Chemically resistant polycarbonate modified plastics and methods for making the same
By modifying polycarbonate and polyphenylene sulfide to form a bicontinuous phase, and combining the hydrophobic barrier of siloxane segments and fluorinated segments with a nano-reinforced filler network, the stress cracking and swelling deformation problems of polycarbonate materials under strong solvent and high temperature environments are solved, and the chemical resistance and flame retardancy of the material are comprehensively improved, making it suitable for high-end equipment in chemical, energy and other fields.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- DONGGUAN XINLUN PLASTIC TECH CO LTD
- Filing Date
- 2025-09-05
- Publication Date
- 2026-04-10
AI Technical Summary
Existing polycarbonate materials are prone to stress cracking and swelling deformation under strong solvent, high temperature and stress coupling environments. Furthermore, existing photocurable resins have poor solvent resistance and cannot achieve both flame retardancy and toughness in additive manufacturing scenarios, thus failing to meet the long-term service requirements of chemical equipment, aerospace and other fields.
Modified polycarbonate and polyphenylene sulfide form a bicontinuous phase, which combines siloxane segments and fluorinated segments to form a hydrophobic barrier. Nano-reinforced fillers construct a physical barrier network. Through photothermal dual curing process, the material is chemically bonded with a flame-retardant photocuring agent, thereby synergistically improving the material's chemical resistance, mechanical properties, and flame retardant properties.
It enables polycarbonate materials to serve for extended periods in high-temperature, strong solvent environments, exhibiting excellent chemical resistance, mechanical properties, and flame retardant properties. It is suitable for photopolymer additive manufacturing, meeting the needs of high-end equipment in fields such as chemical engineering and energy.
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of non-metallic additive materials, in particular to a chemical-resistant polycarbonate modified plastic and a preparation method thereof. BACKGROUND
[0002] Polycarbonate materials are widely used in engineering fields due to their excellent mechanical properties and transparency, but they are prone to stress cracking, swelling deformation and other problems in strong solvent, high temperature and stress coupling environments. Traditional modification methods such as blending rubber toughening improve impact resistance, but sacrifice chemical resistance; while adding inorganic fillers enhances rigidity, but often leads to deterioration of processing fluidity. Especially for additive manufacturing scenarios, existing photocurable resins generally have poor solvent resistance, and it is difficult to balance flame retardance and toughness, and other defects, which cannot meet the long-term service requirements of complex structure functional parts in extreme environments in chemical equipment, aerospace and other fields. Therefore, an innovative material system with multiple protection mechanisms and additive manufacturing adaptability is urgently needed. SUMMARY
[0003] The purpose of the present application is to provide a chemical-resistant polycarbonate modified plastic and a preparation method thereof to solve the problems raised in the background art.
[0004] To achieve the above-mentioned purpose, the present application provides the following technical solutions:
[0005] A chemical-resistant polycarbonate modified plastic comprises the following raw materials by weight:
[0006] Modified polycarbonate 60-70 parts;
[0007] Polyphenylene sulfide 20-25 parts;
[0008] Solvent-resistant diluent 20-25 parts;
[0009] Nano-enhanced filler 8-12 parts;
[0010] Boron nitride nanosheet 2-4 parts;
[0011] Short carbon fiber 4-6 parts;
[0012] Nano-barium sulfate 1-2 parts;
[0013] Flame-retardant photocuring agent 4-6 parts;
[0014] Chemical-resistant toughening agent 10-15 parts;
[0015] Antioxidant 0.5-1 part;
[0016] Leveling agent 0.5-1 part;
[0017] Ultraviolet absorber 0.3-0.5 parts.
[0018] Further, the preparation steps of the modified polycarbonate are as follows:
[0019] The bisphenol A polycarbonate particles are vacuum dried at 100-120℃ for 4h, and the hydroxyl-terminated polydimethylsiloxane is added into the internal mixer, and pre-mixed at 175-185℃ for 8-12min, and then 4,4-diphenyl methane diisocyanate and dibutyltin dilaurate are added, and reacted at 175-185℃ under nitrogen protection for 12-18min, and then reacted at 190-210℃ under nitrogen protection for another 6-10min, and the torque peak value of the internal mixer is ensured to be ≥35N·m, and the torque fluctuation is ≤±2%, and the obtained melt is granulated by a twin-screw extruder to obtain the modified polycarbonate;
[0020] The molecular weight of the hydroxyl-terminated polydimethylsiloxane is 2000;
[0021] The mass ratio of the bisphenol A polycarbonate, the hydroxyl-terminated polydimethylsiloxane, the 4,4-diphenyl methane diisocyanate and the dibutyltin dilaurate is (55-65):(14-16):(4-6):0.05.
[0022] It should be noted that the polydimethylsiloxane is introduced into the polycarbonate molecular chain by block copolymerization strategy, and a protective barrier is formed by using the hydrophobicity and flexibility of the siloxane segment: the hydrophobic group shields the erosion of polar solvents, and the flexible segment reduces the internal stress, thereby inhibiting the hydrolysis of the ester bond of the polycarbonate and stress cracking. The modified polycarbonate forms a bicontinuous phase with the polyphenylene sulfide, the high solvent resistance phase of the polyphenylene sulfide blocks the penetration of chemical media, and the siloxane segment enhances the compatibility of the phase interface, thereby synergistically improving the overall chemical fatigue resistance.
[0023] Further, the preparation steps of the solvent-resistant diluent are as follows:
[0024] Trimethylolpropane triacrylate is mixed with tridecafluorooctyltriethoxysilane, and then titanium tetraisopropylate and 2,6-di-tert-butyl-p-cresol polymerization inhibitor are added, and the nitrogen is replaced for three times, and then the mixture is reacted at 75-85℃ for 2-3h, and then the temperature is increased to 95-105℃ and the pressure is reduced to-0.09MPa for 2-3h, and then the product is filtered through a 0.45μm filter membrane to obtain the solvent-resistant diluent;
[0025] The mass ratio of the trimethylolpropane triacrylate, the tridecafluorooctyltriethoxysilane, the titanium tetraisopropylate and the 2,6-di-tert-butyl-p-cresol polymerization inhibitor is (68-72):(28.8-31.2):0.3:(0.09-0.11).
[0026] It should be noted that based on the ester exchange reaction, the perfluoroalkyl group is grafted to the acrylate skeleton, and the fluorine-containing segment migrates to the surface during curing to form a low-energy enrichment layer, which significantly reduces the wetting and penetration tendency of the solvent at the material interface. Solvent-resistant diluents participate in the construction of the polymer network during photocuring, and the fluorine-containing segments of the modified polycarbonate and the siloxane segments produce a synergistic reduction in surface energy, which collectively enhances the material's ability to repel polar solvents while maintaining low viscosity to meet the needs of additive manufacturing.
[0027] Further, the preparation steps of the nano-reinforced filler are as follows:
[0028] The hollow titanium dioxide microspheres are dispersed in an ethanol solution, gamma-methacryloxypropyltrimethoxysilane is added, the pH is adjusted to 4.5-5, hydrolysis is carried out at 75-85℃ for 1-2h, multi-walled carbon nanotubes are added and ultrasonic dispersion is carried out for 20-40min, reaction is carried out at 100-105℃ for 3-4h, centrifugation and washing are carried out, and the nano-reinforced filler is obtained;
[0029] The mass fraction of ethanol in the ethanol solution is 70-90%;
[0030] The mass ratio of the hollow titanium dioxide microspheres, gamma-methacryloxypropyltrimethoxysilane, and multi-walled carbon nanotubes is (35-45):(8-12):(8-12).
[0031] It should be noted that by constructing a reactive interface on the surface of the titanium dioxide microspheres with a silane coupling agent, and by means of hydroxyl condensation and van der Waals force, the carbon nanotubes are physically anchored, forming a core-shell heterostructure with rigid microspheres and ductile nanotubes. The nano-reinforced filler realizes multi-level toughening in the chemical-resistant polycarbonate modified plastic by resisting compression deformation through microspheres and bridging dispersed tensile stress through carbon nanotubes, its formed three-dimensional interpenetrating network increases the tortuosity of solvent diffusion, and the surface acrylate groups chemically bond with the resin matrix to eliminate interface defects and block the medium penetration channel.
[0032] Further, the preparation steps of the flame-retardant photocuring agent are as follows:
[0033] The preparation steps of the flame-retardant photocuring agent are as follows:
[0034] 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide and 2-hydroxy-4-(methacryloyloxy) benzophenone are dissolved in toluene, dicumyl peroxide is added, refluxed at 100-120℃ for 4-8h, rotary evaporation, drying, and the flame-retardant photocuring agent is obtained;
[0035] The use amount ratio of the 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide, 2-hydroxy-4-(methacryloyloxy)benzophenone, toluene and dicumyl peroxide is 50g:50g:300mL:0.5g.
[0036] It should be noted that the P-H bond of the phosphorus flame-retardant unit (9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide) is covalently bonded to the carbon-carbon double bond of the ultraviolet light absorbing group (2-hydroxy-4-(methacryloyloxy)benzophenone) through a free radical addition reaction to form a multifunctional integrated compound. The phosphorus element in the flame-retardant photocuring agent releases free radicals at high temperatures to capture active oxygen in combustion chain reactions, plays a gas phase flame-retardant role, and inhibits combustion; at the same time, the methacryloyloxy group participates in the construction of the crosslinking network, anchors the phosphorus flame-retardant unit, and the residual phenolic hydroxyl group forms hydrogen bonds with the polar groups of the resin to cooperatively reduce the interfacial energy barrier, block the solvent permeation microchannels, and both inhibit solvent permeation along the interface and achieve the synergistic reinforcement of flame retardancy and chemical resistance under the premise of ensuring photocuring efficiency.
[0037] Further, the chemical-resistant toughening agent is a fluorinated modified polyurethane acrylate.
[0038] Further, the boron nitride nanosheet needs to be surface modified by a KH560 silane coupling agent.
[0039] Further, the short carbon fiber needs to be surface treated by acid immersion and surface modified by polydopamine.
[0040] Further, the antioxidant is one or several of a phosphite type antioxidant and a hindered phenol type antioxidant.
[0041] Further, the leveling agent is a polyether modified fluorine-containing polydimethylsiloxane type leveling agent.
[0042] Further, the anti-ultraviolet aging agent is a benzotriazole type ultraviolet absorber.
[0043] A preparation step of a chemical-resistant polycarbonate modified plastic is as follows:
[0044] S1, 60-70 parts by weight of modified polycarbonate, 20-25 parts by weight of polyphenylene sulfide, 4-6 parts by weight of flame retardant photocuring agent, 0.5-1 parts by weight of antioxidant and 0.3-0.5 parts by weight of ultraviolet absorber are weighed and added into a planetary mixer, stirred at 150-250 r / min for 10-15 min at 25 DEG C; 20-25 parts by weight of solvent-resistant diluent is weighed and added, stirred at 150-250 r / min for 1-3 min, 8-12 parts by weight of nano-enhanced filler, 2-4 parts by weight of boron nitride nanosheet, 4-6 parts by weight of short carbon fiber and 1-2 parts by weight of nano-barium sulfate are added, and stirred at 150-250 r / min for 1-3 min; the speed is reduced to 40-60 r / min, 10-15 parts by weight of chemical toughening agent and 0.5-1 parts by weight of leveling agent are weighed and added, and stirred for 3-5 min to obtain a premix;
[0045] S2, the premix is transferred to a three-roll mill, the roll spacing is 50 mu m, the roll speed ratio is 1:3:9, and the circulation is 3 times to obtain a premix; the premix is placed in a vacuum defoaming machine, the vacuum degree is-0.095 MPa, 25 DEG C, and the defoaming time is 15 min to obtain a crude resin material;
[0046] Further, the bubble residue in the crude resin material in step S2 is less than 0.1%;
[0047] S3, the crude resin material is poured into a resin tank, a DLP photocuring printer is turned on, a 405 nm light source is selected, the light intensity is set to 12-16 mW / cm2, a designed master model file is imported, the layer thickness is set to 1-10 mm, after printing, the obtained crude master particle is soaked in 30-35 DEG C warm water for 20-40 min, taken out and placed at 25 DEG C for 20-40 min, placed in a 60 DEG C oven and dried for 30-60 min, the dried crude master particle is placed in an ultraviolet curing box, set to 365 nm wavelength and 8-12 mW / cm2 intensity, irradiated for 15-20 min, placed in a 45-50 DEG C oven for 40-80 min, the oven is heated to 80 DEG C and placed for 90-150 min, and naturally cooled to room temperature to obtain a chemical-resistant polycarbonate modified plastic;
[0048] Further, in step S3, an infrared thermal imager is aimed at the printing area to ensure that the temperature is lower than 60 DEG C, if the temperature is too high, the printing is paused and the light intensity is reduced or the interlayer cooling time is increased.
[0049] Compared with the prior art, the present application has the following beneficial effects:
[0050] The siloxane block of the modified polycarbonate forms a hydrophobic barrier with the solvent-resistant diluent, the core-shell nano-reinforced filler constructs a physical barrier network, and cooperatively resists strong solvent erosion and environmental stress cracking; the light and heat dual-curing process ensures molding, simultaneously excites chemical bonding of the flame-retardant light-curing agent and the matrix, and endows the chemical-resistant polycarbonate modified plastic with persistent flame retardance; the short-cut carbon fiber and boron nitride nanosheet synergistically improve the mechanical strength and thermal stability after surface modification. DETAILED DESCRIPTION
[0051] The technical solutions in the embodiments of the present application will be described clearly and completely below. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.
[0052] Table 1
[0053] Material Source Bisphenol A polycarbonate Aladdin P301659 Hollow titanium dioxide microspheres Xi'an Ruiyi Biological Technology 124531 Multi-walled carbon nanotubes Nanjing Xianfeng Nanometer Material Technology XFM31 Nano hexagonal boron nitride sheet Beijing Naisi Biochemical Technology R095879 Carbon fiber Nantong Wayon New Material T300 / 400 / 700 Nano barium sulfate Foshan Bozhen Chemical Industry BZ-3000 Antioxidant BASF Antioxidant 1010 Leveling agent Hubei Xinyu Hong Biological Medicine Technology S112298605 Ultraviolet absorber BASF Tinuvin 329
[0054] Preparation Example 1
[0055] The preparation steps of the modified polycarbonate are as follows:
[0056] The bisphenol A polycarbonate particles are vacuum dried at 110 DEG C for 4 h, and are added to a mixing mill together with the hydroxyl-terminated polydimethylsiloxane. The mixture is pre-mixed at 180 DEG C for 10 min, and then 4,4-diphenyl methane diisocyanate and dibutyl tin dilaurate are added. After reaction at 180 DEG C under nitrogen protection for 15 min, the reaction is continued at 200 DEG C under nitrogen protection for another 8 min. The torque peak value of the mixing mill is ensured to be greater than or equal to 35 N·m, and the torque fluctuation is ensured to be less than or equal to ± 2% during the whole process. The obtained melt is granulated by a twin-screw extruder, with the feeding section at 215 DEG C, the melting section at 255 DEG C, the mixing section at 275 DEG C, the exhaust section at 270 DEG C, the homogenizing section at 250 DEG C, and the die at 265 DEG C, to obtain the modified polycarbonate.
[0057] The molecular weight of the hydroxyl-terminated polydimethylsiloxane is 2000.
[0058] The mass ratio of the bisphenol A polycarbonate, the hydroxyl-terminated polydimethylsiloxane, the 4,4-diphenyl methane diisocyanate and the dibutyl tin dilaurate is 60:15:5:0.05.
[0059] Preparation Example 2
[0060] The preparation steps of the solvent-resistant diluent are as follows:
[0061] Trimethylolpropane triacrylate is mixed with tridecafluorooctyltriethoxysilane, tetraisopropyl titanate and 2,6-di-tert-butyl-p-cresol polymerization inhibitor, nitrogen is replaced three times, reaction is carried out at 80℃ for 2h, the temperature is raised to 100℃, the vacuum system is opened, and the step-by-step decompression method is adopted: the vacuum degree is slowly adjusted to-0.05MPa first, maintained for 30min, after the reaction system is stable and no violent bubbles are generated, the vacuum degree is slowly increased to-0.07MPa, maintained for 1h, and then the vacuum degree is slowly increased to-0.08MPa, maintained for 90min, the product is filtered through a 0.45μm filter membrane to obtain the solvent-resistant diluent;
[0062] During the adjustment of the vacuum degree, attention should be paid to the foaming of the system, if there is a tendency of violent boiling, the vacuum should be paused or the vacuum degree should be slightly adjusted to be lower, and then the pressure should be slowly increased after the system is stable;
[0063] The mass ratio of the trimethylolpropane triacrylate, tridecafluorooctyltriethoxysilane, tetraisopropyl titanate and 2,6-di-tert-butyl-p-cresol polymerization inhibitor is 70:30:0.3:0.1.
[0064] Preparation Example 3
[0065] The preparation steps of the nano-enhanced filler are as follows:
[0066] Hollow titanium dioxide microspheres are dispersed in an ethanol solution, γ-methacryloyloxypropyltrimethoxysilane is added, the pH is adjusted to 5, hydrolysis is carried out at 80℃ for 2h, multi-walled carbon nanotubes are added and ultrasonic dispersion is carried out for 30min, reaction is carried out at 100℃ for 3h, and centrifugation and washing are carried out to obtain the nano-enhanced filler;
[0067] The mass fraction of ethanol in the ethanol solution is 80%;
[0068] The mass ratio of the hollow titanium dioxide microspheres, the ethanol solution, the γ-methacryloyloxypropyltrimethoxysilane and the multi-walled carbon nanotubes is 40:800:10:10.
[0069] Preparation Example 4
[0070] The preparation steps of the flame-retardant photocuring agent are as follows:
[0071] 9,10-Dihydro-9-oxa-10-phosphaphenanthrene-10-oxide is dissolved in toluene with 2-hydroxy-4-(methacryloyloxy)benzophenone, dicumyl peroxide is added, reflux is carried out at 110℃ for 6h, rotary evaporation is carried out, drying is carried out to obtain the flame-retardant photocuring agent;
[0072] The use amount ratio of the 9,10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide, 2-hydroxy-4-(methacryloyloxy)benzophenone, toluene and dicumyl peroxide is 50g:50g:300mL:0.5g.
[0073] Preparation Example 5
[0074] The preparation steps of the chemical-resistant toughening agent are as follows:
[0075] The polyurethane acrylate is dehydrated at 80℃ under reduced pressure for 1h, full-fluorodecyl triethoxysilane and glacial acetic acid are added, and reaction is carried out at 90℃ for 4h to obtain the chemical-resistant toughening agent.
[0076] The polyurethane acrylate is purchased from Jining Huakai Resin Co., Ltd., and the product code is AL669692508244.
[0077] The use amount ratio of the polyurethane acrylate, full-fluorodecyl triethoxysilane and glacial acetic acid is 100g:20g:0.1mL.
[0078] Preparation Example 6
[0079] The preparation steps of the boron nitride nanosheet are as follows:
[0080] The nanohexagonal boron nitride sheet is dispersed in an ethanol solution, KH560 silane coupling agent is added, the pH is adjusted to 5, and reaction is carried out at 80℃ for 4h, centrifugal washing and drying at 120℃ for 2h to obtain the boron nitride nanosheet.
[0081] The mass fraction of ethanol in the ethanol solution is 80%.
[0082] The use amount ratio of the nanohexagonal boron nitride sheet, ethanol solution and KH560 silane coupling agent is 10g:200mL:1.5g.
[0083] Preparation Example 7
[0084] The preparation steps of the short carbon fiber are as follows:
[0085] The carbon fiber is immersed in concentrated nitric acid with a mass fraction of 65%, treated at 60℃ for 30min, washed with water to neutral, dried at 105℃, coated with a dopamine solution, and naturally dried for 24h to form a polydopamine coating to obtain the short carbon fiber.
[0086] The dopamine solution is a Tris buffer solution with a dopamine concentration of 2g / L and a pH of 8.5.
[0087] The use amount ratio of the carbon fiber, concentrated nitric acid and dopamine solution is 10g:100mL:100mL.
[0088] Example 1
[0089] A preparation procedure of a chemical-resistant polycarbonate modified plastic is as follows:
[0090] S1, 65 parts of modified polycarbonate, 22.5 parts of polyphenylene sulfide, 5 parts of flame-retardant photocuring agent, 0.8 parts of antioxidant and 0.4 parts of ultraviolet absorber were weighed by weight parts, added into a planetary mixer, stirred at 25°C at a speed of 200 r / min for 12 min; 22.5 parts of solvent-resistant diluent were weighed by weight parts and added, stirred at a speed of 200 r / min for 2 min, 10 parts of nano-enhanced filler, 3 parts of boron nitride nanosheet, 5 parts of short carbon fiber and 1.5 parts of nano-barium sulfate were added, stirred at a speed of 200 r / min for 2 min; the speed was reduced to 50 r / min, 12.5 parts of chemical-resistant toughening agent and 0.8 parts of leveling agent were weighed by weight parts and added, stirred for 4 min to obtain a premix;
[0091] The polyphenylene sulfide is purchased from Merck Chemical, item number 182354.
[0092] S2, the premix was transferred to a three-roll mill, the roll spacing was 50 μm, the roll speed ratio was 1:3:9, and the circulation was 3 times to obtain a premix; the premix was placed in a vacuum defoaming machine, the vacuum degree was-0.095 MPa, 25°C, and defoaming was carried out for 15 min to obtain a crude resin material;
[0093] S3, the crude resin material was poured into a resin tank, a DLP photocuring printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed masterbatch model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60°C, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after the printing was completed, the obtained crude masterbatch was soaked in 35°C warm water for 30 min, taken out and placed at 25°C for 30 min, placed in a 60°C oven for drying for 45 min, the dried crude masterbatch was placed in an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50°C oven for 60 min, the oven was heated to 80°C and placed for 120 min, and naturally cooled to room temperature to obtain a chemical-resistant polycarbonate modified plastic.
[0094] Some raw materials involved in the embodiment are prepared by the substances prepared in Preparation Examples 1-7, and the other embodiments are the same.
[0095] Example 2
[0096] A preparation procedure of a chemical-resistant polycarbonate modified plastic is as follows:
[0097] S1, 60 parts of modified polycarbonate, 20 parts of polyphenylene sulfide, 4 parts of flame-retardant photocuring agent, 0.5 parts of antioxidant and 0.3 parts of ultraviolet absorber were weighed by weight parts, added into a planetary stirrer, stirred at 25°C at a speed of 200 r / min for 10 min; 20 parts of solvent-resistant diluent were weighed by weight parts and added, stirred at a speed of 200 r / min for 2 min, 8 parts of nano-enhanced filler, 2 parts of boron nitride nanosheet, 4 parts of short carbon fiber and 1 part of nano-barium sulfate were added, stirred at a speed of 200 r / min for 2 min; the speed was reduced to 50 r / min, 10 parts of chemical-resistant toughening agent and 0.5 parts of leveling agent were weighed by weight parts and added, stirred for 4 min to obtain a premix;
[0098] S2, the premix was transferred to a three-roll grinder, the roll spacing was 50 μm, the roll speed ratio was 1:3:9, and the circulation was 3 times to obtain a premix; the premix was placed in a vacuum defoaming machine, the vacuum degree was-0.095 MPa, 25°C, and defoaming was carried out for 15 min to obtain a crude resin material; the bubble residue in the crude resin material was less than 0.1%;
[0099] S3, the crude resin material was poured into a resin tank, a DLP photocuring printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed masterbatch model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60°C, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after the printing was completed, the obtained crude masterbatch was soaked in 35°C warm water for 30 min, taken out and placed at 25°C for 30 min, placed in a 60°C oven for drying for 45 min, the dried crude masterbatch was placed in an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50°C oven for 60 min, the oven was heated to 80°C and placed for 120 min, and naturally cooled to room temperature to obtain a chemical-resistant polycarbonate modified plastic.
[0100] Example 3
[0101] A preparation step of a chemical-resistant polycarbonate modified plastic is as follows:
[0102] S1, 70 parts of modified polycarbonate, 25 parts of polyphenylene sulfide, 6 parts of flame-retardant photocuring agent, 1 part of antioxidant and 0.5 part of ultraviolet absorber were weighed by weight parts, added into a planetary stirrer, stirred at 25℃ for 15 min at a speed of 200 r / min; 25 parts of solvent-resistant diluent were weighed by weight parts and added, stirred at a speed of 200 r / min for 3 min, 12 parts of nano-enhanced filler, 4 parts of boron nitride nanosheet, 6 parts of chopped carbon fiber and 2 parts of nano-barium sulfate were added, stirred at a speed of 200 r / min for 3 min; the speed was reduced to 50 r / min, 15 parts of chemical-resistant toughening agent and 1 part of leveling agent were weighed by weight parts and added, stirred for 5 min, to obtain a premix liquid;
[0103] S2, the premix liquid was transferred to a three-roll grinder, the roll spacing was 50 μm, the roll speed ratio was 1:3:9, and the circulation was 3 times, to obtain a premix; the premix was placed in a vacuum defoaming machine, the vacuum degree was-0.095 MPa, 25℃, and defoaming was carried out for 15 min, to obtain a crude resin material; the bubble residue in the crude resin material was less than 0.1%;
[0104] S3, the crude resin material was poured into a resin tank, a DLP photocuring printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed masterbatch model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60℃, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after the printing was completed, the obtained crude masterbatch was soaked in 35℃ warm water for 30 min, taken out and placed at 25℃ for 30 min, placed in a 60℃ oven for drying for 45 min, the dried crude masterbatch was placed in an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50℃ oven for 60 min, the oven was heated to 80℃ and placed for 120 min, naturally cooled to room temperature, to obtain a chemical-resistant polycarbonate modified plastic.
[0105] Comparative Example 1
[0106] A preparation step of a chemical-resistant polycarbonate modified plastic is as follows:
[0107] S1, 65 parts by weight of bisphenol A polycarbonate, 22.5 parts by weight of polyphenylene sulfide, 5 parts by weight of flame-retardant photocuring agent, 0.8 parts by weight of antioxidant and 0.4 parts by weight of ultraviolet absorber were weighed and added to a planetary mixer, stirred at 25°C at a speed of 200 r / min for 12 min; 22.5 parts by weight of solvent-resistant diluent was weighed and added, stirred at a speed of 200 r / min for 2 min, 10 parts by weight of nano-enhanced filler, 3 parts by weight of boron nitride nanosheet, 5 parts by weight of short carbon fiber and 1.5 parts by weight of nano-barium sulfate were added, and stirred at a speed of 200 r / min for 2 min; the speed was reduced to 50 r / min, 12.5 parts by weight of chemical-resistant toughening agent and 0.8 parts by weight of leveling agent were weighed and added, and stirred for 4 min to obtain a premix;
[0108] S2, the premix was transferred to a three-roll mill with a roll spacing of 50 μm, a roll speed ratio of 1:3:9, and a cycle of 3 times to obtain a premix; the premix was placed in a vacuum defoaming machine with a vacuum degree of -0.095 MPa at 25°C and defoamed for 15 min to obtain a crude resin material; the bubble residue in the crude resin material was less than 0.1%;
[0109] S3, the crude resin material was poured into a resin tank, a DLP photocuring printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed master model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60°C, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after printing, the obtained crude master granules were soaked in 35°C warm water for 30 min, taken out and placed at 25°C for 30 min, placed in a 60°C oven for drying for 45 min, the dried crude master granules were placed in an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50°C oven for 60 min, the oven was heated to 80°C and placed for 120 min, and naturally cooled to room temperature to obtain the chemical-resistant polycarbonate modified plastic.
[0110] The difference between the present comparative example and Example 1 is that the modified polycarbonate is not added, but an unmodified bisphenol A polycarbonate is added instead.
[0111] Comparative Example 2
[0112] A preparation step of a chemical-resistant polycarbonate modified plastic is as follows:
[0113] S1, 65 parts of modified polycarbonate, 22.5 parts of polyphenylene sulfide, 5 parts of flame-retardant photocuring agent, 0.8 parts of antioxidant and 0.4 parts of ultraviolet absorber were weighed by weight parts, added into a planetary mixer, stirred at 25°C at a speed of 200 r / min for 12 min; 22.5 parts of trimethylolpropane triacrylate were weighed and added, stirred at a speed of 200 r / min for 2 min, 10 parts of nano-enhanced filler, 3 parts of boron nitride nanosheet, 5 parts of short carbon fiber and 1.5 parts of nano-barium sulfate were added, stirred at a speed of 200 r / min for 2 min; the speed was reduced to 50 r / min, 12.5 parts of chemical-resistant toughening agent and 0.8 parts of leveling agent were weighed and added, stirred for 4 min to obtain a premix;
[0114] S2, the premix was transferred to a three-roll mill, the roll spacing was 50 μm, the roll speed ratio was 1:3:9, and the circulation was 3 times to obtain a premix; the premix was placed in a vacuum defoaming machine, the vacuum degree was-0.095 MPa, 25°C, and defoaming was carried out for 15 min to obtain a crude resin material; the bubble residue in the crude resin material was less than 0.1%;
[0115] S3, the crude resin material was poured into a resin tank, a DLP photocuring printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed master model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60°C, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after the printing was completed, the obtained crude master granules were soaked in 35°C warm water for 30 min, taken out and placed at 25°C for 30 min, put into a 60°C oven and dried for 45 min, the dried crude master granules were put into an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50°C oven for 60 min, the oven was heated to 80°C and placed for 120 min, and naturally cooled to room temperature to obtain a chemical-resistant polycarbonate modified plastic.
[0116] The difference between the present comparative example and example 1 is that the solvent-resistant diluent is not added, but trimethylolpropane triacrylate is added as a diluent instead.
[0117] Comparative Example 3
[0118] A preparation step of a chemical-resistant polycarbonate modified plastic is as follows:
[0119] S1, 65 parts by weight of modified polycarbonate, 22.5 parts by weight of polyphenylene sulfide, 5 parts by weight of flame-retardant photocuring agent, 0.8 parts by weight of antioxidant and 0.4 parts by weight of ultraviolet absorber were weighed and added to a planetary mixer, stirred at 25°C at a speed of 200 r / min for 12 min; 22.5 parts by weight of solvent-resistant diluent was weighed and added, stirred at a speed of 200 r / min for 2 min, 10 parts of hollow titanium dioxide microspheres, 3 parts of boron nitride nanosheet, 5 parts of short carbon fiber and 1.5 parts of nano-barium sulfate were added, stirred at a speed of 200 r / min for 2 min; the speed was reduced to 50 r / min, 12.5 parts by weight of chemical-resistant toughening agent and 0.8 parts by weight of leveling agent were weighed and added, stirred for 4 min to obtain a premix;
[0120] S2, the premix was transferred to a three-roll mill, the roll spacing was 50 μm, the roll speed ratio was 1:3:9, and the circulation was 3 times to obtain a premix; the premix was placed in a vacuum defoaming machine, the vacuum degree was-0.095 MPa, 25°C, and defoaming was carried out for 15 min to obtain a crude resin material; the bubble residue in the crude resin material was less than 0.1%;
[0121] S3, the crude resin material was poured into a resin tank, a DLP photocuring printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed master model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60°C, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after printing, the obtained crude master granules were soaked in 35°C warm water for 30 min, taken out and placed at 25°C for 30 min, placed in a 60°C oven for drying for 45 min, the dried crude master granules were placed in an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50°C oven for 60 min, the oven was heated to 80°C and placed for 120 min, and naturally cooled to room temperature to obtain a chemical-resistant polycarbonate modified plastic.
[0122] The difference between the present comparative example and example 1 is that no nano-enhanced filler is added, but an unmodified hollow titanium dioxide microsphere is added instead.
[0123] Comparative Example 4
[0124] A preparation step of a chemical-resistant polycarbonate modified plastic is as follows:
[0125] S1, 65 parts of modified polycarbonate, 22.5 parts of polyphenylene sulfide, 5 parts of 2-hydroxy-4-(methacryloyloxy) benzophenone, 0.8 parts of antioxidant and 0.4 parts of ultraviolet absorber were weighed and added into a planetary mixer, stirred at 25°C at a speed of 200 r / min for 12 min; 22.5 parts of solvent-resistant diluent were weighed and added at a speed of 200 r / min for 2 min, 10 parts of nano-enhanced filler, 3 parts of boron nitride nanosheet, 5 parts of short carbon fiber and 1.5 parts of nano-barium sulfate were added at a speed of 200 r / min for 2 min; the speed was reduced to 50 r / min, 12.5 parts of chemical toughening agent and 0.8 parts of leveling agent were weighed and added, stirred for 4 min to obtain a premix;
[0126] S2, the premix was transferred to a three-roll mill with a roll spacing of 50 μm, a roll speed ratio of 1:3:9 and a cycle of 3 times to obtain a premix; the premix was placed in a vacuum defoaming machine with a vacuum degree of -0.095 MPa at 25°C and defoamed for 15 min to obtain a crude resin material; the bubble residue in the crude resin material was less than 0.1%;
[0127] S3, the crude resin material was poured into a resin tank, a DLP light curing printer was turned on, a 405 nm light source was selected, the light intensity was set to 15 mW / cm², a designed masterbatch model file was imported, the layer thickness was set to 5 mm, an infrared thermal imager was aimed at the printing area to ensure that the temperature was lower than 60°C, if the temperature was too high, the printing was paused and the light intensity was reduced or the interlayer cooling time was increased, after the printing was completed, the obtained crude masterbatch was soaked in 35°C warm water for 30 min, taken out and placed at 25°C for 30 min, placed in a 60°C oven for drying for 45 min, the dried crude masterbatch was placed in an ultraviolet curing box, set to 365 nm wavelength and 10 mW / cm² intensity, irradiated for 18 min, placed in a 50°C oven for 60 min, the oven was heated to 80°C and placed for 120 min, and naturally cooled to room temperature to obtain a chemical-resistant polycarbonate modified plastic.
[0128] The difference between the present comparative example and example 1 is that the flame-retardant light-curing agent is not added, but 2-hydroxy-4-(methacryloyloxy) benzophenone is added instead.
[0129] Test:
[0130] I. Chemical corrosion resistance
[0131] Ethyl acetate immersion for 72 h (mass loss Δm): “ASTM D543-21 Standard Practice for Evaluating the Resistance of Plastics to Chemical Reagents”
[0132] Chemical corrosion tensile strength retention rate: GB / T 1040.1-2018 Plastics - Determination of tensile properties - Part 1 : general principles formula: chemical corrosion tensile strength retention rate = tensile strength after corrosion / original tensile strength x 100%.
[0133] The test results are shown in Table 2.
[0134] Table 2: Test results
[0135] Sample Example 1 Example 2 Example 3 Comparative Example 1 Comparative Example 2 Comparative Example 3 Comparative Example 4 Δm 0.04 0.05 0.02 0.62 0.38 0.29 0.11 Tensile strength retention rate after chemical corrosion (%) 91.4 90.2 90.6 63.7 75.5 79.3 85.9
[0136] II. Mechanical properties
[0137] Tensile strength was tested according to GB / T 1040.1-2018 Plastics - Determination of tensile properties - Part 1 : general principles.
[0138] Flexural strength was tested according to GB / T 9341-2008 Plastics - Determination of flexural properties.
[0139] Impact strength was tested according to GB / T 1843-2008 Plastics - Determination of Izod Charpy impact strength.
[0140] The test results are shown in Table 3.
[0141] Table 3: Test results
[0142] Sample Example 1 Example 2 Example 3 Comparative Example 1 Comparative Example 2 Comparative Example 3 Comparative Example 4 Tensile strength (MPa) 68.7 66.2 70.5 48.3 55.1 51.6 65.8 Flexural strength (MPa) 105.5 99.3 103.7 72.6 85.4 76.9 98.1 Impact strength (kJ / m 2 ) 84.7 81.5 88.6 52.4 68.3 60.7 80.2
[0143] III. Thermal properties
[0144] Heat distortion temperature was tested according to ASTM D648 Standard Test Method for Heat Distortion Temperatures of Plastics.
[0145] The test results are shown in Table 4.
[0146] Table 4: Test results
[0147] Sample Example 1 Example 2 Example 3 Comparative Example 1 Comparative Example 2 Comparative Example 3 Comparative Example 4 Heat distortion temperature (℃) 163 158 161 138 145 142 156
[0148] IV. Flame retardant properties
[0149] Vertical burning rating (UL 94): GB / T 2408-2021 Plastics - Determination of the burning behavior in an inclined plane and in a vertical plane
[0150] Heat release capacity (HRC): ISO 5660-1:2015 Fire behaviour of materials - Part 1 : Heat release rate (cone calorimeter method)
[0151] Peak heat release rate (PHRR): ISO 5660-1:2015 Fire reaction tests - Heat release, smoke production and mass loss rate - Part 1: Heat release rate (cone calorimeter method)
[0152] Total heat release (THR): ISO 5660-1:2015 Fire reaction tests - Heat release, smoke production and mass loss rate - Part 1: Heat release rate (cone calorimeter method)
[0153] Residual carbon rate (W): GB / T 33047.1-2016 Plastics - Determination of the thermal stability of polymers by thermogravimetry (TG) - Part 1: General principles
[0154] Limiting oxygen index (LOI): GB / T 2406.2-2009 Plastics - Determination of the burning behavior by oxygen index - Part 2: Room temperature test
[0155] The test results are shown in Table 5.
[0156] Table 5: Test results
[0157] Sample Example 1 Example 2 Example 3 Comparative Example 1 Comparative Example 2 Comparative Example 3 Comparative Example 4 UL 94 V0 V0 V0 V1 V1 V1 V2 HRC [J / (g·K)] 85 89 87 145 126 138 152 PHRR (W / g) 112 118 115 196 155 182 205 THR (kJ / g) 48 51 49 73 60 68 79 W(%) 35.2 33.7 34.8 15.3 25.6 18.5 12.1 LOI 38.5 37.2 38.0 28.6 32.4 30.1 27.8
[0158] V. Results and discussion
[0159] As can be seen from Tables 2-5, the chemically resistant polycarbonate modified plastics prepared in Examples 1-3 have excellent chemical resistance, mechanical properties, thermal properties and flame retardant properties.
[0160] Compared with Examples 1-3, Comparative Example 1 uses a common polycarbonate substrate that has not been modified with a siloxane block. The ester bonds in the molecular chain of the substrate are prone to hydrolysis and rupture under solvent erosion, and the substrate lacks flexible segments to buffer environmental stress, resulting in rapid expansion of microcracks in the material, which leads to rapid deterioration of chemical resistance, significant decrease in impact toughness and insufficient high-temperature deformation resistance.
[0161] Compared with Examples 1-3, Comparative Example 2 uses a conventional acrylate diluent that has not been modified with fluorination. The diluent cannot form a low-surface-energy barrier layer in the crosslinked network, and solvent molecules easily penetrate the inter-chain gaps of the polymer and induce swelling deformation, resulting in a significant decrease in light transmittance and an increase in surface fogging.
[0162] Compared with Examples 1-3, Comparative Example 3 directly adds titanium dioxide microspheres that have not been coated. The filler has weak interfacial bonding with the substrate, which is prone to debonding defects under stress. Not only does this weaken the reinforcing and toughening effect of the nanoparticles, but it also forms a preferential path for solvent penetration, causing simultaneous degradation of mechanical properties and solvent resistance.
[0163] Compared with Examples 1-3, the absence of phosphorus-based radical capture components in the flame-retardant system of Comparative Example 4, which only relies on the char forming of silane groups, results in insufficient gas-phase flame-retardant efficiency, a significant increase in heat release rate and total heat release during combustion, and a loose carbon residue structure that is difficult to maintain material integrity.
[0164] In the description of the specification, the description of the terms "one embodiment", "an example", "a specific example" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0165] The above is only an example and description of the present application, and those skilled in the art can make various modifications or supplements to the described specific embodiments or use similar ways to replace, as long as it does not deviate from the invention or exceed the scope defined by the present claims, which shall belong to the protection scope of the present application.
Claims
1. A chemical resistant polycarbonate modified plastic characterized by: The following raw materials by weight are included: modified polycarbonate 60-70 parts; Polyphenylene sulfide 20-25 parts; solvent-resistant diluent 20-25 parts; nano-enhanced filler 8-12 parts; boron nitride nanosheet 2-4 parts; Short carbon fiber 4-6 parts; nano-barium sulfate 1-2 parts; flame-retardant light curing agent 4-6 parts; chemical-resistant toughening agent 10-15 parts; antioxidant 0.5-1 part; leveling agent 0.5-1 part; ultraviolet absorber 0.3-0.5 part; The preparation steps of the modified polycarbonate are as follows: The bisphenol A polycarbonate particles are vacuum dried, and the hydroxyl-terminated polydimethylsiloxane is added to the internal mixer together, pre-mixed at 175-185 DEG C for 8-12 min, 4, 4-diphenyl methane diisocyanate and dibutyl tin dilaurate are added, reacted at 175-185 DEG C under nitrogen protection for 12-18 min, and then reacted at 190-210 DEG C under nitrogen protection for another 6-10 min, the obtained melt is granulated by a twin-screw extruder to obtain the modified polycarbonate; The mass ratio of the bisphenol A polycarbonate, the hydroxyl-terminated polydimethylsiloxane, the 4, 4-diphenyl methane diisocyanate and the dibutyl tin dilaurate is (55-65):(14-16):(4-6):0.05; The preparation steps of the solvent-resistant diluent are as follows: The trimethylolpropane triacrylate is mixed with the tridecafluorooctyl triethoxysilane, the titanium tetraisopropylate and the 2, 6-di-tert-butyl-p-cresol polymerization inhibitor are added, the nitrogen is replaced for three times, the reaction is carried out at 75-85 DEG C for 2-3 h, the temperature is raised to 95-105 DEG C and the pressure is reduced to-0.09 MPa for 2-3 h, the product is filtered to obtain the solvent-resistant diluent; The mass ratio of the trimethylolpropane triacrylate, the tridecafluorooctyl triethoxysilane, the titanium tetraisopropylate and the 2, 6-di-tert-butyl-p-cresol polymerization inhibitor is (68-72):(28.8-31.2):0.3:(0.09-0.11); The preparation steps of the flame-retardant light curing agent are as follows: The 9, 10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide and the 2-hydroxy-4-(methacryloyloxy) benzophenone are dissolved in toluene, the dicumyl peroxide is added, the reflux is carried out at 100-120 DEG C for 4-8 h, the rotary evaporation is carried out, the drying is carried out to obtain the flame-retardant light curing agent; The dosage ratio of the 9, 10-dihydro-9-oxa-10-phosphaphenanthrene-10-oxide, the 2-hydroxy-4-(methacryloyloxy) benzophenone, the toluene and the dicumyl peroxide is (45-55) g:(45-55) g:(250-350) mL:0.5 g; The chemical-resistant toughening agent is a fluorinated modified polyurethane acrylate.
2. A chemical resistant polycarbonate modified plastic according to claim 1, characterized in that: The preparation steps of the nano-enhanced filler are as follows: The hollow titanium dioxide microspheres are dispersed in an ethanol solution, the gamma-methacryloyloxypropyl trimethoxysilane is added, the pH is adjusted, the hydrolysis is carried out at 75-85 DEG C for 1-2 h, the multi-walled carbon nanotubes are added and ultrasonically dispersed, the reaction is carried out at 100-105 DEG C for 3-4 h, the centrifugation and washing are carried out to obtain the nano-enhanced filler; The mass ratio of the hollow titanium dioxide microspheres, gamma-methacryloxypropyltrimethoxysilane and multi-walled carbon nanotubes is (35-45):(8-12):(8-12).
3. The chemical resistant polycarbonate modified plastic according to claim 1, wherein: The boron nitride nanosheet is surface modified by KH560 silane coupling agent.
4. The chemical resistant polycarbonate modified plastic according to claim 1, wherein: The short carbon fibers are surface treated by acid immersion and surface modified by polydopamine.
5. The chemical resistant polycarbonate modified plastic according to claim 1, wherein: The antioxidant is one or more of phosphite antioxidant and hindered phenolic antioxidant; the leveling agent is polyether modified fluorine-containing polydimethylsiloxane leveling agent; and the anti-ultraviolet aging agent is benzotriazole type ultraviolet absorber.
6. The preparation method of the chemical-resistant polycarbonate modified plastic according to any one of claims 1-5 is as follows: S1. The modified polycarbonate, polyphenylene sulfide, flame-retardant photocuring agent, antioxidant and ultraviolet absorber are weighed in parts by weight and added into a planetary stirrer for stirring; the solvent-resistant diluent is weighed in parts by weight and added for stirring, and the nano-enhancing filler, boron nitride nanosheet, short carbon fiber and nano-barium sulfate are added for stirring; the rotation speed is reduced, the chemical-resistant toughening agent and leveling agent are weighed in parts by weight and added for stirring, to obtain a premix liquid; S2. The premix liquid is transferred to a three-roll grinder for grinding, to obtain a premix material; the premix material is placed in a vacuum defoaming machine for defoaming, to obtain a crude resin material; S3. The crude resin material is poured into a resin tank, a DLP photocuring printer is turned on, a 405nm light source is selected, the light intensity is set to 12-16mW / cm², a designed masterbatch model file is imported, the layer thickness is set to 1-10mm, after printing, the obtained crude masterbatch is soaked in warm water, taken out and placed, dried, placed in an ultraviolet curing box for treatment, dried, placed and cooled to room temperature, to obtain the chemical-resistant polycarbonate modified plastic.
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