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Patent · US9810205B2 · B2 · US

Pump systems and associated methods for use with waterjet systems and other high pressure fluid systems

(11) Publication number
US9810205B2
(21) Application number
14/660,804
(22) Filing date
2015-03-17
(30) Priority date
2014-01-24
(43) Publication date
2017-11-07
(45) Date of grant
2017-11-07
(51) IPC
B24C 5/00; F04B 11/00; F04B 9/02; B26F 3/00; F01B 1/00; F04B 1/08; F04B 1/16; F04B 53/00; F04B 53/14
(52) CPC
  • F04B Positive-displacement machines for liquids; pumps: 11/005, 1/08, 1/16, 11/0058, 53/006, 53/144, 9/02
  • B24C Abrasive or related blasting with particulate material: 5/00
  • B26F Perforating; punching; cutting-out; stamping-out; severing by means other than cutting: 3/004
(73) Assignee
Omax Corp
(72) Inventors
Chidambaram Raghavan; Darren Stang; Scott D. Veenhuizen
(54) Title
Pump systems and associated methods for use with waterjet systems and other high pressure fluid systems
(57) Abstract

High pressure pump systems with reduced pressure ripple for use with waterjet systems and other systems are described herein. A pump system configured in accordance with a particular embodiment includes four reciprocating members operably coupled to a crankshaft at 90 degree phase angles. The reciprocating members can include plungers operably disposed in corresponding cylinders and configured to compress fluid (e.g., water) in the cylinders to pressures suitable for waterjet processing, such as pressures exceeding 30,000 psi.

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Claims (21)

  1. A waterjet system, comprising: a pressurizing device configured to pressurize a process fluid, wherein the pressurizing device includes: a crankcase, a crankshaft operably disposed within the crankcase, four reciprocating members operably coupled to the crankshaft, wherein each of the reciprocating members is operably coupled to the crankshaft with a corresponding connecting rod of length L, wherein rotation of the crankshaft moves each of the reciprocating members through a stroke distance S, and wherein 2.3≦L/S≦6.5, and four cylinders mounted to the crankcase, wherein each of the individual reciprocating members is operably disposed in a corresponding one of the individual cylinders; and a jet outlet downstream from the pressurizing device, the jet outlet being configured to receive the process fluid from the pressurizing device at a pressure greater than 30,000 psi and less than 150,000 psi and to direct a jet including the process fluid toward a workpiece.
  2. A waterjet system, comprising: a pressurizing device configured to pressurize a process fluid, wherein the pressurizing device includes: a crankcase, a crankshaft operably disposed within the crankcase, four reciprocating members operably coupled to the crankshaft, and four cylinders mounted to the crankcase, wherein each of the individual reciprocating members is operably disposed in a corresponding one of the individual cylinders, wherein each of the cylinders has associated therewith a dead volume Vd and a reciprocating member swept volume Vs, and wherein 0.5≦Vd/Vs≦4.0; and a jet outlet downstream from the pressurizing device, the jet outlet being configured to receive the process fluid from the pressurizing device at a pressure greater than 30,000 psi and less than 150,000 psi and to direct a jet including the process fluid toward a workpiece.
  3. A waterjet system, comprising: a pressurizing device configured to pressurize a process fluid, wherein the pressurizing device includes: a crankcase, a crankshaft operably disposed within the crankcase, four reciprocating members operably coupled to the crankshaft, and four cylinders mounted to the crankcase, wherein each of the individual reciprocating members is operably disposed in a corresponding one of the individual cylinders; a jet outlet downstream from the pressurizing device, the jet outlet being configured to receive the process fluid from the pressurizing device at a pressure greater than 30,000 psi and less than 150,000 psi and to direct a jet including the process fluid toward a workpiece; and a manifold having an internal volume Vo, wherein rotation of the crankshaft moves each of the reciprocating members through a cycle configured to draw fluid into the corresponding cylinder and drive fluid out of the corresponding cylinder and into the internal volume of the manifold, wherein each of the cylinders has associated therewith a reciprocating member swept volume Vs, and wherein 10≦Vo/(4Vs)≦150.
  4. A method for operating a waterjet system, the method comprising: pressurizing a fluid to a pressure greater than 30,000 psi and less than 150,000 psi using a quadruplex plunger pump, wherein: the pump includes: a cylinder, a reciprocating member operably disposed in the cylinder, a crankshaft, and a connecting rod of length L, the reciprocating member is operably coupled to the crankshaft via the connecting rod, pressurizing the fluid includes rotating the crankshaft to move the reciprocating member through a stroke distance S, and 2.3≦L/S≦6.5; feeding the fluid into a cutting head after pressurizing the fluid; and directing a jet including the fluid from the cutting head toward a workpiece to impact the workpiece.
  5. The method of claim 4 wherein pressurizing the fluid includes reciprocating four plungers of the pump in a phased relationship.
  6. The method of claim 5 wherein reciprocating the four plungers includes mechanically reciprocating the four plungers.
  7. The method of claim 5 wherein reciprocating four plungers includes reciprocating the four plungers in a phased relationship with a phase interval of 90 degrees between any given one of the reciprocating members and a sequentially following one of the reciprocating members.
  8. The method of claim 4 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 6 Hz to 170 Hz.
  9. The method of claim 4 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 33 Hz to 100 Hz.
  10. A method for operating a waterjet system, the method comprising: pressurizing a fluid to a pressure greater than 30,000 psi and less than 150,000 psi using a quadruplex plunger pump, wherein: the pump includes a cylinder and a reciprocating member operably disposed in the cylinder, pressurizing the fluid includes rotating a crankshaft of the pump to move the reciprocating member through a cycle in which the cylinder has associated therewith a dead volume Vd and a reciprocating member swept volume Vs, and 0.5<Vd/Vs<4.0; feeding the fluid into a cutting head after pressurizing the fluid; and directing a jet including the fluid from the cutting head toward a workpiece to impact the workpiece.
  11. The method of claim 10 wherein pressurizing the fluid includes reciprocating four plungers of the pump in a phased relationship.
  12. The method of claim 11 wherein reciprocating the four plungers includes mechanically reciprocating the four plungers.
  13. The method of claim 11 wherein reciprocating four plungers includes reciprocating the four plungers in a phased relationship with a phase interval of 90 degrees between any given one of the reciprocating members and a sequentially following one of the reciprocating members.
  14. The method of claim 10 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 6 Hz to 170 Hz.
  15. The method of claim 10 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 33 Hz to 100 Hz.
  16. A method for operating a waterjet system, the method comprising: pressurizing a fluid to a pressure greater than 30,000 psi and less than 150,000 psi using a quadruplex plunger pump, wherein: the pump includes a cylinder and a reciprocating member operably disposed in the cylinder, and pressurizing the fluid includes rotating a crankshaft of the pump to move the reciprocating member through a cycle in which the cylinder has associated therewith a reciprocating member swept volume Vs, driving the fluid out of the cylinder and into a manifold having an internal volume Vo, wherein 10<Vo/(4Vs)<150; feeding the fluid into a cutting head after pressurizing the fluid; and directing a jet including the fluid from the cutting head toward a workpiece to impact the workpiece.
  17. The method of claim 16 wherein pressurizing the fluid includes reciprocating four plungers of the pump in a phased relationship.
  18. The method of claim 17 wherein reciprocating the four plungers includes mechanically reciprocating the four plungers.
  19. The method of claim 17 wherein reciprocating four plungers includes reciprocating the four plungers in a phased relationship with a phase interval of 90 degrees between any given one of the reciprocating members and a sequentially following one of the reciprocating members.
  20. The method of claim 16 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 6 Hz to 170 Hz.
  21. The method of claim 16 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 33 Hz to 100 Hz.

Description

The present disclosure is directed generally to high and ultrahigh pressure pump systems and associated methods for use with fluid-jet systems and other systems.

There are various commercial and industrial uses for high pressure fluid pump systems operating at pressures greater than 20,000 psi. Such pump systems can be used in, for example, fluid-jet cutting systems, fluid-jet cleaning systems, etc. Fluid-jet cutting systems often use reciprocating, positive displacement pumps (e.g., crankshaft-driven plunger pumps). Crankshaft-driven plunger pumps, such as triplex plunger pumps (i.e., pumps having three cylinders and associated plungers) operating at outlet pressures of 20,000 psi or more produce pressure pulsations caused by the cyclic output from the pump cylinders. These pressure pulsations can produce undesirably high levels of pressure ripple downstream from the pump. The pressure ripple can be partially mitigated by use of a pump output manifold that contains a volume of the high pressure fluid before it flows to downstream applications.

Conventional low pressure crankshaft-driven, reciprocating positive displacement pumps operating at outlet pressures of 7,500 psi or less typically use pistons instead of plungers. One reason for this is that piston pumps generally have much higher volumetric efficiencies that plunger pumps. Piston pumps, however, can also create significant pressure pulsation during operation. As a result, such pumps are typically used with pulsation dampeners to reduce pressure ripple downstream of the pump.

Citations (72)

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Record as JSON
{
  "publication_number": "US9810205B2",
  "country": "US",
  "kind": "B2",
  "title": "Pump systems and associated methods for use with waterjet systems and other high pressure fluid systems",
  "abstract": "High pressure pump systems with reduced pressure ripple for use with waterjet systems and other systems are described herein. A pump system configured in accordance with a particular embodiment includes four reciprocating members operably coupled to a crankshaft at 90 degree phase angles. The reciprocating members can include plungers operably disposed in corresponding cylinders and configured to compress fluid (e.g., water) in the cylinders to pressures suitable for waterjet processing, such as pressures exceeding 30,000 psi.",
  "claims": [
    "1. A waterjet system, comprising: a pressurizing device configured to pressurize a process fluid, wherein the pressurizing device includes: a crankcase, a crankshaft operably disposed within the crankcase, four reciprocating members operably coupled to the crankshaft, wherein each of the reciprocating members is operably coupled to the crankshaft with a corresponding connecting rod of length L, wherein rotation of the crankshaft moves each of the reciprocating members through a stroke distance S, and wherein 2.3≦L/S≦6.5, and four cylinders mounted to the crankcase, wherein each of the individual reciprocating members is operably disposed in a corresponding one of the individual cylinders; and a jet outlet downstream from the pressurizing device, the jet outlet being configured to receive the process fluid from the pressurizing device at a pressure greater than 30,000 psi and less than 150,000 psi and to direct a jet including the process fluid toward a workpiece.",
    "2. A waterjet system, comprising: a pressurizing device configured to pressurize a process fluid, wherein the pressurizing device includes: a crankcase, a crankshaft operably disposed within the crankcase, four reciprocating members operably coupled to the crankshaft, and four cylinders mounted to the crankcase, wherein each of the individual reciprocating members is operably disposed in a corresponding one of the individual cylinders, wherein each of the cylinders has associated therewith a dead volume Vd and a reciprocating member swept volume Vs, and wherein 0.5≦Vd/Vs≦4.0; and a jet outlet downstream from the pressurizing device, the jet outlet being configured to receive the process fluid from the pressurizing device at a pressure greater than 30,000 psi and less than 150,000 psi and to direct a jet including the process fluid toward a workpiece.",
    "3. A waterjet system, comprising: a pressurizing device configured to pressurize a process fluid, wherein the pressurizing device includes: a crankcase, a crankshaft operably disposed within the crankcase, four reciprocating members operably coupled to the crankshaft, and four cylinders mounted to the crankcase, wherein each of the individual reciprocating members is operably disposed in a corresponding one of the individual cylinders; a jet outlet downstream from the pressurizing device, the jet outlet being configured to receive the process fluid from the pressurizing device at a pressure greater than 30,000 psi and less than 150,000 psi and to direct a jet including the process fluid toward a workpiece; and a manifold having an internal volume Vo, wherein rotation of the crankshaft moves each of the reciprocating members through a cycle configured to draw fluid into the corresponding cylinder and drive fluid out of the corresponding cylinder and into the internal volume of the manifold, wherein each of the cylinders has associated therewith a reciprocating member swept volume Vs, and wherein 10≦Vo/(4Vs)≦150.",
    "4. A method for operating a waterjet system, the method comprising: pressurizing a fluid to a pressure greater than 30,000 psi and less than 150,000 psi using a quadruplex plunger pump, wherein: the pump includes: a cylinder, a reciprocating member operably disposed in the cylinder, a crankshaft, and a connecting rod of length L, the reciprocating member is operably coupled to the crankshaft via the connecting rod, pressurizing the fluid includes rotating the crankshaft to move the reciprocating member through a stroke distance S, and 2.3≦L/S≦6.5; feeding the fluid into a cutting head after pressurizing the fluid; and directing a jet including the fluid from the cutting head toward a workpiece to impact the workpiece.",
    "5. The method of claim 4 wherein pressurizing the fluid includes reciprocating four plungers of the pump in a phased relationship.",
    "6. The method of claim 5 wherein reciprocating the four plungers includes mechanically reciprocating the four plungers.",
    "7. The method of claim 5 wherein reciprocating four plungers includes reciprocating the four plungers in a phased relationship with a phase interval of 90 degrees between any given one of the reciprocating members and a sequentially following one of the reciprocating members.",
    "8. The method of claim 4 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 6 Hz to 170 Hz.",
    "9. The method of claim 4 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 33 Hz to 100 Hz.",
    "10. A method for operating a waterjet system, the method comprising: pressurizing a fluid to a pressure greater than 30,000 psi and less than 150,000 psi using a quadruplex plunger pump, wherein: the pump includes a cylinder and a reciprocating member operably disposed in the cylinder, pressurizing the fluid includes rotating a crankshaft of the pump to move the reciprocating member through a cycle in which the cylinder has associated therewith a dead volume Vd and a reciprocating member swept volume Vs, and 0.5<Vd/Vs<4.0; feeding the fluid into a cutting head after pressurizing the fluid; and directing a jet including the fluid from the cutting head toward a workpiece to impact the workpiece.",
    "11. The method of claim 10 wherein pressurizing the fluid includes reciprocating four plungers of the pump in a phased relationship.",
    "12. The method of claim 11 wherein reciprocating the four plungers includes mechanically reciprocating the four plungers.",
    "13. The method of claim 11 wherein reciprocating four plungers includes reciprocating the four plungers in a phased relationship with a phase interval of 90 degrees between any given one of the reciprocating members and a sequentially following one of the reciprocating members.",
    "14. The method of claim 10 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 6 Hz to 170 Hz.",
    "15. The method of claim 10 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 33 Hz to 100 Hz.",
    "16. A method for operating a waterjet system, the method comprising: pressurizing a fluid to a pressure greater than 30,000 psi and less than 150,000 psi using a quadruplex plunger pump, wherein: the pump includes a cylinder and a reciprocating member operably disposed in the cylinder, and pressurizing the fluid includes rotating a crankshaft of the pump to move the reciprocating member through a cycle in which the cylinder has associated therewith a reciprocating member swept volume Vs, driving the fluid out of the cylinder and into a manifold having an internal volume Vo, wherein 10<Vo/(4Vs)<150; feeding the fluid into a cutting head after pressurizing the fluid; and directing a jet including the fluid from the cutting head toward a workpiece to impact the workpiece.",
    "17. The method of claim 16 wherein pressurizing the fluid includes reciprocating four plungers of the pump in a phased relationship.",
    "18. The method of claim 17 wherein reciprocating the four plungers includes mechanically reciprocating the four plungers.",
    "19. The method of claim 17 wherein reciprocating four plungers includes reciprocating the four plungers in a phased relationship with a phase interval of 90 degrees between any given one of the reciprocating members and a sequentially following one of the reciprocating members.",
    "20. The method of claim 16 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 6 Hz to 170 Hz.",
    "21. The method of claim 16 wherein pressurizing the fluid includes individually reciprocating four plungers of the pump at 33 Hz to 100 Hz."
  ],
  "description_excerpt": "The present disclosure is directed generally to high and ultrahigh pressure pump systems and associated methods for use with fluid-jet systems and other systems.\n\nThere are various commercial and industrial uses for high pressure fluid pump systems operating at pressures greater than 20,000 psi. Such pump systems can be used in, for example, fluid-jet cutting systems, fluid-jet cleaning systems, etc. Fluid-jet cutting systems often use reciprocating, positive displacement pumps (e.g., crankshaft-driven plunger pumps). Crankshaft-driven plunger pumps, such as triplex plunger pumps (i.e., pumps having three cylinders and associated plungers) operating at outlet pressures of 20,000 psi or more produce pressure pulsations caused by the cyclic output from the pump cylinders. These pressure pulsations can produce undesirably high levels of pressure ripple downstream from the pump. The pressure ripple can be partially mitigated by use of a pump output manifold that contains a volume of the high pressure fluid before it flows to downstream applications.\n\nConventional low pressure crankshaft-driven, reciprocating positive displacement pumps operating at outlet pressures of 7,500 psi or less typically use pistons instead of plungers. One reason for this is that piston pumps generally have much higher volumetric efficiencies that plunger pumps. Piston pumps, however, can also create significant pressure pulsation during operation. As a result, such pumps are typically used with pulsation dampeners to reduce pressure ripple downstream of the pump.",
  "cpc": [
    "F04B 11/005",
    "B24C 5/00",
    "B26F 3/004",
    "F04B 1/08",
    "F04B 1/16",
    "F04B 11/0058",
    "F04B 53/006",
    "F04B 53/144",
    "F04B 9/02"
  ],
  "ipc": [
    "B24C 5/00",
    "F04B 11/00",
    "F04B 9/02",
    "B26F 3/00",
    "F01B 1/00",
    "F04B 1/08",
    "F04B 1/16",
    "F04B 53/00",
    "F04B 53/14"
  ],
  "assignees": [
    "Omax Corp"
  ],
  "inventors": [
    "Chidambaram Raghavan",
    "Darren Stang",
    "Scott D. Veenhuizen"
  ],
  "filing_date": "2015-03-17",
  "publication_date": "2017-11-07",
  "grant_date": "2017-11-07",
  "priority_date": "2014-01-24",
  "application_number": "US-201514660804-A",
  "family_id": "52782082",
  "cited_by_count": 17,
  "citations": [
    "US2340975A",
    "US2570698A",
    "US2463552A",
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    "US2819835A",
    "US3114326A",
    "GB1078145A",
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    "US20070009367A1",
    "US20080000065A1",
    "US7905711B2",
    "US20100166573A1",
    "US8322997B2",
    "US20100310384A1",
    "US20120186518A1",
    "CN201650635U",
    "US20120201706A1",
    "CN201827039U",
    "US20120272764A1",
    "US20130112074A1",
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  ]
}

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