Abstract:
The present invention relates to an indoor ornamental plant cultivation device including a stand portion where a plurality of cultivation ports are arranged in a circumference; a lighting unit that emits a light source toward the cultivation ports from above the stand portion; and an ultrasonic wave humidification device that is disposed on an upper side of the lighting unit to generate cloud and mist and supply moisture to the cultivation port. The lighting unit that is capable of plant cultivation is disposed in the stand portion where the plurality of cultivation ports are arranged in a circular manner to be used as mood light. The ultrasonic wave humidification device that is disposed can be used as a moisture supply and indoor humidity adjusting device required for plant cultivation to provide fresh indoor environments. In addition, the present invention uses a home-use LED light source as the lighting unit, and thus plant cultivation is available at night as well as indoors where natural light is unavailable. Accordingly, sprout vegetable can be grown to be provided as food, and the lighting unit can be utilized as mood light. In addition, the present invention can provide the optimum conditions for plant cultivation because the LED light source having a wavelength range suitable for growth conditions of a cultivated plant is selectively used and replaced.
Abstract:
The present invention relates to a method for manufacturing a titanium dioxide (TiO_2) nano-dispersion solution for a dye-sensitized solar cell photoelectrode, the nano-dispersion solution, and a dye-sensitized solar cell manufactured using the nano-dispersion solution. More particularly, disclosed are the method for manufacturing titanium dioxide nano-dispersion solution for a dye-sensitized solar cell photoelectrode, the nano-dispersion solution manufactured by the same, and the dye-sensitized solar cell using the same, wherein the method comprises: a first mixing process for mixing, in a mixer, a composition including 5-30 parts by weight of titanium dioxide nano-particles, 0.5-10 parts by weight of a dispersing agent, and 60-90 parts by weight of an alcoholic solvent at a speed of 100-200 rpm for at least five hours; a second ultrasonic wave mixing process for carrying out dispersion of the mixture prepared in the first mixing process in an ultrasonic wave dispenser for 30-60 minutes; and a titanium dioxide particle size adjusting process by dispersing the dispersed material formed in the second ultrasonic wave mixing process through a bead mill such that the dispersed particle of the titanium dioxide has a size of 10-150 nm.
Abstract:
PURPOSE: A diffusion ink composition for patterning a light guide plate of a back light unit is provided to improve luminance and ink printing ability by using a nano dispersion technology. CONSTITUTION: A diffusion ink composition for patterning a light guide plate of a back light unit comprises 40-55 weight% of solvent, 10-15 weight% of inorganic nanoparticles(22), 10-20 weight% of polymethylmethacrylate beads, 20-30 weight% of acrylic copolymer(21) containing methylmethacrylate, 1-15 weight% of additive based on the total weight of the diffusion ink composition. The inorganic nanoparticles are manufactured by a liquid-chemistry method, and have an average particle diameter of 0.1-10 microns. The additive is one or more selected from a diluent, a dispersant, a silicon antifoaming agent, and a leveling agent.
Abstract:
본발명에의한열전소자가구성된실내관상용식물재배장치(100)는빛을조사(照射)하는광원이구성된실내관상용식물재배장치에있어서; 상기광원(125)에부착되어열을방출하는방열부(140)를포함하여구성된다. 따라서, 엘이디등의광원(125)에서발생하는열을효율적으로방열시키므로광원(125)의열에의해서식물이고사하는현상을방지할수 있고, 광원(125)의효율을향상시킬수 있고수명을연장시킬수 있는효과가있다.
Abstract:
본 발명은 광전극소재인 TiO 2 표면에 전기영동법을 사용하여 빠른 시간내에 염료를 흡착시켜 양산시 저비용, 고효율의 대면적의 염료 흡착이 가능한 연료감응형 태양전지용 고속염료 흡착장치에 관한 것이다. 이를 위해, 용액이 담지되고 광전극소재인 TiO 2 의 표면에 전기영동 반응이 일어나는 반응조(10)와 상기 반응조(10)에 공급되는 용액의 농도, 온도, 산도(PH) 및 용액량 등을 제어할 수 있는 제어장치(20)와 상기 반응조(10)에 구비되는 전극(13)에 전원을 공급하기 위한 정류장치(30)와 염료 등의 용액을 혼합하는 혼합탱크(50)와 사용되는 용액을 재활용하기 위한 리싸이클링장치(60)와 반응조(10)의 상태를 감지할 수 있는 반응조감지장치(80) 및 혼합탱크감지장치(90)로 구성되는 염료감응형 태양전지용 고속염료 흡착장치를 제공하게 된다.