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    • 1. 发明公开
    • 자외선 경화성 에폭시수지/탄소나노입자 복합필름과 그 제조방법
    • UV可固化环氧树脂/碳纳米复合膜及其制造方法
    • KR1020140011642A
    • 2014-01-29
    • KR1020120078243
    • 2012-07-18
    • 금오공과대학교 산학협력단
    • 정영규안지은
    • C08J5/18C08L69/00C08K3/04B32B27/38
    • The present invention relates to an ultraviolet ray curable epoxy resin/carbon nanoparticle composite film having low electric resistance and excellent electric heating properties, and a production method of the same. The present invention provides a method of producing the ultraviolet ray curable epoxy resin/carbon nanoparticle composite film with reinforced carbon nanoparticles by passing the carbon nanoparticles including graphene and carbon nanotubes through a step of mixing with ultraviolet ray curable epoxy compound and a photoinitiator by an ultraviolet ray curing system, a step of forming a film, a drying step, and a ultraviolet ray curing step. The ultraviolet ray curable epoxy resin/carbon nanoparticle composite film of the present invention is formed on a substrate including a polymer film a metal plate, a glass plate, a fiber (fabric, knitted good, and non-woven fabric), and plastic to be applied to produce products having anti-static, electromagnetic shielding, and electric heating functions. [Reference numerals] (AA) Carbon nano particles + epoxy compound (+ solvent); (BB) Adding a photoinitiator; (CC,DD) Mixing and dispersing; (EE) Ultraviolet ray curable epoxy resin/carbon nanoparticle composite film; (FF) Hardening; (GG) Ultraviolet ray irradiation; (HH) Removing solvent; (II) Forming a film; (JJ) Substrates (polymer films, metal plates, glass plates, fibers, plastics)
    • 本发明涉及电阻低,电加热性优异的紫外线固化性环氧树脂/碳纳米粒子复合膜及其制造方法。 本发明提供一种通过使含有石墨烯和碳纳米管的碳纳米管通过与紫外线固化性环氧化合物和光引发剂的紫外线混合的工序来使具有增强碳纳米粒子的紫外线固化性环氧树脂/碳纳米粒子复合膜的制造方法 光固化系统,成膜步骤,干燥步骤和紫外线固化步骤。 本发明的紫外线固化型环氧树脂/碳纳米粒子复合膜是在包含金属板,玻璃板,纤维(织物,针织物,无纺布)的聚合物膜的基材上形成的, 应用于生产具有防静电,电磁屏蔽和电加热功能的产品。 (AA)碳纳米颗粒+环氧化合物(+溶剂); (BB)添加光引发剂; (CC,DD)混合分散; (EE)紫外线固化型环氧树脂/碳纳米复合膜; (FF)硬化; (GG)紫外线照射; (HH)去除溶剂; (二)形成影片; (JJ)基板(聚合物膜,金属板,玻璃板,纤维,塑料)
    • 3. 发明公开
    • 메타 아라미드/탄소나노튜브 복합체와 그 제조방법
    • META-ARAMID /碳纳米管复合材料及其制备方法
    • KR1020130001021A
    • 2013-01-03
    • KR1020110061879
    • 2011-06-24
    • 금오공과대학교 산학협력단
    • 정영규전길우안지은
    • C08L77/10C08K3/04C08G69/32C08L101/12
    • PURPOSE: A manufacturing method of a meta-aramid/carbon nanotube composite is provided to manufacture the meta-aramid/carbon nanotube composite with better thermal stability, mechanical properties, and electric conductivity than a meta-aramid homopolymer. CONSTITUTION: A manufacturing method of a meta-aramid/carbon nanotube composite comprises a step of manufacturing the meta-aramid/carbon nanotube composite by solution-mixing a meta-aramid homopolymer which has 85% or more of one repeating unit structure selected from compounds represented by chemical formula 3-5, and carbon nanotubes. The content of the carbon nanotubes in the composite is 0.1-20.0 wt% based on the total weight of the composite. The carbon nanotube is a single-wall carbon nanotube or a multi-wall carbon nanotube.
    • 目的:提供间位芳族聚酰胺/碳纳米管复合材料的制造方法,以制备具有比间位芳族聚酰胺均聚物更好的热稳定性,机械性能和电导率的间位芳族聚酰胺/碳纳米管复合材料。 构成:间位芳族聚酰胺/碳纳米管复合材料的制造方法包括通过将具有85重量%以上的重复单元结构的间位芳族聚酰胺均聚物进行溶液混合来制造间位芳族聚酰胺/碳纳米管复合体的步骤,所述重复单元结构选自化合物 由化学式3-5代表,和碳纳米管。 复合材料中碳纳米管的含量相对于复合材料的总重量为0.1-20.0重量%。 碳纳米管是单壁碳纳米管或多壁碳纳米管。
    • 7. 发明公开
    • 탄소나노튜브―g―폴리락티드 중합체, 폴리락티드/탄소나노튜브―g―폴리락티드 복합체, 및 이들의 제조방법
    • 碳纳米管聚丙烯聚合物,聚氨酯/碳纳米管聚乙烯复合材料及其制备方法
    • KR1020100092171A
    • 2010-08-20
    • KR1020090011414
    • 2009-02-12
    • 금오공과대학교 산학협력단
    • 정영규윤진태이상철
    • C08G63/08C08K7/22C08K3/04B82Y30/00
    • PURPOSE: A carbon nanotube-g-polylactide polymer and a polylactide/carbon nanotube-g-polylactide composite are provided to have a biodegradable property of a plastic, to obtain excellent electrical and mechanical properties, and to be used as fiber materials, polymer composite materials for a vehicle, and medical materials. CONSTITUTION: A method for manufacturing a carbon nanotube-g-polylactide polymer comprises the following steps: manufacturing a reactant by refluxing a mixed reactant liquid after manufacturing the mixed reactant liquid by dispersing carbon nanotubes in an acidic solution and after processing the mixed reactant liquid with ultrasonic waves; manufacturing an intermediate product after obtaining the reactant by neutralizing cooled reactant and obtaining a filtrate by filtering the neutralized reactant; and obtaining a final product by adding lactide to an organic reactant liquid after manufacturing the organic reactant liquid by melting the intermediate product and a catalyst to an organic solvent.
    • 目的:提供碳纳米管-g-聚丙交酯聚合物和聚丙交酯/碳纳米管-g-聚丙交酯复合物以具有塑料的生物降解性能,以获得优异的电气和机械性能,并且用作纤维材料,聚合物复合材料 车辆材料和医疗材料。 构成:制造碳纳米管-g-聚丙交酯聚合物的方法包括以下步骤:通过将碳纳米管分散在酸性溶液中并在处理混合反应物液体后,在制备混合反应物液体后,通过回流混合反应液体来制备反应物 超声波; 通过中和冷却的反应物获得反应物并通过过滤中和的反应物获得滤液来制造中间产物; 并通过将中间产物和催化剂熔化成有机溶剂来制造有机反应物液体后,通过向有机反应物液体中加入丙交酯获得最终产物。
    • 9. 发明公开
    • 그래핀 및 탄소나노튜브의 혼합 탄소나노입자가 도입된 선형저밀도폴리에틸렌 복합체와 그 제조방법
    • 石墨烯和碳纳米管的混合碳纳米管的线性低密度聚乙烯复合材料及其制造方法
    • KR1020130139003A
    • 2013-12-20
    • KR1020120062631
    • 2012-06-12
    • 금오공과대학교 산학협력단남인철
    • 정영규이재민남인철
    • C08L23/06C08K3/04C08K7/00C08J5/18
    • The present invention relates to a linear low density polyethylene composite reinforced with mixed carbon nanomaterials of graphene and carbon nanotubes, and a production method of the same which is capable of variously controlling the mixture ratio of the graphene and the carbon nanotubes when the weight ratio of the mixed carbon nanotubes of the graphene and the carbon nanotubes is the same compare to a linear low density polyethylene polymer for controlling the thermal, mechanical, and electrical properties of the linear low density polyethylene composite. The linear low density polyethylene composite is produced by melting and mixing the mixed carbon nanomaterials of the graphene and the carbon nanotubes and the linear low density polyethylene polymer. [Reference numerals] (AA) Volume electrical resistance (廓 · cm);(BB) Example 1;(CC) Example 2;(DD) Example 3;(EE) Example 4;(FF) Example 5;(GG) Example 6;(HH) Example 7;(II) MWCNT weight percentage (%) among 2.0 wt% mixed carbon nanoparticles
    • 本发明涉及用石墨烯和碳纳米管的混合碳纳米材料增强的线性低密度聚乙烯复合材料及其制造方法,其能够各种控制石墨烯和碳纳米管的重量比 石墨烯和碳纳米管的混合碳纳米管与用于控制线性低密度聚乙烯复合材料的热,机械和电学性能的线性低密度聚乙烯聚合物相同。 线性低密度聚乙烯复合材料通过熔融和混合石墨烯和碳纳米管的混合碳纳米材料和线性低密度聚乙烯聚合物来制备。 实施例3实施例3实施例3实施例3实施例3实施例3实施例3实施例3实施例3实施例3实施例3( 6;(HH)实施例7;(II)2.0重量%混合碳纳米颗粒中的MWCNT重量百分比(%)