US20220356085A1 - Fluid circuit with integrated electrostatic discharge mitigation - Google Patents

Fluid circuit with integrated electrostatic discharge mitigation Download PDF

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Publication number
US20220356085A1
US20220356085A1 US17/727,668 US202217727668A US2022356085A1 US 20220356085 A1 US20220356085 A1 US 20220356085A1 US 202217727668 A US202217727668 A US 202217727668A US 2022356085 A1 US2022356085 A1 US 2022356085A1
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conductive
tubing
tubing segment
operative component
polymer
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US17/727,668
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John Leys
James C. Linder
Jeffrey James MCKENZIE
Barry Lee GREGERSON
Brett Christopher REICHOW
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Entegris Inc
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Entegris Inc
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Priority to US17/727,668 priority Critical patent/US20220356085A1/en
Assigned to ENTEGRIS, INC. reassignment ENTEGRIS, INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MCKENZIE, JEFFREY J., GREGERSON, BARRY, LEYS, JOHN, LINDER, JAMES, REICHOW, BRETT C.
Publication of US20220356085A1 publication Critical patent/US20220356085A1/en
Assigned to MORGAN STANLEY SENIOR FUNDING, INC., AS COLLATERAL AGENT reassignment MORGAN STANLEY SENIOR FUNDING, INC., AS COLLATERAL AGENT SECURITY INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: CMC MATERIALS LLC, ENTEGRIS, INC.
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L9/00Rigid pipes
    • F16L9/12Rigid pipes of plastics with or without reinforcement
    • F16L9/125Rigid pipes of plastics with or without reinforcement electrically conducting
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/4602Treatment of water, waste water, or sewage by electrochemical methods for prevention or elimination of deposits
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D63/00Apparatus in general for separation processes using semi-permeable membranes
    • B01D63/06Tubular membrane modules
    • B01D63/067Tubular membrane modules with pleated membranes
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L11/00Hoses, i.e. flexible pipes
    • F16L11/04Hoses, i.e. flexible pipes made of rubber or flexible plastics
    • F16L11/12Hoses, i.e. flexible pipes made of rubber or flexible plastics with arrangements for particular purposes, e.g. specially profiled, with protecting layer, heated, electrically conducting
    • F16L11/127Hoses, i.e. flexible pipes made of rubber or flexible plastics with arrangements for particular purposes, e.g. specially profiled, with protecting layer, heated, electrically conducting electrically conducting
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L25/00Constructive types of pipe joints not provided for in groups F16L13/00 - F16L23/00 ; Details of pipe joints not otherwise provided for, e.g. electrically conducting or insulating means
    • F16L25/01Constructive types of pipe joints not provided for in groups F16L13/00 - F16L23/00 ; Details of pipe joints not otherwise provided for, e.g. electrically conducting or insulating means specially adapted for realising electrical conduction between the two pipe ends of the joint or between parts thereof
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L25/00Constructive types of pipe joints not provided for in groups F16L13/00 - F16L23/00 ; Details of pipe joints not otherwise provided for, e.g. electrically conducting or insulating means
    • F16L25/02Electrically insulating joints or couplings
    • F16L25/028Electrically insulating joints or couplings for branching pipes, for joining pipes to walls
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L47/00Connecting arrangements or other fittings specially adapted to be made of plastics or to be used with pipes made of plastics
    • F16L47/04Connecting arrangements or other fittings specially adapted to be made of plastics or to be used with pipes made of plastics with a swivel nut or collar engaging the pipe
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L9/00Rigid pipes
    • F16L9/16Rigid pipes wound from sheets or strips, with or without reinforcement
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B1/00Conductors or conductive bodies characterised by the conductive materials; Selection of materials as conductors
    • H01B1/14Conductive material dispersed in non-conductive inorganic material
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01BCABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
    • H01B1/00Conductors or conductive bodies characterised by the conductive materials; Selection of materials as conductors
    • H01B1/20Conductive material dispersed in non-conductive organic material
    • H01B1/24Conductive material dispersed in non-conductive organic material the conductive material comprising carbon-silicon compounds, carbon or silicon
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2201/00Details relating to filtering apparatus
    • B01D2201/50Means for dissipating electrostatic charges
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2239/00Aspects relating to filtering material for liquid or gaseous fluids
    • B01D2239/02Types of fibres, filaments or particles, self-supporting or supported materials
    • B01D2239/0241Types of fibres, filaments or particles, self-supporting or supported materials comprising electrically conductive fibres or particles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2313/00Details relating to membrane modules or apparatus
    • B01D2313/13Specific connectors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2313/00Details relating to membrane modules or apparatus
    • B01D2313/20Specific housing
    • B01D2313/201Closed housing, vessels or containers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2313/00Details relating to membrane modules or apparatus
    • B01D2313/20Specific housing
    • B01D2313/206Specific housing characterised by the material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2313/00Details relating to membrane modules or apparatus
    • B01D2313/20Specific housing
    • B01D2313/206Specific housing characterised by the material
    • B01D2313/2061Organic, e.g. polymeric material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B01PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
    • B01DSEPARATION
    • B01D2313/00Details relating to membrane modules or apparatus
    • B01D2313/21Specific headers, end caps
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/28Treatment of water, waste water, or sewage by sorption
    • C02F1/283Treatment of water, waste water, or sewage by sorption using coal, charred products, or inorganic mixtures containing them
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2103/00Nature of the water, waste water, sewage or sludge to be treated
    • C02F2103/02Non-contaminated water, e.g. for industrial water supply
    • C02F2103/04Non-contaminated water, e.g. for industrial water supply for obtaining ultra-pure water
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L41/00Branching pipes; Joining pipes to walls
    • F16L41/02Branch units, e.g. made in one piece, welded, riveted
    • F16L41/021T- or cross-pieces
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L43/00Bends; Siphons
    • F16L43/008Bends; Siphons made from plastic material
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16LPIPES; JOINTS OR FITTINGS FOR PIPES; SUPPORTS FOR PIPES, CABLES OR PROTECTIVE TUBING; MEANS FOR THERMAL INSULATION IN GENERAL
    • F16L47/00Connecting arrangements or other fittings specially adapted to be made of plastics or to be used with pipes made of plastics
    • F16L47/04Connecting arrangements or other fittings specially adapted to be made of plastics or to be used with pipes made of plastics with a swivel nut or collar engaging the pipe
    • F16L47/041Connecting arrangements or other fittings specially adapted to be made of plastics or to be used with pipes made of plastics with a swivel nut or collar engaging the pipe the plastic pipe end being flared either before or during the making of the connection

Definitions

  • Embodiments of the present disclosure are directed to fluid handling systems, and more specifically, to ultra-pure fluid handling systems with electrostatic discharge mitigation.
  • Fluid handling systems offering high purity standards have many uses in advanced technology applications. These applications include processing and manufacturing of solar panels, flat panel displays, and in the semiconductor industry for applications such as photolithography, bulk chemical delivery, chemical mechanical polishing (CMP), wet etch, and cleaning. Certain chemicals used in these applications are particularly corrosive, precluding the use of some conventional fluid handling technology because of possible corrosion of the fluid handling components and leaching of chemicals into the environment.
  • CMP chemical mechanical polishing
  • fluid handling systems provide tubing, fittings, valves, and other elements, that are made from inert polymers.
  • inert polymers may include, but are not limited to, fluoropolymers such as tetrafluoroethylene polymer (PTFE), perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), and fluorinated ethylene propylene polymer (FEP).
  • PTFE tetrafluoroethylene polymer
  • PFA perfluoroalkoxy alkane polymer
  • ETFE ethylene and tetrafluoroethylene polymer
  • EEP fluorinated ethylene propylene polymer
  • Electrostatic discharge (ESD) is an important technical issue for fluid handling systems in the semiconductor industry and in other technology applications. Frictional contact between fluids and surfaces of various operational components (e.g. tubing or piping, valves, fittings, filters, etc.) in the fluid system can result in generation and buildup of static electrical charges.
  • the extent of charge generation depends on various factors including, but not limited to, the nature of the components and the fluid, fluid velocity, fluid viscosity, electrical conductivity of the fluid, pathways to ground, turbulence and shear in liquids, presence of air in the fluid, and surface area.
  • the charge can be carried downstream in a phenomenon called a streaming charge, where charge may buildup beyond where the charge originated.
  • Sufficient charge accumulations can cause ESD at the tubing or pipe walls, component surfaces, or even onto substrates or wafers at various process steps.
  • semiconductor substrates or wafers are highly sensitive to static electrical charges and such ESD can result in damage or destruction of the substrate or wafer.
  • ESD electronic discharge
  • circuits on the substrate can be destroyed and photoactive compounds can be activated prior to regular exposure due to uncontrolled ESD.
  • built up static charge can discharge from within the fluid handling system to the exterior environment, potentially damaging components in the fluid handling system (e.g. tubing or piping, fittings, components, containers, filters, etc.), that may lead to leaks, spills of fluid in the system, and diminished performance of components. In these situations, such discharge, may lead to potential fire or explosion when flammable, toxic and/or corrosive fluids are used in the compromised fluid handling system.
  • certain metal or conductive components in fluid handling system are grounded to mitigate the buildup of static charge in the system as it continually disperses from the metal or conductive components to ground.
  • Conventional use of multiple grounding straps may lead to undue mechanical clutter in a fluid handling system, and may lead to a complex grounding system network requiring extensive maintenance or a complex system that may lead to undesirable failure.
  • One or more embodiments of this disclosure are related to a fluid circuit in a fluid handling system with ESD mitigation.
  • the fluid circuit includes a plurality of conductive operative components and tubing segments.
  • a fluid circuit for a predetermined fluid flow passageway (such as gases or liquids, or both) having at least one inlet and at least one outlet
  • the fluid circuit comprises a plurality of tubing segments and a plurality of operative components, each operative component comprising a body portion with an internal fluid flow passageway and a plurality of tubing connector fittings, the operative components connecting the plurality of tubing segments at selected tubing connector fittings, the plurality of tubing segments and operative components providing the fluid flow passageway through the fluid circuit;
  • each tubing segment comprises i) a non-conductive polymer portion defining the fluid passageway and ii) one or more interior conductive fluoropolymer stripes extending axially to ends of each of the respective tubing segments
  • each operative component body portion comprises a conductive fluoropolymer that extends between each of the plurality of tubing connector fittings, and wherein each of the tubing connector fittings conductively connect the respective conductor of the body portion to the interior conductive
  • each operative component comprising a body portion with an internal fluid flow passageway and a plurality of tubing connector fittings, the operative components connecting the plurality of tubing segments at selected tubing connector fittings, the plurality of tubing segments and operative components providing the fluid flow passageway through the fluid circuit; wherein each tubing segment comprises i) a non-conductive polymer portion defining the fluid passageway and ii) an one or more interior conductive stripes of conductive fluoropolymer that is bonded to and uniform with the non-conductive polymer portion extending axially to ends of each of the respective tubing segments, wherein each body portion comprises an conductive fluoropolymer that extends between each of the plurality of tubing connector fittings, and wherein each of the tubing connector fittings conductively connects the
  • the operative components are connected by one or more tubing segments that connect to the components at their respective tubing connector fittings.
  • Suitable operative components include, for example, valves, straight connectors, T-connectors, elbow connectors, multi-connector manifolds, filters, heat exchangers, or sensors.
  • Suitable sensors may include, for example, flow controllers, regulators, flow meters, pressure meters, or variable area meters.
  • the body portion of the operative components may be bonded to and uniform with a conductive portion extending between the connector fittings and the fluid flow passageway.
  • the plurality of tubing segments each include a non-conductive polymer portion and one or more interior conductive fluoropolymer stripes extending axially with the non-conductive polymer tubing portion.
  • the stripes of conductive fluoropolymer of the tubing segment conductively connect to the conductive pathway of the body portion at the tubing connector fittings.
  • each of the tubing connector fittings conductively connects the conductive pathway of the body portion to the stripes of conductive fluoropolymer of the tubing portion connected to the respective tubing connector fitting.
  • FIG. 1 depicts a fluid handling system and fluid circuit, according to one or more embodiments of this disclosure.
  • FIG. 2 depicts an operative component and connected tubing segments, according to one or more embodiments of this disclosure.
  • FIG. 3 depicts an operative component, a tubing connector fitting and fitting nut and tubing segment, according to one or more embodiments of this disclosure.
  • FIGS. 4 a and 4 b depict side and partial cross sectional views of an operative component having a tubing connector fitting ( FIG. 4 a ) and a tubing segment ( FIG. 4 b ), according to one or more embodiments of this disclosure.
  • FIG. 5 a depicts a cross-sectional view of an operative component, according to one or more embodiments of this disclosure.
  • FIG. 5 b depicts a cross-sectional view taken at section line 5 - 1 of FIG. 5 a.
  • FIG. 5 c depicts a cross-sectional view of an alternative embodiment taken at section line 5 - 1 of FIG. 5 a.
  • FIGS. 5 d and 5 e depict cross-sectional views of alternative embodiments taken at section line 5 - 1 of FIG. 5 a.
  • FIG. 6 a depicts an exploded isometric view of a filter having two end caps, according to one or more embodiments of this disclosure.
  • FIG. 6 b depicts an isometric view of a filter having two end caps, according to one or more embodiments of this disclosure.
  • FIG. 7 a depicts an exploded isometric view of a filter having one end cap, according to one or more embodiments of this disclosure.
  • FIG. 7 b depicts an isometric view of one end cap, according to one or more embodiments of this disclosure.
  • FIGS. 8 a -8 d depict isometric views of alternative embodiments of tubing segments of this disclosure.
  • FIG. 9 depicts a digital image of a tubing segment of this disclosure.
  • FIG. 10 depicts an extrusion system of this disclosure.
  • FIG. 11 depicts a Faraday Cup apparatus used to test to ability of different tubing segments to generate static electrical charge.
  • FIGS. 12-13 graphically illustrate the difference in static charge generation between a PFA tubing segment and a stainless steel (SS) tubing segment having the same diameter under the same flow conditions.
  • FIGS. 14-15 graphically illustrate the difference in static charge generation between a PFA/inner and outer diameter stripes tubing segment and a PFA/inner diameter stripes tubing segment having the same diameter under the same flow conditions.
  • FIG. 16 graphically displays the measured amount of static electricity generated by various tubing segments tested in Example.
  • Embodiments of this system include a fluid circuit including conductively connected operative components and tubing segments.
  • Conventional and some ESD mitigation fluid circuits are reported, for example, in International patent application, WO 2017/210293, which is incorporated herein by reference, except for express definitions or patent claims contained therein.
  • Other ESD mitigation fluid circuits are reported, for example, in an Entegris brochure, FLUOROLINE Electrostatic (ESD) Tubing, 2015-2017.
  • Operative components in this disclosure refer to any component or device having a fluid input and a fluid output and that connect with tubing for directing or providing for the flow of fluid.
  • operative components include, but are not limited to, fittings, valves, filters, heat exchanges, sensors, pumps, mixers, spray nozzles, and dispense heads.
  • the operative components may be constructed from conductive fluoropolymers including, for example, perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), tetrafluoroethylene p[polymer PTFE), or other suitable polymeric materials.
  • PFA perfluoroalkoxy alkane polymer
  • ETFE ethylene and tetrafluoroethylene polymer
  • EFEP ethylene, tetrafluoroethylene and hexafluoropropylene polymer
  • FEP fluorinated ethylene propylene polymer
  • tetrafluoroethylene p[polymer PTFE tetrafluoroethylene p[polymer PTFE
  • the conductive fluoropolymers are PFA loaded with conductive material
  • This loaded PFA includes, but is not limited to, PFA loaded with carbon fiber, nickel coated graphite, carbon fiber, carbon powder, carbon nanotubes, metal particles, and steel fiber.
  • conductive materials have a surface resistivity level less than about 1 ⁇ 10 8 ohms per square while non-conductive materials have a surface resistivity level greater than about 1 ⁇ 10 10 ohms per square.
  • conductive materials have a surface resistivity level less than about 1 ⁇ 10 9 ohms per square while non-conductive materials have a surface resistivity level greater than about 1 ⁇ 10 9 ohms per square.
  • both the tubing segments and operational components are typically constructed from polymeric materials to satisfy purity and corrosion resistance standards.
  • Tubing segments in this disclosure typically refer to any flexible or inflexible pipe or tube that is suitable for containing or transporting fluid.
  • Tubing segments are conductive, providing a conductive pathway along the length of each tubing segment in the fluid circuit.
  • Conductive tubing may be constructed from materials including metal or loaded polymeric material. Loaded polymeric material includes a polymer that is loaded with steel wire, aluminum flakes, nickel coated graphite, carbon fiber, carbon powder, carbon nanotubes, or other conductive material.
  • the tubing segments are partially conductive, having a main portion constructed from non-conductive or low conductive material, such as constructed from various hydrocarbon and non-hydrocarbon polymers such as, but are not limited to, polyesters, polycarbonates, polyamides, polyimides, polyurethanes, polyolefins, polystyrenes, polyesters, polycarbonates, polyketones, polyureas, polyvinyl resins, polyacrylates, polymethylacrylates and fluoropolymers.
  • various hydrocarbon and non-hydrocarbon polymers such as, but are not limited to, polyesters, polycarbonates, polyamides, polyimides, polyurethanes, polyolefins, polystyrenes, polyesters, polycarbonates, polyketones, polyureas, polyvinyl resins, polyacrylates, polymethylacrylates and fluoropolymers.
  • Exemplary fluoropolymers include, but are not limited to, perfluoroalkoxy alkane polymer (PFA), ethylene tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), and tetrafluoroethylene polymer (PTFE), or other suitable polymeric materials, and having, for example, a secondary co-extruded conductive portion.
  • PFA perfluoroalkoxy alkane polymer
  • ETFE ethylene tetrafluoroethylene polymer
  • EFEP ethylene, tetrafluoroethylene and hexafluoropropylene polymer
  • FEP fluorinated ethylene propylene polymer
  • PTFE tetrafluoroethylene polymer
  • the interior fluoropolymer conductive stripe of the tubing segments has a width in the range of about 0.1-1
  • the tubing segment has an outside diameter of about 1 ⁇ 8 inch to about 2 inches. In other embodiments the tubing segments have a measured resistance of about 1.2 ⁇ 10 4 -6.7 ⁇ 10 5 ohm. In still other embodiments the tubing segments have a measured resistance of about 2.5-4.3 ⁇ 10 4 ohm.
  • FIG. 1 depicts a fluid handling system 150 according to one or more embodiments of the disclosure.
  • the system 150 provides a flow path for fluid to flow from a fluid supply 152 to one or more process stages 156 positioned downstream of the source of fluid supply.
  • System 150 includes a fluid circuit 160 which includes a portion of the flow path of the fluid handling system 150 .
  • the fluid circuit 160 includes tubing segments 164 and a plurality of operative components 168 that are interconnected via the tubing segments 164 .
  • the operative components 168 include an elbow shaped fitting 170 , T-shaped fitting 172 , a valve 174 , filter 176 , flow sensor 178 , and straight fitting 179 .
  • the fluid circuit 160 can include additional or fewer operative components 168 in number and in type.
  • the fluid circuit 160 could substitute or additionally include pumps, mixers, dispense heads, sprayer nozzles, pressure regulators, flow controllers, or other types of operational components.
  • the operative components 168 are connected together by the plurality of tubing segments 164 connecting to the components 168 at their respective tubing connector fittings 186 . Connected together, the plurality of tubing segments 164 and operative components 168 provide a fluid passageway through the fluid circuit 160 from the fluid supply 152 and toward the process stages 156 .
  • the operational components 168 each include a body portion 182 that defines fluid flow passageway and one or more tubing connector fittings 186 .
  • at least one of the tubing connector fittings 186 is an inlet portion for receiving fluid into the body portion 182 and at least another one of the tubing connector fittings 186 is an outlet portion for outputting fluid received via the inlet portion.
  • T-shaped fitting 172 includes one tubing connector fitting 186 that is an inlet portion that receives fluid from the fluid supply 152 and two tubing connector fittings 186 which are outlet portions outputting fluid toward the process stages 156 .
  • the inlet portion and the outlet portion are each connected or connectable to a tubing segment 164 .
  • the operative components 168 in the fluid circuit 160 includes a spray nozzle
  • only the inlet portion is required to be connectable to a tubing segment 164 .
  • one or more of the operative components 168 includes a single tubing connector or fitting 179 .
  • each body portion 182 is additionally constructed using a conductive material to form a conductor portion that extends between and provides a conductive pathway between each of the tubing connector fittings 186 .
  • the conductive pathway is bonded to and uniform with the body portion 182 and is constructed from a conductive polymeric material.
  • the conductor portion is constructed from PFA loaded with conductive material. This loaded PFA includes, but is not limited to, PFA loaded with carbon fiber, nickel coated graphite, carbon fiber, carbon powder, carbon nanotubes, metal particles, and steel fiber.
  • tubing segments 164 are partially conductive, having a main portion or tubing portion 187 constructed from non-conductive or low conductive polymeric material and having a secondary portion or conductive portion 188 (indicated by dashed lines) constructed from a conductive material that extends axially along the interior length of the tubing portion 187 .
  • tubing segments 164 each include a tubing portion 187 of a non-conductive fluoropolymer and conductive portion 188 formed as a stripe of conductive polymer extending axially on and bonded to a uniform with the non-conductive fluoropolymer main portion 187 .
  • tubing portions are constructed from PFA with the one or more conductive stripes 187 of the secondary portion constructed from carbon-loaded PFA that is extruded along the interior length of each of the tubing segments 164 at or near its interior surface.
  • Each of the operative components 168 includes a bridging component for conductively connecting the respective conductive pathway of the body portion 182 to the conductive portion 187 of the tubing segments 164 (shown in FIGS. 2 and 3 ) that are connected to the operative components 168 .
  • the connected operative components 168 and tubing segments 164 form an electrical pathway along the entirety of the fluid circuit 160 , eliminating breaks in conductivity between the tubing segments 160 .
  • a circuit diagram 190 is superimposed over the fluid circuit 160 to illustrate the electrical pathway.
  • conductive materials have a surface resistivity level less than about 1 ⁇ 10 10 ohms per square, while non-conductive materials have a surface resistivity level greater than about 1 ⁇ 10 10 ohms per square. In certain embodiments, conductive materials have a surface resistivity level less than about 1 ⁇ 10 9 ohms per square, while non-conductive materials have a surface resistivity level greater than about 1 ⁇ 10 9 ohms per square.
  • one or more of the operative components 168 are electrically connected to ground 194 via one or more attachment fixtures 198 .
  • the ground attachment fixtures 198 continuously disperse static charges as they build up in the fluid circuit 160 by providing a pathway to ground 194 from the conductive pathway 190 .
  • FIGS. 2 and 3 depict examples of operative components 210 according to one or more embodiments of this disclosure.
  • FIG. 2 depicts an operative component 210 that is a fitting 214 , and, more specifically, is a three way connector having a “T” shape (e.g. a T-shaped fitting).
  • FIG. 3 depicts a valve 218 .
  • the T-shaped fitting 214 includes a conductive body portion 222 and three connector fittings 226 extending outwardly from the body portion 222 .
  • the exterior surface of the connector fittings includes a structure surface 270 .
  • the valve 218 includes a conductive body portion 230 and two connector fittings 227 extending outwardly from the body portion 230 .
  • the exterior surface of the connector fittings includes a structure surface 270 .
  • connector fittings 226 and 227 are substantially the same design.
  • the body portion 222 , 230 is constructed using a conductive polymeric material.
  • the body portion 222 or 230 can be constructed from conductive carbon-loaded fluoropolymers including, but not limited to, PFA, ETFE, FEP, and PTFE.
  • FIG. 4 a illustrates a straight connector fitting 400 to connect two tubing segments.
  • Connector fitting 400 includes a shoulder region 402 adjacent a body portion 404 of an operative component and extends outwardly to form a neck region 406 , a threaded region 406 a , and a nipple portion 406 b .
  • Tubing segment 164 is received by the nipple portion 406 b , which, in certain embodiments, may be configured, for example, as a FLARETEK® fitting.
  • Connector fitting 400 also includes an attachment feature 408 that is a conductive material that is conductively connected with the body portion 504 for attachment to an external electrical contact and then to ground.
  • attachment feature 408 can be connected to an electrical contact which is grounded in order to configure the operative component connector fitting 400 for ESD mitigation.
  • connector fitting 400 includes a connector fitting nut 410 for engaging to the threaded region 406 a to secure tubing segment 164 .
  • the fitting nut may be, for example, a compression nut.
  • tubing segment 164 engages the connector fitting so that the interior conductive stripes conductively connected the conductive portion to nipple portion 406 b , as well as forming a leak-proof seal between the tubing and the connector fitting.
  • fitting nut 410 has a generally cylindrical shape having an interior surface including threads 410 a for mating with threaded region 406 a .
  • fitting nut 410 may have a structured outer surface such as, for example, ribs 270 illustrated in FIGS. 2 and 3 , where the ribs are symmetrically disposed about the exterior surface for mating with a wrench or locking device for tightening or loosening of the fitting nut 410 on the threaded region 406 a.
  • the fitting nut 410 is constructed from a polymeric material.
  • the fitting nut 410 is constructed from PFA, polyaniline, or other suitable polymer.
  • the connector fitting 400 is a conductive polymer material, such as carbon-loaded PFA, or other suitable conductive polymer, that is formed, for example, using conventional molding processes.
  • the fitting nut 410 contacts the exterior surface of tubing segment 164 at the nipple forward portion 406 b and forms a continuous fluid passageway between tubing segment 164 and connector fitting 400 .
  • the O-ring 360 is constructed from polymeric material, such as PFA, or other polymers or elastomers.
  • connector fittings may have varying sizes, may have various designs, such as step-down or step-up fittings, or may be located on various types of operative components 210 .
  • FIGS. 5 a -5 e illustrate several embodiments of an operative component 500 .
  • Operative component 500 includes a body portion 504 , tubing connector fittings 520 , and fitting nuts 508 .
  • the operative component 500 additionally includes an operative element 506 in the body portion.
  • the operative element 506 in various embodiments, broadly includes suitable structure, electronics, or other materials for configuring the operative component 500 to perform various operations.
  • the operational element 506 is a mixer, sensor, filter, pump, heat exchanger or other suitable element.
  • the operative component 500 is configurable to perform various processes or tasks within a fluid circuit.
  • the body portion 504 includes conductive PFA that extends between each of the tubing connector fittings 520 and forms electrical contact between each of the tubing connector fittings 520 and the interior conductive stripes of tubing segments 522 a and 522 b , respectively.
  • the conductive portions of the tubing segments are narrow interior stripes of conductive material that is bonded to and uniform with the non-conductive polymer material of the tubing segments.
  • FIG. 5 b illustrates a tubing segment with four interior conductive stripes 524 a - 524 d .
  • 5 c illustrates a tubing segment with eight interior conductive stripes 524 a - 524 h .
  • FIG. 5 d illustrates a tubing segment with eight interior conductive stripes 524 a - 524 h , and two exterior conductive stripes 526 a and 526 b .
  • FIG. 5 e illustrates a tubing segment with eight interior conductive stripes 524 a - 524 hg , and two exterior conductive stripes 526 a and 526 b.
  • the operative component 500 is connected with tubing segments 522 a and 522 b at each of the connector fittings 508 .
  • the connector fittings 508 form an electrical pathway from conductive portions 522 a and 522 b of the tubing segments through the connector portions 508 and across the body portion 504 .
  • the body portion 504 includes an attachment feature 528 .
  • the attachment feature 528 is a piece of conductive material that is conductively connected with the body portion 504 for attachment to an external electrical contact and then to ground.
  • attachment feature 528 can be connected to an electrical contact which is grounded in order to configure the operative component 500 for ESD mitigation.
  • the attachment feature 528 is a connector boss which is threaded for attachment to a nut or other threaded connector.
  • the attachment feature 528 is a tab, a threaded hole, or other suitable feature for connecting to an electrical contact.
  • the attachment feature 528 can be configured for interference fit, snap fit, friction fit, or other methods of fitting with an electrical contact.
  • FIG. 6 a illustrates one embodiment of an operative component that is a filter.
  • This isomeric view of a filter 600 includes a housing 602 , two conductive end caps 604 and 606 , and outer conductive sleeve 608 .
  • Housing 602 includes an interior filter element (not shown) that in some embodiments is a replaceable component; while in other embodiments is a fixed, non-replaceable component.
  • housing 602 may be a polymeric material and in other embodiments may be a conductive polymer such as, for example a conductive, carbon-loaded PFA as describe above.
  • Both conductive end caps 604 , 606 may be conductive materials such as, for example, conductive, carbon-loaded PFA.
  • Each end cap 604 , 606 includes fittings for connecting the end caps to housing 602 .
  • the connection may be removable, while in other embodiments the connection may be fixed or permanent.
  • each end cap 604 , 606 include one or more connector fittings to connect each end cap to tubing segments (also not shown), described above, in order to provide both a connective pathway and a fluid passageway from a tubing segment through one end cap and housing to another end cap and tubing segment.
  • the connector fitting includes, for example, a nipple portion 610 , threaded portion, 612 , shoulder portion 614 and fitting nut 616 , as described above, to provide a conductive connection as well as a leak-proof passageway from tubing segments and filter 600 .
  • the connector fitting may include an O-Ring (not shown).
  • Conductive sleeve 608 extends over the exterior surface of both the housing 602 and conductive end caps 604 , 606 .
  • the sleeve 608 is a conductive polymer material such as, for example, carbon-loaded PFA that provides a conductive connection between the end caps 604 , 606 .
  • sleeve 608 is a shrink wrap polymer that may be placed over the exterior of housing 602 and end caps 604 , 606 and connected to the exterior surfaces by applying heat to the sleeve using conventional apparatus and process.
  • one both of both end caps 604 , 606 may include an attachment feature (not shown).
  • the attachment feature is a piece of conductive material that is conductively connected with one or both end caps 604 , 606 for attachment to an external electrical contact and then to ground.
  • attachment feature can be connected to an electrical contact which is grounded in order to configure the filter for ESD mitigation.
  • the attachment feature is a connector boss which is threaded for attachment to a nut or other threaded connector.
  • the attachment feature is a tab, a threaded hole, or other suitable feature for connecting to an electrical contact.
  • the attachment feature can be configured for interference fit, snap fit, friction fit, or other method of fitting with an electrical contact.
  • filter 600 includes a drain fitting 618 and drain plug 620 .
  • drain fitting 618 and/or drain plug is a conductive material, one or both of these components may be connected to ground to provide ESD mitigation.
  • FIG. 7 a also illustrates one embodiment of an operative component that is a filter.
  • This isomeric view of a filter 700 includes a housing 702 , a conductive end cap 704 , and outer conductive sleeve 708 .
  • Housing 702 includes an interior filter element (not shown) that in some embodiments is a replaceable component; while in other embodiments is a fixed, non-replaceable component.
  • housing 702 may be a polymeric material and in other embodiments may be a conductive polymer such as, for example a conductive, carbon-loaded PFA as describe above.
  • Conductive end cap 704 may be a conductive material such as, for example, conductive, carbon-loaded PFA.
  • Conductive end cap 704 includes fittings for connecting the end cap to housing 702 .
  • the connection may be removable, while in other embodiments the connection may be fixed or permanent.
  • end cap 704 includes one or more connector fittings 710 to connect the end cap to tubing segments as described above, in order to provide both connective and fluid passageways from a tubing segment through a conductor fitting through the housing to another conductor fitting and tubing segment.
  • the connector fittings include, for example, a nipple portion, threaded portion, shoulder portion, and fitting nut, as described above, to provide conductive connections as well as a leak-proof fluid passageway from tubing segments 164 and filter 700 .
  • the connector fitting may include an O ring (not shown).
  • Conductive sleeve 708 extends over the exterior surface of both the housing 702 and conductive end cap 704 .
  • the sleeve 708 is a conductive polymer material such as, for example, carbon-loaded PFA that provides a conductive connection between the end cap 704 and the exterior of filter 700 .
  • sleeve 708 is a shrink wrap polymer that may be placed over the exterior of housing 702 and end cap 704 and connected to the exterior surfaces by applying heat to the sleeve using conventional apparatus and process.
  • end cap 704 may include an attachment feature (not shown).
  • the attachment feature is a piece of conductive material that is conductively connected with end cap 704 for attachment to an external electrical contact and then to ground.
  • attachment feature can be connected to an electrical contact which is grounded in order to configure the filter for ESD mitigation.
  • the attachment feature is a connector boss which is threaded for attachment to a nut or other threaded connector.
  • the attachment feature is a tab, a threaded hole, or other suitable feature for connecting to an electrical contact.
  • the attachment feature can be configured for interference fit, snap fit, friction fit, or other method of fitting with an electrical contact.
  • filter 700 includes a drain fitting 718 and drain plug (not shown). When the drain fitting 718 and/or drain plug is a conductive material, one or both of these components may be connected to ground to provide ESD mitigation.
  • FIG. 7 a also illustrates an optional retainer clamp that includes clamping elements 721 , 722 and 723 .
  • FIG. 7 b illustrates an embodiment of an end cap 704 that includes a conductive polymer portion 730 and a natural polymer portion 732 .
  • Tubing segments having conductive polymer stripes set out in this disclosure may be made using a variety of co-extrusion process.
  • the tubing segment 800 a illustrated in FIG. 8 a includes conductive stripes 802 a and 804 a on the exterior or outside diameter of the tubing segment and conductive stripes 806 a on the interior or inside diameter of the tubing segment.
  • FIG. 8 b illustrates tubing segment 800 b having conductive stipes 802 b on the interior of the tubing segment that are spiral stripes that extend along the axially length of the tubing segment.
  • FIG. 8 c illustrates tubing segment 800 c having conductive stipes 802 c and 804 c on both the exterior and interior of the tubing segment that are spiral stripes that extend along the axially along the length of the tubing segment.
  • FIG. 8 d illustrates tubing segment 800 d having conductive stipes 802 d on the exterior of the tubing segment that are spiral stripes that extend along the axially along the length of the tubing segment.
  • FIG. 9 is a digital image of a tubing segment 900 that includes eight interior stripes, the black stripes in the image, on the interior of the tubing segment. This digital image shows the interior stripes are bonded to and uniform the other portion to the tubing segment.
  • FIG. 10 is a digital image of an extrusion apparatus that provides one or more tubing segments set out in the disclosure.
  • FIG. 10 shows a non-conductive extruded polymer (PFA) feed 1000 and a conductive extruded polymer (PFA/carbon black polymer) feed 1010 that are fed in a perpendicular manner to a tool 1020 that extrude stripes 1030 on the inner diameter of the tubing segment 1050 as well as on both the inner and outer diameters of the tubing segment.
  • PFA non-conductive extruded polymer
  • PFA/carbon black polymer conductive extruded polymer
  • This example measured the amount of static electricity generated by flowing deionized water the tubing segments that included the conductive and non-conductive materials set out in Table 1, below.
  • the measurement of static electricity was made using known methods for collecting and measuring generated charge in a Faraday cup.
  • FIG. 11 is a digital image that shows Faraday cup apparatus 1100 used in this example. Briefly, deionized water 1110 is passed through an operative element 1130 and grounded tubing segment 1120 and then collected in a Faraday cup. The Faraday cup 1150 included a cover that is not show in the image when the data was collected for this example. Exemplary data provided by the imaged data is set out in FIGS. 12-16 , below.
  • FIGS. 12-13 graphically illustrate the difference in static charge generation between a PFA tubing segment and a stainless steel (SS) tubing segment having the same diameter under the same flow conditions.
  • the PFA tubing segment generated substantially more static charge (about 1600 nC) compared to the static charge generated by the SS tubing segment (about 80 nC).
  • FIGS. 14-15 graphically illustrate the difference in static charge generation between a PFA/inner and outer diameter stripes tubing segment and a PFA/inner diameter stripes tubing segment having the same diameter under the same flow conditions.
  • PFA/inner and outer diameter stripes tubing segment generated less static charge (about 43 nC) compared to the static charge generated by the PFA/inner diameter stripes tubing segment (about 115 nC).
  • Table 1 summarizes the measured amount of static electricity generated by various tubing segments tested in this example. These results are also graphically displayed in FIG. 16 .

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Abstract

A fluid circuit includes a plurality of tubing segments and a plurality of operative components. Each tubing segment includes i) a non-conductive polymer portion defining a fluid passageway and ii) one or more interior conductive fluoropolymer stripes extending axially to the ends of each of the respective tubing segments. Each operative component includes a conductive fluoropolymer that extends between a plurality of tubing connector fittings forming a part of the fluid circuit, wherein each of the tubing connector fittings conductively connect the respective conductor of the operative component to the interior conductive fluoropolymer stripes of the tubing segment to provide a path to ground that extends through each operative component and each tubing segment.

Description

    CROSS-REFERENCE TO RELATED APPLICATION
  • This application is a continuation of U.S. patent application Ser. No. 16/287,847 filed Feb. 27, 2019, which claims the benefit under 35 USC 119 of U.S. Provisional Patent Application No. 62/667,783, filed May 7, 2018, the disclosures of which are hereby incorporated herein by reference in their entirety for all purposes.
  • TECHNICAL FIELD
  • Embodiments of the present disclosure are directed to fluid handling systems, and more specifically, to ultra-pure fluid handling systems with electrostatic discharge mitigation.
  • BACKGROUND
  • Fluid handling systems offering high purity standards have many uses in advanced technology applications. These applications include processing and manufacturing of solar panels, flat panel displays, and in the semiconductor industry for applications such as photolithography, bulk chemical delivery, chemical mechanical polishing (CMP), wet etch, and cleaning. Certain chemicals used in these applications are particularly corrosive, precluding the use of some conventional fluid handling technology because of possible corrosion of the fluid handling components and leaching of chemicals into the environment.
  • In order to meet the corrosion resistance and purity requirements for such applications, fluid handling systems provide tubing, fittings, valves, and other elements, that are made from inert polymers. These inert polymers may include, but are not limited to, fluoropolymers such as tetrafluoroethylene polymer (PTFE), perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), and fluorinated ethylene propylene polymer (FEP). In addition to providing a non-corrosive and inert construction, many fluoropolymers, such as PFA, are injection moldable and extrudable. Several types of connector fittings, made from such polymers, are available and are known, such as PRIMELOCK® fittings, PILLAR® fittings, flared fittings, and other fittings. Exemplary fittings, for example, are illustrated in U.S. Pat. Nos. 5,154,453; 6,409,222; 6,412,832; 6,601,879; 6,758,104; and 6,776,440.
  • Electrostatic discharge (ESD) is an important technical issue for fluid handling systems in the semiconductor industry and in other technology applications. Frictional contact between fluids and surfaces of various operational components (e.g. tubing or piping, valves, fittings, filters, etc.) in the fluid system can result in generation and buildup of static electrical charges. The extent of charge generation depends on various factors including, but not limited to, the nature of the components and the fluid, fluid velocity, fluid viscosity, electrical conductivity of the fluid, pathways to ground, turbulence and shear in liquids, presence of air in the fluid, and surface area. These properties, and ways to mitigate the undesired static electrical charge caused by these properties, are discussed and reported in NFPA 77, “Recommended Practice on Static Electricity”, pp. 77-1 to 77-67, 2014.
  • Further, as the fluid flows through the system, the charge can be carried downstream in a phenomenon called a streaming charge, where charge may buildup beyond where the charge originated. Sufficient charge accumulations can cause ESD at the tubing or pipe walls, component surfaces, or even onto substrates or wafers at various process steps.
  • In some applications, semiconductor substrates or wafers are highly sensitive to static electrical charges and such ESD can result in damage or destruction of the substrate or wafer. For example, circuits on the substrate can be destroyed and photoactive compounds can be activated prior to regular exposure due to uncontrolled ESD. Additionally, built up static charge can discharge from within the fluid handling system to the exterior environment, potentially damaging components in the fluid handling system (e.g. tubing or piping, fittings, components, containers, filters, etc.), that may lead to leaks, spills of fluid in the system, and diminished performance of components. In these situations, such discharge, may lead to potential fire or explosion when flammable, toxic and/or corrosive fluids are used in the compromised fluid handling system.
  • In some fluid handling systems, to reduce the buildup of static charges, certain metal or conductive components in fluid handling system are grounded to mitigate the buildup of static charge in the system as it continually disperses from the metal or conductive components to ground. Conventional use of multiple grounding straps may lead to undue mechanical clutter in a fluid handling system, and may lead to a complex grounding system network requiring extensive maintenance or a complex system that may lead to undesirable failure.
  • It would be desirable to improve ESD mitigation in ultra-pure fluid handling systems for improved component performance and reduction in potentially damaging ESD events.
  • SUMMARY
  • One or more embodiments of this disclosure are related to a fluid circuit in a fluid handling system with ESD mitigation. In one or more embodiments, the fluid circuit includes a plurality of conductive operative components and tubing segments.
  • In certain embodiments, a fluid circuit for a predetermined fluid flow passageway (such as gases or liquids, or both) having at least one inlet and at least one outlet, the fluid circuit comprises a plurality of tubing segments and a plurality of operative components, each operative component comprising a body portion with an internal fluid flow passageway and a plurality of tubing connector fittings, the operative components connecting the plurality of tubing segments at selected tubing connector fittings, the plurality of tubing segments and operative components providing the fluid flow passageway through the fluid circuit; wherein each tubing segment comprises i) a non-conductive polymer portion defining the fluid passageway and ii) one or more interior conductive fluoropolymer stripes extending axially to ends of each of the respective tubing segments, wherein each operative component body portion comprises a conductive fluoropolymer that extends between each of the plurality of tubing connector fittings, and wherein each of the tubing connector fittings conductively connect the respective conductor of the body portion to the interior conductive fluoropolymer stripes of the tubing segment.
  • Other disclosed embodiments are methods of making an electrostatic discharge mitigation fluid circuit for a predetermined fluid flow passageway having at least one inlet and at least one outlet comprising conductively connecting a plurality of tubing segments to a plurality of operative components, each operative component comprising a body portion with an internal fluid flow passageway and a plurality of tubing connector fittings, the operative components connecting the plurality of tubing segments at selected tubing connector fittings, the plurality of tubing segments and operative components providing the fluid flow passageway through the fluid circuit; wherein each tubing segment comprises i) a non-conductive polymer portion defining the fluid passageway and ii) an one or more interior conductive stripes of conductive fluoropolymer that is bonded to and uniform with the non-conductive polymer portion extending axially to ends of each of the respective tubing segments, wherein each body portion comprises an conductive fluoropolymer that extends between each of the plurality of tubing connector fittings, and wherein each of the tubing connector fittings conductively connects the respective conductor of the body portion to the at least one interior conductive fluoropolymer stripe of the tubing segment, and connecting the electrostatic discharge mitigation fluid circuit to ground.
  • In various embodiments, to provide a conductive pathway and fluid passageway through the fluid circuit, the operative components are connected by one or more tubing segments that connect to the components at their respective tubing connector fittings. Suitable operative components include, for example, valves, straight connectors, T-connectors, elbow connectors, multi-connector manifolds, filters, heat exchangers, or sensors. Suitable sensors may include, for example, flow controllers, regulators, flow meters, pressure meters, or variable area meters. In one or more embodiments, the body portion of the operative components may be bonded to and uniform with a conductive portion extending between the connector fittings and the fluid flow passageway.
  • In certain embodiments, the plurality of tubing segments each include a non-conductive polymer portion and one or more interior conductive fluoropolymer stripes extending axially with the non-conductive polymer tubing portion. The stripes of conductive fluoropolymer of the tubing segment conductively connect to the conductive pathway of the body portion at the tubing connector fittings.
  • In one or more embodiments, each of the tubing connector fittings conductively connects the conductive pathway of the body portion to the stripes of conductive fluoropolymer of the tubing portion connected to the respective tubing connector fitting.
  • The above summary is not intended to describe each illustrated embodiment or every implementation of the present disclosure.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The drawings included in this disclosure illustrate embodiments of the present disclosure and, along with the description, serve to explain the principles of the disclosure. The drawings are only illustrative of certain embodiments and do not limit the disclosure.
  • FIG. 1 depicts a fluid handling system and fluid circuit, according to one or more embodiments of this disclosure.
  • FIG. 2 depicts an operative component and connected tubing segments, according to one or more embodiments of this disclosure.
  • FIG. 3 depicts an operative component, a tubing connector fitting and fitting nut and tubing segment, according to one or more embodiments of this disclosure.
  • FIGS. 4a and 4b depict side and partial cross sectional views of an operative component having a tubing connector fitting (FIG. 4a ) and a tubing segment (FIG. 4b ), according to one or more embodiments of this disclosure.
  • FIG. 5a depicts a cross-sectional view of an operative component, according to one or more embodiments of this disclosure.
  • FIG. 5b depicts a cross-sectional view taken at section line 5-1 of FIG. 5 a.
  • FIG. 5c depicts a cross-sectional view of an alternative embodiment taken at section line 5-1 of FIG. 5 a.
  • FIGS. 5d and 5e depict cross-sectional views of alternative embodiments taken at section line 5-1 of FIG. 5 a.
  • FIG. 6a depicts an exploded isometric view of a filter having two end caps, according to one or more embodiments of this disclosure.
  • FIG. 6b depicts an isometric view of a filter having two end caps, according to one or more embodiments of this disclosure.
  • FIG. 7a depicts an exploded isometric view of a filter having one end cap, according to one or more embodiments of this disclosure.
  • FIG. 7b depicts an isometric view of one end cap, according to one or more embodiments of this disclosure.
  • FIGS. 8a-8d depict isometric views of alternative embodiments of tubing segments of this disclosure.
  • FIG. 9 depicts a digital image of a tubing segment of this disclosure.
  • FIG. 10 depicts an extrusion system of this disclosure.
  • FIG. 11 depicts a Faraday Cup apparatus used to test to ability of different tubing segments to generate static electrical charge.
  • FIGS. 12-13 graphically illustrate the difference in static charge generation between a PFA tubing segment and a stainless steel (SS) tubing segment having the same diameter under the same flow conditions.
  • FIGS. 14-15 graphically illustrate the difference in static charge generation between a PFA/inner and outer diameter stripes tubing segment and a PFA/inner diameter stripes tubing segment having the same diameter under the same flow conditions.
  • FIG. 16 graphically displays the measured amount of static electricity generated by various tubing segments tested in Example.
  • The embodiments of this disclosure are amenable to various modifications and alternative forms, and certain specifics have been shown, for example, in the drawings and will be described in detail. It is understood that the intention is not to limit the disclosure to the particular embodiments described; the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of this disclosure.
  • DETAILED DESCRIPTION
  • This disclosure reports embodiments of a fluid handling system with ESD mitigation having a fluid flow passageway from a fluid supply to one or more downstream process stages. Embodiments of this system include a fluid circuit including conductively connected operative components and tubing segments. Conventional and some ESD mitigation fluid circuits are reported, for example, in International patent application, WO 2017/210293, which is incorporated herein by reference, except for express definitions or patent claims contained therein. Other ESD mitigation fluid circuits are reported, for example, in an Entegris brochure, FLUOROLINE Electrostatic (ESD) Tubing, 2015-2017.
  • Operative components in this disclosure refer to any component or device having a fluid input and a fluid output and that connect with tubing for directing or providing for the flow of fluid. Examples of operative components include, but are not limited to, fittings, valves, filters, heat exchanges, sensors, pumps, mixers, spray nozzles, and dispense heads. These and additional non-limiting examples of operative components are illustrated, for example, in U.S. Pat. Nos. 5,672,832; 5,678,435; 5,869,766; 6,412,832; 6,601,879; 6,595,240; 6,612,175; 6,652,008; 6,758,104; 6,789,781; 7,063,304; 7,308,932; 7,383,967; 8,561,855; 8,689,817; and 8,726,935, each of which are incorporated herein by reference, except for express definitions or patent claims contained in the listed documents.
  • The operative components may be constructed from conductive fluoropolymers including, for example, perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), tetrafluoroethylene p[polymer PTFE), or other suitable polymeric materials. For example, in some embodiments the conductive fluoropolymers are PFA loaded with conductive material (e.g. loaded PFA). This loaded PFA includes, but is not limited to, PFA loaded with carbon fiber, nickel coated graphite, carbon fiber, carbon powder, carbon nanotubes, metal particles, and steel fiber. In various embodiments, conductive materials have a surface resistivity level less than about 1×108 ohms per square while non-conductive materials have a surface resistivity level greater than about 1×1010 ohms per square. In certain embodiments, conductive materials have a surface resistivity level less than about 1×109 ohms per square while non-conductive materials have a surface resistivity level greater than about 1×109 ohms per square. When the disclosed fluid handling systems are configured for use in ultra-pure fluid handling applications, both the tubing segments and operational components are typically constructed from polymeric materials to satisfy purity and corrosion resistance standards.
  • Tubing segments in this disclosure typically refer to any flexible or inflexible pipe or tube that is suitable for containing or transporting fluid. Tubing segments are conductive, providing a conductive pathway along the length of each tubing segment in the fluid circuit. Conductive tubing may be constructed from materials including metal or loaded polymeric material. Loaded polymeric material includes a polymer that is loaded with steel wire, aluminum flakes, nickel coated graphite, carbon fiber, carbon powder, carbon nanotubes, or other conductive material. In some instances, the tubing segments are partially conductive, having a main portion constructed from non-conductive or low conductive material, such as constructed from various hydrocarbon and non-hydrocarbon polymers such as, but are not limited to, polyesters, polycarbonates, polyamides, polyimides, polyurethanes, polyolefins, polystyrenes, polyesters, polycarbonates, polyketones, polyureas, polyvinyl resins, polyacrylates, polymethylacrylates and fluoropolymers. Exemplary fluoropolymers include, but are not limited to, perfluoroalkoxy alkane polymer (PFA), ethylene tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), and tetrafluoroethylene polymer (PTFE), or other suitable polymeric materials, and having, for example, a secondary co-extruded conductive portion. In certain embodiments the interior fluoropolymer conductive stripe of the tubing segments has a width in the range of about 0.1-1 centimeter. In selected embodiments each tubing segment has a length in a range of about 1-100 feet. In other selected embodiments, the tubing segment has an outside diameter of about ⅛ inch to about 2 inches. In other embodiments the tubing segments have a measured resistance of about 1.2×104-6.7×105 ohm. In still other embodiments the tubing segments have a measured resistance of about 2.5-4.3×104 ohm.
  • FIG. 1 depicts a fluid handling system 150 according to one or more embodiments of the disclosure. The system 150 provides a flow path for fluid to flow from a fluid supply 152 to one or more process stages 156 positioned downstream of the source of fluid supply. System 150 includes a fluid circuit 160 which includes a portion of the flow path of the fluid handling system 150. The fluid circuit 160 includes tubing segments 164 and a plurality of operative components 168 that are interconnected via the tubing segments 164. In FIG. 1, the operative components 168 include an elbow shaped fitting 170, T-shaped fitting 172, a valve 174, filter 176, flow sensor 178, and straight fitting 179. However, in various embodiments the fluid circuit 160 can include additional or fewer operative components 168 in number and in type. For example, the fluid circuit 160 could substitute or additionally include pumps, mixers, dispense heads, sprayer nozzles, pressure regulators, flow controllers, or other types of operational components. In assembly, the operative components 168 are connected together by the plurality of tubing segments 164 connecting to the components 168 at their respective tubing connector fittings 186. Connected together, the plurality of tubing segments 164 and operative components 168 provide a fluid passageway through the fluid circuit 160 from the fluid supply 152 and toward the process stages 156. In certain embodiments, the operational components 168 each include a body portion 182 that defines fluid flow passageway and one or more tubing connector fittings 186. In some embodiments, at least one of the tubing connector fittings 186 is an inlet portion for receiving fluid into the body portion 182 and at least another one of the tubing connector fittings 186 is an outlet portion for outputting fluid received via the inlet portion. For example, T-shaped fitting 172 includes one tubing connector fitting 186 that is an inlet portion that receives fluid from the fluid supply 152 and two tubing connector fittings 186 which are outlet portions outputting fluid toward the process stages 156. In certain embodiments, the inlet portion and the outlet portion are each connected or connectable to a tubing segment 164. However, in some embodiments, for example where the operative components 168 in the fluid circuit 160 includes a spray nozzle, only the inlet portion is required to be connectable to a tubing segment 164. In some embodiments one or more of the operative components 168 includes a single tubing connector or fitting 179.
  • As illustrated in FIG. 1, each body portion 182 is additionally constructed using a conductive material to form a conductor portion that extends between and provides a conductive pathway between each of the tubing connector fittings 186. In various embodiments, the conductive pathway is bonded to and uniform with the body portion 182 and is constructed from a conductive polymeric material. For example, in some embodiments the conductor portion is constructed from PFA loaded with conductive material. This loaded PFA includes, but is not limited to, PFA loaded with carbon fiber, nickel coated graphite, carbon fiber, carbon powder, carbon nanotubes, metal particles, and steel fiber.
  • As illustrated in FIGS. 2 and 3, tubing segments 164 are partially conductive, having a main portion or tubing portion 187 constructed from non-conductive or low conductive polymeric material and having a secondary portion or conductive portion 188 (indicated by dashed lines) constructed from a conductive material that extends axially along the interior length of the tubing portion 187. For example, in some embodiments, tubing segments 164 each include a tubing portion 187 of a non-conductive fluoropolymer and conductive portion 188 formed as a stripe of conductive polymer extending axially on and bonded to a uniform with the non-conductive fluoropolymer main portion 187. In certain embodiments, tubing portions are constructed from PFA with the one or more conductive stripes 187 of the secondary portion constructed from carbon-loaded PFA that is extruded along the interior length of each of the tubing segments 164 at or near its interior surface.
  • Each of the operative components 168, as illustrated in FIG. 1, includes a bridging component for conductively connecting the respective conductive pathway of the body portion 182 to the conductive portion 187 of the tubing segments 164 (shown in FIGS. 2 and 3) that are connected to the operative components 168. As such, in certain embodiments the connected operative components 168 and tubing segments 164 form an electrical pathway along the entirety of the fluid circuit 160, eliminating breaks in conductivity between the tubing segments 160. A circuit diagram 190 is superimposed over the fluid circuit 160 to illustrate the electrical pathway. In various embodiments, conductive materials have a surface resistivity level less than about 1×1010 ohms per square, while non-conductive materials have a surface resistivity level greater than about 1×1010 ohms per square. In certain embodiments, conductive materials have a surface resistivity level less than about 1×109 ohms per square, while non-conductive materials have a surface resistivity level greater than about 1×109 ohms per square.
  • In certain embodiments, to mitigate static charge buildup, one or more of the operative components 168 are electrically connected to ground 194 via one or more attachment fixtures 198. The ground attachment fixtures 198 continuously disperse static charges as they build up in the fluid circuit 160 by providing a pathway to ground 194 from the conductive pathway 190.
  • FIGS. 2 and 3 depict examples of operative components 210 according to one or more embodiments of this disclosure. FIG. 2 depicts an operative component 210 that is a fitting 214, and, more specifically, is a three way connector having a “T” shape (e.g. a T-shaped fitting). FIG. 3 depicts a valve 218. The T-shaped fitting 214 includes a conductive body portion 222 and three connector fittings 226 extending outwardly from the body portion 222. In certain embodiments the exterior surface of the connector fittings includes a structure surface 270. The valve 218 includes a conductive body portion 230 and two connector fittings 227 extending outwardly from the body portion 230. In certain embodiments the exterior surface of the connector fittings includes a structure surface 270.
  • In various embodiments, connector fittings 226 and 227 are substantially the same design. As described above, in various embodiments the body portion 222, 230 is constructed using a conductive polymeric material. For example, the body portion 222 or 230 can be constructed from conductive carbon-loaded fluoropolymers including, but not limited to, PFA, ETFE, FEP, and PTFE.
  • FIG. 4a illustrates a straight connector fitting 400 to connect two tubing segments. Connector fitting 400 includes a shoulder region 402 adjacent a body portion 404 of an operative component and extends outwardly to form a neck region 406, a threaded region 406 a, and a nipple portion 406 b. Tubing segment 164 is received by the nipple portion 406 b, which, in certain embodiments, may be configured, for example, as a FLARETEK® fitting. Connector fitting 400 also includes an attachment feature 408 that is a conductive material that is conductively connected with the body portion 504 for attachment to an external electrical contact and then to ground. For example, attachment feature 408 can be connected to an electrical contact which is grounded in order to configure the operative component connector fitting 400 for ESD mitigation.
  • In the embodiment illustrated in FIG. 4b , connector fitting 400 includes a connector fitting nut 410 for engaging to the threaded region 406 a to secure tubing segment 164. In some embodiments the fitting nut may be, for example, a compression nut. As the fitting nut 410 is rotated and tightened onto the threaded region 406 a, tubing segment 164 engages the connector fitting so that the interior conductive stripes conductively connected the conductive portion to nipple portion 406 b, as well as forming a leak-proof seal between the tubing and the connector fitting. In one or more embodiments, fitting nut 410 has a generally cylindrical shape having an interior surface including threads 410 a for mating with threaded region 406 a. In addition, fitting nut 410 may have a structured outer surface such as, for example, ribs 270 illustrated in FIGS. 2 and 3, where the ribs are symmetrically disposed about the exterior surface for mating with a wrench or locking device for tightening or loosening of the fitting nut 410 on the threaded region 406 a.
  • In one or more embodiments, the fitting nut 410 is constructed from a polymeric material. For example, in certain embodiments the fitting nut 410 is constructed from PFA, polyaniline, or other suitable polymer.
  • In some embodiments, the connector fitting 400 is a conductive polymer material, such as carbon-loaded PFA, or other suitable conductive polymer, that is formed, for example, using conventional molding processes.
  • In certain embodiments, when the connector fitting 400 is assembled with tubing segment 164, the fitting nut 410 contacts the exterior surface of tubing segment 164 at the nipple forward portion 406 b and forms a continuous fluid passageway between tubing segment 164 and connector fitting 400. When the fitting nut 410 is rotated and tightened, O-ring 412 positioned between the fitting nut 410 and the shoulder portion 402 contacts both the exterior surfaces of the fitting nut and shoulder portion to provide a leak-proof connection.
  • In various embodiments, the O-ring 360 is constructed from polymeric material, such as PFA, or other polymers or elastomers.
  • Those of skill in the art will appreciate that, while the specific embodiments illustrated in FIGS. 2, 3 and 4 have identical connector fittings, in certain embodiments, the connector fittings may have varying sizes, may have various designs, such as step-down or step-up fittings, or may be located on various types of operative components 210.
  • FIGS. 5a-5e illustrate several embodiments of an operative component 500. Operative component 500 includes a body portion 504, tubing connector fittings 520, and fitting nuts 508. In one or more embodiments, the operative component 500 additionally includes an operative element 506 in the body portion. The operative element 506, in various embodiments, broadly includes suitable structure, electronics, or other materials for configuring the operative component 500 to perform various operations. For example, in some embodiments, the operational element 506 is a mixer, sensor, filter, pump, heat exchanger or other suitable element. As such, the operative component 500 is configurable to perform various processes or tasks within a fluid circuit.
  • The body portion 504 includes conductive PFA that extends between each of the tubing connector fittings 520 and forms electrical contact between each of the tubing connector fittings 520 and the interior conductive stripes of tubing segments 522 a and 522 b, respectively. Depicted in FIGS. 5b and 5c , in one or more embodiments, the conductive portions of the tubing segments are narrow interior stripes of conductive material that is bonded to and uniform with the non-conductive polymer material of the tubing segments. FIG. 5b illustrates a tubing segment with four interior conductive stripes 524 a-524 d. In another embodiment, 5 c illustrates a tubing segment with eight interior conductive stripes 524 a-524 h. In still other embodiments, FIG. 5d illustrates a tubing segment with eight interior conductive stripes 524 a-524 h, and two exterior conductive stripes 526 a and 526 b. In a similarly construction of a tubing segment with interior and exterior stripes, FIG. 5e illustrates a tubing segment with eight interior conductive stripes 524 a-524 hg, and two exterior conductive stripes 526 a and 526 b.
  • As described above, in various embodiments the operative component 500 is connected with tubing segments 522 a and 522 b at each of the connector fittings 508. The connector fittings 508 form an electrical pathway from conductive portions 522 a and 522 b of the tubing segments through the connector portions 508 and across the body portion 504.
  • In various embodiments, illustrated in FIG. 5a , the body portion 504 includes an attachment feature 528. In one or more embodiments, the attachment feature 528 is a piece of conductive material that is conductively connected with the body portion 504 for attachment to an external electrical contact and then to ground. For example, attachment feature 528 can be connected to an electrical contact which is grounded in order to configure the operative component 500 for ESD mitigation. In one or more embodiments, the attachment feature 528 is a connector boss which is threaded for attachment to a nut or other threaded connector. In some embodiments, the attachment feature 528 is a tab, a threaded hole, or other suitable feature for connecting to an electrical contact. However, in certain embodiments, the attachment feature 528 can be configured for interference fit, snap fit, friction fit, or other methods of fitting with an electrical contact.
  • FIG. 6a illustrates one embodiment of an operative component that is a filter. This isomeric view of a filter 600 includes a housing 602, two conductive end caps 604 and 606, and outer conductive sleeve 608. Housing 602 includes an interior filter element (not shown) that in some embodiments is a replaceable component; while in other embodiments is a fixed, non-replaceable component. In various embodiments, housing 602 may be a polymeric material and in other embodiments may be a conductive polymer such as, for example a conductive, carbon-loaded PFA as describe above. Both conductive end caps 604, 606 may be conductive materials such as, for example, conductive, carbon-loaded PFA. Each end cap 604, 606 includes fittings for connecting the end caps to housing 602. In some embodiments the connection may be removable, while in other embodiments the connection may be fixed or permanent. In addition, each end cap 604, 606 include one or more connector fittings to connect each end cap to tubing segments (also not shown), described above, in order to provide both a connective pathway and a fluid passageway from a tubing segment through one end cap and housing to another end cap and tubing segment. In certain embodiments, the connector fitting includes, for example, a nipple portion 610, threaded portion, 612, shoulder portion 614 and fitting nut 616, as described above, to provide a conductive connection as well as a leak-proof passageway from tubing segments and filter 600. Further, the connector fitting may include an O-Ring (not shown). Conductive sleeve 608 extends over the exterior surface of both the housing 602 and conductive end caps 604, 606. The sleeve 608 is a conductive polymer material such as, for example, carbon-loaded PFA that provides a conductive connection between the end caps 604, 606. In some embodiments, sleeve 608 is a shrink wrap polymer that may be placed over the exterior of housing 602 and end caps 604, 606 and connected to the exterior surfaces by applying heat to the sleeve using conventional apparatus and process. Optionally, one both of both end caps 604, 606 may include an attachment feature (not shown). In one or more embodiments, the attachment feature is a piece of conductive material that is conductively connected with one or both end caps 604, 606 for attachment to an external electrical contact and then to ground. For example, attachment feature can be connected to an electrical contact which is grounded in order to configure the filter for ESD mitigation. In one or more embodiments, the attachment feature is a connector boss which is threaded for attachment to a nut or other threaded connector. In some embodiments, the attachment feature is a tab, a threaded hole, or other suitable feature for connecting to an electrical contact. However, in certain embodiments, the attachment feature can be configured for interference fit, snap fit, friction fit, or other method of fitting with an electrical contact.
  • In certain embodiments as illustrated in FIG. 6b , filter 600 includes a drain fitting 618 and drain plug 620. When the drain fitting 618 and/or drain plug is a conductive material, one or both of these components may be connected to ground to provide ESD mitigation.
  • FIG. 7a also illustrates one embodiment of an operative component that is a filter. This isomeric view of a filter 700 includes a housing 702, a conductive end cap 704, and outer conductive sleeve 708. Housing 702 includes an interior filter element (not shown) that in some embodiments is a replaceable component; while in other embodiments is a fixed, non-replaceable component. In various embodiments, housing 702 may be a polymeric material and in other embodiments may be a conductive polymer such as, for example a conductive, carbon-loaded PFA as describe above. Conductive end cap 704 may be a conductive material such as, for example, conductive, carbon-loaded PFA. Conductive end cap 704 includes fittings for connecting the end cap to housing 702. In some embodiments the connection may be removable, while in other embodiments the connection may be fixed or permanent. In addition, end cap 704 includes one or more connector fittings 710 to connect the end cap to tubing segments as described above, in order to provide both connective and fluid passageways from a tubing segment through a conductor fitting through the housing to another conductor fitting and tubing segment. In certain embodiments, the connector fittings include, for example, a nipple portion, threaded portion, shoulder portion, and fitting nut, as described above, to provide conductive connections as well as a leak-proof fluid passageway from tubing segments 164 and filter 700. Further, the connector fitting may include an O ring (not shown). Conductive sleeve 708 extends over the exterior surface of both the housing 702 and conductive end cap 704. The sleeve 708 is a conductive polymer material such as, for example, carbon-loaded PFA that provides a conductive connection between the end cap 704 and the exterior of filter 700. In some embodiments, sleeve 708 is a shrink wrap polymer that may be placed over the exterior of housing 702 and end cap 704 and connected to the exterior surfaces by applying heat to the sleeve using conventional apparatus and process. Optionally, end cap 704 may include an attachment feature (not shown). In one or more embodiments, the attachment feature is a piece of conductive material that is conductively connected with end cap 704 for attachment to an external electrical contact and then to ground. For example, attachment feature can be connected to an electrical contact which is grounded in order to configure the filter for ESD mitigation. In one or more embodiments, the attachment feature is a connector boss which is threaded for attachment to a nut or other threaded connector. In some embodiments, the attachment feature is a tab, a threaded hole, or other suitable feature for connecting to an electrical contact. However, in certain embodiments, the attachment feature can be configured for interference fit, snap fit, friction fit, or other method of fitting with an electrical contact. In certain embodiments, filter 700 includes a drain fitting 718 and drain plug (not shown). When the drain fitting 718 and/or drain plug is a conductive material, one or both of these components may be connected to ground to provide ESD mitigation. FIG. 7a also illustrates an optional retainer clamp that includes clamping elements 721, 722 and 723.
  • FIG. 7b illustrates an embodiment of an end cap 704 that includes a conductive polymer portion 730 and a natural polymer portion 732.
  • Co-extrusion Process
  • Tubing segments having conductive polymer stripes set out in this disclosure may be made using a variety of co-extrusion process. For example, the tubing segment 800 a illustrated in FIG. 8a includes conductive stripes 802 a and 804 a on the exterior or outside diameter of the tubing segment and conductive stripes 806 a on the interior or inside diameter of the tubing segment. In another embodiment, FIG. 8b illustrates tubing segment 800 b having conductive stipes 802 b on the interior of the tubing segment that are spiral stripes that extend along the axially length of the tubing segment. In another embodiment, FIG. 8c illustrates tubing segment 800 c having conductive stipes 802 c and 804 c on both the exterior and interior of the tubing segment that are spiral stripes that extend along the axially along the length of the tubing segment. In still another embodiment, FIG. 8d illustrates tubing segment 800 d having conductive stipes 802 d on the exterior of the tubing segment that are spiral stripes that extend along the axially along the length of the tubing segment.
  • FIG. 9 is a digital image of a tubing segment 900 that includes eight interior stripes, the black stripes in the image, on the interior of the tubing segment. This digital image shows the interior stripes are bonded to and uniform the other portion to the tubing segment. FIG. 10 is a digital image of an extrusion apparatus that provides one or more tubing segments set out in the disclosure. FIG. 10 shows a non-conductive extruded polymer (PFA) feed 1000 and a conductive extruded polymer (PFA/carbon black polymer) feed 1010 that are fed in a perpendicular manner to a tool 1020 that extrude stripes 1030 on the inner diameter of the tubing segment 1050 as well as on both the inner and outer diameters of the tubing segment. Those skilled in the art would readily determine the specific extrusion parameters that would provide the tubing segment having conductive stripes that are bonded to and uniform with the non-conductive portions of the tubing segment.
  • Example 1 Static Generation Test
  • This example measured the amount of static electricity generated by flowing deionized water the tubing segments that included the conductive and non-conductive materials set out in Table 1, below. The measurement of static electricity was made using known methods for collecting and measuring generated charge in a Faraday cup.
  • FIG. 11 is a digital image that shows Faraday cup apparatus 1100 used in this example. Briefly, deionized water 1110 is passed through an operative element 1130 and grounded tubing segment 1120 and then collected in a Faraday cup. The Faraday cup 1150 included a cover that is not show in the image when the data was collected for this example. Exemplary data provided by the imaged data is set out in FIGS. 12-16, below.
  • FIGS. 12-13 graphically illustrate the difference in static charge generation between a PFA tubing segment and a stainless steel (SS) tubing segment having the same diameter under the same flow conditions. The PFA tubing segment generated substantially more static charge (about 1600 nC) compared to the static charge generated by the SS tubing segment (about 80 nC).
  • FIGS. 14-15 graphically illustrate the difference in static charge generation between a PFA/inner and outer diameter stripes tubing segment and a PFA/inner diameter stripes tubing segment having the same diameter under the same flow conditions. PFA/inner and outer diameter stripes tubing segment generated less static charge (about 43 nC) compared to the static charge generated by the PFA/inner diameter stripes tubing segment (about 115 nC).
  • Table 1 summarizes the measured amount of static electricity generated by various tubing segments tested in this example. These results are also graphically displayed in FIG. 16.
  • TABLE 1
    Charge in Range of Measured Resistance of
    cup at voltage Charge in lowest resistance material
    conclusion
    1 cm from cup after DI water in contact with fluid or
    Cross of test outside of grounding Resistivity present on elsewhere
    Material Section (nC) tube. (V) (nC) (M-ohm) (ohm)
    1 Stainless Solid 14 25-175 3750 15.0
    Steel stainless
    steel
    2 CNT PFA Solid 25 20 4000 17.5 1.2 × 10{circumflex over ( )}4-6.7 × 10{circumflex over ( )}5
    conductive
    material
    3 Entegris Conductive 45 10-35  4000 15.9 2.5-4.3 × 10{circumflex over ( )}4
    striper ID stripes ID
    and OD and OD
    4 Nichias Conductive 75 0-40 4000 17.0 2.5-4.3 × 10{circumflex over ( )}4
    I-Beam I-beam ID to
    OD
    5 Entegris Conductive 140 75-200 4000 16.7 2.5-4.3 × 10{circumflex over ( )}4
    stripes ID Stripes ID
    only
    6 Pureline Conductive 1800 100 4000 16.0 2.5 × 10{circumflex over ( )}4-2 × 10{circumflex over ( )}5
    Stripes OD
    only
    7 PFA Solid PFA 3000 500-3500 4000 17.0
    8 CP PFA, Solid 3000 −250 to 250 4000 17.8 2.7-2.9 × 10{circumflex over ( )}12
    Entegris conductive
    160 material
    material
  • The descriptions of the various embodiments of the present disclosure have been presented for purposes of illustration, but are not intended to be exhaustive or limited to the embodiments disclosed. Many modifications and variations will be apparent to those of ordinary skill in the art without departing from the scope and spirit of the described embodiments. The terminology used herein was chosen to explain the principles of the embodiments, the practical application or technical improvement over technologies found in the marketplace, or to enable others of ordinary skill in the art to understand the embodiments disclosed herein.

Claims (21)

What is claimed is:
1-15. (canceled)
16. An operative component for reducing charge accumulation, the operative component comprising:
a fluid passageway connecting an entrance of the fluid passageway to an exit of the fluid passageway;
a conductive polymer comprising a portion of a wall of the fluid passageway; and
an attachment feature that conductively connects the conductive polymer of the respective operative component to ground.
17. The operative component of claim 16, wherein the operative component comprises a valve, a straight connector, a T-connector, an elbow connector, a multi-connector manifold, a filter, a heat exchanger, or a sensor.
18. The operative component of claim 16, wherein the operative component is a valve comprising a body portion having a fluid passageway valve to adjust flow through a fluid passageway.
19. The operative component of claim 16, wherein the operative component is a filter comprising a body portion having a housing with the fluid passageway, a filter element and two conductive end caps with tubing connector fittings and conductive fitting nuts to conductively connect tubing segments connected to the filter, wherein the body portion has conductive exterior stripes to conductively connect the end caps.
20. The operative component of claim 16, wherein the operative component comprises a filter having a conductive sleeve conductively connecting two conductive end caps to the exterior of the body portion.
21. The operative component of claim 16, wherein the operative component is a filter comprising a body portion having a housing with the fluid passageway, a filter element, and a single conductive end cap with tubing connector fittings and conductive fitting nuts to conductively connect tubing segments connected to the filter.
22. The operative component of claim 16, wherein the operative component is a filter.
23. The operative component of claim 16, wherein the operative component is configured to conductively connect to a second operative component.
24. A tubing segment to reduce charge accumulation, the tubing segment comprising:
a non-conductive polymer portion defining a fluid passageway; and
an interior conductive stripe of conductive fluoropolymer extending axially to ends of the respective tubing segment, the interior conductive stripe comprising a portion of a wall of the fluid passageway.
25. The tubing segment of claim 24, wherein the interior stripe of conductive fluoropolymer comprises a conductive filler comprising carbon.
26. The tubing segment of claim 25, wherein the carbon comprises carbon black.
27. The tubing segment of claim 24, wherein the fluoropolymer comprises a perfluoroalkoxy alkane polymer (PFA).
28. The tubing segment of claim 24, wherein the fluoropolymer comprises ethylene tetrafluoroethylene polymer (ETFE).
29. The tubing segment of claim 24, wherein the fluoropolymer comprises at least one polymer selected from a group consisting of ethylene tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), and tetrafluoroethylene polymer (PTFE).
30. The tubing segment of claim 24, wherein the tubing segment comprises a plurality of exits.
31. The tubing segment of claim 24, wherein the tubing segment comprises a plurality of entrances.
32. The tubing segment of claim 24, wherein the tubing segment comprises a plurality of interior conductive stripes of conductive fluoropolymer extending axially to ends of the respective tubing segment.
33. The tubing segment of claim 32, wherein the plurality of interior conductive stripes of conductive fluoropolymer comprises four stripes.
34. The tubing segment of claim 32, wherein the plurality of interior conductive stripes of conductive fluoropolymer comprises eight stripes.
35. The tubing segment of claim 24, wherein the interior conductive stripe of conductive fluoropolymer forms a spiral on the wall of the fluid passageway.
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Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111918708A (en) * 2018-03-28 2020-11-10 诺雷尔公司 Multichannel distillation column packing
CN115866862A (en) * 2018-05-07 2023-03-28 恩特格里斯公司 Fluid circuit with integrated electrostatic discharge mitigation
DE102018219285A1 (en) * 2018-11-12 2020-05-14 Festool Gmbh Connecting device, method for producing a connecting device, screw sleeve
US11646183B2 (en) * 2020-03-20 2023-05-09 Applied Materials, Inc. Substrate support assembly with arc resistant coolant conduit
TWI786596B (en) * 2020-04-17 2022-12-11 美商恩特葛瑞斯股份有限公司 Electrostatic discharge mitigation device and fluid circuit having the same
US11560701B2 (en) 2020-09-04 2023-01-24 Delta Faucet Company Conductive bonnet nut for an electronic faucet
US20220365439A1 (en) * 2021-05-13 2022-11-17 Taiwan Semiconductor Manufacturing Company, Ltd. Surface charge release in lithography developing process

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5893273A (en) * 1996-06-21 1999-04-13 Aeroquip Vickers, Inc. Shut-off valve with incorporated expansion nozzle, for pressurized fluids of air cooling/heating apparatus
US5941232A (en) * 1996-04-16 1999-08-24 Vogelzang International Corporation Space heater with novel fuel line assembly
US20120161434A1 (en) * 2010-12-23 2012-06-28 Wells Michael P Fluid connector with a hose cutting clip
US20130087381A1 (en) * 2011-10-07 2013-04-11 Titeflex Corporation Bushings, sealing devices, tubing, and methods of installing tubing
US11339063B2 (en) * 2018-05-07 2022-05-24 Entegris, Inc. Fluid circuit with integrated electrostatic discharge mitigation

Family Cites Families (69)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3465111A (en) * 1967-01-19 1969-09-02 Beamco Inc Apparatus for establishing a combined fluid conduit and electric circuit system
US4120325A (en) * 1974-03-04 1978-10-17 Wavin B.V. Electrically conducting plastic pipe system
US3914002A (en) * 1974-04-17 1975-10-21 Sherwood Medical Ind Inc Conductive tubing and method of making same
US4127840A (en) 1977-02-22 1978-11-28 Conrac Corporation Solid state force transducer
US4312383A (en) * 1980-04-21 1982-01-26 Dayco Corporation Hose construction and apparatus for and method of making same
JPS57185360A (en) 1981-05-08 1982-11-15 Toray Ind Inc Covering composition
US4437986A (en) * 1982-09-22 1984-03-20 Fram Corporation Separating device and cartridge therefor
US4878930A (en) 1984-03-15 1989-11-07 W. L. Gore & Associates, Inc. Filter cartridge
US4500425A (en) * 1984-06-13 1985-02-19 Allied Corporation Pump valve for liquid separator
US4675780A (en) * 1985-08-26 1987-06-23 The Gates Rubber Company Conductive fiber hose
CA1300825C (en) * 1986-09-12 1992-05-19 Jean-Claude Blandin Pipe system for central suction cleaning installation and process for theproduction of a tube usable in such a pipe system
GB8714754D0 (en) * 1987-06-24 1987-07-29 Framo Dev Ltd Electrical conductor arrangements
US5000875A (en) * 1987-10-16 1991-03-19 E. I. Du Pont De Nemours And Company Conductive filled fluoropolymers
JPH0452556Y2 (en) 1988-10-26 1992-12-10
DE69211009T2 (en) 1991-10-23 1996-11-28 Gore & Ass SHIELDING FILTER AGAINST ELECTROMAGNETIC INTERFERENCE
US5229200A (en) 1991-12-18 1993-07-20 W. L. Gore & Associates, Inc. Static dissipative nonwoven textile material
US5527569A (en) 1994-08-22 1996-06-18 W. L. Gore & Associates, Inc. Conductive filter laminate
US5678435A (en) 1995-08-14 1997-10-21 Hodson; James M. Bicycle locking mechanism
US6012336A (en) 1995-09-06 2000-01-11 Sandia Corporation Capacitance pressure sensor
US5869766A (en) 1995-10-03 1999-02-09 Nt International, Inc. Non-contaminating pressure transducer module
US5672832A (en) 1996-02-15 1997-09-30 Nt International, Inc. Chemically inert flow meter within caustic fluids having non-contaminating body
US6179132B1 (en) 1998-03-13 2001-01-30 Millipore Corporation Surface modified polymeric substrate and process
JP3517773B2 (en) * 1998-04-07 2004-04-12 豊田合成株式会社 Resin fitting for fuel hose
US6428729B1 (en) 1998-05-28 2002-08-06 Entegris, Inc. Composite substrate carrier
DE19960630B4 (en) 1998-12-18 2014-01-16 Entegris, Inc. Plastic valve
US6325932B1 (en) 1999-11-30 2001-12-04 Mykrolis Corporation Apparatus and method for pumping high viscosity fluid
US6652008B2 (en) 1999-12-29 2003-11-25 Entegris, Inc. Component to component sealing method
US7347937B1 (en) 2000-01-28 2008-03-25 Entegris, Inc. Perfluorinated thermoplastic filter cartridge
US6412832B1 (en) 2000-06-08 2002-07-02 Entegris, Inc. Self-flaring plastic fittings
US6409222B1 (en) 2000-06-08 2002-06-25 Fluroware, Inc. Torque confirmation fitting
AU2001268266A1 (en) 2000-06-08 2001-12-17 Fluoroware, Inc. Plastic fitting for flared tubing
US6612175B1 (en) 2000-07-20 2003-09-02 Nt International, Inc. Sensor usable in ultra pure and highly corrosive environments
ES2211436T3 (en) * 2000-09-20 2004-07-16 Ti Automotive (Fuldabruck) Gmbh COUPLING, ESPECIALLY QUICK COUPLING, FOR PIPE SECTIONS THAT TRANSPORT FUEL.
US6789781B2 (en) 2001-03-16 2004-09-14 Entegris, Inc. Reinforced diaphragm valve
DE10117753C2 (en) * 2001-04-09 2003-04-10 Veritas Ag Multi-layer line
EP1393021A4 (en) 2001-05-25 2008-01-16 Entegris Inc Fluoropolymer flowmeter
JP3706813B2 (en) 2001-06-01 2005-10-19 日本ピラー工業株式会社 Tube retaining method and tube retaining structure for resin pipe joints
CN100380083C (en) 2001-10-01 2008-04-09 安格斯公司 Exchange apparatus
TR200400760T2 (en) 2001-10-16 2005-11-21 Argo-Hytos Gmbh Filter element
JP2005521236A (en) 2001-11-27 2005-07-14 エンテグリス・インコーポレーテッド Semiconductor parts handling equipment with performance film
JP3808790B2 (en) 2002-03-26 2006-08-16 大日本スクリーン製造株式会社 Substrate processing equipment
JP4398860B2 (en) 2002-07-11 2010-01-13 ポール・コーポレーション UV-treated film
JP3984928B2 (en) 2003-05-16 2007-10-03 日本ピラー工業株式会社 Piping system for semiconductor manufacturing equipment
US7063304B2 (en) 2003-07-11 2006-06-20 Entegris, Inc. Extended stroke valve and diaphragm
US20060011246A1 (en) 2004-07-09 2006-01-19 Leys John A Fluid flow control system and method
US20060099843A1 (en) * 2004-11-01 2006-05-11 Fullner Todd C Dielectric fittings
US7350826B2 (en) * 2004-12-15 2008-04-01 Eaton Corporation Conduit assembly
US8561855B2 (en) 2005-04-08 2013-10-22 Entegris, Inc. High-volume fluid dispense system
CN101365904A (en) 2006-01-06 2009-02-11 安格斯公司 Welded diaphragm valve
WO2008008465A2 (en) 2006-07-14 2008-01-17 Entegris, Inc. Valve manifold assembly
US7690692B2 (en) * 2006-08-21 2010-04-06 Continental Automotive Systems Us, Inc. Electrostatic discharge solution for angled fuel port of a fuel pump
KR100823329B1 (en) * 2006-09-12 2008-04-17 정태화 A composite pipe with end liner
JP4464381B2 (en) 2006-09-28 2010-05-19 ニチアス株式会社 Antistatic tube
US7575447B2 (en) * 2006-10-13 2009-08-18 Airbus Deutschland Gmbh Arrangement for connection of pipes
DE202010017917U1 (en) 2010-06-23 2013-02-11 Hydac Filtertechnik Gmbh Filter material and this filter element containing
CN102142430B (en) * 2010-12-24 2012-12-26 深圳顺络电子股份有限公司 Chip type high polymer electrostatic discharge protecting element and manufacturing method thereof
DE102012112563B4 (en) 2011-12-22 2023-05-04 Voss Automotive Gmbh "Assembled fluid line"
US20140202946A1 (en) 2013-01-22 2014-07-24 Kabushiki Kaisha Toshiba Piping joint and semiconductor manufacturing apparatus
CH707521A2 (en) 2013-01-22 2014-07-31 Zimmermann Verfahrenstechnik Ag Device for connecting separate pipe ends for forming conveyor line for transporting e.g. free-flowing liquid, has electrically conductive strip-like elastic plates inside elastic pipe element in immediate vicinity of inner wall
US9458810B2 (en) 2013-02-06 2016-10-04 GM Global Technology Operations LLC Fuel module with electrostatic discharge mitigation
US10254257B2 (en) * 2013-12-23 2019-04-09 Agilent Technologies, Inc. ESD protected tubing for removing charge from lumen
JP2016121792A (en) 2014-12-25 2016-07-07 淀川ヒューテック株式会社 Fluorine resin tube
TWM522298U (en) 2015-12-08 2016-05-21 Marketech Int Corp Static electricity reducing tube assembly for chemical supply system
CN205244650U (en) * 2015-12-16 2016-05-18 帆宣系统科技股份有限公司 Chemical supply system is with subtracting static pipeline subassembly
ES2701951T3 (en) 2016-02-10 2019-02-26 Veritas Ag Hose for a fluid and procedure of production of said hose
CN109195682A (en) * 2016-06-01 2019-01-11 恩特格里斯公司 Conducting filtration device
CN206175842U (en) * 2016-08-31 2017-05-17 温州赵氟隆有限公司 Lined pipe with graphite alkene conductive strips
WO2020068745A1 (en) * 2018-09-27 2020-04-02 Entegris, Inc. Electrostatic dissipative fluoropolymer composites and articles formed therefrom
US11988308B2 (en) * 2019-09-09 2024-05-21 Entegris, Inc. Electrostatic discharge mitigation device

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5941232A (en) * 1996-04-16 1999-08-24 Vogelzang International Corporation Space heater with novel fuel line assembly
US5893273A (en) * 1996-06-21 1999-04-13 Aeroquip Vickers, Inc. Shut-off valve with incorporated expansion nozzle, for pressurized fluids of air cooling/heating apparatus
US20120161434A1 (en) * 2010-12-23 2012-06-28 Wells Michael P Fluid connector with a hose cutting clip
US20130087381A1 (en) * 2011-10-07 2013-04-11 Titeflex Corporation Bushings, sealing devices, tubing, and methods of installing tubing
US11339063B2 (en) * 2018-05-07 2022-05-24 Entegris, Inc. Fluid circuit with integrated electrostatic discharge mitigation

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