Polytetrafluoroethylene granulated powder
The PTFE granulated powder, characterized by low moisture content, high Z value, and specific particle size and density ranges, addresses the issues of coloring and crack resistance in molded products, resulting in improved mechanical and handling properties.
Patent Information
- Application Number
- JP2024188561
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-10-25
- Filing Date
- 2024-10-25
- Publication Date
- 2025-05-12
- Estimated Expiration
- 2044-10-25
AI Technical Summary
Existing methods for producing polytetrafluoroethylene (PTFE) granulated powders often result in molded products with coloring issues and poor crack resistance.
A PTFE granulated powder with a moisture content of 0.020% by mass or less and a Z value of 90 or more, using an aqueous solution of a nonionic surfactant as the granulation binder, and having an average particle size of 200 to 700 μm, apparent density of 0.60 to 0.90 g/ml, and an average aspect ratio of 1.25 or less.
The described PTFE granulated powder produces molded products with minimal coloring and excellent crack resistance, achieving improved mechanical properties and handling characteristics.
Smart Images

Figure 2025073119000001_ABST
Abstract
Description
[Technical field]
[0001] The present disclosure relates to polytetrafluoroethylene granulated powder. [Background technology]
[0002] Conventionally, methods for producing (granulating) granular powder of polytetrafluoroethylene have been known, including stirring in water containing an organic solvent, stirring in warm water, and applying mechanical force (rolling) while wetted with a small amount of organic solvent.
[0003] Patent Documents 1 and 2 describe a method in which polytetrafluoroethylene powder is wetted with a specific aqueous surfactant solution and mechanical force is applied to it. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Japanese Patent Application Publication No. 10-298300 [Patent Document 2] Japanese Patent Application Publication No. 8-208929 Summary of the Invention [Problem to be solved by the invention]
[0005] An object of the present disclosure is to provide a polytetrafluoroethylene granulated powder that can give a molded product that is less colored and has excellent crack resistance. [Means for solving the problem]
[0006] The present disclosure (1) is a polytetrafluoroethylene granulated powder having a moisture content of 0.020 mass% or less and a Z value of 90 or more.
[0007] The present disclosure (2) is the polytetrafluoroethylene granulated powder according to the present disclosure (1), in which the granulation binder used for granulation is an aqueous solution of a nonionic surfactant.
[0008] The present disclosure (3) is the polytetrafluoroethylene granulated powder according to the present disclosure (2), wherein the nonionic surfactant aqueous solution is at least one selected from the group consisting of polyoxyethylene alkyl ethers, segmented polyalkylene glycols, and alkylamine oxides.
[0009] The present disclosure (4) is the polytetrafluoroethylene granulated powder according to any combination with any of the present disclosures (1) to (3), which has an average particle size of 200 to 700 μm.
[0010] The present disclosure (5) is the polytetrafluoroethylene granulated powder according to the present disclosure (4), which has an average particle size of 200 to 600 μm.
[0011] The present disclosure (6) is a polytetrafluoroethylene granulated powder having an apparent density of 0.60 to 0.90 g / ml in any combination with any of the present disclosures (1) to (5).
[0012] The present disclosure (7) is a polytetrafluoroethylene granulated powder having an average aspect ratio of 1.25 or less, which is any combination with any of the present disclosures (1) to (6).
[0013] The present disclosure (8) is a polytetrafluoroethylene granulated powder having a high-temperature volatile content of 0.050% by mass or less, which is any combination with any of the present disclosures (1) to (7).
[0014] The present disclosure (9) is a polytetrafluoroethylene granulated powder in any combination with any of the present disclosures (1) to (8), in which the moisture content is 0.001% by mass or less. Effect of the Invention
[0015] According to the present disclosure, it is possible to provide polytetrafluoroethylene granulated powder which can give a molded product with little coloring and excellent crack resistance. [Brief description of the drawings]
[0016] [Figure 1] FIG. 2 is a schematic explanatory diagram of an apparatus used for measuring the flow rate of a granulated powder. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] The present disclosure will now be described in detail.
[0018] The present disclosure relates to polytetrafluoroethylene (PTFE) granulated powder having a moisture content of 0.020 mass % or less and a Z value of 90 or more.
[0019] Since the PTFE granulated powder of the present disclosure has a moisture content and a Z value within a specific range, a molded product with little coloring and excellent crack resistance can be obtained.
[0020] The moisture content of the PTFE granulated powder of the present disclosure is 0.020% by mass or less, and in order to obtain a molded product having even better crack resistance, it is preferably 0.015% by mass or less, more preferably 0.010% by mass or less, even more preferably 0.005% by mass or less, even more preferably 0.003% by mass or less, even more preferably 0.002% by mass or less, and particularly preferably 0.001% by mass or less. The lower limit is not limited, but may be 0% by mass. The water content is measured by the following method. Approximately 20 g of PTFE granulated powder is heated at 150°C for 2 hours, the mass is measured before and after, and calculated according to the following formula. Samples are taken three times, and the mass is calculated for each, and the average value is calculated and used. Moisture content (mass%) = [(mass (g) of PTFE granulated powder before heating) - (mass (g) of PTFE granulated powder after heating)] / (mass (g) of PTFE granulated powder before heating) x 100
[0021] The Z value of the PTFE granulated powder of the present disclosure is 90 or more, and in terms of obtaining a molded product with less coloring, the Z value is preferably 91 or more, more preferably 95 or more, and even more preferably 100 or more, and may be 110 or less. The Z value is measured by the following method. 200g of PTFE granulated powder was filled into a mold with a diameter of 50mm and the molding pressure was 300kg / cm 2 The resulting preform (approximately 50 mm in diameter, 50 mm in thickness) is then heat-treated at 370°C for 2 hours to obtain a molded product, which is then cut crosswise on a lathe approximately 25 mm from the edge (centre), and the Z-value of the centre of the cut-out part is measured based on the XYZ system Z-value measurement method established by the International Commission on Illumination.
[0022] In terms of excellent handleability, the PTFE granulated powder of the present disclosure has an average particle size of preferably 200 μm or more, more preferably 250 μm or more, even more preferably 300 μm or more, and even more preferably 350 μm or more, and preferably 700 μm or less, more preferably 650 μm or less, even more preferably 600 μm or less, and even more preferably 550 μm or less. The average particle size is measured by the following method. Standard sieves of 10, 20, 32, 48, 60 and 80 mesh (inch mesh) are stacked from top to bottom, the PTFE granulated powder is placed on the 10 mesh sieve, and the sieve is vibrated to allow finer PTFE granulated powder particles to fall downward in succession. The proportion of the PTFE granulated powder remaining on each sieve is calculated in mass%, and then the cumulative percentage of the remaining proportion (vertical axis) is scaled against the mesh opening of each sieve (horizontal axis) on a logarithmic probability paper, these points are connected with a straight line, and the particle size on this line where the proportion is 50 mass% is calculated, and this value is the average particle size.
[0023] In terms of excellent handleability, the PTFE granulated powder of the present disclosure preferably has an apparent density of 0.60 g / ml or more, more preferably 0.65 g / ml or more, even more preferably 0.70 g / ml or more, even more preferably 0.75 g / ml or more, and may be 0.90 g / ml or less. The apparent density is measured in accordance with JIS K 6891.
[0024] In terms of excellent handleability, the PTFE granulated powder of the present disclosure preferably has an average aspect ratio of 1.25 or less, more preferably 1.20 or less, even more preferably 1.15 or less, even more preferably 1.10 or less, particularly preferably 1.05 or less, and may be 1.00 or more. The above average aspect ratio is obtained by observing the PTFE granulated powder with a video microscope, processing the images of 50 or more particles randomly selected, and averaging the ratio of the major axis to the minor axis.
[0025] The PTFE granulated powder of the present disclosure has a high-temperature volatile content of preferably 0.050% by mass or less, more preferably 0.040% by mass or less, even more preferably 0.030% by mass or less, even more preferably 0.020% by mass or less, and particularly preferably 0.010% by mass or less, and may be 0.0001% by mass or more, 0.001% by mass or more, 0.002% by mass or more, or 0.003% by mass or more, in that a molded product having less coloring and more excellent crack resistance can be obtained. The content of the high-temperature volatile matter is determined in accordance with JIS K 6891 by measuring the mass of the PTFE granulated powder after heating it at 370° C. for 2 hours, and calculating the content by the following formula. High-temperature volatile matter (mass%) = [(mass (g) of PTFE granulated powder before heating) - (mass (g) of PTFE granulated powder after heating)] / (mass (g) of PTFE granulated powder before heating) x 100
[0026] The PTFE granulated powder of the present disclosure has a tensile strength of preferably 25 MPa or more, more preferably 30 MPa or more, even more preferably 35 MPa or more, even more preferably 38 MPa or more, particularly preferably 40 MPa or more, and may be 60 MPa or less.
[0027] The PTFE granulated powder of the present disclosure has an elongation of preferably 150% or more, more preferably 200% or more, even more preferably 250% or more, even more preferably 290% or more, particularly preferably 300% or more, and may be 500% or less.
[0028] The tensile strength and elongation are measured by the following methods. 5g of PTFE granulated powder was filled into a 97mm x 18mm mold, and the pressure was approximately 300kg / cm 2 Pressure is gradually applied until the temperature reaches a constant value, and the pressure is maintained for an additional 2 minutes to produce a preform. The preform is removed from the mold and placed in an electric furnace maintained at 370°C, where it is fired for 5.5 hours and then cooled at 50°C / hr to obtain a fired body. Test pieces are punched out of the fired body using a JIS dumbbell No. 3, and in accordance with JIS K 6891-58, an autograph is used with a total load of 500 kg, and tension is applied at a tensile speed of 200 mm / min to measure the stress at break and elongation (breaking elongation).
[0029] In terms of excellent handleability, the PTFE granulated powder of the present disclosure preferably has a fluidity of 0.5 times or more, more preferably 1.0 times or more, and even more preferably 1.5 times or more, and may be 5 times or less. The flow rate is measured by the method described in the Examples below.
[0030] The PTFE in the PTFE granulated powder of the present disclosure may be a homopolymer of tetrafluoroethylene (TFE), or may be a modified PTFE containing a polymerization unit based on TFE (TFE unit) and a polymerization unit based on a modified monomer copolymerizable with TFE (hereinafter also referred to as "modified monomer unit"). The above-mentioned TFE homopolymer refers to one in which the content of modified monomer units relative to the total polymerized units is less than 0.0001% by mass. The modified PTFE may contain 99.0% by mass or more of TFE units and 1.0% by mass or less of modified monomer units, or may consist of only TFE units and modified monomer units.
[0031] The modified PTFE preferably has a modified monomer unit content in the range of 0.0001 to 1.0% by mass based on the total polymerized units. The lower limit of the modified monomer unit content is more preferably 0.001% by mass, more preferably 0.010% by mass, even more preferably 0.015% by mass, even more preferably 0.020% by mass, and particularly preferably 0.050% by mass. The upper limit of the modified monomer unit content is preferably 0.80% by mass, more preferably 0.60% by mass, even more preferably 0.50% by mass, even more preferably 0.40% by mass, even more preferably 0.30% by mass, and particularly preferably 0.20% by mass. In this specification, the modified monomer unit means a portion of the molecular structure of PTFE that is derived from a modified monomer.
[0032] The content of each of the above-mentioned polymer units can be calculated by appropriately combining NMR, FT-IR, elemental analysis, and X-ray fluorescence analysis depending on the type of monomer.
[0033] The above-mentioned modified monomer is not particularly limited as long as it can be copolymerized with TFE, and examples thereof include perfluoroolefins such as hexafluoropropylene [HFP], hydrogen-containing fluoroolefins such as trifluoroethylene and vinylidene fluoride [VDF], perhaloolefins such as chlorotrifluoroethylene [CTFE], perfluorovinyl ethers, perfluoroallyl ethers, (perfluoroalkyl)ethylenes, ethylenes, etc. The modified monomers used may be one type or multiple types.
[0034] The perfluorovinyl ether is not particularly limited, and examples thereof include perfluorovinyl ethers represented by the following general formula (A): CF2=CF-ORf 1 (A) (In the formula, Rf 1represents a perfluoro organic group. ) and the like. In this specification, the above-mentioned "perfluoro organic group" means an organic group in which all hydrogen atoms bonded to carbon atoms are replaced with fluorine atoms. The above-mentioned perfluoro organic group may have an ether oxygen.
[0035] The perfluorovinyl ether may be, for example, a compound represented by the general formula (A) in which Rf 1 and perfluoro(alkyl vinyl ether) [PAVE], which is a perfluoroalkyl group having 1 to 10 carbon atoms. The number of carbon atoms in the perfluoroalkyl group is preferably 1 to 5.
[0036] Examples of the perfluoroalkyl group in the PAVE include a perfluoromethyl group, a perfluoroethyl group, a perfluoropropyl group, a perfluorobutyl group, a perfluoropentyl group, and a perfluorohexyl group.
[0037] The perfluorovinyl ether further includes, in the above general formula (A), Rf 1 is a perfluoro(alkoxyalkyl) group having 4 to 9 carbon atoms, Rf 1 is the following formula:
[0038] [ka]
[0039] (wherein m represents 0 or an integer of 1 to 4), Rf 1 is the following formula:
[0040] [ka]
[0041] (wherein n represents an integer of 1 to 4).
[0042] The (perfluoroalkyl)ethylene [PFAE] is not particularly limited, and examples thereof include (perfluorobutyl)ethylene [PFBE] and (perfluorohexyl)ethylene.
[0043] The perfluoroallyl ether may, for example, be a compound represented by the general formula (B): CF2=CF-CF2-ORf 2 (B) (In the formula, Rf 2 represents a perfluoro organic group.
[0044] Rf 2 is preferably a perfluoroalkyl group having 1 to 10 carbon atoms or a perfluoroalkoxyalkyl group having 1 to 10 carbon atoms. The perfluoroallyl ether is preferably at least one selected from the group consisting of CF2=CF-CF2-O-CF3, CF2=CF-CF2-O-C2F5, CF2=CF-CF2-O-C3F7, and CF2=CF-CF2-O-C4F9, more preferably at least one selected from the group consisting of CF2=CF-CF2-O-C2F5, CF2=CF-CF2-O-C3F7, and CF2=CF-CF2-O-C4F9, and further preferably CF2=CF-CF2-O-CF2CF2CF3.
[0045] The above-mentioned modified monomer is preferably at least one selected from the group consisting of CTFE, HFP, perfluoro(methyl vinyl ether) [PMVE], perfluoro(propyl vinyl ether) [PPVE], PFBE and VDF, more preferably at least one selected from the group consisting of CTFE, HFP, PMVE and PPVE, even more preferably at least one selected from the group consisting of CTFE, HFP and PPVE, and particularly preferably at least one selected from the group consisting of PPVE and HFP.
[0046] The PTFE may have a core-shell structure. For example, the PTFE having a core-shell structure may be modified PTFE having a core of high molecular weight PTFE and a shell of lower molecular weight PTFE or modified PTFE in a particle. For example, the modified PTFE described in JP-T-2005-527652 may be used.
[0047] The PTFE preferably has non-melt secondary processability, which means that the melt flow rate cannot be measured at a temperature higher than the melting point in accordance with ASTM D-1238 and D-2116, in other words, that the PTFE does not flow easily even in the melting temperature range.
[0048] The PTFE may be obtained by suspension polymerization.
[0049] The PTFE granulated powder of the present disclosure may contain a filler as long as the effect is not impaired. As the filler, a white or transparent filler is preferable in that the molded body is less likely to be colored, and examples of the filler include glass fiber, titanium oxide powder, and boron nitride powder. As the filler, an aromatic heat-resistant resin powder such as polyoxybenzoyl polyester can also be used.
[0050] The content of the filler is preferably 30% by mass or less, more preferably 20% by mass or less, and even more preferably 15% by mass or less, based on the PTFE. In terms of reducing coloring of the molded body, a smaller amount of filler is preferable, and it is more preferable that the PTFE granulated powder of the present disclosure does not contain a filler.
[0051] The PTFE granulated powder of the present disclosure can be produced by granulating the PTFE powder obtained by suspension polymerization. When producing a PTFE granulated powder containing a filler, a mixed powder of the PTFE powder and the filler may be used instead of the PTFE powder.
[0052] Suspension polymerization can be carried out, for example, by charging a monomer such as TFE, an aqueous medium, and other additives as necessary into a reactor, stirring the contents of the reactor, maintaining the reactor at a predetermined polymerization temperature, and then adding a predetermined amount of a polymerization initiator to start the polymerization reaction. After the start of the polymerization reaction, a monomer such as TFE, a polymerization initiator, a chain transfer agent, and the like may be additionally added depending on the purpose.
[0053] The resulting suspension polymerized particles are optionally subjected to pulverization, drying, classification, etc. to obtain PTFE powder to be granulated.
[0054] The granulation of the PTFE powder is preferably a dry granulation using a nonionic surfactant aqueous solution as a granulation binder, since it produces a molded product with less coloring. In one preferred embodiment of the present disclosure, the granulation binder used in the granulation is a nonionic surfactant aqueous solution. It is also preferable not to use an organic solvent in the granulation.
[0055] Granulation can be carried out, for example, by wetting the PTFE powder with an aqueous solution of a nonionic surfactant, applying mechanical force to the powder, and then drying the powder. In the present disclosure, wetting includes a state in which, for example, when an aqueous surfactant solution is added to a PTFE powder, the PTFE powder is wetted and does not separate from the aqueous surfactant solution.
[0056] The nonionic surfactant may be a hydrocarbon-based surfactant or a non-fluorine-containing surfactant.
[0057] Examples of the nonionic surfactant include polyoxyethylamine oxides, alkylamine oxides, polyoxyethylene alkyl ethers, polyoxyethylene alkylphenyl ethers, polyoxyethylene fatty acid esters, sorbitan fatty acid esters, polyoxyethylene sorbitan fatty acid esters, glycerin esters, polyoxyethylene alkylamines, segmented polyalkylene glycols having a hydrophobic segment composed of a poly(oxyalkylene) unit having 3 to 4 carbon atoms and a hydrophilic segment composed of a poly(oxyethylene) unit, and derivatives thereof.
[0058] More specifically, examples of polyoxyethylamine oxides include dimethyloxyethylamine oxide.
[0059] Examples of the alkylamine oxides include dimethylmyristylamine oxide, dimethyllaurylamine oxide, dimethyldecylamine oxide, and dimethyloleylamine oxide.
[0060] Examples of the polyoxyethylene alkyl ethers include polyoxyethylene lauryl ether, polyoxyethylene cetyl ether, polyoxyethylene stearyl ether, polyoxyethylene oleyl ether, and polyoxyethylene behenyl ether.
[0061] Examples of the polyoxyethylene alkylphenyl ethers include polyoxyethylene nonylphenyl ether and polyoxyethylene octylphenyl ether.
[0062] Examples of the polyoxyethylene fatty acid esters include polyoxyethylene monolaurate, polyoxyethylene monooleate, and polyoxyethylene monostearate.
[0063] Examples of sorbitan fatty acid esters include sorbitan monolaurate, sorbitan monopalmitate, sorbitan monostearate, and sorbitan monooleate.
[0064] Examples of polyoxyethylene sorbitan fatty acid esters include polyoxyethylene sorbitan monolaurate, polyoxyethylene sorbitan monopalmitate, and polyoxyethylene sorbitan monostearate.
[0065] Examples of glycerin esters include glyceryl monomyristate, glyceryl monostearate, and glyceryl monooleate.
[0066] Examples of the derivatives thereof include polyoxyethylene alkylphenyl-formaldehyde condensates, polyoxyethylene alkyl ether phosphates, and the like.
[0067] Examples of segmented polyalkylene glycols having a hydrophobic segment and a hydrophilic segment include those having the following formula: H-(OCH2CH2) q -(A) p -(CH2CH2O) q -H (wherein A is -CH(CH3)CH2O- or -CH(CH3)CH2CH2O-, p is an integer of 5 to 200, and q is an integer of 2 to 400) is preferred. In view of ease of adsorption to PTFE resin, p is preferably 15 to 40 and q is preferably 7 to 100.
[0068] Among these, polyoxyethylene alkyl ethers, segmented polyalkylene glycols, and alkylamine oxides are preferred, and polyoxyethylene alkyl ethers and segmented polyalkylene glycols are more preferred.
[0069] The concentration of the nonionic surfactant in the aqueous solution is preferably 0.50% by mass or more, more preferably 0.75% by mass or more, and even more preferably 1.00% by mass or more, and is preferably 4.00% by mass or less, more preferably 3.50% by mass or less, and even more preferably 3.00% by mass or less.
[0070] The amount of the aqueous solution added is preferably 15% by mass or more, more preferably 20% by mass or more, and even more preferably 25% by mass or more, relative to the PTFE powder, and is preferably 45% by mass or less, more preferably 40% by mass or less, and even more preferably 35% by mass or less.
[0071] Wetting can be carried out in any suitable equipment such as a plow blender, a Waring blender, a paddle blender, a ribbon blender, which may or may not have high speed elements. The wetting can also be carried out in an apparatus for applying mechanical force (a granulator) as described below.
[0072] The wet PTFE powder may be crushed by known methods to obtain a desired particle size.
[0073] Methods for applying mechanical force include, for example, rolling and stirring. In this specification, rolling refers to the PTFE particles rotating and moving around while rubbing against each other or while contacting the wall surface inside the granulator. Granulators used for rolling and granulating the PTFE powder include, for example, disk rotary granulators, V-type blenders, C-type blenders, inclined disk and side rotary granulators, etc. As a method for stirring, a method using a high-speed stirrer may be mentioned. The conditions of the rolling / stirring speed, time, temperature, etc. may be set according to the desired physical properties (apparent density, flowability, etc.).
[0074] Drying of the wet powder by applying mechanical force can be carried out by means of vacuum, high frequency, hot air, etc. The drying temperature is preferably 200° C. or higher, more preferably 210° C. or higher, even more preferably 220° C. or higher, even more preferably 230° C. or higher, and is preferably 270° C. or lower, more preferably 260° C. or lower, and even more preferably 250° C. or lower. If the drying temperature is too low, the moisture and surfactant cannot be sufficiently removed, whereas if the temperature is too high, some of the PTFE particles will melt, which may result in a decrease in tensile strength and elongation.
[0075] Before drying in the above temperature range, drying at a low temperature may be performed. This makes it possible to more efficiently remove moisture and surfactants. The low-temperature drying temperature is preferably 100°C or higher, more preferably 110°C or higher, and is preferably 180°C or lower, more preferably 150°C or lower.
[0076] The drying time is preferably 5 hours or more in total, more preferably 8 hours or more, more preferably 10 hours or more, and even more preferably 15 hours or more, in terms of being able to remove moisture and surfactant more efficiently, and is preferably 100 hours or less, more preferably 50 hours or less, and even more preferably 30 hours or less.
[0077] The wind speed in drying is preferably 0.01 m / s or more, more preferably 0.03 m / s or more, even more preferably 0.05 m / s or more, and even more preferably 0.1 m / s or more, from the viewpoint of more efficiently removing moisture and surfactants, and is preferably 50 m / s or less, more preferably 30 m / s or less, and even more preferably 10 m / s or less, from the viewpoint of suppressing scattering of powder.
[0078] Drying can be carried out using an electric furnace or a steam furnace. For example, it can be carried out using electric furnaces such as a parallel flow box type electric furnace, a ventilated box type electric furnace, a ventilated conveyor type electric furnace, a band electric furnace, a radiant conveyor type electric furnace, a fluidized bed electric furnace, a vacuum electric furnace, an agitation type electric furnace, an airflow type electric furnace, a hot air circulation type electric furnace, or a steam furnace corresponding to the above (a device in which the electric furnace in the device name of each electric furnace is replaced with a steam furnace). In terms of being able to remove moisture and fluorine-containing compounds more efficiently, a parallel flow box type electric furnace, a ventilated box type electric furnace, a ventilated conveyor type electric furnace, a band electric furnace, a fluidized bed electric furnace, a hot air circulation type electric furnace, or a steam furnace corresponding to the above (a device in which the electric furnace in the device name of each electric furnace is replaced with a steam furnace) is preferred.
[0079] The drying is preferably performed by placing the wet PTFE powder in a container with air permeability at the bottom and / or sides, in order to more efficiently remove moisture and surfactants. The container with air permeability at the bottom and / or sides may be any container that can withstand the drying temperature, and is preferably made of a metal such as stainless steel. The container having breathable bottom and / or sides is preferably a tray (bat) having breathable bottom and / or sides, and more preferably a tray having a mesh bottom and / or sides (mesh tray). The mesh is preferably either a woven mesh or a punched metal. The mesh size is preferably 2000 μm or less (ASTM standard 10 mesh or more), more preferably 595 μm or less (30 mesh or more), even more preferably 297 μm or less (50 mesh or more), even more preferably 177 μm or less (80 mesh or more), particularly preferably 149 μm or less (100 mesh or more), and particularly preferably 74 μm or less (200 mesh or more). Also, 25 μm or more (500 mesh or less) is preferable. When the mesh is a woven net, the weaving method may be, for example, plain weave, twill weave, plain tatami weave, or twill tatami weave. When the mesh is a punched metal, the aperture ratio is preferably 10% or more, more preferably 20% or more, and even more preferably 30% or more, and is preferably 95% or less.
[0080] The amount of the wet powder to be dried is set to 10 g / cm because it can more efficiently remove moisture and surfactant. 2 It is preferable that the thickness is less than 8 g / cm 2 More preferably, it is 5 g / cm or less. 2 More preferably, it is 3 g / cm or less. 2 It is particularly preferable that the density is 0.01 g / cm or less. 2 It is preferable that the concentration is 0.05 g / cm or more. 2 More preferably, it is 0.1 g / cm or more. 2 More preferably, it is equal to or greater than this.
[0081] The obtained granulated powder may be classified by a known method such as air classification. By classifying, fine particles having a very small particle size and coarse particles having a very large particle size can be removed to obtain a granulated powder having a desired average particle size or a desired particle size distribution.
[0082] The PTFE granulated powder of the present disclosure can be suitably used, for example, as a molding material in molding methods such as compression molding, ram extrusion molding, and isostatic compression molding.
[0083] Although the embodiments have been described above, it will be understood that various changes in form and details are possible without departing from the spirit and scope of the claims. EXAMPLES
[0084] The present disclosure will now be described in more detail with reference to examples, but the present disclosure is not limited to these examples.
[0085] Various physical properties were measured by the following methods.
[0086] <Moisture content> The mass of about 20 g of PTFE granulated powder was measured before and after heating at 150 °C for 2 hours, and calculated according to the following formula. Three samples were taken, each calculated, and then the average was obtained and the average value was adopted. Moisture content (mass%) = [(mass of PTFE granulated powder before heating (g)) - (mass of PTFE granulated powder after heating (g))] / (mass of PTFE granulated powder before heating (g)) × 100
[0087] <Z value> 200 g of PTFE granulated powder was filled into a mold with a diameter of 50 mm, held at a molding pressure of 300 kg / cm 2 for 5 minutes, and the obtained preform (diameter about 50 mm, thickness 50 mm) was heat-treated at 370 °C for 2 hours. The formed product was cut horizontally with a lathe at about 25 mm (center part) from the end, and the Z value at the center of the cut-out part was measured based on the Z value measurement method of the XYZ system defined by the International Commission on Illumination.
[0088] <Average particle size> Standard sieves of 10, 20, 32, 48, 60, and 80 mesh (inch mesh) were stacked in order from the top, the PTFE granulated powder was placed on the 10-mesh sieve, the sieve was vibrated to sequentially drop the finer PTFE granulated powder particles downward, and after determining the ratio of the PTFE granulated powder remaining on each sieve in mass%, the cumulative percentage of the remaining ratio (vertical axis) was plotted against the opening of each sieve (horizontal axis) on logarithmic probability paper, these points were connected with a straight line, and the particle size at which the ratio became 50 mass% on this straight line was determined and this value was taken as the average particle size.
[0089] <Apparent density> Measured in accordance with JIS K 6891.
[0090] <Average aspect ratio> The PTFE granulated powder was observed with a video microscope, image processing was performed on 50 or more randomly extracted particles, and it was determined from the average of the ratio of the major axis to the minor axis.
[0091] <Tensile strength and elongation> 5g of PTFE granulated powder was filled into a 97mm x 18mm mold, and the pressure was approximately 300kg / cm 2 Pressure was gradually applied until the temperature reached 370°C, and the pressure was maintained for another 2 minutes to produce a preform. The preform was removed from the mold and placed in an electric furnace maintained at 370°C, where it was sintered for 5.5 hours, and then cooled at 50°C / hr to obtain a sintered body. Test pieces were punched out from the sintered body using a JIS dumbbell No. 3, and the stress and elongation at break were measured using an autograph with a total load of 500 kg and a tensile speed of 200 mm / min in accordance with JIS K 6891-58.
[0092] <High-temperature volatiles> In accordance with JIS K 6891, the PTFE granulated powder was heated at 370°C for 2 hours, after which the mass was measured and calculated according to the following formula. High-temperature volatile matter (mass%) = [(mass (g) of PTFE granulated powder before heating) - (mass (g) of PTFE granulated powder after heating)] / (mass (g) of PTFE granulated powder before heating) x 100
[0093] <Flow rate> The measurement was carried out according to the method described in JP-A-3-259925. That is, as shown in FIG. 1 (corresponding to FIG. 3 of JP-A-3-259925), the measuring device uses upper and lower hoppers 31 and 32 supported on a support stand 42 with their centerlines aligned, as shown in FIG. 1 (corresponding to FIG. 3 of JP-A-3-259925). The upper hopper 31 has an inlet 33 with a diameter of 74 mm, an outlet 34 with a diameter of 12 mm, and a height of 123 mm from the inlet 33 to the outlet 34, and has a partition plate 35 at the outlet 34, which allows the powder inside to be appropriately held or dropped. The lower hopper 32 has an inlet 36 with a diameter of 76 mm, an outlet 37 with a diameter of 11 mm, and a height of 120 mm from the inlet 36 to the outlet 37, and has a partition plate 38 at the outlet 37 like the upper hopper. The distance between the upper and lower hoppers is adjusted so that the distance between the partition plates is 15 cm. In FIG. 1, 39 and 40 are outlet covers for each hopper, and 41 is a receiver for the dropped powder.
[0094] The flow rate is measured by leaving about 200 g of the powder to be measured in a room adjusted to 23.5 to 24.5°C for more than 4 hours, sieving it through a 10 mesh (mesh opening 1680 microns (μm)), and then returning it to the same temperature.
[0095] (I) First, put exactly one 30cc cup of the powder to be measured into the upper hopper 31, then immediately pull out the partition 35 to allow the powder to fall into the lower hopper. If the powder does not fall, poke it with a wire to make it fall. After the powder has completely fallen into the lower hopper 32, leave it for 15±2 seconds, then pull out the partition 38 of the lower hopper and observe whether the powder flows down from the outlet 37. If 99% by mass or more of the powder has flowed down within 8 seconds, it is judged to have fallen.
[0096] (II) Repeat the same measurement three times to see if it flows, and if it flows two or more times out of the three, judge the fluidity as "good", and if it does not flow even once, judge the fluidity as "poor". If it flows only once out of the three, repeat the same measurement two more times, and if it flows both times, judge the fluidity of the powder as "good", otherwise judge the fluidity as "poor".
[0097] (III) For powders judged to have "good" fluidity in the above measurements, place two cups of the same 30cc capacity powder into the upper hopper and measure in the same manner as above. If the result is "good" fluidity, increase the number of cups of powder one by one, and continue measuring up to a maximum of eight cups until the result is "poor." For each measurement, the powder that flowed out of the lower hopper in the previous measurement may be reused.
[0098] (IV) In the above measurements, the more PTFE powder is used, the less likely it is to flow off.
[0099] Therefore, the "fluidity" of the powder is determined by subtracting 1 from the number of cups when the fluidity is "poor."
[0100] <Coloring of molded products> Based on the Z value measured above, the evaluation was performed according to the following criteria. ◎: Z value is 95 or more ○: Z value is 90 or more and less than 95 ×: Z value is less than 90
[0101] <Crack resistance> 200g of PTFE granulated powder was filled into a mold with an outer diameter of 50mm and an inner diameter of 20mm, and the molding pressure was 300kg / cm 2 The resulting preform (outer diameter approximately 50 mm, inner diameter 20 mm, thickness 50 mm) was heated to 370°C and held at 370°C for 5.5 hours, after which it was cooled to 40°C at 50°C / hr. A 0.1 mm thick film was cut from the molded product on a lathe, and the number of cracks was visually confirmed and then converted into the number of cracks per 100 g for evaluation. Crack resistance (pcs / 100g) = (number of cracks in film (pcs)) / (film weight (g)) x 100
[0102] Example 1 2.0 kg of PTFE molding powder with an average particle size of 50 μm obtained by suspension polymerization was placed in a ribbon blender and mixed with surfactant A (H-(OCH2CH2CH2) n -(OCH2CH2) m 0.8 kg of an aqueous solution of 0.4-hydroxyphenyl-2,4-trimethylsilyl-1 ...
[0103] Examples 2 to 4 and Comparative Example 1 A PTFE granulated powder was obtained in the same manner as in Example 1, except that the type of surfactant was changed as shown in Table 1.
[0104] Comparative Example 2 A PTFE granulated powder was obtained in the same manner as in Example 3, except that the drying conditions were changed as shown in Table 1.
[0105] Comparative Example 3 A PTFE granulated powder was obtained in the same manner as in Example 4, except that the drying conditions were changed as shown in Table 1.
[0106] The PTFE granulated powders obtained above were evaluated by the above-mentioned methods. The results are shown in Table 1.
[0107] [Table 1]
[0108] The abbreviations in the table are as follows. A: H-(OCH2CH2CH2) n -(OCH2CH2) m -OH B:C 12 H 25 -O-(CH2CH2O)9-H C:C 12 H 25 -O-(CH2CH2O)9-H (The alkyl group structure is different from that of surfactant B.) D:C 12 H 25 -N + (CH3)2-O - E:C 12 H 25 -SO3Na [Explanation of symbols]
[0109] 31: Upper hopper 32: Lower hopper 33, 36: Entrance 34, 37: Exit 35, 38: Partition plate 39, 40: Exit cover 41: Receiver 42: Support stand
Claims
1. Polytetrafluoroethylene granulated powder having a moisture content of 0.020 mass% or less and a Z value of 90 or more.
2. 2. The polytetrafluoroethylene granulated powder according to claim 1, wherein the granulating binder used in the granulation is an aqueous solution of a nonionic surfactant.
3. The polytetrafluoroethylene granulated powder according to claim 2, wherein the aqueous solution of a nonionic surfactant is at least one selected from the group consisting of polyoxyethylene alkyl ethers, segmented polyalkylene glycols, and alkylamine oxides.
4. The polytetrafluoroethylene granulated powder according to claim 1 or 2, having an average particle size of 200 to 700 μm.
5. The polytetrafluoroethylene granulated powder according to claim 4, having an average particle size of 200 to 600 μm.
6. 3. The polytetrafluoroethylene granulated powder according to claim 1, having an apparent density of 0.60 to 0.90 g / ml.
7. 3. The polytetrafluoroethylene granulated powder according to claim 1 or 2, having an average aspect ratio of 1.25 or less.
8. 3. The polytetrafluoroethylene granulated powder according to claim 1 or 2, having a high-temperature volatile matter content of 0.050% by mass or less.
9. 3. The polytetrafluoroethylene granulated powder according to claim 1, wherein the moisture content is 0.001% by mass or less.
Citation Information
Patent Citations
JP1972012332A
Method for producing filler-containing polytetrafluoroethylene particulate powder and particulate powder obtained by the method
JP1992218534A
Filled polytetrafluoroethylene granular particle and its production
JP1998251413A
Modified polytetrafluoroethylene particulate powder
JP1998259252A
Granular filled polytetrafluoroethylene powder and production thereof
JP1998298299A