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    • 1. 发明专利
    • Oven having pyrolytic function
    • 具有光热功能的烤箱
    • JP2013257128A
    • 2013-12-26
    • JP2012271218
    • 2012-12-12
    • Lee Young Heeイ ヤンヒLEE, Young Hee
    • LEE YOUNGHEE
    • F24C7/04F23G7/06F24C1/00F24C15/20
    • F24C15/327F24C14/02F24C15/2014
    • PROBLEM TO BE SOLVED: To provide a pyrolyzer and a method thereof which purge a contaminant generated when heat is applied to food.SOLUTION: An oven contaminant pyrolyzer includes a heating means, a combustion tube, a combustion space, a connecting tube, and a ventilation part. The heating means is provided inside an oven cooking chamber, and is surrounded by the combustion tube to form the combustion space where air flows between the heating means and the combustion tube. The ventilation part is connected to the combustion tube via the connecting tube, moves air inside the cooking chamber to the combustion space, and exhausts the purged air to the outside. The ventilation part includes a fan which generates a flow of air. The connecting tube transmits an air pressure difference generated by the fan to the combustion tube, to generate a lower pressure in the cooking chamber than atmospheric pressure. The contaminant is not spread to the outside of the cooking chamber, and stays in the combustion space heated at 700°C or more by the heating means for at least 0.5 s or more to be thermally decomposed.
    • 要解决的问题:提供一种热解器及其方法,其用于吹扫向食物施加热量时产生的污染物。解决方案:烘箱污染物热解器包括加热装置,燃烧管,燃烧空间,连接管和 通风部分。 加热装置设置在烘箱烹饪室的内部,并且被燃烧管包围,以形成空气在加热装置和燃烧管之间流动的燃烧空间。 通风部分通过连接管连接到燃烧管,将烹饪室内的空气移动到燃烧空间,并将净化的空气排出到外部。 通风部包括产生空气流的风扇。 连接管将由风扇产生的空气压力差传递到燃烧管,以在烹饪室中产生比大气压更低的压力。 污染物不会扩散到烹饪室的外部,并且通过加热装置停留在700℃以上的燃烧空间中至少0.5秒以上进行热分解。
    • 5. 发明专利
    • BR0107638A
    • 2002-11-19
    • BR0107638
    • 2001-11-26
    • LEE YOUNG HEE
    • LEE YOUNG HEE
    • H05B6/64F24C7/02F26B3/347H05B6/74
    • The apparatus for uniformly dispersing the microwave comprises a body including a plurality of reflective portions which are made of materials capable of reflecting the microwave and have the horizontal top surfaces and vertical side surfaces. The width of the plurality of reflective portions is set as 1/n times as large as a wavelength lambdag of the microwave. The depth of each of the plurality of reflective portions may be set as a value obtained by multiplying the remainder, which is obtained by dividing the power of a natural number for the least primitive root of a prime number by the prime number, by the width of the reflective portion under a condition that a datum plane is defined by a height from the bottom surface corresponding to a value obtained by multiplying the width of the reflective portion by (prime number-1).
    • 9. 发明公开
    • Method of vertically aligning carbon nanotubes on substrates using thermal chemical vapor deposition with dc bias
    • 一种用于在基板上通过与Geichstromvorspannung热CVD的碳纳米管垂直取向方法
    • EP1134304A2
    • 2001-09-19
    • EP01302389.0
    • 2001-03-15
    • Samsung SDI Co. Ltd.Lee, Young-hee
    • Lee, Young-heeLee, Nae-sungKim, Jong-min
    • C23C16/44C23C16/26C01B31/02H01J9/02
    • B82Y30/00B82Y10/00B82Y40/00C01B32/162C01B2202/08C23C16/26C23C16/44C30B25/00C30B25/02C30B29/605H01J9/025H01J2201/30469Y10S427/102Y10S977/742Y10S977/842Y10S977/843Y10S977/89Y10S977/891
    • A method of vertically aligning pure carbon nanotubes on a large glass or silicon substrate at a low temperature using a low pressure DC thermal chemical vapor deposition method is provided. In this method, catalytic decomposition with respect to hydro-carbon gases is performed in two steps. Basically, an existing thermal chemical vapor deposition method using hydro-carbon gases such as acetylene, ethylene, methane or propane is used. To be more specific, the hydro-carbon gases are primarily decomposed at a low temperature of 400-500°C by passing the hydro-carbon gases through a mesh-structure catalyst which is made of Ni, Fe, Co, Y, Pd, Pt, Au or an alloy of two or more of these materials. Secondly, the catalytically- and thermally-decomposed hydro-carbon gases pass through the space between a carbon nanotube growing substrate and an electrode substrate made of Ni, Fe, Co, Y, Pd, Pt, Au or an alloy of two or more of these materials or an electrode substrate on which Ni, Fe, Co, Y, Pd, Pt, Au or an alloy of two or more of these materials is thinly deposited by sputtering or electron-beam evaporation, the space to which DC voltage has been applied. Thus, carbon nanotubes are vertically aligned at a temperature no grater than the glass melting point. The thus grown large carbon nanotube substrate can be applied directly to FEDs, lower the turn-on voltage for electron emission, simplify the process of manufacturing an FED, and significantly reduce the manufacturing costs of FEDs. Furthermore, an electrode substrate holder and a carbon nanotube growing substrate holder are designed to mount several electrode substrates and several carbon nanotube growing substrates simultaneously, whereby the productivity is increased.
    • 设置的垂直于大的玻璃或硅衬底在低温下使用低压DC热化学气相沉积法对准纯碳纳米管的方法。 在该方法中,相对于碳氢化合物气体催化分解以两个步骤进行。 基本上,使用碳氢气体的现有的热化学气相沉积法:使用诸如乙炔,乙烯,甲烷或丙烷。 更具体地,加氢碳气体主要在400-500℃的低温下通过的网状结构的催化剂使所述碳氢化合物气体的所有其由镍,铁,钴,Y,Pd中分解, 铂,金或两种合金或多个论文材料制成。 其次,catalytically-和热分解碳氢气体穿过生长衬底和由Ni,铁,钴,Y,钯,铂,金的或两种或更多种的合金的电极的衬底的碳纳米管之间的空间 论文材料或在其上的Ni,铁,钴,Y,钯,铂,金或两种或更多种本文材料的合金的电极衬底的薄薄地通过溅射或电子束蒸发沉积,向其中直流电压的空间已经 应用。 因此,碳纳米管垂直的温度下不对齐的磨碎器比玻璃熔点。 将该生长大的碳纳米管的衬底可被直接应用到的FED,降低导通电压的电子发射,简化制造FED的过程中,并显着降低的FED的制造成本。 进一步,上电极衬底保持器和碳纳米管生长的衬底保持器被设计为同时安装多个电极基板和若干碳纳米管生长基体,从而使生产率得以提高。