Microparticles from thermomechanically degraded PTFE.
Through thermomechanical decomposition and multiple treatments of PTFE waste, the problem of small surface area of PTFE particles in the prior art is solved, and PTFE particles with high surface area are achieved, which improves their performance in various applications.
Patent Information
- Application Number
- JP2022572630
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-27
- Filing Date
- 2021-05-25
- Publication Date
- 2025-05-08
- Estimated Expiration
- 2041-05-25
AI Technical Summary
When the existing methods convert PTFE waste into particles, the surface area of the particles produced is small and cannot achieve similar performance as fresh PTFE.
Thermomechanical decomposition of PTFE waste in the presence of air or oxygen reduces the particle size and is processed multiple times by special equipment to increase the surface area of the particles.
The high surface area of PTFE particles is achieved, improving their performance in lubrication, polymer processing and printing coatings.
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Abstract
Description
[Technical field]
[0001] This application relates generally to the field of poly(tetrafluoroethylene) (PTFE) particles and methods of making such particles. [Background technology]
[0002] Poly(tetrafluoroethylene) (PTFE) resin is used in paste extrusion processes to produce products such as sheets, profiles, monofilaments, and tubing. Paste extrusion of PTFE typically involves several steps, including: (1) paste preparation or mixing of resin with lubricant; (2) preform; (3) paste extrusion through one or more die heads; and (4) devolatilization. The paste extrusion process produces PTFE scrap in either an unsintered or sintered state. Unsintered scrap includes the ends of the preform ("tails") and the cone-shaped residue in the die head ("cone"). Sintered PTFE scrap has undergone the entire process and includes start-up and shut-down trim scrap, changeover scrap, and off-gauge material. Summary of the Invention
[0003] It would be desirable to provide a method to utilize such PTFE scrap to produce new products and reduce waste. In particular, converting scrap into PTFE particulates is one method by which value-added products can be produced, as such particulates can be useful in, for example, lubrication, polymer processing, and printing / painting. Current methods for preparing PTFE scrap for crushing / particulate production require first irradiating the material with high energy sources such as gamma, electron beam, or X-ray to embrittle it. There are various methods such as cutting, washing, drying, sintering, ball milling at low temperature; using ultraviolet light in combination with ozone and hydrogen peroxide; using ultraviolet light in combination with hydrogen peroxide and carbon tetrachloride, and thermal destruction of PTFE waste in a reactor. [Problem to be solved by the invention]
[0004] Although these methods can reduce particle size, they produce particles with low specific surface area compared to the particulates obtained from virgin PTFE. It would be advantageous to provide additional methods for converting PTFE scrap into usable materials such as particulates. [Means for solving the problem]
[0005] The present disclosure provides microparticles obtained from PTFE feedstock, such as PTFE scrap. Such microparticles can exhibit significant specific surface areas (e.g., hither for a given particle size than known PTFE microparticles prepared from PTFE scrap). The present disclosure further provides methods of obtaining such PTFE microparticles and methods of using such PTFE microparticles.
[0006] The present disclosure includes, but is not limited to, the following embodiments.
[0007] Embodiment 1: A microparticle comprising poly(tetrafluoroethylene) (PTFE), the microparticle having a Dv50 of about 20 μm or more and about 30 μm or less, and a viscosity of at least about 3.0 μm as measured by the BET multipoint method of ISO 9277. 2 / g specific surface area (SSA); said microparticles are prepared by thermomechanically decomposing PTFE scrap in the presence of air and / or oxygen and reducing the particle size of said decomposed PTFE.
[0008] Embodiment 2: The microparticle of embodiment 1, wherein the microparticle consists essentially of poly(tetrafluoroethylene) species and modified poly(tetrafluoroethylene) species.
[0009] Embodiment 3: The microparticle of embodiment 2, wherein the modified poly(tetrafluoroethylene) species comprises poly(tetrafluoroethylene) modified with one or more oxygen atoms, additional carbon atoms, and / or additional hydrogen atoms.
[0010] Embodiment 4: The microparticle of any one of embodiments 1 to 3, wherein the PTFE microparticle is prepared by a method that does not include irradiation.
[0011] Embodiment 5: The microparticle of any one of embodiments 1 to 4, wherein the thermomechanical degradation comprises multiple passes of the PTFE through an apparatus designed for thermomechanical degradation.
[0012] Embodiment 6: The microparticle of any one of embodiments 1 to 5, wherein the particle size reduction comprises passing the degraded PTFE multiple times through a device designed for particle size reduction.
[0013] Embodiment 7: The microparticle of any one of embodiments 1 to 6, wherein the thermomechanical decomposition is carried out in an extruder.
[0014] Embodiment 8: The microparticles of any one of embodiments 1 to 7, wherein the thermomechanical decomposition is carried out in an internal mixer.
[0015] Embodiment 9: The microparticles according to any one of embodiments 1 to 8, wherein the PTFE scrap is in a sintered state.
[0016] Embodiment 10: The microparticles of any one of embodiments 1 to 8, wherein the PTFE scrap is in an unsintered state.
[0017] Embodiment 11: A product selected from the group consisting of lubricants and pigments, comprising the particulate of any one of embodiments 1 to 10.
[0018] Embodiment 12: A method of providing a microparticle comprising PTFE, comprising the steps of: 1. A method comprising: providing PTFE scrap; thermally and mechanically decomposing the PTFE scrap in the presence of air and / or oxygen to obtain decomposed PTFE; and reducing the particle size of the decomposed PTFE by crushing or grinding.
[0019] Embodiment 13: The microparticle has a diameter of at least about -0.05 m on a plot of SSA versus Dv50. 2 / g·μm and at least about 4.0m 2 13. The method of embodiment 12, wherein the method forms a line with a y-intercept of 0.1 / g.
[0020] Embodiment 14: The method of embodiment 12 or 13, which does not include irradiation.
[0021]
[0031] Embodiment 15: The method according to any one of embodiments 12 to 14, wherein the PTFE scrap is in a sintered form.
[0022]
[0031] Embodiment 16: The method according to any one of embodiments 12 to 14, wherein the PTFE scrap is in an unsintered state.
[0023] Embodiment 17: The method of any one of embodiments 12 to 16, wherein the decomposition is carried out in an extruder or an internal mixer.
[0024] Embodiment 18: The method of any one of embodiments 12 to 16, wherein the decomposition is carried out in an environment comprising an oxygen:nitrogen ratio of about 0.4 or greater.
[0025] Embodiment 19: The method of any one of embodiments 12 to 18, further comprising repeating the decomposition step two or more times.
[0026] Embodiment 20: The method of any one of embodiments 12 to 19, further comprising repeating the particle size reduction step two or more times.
[0027] Embodiment 21: The method of any one of embodiments 12 to 20, further comprising separating the fine powder obtained after the particle size reduction step into particle size fractions.
[0028]
[0041] Embodiment 22: The method of any one of embodiments 12 to 21, wherein the separating comprises sieving or air classifying to obtain the fine particles.
[0029] Embodiment 23: Microparticles obtained by the method according to any one of embodiments 12 to 22.
[0030] These and other features, aspects, and advantages of the present disclosure will become apparent upon reading the following detailed description in conjunction with the accompanying drawings, which are briefly described below. The present invention includes combinations of any two, three, four, or more of the above embodiments, and combinations of any two, three, four, or more features or elements described in this disclosure, whether or not such features or elements are explicitly combined in the description of a particular embodiment herein. The present disclosure is intended to be read in its entirety to be construed as intending that all separable features and elements of the present invention are combinable in any of its various aspects and embodiments, unless the context clearly dictates otherwise. Other aspects and advantages of the present invention will become apparent hereinafter.
[0031] For an understanding of embodiments of the present invention, reference is made to the accompanying drawings, which are not necessarily drawn to scale and in which reference numerals indicate components of exemplary embodiments of the present invention. The drawings are illustrative only and are not to be construed as limiting the invention. [Brief description of the drawings]
[0032] [Figure 1] FIG. 1 is a general schematic diagram of a process according to an embodiment of the present disclosure. [Diagram 2] 1 is a plot of particle size distribution of various particulates from as-sintered PTFE. [Diagram 3] 1 is a plot of specific surface area of as-sintered PTFE fine powders versus Dv50. The filled circles represent the fine powders of the present invention, and the open circles represent grades known in the art and shown in Table 2. The equations show the best fit straight lines for each group of fine powders. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033] The present invention will be described in more detail below. However, the present invention can be implemented in many different forms and should not be construed as being limited to the embodiments described herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the present invention to those skilled in the art. As used in the present specification and claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise.
[0034] The present disclosure provides PTFE particles, such as microparticles.The PTFE microparticles provided herein are characterized, at least in part, by having a relatively high surface area compared to the PTFE microparticles obtained by irradiating PTFE in a sintered state.The method for providing such PTFE microparticles, and the method of using such PTFE microparticles and products containing such PTFE microparticles are also provided herein.
[0035] A general schematic diagram of one embodiment of a method for providing PTFE microparticles is shown in FIG. 1. As shown therein, the method 10 starts with PTFE and proceeds through a granulation step 12 to provide PTFE flakes. The PTFE flakes are decomposed in a decomposition step 14 to produce decomposed PTFE, the size of the PTFE is reduced to a fine powder in a step 16, and finally, the fine powder is further processed in a step 18 to produce PTFE microparticles. In some embodiments, the method provided herein can be described as not including irradiation (e.g., ultraviolet irradiation). In some embodiments, the method can be described as not including low temperature processing. In some embodiments, the method can be described as not including thermal destruction in a reactor. In some embodiments, the method can be described as not including the use of ozone, hydrogen peroxide, or carbon tetrachloride. The relevant features and parameters of each step of the method 10 disclosed herein are outlined below.
[0036] The raw material ("PTFE") in method 10 can be obtained from a variety of sources. In some embodiments, the PTFE is PTFE "scrap" resulting from a paste extrusion process. As discussed above, the paste extrusion process generally involves mixing PTFE resin with one or more lubricants, preforming the resulting paste, and extruding the resulting paste through one or more dies; the resulting molded material is then devolatilized and sintered. Fine powder PTFE resin suitable for paste extrusion can be extruded at a reduction ratio of, for example, greater than 300. Examples of suitable resins for this purpose include, but are not limited to, Daikin F205, F201, F201L, F208, and F207 resins, Dyneon TF 2071, TF 2072, and TF 2053 resins, Chemours Teflon 640XT X, 641XT X, CFP 6000 X, 62XT X, 6C X, and 6CN X, and Asahi Glass CD 090E, and CD 097E. It should be understood that the products and methods described herein are not limited to such resins, and any PTFE resin may reasonably be used within the scope of this disclosure. It should be noted that, for example, where reference is made in this disclosure to "PTFE" resin, "PTFE" scrap, "PTFE" flake, degraded "PTFE", extruded "PTFE", and "PTFE" fine powders and particulates (or "PTFE-containing" fine powders and particulates), these materials may not contain 100% PTFE, but are nevertheless included in this disclosure. For example, PTFE resins commonly used in paste extrusion can be homopolymeric or non-homopolymeric (e.g., modified resins containing small amounts of comonomers are commonly used due to their low transition temperature). All scrap materials from the extrusion of these homopolymeric and non-homopolymeric "PTFE resins" are suitable for use according to this disclosure, and thus all references to "PTFE" are intended to encompass these materials.
[0037] As previously mentioned, scrap remaining from the paste extrusion process can be classified, for example, as green (e.g., tail or cone residue) or sintered (e.g., trim scrap, changeover scrap, and off-gauge material from start-up and shut-down processes). The processes disclosed in this invention can employ scrap material in either a sintered or green state.
[0038] Step 12 involves processing the PTFE into a "flake" state. Such processing may include granulation of the PTFE in some embodiments. Various methods and equipment for granulation are known and can be suitably used in the methods provided herein. For example, a granulator (e.g., MPG granulator) or a grinding mill (e.g., Wiley mill) can be used to obtain flaked PTFE. In some embodiments, such equipment can be used with sieves of different opening sizes (e.g., 8 mm screen or 6 mm screen) depending on the size of the flakes desired. Advantageously, a flake size of less than about 8 mm or less than about 6 mm, for example, from about 4 mm to about 6 mm, is targeted in this step. It should be noted that the term "flake" is used herein to describe the morphology of the PTFE at this stage; however, the shape is not limited to a flake shape, and may be, for example, substantially spherical, substantially cubic, or irregularly shaped particles, or may exhibit another shape. In some embodiments, the flaked PTFE comprises PTFE of substantially the same size / shape; in other embodiments, the size and / or shape of individual PTFE "flakes" may vary within a given sample.
[0039] The flaked PTFE is subjected to a degradation step 14. Advantageously, the degradation step 14 includes thermomechanical degradation, which is a mechanically induced degradation by heat treatment. Thermomechanical degradation typically involves applying heat and pressure to the flaked PTFE (which can be carried out, for example, by extrusion and / or mechanical mixing). Thermomechanical degradation degrades at least a portion of the PTFE polymer in a given sample, for example, by intrapolymer cleavage. Intrapolymer cleavage includes, but is not limited to, depolymerization, random chain scission, side group elimination, oxidation, and combinations thereof. Thermomechanical degradation in the context of the present disclosure is intended to mean degradation of the PTFE polymer induced by heat, shear, and / or oxygen. In some embodiments, degradation results in the modification of at least a portion of the PTFE polymer in a given sample, for example, via the introduction of oxygen atoms and / or additional carbon atoms and / or additional hydrogen atoms into the polymer structure.
[0040] Thermomechanical degradation can be carried out, for example, in an extruder and / or in a mixer (e.g., internal mixer or continuous mixer). Suitable internal mixers include, but are not limited to, the Banbury F620 or BM series mixers from Farrel Corporation, or the Mixtron BB Tangential or Mixtron BB Intermeshing series mixers from Kobelco. Suitable continuous mixers include, but are not limited to, the FCM and LCM series continuous mixers from Farrel Pomini. Extruder design, e.g., barrel size, extruder size and design, operating conditions such as barrel zone temperatures, screw speed, throughput, etc., can be adjusted to accommodate the oxygen and nitrogen ratio. In some embodiments, such parameters are manipulated to affect the rate and extent of polymer degradation.
[0041] The average barrel zone temperature in the extruder used for thermomechanical decomposition according to the present disclosure is not particularly limited, but is generally within a range sufficient to ensure that the flaked PTFE is sufficiently melted to move through the barrel and then extrude through the die. For example, a temperature of about 200°C to about 400°C in the barrel and about 400°C to about 600°C in the die are suitable.
[0042] The physical and operational characteristics of the screw in the extruder used in the thermomechanical cracking according to the present disclosure are likewise not particularly limited. For example, the screw size (e.g., L / D ratio) and design (e.g., geometry) can vary. A wide range of screw diameters, lengths, and designs can be employed. Twin screw extruders (co-rotating and counter-rotating) can be used as well as conventional single screw extruders. The screw design can, in some embodiments, simply help ensure that the resin being processed is properly melted and homogenized before being conveyed to the extrusion die. The screw speed and throughput of the extruder, as well as the air flow rate and pressure within the extruder, can also be adjusted in some embodiments. The size and shape of the die can be selected from any die size and shape; the target size and shape of the resulting extrudate (as it is further processed to provide the desired particles) is not particularly limited. The temperature of the die is generally higher than the temperature of the barrel, but this is also not particularly limited (e.g., from about 400° C. to about 600° C.). One skilled in the art will recognize the considerations involved in selecting appropriate parameters for extrusion based, for example, on the rheology of the polymeric resin to ensure a suitable extrudate is produced.
[0043] In some embodiments, the thermomechanical decomposition is carried out at least partially in an atmosphere that includes air; in some embodiments, the thermomechanical decomposition is carried out in an atmosphere that includes oxygen (and, in some embodiments, may include both air and oxygen).
[0044] In some embodiments, the atmosphere further comprises nitrogen. The ratio of oxygen to nitrogen can vary. In some embodiments where the decomposition is carried out in an extruder, an oxygen / nitrogen mixture can be injected under pressure into a downstream extruder port to aid in the decomposition of the polymer. The oxygen to nitrogen ratio (volume / volume) advantageously used according to embodiments of the present disclosure can range from about 0.27 (the average ratio in air) to about 90. In some embodiments, the atmosphere in which the thermomechanical decomposition is carried out comprises oxygen and nitrogen in a volume ratio of about 0.5 to about 4. In some embodiments, it can be advantageous to carry out the decomposition in an oxygen / nitrogen mixture with a higher oxygen content than air, for example in an environment where the volume ratio of oxygen to nitrogen is greater than 0.27, for example, greater than about 0.3, greater than about 0.4, or greater than about 0.5.
[0045] After thermomechanical degradation by extrusion, the extrudate is cooled. Various methods are known, for example, the extrudate can be passively cooled, such as by air, for a specified time; it can be cooled in a water bath set at a certain temperature; or it can be cooled by the action of a blower or fan. Similarly, when thermomechanical degradation is carried out via a mixer or other device, the decomposed material is usually heated and requires cooling, and can be subjected to similar methods.
[0046] It should be understood that after thermomechanical degradation, the PTFE will be different in composition than it was before this process. Specifically, the molecular weight of the polymer chains in the material will decrease (e.g., by chain scission); and other species may form within the material. In this context, references to "degraded PTFE" and subsequent "PTFE fine powder" and "PTFE particulate" are intended to include all species present in the material upon degradation, including, in some embodiments, modified polymer species generated within the sample via the thermomechanical degradation process.
[0047] The degraded PTFE (e.g., in the form of an extrudate) is then subjected to step 16 to reduce particle size to produce a "fine powder." The term "fine powder" is intended to refer to a granular material that may be substantially uniform or non-uniform in particle size. The particle size reduction in this step may be performed, for example, in the same equipment as described above with respect to granulation step 12. Additionally, in some embodiments, hammer mills and jet mills (including cryogenic mills) may be suitably used. The target average or maximum particle size in step 16 is, in some embodiments, from about 2 mm to about 8 mm, e.g., from about 2 mm to about 6 mm, from about 2 mm to about 4 mm, or from about 4 mm to about 6 mm. Again, the individual particles of the fine powder provided in step 16 may be substantially uniform in size / shape or may vary within a given sample. Typically, the particulates obtained in this step exhibit a fairly broad particle size distribution.
[0048] The fine powder is then further processed to obtain PTFE fine particles via step 18, which typically involves classification / sieving. Classification / sieving is designed to provide a fine powder, or "fine particles," with a narrow particle size distribution. There is no particular limit to the target mean or maximum particle size of the fine particles provided via step 10; various such particle sizes can be targeted depending on the desired application of the resulting fine particles. Types of equipment suitable for providing individual fractions of PTFE fine particles with relatively narrow particle size distributions include, but are not limited to, air classifiers and mechanical sieves.
[0049] In some embodiments, step 10 provides suitable particles having a desired average particle size and a desired particle size distribution. In some embodiments, the process may further include reprocessing one or more of the materials produced through one or more steps of step 10. For example, in some embodiments, smaller particulates can be provided by reprocessing, for example, PTFE flakes or degraded PTFE extrudates multiple times through one or more of the steps described. For example, in some embodiments, step 14 can be performed multiple times by obtaining an extrudate, regrinding the extrudate, and subjecting the regrind extrudate to thermomechanical decomposition again by extrusion. Thus, the thermomechanical decomposition step can be performed once to obtain the desired particulates, or optionally, the entire process can be performed two, three, or even more times, for example, to obtain smaller particulates.
[0050] The particle size of the microparticles obtained as a target in step 14 can vary, for example, depending on the application for which the microparticles may be used (examples of such applications are described below). In some embodiments, the particle size of the microparticles is described by the Dv50 of the sample, i.e., represents the median diameter of the volume distribution. The Dv50 of certain microparticles provided herein can be, for example, about 20 μm or more, for example, about 20 μm or more to about 80 μm or less, for example, about 20 μm or more to about 40 μm or less, or for example, about 20 μm or more to about 30 μm or less. Particle size distribution is generally evaluated based on volume percentage.
[0051] The PTFE microparticles provided by the method disclosed herein, particularly those obtained by thermomechanical decomposition of PTFE as described above, differ in some important respects from the microparticles of the same particle size and distribution obtained by polymerization of tetrafluoroethylene to produce PTFE. As mentioned above, thermomechanical decomposition reduces the molecular weight of the PTFE polymer used to produce the microparticles through chain scission. Furthermore, the decomposition reaction in some embodiments of the disclosed method adds one or more of oxygen, hydrogen, and carbon to the polymer chain of the PTFE microparticles provided herein. See, for example, JA Conesa, R. Font, "Polytetrafluoroethylene Decomposition in Air and Nitrogen", Polymer Eng.&Sci., 41, 2137, 2001, which is incorporated herein by reference in its entirety.
[0052] Advantageously, the microparticles provided herein can be characterized by properties such as particle size distribution, specific surface area, and shape parameters such as: circularity, equivalent circular area, smoothness, equivalent ellipse length / width / area, ellipticity, rectangularity, polygon order, interior angle, convexity, fiber width / length, Feret width / length, aspect ratio, surface uniformity, opacity, color, and white fraction, optimized for various applications. In some embodiments, the equivalent circular area can have a mean diameter of 25.1 μm with a standard deviation of 14.7 μm. In some embodiments, the circularity can have a mean value of 0.535 with a standard deviation of 0.193. In some embodiments, the smoothness can have a mean value of 0.602 with a standard deviation of 0.138 μm. In some embodiments, the equivalent ellipse area width can have a mean value of 28.1 μm, and the equivalent ellipse area length can have a mean value of 40.8. In some embodiments, the mean ellipticity may be 0.675 with a standard deviation of 0.141. In some embodiments, the mean rectangularity may be 0.679 with a standard deviation of 0.113. In some embodiments, the mean polygon order may be 6.1 with a standard deviation of 1.1. In some embodiments, the mean convexicity may be 0.984 with a standard deviation of 0.061. In some embodiments, the mean polygon interior angle may be 115 with a standard deviation of 35. In some embodiments, the mean fiber width may be 21.8 μm, the mean fiber length may be 49.7, and the mean fiber aspect ratio may be 2.6. In some embodiments, the mean Feret width may be 30.3 μm, the mean Feret length may be 43.5, and the mean Feret aspect ratio may be 2.5. In some embodiments, the mean surface uniformity may be 0.702 with a standard deviation of 0.170. In some embodiments, the mean opacity may be 0.481 with a standard deviation of 0.047.In some embodiments, the mean white fraction can be 0.069 with a standard deviation of 0.063.
[0053] The PTFE microparticles resulting from the disclosed process exhibit a uniquely higher specific surface area (SSA) per unit mass than comparable microparticles prepared from PTFE scrap by known methods, including irradiation of the PTFE. The comparable irradiation methods use high energy inputs (e.g., approximately 1 kJ / g or greater), which are believed to adversely affect the surface properties of PTFE. As a result, the comparative particles formed during the subsequent grinding operation have a lower specific surface area for a given average particle size. For example, Daikin 1-5F virgin PTFE microparticles have an average diameter of 4.0 μm and a specific surface area (SSA) of 11 m. 2 The average diameter of Shamrock's GT 105, obtained by irradiating and grinding sintered PTFE, is similar at about 3.5 μm, whereas the SSA is 2.7 μm. 2 / g. Thus, at the same loading, less interfacial area is produced in GT 105 compared to 1-5F. The microparticles of the present disclosure can have a higher SSA while still having a similar particle size distribution to the particles obtained from high energy irradiation processes.
[0054] In some embodiments, the disclosed PTFE particulates have a Dv50 of about 3.0 μm when the powder has a Dv50 between about 20 μm and about 30 μm. 2 In some embodiments, the disclosed PTFE particulates exhibit an SSA value of about 3.0 μm / g or greater when the powder has a Dv50 of between about 20 μm and about 24 μm, between about 20 μm and about 25 μm, between about 20 μm and about 26 μm, between about 20 μm and about 27 μm, between about 20 μm and about 28 μm, or between about 20 μm and about 29 μm. 2 / g or more. Such SSA values can be measured, for example, via the BET multipoint method of ISO 9277. In some embodiments, when SSA vs. Dv50 values are plotted against each other, the resulting line has a slope of at least about -0.05m. 2 / g μm, and the y-intercept is at least about 4.0 m 2 / g.
[0055] The desired high comparative SSA value of the disclosed PTFE microparticles makes them particularly suitable for a variety of applications. For example, in applications such as slip aids and lubricants, including greases and polymer processing aids, it is advantageous to use small particles with high surface area. This high SSA is expected to improve the lubricity of oils and greases and promote enhanced slip at the polymer-metal interface to delay the onset of melt instability during polymer processing operations. The small particle diameter minimizes adverse effects on the physical properties of the matrix resin, and the high SSA improves the functionality of the microparticles within the matrix. Additionally, the SSA influences the optimum packing density of the dispersed phase within the continuous phase. As described in I. Mehdipour, KH Khayat, "Effect of particle-size distribution and specific surface area of different binder systems on packing density and flow characteristics of cement paste", Cement and Concrete Composites, 78, 2017, 120-131, as the SSA increases, the packing density increases up to the optimum value of SSA. This document is incorporated herein by reference. Thus, high SSA values may be preferable for formulations that require high loading of microparticles.
[0056] This feature of the disclosed microparticles is beneficial in many applications requiring, for example, adsorption of a mobile phase onto the microparticle surface. Such microparticles can be useful in a wide variety of applications, including as additives for: liquid, paste or crosslinkable printing inks; liquid, powder or crosslinkable coatings; polymer processing aids; personal care products such as greases and lubricants, cosmetics, etc. The functionality of the micropowder to act not only as an aesthetic modifier for inks and coatings, but also as a pigment, viscosity modifier, slip promoter, lubricant, light diffuser, chemical resistance enhancer, antiwear additive, thermal performance enhancer, polymer melt surface stabilizer, allows the microparticles of the present invention to be used in other applications as well.
[0057] Thus, the present disclosure provides various products incorporating the microparticles prepared from PTFE scrap that exhibit the disclosed SSA values. The present disclosure further provides various products incorporating the microparticles prepared from PTFE scrap via the methods described herein. Such products include, but are not limited to, inks / pigments (and their aesthetic modifiers), coatings, polymer processing aids, viscosity modifiers, slip promoters (slip aids), lubricants, greases, light diffusers, chemical resistance improvers, anti-wear additives, thermal performance improvers, and polymer melt surface stabilizers. In some embodiments, such products are provided that include a high loading of PTFE microparticles, including a higher loading of PTFE microparticles than can be obtained when employing a comparative PTFE microparticle produced by an irradiation method. EXAMPLES
[0058] Aspects of the present invention will be more fully described by the following examples, which are presented to illustrate particular aspects of the invention and are not to be construed as limitations thereof.
[0059] Example 1 PTFE resin scraps generated during the tube extrusion process were collected after sintering, cut, and crushed into flakes using a Wiley mill with a 6 mm screen. These flakes were fed into the hopper of a 63.5 mm single screw extruder with a mixing screw of L / D=20 / 1. Barrel temperatures from the feed throat to the spiral head were 232°C, 327°C, and 382°C. Head temperatures were set at 427°C and 590°C, and extrusion was carried out under atmospheric oxygen:nitrogen ratio (0.27 oxygen:nitrogen). The extrudate was cooled in ambient air as it left the die head. The throughput rate was approximately 7 kg / hr.
[0060] The extrudate leaving the head was cooled to room temperature and was easily crumbling. It was white in color. The extrudate was collected in a container and crushed in a Wiley mill through a 4 mm screen.
[0061] The milled material was then used as feedstock for a Hosokawa Micro 15 ACM-EA Air-Classifying Mill for further particle size reduction. Operating conditions are outlined below.
[0062] Hopper gap: 4mm Rotor speed: 7000RPM ·Classification speed: 2000RPM Airflow: 600CFM Jet pressure: 4 bar Particle size distribution (PSD) was obtained using a Malvern Panalytical Mastersizer 3000 Particle Size Analyzer and specific surface area was measured using a Micromeretics Tristar II Plus Surface Area Analyzer using the BET method of ISO 9277.
[0063] The properties of the obtained microparticles are summarized in the following Table 1. Dv50 represents the median diameter of the volume distribution. The particle size distribution by volume percentage is shown in Figure 2.
[0064] Example 2 The material of Example 1 was used as the feedstock for a Hosokawa Micro 15 Standard ACM at the same operating conditions. The properties of the resulting particulates are also summarized in Table 1, and the particle size distribution is shown in Figure 2.
[0065] Example 3 The extrudate from Example 1 was collected in a container and milled through a 6 mm screen in a Wiley mill. This material was used as feedstock for a Hosokawa Micro 15 Standard ACM. The sieving speed used in this example was 3000 RPM. The properties of the resulting particulates are also summarized in Table 1, and the particle size distribution is shown in Figure 2.
[0066] Example 4 The thermomechanical degradation procedure described in Example 1 was used in a gas mixture of 40% oxygen and 60% nitrogen (v / v) introduced into the feed throat of the extruder at 10 L / min along with flakes of PTFE scrap. The extrusion conditions were essentially the same as those described in Example 1. However, the extrudate was found to be much more brittle than the extrudate of Example 1. The color of the extrudate was found to be a lighter white than that produced in Example 1.
[0067] The objective of this example was to obtain an extrudate that was more highly degraded (i.e., more friable) and therefore more suitable for grinding and sieving on standard equipment (small particle size was not an objective in this example, as applications exist for larger particle sizes). Differences in gas composition inside the extruder are not believed to preclude the possibility of preparing smaller particle sizes. This material was used as feed for a hammer mill and a jet mill (Jet Pulverizer Company) for particle size reduction. The output was sieved through a 150 μm standard test sieve with 43% (w / w) of the output passing through the opening. The sub-150 μm fraction was analyzed as described in Example 1. The properties of the resulting particulates are summarized in Table 1, and the particle size distribution is shown in Figure 2. While not intending to be theoretically bound, it is believed that the low oxygen / nitrogen ratio at which the decomposition was carried out in this example resulted in a product that was out of the desired specification (i.e., larger particle size and lower SSA) compared to the product obtained by decomposition at a higher oxygen / nitrogen ratio.
[0068] Comparative Example 1 GT 105 is a grade of PTFE particulate from Shamrock Technologies obtained by irradiation of as-sintered PTFE scrap material (Shamrock GT 105 TDS, published June 1, 2016). These comparative particulates were analyzed as described in Example 1. The properties of the comparative particulates are summarized in Table 1 and the particle size distribution is shown in Figure 2.
[0069] Comparative Example 2 GT 130 is a grade of PTFE particulate from Shamrock Technologies obtained by irradiation of as-sintered PTFE scrap material (Shamrock GT 130 TDS, published June 1, 2016). These comparative particulates were analyzed as described in Example 1. The properties of the comparative particulates are summarized in Table 1 and the particle size distribution is shown in Figure 2.
[0070] [Table 1]
[0071] The data in Table 1 show that the SSA of the particulates obtained from the thermomechanical decomposition of PTFE scrap by the method provided herein is significantly and surprisingly greater than the SSA of the particulates obtained by irradiation of PTFE scrap at comparable Dv50 values. Note, for example, the large difference in SSA between Example 3 and Comparative Example 2.
[0072] Table 2 summarizes some of the grades of particulate PTFE derived from sintered polymers currently available on the market. None of the grades listed have an SSA greater than 3.0.
[0073] [Table 2]
[0074] The microparticles in Table 2, which specify discrete values of particle size and SSA rather than a range of values, are combined with the microparticles of Comparative Example 1 and Comparative Example 2 and plotted in a graph of SSA versus Dv50 in Figure 3 along with the microparticles provided according to the method of the present disclosure.
[0075] Figure 3 shows that the SSA of the fine powders provided according to the present disclosure lies on a line shifted to the right of the line expected from comparative fine particles known in the art obtained by irradiating PTFE in a sintered state. The observed shift means that the fine particles prepared according to the method outlined herein have a higher SSA for a given value of Dv50.
[0076] Many modifications and other embodiments of the invention will come to mind to one skilled in the art to which this invention pertains having the benefit of the teachings presented in the foregoing description. It is to be understood, therefore, that the invention is not limited to the specific embodiments disclosed, and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
Claims
1. A microparticle comprising poly(tetrafluoroethylene), The particulate has a Dv50 of 20 μm or more and 30 μm or less, and a particle size of at least 2.9 m when measured by the BET multipoint method of ISO 9277. 2 / g specific surface area (SSA); the microparticles are prepared by a process comprising thermomechanically decomposing PTFE scrap in the presence of air and / or oxygen and reducing the particle size of the decomposed PTFE; The method does not include irradiation.
2. 10. The microparticle of claim 1, wherein the microparticle is composed of poly(tetrafluoroethylene) and modified poly(tetrafluoroethylene) species.
3. 3. The microparticle of claim 2, wherein the modified poly(tetrafluoroethylene) species comprises poly(tetrafluoroethylene) modified with one or more oxygen atoms, additional carbon atoms, and / or additional hydrogen atoms.
4. 10. The microparticle of claim 1, wherein the thermomechanical degradation comprises multiple passes of the PTFE through an apparatus designed for thermomechanical degradation.
5. 10. The microparticle of claim 1, wherein the particle size reduction comprises multiple passes of the degraded PTFE through a device designed for particle size reduction.
6. The microparticles of claim 1 , wherein the thermomechanical decomposition is carried out in an extruder.
7. The microparticles of claim 1 , wherein the thermomechanical decomposition is carried out in an internal mixer.
8. 2. The particulate of claim 1, wherein the PTFE scrap is in a sintered state.
9. 2. The particulate of claim 1, wherein the PTFE scrap is in an unsintered state.
10. 10. A product selected from the group consisting of lubricants and pigments, the product comprising the particulate of any one of claims 1 to 9.
11. 1. A method of providing a microparticle comprising PTFE, comprising: providing PTFE scrap; thermally and mechanically decomposing the PTFE scrap in the presence of air and / or oxygen to obtain decomposed PTFE; and reducing the particle size of the degraded PTFE by crushing or grinding; The method is characterized in that it does not include irradiation.
12. The particle is −0.05 m on the plot of SSA vs. Dv50. 2 / g·μm or more and 4.0m 2 The method of claim 11 , wherein the y-intercept is greater than or equal to 1 / g.
13. The method of claim 11 , wherein the PTFE scrap is in a sintered form.
14. The method of claim 11 , wherein the PTFE scrap is in an unsintered state.
15. The method of claim 11, wherein the decomposition is carried out in an extruder or an internal mixer.
16. 12. The method of claim 11, wherein the decomposition is carried out in an environment containing an oxygen:nitrogen ratio of 0.4 or greater.
17. 12. The method of claim 11, further comprising repeating the decomposition step two or more times.
18. 12. The method of claim 11, further comprising repeating the particle size reduction step two or more times.
19. 12. The method of claim 11, further comprising separating the fine powder obtained after the particle size reduction step into fractions according to particle size.
20. 20. The method of claim 19, wherein said separating comprises sieving or air classifying to obtain said fine particles.
21. Microparticles obtained by the method according to any one of claims 11 to 20.
Citation Information
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