US3514220A - Water storage and pressure maintainer for well pumps - Google Patents

Water storage and pressure maintainer for well pumps Download PDF

Info

Publication number
US3514220A
US3514220A US3514220DA US3514220A US 3514220 A US3514220 A US 3514220A US 3514220D A US3514220D A US 3514220DA US 3514220 A US3514220 A US 3514220A
Authority
US
United States
Prior art keywords
water
chamber
water storage
pipe
pump
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.)
Expired - Lifetime
Application number
Inventor
Charles E Hahn Jr
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
CHARLES E HAHN JR
Original Assignee
CHARLES E HAHN JR
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by CHARLES E HAHN JR filed Critical CHARLES E HAHN JR
Application granted granted Critical
Publication of US3514220A publication Critical patent/US3514220A/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Images

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B43/00Machines, pumps, or pumping installations having flexible working members
    • F04B43/08Machines, pumps, or pumping installations having flexible working members having tubular flexible members
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B11/00Equalisation of pulses, e.g. by use of air vessels; Counteracting cavitation
    • F04B11/0008Equalisation of pulses, e.g. by use of air vessels; Counteracting cavitation using accumulators
    • F04B11/0033Equalisation of pulses, e.g. by use of air vessels; Counteracting cavitation using accumulators with a mechanical spring
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T137/00Fluid handling
    • Y10T137/8593Systems
    • Y10T137/85978With pump
    • Y10T137/86035Combined with fluid receiver
    • Y10T137/86043Reserve or surge receiver

Definitions

  • a water storage and pressure maintainer for a jettype well pump having a pipe for conveying high speed water from the pump into the well and an expandable tube sur* rounding the pipe for expanding and storing water pumpedfrom the well, with upper and lower manifolds to which the pipe and tube are connected, the m-anifolds each having isolated chambers so that the high speed water is kept isolated from the well water.
  • the water storage and pressure maintainer comprises identical upper and lower manifolds that are of cast iron. Each manifold has two separate chambers isolated from one another by internal partitions formed in the casting. A central pipe connects the first chamber of the upper manifold to the identical chamber in the lower manifold. An elastic tube, which is mounted to surround the central pipe but is spaced therefrom, is connected between the manifolds in communication with the second chamber of each manifold. A pipe from the first chamber of the upper manifold connects to the pump, and a pipe from the identical chamber of the lower manifold connects to the jet injector. A pipe from the other chamber of the upper manifold connects to the pump, and a pipe from the identical chamber of the lower manifold connects to the jet injector.
  • the elastic tube is clamped to the manifold, and there are ferrules to prevent localization of bending stresses when the tube expands and contracts.
  • the pipe conveys a high speed stream of water from the pump to the jet injector with the high speed stream of water being isolated in the first chamber of each manifold from the second chamber of that manifold.
  • Well water flows upwardly from the jet injector into the area between the central pipe and the surrounding elastic tube.
  • the well water flows through the second chamber of each manifold.
  • the elastic tube also acts as a pulsation dampener when the pump does operate.
  • This water storage and pressure maintainer can be connected directly to a jet-type pump.
  • the water storage and pressure maintainer of this invention also eliminates the necessity for a separate storage tank and a special tank house.
  • the water storage and pressure maintainer may be installed anywhere and preferably is installed Within the well casing.
  • FIG. 1 is a side elevation view of the water storage and pressure maintainer shown installed in a well casing between a jet pump and a jet injector.
  • the jet pump and the jet injector are shown in dotted lines and the well casing is shown in longitudinal medial section.
  • FIG. 2 is an enlarged view ⁇ in longitudinal medial section of the water storage and pressure maintainer.
  • FIG. 3 is a view in section taken along the line 3-3 of FIG. 2.
  • FIG. 4 is a fragmentary view in section similar to the lower half of FIG. 2 but showing the expandable tube in expanded condition.
  • this water storage and pressure maintainer 10 is positioned within a well casing '11 extending below the ground G.
  • a casing cover 12 having openings 13 and 14 through which two pipes 15 and 16 extend.
  • 15 and 16 are connected to a conventional jet-type pump 17 and are also connected to the water storage and pressure maintainer 10 in a manner to be described.
  • Two other pipes 18 and 19 lead from the water storage and pressure maintainer 10 to a conventional jet injector 20.
  • the jet pump 17 with its jet injector 20 operates in the conventional way to deliver a high speed stream of water through the pipes 16 and 19 to the jet injector 20 with the pipes l15 and 18 carrying water from the jet injector 20 back to the pump 17.
  • the jet injector 20 is of the conventional type that has a suitable check valve incorporated in its lower housing 21.
  • the water storage and pressure maintainer 10 has upper and lower manifolds 24 and 25.
  • the manifolds 24 and 25 are identical iron castings.
  • the upper casting 24 has a top wall 26, a cylindrical side wall 27, and a bottom wall 28.
  • the bottom wall 28 has a section 29 of reduced diameter with external threads 30, and a still smaller diameter sleeve 31 extends downwardly from the section 29.
  • the pipe 15 opens into a chamber 34
  • the pipe I16 opens into a chamber 35.
  • the chambers 34 and 35 are isolated from one another by an inclined partition 36 that extends laterally between opposite sides of the cylindrical wall 27.
  • the partition 36 begins at tis upper end 37 from a juncture with the top wall 26 and extends in a plane that inclines toward the chamber 34 and terminates in a juncture with a horizontal partition 38.
  • the horizontal partition 38 extends horizontally from the inclined partition 36 to a thickened section 39 of the cylindrical side wall 27.
  • An opening 40 through the sleeve 31 communicates with a lateral passage 41 below the horizontal partition 8.
  • the lateral passage 41 in turn communicates with the chamber 34.
  • the horizontal partition 38 extends across and defines the upper end of the opening 40 as clearly shown at FIG. 2 so that a threaded opening 42 in the horizontal partition 38 can be located over the opening 40'.
  • the lower casting 25 is identical to the upper casting 24.
  • the lower casting 25 has a lower wall 45, a cylindrical side wall 46, and an upper wall 47 with a reduced diameter section 48 having external threads ⁇ 49 and with a still smaller diameter sleeve 50 extending upwardly from the reduced diameter section 48.
  • the chambers 53 and 54 are isolated by an inclined partition SS and a horizontal partition S6, the horizontal partition 56 joining or merging with a thickened section 57 of the cylindrical side wall 46.
  • the horizontal partition 56 has a threaded hole 60 through it that is located under the opening 58.
  • a commercially available one-inch galvanized pipe 62 having standard pipe threads at its ends 63 and 64 is threaded into the holes 42 and 60 ⁇ that are in the horizontal partitions 38 and S6 of the upper and lower castings 24 and 25.
  • the pipe 62 is about 53 inches long, but this length may be varied depending upon the desired capacity for the water storage and pressure maintainer 10.
  • a tube 66 of natural or synthetic rubber is connected between the upper and lower castings 24 and 25.
  • the tube 66 is, in the preferred embodiment, 48 inches long with a wall thickness of one-half inch and an internal diameter of 2% inches.
  • the hardness of the rubber for the tube 66 is within the range of 58 to 63 durometer.
  • the tube 66 is mounted with its wall surrounding the pipe 62 and with its ends 67 and 68 mounted on the sleeves 31 and 50, respectively, of the upper and lower castings 24 and 2S.
  • the ferrule has an annular skirt 72 surrounding the upper end 67 of the tube 66 and extending below the clamp 69.
  • An identical ferrule 73 is threaded onto the reduced section 48 of the upper wall 47 of the casting 25, with an annular skirt 74 extending upwardly and surrounding the end 68 of the tube 66 and extending above the clamp 70.
  • the pump 17 is operated by the conventional pressure switches (not shown) to start when the pressure in the pipe drops to a predetermined low value and to stop When the pressure in the pipe 15 increases to a predetermined high value.
  • the pump has operated to fully expand the tube 66 to the position shown in FIG. 4, the high pressure level will have been reached, and the pump 17 will stop.
  • the pressure within the tube 66 progressively drops, and the tube 66 progressively contracts until it finally reaches the condition illustrated in FIG. 2. In this condition, the water pressure reaches the low pressure setting at which the pump 17 again starts.
  • the rubber tube 66 In addition to acting as a water reservoir, the rubber tube 66 also acts as a pulsation dampener during operation of the pump 17 so that water which is supplied to the water service line is supplied at substantially uniform pressure.
  • the rubber tube 66 flexes outwardly and inwardly 4 with alternate operations of the pump 17 and consumption of water, its ends 67 and 68 are held in place by the clamps 69 and 70.
  • the skirts 72 and 74 of the ferrules 71 and 73 in extending past the clamps 69 and 70, substantially reduce localization of the areas where bending of the tube 66 occurs.
  • a water storage and pressure 4maintainer for use with a jet-type pump comprising an upper manifold, a first chamber in the upper manifold, a second chamber in the upper manifold, means isolating the first and second chambers from one another, means to connect a pipe for delivering a high speed stream of water from the pump to the first chamber, means for connecting a pipe to deliver well water from the second chamber to the pump, the second manifold having first and second chambers isolated from one another, means to connect a pipe for delivering high speed water from the first chamber to a jet injector, means for connecting a pipe for delivering well water from the jet injector to the second chamber of the second manifold, a central pipe communicating with the first chamber of the first manifold and the first chamber of the second manifold, an elastic expandable member connected between the manifolds surrounding and in spaced relation to the central pipe, the expandable 'member defining a water passage around the central pipe for the ow of well water from the second manifold to the first manif
  • the water storage and pressure maintainer of claim 1 including means to clamp one end of the expandable member to the first manifold and means to clamp the other end of the expandable member to the second manifold, and means to reduce localization of bending stresses around the clamping means during expansion and contraction of the expandable member.
  • each casting has an end wall, a cylindrical side wall, a lateral partition extending from the end wall and inclined relative to the axis of the side wall, a horizontal partition extending between the inclined partition and a side of the cylindrical wall, the firstl chamber being defined by the said side of the cylindrical wall, the horizontal partition, the inclined partition and the end wall.
  • each casting has an opening through its end opposite the said end wall, the second chamber communicating with the said opening.
  • a water storage and pressure maintainer comprising a pair of tubes, one tube surrounding but being spaced from the other, an upper manifold connected to the upper ends of the tubes, a lower manifold connected to the lower ends of the tubes, a first chamber in the upper manifold communicating with the inner tube for transmitting a high speed stream of water to the inner tube, a first chamber in the lower manifold communicating with the inner tube for delivering the high speed stream of water from the inner tube to a jet-injector, a second chamber in the lower manifold communicating with the space between the inner and outer tubes for delivering well water from the jet-injector to the said space, a second chamber in the upper manifold communicating with the said space for delivering well Water from the said space to the pump, and means to isolate the chamber of each manifold from one another.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Jet Pumps And Other Pumps (AREA)

Description

May 26, 1970 c. E. HAHN, JR
WATER STORAGE AND PRESSURE MAINTAINER FOR WELL PUMPS Filed oct. 24, 195s United States Patent O 3,514,220 WATER STORAGE AND PRESSURE MAINTAINER FOR WELL PUMPS Charles E. Hahn, Jr., 5138 Red Cedar Court, St. Louis, Mo. 63128 Filed Oct. 24, 1968, Ser. No. 770,218 Int. Cl. E03b 11/16;F04b 11/00 U.S. Cl. 417-151 10 Claims ABSTRACT OF THE DISCLOSURE A water storage and pressure maintainer for a jettype well pump having a pipe for conveying high speed water from the pump into the well and an expandable tube sur* rounding the pipe for expanding and storing water pumpedfrom the well, with upper and lower manifolds to which the pipe and tube are connected, the m-anifolds each having isolated chambers so that the high speed water is kept isolated from the well water.
BRIEF DESCRIPTION OF THE INVENTION There have been various water reservoirs and pulsation dampeners, but this water storage and pressure maintainer is especially designed for use with a jet-type well pump. The water storage and pressure maintainer is connected between the pump and the jet injector that operates with the pump. Both the pump and the jet injector are of any conventional design.
The water storage and pressure maintainer comprises identical upper and lower manifolds that are of cast iron. Each manifold has two separate chambers isolated from one another by internal partitions formed in the casting. A central pipe connects the first chamber of the upper manifold to the identical chamber in the lower manifold. An elastic tube, which is mounted to surround the central pipe but is spaced therefrom, is connected between the manifolds in communication with the second chamber of each manifold. A pipe from the first chamber of the upper manifold connects to the pump, and a pipe from the identical chamber of the lower manifold connects to the jet injector. A pipe from the other chamber of the upper manifold connects to the pump, and a pipe from the identical chamber of the lower manifold connects to the jet injector.
The elastic tube is clamped to the manifold, and there are ferrules to prevent localization of bending stresses when the tube expands and contracts. The pipe conveys a high speed stream of water from the pump to the jet injector with the high speed stream of water being isolated in the first chamber of each manifold from the second chamber of that manifold. Well water flows upwardly from the jet injector into the area between the central pipe and the surrounding elastic tube. The well water flows through the second chamber of each manifold. As the well water liows into the elastic tube, the elastic tube expands under the increasing pressure to create a reservoir for water to be supplied to the service line when the pump is not operating. The elastic tube also acts as a pulsation dampener when the pump does operate.
This water storage and pressure maintainer can be connected directly to a jet-type pump. The water storage and pressure maintainer of this invention also eliminates the necessity for a separate storage tank and a special tank house. The water storage and pressure maintainer may be installed anywhere and preferably is installed Within the well casing.
This water storage and pressure maintainer is econominal to manufacture and use. It has few components,
ice
and the identical form of the upper and lower castings 24 and 25 reduces manufacturing costs.
BRIEF DESCRIPTION OF THE DRAWING FIG. 1 `is a side elevation view of the water storage and pressure maintainer shown installed in a well casing between a jet pump and a jet injector. The jet pump and the jet injector are shown in dotted lines and the well casing is shown in longitudinal medial section.
FIG. 2 is an enlarged view `in longitudinal medial section of the water storage and pressure maintainer.
FIG. 3 is a view in section taken along the line 3-3 of FIG. 2.
FIG. 4 is a fragmentary view in section similar to the lower half of FIG. 2 but showing the expandable tube in expanded condition.
DETAILED DESCRIPTION OF THE INVENTION As shown in FIG. l, this water storage and pressure maintainer 10 is positioned within a well casing '11 extending below the ground G. here is a casing cover 12 having openings 13 and 14 through which two pipes 15 and 16 extend. The pipes |15 and 16 are connected to a conventional jet-type pump 17 and are also connected to the water storage and pressure maintainer 10 in a manner to be described. Two other pipes 18 and 19 lead from the water storage and pressure maintainer 10 to a conventional jet injector 20. The jet pump 17 with its jet injector 20 operates in the conventional way to deliver a high speed stream of water through the pipes 16 and 19 to the jet injector 20 with the pipes l15 and 18 carrying water from the jet injector 20 back to the pump 17. The jet injector 20 is of the conventional type that has a suitable check valve incorporated in its lower housing 21.
As shown in FIG. 2, the water storage and pressure maintainer 10 has upper and lower manifolds 24 and 25. The manifolds 24 and 25 are identical iron castings. The upper casting 24 has a top wall 26, a cylindrical side wall 27, and a bottom wall 28. The bottom wall 28 has a section 29 of reduced diameter with external threads 30, and a still smaller diameter sleeve 31 extends downwardly from the section 29.
There are two internally threaded openings 32 and 33 through the top wall 26 into which the pipes 15 and 116 respectively are threaded. The pipe 15 opens into a chamber 34, and the pipe I16 opens into a chamber 35. The chambers 34 and 35 are isolated from one another by an inclined partition 36 that extends laterally between opposite sides of the cylindrical wall 27. The partition 36 begins at tis upper end 37 from a juncture with the top wall 26 and extends in a plane that inclines toward the chamber 34 and terminates in a juncture with a horizontal partition 38. The horizontal partition 38 extends horizontally from the inclined partition 36 to a thickened section 39 of the cylindrical side wall 27.
An opening 40 through the sleeve 31 communicates with a lateral passage 41 below the horizontal partition 8. The lateral passage 41 in turn communicates with the chamber 34. The horizontal partition 38 extends across and defines the upper end of the opening 40 as clearly shown at FIG. 2 so that a threaded opening 42 in the horizontal partition 38 can be located over the opening 40'.
As already stated, the lower casting 25 is identical to the upper casting 24. In this respect, the lower casting 25 has a lower wall 45, a cylindrical side wall 46, and an upper wall 47 with a reduced diameter section 48 having external threads `49 and with a still smaller diameter sleeve 50 extending upwardly from the reduced diameter section 48. There are internally threaded holes 51 and 52 through the bottom wall 45 into which the pipes 18 and 19 are threaded, and these pipes 18 and 19 communicate with separate chambers 53 and 54. The chambers 53 and 54 are isolated by an inclined partition SS and a horizontal partition S6, the horizontal partition 56 joining or merging with a thickened section 57 of the cylindrical side wall 46. There is an opening 58 through the sleeve 50 that communicates with a lateral passage 59, the lateral passage 59 communicating with the chamber 53. The horizontal partition 56 has a threaded hole 60 through it that is located under the opening 58.
A commercially available one-inch galvanized pipe 62 having standard pipe threads at its ends 63 and 64 is threaded into the holes 42 and 60` that are in the horizontal partitions 38 and S6 of the upper and lower castings 24 and 25. In the preferred embodiment, the pipe 62 is about 53 inches long, but this length may be varied depending upon the desired capacity for the water storage and pressure maintainer 10.
A tube 66 of natural or synthetic rubber is connected between the upper and lower castings 24 and 25. The tube 66 is, in the preferred embodiment, 48 inches long with a wall thickness of one-half inch and an internal diameter of 2% inches. The hardness of the rubber for the tube 66 is within the range of 58 to 63 durometer. The tube 66 is mounted with its wall surrounding the pipe 62 and with its ends 67 and 68 mounted on the sleeves 31 and 50, respectively, of the upper and lower castings 24 and 2S. There are conventional steel banding straps or clamps 69 and 70 for clamping the ends 67 and 68 of the tube 66 to the sleeves 31 and 50. Also, there is a ferrule 71 threaded onto the reduced section 29 of the bottom wall 28 of the upper casting 24. The ferrule has an annular skirt 72 surrounding the upper end 67 of the tube 66 and extending below the clamp 69. An identical ferrule 73 is threaded onto the reduced section 48 of the upper wall 47 of the casting 25, with an annular skirt 74 extending upwardly and surrounding the end 68 of the tube 66 and extending above the clamp 70.
OPERATION As the high-speed stream of water is driven by the pump 17 into the pipe 16, that water ows from the pipe 16 into the chamber 35. From the chamber 35, the water fiows into the pipe 62. Because of the partitions 36 and 38, this stream of water is isolated from the chamber 34 and can only flow to the pipe 62. The high speed stream of water flows through the pipe 62 and into the chamber 54 of the lower casting 25. Again, the partitions 55 and 56 isolate the water in the chamber 54 from the chamber 53. The high speed water stream fiows from the chamber 54 to the pipe 19 by which it is delivered to the jet injector. When the pump operates, water is pumped from the well into the area between the tube 66 and the pipe 62, expanding the tube 66 to the condition shown in FIG. 4.
The pump 17 is operated by the conventional pressure switches (not shown) to start when the pressure in the pipe drops to a predetermined low value and to stop When the pressure in the pipe 15 increases to a predetermined high value. When the pump has operated to fully expand the tube 66 to the position shown in FIG. 4, the high pressure level will have been reached, and the pump 17 will stop. Now, there is a reservoir of water within the expanded tube 66 that is available for use in the service line. As the water is used, the pressure within the tube 66 progressively drops, and the tube 66 progressively contracts until it finally reaches the condition illustrated in FIG. 2. In this condition, the water pressure reaches the low pressure setting at which the pump 17 again starts.
In addition to acting as a water reservoir, the rubber tube 66 also acts as a pulsation dampener during operation of the pump 17 so that water which is supplied to the water service line is supplied at substantially uniform pressure.
As the rubber tube 66 flexes outwardly and inwardly 4 with alternate operations of the pump 17 and consumption of water, its ends 67 and 68 are held in place by the clamps 69 and 70. In addition, the skirts 72 and 74 of the ferrules 71 and 73, in extending past the clamps 69 and 70, substantially reduce localization of the areas where bending of the tube 66 occurs.
Various changes and modifications may be made within this invention as will be readily apparent to those skilled in the art. Such changes and modifications are within the scope and teaching of this invention as defined by the claims appended hereto.
What is claimed is:
1. A water storage and pressure 4maintainer for use with a jet-type pump comprising an upper manifold, a first chamber in the upper manifold, a second chamber in the upper manifold, means isolating the first and second chambers from one another, means to connect a pipe for delivering a high speed stream of water from the pump to the first chamber, means for connecting a pipe to deliver well water from the second chamber to the pump, the second manifold having first and second chambers isolated from one another, means to connect a pipe for delivering high speed water from the first chamber to a jet injector, means for connecting a pipe for delivering well water from the jet injector to the second chamber of the second manifold, a central pipe communicating with the first chamber of the first manifold and the first chamber of the second manifold, an elastic expandable member connected between the manifolds surrounding and in spaced relation to the central pipe, the expandable 'member defining a water passage around the central pipe for the ow of well water from the second manifold to the first manifold, the elastic member being expandable during operation of the pump to an increased volume for storing water and being flexible to operate as a pulsation dampener during operation of the pump.
2. The water storage and pressure maintainer of claim 1 wherein the manifolds are of identical configuration and each is of cast iron.
3. The water storage and pressure maintainer of claim 1 including means to clamp one end of the expandable member to the first manifold and means to clamp the other end of the expandable member to the second manifold, and means to reduce localization of bending stresses around the clamping means during expansion and contraction of the expandable member.
4. The water storage and pressure maintainer of claim 2 wherein each casting has an end wall, a cylindrical side wall, a lateral partition extending from the end wall and inclined relative to the axis of the side wall, a horizontal partition extending between the inclined partition and a side of the cylindrical wall, the firstl chamber being defined by the said side of the cylindrical wall, the horizontal partition, the inclined partition and the end wall.
5. The water storage and pressure maintainer of claim 4 wherein each casting has an opening through its end opposite the said end wall, the second chamber communicating with the said opening.
6. The water storage and pressure maintainer of claim 5 wherein the horizontal partition has a threaded opening for receiving an end of the said pipe, the threaded opening being aligned with the said opening through the manifold.
7. The water storage and pressure maintainer of claim 6 wherein the expandable member is rubber of about 58- 63 durometer hardness.
8. The water storage and pressure maintainer of claim 7 wherein the wall thickness of the tube is about onehalf inch.
9. A water storage and pressure maintainer comprising a pair of tubes, one tube surrounding but being spaced from the other, an upper manifold connected to the upper ends of the tubes, a lower manifold connected to the lower ends of the tubes, a first chamber in the upper manifold communicating with the inner tube for transmitting a high speed stream of water to the inner tube, a first chamber in the lower manifold communicating with the inner tube for delivering the high speed stream of water from the inner tube to a jet-injector, a second chamber in the lower manifold communicating with the space between the inner and outer tubes for delivering well water from the jet-injector to the said space, a second chamber in the upper manifold communicating with the said space for delivering well Water from the said space to the pump, and means to isolate the chamber of each manifold from one another.
10. The Water storage and pressure maintainer of claim 9 wherein the outer tube is expandable rubber.
6 References Cited UNITED STATES PATENTS 2/1956 Schaefer 103--223 7/1968 Jacuzzi 137-568 ROBERT M. WALKER, Primary Examiner
US3514220D 1968-10-24 1968-10-24 Water storage and pressure maintainer for well pumps Expired - Lifetime US3514220A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
US77021868A 1968-10-24 1968-10-24

Publications (1)

Publication Number Publication Date
US3514220A true US3514220A (en) 1970-05-26

Family

ID=25087837

Family Applications (1)

Application Number Title Priority Date Filing Date
US3514220D Expired - Lifetime US3514220A (en) 1968-10-24 1968-10-24 Water storage and pressure maintainer for well pumps

Country Status (1)

Country Link
US (1) US3514220A (en)

Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4032448A (en) * 1974-11-08 1977-06-28 D. Marten's Manufacturing Company Ltd. Sealed sewage ejector assembly
US6349765B1 (en) 1999-10-27 2002-02-26 In-Well Technologies, Inc. Water pressure system
US6371154B1 (en) * 1999-09-17 2002-04-16 Fisces By Opw, Inc. Apparatus and system for containment
US6910532B2 (en) 1999-10-27 2005-06-28 In-Well Technologies, Inc. Water pressure system with pressure tank installed within well casing of well
US7013924B1 (en) 2003-11-17 2006-03-21 In-Well Technologies Inc. Fluid pressure system including free floating bladder
US20060144455A1 (en) * 2003-11-17 2006-07-06 Meyers Kenneth A Fluid pressure system including free floating bladder
USRE41507E1 (en) * 2002-02-20 2010-08-17 In-Well Technologies, Inc. Air filter for a well
US20160230781A1 (en) * 2011-12-16 2016-08-11 Vanderbilt University Distributed piston elastomeric accumulator

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2734462A (en) * 1956-02-14 Submersible water pumping system
US3394733A (en) * 1965-01-27 1968-07-30 Jacuzzi Bros Inc Airless water pressure system

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2734462A (en) * 1956-02-14 Submersible water pumping system
US3394733A (en) * 1965-01-27 1968-07-30 Jacuzzi Bros Inc Airless water pressure system

Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4032448A (en) * 1974-11-08 1977-06-28 D. Marten's Manufacturing Company Ltd. Sealed sewage ejector assembly
US6371154B1 (en) * 1999-09-17 2002-04-16 Fisces By Opw, Inc. Apparatus and system for containment
US6349765B1 (en) 1999-10-27 2002-02-26 In-Well Technologies, Inc. Water pressure system
US6910532B2 (en) 1999-10-27 2005-06-28 In-Well Technologies, Inc. Water pressure system with pressure tank installed within well casing of well
US20050226751A1 (en) * 1999-10-27 2005-10-13 In-Well Technologies, Inc. Water pressure system with pressure tank installed within well casing of well
US7093651B2 (en) 1999-10-27 2006-08-22 In-Well Technologies, Inc. Water pressure system with pressure tank installed within well casing of well
USRE41507E1 (en) * 2002-02-20 2010-08-17 In-Well Technologies, Inc. Air filter for a well
US7013924B1 (en) 2003-11-17 2006-03-21 In-Well Technologies Inc. Fluid pressure system including free floating bladder
US20060144455A1 (en) * 2003-11-17 2006-07-06 Meyers Kenneth A Fluid pressure system including free floating bladder
US7255133B2 (en) 2003-11-17 2007-08-14 In-Well Technologies, Inc. Fluid pressure system including free floating bladder
US20160230781A1 (en) * 2011-12-16 2016-08-11 Vanderbilt University Distributed piston elastomeric accumulator
US9920775B2 (en) * 2011-12-16 2018-03-20 Vanderbilt University Distributed piston elastomeric accumulator

Similar Documents

Publication Publication Date Title
US3514220A (en) Water storage and pressure maintainer for well pumps
RU96113105A (en) TRANSPORTED MULTI-SECTION TANK FOR STORING AND MIXING CHEMICALS
US3263618A (en) Windshield washer pump
US3515172A (en) Water storage and pressure maintainer for well pumps
US3764235A (en) Pneumatic pump
FR2642499B1 (en) NON-RETURN VALVE FOR THE INTAKE IN A PUMP CHAMBER OF A VAPORIZED LIQUID
US1893685A (en) Pump pulsation reducing device
US5908288A (en) Fluid coupler for a stacked pump system
US2173207A (en) Device for pumping out boats
DE3378649D1 (en) PISTON MACHINE KAVING CYLINDERS IN STAR ARRANGEMENT
SU1333753A1 (en) Valve of self=priming pump
RU95121686A (en) OIL PRODUCTION SYSTEM
US2693758A (en) Discharge apparatus for pumps
SU1416765A1 (en) Piston-type inertial pump
JPH0323419Y2 (en)
SU1661537A1 (en) Device for stabilized feed
US122475A (en) Improvement in pumps
SU74147A1 (en) Rodless deep well pump
US175588A (en) Improvement in force-pumps
US775065A (en) Plumber's force-pump.
US907392A (en) Aspirator.
SU1123728A2 (en) Sprinkling machine
SU108229A1 (en) Submersible pump
SU113410A1 (en) Air compensator
SU1266958A1 (en) Compensator for delivery line of earth-drilling pumping unit