figure 3, the position of second valve stem 152 is such that aperture 150 is within pressurized drive fluid passageway 140, whereby second drive fluid passageway 108 is enabled by way of valving passageway 148 to receive pressurized drive fluid, as shown by arrow X.
- first and second valve bores 144, 154 is provided with a seal assembly 76.
- the elements of each seal assembly 76 are shown in greater detail in Figure 7, wherein valving shaft 62 has been eliminated from the foreground to enhance clarity.
- Seal assemblies 76 include a pair of square-D seals 77 that encircle valving shaft 62 and open toward each other in an opposed relationship. Compressed between each pair of square-D seals 77 is a rigid cylindrical sleeve that also encircles valving shaft 62.
- Sleeve 78 has formed therethrough a plurality of perforations 79 which permit drive fluid in pressurized drive fluid passageway 140 to flow into proximity with the sides of valving shaft 62 and to enter aperture 150 when the position of valving shaft 62 locates aperture 150 within seal assembly 76.
- first and second valve stems 146, 152 are coordinated by a linkage means comprising valving shaft 62.
- Valving shaft 62 serves to operate first and second valve stems 146, 152, respectively, in either a first or a second operative mode.
- first drive fluid chamber 106 is placed in communication with pressurized drive fluid passageway 140 formed in first plate assembly 20, while second drive fluid chamber 108 is placed in communication with drive fluid exit passageway 142 formed in second plate assembly 24.
- drive piston 40 is urged in the direction of second drive fluid chamber 108 from which non-pressurized drive fluid is thereby positively displaced.
- the first operative mode is illustrated in Figures 3-5.
- first drive fluid chamber 106 is placed in communication with drive fluid exit passageway 142 formed in first plate assembly 20, while second drive fluid chamber 108 communicates with pressurized drive fluid passageway 140 formed in second plate assembly 24.
- drive piston 40 is urged in the direction of first drive fluid chamber 106, accordingly displacing therefrom non- pressurized drive fluid.
- the second operative mode is illustrated in Figure 6 and will be more readily understood following a short discussion of the manner in which valving shaft 62 is driven alternately into the first and the second operative mode.
- the inventive proportioning pump comprises an over-center means for driving valving shaft 62 to operate first valve stem 146 and second valve stem 152 between the first and second operative modes in response to the completion of each of the successive strokes of the reciprocal motion of drive piston 40.
- the over-center * means of the present invention comprises a linkage bearing surface and a drive bearing surface on either side of drive piston 40 and a resilient spring compressed therebetween. Each linkage bearing surface is fixed to valving shaft 62, while each drive bearing surface is fixed to drive piston 40.
- the linkage bearing surface and drive bearing surface take the form, respectively, of a slot 156 formed in first valve block 64 and a slot 158 formed in first spring shoe 72.
- slot 158 is moveable in each successive stroke of the reciprocating motion of drive piston 40 into a center position relative slot 156 in which slots 156 and 158 are maximally proximate.
- First spring 68 mounted in compression between slots 156 and 158 urges slot
- first spring 68 urges slot 156 in first valve block 64 and valving shaft 62 into the second operative mode. Slots 156 and 158 can be seen in the center position of slot 158 in Figure 5.
- Second spring 70 mounted in compression between slots 160, 162, urges slot 160 in second valve block 66 and valving shaft 62 attached thereto into the first operative mode when slot 162 is on the side of the center position thereof remote from drive piston 40.
- first and second valve stems 146, 152 are in the second operative mode.
- First drive fluid chamber 106 is in communication through first valve stem 146 with drive fluid exit passageway 42 formed in first plate assembly 20, while second drive fluid chamber 108 is in communication through second valve stem 152 with pressurized drive fluid passageway 140 formed in second plate assembly 24.
- drive fluid is positively displaced from first " drive fluid chamber 106 through valving passageway 148 in first valve stem 146 and drive fluid exit passageway 142 formed in first plate assembly 20 as sshown by arrow Y.
- one of the constituent fluids is also positively displaced from proportioning cylinder 44, while the same or a different constituent fluid is drawn into proportioning cylinder 48 on the opposite side of drive piston 40. Movement of drive piston 40 in the direction of arrow B with first and second spring shoes 72, 74, respectively, attached thereto initially tends to bring both slot 158 and slot 162 closer to the center positions of each.
- first and second valve stems 146, 152 are still in the second operative mode with first drive fluid chamber 106 being vented through first valve stem 146 into drive fluid exit passageway 142 formed in first plate assembly 20 and second drive fluid chamber 108 being pressurized through second valve stem 152 from pressurized drive fluid passageway 140 formed in second plate assembly 24.
- first and second valve stems 146, 152 respectively, remain in the second operative mode with pressurized drive fluid shown by arrow X advancing to enter second drive fluid chamber 108 through second valve stem 152 and pressurized drive fluid passageway 140 in second plate assembly 24. Fluid in first drive fluid chamber 106 is positively displaced therefrom through second valve stem 152 and drive fluid exit passageway 142 formed in first plate assembly 20, as shown by arrow Y.
- Figure 6 shows the relationship of the components of proportioning pump 10 after movement of drive piston 40 in the direction of arrow B past the position shown in Figure 5.
- Such movement displaces slot 158 to the side of the center position thereof remote from drive piston 40, resulting in the biasing force of both first spring 68 and second spring 70 urging both first and second valve block 64, 66, respectively, and valving shaft 62 attached thereto out of the second operative mode.
- Facilitated by rollers 71, first and second valve blocks 64, 66, respectively, and valving shaft 62 attached thereto snap leftwardly as seen in Figure 6 in the direction indicated by arrow C.
- valve blocks 64, 66 and spring shoes 72, 74 bear against inner surface 67 of drive cylinder 12.
- a sliding interaction must be achieved, but it is preferable that the sliding motion effected between valve blocks 64, 66 and inner surface 67 be substantially freer of resistance than the sliding relationship structured between shoe springs 72, 74 and inner surface 67.
- first spring shoe 72 and second spring shoe 74 are provided with curved bearing surfaces 164, 166, respectively, which slide upon inner surface 67 during the reciprocating motion of drive piston 40.
- first valve block 64 nor second valve block 66 bears directly against inner surface 67.
- roller 71 is interposed therebetween in order to substantially decrease the frictional resistance to movement of valve blocks 64, 66 and valving shaft 62 when the components of the over-center means of the inventive proportioning pump reach a position that necessitates the reversal of the valving of the drive fluid.
- first spring shoe 72 and second spring shoe 74 can serve as a stable fulcrum about which valve block 64, 66 can pivot in effecting movement of valve shaft 62 back and forth between the first and second operative modes thereof.
- Proportioning pump 10 is thus reliably driven in a reciprocating motion without the aid of any auxiliary power source other than a pressurized drive fluid.
- the pressurized drive fluid and at least a first and a second constituent fluid are dispensed in a predetermined precise ratio one to the other. Operation within the industry standard of ⁇ 3 percent accuracy is easily attained in the inventive proportioning pump. In many cases a range of ⁇ 1 percent accuracy has been consistently achieved.
- O-rings 126 and O-rings 127 are lubricated on one side by the drive fluid and on the other side by one of the constituent fluids being dispensed by the inventive proportioning pump.
- the wetting of these movable seals on both sides thereof contributes substantially to the enhanced effective lifetime thereof.
- O-rings 138 encircling adjustment rod 132 is this not the case.
- O-rings 138 are lubricated on one side by a constituent fluid and are on the other side exposed to the atmosphere. This O-ring is static except during very infrequent and short duration adjustments.
- Figure 8 shows a disassembled perspective view of the components of drive piston 40.
- These include identical first and second drive piston plates 100, 101, respectively, mated in a back-to-back relationship at surfaces 168.
- Each drive piston plate is formed a pair of openings 169 through which pass guide shaft 60 and valving shaft 62 when proportioning pump 10 is assembled.
- Each drive piston plate is provided at one of openings 169 with a sleeve 170 projecting from surface 168.
- a recess 172 is formed in surface 168.
- In the back-to-back relationship of drive piston plates 100, 101, projecting sleeve 170 of each is received into recess 172 of the other.
- an O-ring 174 is disposed in recess 172. As seen in Figures 3-6, O-ring 174 forms a seal with guide shaft 60 and valving shaft 62 slidably disposed in openings 169.
- Figure 9 illustrates an alternative, and in the present case preferred, embodiment of the valve blocks, spring shoes, and springs of the over-center means of the present invention.
- Figure 9 shows a pair of resilient, C-shaped springs 180, which when assembled are compressed between a valve block 182 and a spring shoe 184.
- C-shaped springs 180 In order to optimize the motive power for the over-center means of the present invention, it has been found advantageous to configure C-shaped springs 180 with an ambit between the free ends thereof that is slightly greater than 180°.
- Each end of C-shaped spring 180 is provided with a mounting ball 186 that is snappingly receivable into corresponding sockets 188 formed in face 190 of valve block 182 and opposing face 192 of spring shoe 184.
- Sockets 188 function as spring receiving slots and are thus the sites of drive bearing surfaces and linkage bearing surfaces between which C-shaped springs 180 are actually compressed.
- valve block 182 may be similar in structure to valve blocks 64, while spring shoe 184 corresponds in structure to that of spring shoes 72.
- C-shaped springs 180 have been found to result in several advantages over the use of single unitary springs, such as springs 68, 70 shown in Figure 1.
- the pair of C-shaped springs 180 exhibit less fatigue and therefore enjoy longer effective lifetimes than single-piece springs.
- the stresses of compression between the valve blocks and shoe springs is more evenly distributed to each side thereof using the two- spring configuration.
- Providing C-shaped springs 180 with an ambit greater than 180° results in a more even distribution of stresses along the length of the springs than if these were merely semicircular.
- the subject invention also embodies methods for proportioning a plurality of at least three fluids in a precise, predetermined ratio.
- the methods comprise the steps of providing a pressurized drive fluid alternately to opposite sides of a drive piston in a drive cylinder, while venting the side of the piston not provided with the drive fluid. This causes reciprocating motion in the drive piston and the positive displacement of drive fluid from the leading side thereof.
- the methods comprise the step of securing within the drive cylinder on each side of the drive piston a pair of proportioning pistons. These extend from the drive piston parallel to the axis of the drive cylinder into corresponding proportioning cylinders that face the drive piston within each end of the drive cylinder.
- the proportioning pistons advance into and recede within corresponding proportioning pistons with the reciprocating motion of said drive piston.
- Constituent fluid is supplied to the proportioning cylinders when the pistons therein recede therein, and is vented from the proportioning cylinders when the pistons therein advance thereinto.
- the disclosed methods require reversing the valving of the drive fluid when each stroke of the reciprocating motion of the drive piston nears its extremes.
- the present invention may be embodied in other specific forms without departing from its spirit or essential characteristics.
- the described embodiments are to be considered in all respects only as illustrative and not restrictive.
- the scope of the invention is, therefore, indicated by the appended claims rather than by the foregoing description. All changes which come within the meaning and range of equivalency of the claims are to be embraced within their scope. What is claimed is:
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Automation & Control Theory (AREA)
- Chemical & Material Sciences (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Reciprocating Pumps (AREA)
Abstract
Une pompe hydraulique de dosage (10) distribue des volumes précis de trois fluides et comprend un cylindre de commande (12) dans lequel est logé un piston de commande (40) qui divise le cylindre de commande (12) en chambres (106, 108) de fluide de commande. Deux pistons de dosage (50, 52, 54, 58) partent de chaque face du piston de commande (40) et s'étendent dans des cylindres de dosage (42, 44, 46, 48). Un mécanisme à détente brusque déclenché par le déplacement du piston de commande (40) aux extrémités de son mouvement alternatif actionne des soupapes (62) qui admettent le fluide de commande sous pression dans l'une ou l'autre chambre de fluide de commande sous pression dans l'une ou l'autre chambre de fluide de commande (106, 108). Le mécanisme à détente brusque, actionné par des ressorts en col de cygne (68, 70), est logé dans le cylindre de commande (12). Il est possible d'ajuster sélectivement la proportion entre le fluide de commande et les autres composants fluides. Chaque piston de dosage (50, 52, 54, 58) forme une tête de piston similaire à un disque (116) montée de manière coulissante sur la tige (114) d'un plateau tournant qui part de la face du piston de commande (40). La tête élargie (128) de la tige (114) du plateau tournant est pourvue d'une garniture (128) susceptible d'être manipulée de l'extérieur de la pompe par un outil rétractable.A hydraulic metering pump (10) distributes precise volumes of three fluids and includes a control cylinder (12) in which is housed a control piston (40) which divides the control cylinder (12) into chambers (106, 108 ) control fluid. Two metering pistons (50, 52, 54, 58) extend from each side of the control piston (40) and extend into metering cylinders (42, 44, 46, 48). A sudden expansion mechanism triggered by the displacement of the control piston (40) at the ends of its reciprocating movement actuates valves (62) which admit the control fluid under pressure into one or the other control fluid chamber under pressure in either control fluid chamber (106, 108). The trigger mechanism, actuated by swan neck springs (68, 70), is housed in the control cylinder (12). It is possible to selectively adjust the proportion between the control fluid and the other fluid components. Each metering piston (50, 52, 54, 58) forms a piston head similar to a disc (116) slidably mounted on the rod (114) of a turntable which starts from the face of the control piston ( 40). The enlarged head (128) of the rod (114) of the turntable is provided with a lining (128) capable of being manipulated from the outside of the pump by a retractable tool.
Description
Claims
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US33223089A | 1989-03-31 | 1989-03-31 | |
US332230 | 1989-03-31 |
Publications (2)
Publication Number | Publication Date |
---|---|
EP0466772A1 true EP0466772A1 (en) | 1992-01-22 |
EP0466772A4 EP0466772A4 (en) | 1992-03-25 |
Family
ID=23297303
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP19900905925 Withdrawn EP0466772A4 (en) | 1989-03-31 | 1990-03-30 | Methods and apparatus for dispensing plural fluids in a precise proportion |
Country Status (3)
Country | Link |
---|---|
EP (1) | EP0466772A4 (en) |
AU (1) | AU5420090A (en) |
WO (1) | WO1990011960A1 (en) |
Families Citing this family (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
ES2065214B1 (en) * | 1992-03-06 | 1998-05-01 | Montserrat Camp Josep | ROTARY MACHINE FOR DOSING PASTA AND SIMILAR MATERIALS. |
NL2008659C2 (en) * | 2012-04-19 | 2013-10-29 | Groeneveld Transp Efficiency B V | Device for dispensing charges of a fluid. |
CN112892350A (en) * | 2021-01-21 | 2021-06-04 | 江苏省肿瘤防治研究所(江苏省肿瘤医院) | Nutrition branch of academic or vocational study that can quantitative ratio is with nutrient solution preparation device |
GB2619353A (en) * | 2022-06-04 | 2023-12-06 | Yalden Roger | Systems and methods for infusion of liquid into gas |
Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
GB1160690A (en) * | 1966-06-27 | 1969-08-06 | Cicero Columbus Brown | Pumping Apparatus |
FR2124464A1 (en) * | 1971-02-05 | 1972-09-22 | Lupert Rosemarie | |
EP0113486A2 (en) * | 1982-12-02 | 1984-07-18 | François Neuckens | Proportioning device |
EP0223568A2 (en) * | 1985-11-13 | 1987-05-27 | PRODUCT RESEARCH & DEVELOPMENT | Ratio pump |
EP0253406A2 (en) * | 1986-07-18 | 1988-01-20 | The Coca-Cola Company | Beverage dispenser system using volumetric ratio control device |
Family Cites Families (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2808815A (en) * | 1953-11-27 | 1957-10-08 | Gen Motors Corp | Windshield wiper motor |
DE2626954C2 (en) * | 1976-06-16 | 1985-04-11 | Schmidt, Kranz & Co Gmbh, Zweigniederlassung Maschinenbau, 3421 Zorge | Control slide arrangement for a hydraulic pump driven by compressed air |
US4390035A (en) * | 1981-04-22 | 1983-06-28 | Hill Raymond G | Liquid mixing systems |
US4827832A (en) * | 1982-11-22 | 1989-05-09 | Product Research And Development | Valve system for a reciprocating device |
US4753370A (en) * | 1986-03-21 | 1988-06-28 | The Coca-Cola Company | Tri-mix sugar based dispensing system |
US4779761A (en) * | 1986-10-31 | 1988-10-25 | The Coca-Cola Company | Beverage dispenser pump system with pressure control device |
-
1990
- 1990-03-30 WO PCT/US1990/001765 patent/WO1990011960A1/en not_active Application Discontinuation
- 1990-03-30 EP EP19900905925 patent/EP0466772A4/en not_active Withdrawn
- 1990-03-30 AU AU54200/90A patent/AU5420090A/en not_active Abandoned
Patent Citations (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
GB1160690A (en) * | 1966-06-27 | 1969-08-06 | Cicero Columbus Brown | Pumping Apparatus |
FR2124464A1 (en) * | 1971-02-05 | 1972-09-22 | Lupert Rosemarie | |
EP0113486A2 (en) * | 1982-12-02 | 1984-07-18 | François Neuckens | Proportioning device |
EP0223568A2 (en) * | 1985-11-13 | 1987-05-27 | PRODUCT RESEARCH & DEVELOPMENT | Ratio pump |
EP0253406A2 (en) * | 1986-07-18 | 1988-01-20 | The Coca-Cola Company | Beverage dispenser system using volumetric ratio control device |
Non-Patent Citations (1)
Title |
---|
See also references of WO9011960A1 * |
Also Published As
Publication number | Publication date |
---|---|
WO1990011960A1 (en) | 1990-10-18 |
EP0466772A4 (en) | 1992-03-25 |
AU5420090A (en) | 1990-11-05 |
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