Patent Description:
A polycarbonate resin is one of engineering plastics, and is a material that is widely used in the plastics industry.

The polycarbonate resin has a glass transition temperature (Tg) of about <NUM> due to a bulk molecular structure, such as bisphenol-A, which shows high heat resistance and may be a non-crystalline polymer having excellent transparency.

Furthermore, although having excellent impact resistance and compatibility with other resins, the polycarbonate resin has a drawback of low fluidity, so it is frequently used in a form of an alloy with various resins for complementing moldability and post-processability.

Among them, a polycarbonate/acrylonitrile-butadiene-styrene (PC/ABS) alloy resin has excellent durability, moldability, heat resistance, impact resistance, and the like, and thus may be applied in a wide range of applications such as an electrical/electronic field, an automobile field, a construction field, and miscellaneous consumer products, and may be, for example, applied to interior/exterior materials for automobiles.

However, when a molded product made of the PC/ABS alloy resin is used where it contacts with parts made of other resins such as polyethylene, polyvinyl chloride, and the like or other members such as lining sheets of a chloroprene rubber, a natural rubber, polyester, polyethylene, and the like, foams, or the like and rubs against each other, friction noises may occur.

Since a styrene-based copolymer included in the PC/ABS alloy resin is amorphous and thus has a higher friction coefficient than a crystalline material such as polyethylene, polypropylene, polyacetal, and the like, and for example, when the molded product is fit with a member made of other resins, for example, an air conditioner vent, a stereo button, or the like in a car, the friction noises may be generated due to a stick-slip phenomenon caused by the large friction coefficient.

In recent years, as the demand for electric vehicles, which generate relatively less noises when driving, increases, the friction noises may emerge as a major cause of impairing comfort and quietness of riding. Accordingly, there is a need to develop automotive interior materials with excellent friction noise reduction characteristics.

On the other hand, an acrylate-styrene-acrylonitrile (ASA) resin has excellent weather resistance and light resistance, and thus it is widely used in outdoor construction materials, automobile interior/exterior materials, and the like. However, since the ASA resin has insufficient impact resistance and the like, in order to be applied for the uses requiring high impact strength, a content of the acrylic rubbery polymer of the ASA resin should be increased, but when the content of the acrylic rubbery polymer is increased, heat resistance and the like are deteriorated, and accordingly, the ASA resin has a limit in being applied for the use requiring high heat resistance properties, for example, the automobile interior/exterior materials, etc..

Accordingly, a method for securing excellent heat resistance, impact resistance, weather resistance, and light resistance by alloying the aforementioned polycarbonate resin with an ASA resin has been proposed, and this PC/ASA alloy resin may be applied to various interior/exterior materials for automobiles.

However, a molded product using this PC/ASA alloy resin, like a case of using other resins, has a risk of propagation of various bacteria on the surface over time. Accordingly, in order to improve antibacterial properties and the like, a method of adding an additive such as an antibacterial agent and the like to the PC/ASA alloy resin may be considered but deteriorate compatibility, impact resistance, and the like and in addition, generate excessive gas due to decomposition of the resin during the injection molding.

Accordingly, there is a need to develop a thermoplastic resin composition having excellent friction noise reduction characteristics and simultaneously, excellent antibacterial properties, impact resistance, and the like.

<CIT> discloses an ethylene-vinyl acetate copolymer resin composition, comprising:.

<CIT> discloses an antistatic PC/ASA alloy material, it is characterized in that, comprise following component and content: polycarbonate <NUM>-80wt%, ASA resin <NUM>-20wt%, SAN resin <NUM>-15wt%, toughner <NUM>-5wt%, static inhibitor <NUM>-20wt%, four acicular type zinc oxide crystal whisker <NUM>-5wt%, oxidation inhibitor <NUM>-1wt%, lubricant <NUM>-2wt%.

The present invention is to provide a thermoplastic resin composition having excellent friction noise reduction characteristics, antibacterial properties, and impact resistance, and a molded product using the same.

The thermoplastic resin composition includes, based on <NUM> parts by weight of base resin including (A) <NUM> to <NUM> wt% of a polycarbonate resin, (B) <NUM> to <NUM> wt% of an acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer, and (C) <NUM> to <NUM> wt% of an aromatic vinyl-vinyl cyanide copolymer, (D) <NUM> to <NUM> parts by weight of zinc oxide (ZnO), and (E) <NUM> to <NUM> parts by weight of a polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer.

The (A) polycarbonate resin may have a weight average molecular weight of <NUM>,<NUM> to <NUM>,<NUM>/mol.

In the (B) acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer, an average particle diameter of the acrylic rubbery polymer may be <NUM> to <NUM>.

The (B) acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer may have a core-shell structure includes a core including an acrylic rubbery polymer and a shell formed by graft polymerization of a monomer mixture including an aromatic vinyl compound and a vinyl cyanide compound to the core.

The (B) acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer may be an acrylate-styrene-acrylonitrile graft copolymer.

The (C) aromatic vinyl-vinyl cyanide copolymer may be a copolymer of a monomer mixture including <NUM> to <NUM> wt% of an aromatic vinyl compound and <NUM> to <NUM> wt% of a vinyl cyanide compound.

The (C) aromatic vinyl-vinyl cyanide copolymer may have a weight average molecular weight of <NUM>,<NUM> to <NUM>,<NUM>/mol.

The (C) aromatic vinyl-vinyl cyanide copolymer may be a styrene-acrylonitrile copolymer.

The (D) zinc oxide may have an average particle diameter of <NUM> to <NUM>.

The (D) zinc oxide may have a BET specific surface area of <NUM> to <NUM><NUM>/g.

The (D) zinc oxide may have a peak position 2θ value of <NUM> to <NUM>° in X-ray diffraction (XRD) analysis, and a crystallite size value according to Equation <NUM> of <NUM>,<NUM> to <NUM>,<NUM>Å.

In Equation <NUM>, k is a shape factor, λ is an X-ray wavelength, β is a FWHM value (degree) of an X-ray diffraction peak, and θ is a peak position value (peak position degree).

The (D) zinc oxide may have a size ratio (B/A) of a peak A in a <NUM> to <NUM> region to a peak B in a <NUM> to <NUM> region of <NUM> to <NUM> when measuring photoluminescence.

The (E) polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may be one in which an aromatic vinyl-glycidyl (meth)acrylate copolymer is grafted to a polyolefin main chain.

The polyolefin may be a polyethylene (PE) or an ethylene-vinyl acetate copolymer (EVA) and the aromatic vinyl-glycidyl (meth)acrylate copolymer may be a styrene-glycidyl methacrylate copolymer.

The thermoplastic resin composition may further include at least one additive selected from a nucleating agent, a coupling agent, a filler, a plasticizer, a lubricant, a release agent, an antibacterial agent, a heat stabilizer, an antioxidant, an ultraviolet (UV) stabilizer, a flame retardant, an antistatic agent, an impact modifier, a dye, and a pigment.

The present invention also provides a molded product manufactured from the thermoplastic resin composition.

The molded product may have a squeak noise of <NUM> to <NUM> measured after being left at <NUM> for <NUM> hours according to VDA <NUM>-<NUM>.

The molded product may have each antibacterial activity value of <NUM> to <NUM> which is obtained by inoculating Staphylococcus aureus and Escherichia coli, and measuring after <NUM> hours of incubation under the condition of <NUM> and RH of <NUM>% according to the JIS Z <NUM> antibacterial evaluation method.

The molded product may have a <NUM>/<NUM>" thick notched Izod impact strength of <NUM> to <NUM> kgf-cm/cm according to ASTM D256.

Since the thermoplastic resin composition and a molded product using the same have excellent friction noise reduction properties, antibacterial properties, and impact resistance, they may be usefully applied to automobiles, such as interior materials of electric vehicles, which require great friction noise reduction and antibacterial properties particularly.

<FIG> is a schematic view of the basic principle of VDA <NUM>-<NUM>.

Hereinafter, embodiments of the present invention are described in detail. However, these embodiments are exemplary, the present invention is not limited thereto and the present invention is defined by the scope of claims.

In the present specification, "copolymerization" refers to block copolymerization to random copolymerization and "copolymer" refers to a block copolymer to a random copolymer.

In the present invention, unless otherwise mentioned, "an average particle diameter" of the rubbery polymer refers to a volume average diameter, and means a Z-average particle diameter measured using a dynamic light scattering analyzer.

In the present invention, unless otherwise mentioned, "an average particle diameter of zinc oxide" is a particle diameter (D50) corresponding to <NUM> % of a weight percentage in a particle size distribution curve of single particles (particles do not aggregate to form secondary particles), which are measured by using a particle size analyzer (Laser Diffraction Particle Size Analyzer LS I3 <NUM> equipment, Beckman Coulter, Inc.

In the present invention, unless otherwise mentioned, "a weight average molecular weight" is measured by dissolving a powder sample in tetrahydrofuran (THF) and performing gel permeation chromatography (GPC) with a <NUM> series made by Agilent Technologies Inc. (a column: LF-<NUM> made by Shodex, a standard sample: polystyrene made by Shodex).

In the present invention, unless otherwise mentioned, "a specific surface area" is measured using a nitrogen gas adsorption method with BET analysis equipment (Surface Area and Porosity Analyzer ASAP <NUM> equipment manufactured by Micromeritics).

According to the present invention, provided is a thermoplastic resin composition including, based on <NUM> parts by weight of base resin including (A) <NUM> to <NUM> wt% of a polycarbonate resin, (B) <NUM> to <NUM> wt% of an acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer, and (C) <NUM> to <NUM> wt% of an aromatic vinyl-vinyl cyanide copolymer, (D) <NUM> to <NUM> parts by weight of zinc oxide (ZnO), and (E) <NUM> to <NUM> parts by weight of a polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer.

Hereinafter, each component included in the thermoplastic resin composition will be described in detail.

The polycarbonate (PC) resin is a polyester having a carbonate bond but has no particular limit in its type, and may include any polycarbonate resin usable in the resin composition field.

For example, it may be prepared by reacting diphenols represented by Chemical Formula <NUM> with a compound selected from phosgene, halogen acid esters, carbonate esters, and a combination thereof.

In Chemical Formula <NUM>,
A is a linking group selected from a single bond, a substituted or unsubstituted C1 to C30 alkylene group, a substituted or unsubstituted C2 to C5 alkenylene group, a substituted or unsubstituted C2 to C5 alkylidene group, a substituted or unsubstituted C1 to C30 haloalkylene group, a substituted or unsubstituted C5 to C6 cycloalkylene group, a substituted or unsubstituted C5 to C6 cycloalkenylene group, a substituted or unsubstituted C5 to C10 cycloalkylidene group, a substituted or unsubstituted C6 to C30 arylene group, a substituted or unsubstituted C1 to C20 alkoxylene group, a halogenic acid ester group, a carbonate ester group, CO, S, and SO<NUM>, wherein R<NUM> and R<NUM> are each independently a substituted or unsubstituted C1 to C30 alkyl group or a substituted or unsubstituted C6 to C30 aryl group, and n1 and n2 are each independently an integer of <NUM> to <NUM>.

Two or more types of the diphenols represented by Chemical Formula <NUM> may be combined to constitute a repeating unit of the polycarbonate resin.

Specific examples of the diphenols may be <NUM>,<NUM>'-dihydroxydiphenyl, <NUM>,<NUM>-bis(<NUM>-hydroxyphenyl)propane (also referred to as "bisphenol-A"), <NUM>,<NUM>-bis(<NUM>-hydroxyphenyl)-<NUM>-methylbutane, bis(<NUM>-hydroxyphenyl)methane, <NUM>,<NUM>-bis(<NUM>-hydroxyphenyl)cyclohexane, <NUM>,<NUM>-bis(<NUM>-chloro-<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>-methyl-<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>,<NUM>-dimethyl-<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>,<NUM>-dichloro-<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>,<NUM>-dibromo-<NUM>-hydroxyphenyl)propane, bis(<NUM>-hydroxyphenyl)sulfoxide, bis(<NUM>-hydroxyphenyl)ketone, bis(<NUM>-hydroxyphenyl)ether, and the like. Among the diphenols, <NUM>,<NUM>-bis(<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>-methyl-<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>,<NUM>-dimethyl-<NUM>-hydroxyphenyl)propane, <NUM>,<NUM>-bis(<NUM>,<NUM>-dichloro-<NUM>-hydroxyphenyl)propane, or <NUM>,<NUM>-bis(<NUM>-hydroxyphenyl)cyclohexane may be desirably used. <NUM>,<NUM>-bis(<NUM>-hydroxyphenyl)propane may be more desirably used.

The polycarbonate resin may be a mixture of copolymers obtained using two or more dipenols.

In addition, the polycarbonate resin may be a linear polycarbonate resin, a branched polycarbonate resin, a polyester-carbonate copolymer resin, and the like.

Specific examples of the linear polycarbonate resin may be a bisphenol-A polycarbonate resin. Specific examples of the branched polycarbonate resin may be a resin prepared by reacting a multi-functional aromatic compound such as trimellitic anhydride, trimellitic acid, and the like with diphenols and a carbonate. The polyester-carbonate copolymer resin may be prepared by reacting bifunctional carboxylic acid with diphenols and carbonate, wherein the used carbonate is diaryl carbonate such as diphenyl carbonate or ethylene carbonate.

The polycarbonate resin may be prepared using an interfacial polymerization method (also called a solvent method or a phosgene method), a melt polymerization method, or the like.

It is effective to use the polycarbonate resin having, desirably, a weight average molecular weight of <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol. When the weight average molecular weight of the polycarbonate resin is within the above range, a molded product manufactured therefrom can have excellent impact resistance and fluidity.

The polycarbonate resin may be included in an amount of <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt% based on <NUM> wt% of the base resin. When the polycarbonate resin is less than <NUM> wt%, a mechanical strength of a molded product manufactured from the thermoplastic resin composition including the same is not good, and when it exceeds <NUM> wt%, the moldability may be deteriorated.

The polycarbonate resin has a melt flow index measured at <NUM>, and <NUM> load condition according to ASTM D1238, for example, <NUM> to <NUM>/<NUM>, for example <NUM> to <NUM>/<NUM>, for example <NUM> to <NUM>/<NUM>. When a polycarbonate resin having a melt flow index within the above range is used, a molded product using the same may obtain excellent impact resistance and fluidity.

However, an embodiment is not necessarily limited thereto. For example, the polycarbonate resin may be used by mixing two or more types of polycarbonate resins having different weight average molecular weights or melt flow indexes. By mixing and using polycarbonate resins of different weight average molecular weights or melt flow indexes, the thermoplastic resin composition may be controlled to have desired fluidity.

The acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer is alloyed with a polycarbonate resin to enhance light resistance, weather resistance and impact resistance of the thermoplastic resin composition.

The acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer has a core-shell structure including a core including an acrylic rubbery polymer and a shell formed by graft polymerization of a monomer mixture including an aromatic vinyl compound and a vinyl cyanide compound to the core.

The acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer may be prepared according to any preparation method known to those skilled in the art.

The preparation method may include conventional polymerization methods, for example, emulsion polymerization, suspension polymerization, solution polymerization, and bulk polymerization. As a non-limiting example, it may be prepared by a method including preparing an acrylic rubbery polymer, and then graft-polymerizing a monomer mixture including an aromatic vinyl compound and a vinyl cyanide compound may be on a core formed of one or more layers of the acrylic rubbery polymer to form one or more shells.

The acrylic rubbery polymer may be prepared using an acrylic monomer as a main monomer. The acrylic monomer may be at least one selected from ethyl acrylate, butyl acrylate, and <NUM>-ethylhexyl acrylate, but is not limited thereto.

The acrylic monomer may be copolymerized with one or more other radically polymerizable monomers. In the case of copolymerization, an amount of the one or more radically polymerizable other monomers may be <NUM> to <NUM> wt%, for example, <NUM> to <NUM> wt%, based on the total weight of the acrylic rubbery polymer.

The aromatic vinyl compound included in the shell may be at least one selected from styrene, α-methylstyrene, p-methylstyrene, p-t-butylstyrene, <NUM>,<NUM>-dimethylstyrene, chlorostyrene, vinyltoluene, and vinylnaphthalene, but is not limited thereto.

The vinyl cyanide compound included in the shell may be at least one selected from acrylonitrile, methacrylonitrile, and fumaronitrile, but is not limited thereto.

Based on the total of <NUM> wt% of the acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer, an amount of the acrylic rubbery polymer may be <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%.

Meanwhile, in the shell, the aromatic vinyl compound and the vinyl cyanide compound may be copolymerized in a weight ratio of <NUM>:<NUM> to <NUM>:<NUM>.

In an embodiment, the acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer may be an acrylate-styrene-acrylonitrile graft copolymer (g-ASA).

In an embodiment, in the acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer, an average particle diameter of the acrylic rubbery polymer may be greater than or equal to <NUM>, for example greater than or equal to <NUM>, or for example greater than or equal to <NUM>, and for example less than or equal to <NUM>, for example less than or equal to <NUM>, or for example less than or equal to <NUM>, for example <NUM> to <NUM>, for example <NUM> to <NUM>, for example <NUM> to <NUM>.

When the average particle diameter of the acrylic rubbery polymer in the acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer is less than <NUM>, the impact resistance of a molded product manufactured from the thermoplastic resin composition including the same may be lowered.

On the other hand, when the average particle diameter of the acrylic rubbery polymer in the acrylic rubber modified aromatic vinyl-based graft copolymer exceeds <NUM>, gloss and appearance characteristics of a molded product manufactured from the thermoplastic resin composition including the same may be deteriorated.

The acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer may be greater than or equal to <NUM> wt%, greater than or equal to <NUM> wt%, greater than or equal to <NUM> wt%, or greater than or equal to <NUM> wt% and less than or equal to <NUM> wt%, less than or equal to <NUM> wt%, or less than or equal to <NUM> wt%, based on <NUM> wt% of the base resin.

When the amount of the acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer in the base resin is less than <NUM> wt%, an impact resistance of the molded product manufactured from the thermoplastic resin composition containing the same may decrease, and when it exceeds <NUM> wt%, mechanical strength and coloring properties of the molded product manufactured from the thermoplastic resin composition may be lowered.

The aromatic vinyl-vinyl cyanide copolymer functions to maintain compatibility between components of the thermoplastic resin composition at a certain level.

In an embodiment, the aromatic vinyl-vinyl cyanide copolymer may be a copolymer of a monomer mixture including <NUM> to <NUM> wt% of an aromatic vinyl compound and <NUM> to <NUM> wt% of a vinyl cyanide compound. The aromatic vinyl-vinyl cyanide copolymer has a weight average molecular weight of <NUM>,<NUM>/mol or more, for example <NUM>,<NUM>/mol or more, for example <NUM>,<NUM>/mol or more, and for example less than or equal to <NUM>,<NUM>/mol, or for example less than or equal to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol, for example <NUM>,<NUM> to <NUM>,<NUM>/mol.

The aromatic vinyl compound may be at least one selected from styrene, α-methylstyrene, p-methylstyrene, p-t-butylstyrene, <NUM>,<NUM>-dimethylstyrene, chlorostyrene, vinyltoluene, and vinylnaphthalene, but is not limited thereto.

The vinyl cyanide compound may be at least one selected from acrylonitrile, methacrylonitrile, and fumaronitrile, but is not limited thereto.

In an embodiment, the aromatic vinyl-vinyl cyanide copolymer may be a styrene-acrylonitrile copolymer (SAN).

In an embodiment, based on <NUM> wt% of the aromatic vinyl-vinyl cyanide copolymer, the component derived from the aromatic vinyl compound may be included in an amount of greater than or equal to <NUM> wt%, for example greater than or equal to <NUM> wt%, for example greater than or equal to <NUM> wt% and less than or equal to <NUM> wt%, for example less than or equal to <NUM> wt%, for example <NUM> to <NUM> wt%, for example <NUM> to <NUM> wt%.

In an embodiment, based on <NUM> wt% of the aromatic vinyl-vinyl cyanide copolymer, the component derived from the vinyl cyanide compound may be included in an amount of greater than or equal to <NUM> wt%, for example greater than or equal to <NUM> wt%, and for example less than or equal to <NUM> wt%, for example less than or equal to <NUM> wt%, for example less than or equal to <NUM> wt%, for example <NUM> to <NUM> wt%, or for example <NUM> to <NUM> wt%.

In an embodiment, the aromatic vinyl-vinyl cyanide copolymer may be included in an amount of greater than or equal to <NUM> wt%, greater than or equal to <NUM> wt%, greater than or equal to <NUM> wt%, or greater than or equal to <NUM> wt% and less than or equal to <NUM> wt%, less than or equal to <NUM> wt%, of less than or equal to <NUM> wt% based on <NUM> wt% of the base resin.

If the aromatic vinyl-vinyl cyanide copolymer is less than <NUM> wt%, mechanical strength and heat resistance of a molded product manufactured from the thermoplastic resin composition including the same may decrease, and if it exceeds <NUM> wt%, impact resistance may be deteriorated.

The zinc oxide functions to improve antibacterial properties of the thermoplastic resin composition and a molded product manufactured therefrom.

In an embodiment, the zinc oxide may have an average particle diameter of greater than or equal to <NUM>, for example greater than or equal to <NUM>, or for example greater than or equal to <NUM>, and for example less than or equal to <NUM>, for example less than or equal to <NUM>, or for example less than or equal to <NUM>, or for example <NUM> to <NUM>, for example <NUM> to <NUM>, for example <NUM> to <NUM>, or for example <NUM> to <NUM>.

In an embodiment, the zinc oxide may have a BET specific surface area of greater than or equal to <NUM><NUM>/g, and for example less than or equal to <NUM><NUM>/g, for example less than or equal to <NUM><NUM>/g, for example less than or equal to <NUM><NUM>/g, or for example less than or equal to <NUM><NUM>/g, or for example <NUM> to <NUM><NUM>/g, or for example <NUM> to <NUM><NUM>/g.

When the average particle diameter and/or BET specific surface area of the zinc oxide is out of the above range, light resistance of the thermoplastic resin composition including the zinc oxide and a molded product manufactured therefrom may be deteriorated.

In an embodiment, the purity of the zinc oxide as measured from a residual weight at a temperature of <NUM> using TGA thermal analysis may be greater than or equal to <NUM> %.

In an embodiment, the zinc oxide may have a peak position 2θ value obtained by X-ray diffraction (XRD) analysis of <NUM> ° to <NUM> °, and a crystallite size of <NUM>,<NUM> to <NUM>,<NUM>Å, for example <NUM>,<NUM> to <NUM>,<NUM>Å, which is calculated based on the measured FWHM value (full width at half maximum of the diffraction peak) by applying to Scherrer's equation (Equation <NUM>).

Specifically, the crystallite size may be measured by using a high resolution X-ray diffractometer (PRO-MRD, X'pert) regardless of a specimen type (e.g., powder form, injection molding specimen). On the other hand, when an injection molding specimen is used, XRD may be more accurately analyzed by heat-treating the specimen at <NUM> in the air for <NUM> hours to remove a residual polymer resin.

When the peak position and crystallite size of the zinc oxide are out of the above ranges, light resistance, antibacterial properties, and the like of the thermoplastic resin composition and molded product manufactured therefrom may be deteriorated.

In an embodiment, the zinc oxide may have various shapes, for example, a spherical shape, a plate shape, a rod shape, and a combination thereof.

In an embodiment, the zinc oxide may have a size ratio (B/A) of a peak A in a <NUM> to <NUM> region to a peak B in a <NUM> to <NUM> region when measuring photoluminescence of <NUM> to <NUM>, for example <NUM> to <NUM>, or specifically <NUM> to <NUM>.

The photoluminescence may be measured by putting zinc oxide powder in a pelletizer with a diameter of <NUM> and compressing it to prepare a specimen in a flat state and then, irradiating the specimen by an He-Cd laser at a wavelength of <NUM> (<NUM> mW, KIMMON KOHA) at room temperature and detecting a spectrum of light emitted therefrom with a CCD detector, wherein the CCD detector may be maintained at -<NUM>.

In the above range, the thermoplastic resin composition and a molded product manufactured therefrom may exhibit excellent light resistance and antibacterial properties.

In an embodiment, the zinc oxide may be prepared by melting metallic zinc and then, heating it at <NUM> to <NUM>,<NUM>, for example <NUM> to <NUM> to evaporate it, injecting oxygen gas thereinto, cooling it to <NUM> to <NUM>, and then, heating it at <NUM> to <NUM>, for example <NUM> to <NUM> for <NUM> to <NUM> minutes, for example <NUM> to <NUM> minutes.

In an embodiment, the zinc oxide may be included in an amount of, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight based on <NUM> parts by weight of the base resin.

When an amount of the zinc oxide is less than <NUM> part by weight, light resistance, antibacterial properties, and impact resistance of the thermoplastic resin composition and molded product manufactured therefrom may be deteriorated, while when it is greater than <NUM> parts by weight, light resistance, and thermal discoloration stability of the thermoplastic resin composition and molded product manufactured therefrom may be deteriorated.

The polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may lower a friction coefficient of the thermoplastic resin composition and a molded product using the same and also improve friction noise reduction sustainability to exhibit excellent friction noise reduction characteristics.

In an embodiment, the polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may be one in which an aromatic vinyl-glycidyl (meth)acrylate copolymer is grafted to a polyolefin main chain.

The polyolefin including the polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may be a polyethylene (PE) or an ethylenevinylacetate copolymer (EVA).

The aromatic vinyl-glycidyl (meth)acrylate copolymer grafted onto the polyolefin main chain may be a copolymer of a monomer mixture including an aromatic vinyl compound and glycidyl (meth)acrylate.

The glycidyl (meth)acrylate may be at least one selected from glycidyl acrylate and glycidyl methacrylate.

The aromatic vinyl-glycidyl (meth)acrylate copolymer may be, for example a copolymer of styrene and glycidyl acrylate, a copolymer of styrene and glycidyl methacrylate, a copolymer of α-methylstyrene and glycidyl acrylate, a copolymer of α-methylstyrene and glycidyl methacrylate, a copolymer of styrene, α-methylstyrene, and glycidyl acrylate, a copolymer of styrene, α-methylstyrene and glycidyl methacrylate, or a copolymer of styrene, α-methylstyrene, glycidyl acrylate and glycidyl methacrylate, for example a copolymer of styrene-glycidyl methacrylate. In this case, the styrene-glycidyl methacrylate copolymer may be a copolymer of a monomer mixture including <NUM> to <NUM> wt% of styrene and <NUM> to <NUM> wt% of glycidyl methacrylate.

For example, the polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may be at least one selected from a polyethylene-styrene-glycidyl methacrylate graft copolymer (PE-g-SGMA) and an ethylene-vinylacetate-styrene-glycidyl methacrylate graft copolymer (EVA-g-SGMA).

In an embodiment, the polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may include <NUM> wt% to <NUM> wt% of the polyolefin and <NUM> wt% to <NUM> wt% of the aromatic vinyl-glycidyl (meth)acrylate copolymer based on <NUM> wt% thereof.

The polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer may be included in an amount of, for example <NUM> to <NUM> parts by weight, for example <NUM> to <NUM> parts by weight, or for example <NUM> to <NUM> parts by weight based on <NUM> parts by weight of a base resin. When the polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer is included in an amount of less than <NUM> parts by weight, a molded product formed of a thermoplastic resin composition using the same may hardly express friction noise reduction characteristics, but when included in an amount of greater than <NUM> parts by weight, a molded product formed of a thermoplastic resin composition using the same may exhibit deteriorated mechanical properties such as rigidity and the like.

The thermoplastic resin composition according to an embodiment may further include one or more additives, if necessary, depending on the end use of the composition in addition to the components (A) to (E) in order to balance each of physical properties under conditions of maintaining all of excellent friction noise reduction characteristics, antibacterial properties, and mechanical properties.

Specifically, the additive may be at least one selected from a nucleating agent, a coupling agent, a filler, a plasticizer, a lubricant, a release agent, an antibacterial agent, a heat stabilizer, an antioxidant, an ultraviolet stabilizer, a flame retardant, an antistatic agent, an impact modifier, a dye, and a pigment.

These additives may be appropriately included within a range that does not impair the physical properties of the thermoplastic resin composition, and specifically, may be included in an amount of less than or equal to <NUM> parts by weight based on <NUM> parts by weight of the base resin, but are not limited thereto.

The thermoplastic resin composition according to the present invention may be prepared by a known method for preparing a thermoplastic resin composition.

On the other hand, the thermoplastic resin composition according to an embodiment may be mixed with other resin or other rubber component and used together.

For example, the thermoplastic resin composition according to the present invention may be prepared in the form of pellets by simultaneously mixing the components of the present invention and other additives and then melt-kneading the same in an extruder.

The present invention provides a molded product manufactured using the thermoplastic resin composition.

The molded product may be produced by various methods known in the art, such as injection molding and extrusion molding using the thermoplastic resin composition.

In an embodiment, the molded product has squeak noises of RPN <NUM> to <NUM> when measured according to VDA <NUM>-<NUM> a standard of the German Automobile Industry Association, after allowed to stand in an <NUM> oven for about <NUM> hours, and thus may exhibit excellent friction noise reduction characteristics.

A specific evaluation method and result of the squeak noises will be described later in experimental examples.

In addition, the molded product are measured with respect to antibacterial activity according to the JIS Z <NUM> antibacterial evaluation method by inoculating Staphylococcus aureus and Escherichia coli and incubating them at <NUM> for <NUM> hours under RH of <NUM>%, which is respectively greater than or equal to <NUM>, for example greater than or equal to <NUM>, for example greater than or equal to <NUM>, for example greater than or equal to <NUM>, for example greater than or equal to <NUM>, for example less than or equal to <NUM>, for example less than or equal to <NUM>, for example <NUM> to <NUM>, for example <NUM> to <NUM>, or for example <NUM> to <NUM>.

In addition, the molded product may have a <NUM>/<NUM>" thick notched Izod impact strength of greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, for example greater than or equal to <NUM> kgf-cm/cm, or for example greater than or equal to <NUM> kgf·cm/cm, and for example less than or equal to <NUM> kgf-cm/cm, for example less than or equal to <NUM> kgf-cm/cm, for example less than or equal to <NUM> kgf·cm/cm, or for example less than or equal to <NUM> kgf-cm/cm, for example <NUM> to <NUM> kgf-cm/cm, for example <NUM> to <NUM> kgf·cm/cm, or for example <NUM> to <NUM> kgf-cm/cm, according to ASTM D256.

As such, the thermoplastic resin composition exhibits excellent friction noise reduction characteristics, antibacterial properties, and impact resistance and thus may be widely applied to various electronic parts, building materials, sporting goods, automobile interior/exterior parts, and specifically, the molded product is minimized from the stick-slip phenomenon and thus may be used in automobile interior materials requiring a large friction noise reduction, for example, an automobile air conditioner vent, a button of a car stereo, or the like but is not limited thereto.

Hereinafter, the present invention is illustrated in more detail with reference to examples and comparative examples. However, the following examples and comparative examples are provided for the purpose of descriptions and the present invention is not limited thereto.

The thermoplastic resin compositions of Examples <NUM> to <NUM> and Comparative Examples <NUM> to <NUM> were prepared according to the component content ratios described in Table <NUM>.

In Table <NUM>, (A), (B), and (C) which were included in the base resin, were expressed in weight percent based on the total weight and (D) and (E), which were added to the base resin, were expressed in parts by weight based on <NUM> parts by weight of the base resin.

A small amount of a heat stabilizer and a lubricant in an equal amount were dry-mixed with components shown in Table <NUM> and then, quantitatively and continuously added to a supply part (barrel temperature: <NUM>) of a twin-screw extruder (L/D = <NUM>, Φ = <NUM>) for melting/kneading. Subsequently, a thermoplastic resin composition pelletized through the twin-screw extruder was dried at about <NUM> for about <NUM> hours and prepared into each specimen for evaluating physical properties, squeak noise, and antibacterial properties by using a <NUM> (<NUM> oz) injection molding machine with a cylinder temperature of about <NUM> and a mold temperature of about <NUM>.

Descriptions of each component in Table <NUM> are as follows.

A polycarbonate resin having a melt flow index (MI) of <NUM>/<NUM> measured under the condition of <NUM> and a <NUM> load according to the ASTM D1238 standard (Lotte Advanced Materials Co.

An acrylate-styrene-acrylonitrile graft copolymer having a core including about <NUM> wt% of an acrylic rubbery polymer with an average particle diameter of about <NUM> and a shell formed of a styrene-acrylonitrile copolymer with a styrene:acrylonitrile weight ratio of about <NUM>:<NUM> (Lotte Advanced Materials Co.

A styrene-acrylonitrile copolymer having a weight average molecular weight of about <NUM>,<NUM>/mol and an acrylonitrile-derived component of about <NUM> wt% (Lotte Advanced Materials Co.

Zinc oxide having a specific gravity of <NUM>/cm<NUM> to <NUM>/cm<NUM>, an average particle diameter (D50) of <NUM>, a BET specific surface area of <NUM><NUM>/g, purity of <NUM>%, a PL size ratio (B/A) of <NUM>, and a crystallite size of <NUM>,<NUM>Å (Hanil Chemical Co.

A polyethylene-styrene-glycidyl methacrylate graft copolymer grafted with a styrene-glycidyl methacrylate copolymer to a polyethylene (PE) main chain (PEg-SGMA, NOF Corp.

Experimental results are shown in Table <NUM> below.

Squeak noise: A specimen with a size of <NUM> × <NUM> × <NUM> (width × length × thickness) for evaluating squeak noises was measured with respect to squeak noises according to VDA <NUM>-<NUM> after allowed to stand in an about <NUM> oven for about <NUM> hours.

<FIG> is a schematic view of the basic principle of VDA <NUM>-<NUM>. Referring to <FIG>, Material A and Material B were the same materials heat-treated under the same condition, wherein Material A with a mobile phase due to a spring component moved relative to Material B. A force (FN) applied to each other by the spring component was <NUM> N, a sliding carriage was moved at a moving speed (Vs) of <NUM>/s, and the two material specimens had a contact area of <NUM>,<NUM><NUM>. The spring component was moved by stick and slip, which was used to evaluate the squeak noises.

Table <NUM> shows evaluation criteria for the squeak noises, wherein as RPN was closer to <NUM>, more excellent friction noise reduction characteristics were obtained.

Referring to Table <NUM>, RPN <NUM> to <NUM> mean a state that there is almost no noise, and RPN <NUM> to <NUM> are limit points, which mean a state that noises are not removed by the stick-slip effect. In addition, RPN <NUM> to <NUM> mean a state that the stick-slip effect is clear, and noises necessarily occur.

(<NUM>) Antibacterial properties: According to a JIS Z <NUM> antibacterial evaluation method, antibacterial activity was measured by inoculating Staphylococcus aureus and Escherichia coli to the specimens having a size of <NUM> × <NUM> × <NUM> (width × length × thickness) and culturing them at <NUM> under RH of <NUM> % for <NUM> hours.

(<NUM>) Impact resistance (unit: kgf-cm/cm): According to ASTM D256, <NUM>/<NUM>" thick specimens were measured with respect to notched Izod Impact strength.

Claim 1:
A thermoplastic resin composition, comprising a base resin including:
(A) <NUM> to <NUM> wt% of a polycarbonate resin;
(B) <NUM> to <NUM> wt% of an acrylic rubber modified aromatic vinyl-vinyl cyanide graft copolymer; and
(C) <NUM> to <NUM> wt% of an aromatic vinyl-vinyl cyanide copolymer,
wherein the amounts of (A), (B), and (C) are based on a total weight of the base resin, and
further comprising, based on <NUM> parts by weight of the base resin:
(D) <NUM> to <NUM> parts by weight of zinc oxide (ZnO); and
(E) <NUM> to <NUM> parts by weight of a polyolefin-aromatic vinyl-glycidyl (meth)acrylate graft copolymer.