Hollow fiber membrane containing nucleating agent, and method for producing and using the same
Asymmetric hollow fiber membranes with tailored porosity and skin layers address the limitations of existing membranes by achieving high gas flux and selectivity in gas/liquid separations, particularly for CO2/N2 separation.
Patent Information
- Application Number
- JP2021537713
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-08-12
- Filing Date
- 2019-12-23
- Publication Date
- 2025-12-10
- Estimated Expiration
- 2039-12-23
AI Technical Summary
Existing microporous hollow fiber membranes are less than satisfactory in specific gas/liquid separation applications under certain operating conditions, necessitating improved membrane contactors with enhanced design and operating characteristics for applications such as degassing aqueous printing inks and separating dissolved gases from aqueous brines.
Asymmetric hollow fiber membranes are developed with a porous substrate and a skin layer composed of specific semi-crystalline thermoplastic polyolefins and a nucleating agent, featuring controlled porosity and pore size, allowing for high gas flux and selectivity in gas/liquid separations.
The asymmetric hollow fiber membranes achieve high gas flux and selectivity for gases like CO2/N2, with porosity and pore size tailored for efficient separation of gases from liquids, suitable for applications like degassing inks and enhancing oil recovery.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to asymmetric microporous hollow fiber membranes and gas permeable articles made using such hollow fiber membranes, as well as methods of making and using such hollow fiber membranes and gas permeable articles. [Background technology]
[0002] Microporous hollow fiber membranes can be used to separate components from fluid streams based on size, phase, charge, etc. Microporous hollow fibers often employ materials with controlled porosity and pore size, often on the order of a few micrometers, and can have many uses, including, for example, separation, filtration, diffusion, and barrier applications. These wide-ranging applications have practical applications in medical devices, electrochemical devices, chemical processing devices, pharmaceutical equipment, and water purification, to name a few. Summary of the Invention
[0003] The functionality of microporous hollow fiber membranes is often a complex function of the specific end use, the structure of the hollow fiber (e.g., hollow fiber diameter, wall thickness, porosity, pore size, and pore tortuosity), and the composition or chemistry of the asymmetric hollow fiber membrane surface. These and other variables of the hollow fiber must often be tailored to the specific end use. For example, membranes with gas-permeable separating layers can be used to provide selective gas / gas and / or gas / liquid passageways.
[0004] Asymmetric microporous hollow fiber membranes allow the selective passage of dissolved gases and the blocking of liquid water or other aqueous liquids and can be advantageously used in membrane contactors to achieve gas / liquid separations in certain applications such as degassing aqueous printing inks during printing, or separating dissolved gases such as carbon dioxide or methane from aqueous brines used to enhance oil recovery.
[0005] Membrane contactors useful for gas / liquid separation applications can be advantageously fabricated using hydrophobic asymmetric microporous hollow fiber membranes. Because the membranes are hydrophobic and have very small pores, liquids do not easily pass through the pores and are instead retained on the inner or outer membrane surface of the hollow fiber membrane. The hydrophobic hollow fiber membrane surface acts to separate the gas phase from the liquid phase without dispersing it. Such membrane contactors can be advantageously used to selectively separate gases such as air, carbon dioxide, or methane from aqueous liquids such as water or aqueous brine.
[0006] At least certain known microporous hollow fiber membranes have been found to be less than entirely satisfactory in some specific gas / liquid separation applications under certain operating conditions. Thus, a need exists for improved hollow fiber membrane contactors that have improved design or operating characteristics over known membrane contactors designed for specific end uses.
[0007] For example, given environmental concerns, the desire to separate components, the need to protect process equipment, and / or efforts to improve process efficiency, it is often necessary or desirable to remove one or more components or contaminants from an effluent stream so that the components or contaminants do not pollute the environment, adversely affect equipment, or so that they can be recycled. Existing industrial processes must frequently be upgraded to reduce environmental emissions and / or increase efficiency. Thus, there is often a need for processes and systems that can be economically retrofitted into existing manufacturing plants or processes to reduce emissions, protect equipment, recycle, or improve efficiency.
[0008] The use of porous materials for the selective passage of humidity (water vapor) and the blocking of liquid water, liquid desiccants, or other aqueous solutions may be desirable. In such liquid desiccant systems, temperature and humidity can be controlled by salt solutions (or desiccants) that absorb or release water vapor. The use of porous materials for the selective passage of water vapor (heat and moisture) and the blocking of gases (exhaust and intake gases) may be particularly desirable in connection with energy recovery ventilation (ERV) where heat and humidity are exchanged between make-up air and exhaust air in a ventilation system.
[0009] Thus, a need also exists for improved microporous hollow fiber membrane materials that can be used in a wider range of applications and that can perform better for specific purposes, under specific operating conditions, etc. A need also exists for improved membrane contactors that have improved designs or properties over known membrane contactors for use in gas / liquid separations in specific applications, such as degassing aqueous printing inks during printing, or separating dissolved gases such as carbon dioxide or methane from aqueous brines used to enhance oil recovery. It is an object of at least certain exemplary embodiments of the present disclosure to provide an asymmetric microporous hollow fiber membrane device that meets these and other needs.
[0010] Membrane contactors containing microporous hollow fiber membranes can be used in a variety of applications, including separating components from a fluid or transferring components of one fluid to another. For example, a membrane contactor containing multiple microporous hollow fiber membranes can be used to remove dissolved gases from a liquid stream. In many industrial processes, the composition and quantity of dissolved gases must be well controlled, for example, to prevent pipe corrosion, improve the reliability and quality of inkjet printing, and increase the accuracy of instrumental analyses.
[0011] It may be an object of at least certain selected embodiments of the present disclosure to provide a membrane contactor device comprising a multiplicity of microporous hollow fiber membranes and / or methods of making and using such membrane contactors and hollow fiber membranes that meet these and / or other needs. It may be an object of at least selected embodiments of the present disclosure to provide a porous hollow fiber membrane device and / or method that meets these and / or other needs.
[0012] Briefly, in one aspect, the present disclosure describes an asymmetric hollow fiber membrane comprising a porous substrate having a multitude of pores and a skin layer overlying the porous substrate. The porous substrate comprises a first semi-crystalline thermoplastic polyolefin (co)polymer and a nucleating agent in an amount effective to achieve nucleation. The skin layer comprises up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclohex ... and a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing a linear or branched alpha-olefin monomer selected from the group consisting of tetradecene, tetramethylrhododecene, dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. In some exemplary embodiments, the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer. In certain exemplary embodiments, the second semi-crystalline thermoplastic polyolefin (co)polymer is a homopolymer of a linear or branched alpha-olefin monomer.
[0013] In certain currently preferred embodiments, the plurality of pores comprises micropores. In some exemplary embodiments, the micropores have diameters between 0.01 micrometers and 1.0 micrometers. In other embodiments, the micropores have diameters between 0.02 micrometers and 0.5 micrometers. In further exemplary embodiments, the asymmetric hollow fiber membrane exhibits a porosity between 5% and 80%. In other embodiments, the asymmetric hollow fiber membrane exhibits a porosity between 10% and 50%.
[0014] In another aspect, the present disclosure describes a separation article comprising a plurality of asymmetric hollow fiber membranes according to any of the preceding embodiments. In some exemplary embodiments, the plurality of asymmetric hollow fiber membranes are arranged in an array, which may be formed by braiding. Optionally, the array is pleated, folded, or wound into a cylinder or cassette.
[0015] In further exemplary embodiments, the separation article is selectively permeable to CO over N or CH. Preferably, the separation article exhibits a CO / N selectivity of at least 8. In other exemplary embodiments, the filtration article is selectively permeable to O over N.
[0016] In a further aspect, the present disclosure describes methods of using any of the foregoing separation articles, wherein the separation article is used to separate a gas phase from a liquid phase. In certain embodiments, the gas phase comprises N, O, CO, CH, or a combination thereof. In some such embodiments, the liquid phase comprises liquid water. Optionally, the liquid phase is an aqueous printing ink or an aqueous brine.
[0017] In a final aspect, the present disclosure describes a method for making an asymmetric hollow fiber membrane, comprising providing a substrate resin and a skin layer resin, co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor, and stretching the asymmetric hollow fiber membrane precursor to form an asymmetric hollow fiber membrane having a skin layer made from the skin layer resin overlying a porous substrate made from the substrate resin and having a multitude of pores.
[0018] The substrate resin comprises a first semi-crystalline thermoplastic polyolefin (co)polymer and a nucleating agent in an amount effective to achieve nucleation. The skin layer resin comprises up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclopent ... and a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing a linear or branched alpha-olefin monomer selected from the group consisting of cyclododecene, dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. In some exemplary embodiments, the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer. In certain exemplary embodiments, the second semi-crystalline thermoplastic polyolefin (co)polymer is a homopolymer of a linear or branched alpha-olefin monomer.
[0019] In some exemplary embodiments, the skin layer resin is substantially free of any pore-forming material in an amount effective to cause pore formation. In some such embodiments, co-extruding the substrate resin and the skin layer resin to form the asymmetric hollow fiber membrane precursor comprises co-extruding the substrate resin and the skin layer resin through an annular co-extrusion die to form the asymmetric hollow fiber membrane precursor.
[0020] In certain exemplary embodiments, the method further includes annealing the asymmetric hollow fiber precursor. Preferably, annealing the asymmetric hollow fiber precursor includes annealing the asymmetric hollow fiber precursor before stretching the asymmetric hollow fiber precursor.
[0021] Exemplary embodiments of the present disclosure may provide various unexpected results and advantages. One such advantage of certain exemplary embodiments of the present disclosure is that asymmetric hollow fiber membranes can achieve both very high gas flux and high CO2 / N2 selectivity compared to other types of membranes. Asymmetric hollow fiber membranes may also exhibit uniform pore size and high porosity compared to other types of membranes.
[0022] List of Exemplary Embodiments A. An asymmetric hollow fiber membrane, a porous substrate having a plurality of pores, the porous substrate comprising a first semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing up to 3% by weight of linear or branched alpha olefin monomers with at least 97% by weight of 4-methyl-1-pentene monomers; a skin layer overlying the porous substrate, the skin layer comprising up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclopentene, methyltetracyclohex ... and a skin layer comprising a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing a linear or branched alpha-olefin monomer selected from the group consisting of cyclododecene, dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. B. The asymmetric hollow fiber membrane of embodiment A, wherein the first semi-crystalline thermoplastic polyolefin (co)polymer is derived by polymerizing one or more branched or linear alpha-olefin monomers selected from the group consisting of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. C. A first semi-crystalline thermoplastic polyolefin (co)polymer is heated to 230°C for 5 kg. f The asymmetric hollow fiber membrane according to embodiment A or B, which exhibits a melt flow index of 0.1 to 200 g / 10 min, measured under a load of 0.1 to 200 g / 10 min. D. The asymmetric hollow fiber membrane of any one of embodiments A through C, wherein the first semi-crystalline thermoplastic polyolefin (co)polymer comprises polypropylene. E. The asymmetric hollow fiber membrane of any one of embodiments AD, wherein the first semi-crystalline thermoplastic polyolefin (co)polymer comprises polyethylene. F. The asymmetric hollow fiber membrane of any one of embodiments A through E, wherein the nucleating agent comprises an α nucleating agent. G. The asymmetric hollow fiber membrane of any one of embodiments A through F, wherein the porous substrate is comprised of 5 wt. % or less of a nucleating agent. H. The asymmetric hollow fiber membrane of embodiment G, wherein the porous substrate is comprised of 2.5 wt.% or less of a nucleating agent. I. The asymmetric hollow fiber membrane of embodiment H, wherein the porous substrate comprises 0.5 wt. % or less of a nucleating agent. J. The asymmetric hollow fiber membrane of any one of embodiments AI, wherein the plurality of pores comprises micropores. K. The asymmetric hollow fiber membrane of embodiment J, wherein the plurality of pores have a diameter of 0.01 micrometers to 1.0 micrometers. L. The asymmetric hollow fiber membrane of embodiment K, wherein the plurality of pores have a diameter of 0.02 micrometers to 0.5 micrometers. M. The asymmetric hollow fiber membrane of any one of embodiments A to L, wherein the asymmetric hollow fiber membrane exhibits a porosity of 5% to 80%. N. The asymmetric hollow fiber membrane of embodiment M, wherein the asymmetric hollow fiber membrane exhibits a porosity of 10% to 50%. O. The asymmetric hollow fiber membrane of any one of embodiments A to N, wherein the skin layer is less porous than the porous substrate and constitutes the outer surface of the asymmetric hollow fiber membrane, and optionally the porous substrate constitutes the inner surface of the asymmetric hollow fiber membrane. P. The asymmetric hollow fiber membrane of embodiment O, wherein the skin layer is non-porous. Q. The asymmetric hollow fiber membrane of any one of embodiments A through P, wherein the skin layer has a thickness of less than 20 micrometers. R. The asymmetric hollow fiber membrane of embodiment Q, wherein the skin layer has a thickness of less than 5 micrometers. S. The asymmetric hollow fiber membrane of any one of embodiments A through R, wherein the porous substrate has a thickness of from 10 micrometers to 200 micrometers. T. The asymmetric hollow fiber membrane of embodiment S, wherein the porous substrate has a thickness of from 10 micrometers to 100 micrometers. U. The asymmetric hollow fiber membrane of embodiment T, wherein the porous substrate has a thickness of 20 micrometers to 60 micrometers. V. The asymmetric hollow fiber membrane of any one of embodiments A to U, wherein the asymmetric hollow fiber membrane is a heterogeneous asymmetric hollow fiber membrane. W. The asymmetric hollow fiber membrane of any one of embodiments A through V, wherein the skin layer completely covers the porous substrate. X. The first semi-crystalline thermoplastic polyolefin (co)polymer has a melting temperature (T) higher than the melting temperature of the second semi-crystalline thermoplastic polyolefin (co)polymer. m The asymmetric hollow fiber membrane according to any one of embodiments A to W, wherein Y. The asymmetric hollow fiber membrane of any one of embodiments A through X, wherein the crystallinity of the first thermoplastic polyolefin (co)polymer is at least 40%. Z. The asymmetric hollow fiber membrane of any one of embodiments A through Y, wherein the second thermoplastic polyolefin (co)polymer has a crystallinity of less than about 40%. AA. A separation article comprising a plurality of asymmetric hollow fiber membranes according to any one of embodiments A-Z. BB. The separation article of embodiment AA, in which a plurality of asymmetric hollow fiber membranes are arranged in an array, and optionally, the array is pleated, folded, or rolled into a cylinder or cassette. CC. The separation article of embodiment AA or BB, wherein the separation article is selectively permeable to CO2 over N2 or CH4. DD. The separation article of embodiment CC, wherein the CO2 / N2 or CO2 / CH4 selectivity of the separation article is at least 8. EE. The separation article of embodiment AA or BB, wherein the filtration article is selectively permeable to O 2 over N 2 . FF. A method of using the separation article of any one of embodiments AA, BB, CC, DD, EE, wherein the separation article is used to separate a gas phase from a liquid phase. GG. The method of embodiment FF, wherein the gas phase comprises N2, O2, CO2, CH4, or a combination thereof. HH. The liquid phase contains water. Optionally, the method of embodiment FF or GG, wherein the liquid phase is an aqueous printing ink or an aqueous brine. II. A method for producing an asymmetric hollow fiber membrane, comprising: providing a substrate resin and a skin layer resin, The base resin is a first semi-crystalline thermoplastic polyolefin. a (co)polymer and an amount of a nucleating agent effective to achieve nucleation, The skin layer resin is Up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclododecene, dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1- providing a substrate resin and a skin layer resin comprising a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing a linear or branched alpha-olefin monomer selected from the group consisting of undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof, optionally wherein the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer; co-extruding a substrate resin and a skin layer resin to form an asymmetric hollow fiber membrane precursor; stretching the asymmetric hollow fiber membrane precursor to form an asymmetric hollow fiber membrane having a porous substrate composed of a substrate resin and including a plurality of pores, and a skin layer composed of a skin layer resin on the porous substrate. JJ. The method of embodiment II, wherein co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor comprises co-extruding the substrate resin and the skin layer resin through an annular co-extrusion die to form an asymmetric hollow fiber precursor. KK. The method of any one of embodiments II or JJ, further comprising annealing the asymmetric hollow fiber precursor. LL. The method of embodiment KK, wherein annealing the asymmetric hollow fiber precursor comprises annealing the asymmetric hollow fiber precursor before stretching the asymmetric hollow fiber precursor. MM. The method of any one of embodiments II, JJ, KK, or LL, wherein the skin layer comprises the outer surface, the inner surface, or both the outer and inner surfaces of the asymmetric hollow fiber membrane. NN. The method of any one of embodiments II, JJ, KK, LL, or MM, wherein the skin layer resin is substantially free of any pore-forming material in an amount effective to cause pore formation. OO. The method of any one of embodiments II, JJ, KK, LL, MM, or NN, wherein co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor comprises co-extruding the substrate resin and the skin layer resin through an annular co-extrusion die to form an asymmetric hollow fiber precursor. PP. The method of any one of embodiments II, JJ, KK, LL, MM, NN, or OO, wherein the plurality of pores comprises micropores. QQ. The method of embodiment PP, wherein the plurality of pores have a diameter of 0.01 micrometers to 1.0 micrometers. RR. The method of embodiment QQ, wherein the plurality of micropores have a diameter of 0.02 micrometers to 0.5 micrometers. SS. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, or RR, wherein the asymmetric hollow fiber membrane exhibits a porosity of 5% to 80%. TT. The method of embodiment SS, wherein the asymmetric hollow fiber membrane exhibits a porosity of 10% to 50%. UU. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, or TT, wherein the skin layer is less porous than the porous substrate and constitutes the outer surface of the asymmetric hollow fiber membrane, and optionally the porous substrate constitutes the inner surface of the asymmetric hollow fiber membrane. VV. The method of embodiment UU, wherein the skin layer is non-porous. WW. A first semi-crystalline thermoplastic polyolefin (co)polymer has a melting temperature (T) higher than the melting temperature of a second semi-crystalline thermoplastic polyolefin (co)polymer. m The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, or VV, wherein XX. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, or WW, wherein the crystallinity of the first thermoplastic polyolefin (co)polymer is at least 40% by weight. YY. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, WW, or XX, wherein the crystallinity of the second thermoplastic polyolefin (co)polymer is less than 40% by weight. ZZ. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, WW, XX, or YY, wherein the skin layer has a thickness of less than 20 micrometers. AAA. The method of embodiment ZZ, wherein the skin layer has a thickness of less than 5 micrometers. BBB. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, WW, XX, YY, ZZ, or AAA, wherein the porous substrate has a thickness of 5 micrometers to 200 micrometers. CCC. The method of embodiment BBB, wherein the porous substrate has a thickness of 10 micrometers to 100 micrometers. DDD. The method of embodiment CCC, wherein the porous substrate has a thickness of 20 micrometers to 50 micrometers. EEE. The method of embodiment DDD, wherein the porous substrate has a thickness of 5 micrometers to 10 micrometers. FFF. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, WW, XX, YY, ZZ, AAA, BBB, CCC, DDD, or EEE, wherein the asymmetric hollow fiber membrane is a heterogeneous asymmetric hollow fiber membrane. GGG. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, WW, XX, YY, ZZ, AAA, BBB, CCC, DDD, EEE, or FFF, wherein the skin layer completely covers the porous substrate. HHH. The method of any one of embodiments II, JJ, KK, LL, MM, NN, OO, PP, QQ, RR, SS, TT, UU, VV, WW, XX, YY, ZZ, AAA, BBB, CCC, DDD, EEE, FFF, or GGG, wherein the skin layer constitutes the outer layer, the inner layer, or both the outer and inner layers of the asymmetric hollow fiber membrane.
[0023] The foregoing is a summary of various aspects and advantages of exemplary embodiments of the present disclosure. The above Summary is not intended to describe each illustrated embodiment or every implementation of this particular exemplary embodiment of the present disclosure. The following figures and Detailed Description more particularly illustrate certain preferred embodiments that employ the principles disclosed herein. [Brief explanation of the drawings]
[0024] A more complete understanding of the present disclosure may be obtained from the following detailed description of various embodiments of the present disclosure when considered in conjunction with the accompanying drawings, in which: [Figure 1] FIG. 1 is an enlarged surface view of an exemplary hollow fiber membrane array useful in producing a porous membrane contactor, according to certain embodiments of the present disclosure. [Figure 2] FIG. 1 is an enlarged perspective view of an end of an exemplary hollow fiber membrane according to certain embodiments of the present disclosure. [Figure 3] FIG. 4 is an enlarged surface view of a portion of the porous substrate layer of the hollow fiber of FIG. 3, in accordance with certain embodiments of the present disclosure. [Figure 4a] 1 is a photomicrograph obtained using a scanning electron microscope of the porous interior surface of an exemplary hollow fiber membrane including a nucleating agent, according to certain embodiments of the present disclosure. [Figure 4b] 10 is a photomicrograph obtained using a scanning electron microscope of the porous interior surface of another exemplary hollow fiber membrane including a nucleating agent, in accordance with certain additional embodiments of the present disclosure. [Figure 4c] 10 is a photomicrograph obtained using a scanning electron microscope of the porous interior surface of an additional exemplary hollow fiber membrane including a nucleating agent, according to certain further embodiments of the present disclosure.
[0025] In the drawings, like reference numerals represent like elements. The above-identified drawings, which may not be drawn to scale, illustrate various embodiments of the present disclosure; however, other embodiments are contemplated, as pointed out in the Detailed Description. This Detailed Description describes representative, exemplary, and presently preferred embodiments. It should be understood that many other modifications and embodiments may be devised by those skilled in the art that fall within the scope and spirit of the present disclosure and claims. DETAILED DESCRIPTION OF THE INVENTION
[0026] With regard to the following glossary of defined terms, these definitions shall apply throughout this application, unless a different definition is provided in the claims or elsewhere in this specification.
[0027] With regard to the following glossary of defined terms, these definitions shall apply throughout this application, unless a different definition is provided in the claims or elsewhere in this specification.
[0028] Glossary Certain terms are used throughout this specification and claims, most of which are well known, but may require some explanation. Accordingly, the following should be understood:
[0029] The term "(co)polymer" or "copolymers" includes homopolymers and copolymers, as well as homopolymers or copolymers that may be formed in miscible blends, for example, by coextrusion or by reaction, including, for example, transesterification. The term "copolymer" includes random copolymers, block copolymers, and star (e.g., dendritic) copolymers.
[0030] The term "hollow fiber membrane" means an artificial semi-permeable barrier in the form of an open tubular filament of indefinite length.
[0031] The term "asymmetric" with respect to hollow fiber membranes means that the membrane has two major surfaces, a lumen surface and an outer sheath surface, that are composite and / or structurally and / or functionally distinct.
[0032] The term "homogeneous" means exhibiting only a single phase of material when viewed on a macroscopic scale.
[0033] The term "microporous" with respect to hollow fiber membranes means that the membrane is formed from a solid matrix having defined, generally circular openings or holes (i.e., pores) formed therein, where the pores generally have a diameter of at least 10 nm and less than 1 mm.
[0034] The term "non-porous" with respect to a hollow fiber membrane skin layer refers to a dense film lacking defined openings (i.e., pores). Permeants (e.g., gases, liquids, and / or dispersed solid particulates) can nevertheless be transported through the non-porous skin layer by diffusion under the driving forces of concentration, pressure, or potential gradients.
[0035] The term "nucleating agent" means a substance that promotes crystallization of semi-crystalline polymers during melt processing.
[0036] The term "adjacent" with respect to a particular layer means that the two layers are adjacent (i.e., adjacent) and in direct contact with each other, or are joined to or attached to another layer in a position that is adjacent but not in direct contact with each other (i.e., with one or more additional layers interposed between the layers).
[0037] Regarding the location of various elements in the disclosed coated articles, orientation terms such as "atop," "on," "over," "covering," "uppermost," "overlaying," "underlying," etc. are used to refer to the relative position of the elements with respect to a horizontally positioned, upward-facing substrate. However, unless otherwise indicated, it is not intended that the substrate or article should have any particular spatial orientation during or after manufacture.
[0038] Use of the term "overcoated" to describe the location of a layer relative to a substrate or other element of an article of the present disclosure refers to the layer being on top of the substrate or other element, but not necessarily in close proximity to the substrate or other element.
[0039] By using the term "separated by" to describe the location of a layer relative to other layers, we are referring to a layer that is located between two other layers, but is not necessarily adjacent or contiguous to either layer.
[0040] The terms "about" or "approximately" with reference to a numerical value or shape mean ±5 percent of the numerical value or property or characteristic, but expressly include the exact numerical value. For example, a viscosity of "about" 1 Pa·sec refers to a viscosity between 0.95 and 1.05 Pa·sec, but expressly includes a viscosity of exactly 1 Pa·sec. Similarly, a "substantially square" perimeter is intended to describe a geometric shape having four lateral edges, each lateral edge having a length that is between 95% and 105% of the length of any other lateral edge, but is also intended to include a geometric shape in which each lateral edge has the exact same length.
[0041] The term "substantially" with respect to a property or characteristic means that the property or characteristic is exhibited to a greater extent than the opposite of the property or characteristic is exhibited. For example, a "substantially" transparent substrate refers to a substrate that transmits more radiation (e.g., visible light) than it does not transmit (e.g., absorbs and reflects). Thus, a substrate that transmits more than 50% of the visible light incident on its surface is substantially transparent, while a substrate that transmits 50% or less of the visible light incident on its surface is not substantially transparent.
[0042] As used in this specification and the accompanying embodiments, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to microfibers containing a "compound" includes a mixture of two or more compounds. As used in this specification and the accompanying embodiments, the term "or" is generally utilized in its sense including "and / or" unless the context clearly dictates otherwise.
[0043] As used herein, the recitations of numerical ranges by endpoints include all numbers subsumed within that range (e.g., 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.8, 4, and 5).
[0044] Unless otherwise indicated, all numbers expressing quantities or ingredients, measurements of properties, and the like used in the specification and embodiments are to be understood as being modified in all instances by the term "about." Accordingly, unless otherwise indicated, the numerical parameters set forth in the foregoing specification and the accompanying recitations of embodiments may vary depending upon the desired properties sought to be obtained by one of ordinary skill in the art using the teachings of the present disclosure. At the very least, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques; however, this is not intended to limit the application of the doctrine of equivalents to the scope of the claimed embodiments.
[0045] Various exemplary embodiments of the present disclosure will now be described with specific reference to the drawings. Various modifications and variations may be made to the exemplary embodiments of the present disclosure without departing from the spirit and scope of the present disclosure. Therefore, it should be understood that the embodiments of the present disclosure are not limited to the exemplary embodiments described below, but are instead governed by the limitations set forth in the claims and any equivalents thereof.
[0046] hollow fiber membrane 2, in one embodiment, the present disclosure describes a hollow fiber membrane 202 comprising a porous substrate 204 having a plurality of pores and a skin layer 206 overlying the porous substrate 204. The porous substrate 204 comprises a first semi-crystalline thermoplastic polyolefin (co)polymer and a nucleating agent in an amount effective to achieve nucleation. The skin layer 206 comprises: Up to 98% by weight of 4-methyl-1-pentene monomer is mixed with at least ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclododecene, dimethicone, dimethyldi ... and a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing 2 wt. % of a linear or branched alpha-olefin monomer selected from the group consisting of methyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. In some exemplary embodiments, the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer. In certain exemplary embodiments, the second semi-crystalline thermoplastic polyolefin (co)polymer is a homopolymer of a linear or branched alpha-olefin monomer.
[0047] As shown in FIG. 3, the surface 310 of the porous substrate has a plurality of pores 308. In certain currently preferred embodiments, the plurality of pores comprises micropores. In some such embodiments, the micropores have diameters between 0.01 micrometers and 1.0 micrometers. In other embodiments, the micropores have diameters between 0.02 micrometers and 0.5 micrometers. In further exemplary embodiments, the asymmetric hollow fiber membranes exhibit a porosity between 5% and 80%. In other embodiments, the asymmetric hollow fiber membranes exhibit a porosity between 10% and 50%.
[0048] In certain currently preferred embodiments, the skin layer completely covers the porous substrate. In some exemplary embodiments, the skin layer is less porous than the porous substrate and constitutes the outer surface of the asymmetric hollow fiber membrane. In some such embodiments, the porous substrate constitutes the lumen surface and the skin layer constitutes the outer sheath surface of the asymmetric hollow fiber membrane. In certain currently preferred embodiments, the skin layer is non-porous.
[0049] In some exemplary embodiments, the skin layer has a thickness of less than 20 micrometers, or even less than 5 micrometers. In certain such exemplary embodiments, the porous substrate has a thickness of between 5 micrometers and 200 micrometers, between 10 micrometers and 100 micrometers, between 20 micrometers and 50 micrometers, or even between 5 micrometers and 10 micrometers.
[0050] In further exemplary embodiments, the asymmetric hollow fiber membrane is a heterogeneous asymmetric hollow fiber membrane. In certain such embodiments, the skin layer is non-porous or exhibits small diameter pores, and the porous substrate exhibits larger diameter pores. In some such embodiments, the membrane morphology is radially isotropic.
[0051] In certain exemplary embodiments, the asymmetric microporous hollow fiber membrane exhibits the following properties: a CO gas permeation rate of 22-36 GPU (1 GPU = 10 -6 seconds / cm 2-sec-cmHg, CO2 / N2 selectivity of 13-14 (e.g., 13.85), skin layer thickness of 1.5-2.5 μm, asymmetric microporous asymmetric hollow fiber overall porosity of approximately 40%, fiber outer diameter (OD) of approximately 300 μm, fiber wall thickness of 20-40 μm, and total coverage of the skin layer on the porous substrate (i.e., 100%).
[0052] Materials for producing hollow fiber membranes The present inventors have discovered that poly(methyl)pentene (PMP)-polyolefin (co)polymer resins can be coextruded with polyolefin (PO) (co)polymer resins, such as polyethylene (PE) and polypropylene (PP), by incorporating a nucleating agent into the polyolefin resin. Among various suitable nucleating agents, a melt-sensitive, homogeneous α-polypropylene nucleating agent is particularly useful for forming a porous substrate layer. Coextruded PMP / PO hollow fiber membranes can exhibit higher gas permeability than previously disclosed coextruded PMP / PMP hollow fiber membranes.
[0053] Asymmetric hollow fiber membranes can be constructed using a variety of materials, including, but not limited to, thermoplastic (co)polymers such as polyolefins. In one exemplary embodiment, the microporous asymmetric hollow fiber membrane comprises a poly(methyl)pentene (PMP)-polyolefin (co)polymer skin layer disposed on a porous substrate composed of a polyolefin (co)polymer, preferably a polyolefin homopolymer.
[0054] porous base resin The porous substrate resin comprises one or more semi-crystalline thermoplastic polyolefin (co)polymers, which may be selected from poly(methyl)pentene (PMP)-polyolefin (co)polymers, polyethylene (PE), polypropylene (PP), or combinations thereof, having a crystallinity different from that of the PMP-polyolefin (co)polymer skin layer (described below).
[0055] Suitable poly(4-methyl-1-pentene) (PMP)-polyolefin copolymer porous substrate resins are available from Mitsui Chemical under the trade name TPX, such as, for example, MX002, MX004, MX002O, DX310, DX470, DX560M, DX820, and DX845.
[0056] Suitable polypropylene homopolymer porous substrate resins are available from Total Petrochemicals (Houston, TX) under the trade name FINA, such as FINA 3271, FINA 3276, FINA 3281, FINA 3371, FINA 3462, FINA 3480Z, or other trade names such as PPR 3260. Other suitable polypropylene homopolymers are available from Lyondel-Basell Industries (Pasadena, TX) under the trade name PRO-FAX, such as PRO-FAX 1280, PRO-FAX 814, PRO-FAX 1282, PROFAX 1283, or other trade names such as ADFLUEX X500F, ADSYL 3C30F, HP403G, TOPPYL SP 2103. Further suitable polypropylene homopolymers are available from INEOS Olefins & Polymers, USA (Carson, CA), such as INEOS H01-00, INEOS H02C-00, INEOS H04G-00, and INEOS H12G-00. Further suitable polypropylene homopolymers are available from Exxon-Mobil Chemical Co. (Spring, TX), such as PP1024E4, PP2252E3, PP4292E1, and PP4612E2.
[0057] Suitable polyethylene (PE) homopolymer porous substrate resins are available from Exxon-Mobil Chemical Co. (Spring, TX), such as HDPE 6908. Suitable polyethylene homopolymers are also available from Total Petrochemicals (Houston, TX), such as HDPE 9458, HDPE 9460, HL428, HL717, and Total 6480. Other suitable polyethylene homopolymers are available from Braskem Chemical and Plastics Company (LaPorte, TX), such as HF0144, HF0150, HF0147, and FH35.
[0058] In further exemplary embodiments, the porous substrate may have a thickness ranging from 5 to 200 μm, 10 to 100 μm, 15 to 75 μm, 20 to 50 μm, or 25 to 35 μm. In some exemplary embodiments, the substrate may have an even smaller thickness (e.g., less than 5 μm in various film and / or flat sheet embodiments).
[0059] Skin Layer Resin The skin layer may contain up to 98% by weight of 4-methyl-1-pentene monomer, and may be selected from the group consisting of at least ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclododecene, and a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing 2 wt. % of a linear or branched alpha-olefin monomer selected from the group consisting of dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. In some exemplary embodiments, the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer. In certain exemplary embodiments, the second semi-crystalline thermoplastic polyolefin (co)polymer is a homopolymer of a linear or branched alpha-olefin monomer.
[0060] Suitable poly(4-methyl-1-pentene) (PMP)-polyolefin copolymer skin layer resins are available from Mitsui Chemical under the trade name TPX, such as, for example, MX002, MX004, MX002O, DX310, DX470, DX560M, DX820, and DX845.
[0061] Based on nuclear magnetic resonance (NMR) analysis, linear or branched α-olefin comonomers have been identified in commercially available poly(methyl)pentene copolymers. The inventors have discovered that the use of poly(methyl)pentene copolymers with a comonomer content of less than 2.3 wt% of linear or branched α-olefin can lead to a defective (e.g., porous) skin layer. On the other hand, poly(methyl)pentene copolymers with sufficient linear or branched α-olefin comonomer (≧2.3 wt%) can form a non-porous skin layer. The highest linear or branched α-olefin comonomer concentration in a typical commercially available poly(methyl)pentene-polyolefin (co)polymer resin is about 6.7 wt%.
[0062] Asymmetric hollow fiber membranes are preferably constructed with a skin layer resin that differs from the porous substrate resin according to one or more physical properties. For example, the skin layer and porous substrate may each be formed from a PMP-polyolefin (co)polymer resin, but the crystallinity of the skin layer resin and the porous substrate resin may differ, resulting in a non-uniform asymmetric hollow fiber.
[0063] In certain exemplary embodiments, the skin layer resin has a crystallinity of about 40% or less, while the porous substrate resin has a crystallinity of about 40% or more, e.g., about 60% or more. The crystallinity of the PMP-polyolefin (co)polymer can affect the porosity of the material, with higher crystallinity resulting in more porous asymmetric hollow fibers compared to lower crystallinity. Correspondingly, the porosity of the material can affect the permeability of the asymmetric hollow fibers to liquids, dispersed solid particulates, and the like.
[0064] In other exemplary embodiments, the physical properties of the skin layer and the porous substrate may differ based on the polyolefin (co)polymer compositions used to form the skin layer and the porous substrate. For example, the skin layer may be formed from one or more PMP-polyolefin (co)polymers, and the porous substrate may be formed from one or more homopolymeric polyolefin (co)polymers, such as polyethylene (PE), polypropylene (PP), or combinations thereof.
[0065] In a further exemplary embodiment, the skin layer resin has a melting temperature (T m In certain other embodiments, the skin layer resin exhibits a melting temperature (T) greater than the melting temperature of the porous substrate resin. m ) is present.
[0066] The gas permeability of the non-porous skin layer can be a benefit or advantage of the hollow fiber membranes described herein. By way of example only, in some exemplary embodiments, the skin layer may be impermeable to liquids, yet still efficiently promote gas absorption and / or degassing of liquids. Furthermore, the temperature stability of the hollow fiber membranes described herein may be improved relative to other known membranes, since the high melting point of the PMP-polyolefin (co)polymer skin layer resin may add temperature stability to the asymmetric hollow fiber membranes.
[0067] Additionally, asymmetric hollow fibers formed from PMP-polyolefin (co)polymer skin layer resins and PE or PP microporous porous substrate resins can offer the benefit of having higher gas permeabilities than other membranes due to the high porosity of the microporous substrate. In various exemplary embodiments described herein, microporous substrates having porosities greater than 20%, or greater than 25%, or greater than 35%, or greater than 40% can be used.
[0068] In various exemplary embodiments including multi-layer microporous membranes, a skin layer may be disposed as any layer of a multi-layer asymmetric hollow fiber, e.g., a skin layer may constitute one or more outer and / or inner layers of a multi-layer asymmetric hollow fiber including multiple layers, e.g., three or more layers. Furthermore, in the case of asymmetric hollow fiber membranes, a skin layer may be disposed on the shell side or the lumen side of such asymmetric hollow fiber membranes.
[0069] The skin layer may advantageously be non-porous, such as a solid skin without pores disposed on a microporous substrate (or a microporous skin that is impermeable to liquids but permeable to gases). Without wishing to be bound by any particular theory, it is believed that the skin layers described herein do not form porosity due to the high alpha-olefin comonomer content of the skin layer resin.
[0070] The thickness of the skin layer and porous substrate can depend on the particular application for which the microporous asymmetric hollow fiber is employed. In some exemplary embodiments, the skin layer can be 20 micrometers (μm) or less in thickness, or 5 μm or less in thickness, or 3 μm or less in thickness, or about 2 μm in thickness. In various exemplary embodiments, a reduced skin layer thickness results in a more efficient asymmetric microporous asymmetric hollow fiber membrane.
[0071] nucleating agent Advantageously, the porous substrate resin further comprises a nucleating agent in an amount effective to achieve nucleation. Suitable nucleating agents are known to those skilled in the art and include alpha and gamma nucleating agents.
[0072] The α-nucleating agent can be either a melt nucleating agent or an insoluble nucleating agent. A melt nucleating agent is a nucleating agent that melts during melt blending but recrystallizes before the polymer separates from the mixture and crystallizes. Exemplary melt nucleating agents include, but are not limited to, arylalkanoic acid compounds, benzoic acid compounds, dicarboxylic acid compounds, and sorbitol acetal compounds.
[0073] Exemplary melt nucleating agents include, but are not limited to, dibenzylidine sorbitol, adipic acid, benzoic acid, and sorbitol acetal compounds. Exemplary commercially available melt nucleating agents include, but are not limited to, MILLAD® 3988 and MILLAD® NX8000 available from Milliken Chemical (Spartanburg, SC), or NA-806A available from Amfine Chemical Corporation (Hasbrouck Heights, NJ).
[0074] An insoluble α-nucleating agent is a nucleating agent that does not melt during blending of the melt blend. Generally, a material can be useful as an insoluble nucleating agent if it can be uniformly dispersed in the melt blend as discrete particles that can act as heterogeneous nucleation sites for the polymer components.
[0075] Exemplary insoluble nucleating agents include, but are not limited to, inorganic particulate materials and pigments, such as bicyclo[2.2.1]heptane-2,3-dicarboxylic acid, disodium salt (commercially available from Milliken & Company, Spartanburg, SC, under the trade name HYPERFORM® HPN-20E), TiO2, talc, fine metal particles, or fine particles of polymeric materials such as polytetrafluoroethylene.
[0076] Exemplary pigments include, but are not limited to, copper phthalocyanine blue or green pigments, and D&C Red 6 (disodium salt). The particular nucleating agent used can be selected based on one or more criteria, such as the polyolefin (co)polymer used in the porous substrate, the desired pore size in a particular zone of the porous membrane, etc.
[0077] Alpha nucleating agents only support the formation of alpha crystals (monoclinic crystal structure). There are also useful gamma nucleating agents that are effective in producing gamma crystals (hexagonal unit cell crystal structure). Exemplary gamma nucleating agents include, but are not limited to, quinacridone dyes, aluminum salts of 6-quinizarin sulfonic acid, disodium salts of o-phthalic acid, isophthalic acid, and terephthalic acid, and N,N'-discohexyl-2,6-naphthalenedicarboximide compounds. Exemplary commercially available gamma nucleating agents include, but are not limited to, MPM 2000, available from Mayzo, Inc. (Suwanee, GA).
[0078] Suitable nucleating agents for polyethylene (PE) porous substrate resins include, but are not limited to, inorganic nano-sized (i.e., particle size or diameter less than 1 micrometer) fillers such as calcium carbonate, titanium dioxide, barium sulfate, silicon dioxide, graphite, carbon nanotubes, montmorillonite clay, talc, halloysite, or organic fillers such as ultra-high molecular weight PE, polymer fibers, anthracene, potassium hydrogen phthalate, benzoic acid type compounds, sodium benzoate type compounds, and zinc monoglyceride. Other suitable melt nucleating agents are listed in Polymer Engineering & Science, Vol. 5, (2016), page 541.
[0079] In some exemplary embodiments, a molten nucleating agent can be used alone. In other exemplary embodiments, an insoluble nucleating agent can be used alone. In some particular embodiments, a molten nucleating agent can be advantageously used in combination with an insoluble nucleating agent.
[0080] The nucleating agent is used in the melt blend in an amount sufficient to initiate nucleation (crystallization) of the polymer at the nucleation sites during fiber formation. The amount of nucleating agent required will depend, at least in part, on one or more of the specific (co)polymer used, the desired porosity and pore size, the specific nucleating agent used, and the like. In some exemplary embodiments, the melt blend can advantageously contain 5 wt.% or less of a nucleating agent, based on the total weight of the melt blend. In other exemplary embodiments, the melt blend can contain from about 100 parts per million (ppm) to less than 5 wt.% of a nucleating agent, based on the total weight of the melt blend. In further exemplary embodiments, the melt blend can contain from about 2 wt.% or less of a nucleating agent, based on the total weight of the melt blend. In other exemplary embodiments, the melt blend can contain from about 200 ppm to less than 2 wt.% of a nucleating agent, based on the total weight of the melt blend.
[0081] Method for producing hollow fiber membranes The hollow fiber membranes described herein can be manufactured using a variety of production methods, depending on the desired asymmetric hollow fiber structure and the desired asymmetric hollow fiber composition. Microporous membranes can be made according to a variety of production techniques, including the wet process, the dry stretch process (also known as the CELGARD process), and the particle stretch process.
[0082] Generally, in wet processes (also known as phase inversion, extraction, or TIPS processes), polymeric raw materials are mixed with oils, processing oils, solvents, and / or other materials, the mixture is extruded, and then pores are formed when such oils, processing oils, solvents, and / or other materials are removed. These films may be stretched before or after removal of the oils, solvents, and / or other materials.
[0083] Generally, microporous membranes are preferably formed via the CELGARD® process, also referred to as the "extrusion, annealing, stretch" or "dry stretch" process, whereby a semi-crystalline polymer is extruded to provide an asymmetric hollow fiber precursor, and porosity is induced in the microporous substrate by stretching the extruded precursor.
[0084] Generally, in particle stretching processes, polymer raw materials are mixed with particles, and the mixture is extruded. Pores are formed during stretching when the interface between the polymer and the particles fractures due to the stretching force. Dry stretching processes differ from wet and particle stretching processes by typically producing porous asymmetric hollow fibers without the addition of processing oils, oils, solvents, plasticizers, or particulate materials. Generally, dry stretching processes refer to processes in which pore formation results from stretching a non-porous precursor.
[0085] Although membranes made by the dry stretching process have met with great commercial success, there is a need to improve their physical attributes so that they can be used in a wider range of applications. Thus, asymmetric hollow fibers have been described that include a poly(methyl)pentene (PMP—polyolefin (co)polymer) skin disposed on a porous substrate to provide functionality that may be suitable, for example, as a battery separator (useful in consumer electronics applications and electric or hybrid electric vehicle applications), for blood oxygenation applications, blood filtration applications, various applications where liquids need to be degassed, and inkjet printing applications for degassing or degassing inks, and may also be well suited for use in hollow fiber asymmetric hollow fiber contactors or modules.
[0086] Two-layer asymmetric hollow fiber membranes can be fabricated using a coextrusion and dry-stretching process. The main challenge for producing coextruded PMP / PP hollow fibers is due to the substantially different processing temperatures between PMP and PP. PMP has a T of 240°C. m PP has a T of 165°C mTo co-extrude PMP and PP, the temperature needs to be at least 260°C to ensure smooth flow in the die.
[0087] On the other hand, the dry stretching process described below allows for lower processing temperatures to form suitable hollow fiber membrane precursor structures, which are converted into microporous hollow fiber membranes with interconnected pores by stretching, which may be dry stretching or wet stretching.
[0088] In the dry stretching process, the texture of the (co)polymer crystals can be important for producing controlled porosity. Well-aligned and uniformly distributed crystals allow for uniform deformation upon stretching. Conventional dry stretching processes produce favorable crystal textures at low extrusion temperatures and high extrusion pressures. Nucleating agents can also help achieve uniform crystal distribution. However, the favorable crystal texture for dry stretching generally depends on the crystal morphology and deformation mechanism.
[0089] To overcome the challenge of different processing temperatures of PMP and PP, nucleating agents can be introduced into the polyolefin used to form the porous substrate to increase the crystallization temperature. The effect of the nucleating agent can be measured by the cold crystallization temperature (T) in the cooling curve measured using differential scanning calorimetry (DSC). c ) can be determined by the shift of
[0090] Nucleating agents for polyolefins can be classified by melt sensitivity, homogeneity, and crystal formation. Melt sensitivity refers to the melting of the nucleating agent during processing. Homogeneity refers to the degree of dispersion of the nucleating agent in the PP. Crystal formation refers to the type of PP crystals introduced by the nucleating agent. The effectiveness of the nucleating agent can be measured by the T in the differential scanning calorimetry (DSC) cooling curve of the hollow fiber. c can be determined by a shift of the temperature to higher temperatures.
[0091] For PP fibers, the typical processing temperature to form a suitable precursor structure is 230°C. When PMP and PP are coextruded at 260°C, the PP does not form the necessary porous hollow fiber membrane precursor structure. Virgin PP3271 has a T of 118°C. c T of PP with additional α-nucleating agent c can rise to 133°C. c ensures faster solidification when polyolefin homopolymers such as PP or PE are coextruded with PMP.
[0092] Coextruded hollow fiber membranes may have a non-porous (liquid-impermeable) skin layer or shell and a porous substrate or core. The definition of porous is in terms of liquid permeability. The skin layer is non-porous and prevents liquid from breaking through the hollow fiber, regardless of the surface energy of the applied liquid. The skin layer should also have a thickness of no more than a few micrometers to ensure effective gas permeability.
[0093] A porous substrate or core layer may be used to increase gas flux and provide mechanical strength to the fiber. Gas permeabilities from various gases are used to determine selectivity. Non-porous (co)polymer layers may exhibit inherent selectivity for different gases due to gas diffusivity (D) and solubility (S).
[0094] On the other hand, a defective skin layer does not provide gas selectivity. For example, a PMP-polyolefin (co)polymer non-porous skin layer has a CO2 / N2 selectivity in the range of 8-12, depending on the crystallinity and orientation of the PMP-polyolefin (co)polymer.
[0095] In view of the foregoing considerations, in a further embodiment, the present disclosure describes a method for producing an asymmetric hollow fiber membrane, including providing a substrate resin and a skin layer resin, co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor, and stretching the asymmetric hollow fiber membrane precursor to form an asymmetric hollow fiber membrane having a skin layer made from the skin layer resin on a porous substrate made from the substrate resin and having a multitude of pores.
[0096] The base resin comprises a first semi-crystalline thermoplastic polyolefin (co)polymer and a nucleating agent in an amount effective to achieve nucleation. The skin layer comprises up to 98% by weight of 4-methyl-1-pentene monomer and at least one of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyl ... and a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing 2 wt. % of a linear or branched alpha-olefin monomer selected from the group consisting of dimethyltetracyclo-dodecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. In some exemplary embodiments, the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer.
[0097] In some exemplary embodiments, the skin layer resin is substantially free of any pore-forming material in an amount effective to cause pore formation. In some such embodiments, co-extruding the substrate resin and the skin layer resin to form the asymmetric hollow fiber membrane precursor comprises co-extruding the substrate resin and the skin layer resin through an annular co-extrusion die to form the asymmetric hollow fiber membrane precursor.
[0098] In certain exemplary embodiments, the method further includes annealing the asymmetric hollow fiber precursor. Preferably, annealing the asymmetric hollow fiber precursor includes annealing the asymmetric hollow fiber precursor before stretching the asymmetric hollow fiber precursor. In one exemplary embodiment, the annealing step can include heating the asymmetric hollow fiber precursor to a temperature of about 150° C. for about 10 minutes.
[0099] The process of co-extruding a PMP-polyolefin (co)polymer resin and a substrate resin to form an asymmetric hollow fiber precursor can include extruding the skin layer resin and the substrate resin through a co-extrusion die, such as an annular co-extrusion die, to form a PMP-polyolefin (co)polymer skin layer on the substrate layer. The co-extrusion die can be configured based on the desired thicknesses of the PMP-polyolefin (co)polymer skin layer and the substrate layer, and in one exemplary embodiment, the substrate layer is thicker than the PMP-polyolefin (co)polymer skin layer.
[0100] Another exemplary method for producing an asymmetric hollow fiber having a PMP-polyolefin (co)polymer skin layer and a porous substrate described herein can include providing a skin layer resin and a substrate resin, coextruding the skin layer resin and the substrate resin to form an asymmetric hollow fiber precursor, and stretching the asymmetric hollow fiber precursor to form an asymmetric, microporous hollow fiber having a skin layer on a porous substrate. The method can also include annealing the asymmetric hollow fiber precursor prior to the stretching step.
[0101] An additional exemplary method for producing an asymmetric hollow fiber having the above-described PMP-polyolefin (co)polymer skin layer and porous substrate includes the steps of providing a poly(methyl)pentene (PMP) resin and a substrate resin, coextruding the PMP resin and the substrate resin to form an asymmetric hollow fiber precursor, and stretching the asymmetric hollow fiber precursor to form an asymmetric hollow fiber comprising a PMP skin on the substrate. The substrate resin may include one or more PMPs having a crystallinity different from that of the PMP skin, polyethylene (PE), polypropylene (PP), or a combination thereof. The method may also include annealing the asymmetric hollow fiber precursor prior to the stretching step.
[0102] The stretching can be advantageously carried out using single-stage or multi-stage cold stretching, optionally followed by single-stage or multi-stage hot stretching. Preferably, the cold stretching temperature is selected to be between 20°C and 90°C, more preferably between 30 and 70°C. Preferably, the hot stretching temperature is selected to be between 100°C and 200°C, more preferably between 120 and 170°C.
[0103] The hollow fiber precursor is advantageously stretched by uniaxial or biaxial stretching of at least 5% and up to 500%, more preferably at least 10% and up to 300%, to form an open porous structure.
[0104] The drawn hollow fiber precursor may be advantageously subjected to a heat-setting step to reduce stress within the fiber. The heat-setting temperature is typically selected to be at least 5° C., at least 10° C., or even at least 15° C. higher than the hot drawing temperature. The heat-setting duration is typically selected to be at least 30 seconds, at least 1 minute, or at least 90 seconds.
[0105] Alternatively, the drawn hollow fibers may be subjected to a heat-setting or stress-relaxation step, advantageously by allowing the fiber length to shrink to a certain extent, such as at least 2%, or even at least 5%. Heat-setting and stress-relaxation can be used alone or in combination.
[0106] Separation article (hollow fiber membrane contactor) Referring again to the figures, Figure 1 shows an exemplary hollow fiber membrane contactor component 100 in which a plurality of asymmetric hollow fiber membranes 102 are arranged substantially parallel in an array pattern, in this case fastened together by braiding or tying the individual hollow fiber membranes 102 using string, thread, yarn, or the like 104. Thus, in a further exemplary embodiment, the present disclosure describes a separation article comprising a multiplicity of asymmetric hollow fiber membranes according to any of the foregoing embodiments.
[0107] In some exemplary embodiments, multiple asymmetric hollow fiber membranes are arranged in an array, and in certain such embodiments, the array is pleated, folded, or wound into a cylinder or cassette.
[0108] In some exemplary embodiments, the separation article is selectively permeable to CO over N or CH. Preferably, the separation article exhibits a CO / N selectivity of at least 8. In other exemplary embodiments, the filtration article is selectively permeable to O over N.
[0109] A hollow fiber membrane contactor typically includes a cylindrical bundle or mat of asymmetric hollow fibers and a rigid cylindrical shell or housing that encloses the fiber bundle. The shell can include multiple ports, for example, four fluid ports: an inlet for introducing a first fluid, an outlet for discharging the first fluid, an inlet for introducing a second fluid, and an outlet for discharging the second fluid. The hollow fibers can be embedded at both ends within the housing to form a polymer tubesheet with fiber holes at each end opening into common first and second end cap portions of the shell.
[0110] The number of windings or layers of the hollow fiber array or fabric determines the depth of the panel. The end result is a hollow fiber array with height X, width Y, and depth Z. The hollow fiber array may be embedded directly into a square or rectangular frame in a shape similar to an HVAC air filter. In at least one embodiment, the gas to be treated passes through the contactor array on the shell side (outside the hollow fibers) in a cross-flow pattern, while the liquid (hot, cold, humidified, or absorbent liquid) passes through the lumen side (inside the hollow fibers) of the contactor array.
[0111] If necessary, the ends of the hollow fibers are opened and a lumen-side fluid headspace is created or added at each end. Such panel contactors are adapted so that air passes through the array on the shell side (outside the hollow fibers) in a cross-flow pattern, and liquid (hot, cold, humidifying, and / or absorbent liquid) passes through the lumen side (inside the hollow fibers) of the contactor array, or a vacuum is applied to the lumen side.
[0112] In at least one other embodiment, panel contactors are produced by a process that includes pleating or folding (e.g., z-folding, accordion folding, or pleating, and then optionally rolling) an array of hollow fiber membranes to form a fiber bundle in a square or rectangular format. The number of folds or layers can determine the depth of the panel. The end result is a fiber array having height X, width Y, and depth Z. The folded or pleated array may then be directly embedded into a square or rectangular frame in a shape similar to an HVAC air filter.
[0113] How to use hollow fiber membrane contactors The present disclosure also describes methods of using any of the aforementioned separation articles, where the separation articles are used to separate a gas phase from a liquid phase. Accordingly, in further exemplary embodiments, the present disclosure is directed to methods of using the aforementioned asymmetric hollow fiber membrane contactors. Such asymmetric hollow fiber membrane contactors and / or uses can address one or more of the above-mentioned needs or shortcomings of conventional hollow fiber membranes.
[0114] Asymmetric hollow fiber membrane contactors can also provide a means to achieve gas / gas, gas / liquid, and liquid / liquid (which may include liquid / dissolved solids) separation, transfer, or addition. Membrane contactors are typically used to bring two immiscible fluid phases, e.g., a first liquid and a second liquid, or a gas and a liquid, into contact with each other to separate and / or transfer one or more components from one fluid to the other.
[0115] In certain embodiments, the gas phase comprises N, O, CO, CH, or a combination thereof. In some such embodiments, the liquid phase comprises liquid water. In certain currently preferred embodiments, the liquid phase is an aqueous printing ink or an aqueous brine (e.g., an aqueous well injection brine used in oil recovery).
[0116] Asymmetric hollow fiber membranes according to the present disclosure can be used for many purposes, including, but not limited to, removing entrained gas from liquids, degassing liquids, filtering liquids, and adding gas to liquids. More specifically, asymmetric hollow fiber membrane contactors can be advantageously used in removing entrained gas from inks used in printing.
[0117] The double-layer microporous hollow fibers fabricated using the presently disclosed coextrusion and dry-drawing process can be advantageously used in liquid gas generation and degassing applications. The double-layer hollow fiber membranes consist of a thin, nonporous skin layer and a porous substrate layer. The double-layer hollow fiber membranes can be used to process aqueous solutions as well as organic solvents. High gas permeability is achieved by incorporating a nucleating agent into the porous substrate layer.
[0118] In the gas generation / degassing process, a continuous liquid / gas interface is created on the surface of the microporous fiber. In aqueous solutions, the liquid does not destroy the fiber due to the hydrophobic nature of polypropylene and its small pore size (50-100 nm). The surface porosity allows for high-speed gas transport across the fiber surface. However, typical hollow fiber membrane contactors can only process aqueous solutions.
[0119] In organic solvents or aqueous mixtures of high proportions (e.g., greater than 50 wt.%, at least 60 wt.%, 70 wt.%, 80 wt.%, or even 90 wt.%) of organic solvents with water, wetting of the polyolefin pore walls is unavoidable due to the low surface energy of the organic solvent and polyolefin. Under such process conditions, hollow fiber membrane contactors can fail due to liquid collapse.
[0120] One approach to degassing organic solvents is the use of asymmetric polymethylpentene fibers that have an inherent thin, non-porous skin layer with a porous substrate layer. The thin, non-porous skin layer prevents liquid collapse while maintaining substantial gas permeability.
[0121] According to at least one embodiment, a membrane contactor system includes a liquid source, an air or gas source, and at least one hollow fiber membrane contactor including a plurality of asymmetric hollow fibers, preferably contained in a frame, shell, housing, vessel, etc. The liquid source is preferably in fluid communication with the outer surface or sheath of the hollow fibers. The air or gas preferably passes past or across the hollow fibers, enters the lumen of the hollow fiber membranes, and then exits the membrane contactor.
[0122] Thus, in at least certain embodiments, the present disclosure is directed to methods or uses of flat panel hollow fiber membrane contactors. In at least one embodiment, the panel contactor is used in a method that includes passing air to be treated through the contactor array on the shell side (outside the hollow fibers) in a cross-flow pattern while simultaneously passing a liquid (hot, cold, humidifying, and / or absorbing liquid) through the cavity side (inside the hollow fibers) of the contactor array. Thus, the contactor is a cavity-side liquid contactor.
[0123] In at least one additional embodiment, the panel contactor is used by or in a method that includes passing a liquid to be treated through the contactor array on the shell side (outside the hollow fibers) in a cross-flow pattern while simultaneously passing a second liquid or gas through the cavity side (inside the hollow fibers) of the contactor array. Thus, the contactor is a shell-side liquid contactor.
[0124] Other uses of the disclosed panel contactors include, for example, CO2 scrubbing, greenhouse gas scrubbing, SO x Scrubs, No x Examples include scrubbing, HCl scrubbing, ammonia scrubbing, gas humidification, gas dehumidification, absorption of moisture and latent heat for energy recovery in HVAC systems, air emission control of off-flavors (e.g., in cattle or swine farms), and / or gas temperature control by varying humidity levels (such as in evaporative cooling or swamp coolers).
[0125] Thus, in accordance with at least selected embodiments of the present disclosure, the presently disclosed hollow fiber membrane contactors address the shortcomings of conventional contactors, are effective for several applications, are specifically adapted for particular conditions, are readily customer familiar and accepted, do not use metals or other corrosive materials, are PVC-free, are modular, are replaceable, have standard air filter sizes, accommodate high air flow velocities, have low shell-side pressure drop, are commercially manufacturable, etc.
[0126] In at least one embodiment, a self-contained hollow fiber membrane contactor, filter, or cartridge may include at least a first hollow fiber array including a plurality of at least a first hollow fiber membrane, each having a first end and a second end that are both open, at least one rectangular frame, shell, casing, or housing, and potting at each end. The first and second membrane ends are open, for example, to allow liquid to pass therethrough. It may be preferred that the hollow fibers are polyolefin, the frame is ABS, and the potting is made of epoxy, with the ends of the potting cut to form the open first and second hollow fiber ends after potting.
[0127] According to at least selected embodiments, a flat panel contactor combination or system includes two or more hollow fiber membrane panel contactors connected in series or parallel. According to at least certain possibly preferred embodiments, a flat panel contactor combination or system includes two or more hollow fiber membrane panel contactors connected in series with the frames of adjacent contactors abutting and aligned with one another (optional gaskets can be placed between the abutting frames and / or between the end frames and the ductwork to provide an airtight seal therebetween).
[0128] According to at least selected possibly preferred embodiments, the present panel membrane contactor (or membrane cartridge) preferably employs thousands of asymmetric microporous hollow fibers woven to comprise an array that is wound, pleated, folded, and / or a combination thereof, e.g., into a paddle or similar configuration. During preferred operation, air to be treated flows through the shell side (outside) of the hollow fibers, while liquid desiccant flows through or into the lumen side or lumen side (inside) of the hollow fibers. Due to its hydrophobic nature, the membrane acts as an inert support, allowing direct contact between the gas and liquid phases without dispersion.
[0129] In accordance with certain embodiments of the present invention, novel contactors, contactor systems, methods, and / or the like are provided for treating one fluid with another fluid.
[0130] Typical applications include oxygen removal from boiler water, beverage carbonation, nitrogenation, and ink degassing. Systems used for gas generation / degassing are also known as membrane contactors. The hydrophobicity and small pore size of the fibers create a gas-liquid interface on the surface of a microporous membrane. The efficiency of hollow fiber membrane contactors is primarily determined by the membrane gas transfer rate, which depends on the fiber permeability and available fiber surface area within the module.
[0131] A typical hollow fiber membrane contactor consists of hundreds to thousands of asymmetric hollow fibers with a porosity of at least 40%. The smaller fiber diameter allows for higher fiber packing density, providing a higher total membrane surface area compared to flat sheet membranes.
[0132] The practice of certain exemplary embodiments of the present disclosure will be further described with reference to the following detailed examples. These examples are provided to further illustrate various specific preferred embodiments and techniques. However, it should be understood that many variations and modifications can be made while remaining within the scope of the present disclosure. [Example]
[0133] These examples are for illustrative purposes only and are not intended to unduly limit the scope of the appended claims. Notwithstanding that the numerical ranges and parameters setting forth the broad scope of the disclosure are approximations, the numerical values set forth in the specific examples are reported as precisely as possible. However, any numerical value inherently contains certain errors necessarily resulting from the standard deviation found in their respective testing measurements. At the very least, each numerical parameter should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques; this is not intended to limit the application of the doctrine of equivalents to the scope of the claims.
[0134] Test Method The following test methods were used in evaluating some of the examples of the present disclosure.
[0135] Gas permeability test: The gas permeability test is used as an integrity test for non-porous skin layers as well as a performance test for hollow fiber membranes.
[0136] Loop modules were prepared by sealing the hollow fibers together in ¼″ OD nylon tubing with Loctite® EA608 epoxy adhesive. After at least partial curing, the fiber lumens were exposed by cutting the sealing tubing with a razor blade. Each loop module contained 10 fibers with an effective length of 4″ (approximately 10.2 cm).
[0137] Gas permeability tests were performed using a custom-designed test stand. The stand was equipped with cylinders of pure gas (CO2 and N2), a pressure gauge, and an in-line gas flow meter. The principle of this test is to supply pure gas to the fiber lumen and measure the rate at which the gas leaks through the fiber wall to the surrounding environment. Both the gas pressure and gas flow rate are monitored by data acquisition software, and data is acquired when both pressure and gas flow have stabilized. The gas pressure in the fiber lumen was typically set to approximately 30 psi. Each fiber loop module was tested with CO2 and N2, respectively.
[0138] The gas permeability (GPU) of each fiber membrane was calculated as follows:
number
number
[0139] Fiber gas selectivity has been used as an indicator of skin integrity. Selectivities for PMPs are typically in the range of 11 to 13, according to literature reports (Polymer, 1989, 30, p. 1357). Any fiber with a gas selectivity below 8 was considered to have a defective skin.
[0140] Differential Scanning Calorimetry (DSC) Testing Differential scanning calorimetry (DSC) measurements were performed on PMP resin samples to determine the melting temperature, crystallinity, and heat of fusion. DSC tests were performed using a TA Instruments (New Castle, DE) Model Q2000 differential scanning calorimeter with a sample weight of approximately 5 mg. For melting temperature measurements, the heating rate was 10°C / min, and the scan range was -50°C to 280°C. For crystallization temperature measurements, the samples were first isothermally held at 280°C for 10 minutes to erase their thermal history, and then cooled to 25°C at 10°C / min.
[0141] Nuclear Magnetic Resonance (NMR) Testing Nuclear magnetic resonance measurements were performed on PMP resin samples to determine their chemical composition. PMP resin was dissolved in deuterated ortho-dichlorobenzene (ODCB, Sigma-Aldrich, St. Louis, MO) along with chromium(III) acetylacetonate (Cr(acac)4, Sigma-Aldrich, St. Louis, MO). One-dimensional (1D) measurements of each resin were performed. 13 C NMR data were collected using a Bruker Avance (Billerica, MA) 500 MHz NMR spectrometer equipped with a cryogenically cooled probehead. All data were acquired with the sample held at 127 °C. The mole or mass percentages of 4-methyl-1-pentene and comonomer were calculated from the signals.
[0142] Scanning Electron Microscope (SEM) Testing Scanning electron microscopy was used to determine the diameter of the hollow fiber membranes.
[0143] Material Overview All parts, percentages, ratios, etc. in the examples and elsewhere in the specification are by weight unless otherwise noted. Solvents and other reagents used are available from Sigma-Aldrich Chemical Company (Milwaukee, WI) unless otherwise noted. The following materials are used throughout the examples: Polypropylene PPH3271, Total Petrochemicals USA, Inc. (Houston, Texas); PMP-Polyolefin Copolymer Resin DX470, Mitsui Chemical (Minato-Ku, Tokyo, Japan); Nucleating agent HPN-20E, Milliken & Company (Spartanburg, SC), Nucleating agent NX8000, Milliken & Company (Spartanburg, SC), Nucleating agent MPM 2000, Mayzo, Inc. (Suwanee, GA), N2, industrial grade nitrogen NI300, Airgas, Inc. (Radnor, PA); CO2, Instrument 4.0 Grade Carbon Dioxide CDI200, Airgas (Radnor, PA), 1 / 4" nylon tubing, NewAge Industries Company (Southampton, PA); LOCTITE EA 608 Hysol, Henkel Corporation (Rocky Hill, CT), deuterated orthochlorobenzene (ODCB), Sigma-Aldrich (St. Louis, MO); Chromium(III) acetylacetonate, (Cr(acac)4), Sigma-Aldrich (St. Louis, MO).
[0144] Other suitable PMP-polyolefin (co)polymer resins include, for example: PMP-Polyolefin Copolymer Resin DX310, Mitsui Chemical (Minato-Ku, Tokyo, Japan); PMP-Polyolefin Copolymer Resin DX820, Mitsui Chemical (Minato-Ku, Tokyo, Japan); PMP-Polyolefin Copolymer Resin DX845, Mitsui Chemical (Minato-Ku, Tokyo, Japan); PMP-polyolefin copolymer resin MX002, Mitsui Chemical (Minato-Ku, Tokyo, Japan); PMP-polyolefin copolymer resin MX004, Mitsui Chemical (Minato-Ku, Tokyo, Japan).
[0145] Additionally, Table 1 provides the abbreviations, properties, and compositions of suitable PMP-polyolefin copolymer resins useful in forming the skin layers, according to various embodiments, where "PMP" refers to a polyolefin copolymer segment derived from 4-methyl-1-pentene monomers, and T m refers to the melting temperature obtained using differential scanning calorimetry (DSC), and ΔH m is the heat of fusion (solution) obtained using the differential scanning calorimetry (DSC) and nuclear magnetic resonance (NMR) tests further described above.
[0146] [Table 1]
[0147] Apparatus and method Apparatus for producing coextruded hollow fiber membranes The dual-layer hollow fiber precursors were coextruded through a two-orifice annular ring die (available from Guill Tools, West Warwick, RI) with a central air hole using two Haake single-screw extruders available from ThermoFisher Scientific (Grand Island, NY). The substrate resin was extruded through the central core of the die, and the skin layer resin was extruded through the annular ring of the die.
[0148] After exiting the die, the molten hollow fiber was solidified through a quench ring, and the hollow fiber precursor was collected by passing it through a motor-driven godet roller and winding it onto a tension-controlled spooler.
[0149] Co-extrusion hollow fiber membrane manufacturing process 1. Hollow fiber membrane precursor extrusion molding The skin layer PMP-polyolefin (co)polymer resin and the porous substrate PP or PMP resin were fed into two single-screw extruders. The porous substrate resin was extruded using a 3 / 4" (1.91 cm) extruder with 24 L / D, and the skin layer resin was extruded using a 1 / 2" (1.27 cm) extruder with a smaller output. The three-zone porous substrate resin extruder was controlled at temperatures ranging from 190°C to 210°C from zones 1 to 3, while the three-zone skin layer resin extruder was controlled at temperatures ranging from 240°C to 250°C for zones 1 to 3. The extrusion die temperature was set at 250°C.
[0150] Two melt resin streams were metered by pumps into a two-orifice die (custom-designed coextrusion die) using a central air hole. The two melt streams converged inside the die at a distance of <5 mm from the die face. To ensure uniformity of the walls and layers of the two-layer hollow fiber membrane, the orifices in the die were fine-tuned to maintain good concentricity. The extrusion rate of the skin layer resin was kept significantly lower than that of the base resin to reduce the skin layer thickness.
[0151] A low-volume airflow was applied to the central hole to prevent the fibers from collapsing or blowing over. The molten fibers were solidified by passing them through an air quench ring. The diameter of the hollow fiber precursor was controlled by drawing using a motor-driven godet roll. The drawing speed was set at 100 meters per minute. The resulting hollow fiber membrane precursor was collected using a low-tension spooler.
[0152] 2. Hollow Fiber Membrane Annealing A 10" (25.4 cm) hollow fiber precursor bundle was prepared and each end taped together using high temperature tape. The bundle was annealed in a convection oven set at a temperature of 140°C. The annealing time for each fiber precursor bundle was 10 minutes.
[0153] 3. Hollow fiber membrane stretching (cold / hot) and heat curing A bundle of 40-45 annealed fibers was clamped in the temperature-controlled environmental chamber of an Instron Mechanical Tester (Model #5567, Morwood, MA).
[0154] The fibers were cold drawn at 23°C to a 20% elongation (draw) ratio using a draw rate of 10 in / min (25.4 cm / min) and subsequently hot drawn at 138°C to a 25% elongation (draw) ratio using a draw rate of 1 in / min (2.54 cm / min).
[0155] The fiber was held under tension during a temperature ramp from 23°C to 150°C. No fiber relaxation was observed after hot drawing. After the chamber temperature was cooled to below 40°C, the fiber was released from the Instron mechanical testing machine.
[0156] Tables 2 and 3 show the specific process conditions used in the examples and comparative examples.
[0157] [Table 2]
[0158] [Table 3]
[0159] Comparative example A: PMP-PO (co)polymer / PMP-PO (co)polymer coextruded hollow fiber membrane In Comparative Example A, DX470 grade resin was used for the porous substrate and MX002 grade resin for the skin layer to produce a coextruded hollow fiber membrane precursor without additional nucleating agent. The process conditions are shown in Tables 2 and 3.
[0160] After annealing and stretching, the microporous hollow fiber membranes provided both good CO2 / N2 selectivity and good CO2 gas flux, as shown in Table 4.
[0161] Comparative example B: In Comparative Example B, DX470 grade resin was used for the porous substrate with HPN-20E nucleating agent, and MX002 grade resin was used for the skin layer to produce a coextruded hollow fiber membrane precursor without additional nucleating agent. The process conditions are shown in Tables 2 and 3.
[0162] Surprisingly, hollow fiber membranes prepared using a PP porous substrate with HPN-20E nucleating agent exhibited very low permeability (nearly zero GPU CO2 gas flux) compared to other nucleating agents. HPN-20E is not a melt-sensitive nucleating agent; it exists as inorganic microparticles dispersed in the molten polymer. The presence of HPN-20E microparticles likely interferes with crystal deformation during stretching. The inner (lumen) surface of a representative hollow fiber after annealing and stretching was observed to have no evidence of through-holes when observed using scanning electron microscopy, as shown in Figure 4A.
[0163] [Table 4]
[0164] Examples 1 to 4 Coextruded hollow fiber membranes were also fabricated using various nucleating agents added to the PPH3271 porous substrate resin (Examples 1-4). Examples 1-3 used an α-nucleating agent (NX8000), and Example 4 used a γ-nucleating agent (MPM2000). PMP / PP coextruded hollow fiber membranes were processed in the same manner as the PMP / PMP coextruded hollow fiber membrane of Comparative Example A, except that the porous substrate resin consisted of polypropylene PPH3271 with an added nucleating agent. The process conditions for these membranes are shown in Tables 2 and 3. After annealing and stretching, the microporous hollow fiber membranes provided both good CO2 / N2 selectivity and good CO2 gas flux, as shown in Table 4.
[0165] In Examples 1-3, PP with NX8000 provides fibers with CO gas flux exceeding that of the PMP / PMP coextruded hollow fiber of Comparative Example A, but with CO / N selectivities generally greater than 8 (Example 2 exhibits a CO / N selectivity of 6.4), which imparts good skin integrity. NX8000 is a melt-sensitive nucleating agent that dissolves in the PP melt during processing.
[0166] Example 2 shows a highly interconnected porous surface when observed using scanning electron microscopy, as shown in Figure 4B. With a low NX8000 content (Example 3), the PMP / PP co-extruded hollow fiber can achieve excellent CO2 / N2 selectivity up to 15.2.
[0167] In Example 4, PP with MPM-2000 nucleating agent in the porous substrate resin yields hollow fiber membranes with CO gas fluxes lower than those obtained for the PMP / PMP coextruded hollow fiber of Comparative Example A, but with CO / N selectivities greater than 8. MPM-2000 is also a melt-sensitive nucleating agent that also induces γ-crystal formation in the polypropylene. Example 4 exhibits a highly interconnected porous surface with several macroscale cracks when observed using scanning electron microscopy, as shown in Figure 4C.
[0168] The transformation of γ-crystals is more complex than that of α-crystals. β-crystals easily break and transform into α-crystals during stretching. Instead of creating interconnected pores, the broken / transformed γ-crystals can result in a flake-like structure with voids between the flakes. Therefore, it is less favorable for producing high gas permeability coextruded hollow fiber membranes.
[0169] Throughout this specification, references to "one embodiment," "a particular embodiment," "one or more embodiments," or "an embodiment," regardless of whether the term "exemplary" is included before the term "embodiment," mean that the particular feature, structure, material, or characteristic described in connection with that embodiment is included in at least one of the particular exemplary embodiments of the present disclosure. Thus, the appearances of phrases such as "in one or more embodiments," "a particular embodiment," "in one embodiment," or "in an embodiment" in various places throughout this specification are not necessarily all referring to the same particular exemplary embodiments of the present disclosure. Furthermore, particular features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments.
[0170] Although several exemplary embodiments have been described in detail herein, it will be understood that those skilled in the art will be able to readily conceive modifications, variations, and equivalents of these embodiments upon understanding the above description. Accordingly, it should be understood that the present disclosure is not unduly limited to the exemplary embodiments described thus far. In particular, as used herein, the recitation of numerical ranges by endpoints is intended to include all numbers subsumed within that range (e.g., 1 to 5 includes 1, 1.5, 2, 2.75, 3, 3.80, 4, and 5). Additionally, all numbers used herein are intended to be modified by the term "about."
[0171] Furthermore, all publications and patents referenced herein are incorporated by reference in their entirety to the same extent as if each individual publication or patent was specifically and individually indicated to be incorporated by reference. Various exemplary embodiments have been described. These and other embodiments are within the scope of the following claims. Examples of embodiments of the present invention are listed in the following items [Aspect 1] to [Aspect 20]. [Aspect 1] An asymmetric hollow fiber membrane, A porous substrate having a plurality of pores, the porous substrate comprising: a first semi-crystalline thermoplastic polyolefin (co)polymer; a porous substrate comprising an effective amount of a nucleating agent to achieve nucleation; a skin layer overlying the porous substrate, the skin layer comprising up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyl a skin layer comprising a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing a linear or branched alpha olefin monomer selected from the group consisting of dimethyltetracyclododecene, dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof; Optionally, the first thermoplastic polyolefin (co)polymer is compositionally different from the second thermoplastic polyolefin (co)polymer. [Aspect 2] 2. The asymmetric hollow fiber membrane of aspect 1, wherein the first semi-crystalline thermoplastic polyolefin (co)polymer is derived by polymerizing one or more branched or linear alpha-olefin monomers selected from the group consisting of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof. [Aspect 3] 3. The asymmetric hollow fiber membrane of any one of the preceding claims, wherein the first semi-crystalline thermoplastic polyolefin (co)polymer comprises polyethylene, polypropylene, or a combination thereof. [Aspect 4] The asymmetric hollow fiber membrane according to any one of Aspects 1 to 3, wherein the nucleating agent comprises an α nucleating agent. [Aspect 5] Aspect 5. The asymmetric hollow fiber membrane according to any one of Aspects 1 to 4, wherein the porous substrate is composed of 5% by weight or less of the nucleating agent. [Aspect 6] Aspect 6. The asymmetric hollow fiber membrane of any one of Aspects 1 to 5, wherein the plurality of pores comprises micropores, and optionally, the plurality of micropores have a diameter of 0.01 micrometer to 1.0 micrometer. [Aspect 7] 7. The asymmetric hollow fiber membrane according to any one of Aspects 1 to 6, wherein the asymmetric hollow fiber membrane exhibits a porosity of 5% to 80%. [Aspect 8] 8. The asymmetric hollow fiber membrane of any one of Aspects 1 to 7, wherein the skin layer is less porous than the porous substrate and constitutes an outer surface of the asymmetric hollow fiber membrane, and optionally the porous substrate constitutes an inner surface of the asymmetric hollow fiber membrane. [Aspect 9] Aspect 9. The asymmetric hollow fiber membrane according to any one of aspects 1 to 8, wherein the skin layer has a thickness of less than 20 micrometers. [Aspect 10] 10. The asymmetric hollow fiber membrane according to any one of aspects 1 to 9, wherein the porous substrate has a thickness of 10 micrometers to 200 micrometers. [Aspect 11] 11. The asymmetric hollow fiber membrane according to any one of Aspects 1 to 10, wherein the asymmetric hollow fiber membrane is a heterogeneous asymmetric hollow fiber membrane. [Aspect 12] 12. The asymmetric hollow fiber membrane according to any one of aspects 1 to 11, wherein the skin layer completely covers the porous substrate. [Aspect 13] A separation article comprising a plurality of the asymmetric hollow fiber membranes according to any one of aspects 1 to 12. [Aspect 14] 14. The separation article of embodiment 13, wherein the plurality of asymmetric hollow fiber membranes are arranged in an array, and optionally the array is pleated, folded, or rolled into a cylinder or cassette. [Aspect 15] The separation article is N 2 or CH 4 than CO 2 15. The separation article of embodiment 13 or 14, wherein the separation article is selectively permeable to [Aspect 16] The CO of the separation article 2 / N 2 or CO 2 / CH 4 16. The separation article of embodiment 15, wherein the selectivity is at least 8. [Aspect 17] The filtration article is 2 than O 2 15. The separation article of embodiment 13 or 14, wherein the separation article is selectively permeable to [Aspect 18] 1. A method for producing an asymmetric hollow fiber membrane, comprising: providing a substrate resin and a skin layer resin, the base resin comprises a first semi-crystalline thermoplastic polyolefin (co)polymer and a nucleating agent in an amount effective to achieve nucleation; The skin layer resin may contain up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclopent ... a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing with a linear or branched alpha olefin monomer selected from the group consisting of chlorododecene, dimethyltetracyclo-dodecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof; Optionally, providing a substrate resin and a skin layer resin, wherein said first thermoplastic polyolefin (co)polymer is compositionally different from said second thermoplastic polyolefin (co)polymer; co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor; stretching the asymmetric hollow fiber membrane precursor to form an asymmetric hollow fiber membrane having a porous substrate composed of the base resin and including a plurality of pores, and a skin layer composed of the skin layer resin on top of the porous substrate. [Aspect 19] 19. The method of claim 18, wherein co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor comprises co-extruding the substrate resin and the skin layer resin through an annular co-extrusion die to form the asymmetric hollow fiber precursor. [Aspect 20] 20. The method of claim 18 or 19, further comprising annealing the asymmetric hollow fiber precursor, and optionally, annealing the asymmetric hollow fiber precursor comprises annealing the asymmetric hollow fiber precursor before stretching the asymmetric hollow fiber precursor.
Claims
1. An asymmetric hollow fiber membrane, A porous substrate having a plurality of pores, the porous substrate comprising: a first semi-crystalline thermoplastic polyolefin (co)polymer comprising polypropylene, polyethylene, or a combination thereof; a porous substrate comprising a molten alpha or gamma nucleating agent in an amount effective to achieve nucleation; a skin layer overlying the porous substrate, the skin layer comprising up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of any of the following: ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyl a skin layer comprising a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing a linear or branched alpha olefin monomer selected from the group consisting of dimethyltetracyclododecene, dimethyltetracyclododecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof; Optionally, an asymmetric hollow fiber membrane, wherein said first semi-crystalline thermoplastic polyolefin (co)polymer is compositionally different from said second semi-crystalline thermoplastic polyolefin (co)polymer.
2. 10. The asymmetric hollow fiber membrane of claim 1, wherein the first semi-crystalline thermoplastic polyolefin (co)polymer comprises polypropylene.
3. 3. The asymmetric hollow fiber membrane of claim 1, wherein the nucleating agent comprises a molten alpha nucleating agent, and optionally the porous substrate is composed of 5 wt. % or less of the nucleating agent.
4. 4. The asymmetric hollow fiber membrane according to claim 1, wherein the plurality of pores comprises micropores, and optionally the asymmetric hollow fiber membrane exhibits a porosity of 5% to 80%.
5. The asymmetric hollow fiber membrane according to any one of claims 1 to 4, wherein the skin layer is less porous than the porous substrate and constitutes an outer surface of the asymmetric hollow fiber membrane, and optionally the porous substrate constitutes an inner surface of the asymmetric hollow fiber membrane.
6. 6. The asymmetric hollow fiber membrane of claim 1, wherein the skin layer has a thickness of less than 20 micrometers, and optionally the porous substrate has a thickness of 10 micrometers to 200 micrometers.
7. 7. A separation article comprising a plurality of the asymmetric hollow fiber membranes of any one of claims 1 to 6, optionally arranged in an array, and optionally the array being pleated, folded, or wound into a cylinder or a cassette.
8. The separation article is N 2 or CH 4 than CO 2 or the separation article is selectively permeable to N 2 More than O 2 and optionally, the separation article is selectively permeable to CO 2 / N 2 or CO 2 / CH 4 8. The separation article of claim 7, wherein the selectivity is at least 8.
9. 1. A method for producing an asymmetric hollow fiber membrane, comprising: providing a substrate resin and a skin layer resin, the base resin comprises a first semi-crystalline thermoplastic polyolefin (co)polymer comprising polypropylene, polyethylene, or a combination thereof, and a molten alpha or gamma nucleating agent in an amount effective to achieve nucleation; The skin layer resin may contain up to 98% by weight of 4-methyl-1-pentene monomer and at least 2% by weight of ethylene, propylene, 1-butene, 1-pentene, 1-hexene, 1-heptene, isobutylene, vinylcyclohexane, 3-ethyl-1-pentene, 1,3-methyl-1-pentene, cyclobutene, cyclopentane, 2-norbornene, 3-methyl-2-norbornene, 5-methyl-2-norbornene, tetracyclododecene, methyltetracyclopent ... a second semi-crystalline thermoplastic polyolefin (co)polymer derived by polymerizing with a linear or branched alpha olefin monomer selected from the group consisting of chlorododecene, dimethyltetracyclo-dodecene, 1-octene, 1-nonene, 1-decene, 1-undecene, 1-dodecene, 1-tridecene, 1-tetradecene, 1-pentadecene, 1-hexadecene, 1-heptadecene, 1-octadecene, 1-eicosene, or a combination thereof; Optionally, providing a substrate resin and a skin layer resin, wherein said first semi-crystalline thermoplastic polyolefin (co)polymer is compositionally different from said second semi-crystalline thermoplastic polyolefin (co)polymer; co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor; stretching the asymmetric hollow fiber membrane precursor to form an asymmetric hollow fiber membrane having a porous substrate composed of the base resin and including a plurality of pores, and a skin layer composed of the skin layer resin on top of the porous substrate.
10. 10. The method of claim 9, wherein co-extruding the substrate resin and the skin layer resin to form an asymmetric hollow fiber membrane precursor comprises co-extruding the substrate resin and the skin layer resin through an annular co-extrusion die to form the asymmetric hollow fiber membrane precursor.
11. The method of claim 9 or 10, further comprising annealing the asymmetric hollow fiber membrane precursor, and optionally, annealing the asymmetric hollow fiber membrane precursor comprises annealing the asymmetric hollow fiber membrane precursor before stretching the asymmetric hollow fiber membrane precursor.
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