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Patent · US10478753B1 · B1 · US

Apparatus and method for treatment of hydraulic fracturing fluid during hydraulic fracturing

(11) Publication number
US10478753B1
(21) Application number
16/228,658
(22) Filing date
2018-12-20
(30) Priority date
2018-12-20
(43) Publication date
2019-11-19
(45) Date of grant
2019-11-19
(52) CPC
  • B01D Separation: 19/0057
  • E21B Earth or rock drilling; obtaining oil, gas, water, soluble or meltable materials or a slurry of minerals from wells: 43/26, 43/2607
(73) Assignee
HAVEN TECH SOLUTIONS LLC; CH INT EQUIPMENT LTD
(54) Title
Apparatus and method for treatment of hydraulic fracturing fluid during hydraulic fracturing
(57) Abstract

A hydraulic fracturing system utilizes a multi-phase separation apparatus to separate gas entrained in hydraulic fracturing fluids during the blending process prior to introduction of hydraulic fracturing fluid into high pressure fracturing pumps by directing hydraulic fracturing fluids from a blender through a plurality of loops and thereafter, directing a portion of the separated fluid into a vortex cluster system.

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Claims (30)

  1. A hydraulic fracturing system comprising: a liquid source, an additive source, a blender, a pump in fluid communication with the blender, and a gas-liquid two-phase flow separator system having a liquid outlet and a gas outlet, the gas-liquid two-phase flow separator system disposed inline between the blender and the pump.
  2. The hydraulic fracturing system of claim 1, wherein the two-phase flow separator system comprises a fluid vessel having a height H along a substantially vertical axis, an upper vessel portion and a lower vessel portion with a port in the upper portion and a port in the lower portion, the fluid vessel formed of a vessel wall so as to have an outer vessel diameter and an inner vessel diameter and define a vessel interior; a first pipe having a first end and a second end, the first pipe disposed about the vessel so as to form a plurality of descending curvilinear pipe loops arranged adjacent one another along the vertical axis, said pipe loops adjacent one another in a vertically stacked arrangement; a riser having a first lower end in fluid communication with the first pipe adjacent the second end of the first pipe and the riser having a second upper end in fluid communication with the fluid vessel.
  3. The hydraulic fracturing system of claim 2, wherein the plurality of curvilinear pipe loops each have an inner diameter that is larger than the vessel outer diameter and are in a vertically stacked arrangement about the fluid vessel so that each curvilinear pipe loop is substantially horizontal.
  4. The hydraulic fracturing system of claim 2, wherein the first pipe includes a substantially horizontal portion adjacent the second end of the first pipe with a liquid outlet at the second end of the first pipe and a gas outlet port disposed in an upper surface of the substantially horizontal portion, the first lower end of the substantially vertical riser in fluid communication with the gas outlet port.
  5. The hydraulic fracturing system of claim 2, further comprising a liquid flow line in fluid communication with the second end of the first pipe, the liquid flow line including a first outlet in fluid communication with the lower portion of the fluid vessel and a second outlet downstream of first outlet.
  6. The hydraulic fracturing system of claim 5, further comprising a backpressure device positioned along the liquid flowline upstream of the first outlet.
  7. The hydraulic fracturing system of claim 2, further comprising a vortex cluster system disposed within the interior of the fluid vessel and in fluid communication with the second upper end of the riser.
  8. The hydraulic fracturing system of claim 7, wherein the vortex cluster system comprises a fluid injection conduit forming a channel having a first end in fluid communication with the riser and a second end adjacent at least one vertically positioned vortex tube extending down into said vessel, each vortex tube having a cylindrical, vertical sidewall portion with an opening in the sidewall, the opening adjacent the channel.
  9. A hydraulic fracturing system comprising: a hydraulic fracturing blender having an outlet, a hydraulic fracturing pump having an inlet in fluid communication with the blender outlet, and a gas-liquid two-phase flow separator system having a liquid outlet and a gas outlet, the gas-liquid two-phase flow separator system disposed inline between the hydraulic fracturing blender outlet and the hydraulic fracturing pump inlet.
  10. The hydraulic fracturing system of claim 9, wherein the two-phase flow separator system comprises a fluid vessel having a height H along a substantially vertical axis, an upper vessel portion and a lower vessel portion with a port in the upper portion and a port in the lower portion, the fluid vessel formed of a vessel wall so as to have an outer vessel diameter and an inner vessel diameter and define a vessel interior; a first pipe having a first end and a second end, the first pipe disposed about the vessel so as to form a plurality of descending curvilinear pipe loops arranged adjacent one another along the vertical axis, said pipe loops adjacent one another in a vertically stacked arrangement; a riser having a first lower end in fluid communication with the first pipe adjacent the second end of the first pipe and the riser having a second upper end in fluid communication with the fluid vessel.
  11. The hydraulic fracturing system of claim 10, wherein the plurality of curvilinear pipe loops each have an inner diameter that is larger than the vessel outer diameter and are in a vertically stacked arrangement about the fluid vessel so that each curvilinear pipe loop is substantially horizontal.
  12. The hydraulic fracturing system of claim 10, wherein the first pipe includes a substantially horizontal portion adjacent the second end of the first pipe with a liquid outlet at the second end of the first pipe and a gas outlet port disposed in an upper surface of the substantially horizontal portion, the first lower end of the substantially vertical riser in fluid communication with the gas outlet port.
  13. The hydraulic fracturing system of claim 10, further comprising a liquid flow line in fluid communication with the second end of the first pipe, the liquid flow line including a first outlet in fluid communication with the lower portion of the fluid vessel and a second outlet downstream of first outlet.
  14. The hydraulic fracturing system of claim 13, further comprising a backpressure device positioned along the liquid flowline upstream of the first outlet.
  15. The hydraulic fracturing system of claim 10, further comprising a vortex cluster system disposed within the interior of the fluid vessel and in fluid communication with the second upper end of the riser.
  16. The hydraulic fracturing system of claim 15, wherein the vortex cluster system comprises a fluid injection conduit forming a channel having a first end in fluid communication with the riser and a second end adjacent at least one vertically positioned vortex tube extending down into said vessel, each vortex tube having a cylindrical, vertical sidewall portion with an opening in the sidewall, the opening adjacent the channel.
  17. A hydraulic fracturing system comprising: a liquid source, an additive source, a blender, a pump in fluid communication with the blender, and a two-phase flow separator system disposed inline between the blender and the high-pressure pump, the two-phase flow separator system comprising a fluid vessel having a height H along a substantially vertical axis, an upper vessel portion and a lower vessel portion with a port in the upper portion and a port in the lower portion, the fluid vessel formed of a vessel wall so as to have an outer vessel diameter and an inner vessel diameter and define a vessel interior; a first pipe having a first end and a second end, the first pipe disposed about the vessel so as to form a plurality of descending curvilinear pipe loops arranged adjacent one another along the vertical axis, said pipe loops adjacent one another in a vertically stacked arrangement; and a riser having a first lower end in fluid communication with the first pipe adjacent the second end of the first pipe and the riser having a second upper end in fluid communication with the fluid vessel.
  18. The hydraulic fracturing system of claim 17, further comprising a liquid flow line in fluid communication with the second end of the first pipe, the liquid flow line including a first outlet in fluid communication with the lower portion of the fluid vessel and a second outlet downstream of first outlet.
  19. The hydraulic fracturing system of claim 18, further comprising a backpressure device positioned along the liquid flowline upstream of the first outlet.
  20. The hydraulic fracturing system of claim 17, further comprising a vortex cluster system disposed within the interior of the fluid vessel and in fluid communication with the second upper end of the riser.
  21. The hydraulic fracturing system of claim 20, wherein the vortex cluster system comprises a fluid injection conduit forming a channel having a first end in fluid communication with the riser and a second end adjacent at least one vertically positioned vortex tube extending down into said vessel, each vortex tube having a cylindrical, vertical sidewall portion with an opening in the sidewall, the opening adjacent the channel.
  22. The hydraulic fracturing system of claim 21, wherein vortex cluster system channel extends from a first end to a second end, wherein the channel is linear between the first end and the second end with a cross-sectional channel area that tapers between the first end and the second end, the channel characterized by opposing sides with at least one vortex tube positioned along each opposing side of the channel.
  23. The hydraulic fracturing system of claim 17, further comprising a hydration unit in fluid communication with the blender.
  24. The hydraulic fracturing system of claim 17, wherein the pump has an operating pressure of at least 7000 psi.
  25. A method of hydraulic fracturing of a wellbore comprising: introducing a fluid into a blender; introducing an additive into a blender; utilizing the blender to mix the fluid with the additive to produce a hydraulic fracturing fluid; directing the hydraulic fracturing fluid downward through a plurality of descending curvilinear loops to stratify the hydraulic fracturing fluid into a first fluid component comprising primarily a gas phase and a second fluid component comprising primarily a liquid phase; separating the first fluid component from the stratified hydraulic fracturing fluid; and directing the second fluid component into a hydraulic fracturing pump.
  26. The method of claim 25, further comprising directing the removed first fluid component into a vortex tube and separating the first fluid component into a third fluid component comprising primarily a liquid phase and a fourth fluid component comprising primarily a gas phase; and directing the third fluid component into a hydraulic fracturing pump.
  27. The method of claim 25, further comprising utilizing the hydraulic fracturing pump to inject the second fluid component into a wellbore.
  28. The method of claim 25, further comprising applying back pressure to the second fluid component to form a wave of liquid downstream of first fluid component separation to promote flow of the first fluid component away from the stratified two-phase fluid stream.
  29. The method of claim 25, wherein the additive is a chemical.
  30. The method of claim 25, wherein the additive is a proppant.

Citations (108)

  • CN106474828A
  • DE19923901A1
  • DE3707071C1
  • EP1352679A1
  • EP1353038A1
  • EP1518595B1
  • FR3063912A1
  • GB2260087A
  • GB2553004A
  • GB499024A
  • KR101086778B1
  • US2002052927A1
  • US2002067721A1
  • US2002131426A1
  • US2002134546A1
  • US2003043802A1
  • US2004163129A1
  • US2004244043A1
  • US2005078699A1
  • US2005150827A1
  • US2007062863A1
  • US2007131429A1
  • US2008017594A1
  • US2008210097A1
  • US2008236839A1
  • US2009025936A1
  • US2009056939A1
  • US2009084263A1
  • US2009242197A1
  • US2009266550A1
  • US2010084352A1
  • US2010187186A1
  • US2011270431A1
  • US2012152855A1
  • US2012160502A1
  • US2012199000A1
  • US2015167415A1
  • US2017275521A1
  • US2049578A
  • US2468070A
  • US3346117A
  • US3450264A
  • US3543846A
  • US3670507A
  • US4438817A
  • US4474035A
  • US4527632A
  • US4816044A
  • US5004552A
  • US5154741A
  • US5165450A
  • US5248421A
  • US5286375A
  • US5431228A
  • US5707427A
  • US5749945A
  • US6062213A
  • US6068053A
  • US6197095B1
  • US6276455B1
  • US6280000B1
  • US6569323B1
  • US6651745B1
  • US6773605B2
  • US6857132B1
  • US6989103B2
  • US7006500B1
  • US7103772B2
  • US7134498B2
  • US7152682B2
  • US7209442B1
  • US7279098B2
  • US7314559B2
  • US7331396B2
  • US7363982B2
  • US7497263B2
  • US7532627B2
  • US7539208B2
  • US7569097B2
  • US7613209B1
  • US7630361B2
  • US7646786B2
  • US7701951B2
  • US7720101B2
  • US7773594B2
  • US7782898B2
  • US7817553B2
  • US7835274B2
  • US7864686B2
  • US7865727B2
  • US7905946B1
  • US7957305B2
  • US8149833B2
  • US8160098B1
  • US8255682B2
  • US8419833B2
  • US8797854B2
  • US8861546B2
  • US9320989B2
  • US9435185B2
  • US9441430B2
  • US9722850B2
  • US9932732B1
  • WO2005068044A1
  • WO2006020559A2
  • WO2006020559A3
  • WO2012040252A2
  • WO2017100422A1
Record as JSON
{
  "publication_number": "US10478753B1",
  "country": "US",
  "kind": "B1",
  "title": "Apparatus and method for treatment of hydraulic fracturing fluid during hydraulic fracturing",
  "abstract": "A hydraulic fracturing system utilizes a multi-phase separation apparatus to separate gas entrained in hydraulic fracturing fluids during the blending process prior to introduction of hydraulic fracturing fluid into high pressure fracturing pumps by directing hydraulic fracturing fluids from a blender through a plurality of loops and thereafter, directing a portion of the separated fluid into a vortex cluster system.",
  "claims": [
    "1. A hydraulic fracturing system comprising: a liquid source, an additive source, a blender, a pump in fluid communication with the blender, and a gas-liquid two-phase flow separator system having a liquid outlet and a gas outlet, the gas-liquid two-phase flow separator system disposed inline between the blender and the pump.",
    "2. The hydraulic fracturing system of claim 1, wherein the two-phase flow separator system comprises a fluid vessel having a height H along a substantially vertical axis, an upper vessel portion and a lower vessel portion with a port in the upper portion and a port in the lower portion, the fluid vessel formed of a vessel wall so as to have an outer vessel diameter and an inner vessel diameter and define a vessel interior; a first pipe having a first end and a second end, the first pipe disposed about the vessel so as to form a plurality of descending curvilinear pipe loops arranged adjacent one another along the vertical axis, said pipe loops adjacent one another in a vertically stacked arrangement; a riser having a first lower end in fluid communication with the first pipe adjacent the second end of the first pipe and the riser having a second upper end in fluid communication with the fluid vessel.",
    "3. The hydraulic fracturing system of claim 2, wherein the plurality of curvilinear pipe loops each have an inner diameter that is larger than the vessel outer diameter and are in a vertically stacked arrangement about the fluid vessel so that each curvilinear pipe loop is substantially horizontal.",
    "4. The hydraulic fracturing system of claim 2, wherein the first pipe includes a substantially horizontal portion adjacent the second end of the first pipe with a liquid outlet at the second end of the first pipe and a gas outlet port disposed in an upper surface of the substantially horizontal portion, the first lower end of the substantially vertical riser in fluid communication with the gas outlet port.",
    "5. The hydraulic fracturing system of claim 2, further comprising a liquid flow line in fluid communication with the second end of the first pipe, the liquid flow line including a first outlet in fluid communication with the lower portion of the fluid vessel and a second outlet downstream of first outlet.",
    "6. The hydraulic fracturing system of claim 5, further comprising a backpressure device positioned along the liquid flowline upstream of the first outlet.",
    "7. The hydraulic fracturing system of claim 2, further comprising a vortex cluster system disposed within the interior of the fluid vessel and in fluid communication with the second upper end of the riser.",
    "8. The hydraulic fracturing system of claim 7, wherein the vortex cluster system comprises a fluid injection conduit forming a channel having a first end in fluid communication with the riser and a second end adjacent at least one vertically positioned vortex tube extending down into said vessel, each vortex tube having a cylindrical, vertical sidewall portion with an opening in the sidewall, the opening adjacent the channel.",
    "9. A hydraulic fracturing system comprising: a hydraulic fracturing blender having an outlet, a hydraulic fracturing pump having an inlet in fluid communication with the blender outlet, and a gas-liquid two-phase flow separator system having a liquid outlet and a gas outlet, the gas-liquid two-phase flow separator system disposed inline between the hydraulic fracturing blender outlet and the hydraulic fracturing pump inlet.",
    "10. The hydraulic fracturing system of claim 9, wherein the two-phase flow separator system comprises a fluid vessel having a height H along a substantially vertical axis, an upper vessel portion and a lower vessel portion with a port in the upper portion and a port in the lower portion, the fluid vessel formed of a vessel wall so as to have an outer vessel diameter and an inner vessel diameter and define a vessel interior; a first pipe having a first end and a second end, the first pipe disposed about the vessel so as to form a plurality of descending curvilinear pipe loops arranged adjacent one another along the vertical axis, said pipe loops adjacent one another in a vertically stacked arrangement; a riser having a first lower end in fluid communication with the first pipe adjacent the second end of the first pipe and the riser having a second upper end in fluid communication with the fluid vessel.",
    "11. The hydraulic fracturing system of claim 10, wherein the plurality of curvilinear pipe loops each have an inner diameter that is larger than the vessel outer diameter and are in a vertically stacked arrangement about the fluid vessel so that each curvilinear pipe loop is substantially horizontal.",
    "12. The hydraulic fracturing system of claim 10, wherein the first pipe includes a substantially horizontal portion adjacent the second end of the first pipe with a liquid outlet at the second end of the first pipe and a gas outlet port disposed in an upper surface of the substantially horizontal portion, the first lower end of the substantially vertical riser in fluid communication with the gas outlet port.",
    "13. The hydraulic fracturing system of claim 10, further comprising a liquid flow line in fluid communication with the second end of the first pipe, the liquid flow line including a first outlet in fluid communication with the lower portion of the fluid vessel and a second outlet downstream of first outlet.",
    "14. The hydraulic fracturing system of claim 13, further comprising a backpressure device positioned along the liquid flowline upstream of the first outlet.",
    "15. The hydraulic fracturing system of claim 10, further comprising a vortex cluster system disposed within the interior of the fluid vessel and in fluid communication with the second upper end of the riser.",
    "16. The hydraulic fracturing system of claim 15, wherein the vortex cluster system comprises a fluid injection conduit forming a channel having a first end in fluid communication with the riser and a second end adjacent at least one vertically positioned vortex tube extending down into said vessel, each vortex tube having a cylindrical, vertical sidewall portion with an opening in the sidewall, the opening adjacent the channel.",
    "17. A hydraulic fracturing system comprising: a liquid source, an additive source, a blender, a pump in fluid communication with the blender, and a two-phase flow separator system disposed inline between the blender and the high-pressure pump, the two-phase flow separator system comprising a fluid vessel having a height H along a substantially vertical axis, an upper vessel portion and a lower vessel portion with a port in the upper portion and a port in the lower portion, the fluid vessel formed of a vessel wall so as to have an outer vessel diameter and an inner vessel diameter and define a vessel interior; a first pipe having a first end and a second end, the first pipe disposed about the vessel so as to form a plurality of descending curvilinear pipe loops arranged adjacent one another along the vertical axis, said pipe loops adjacent one another in a vertically stacked arrangement; and a riser having a first lower end in fluid communication with the first pipe adjacent the second end of the first pipe and the riser having a second upper end in fluid communication with the fluid vessel.",
    "18. The hydraulic fracturing system of claim 17, further comprising a liquid flow line in fluid communication with the second end of the first pipe, the liquid flow line including a first outlet in fluid communication with the lower portion of the fluid vessel and a second outlet downstream of first outlet.",
    "19. The hydraulic fracturing system of claim 18, further comprising a backpressure device positioned along the liquid flowline upstream of the first outlet.",
    "20. The hydraulic fracturing system of claim 17, further comprising a vortex cluster system disposed within the interior of the fluid vessel and in fluid communication with the second upper end of the riser.",
    "21. The hydraulic fracturing system of claim 20, wherein the vortex cluster system comprises a fluid injection conduit forming a channel having a first end in fluid communication with the riser and a second end adjacent at least one vertically positioned vortex tube extending down into said vessel, each vortex tube having a cylindrical, vertical sidewall portion with an opening in the sidewall, the opening adjacent the channel.",
    "22. The hydraulic fracturing system of claim 21, wherein vortex cluster system channel extends from a first end to a second end, wherein the channel is linear between the first end and the second end with a cross-sectional channel area that tapers between the first end and the second end, the channel characterized by opposing sides with at least one vortex tube positioned along each opposing side of the channel.",
    "23. The hydraulic fracturing system of claim 17, further comprising a hydration unit in fluid communication with the blender.",
    "24. The hydraulic fracturing system of claim 17, wherein the pump has an operating pressure of at least 7000 psi.",
    "25. A method of hydraulic fracturing of a wellbore comprising: introducing a fluid into a blender; introducing an additive into a blender; utilizing the blender to mix the fluid with the additive to produce a hydraulic fracturing fluid; directing the hydraulic fracturing fluid downward through a plurality of descending curvilinear loops to stratify the hydraulic fracturing fluid into a first fluid component comprising primarily a gas phase and a second fluid component comprising primarily a liquid phase; separating the first fluid component from the stratified hydraulic fracturing fluid; and directing the second fluid component into a hydraulic fracturing pump.",
    "26. The method of claim 25, further comprising directing the removed first fluid component into a vortex tube and separating the first fluid component into a third fluid component comprising primarily a liquid phase and a fourth fluid component comprising primarily a gas phase; and directing the third fluid component into a hydraulic fracturing pump.",
    "27. The method of claim 25, further comprising utilizing the hydraulic fracturing pump to inject the second fluid component into a wellbore.",
    "28. The method of claim 25, further comprising applying back pressure to the second fluid component to form a wave of liquid downstream of first fluid component separation to promote flow of the first fluid component away from the stratified two-phase fluid stream.",
    "29. The method of claim 25, wherein the additive is a chemical.",
    "30. The method of claim 25, wherein the additive is a proppant."
  ],
  "cpc": [
    "B01D 19/0057",
    "E21B 43/26",
    "E21B 43/2607"
  ],
  "assignees": [
    "HAVEN TECH SOLUTIONS LLC",
    "CH INT EQUIPMENT LTD"
  ],
  "filing_date": "2018-12-20",
  "publication_date": "2019-11-19",
  "grant_date": "2019-11-19",
  "priority_date": "2018-12-20",
  "application_number": "US-201816228658-A",
  "family_id": "68536018",
  "citations": [
    "CN106474828A",
    "DE19923901A1",
    "DE3707071C1",
    "EP1352679A1",
    "EP1353038A1",
    "EP1518595B1",
    "FR3063912A1",
    "GB2260087A",
    "GB2553004A",
    "GB499024A",
    "KR101086778B1",
    "US2002052927A1",
    "US2002067721A1",
    "US2002131426A1",
    "US2002134546A1",
    "US2003043802A1",
    "US2004163129A1",
    "US2004244043A1",
    "US2005078699A1",
    "US2005150827A1",
    "US2007062863A1",
    "US2007131429A1",
    "US2008017594A1",
    "US2008210097A1",
    "US2008236839A1",
    "US2009025936A1",
    "US2009056939A1",
    "US2009084263A1",
    "US2009242197A1",
    "US2009266550A1",
    "US2010084352A1",
    "US2010187186A1",
    "US2011270431A1",
    "US2012152855A1",
    "US2012160502A1",
    "US2012199000A1",
    "US2015167415A1",
    "US2017275521A1",
    "US2049578A",
    "US2468070A",
    "US3346117A",
    "US3450264A",
    "US3543846A",
    "US3670507A",
    "US4438817A",
    "US4474035A",
    "US4527632A",
    "US4816044A",
    "US5004552A",
    "US5154741A",
    "US5165450A",
    "US5248421A",
    "US5286375A",
    "US5431228A",
    "US5707427A",
    "US5749945A",
    "US6062213A",
    "US6068053A",
    "US6197095B1",
    "US6276455B1",
    "US6280000B1",
    "US6569323B1",
    "US6651745B1",
    "US6773605B2",
    "US6857132B1",
    "US6989103B2",
    "US7006500B1",
    "US7103772B2",
    "US7134498B2",
    "US7152682B2",
    "US7209442B1",
    "US7279098B2",
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    "US7331396B2",
    "US7363982B2",
    "US7497263B2",
    "US7532627B2",
    "US7539208B2",
    "US7569097B2",
    "US7613209B1",
    "US7630361B2",
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    "US7773594B2",
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