Filter with electrostatic discharge mitigation sleeve
11890560 ยท 2024-02-06
Assignee
Inventors
Cpc classification
B01D2201/50
PERFORMING OPERATIONS; TRANSPORTING
B01D29/11
PERFORMING OPERATIONS; TRANSPORTING
B01D2239/0241
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D35/31
PERFORMING OPERATIONS; TRANSPORTING
B01D29/11
PERFORMING OPERATIONS; TRANSPORTING
Abstract
This disclosure reports embodiments of a fluid filter for ESD mitigation having a conductive polymer sleeve. Embodiments of this filter may include a conductive sleeve and tie bands to mitigate electrostatic discharge.
Claims
1. An electrostatic mitigation filter comprising: a filter element, a filter housing made of a first polymeric material, first and second endcaps mounted to opposite ends of the filter housing and made of a second polymeric material different from the first polymeric material of the filter housing, each of the one or more endcaps is a conductive endcap comprising one or more connector fittings to connect each endcap to a tubing segment of a fluid circuit to provide a fluid passageway from a first tubing segment through one endcap and housing to another endcap and a second tubing segment, an electrically conductive polymer sleeve that comprises electrically conductive fluoropolymers selected from the group consisting of perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), polychlorotrifluoroethylene (PCTFE), and mixtures thereof, and one or more electrically conductive polymer tie bands comprising electrically conductive polyolefins, wherein the one or more electrically conductive polymer tie bands are connected electrically and conductively with the electrically conductive polymer sleeve to ground, wherein the filter element is within an interior of the filter housing, and the electrically conductive polymer sleeve extends over an exterior surface of the filter housing from the first end cap to the second end cap and provides an electrically conductive connection with the one or more electrically conductive polymer tie bands.
2. The electrostatic mitigation filter of claim 1, wherein the one or more connector fittings comprise a nipple portion, a threaded portion, a shoulder portion, and a fitting nut to provide conductive connections and a leak-proof fluid passageway from the tubing segment and the electrostatic mitigation filter.
3. The electrostatic mitigation filter of claim 1, wherein the electrostatic mitigation filter has a first electrically conductive polymer tie band for connecting to ground and a second electrically conductive polymer tie band to secure the electrically conductive polymer sleeve to the filter housing.
4. The electrostatic mitigation filter of claim 1, wherein the first polymeric material is selected from the group consisting of tetrafluoroethylene polymer (PTFE), perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), polychlorotrifluoroethylene (PCTFE), polyvinylidene fluoride (PVDF), and mixtures thereof.
5. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve comprises perfluoroalkoxy alkane polymer.
6. The electrostatic mitigation filter of claim 1, wherein the one or more electrically conductive polymer tie bands comprise electrically conductive fluoropolymers.
7. The electrostatic mitigation filter of claim 1, wherein the one or more electrically conductive polymer tie bands comprise electrically conductive polypropylene.
8. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve is an extruded tube.
9. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve is a cylindrical sheet.
10. The electrostatic mitigation filter of claim 1, having a measured charge of less than +/1 kV when a charge-generating fluid flows through the electrostatic mitigation filter.
11. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve has an outer surface resistivity of about 0.9E+2 ohm to about 1E+4 ohm.
12. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve has an outer surface resistivity of about 1E+3 ohm to about 1E+4 ohm.
13. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve has an inner surface resistivity of about 0.9E+2 ohm to about 1E+4 ohm.
14. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve has an inner surface resistivity of about 1E+3 ohm to about 1E+4 ohm.
15. The electrostatic mitigation filter of claim 1, wherein the one or more electrically conductive polymer tie bands have a resistivity of about of about 1E ohm to about 1E+4 ohm.
16. The electrostatic mitigation filter of claim 1, wherein the electrically conductive polymer sleeve is reusable.
17. A fluid handling system comprising the electrostatic mitigation filter of claim 1.
18. A method of mitigating electrostatic discharge in a fluid handling system comprising installing the electrostatic mitigation filter of claim 1 in the fluid handling system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) 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.
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DETAILED DESCRIPTION
(9) This disclosure reports embodiments of a fluid filter for ESD mitigation having a conductive polymer sleeve. Embodiments of this filter may include a conductive sleeve and tie bands to mitigate electrostatic discharge.
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(11) In certain embodiments as illustrated in
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(15) The ESD mitigation filter of this disclosure may be used in ESD mitigation fluid circuits. Representative ESD mitigation 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.
(16) An exemplary ESD circuit includes a fluid handling system 450 illustrated in
(17) Various embodiments of the disclosed ESD mitigation filter have electric charge and resistivity properties. In one embodiment, the filter has measured charge of less than +1 kV (a range of about 1 kV to about +1 kV) when a charge-generating fluid flows through the filter. In some embodiment, the conduction polymer sleeve has a resistivity of about 1E+1 to about 1E+4. In other embodiments, the conductive polymer sleeve has an outer surface resistivity of about 0.9E+2 ohm to about 4E+3 ohm, preferably the conductive polymer sleeve has an outer surface resistivity of about 1E+3 ohm to about 3E+3 ohm. In some embodiments, the conductive polymer sleeve has an inner surface resistivity of about 1E to about +4E ohm, from about 0.9E+2 ohm to about 2E+3 ohm, preferably the conductive polymer sleeve has an inner surface resistivity of about 1E+3 ohm to about 1.5E+3 ohm. In some embodiments, the conductive tie bands have a resistivity of about of about 1E+1 ohm to about 1E+4 ohm. In other embodiments, the conductive tie bands have a resistivity of about of about 2E+3 ohm to about 4E+3 ohm.
Example 1 Electrostatic Mitigation Measurements
(18) This example measured the amount of electric charge generated by flowing propylene glycol methyl ether acetate (PGMEA) through two commercially available filters, an IMPACT 8G 7 nm PTFE filter and an IMPACT 2 AT 0.05 um filter (both available from Entegris, Inc., Billerica, Mass.). The buildup of charge was measured with an ESD meter for a filter having an ESD sleeve according to this disclosure and for a filter not having an ESD sleeve. The ESD was measured a flow rates of 50, 100, 200 and 300 ml/min at room temperature. The measured charge is shown in
(19) The data demonstrates that the ESD charge values (kV) for the filters with an ESD sleeve are lower than for the filters without the ESD sleeve.
(20) In a first aspect, an electrostatic mitigation filter comprises a filter element, a filter housing, one or more endcaps, an electrically conductive polymer sleeve, and one or more electrically conductive polymer tie bands.
(21) A second aspect according to the first aspect, wherein the filter has one endcap.
(22) A third aspect according to the first aspect, wherein the filter has two end caps.
(23) A fourth aspect according to the first aspect, wherein a first electrically conductive polymer tie band for connecting to ground and a second electrically conductive polymer tie band to secure the electrically conductive polymer sleeve to the filter housing.
(24) A fifth aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve comprises electrically conductive fluoropolymers.
(25) A sixth aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve comprises an electrically conductive polymer selected from the group consisting of tetrafluoroethylene polymer (PTFE), perfluoroalkoxy alkane polymer (PFA), ethylene and tetrafluoroethylene polymer (ETFE), ethylene, tetrafluoroethylene and hexafluoropropylene polymer (EFEP), fluorinated ethylene propylene polymer (FEP), polychlorotrifluoroethylene (PCTFE), polyvinylidene fluoride (PVDF), and mixtures thereof.
(26) A seventh aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve comprises perfluoroalkoxy alkane polymer.
(27) An eighth aspect according to any of the previous aspects, wherein the one or more electrically conductive polymer tie bands comprise electrically conductive fluoropolymers or electrically conductive polyolefins.
(28) A ninth aspect according to any of the previous aspects, wherein the one or more electrically conductive polymer tie bands comprise electrically conductive polypropylene.
(29) A tenth aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve is an extruded tube.
(30) An eleventh aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve is a cylindrical sheet.
(31) A twelfth aspect according to any of the previous aspects, having a measured charge of less than +/1 kV when a charge-generating fluid flows through the filter.
(32) A thirteenth aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve has an outer surface resistivity of about 0.9E+2 ohm to about 1E+4 ohm.
(33) A fourteenth aspect according to any of the first through twelfth aspects, wherein the electrically conductive polymer sleeve has an outer surface resistivity of about 1E+3 ohm to about 1E+4 ohm.
(34) A fifteenth aspect according to any of the first through twelfth aspects, wherein the electrically conductive polymer sleeve has an inner surface resistivity of about 0.9E+2 ohm to about 1E+4 ohm.
(35) A sixteenth aspect according to any of the first through twelfth aspects, wherein the electrically conductive polymer sleeve has an inner surface resistivity of about 1E+3 ohm to about 1E+4 ohm.
(36) A seventeenth aspect according to any of the previous aspects, wherein the one or more electrically conductive polymer tie bands have a resistivity of about of about 1E ohm to about 1E+4 ohm.
(37) An eighteenth aspect according to any of the previous aspects, wherein the electrically conductive polymer sleeve is reusable.
(38) In a nineteenth aspect, an electrostatic discharge kit comprises an electrically conductive polymer sleeve and electrically conductive tie bands.
(39) In a twentieth aspect, a fluid handling system comprises an electrostatic mitigation filter of any one of the first through eighteenth aspects.
(40) In a twenty-first aspect, a method of mitigating electrostatic discharge in a fluid handling system comprises installing an electrostatic mitigation filter of any one of the first through eighteenth aspects in the fluid handling system.
(41) 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.