Abstract:
PURPOSE: An external input device for a capacitance type touch panel is provided to transmit signals to the touch panel based on the variation of capacitance. CONSTITUTION: An inputting part(10) is in direct connection with a capacitance type touch panel. Conductive materials are included in the inputting part. An electrode part is in connection with the inputting part and is located on the touch panel. The inputting part and the electrode part are connected using a conductive line. A fixing part fixes one part of the conductive line at the lower part of the inputting part.
Abstract:
본 발명은 콤바인 시트의 회전각, 기울기 조절 및 추가적인 좌판의 기울기 조절을 통하여 작업자의 자세 변화에 따라 콤바인용 시트의 위치 및 구조를 유연하게 변경할 수 있으므로 작업자를 안정적으로 지지하고 체중을 분산시켜 신체 피로를 감소시키고 장시간 작업이 가능케 하며 작업효율을 향상시킬 수 있는 인간공학적 콤바인용 시트에 관한 것으로서, 작업과정에서 콤바인 운전자가 취하게 되는 다양한 자세를 지지하고, 자세 변화를 유연하게 제어할 수 있도록 본 발명의 콤바인용 시트는 좌판과 등받이를 포함하며 콤바인 운전석에 설치되는 콤바인용 시트에 있어서, 상기 콤바인용 시트를 회전시킬 수 있는 회전각 조절부와, 상기 콤바인용 시트의 기울기를 조절할 수 있는 기울기 조절부와, 상기 콤바인용 시트의 좌판의 기울기를 조절할 수 있는 좌판 기울기 조절부를 포함하는 것을 특징으로 한다.
Abstract:
PURPOSE: A driver's seat convenience evaluation method is provided to evaluate driver's seat which is individually suitable for an operator's own bodily structure by easily obtaining driver's seat convenience evaluation data based on body size of the operator. CONSTITUTION: An optical maker is attached to each site of the body of an operator which rides on the driver's seat. A coordinate of the optical maker attached to the each site of the body of the operator is measured(S100). An angle of a joint of the operator is obtained from the coordinate which is measured(S200). Convenience of the each joint us analyzed by comparing the angle with reference range(S300). Driver's seat convenience valuation data is reported according to an analyzed result(S400).
Abstract:
본 발명은 탄소 나노튜브-키토산 멤브레인을 포함한 프린터용 집진필터와 이를 포함하는 필터링 시스템 및 프린터에 대한 것으로서, 특히 전기장을 이용하여 프린터의 미세입자를 집진하는 탄소 나노튜브-키토산 멤브레인을 포함한 프린터용 집진필터와 이를 포함하는 필터링 시스템 및 프린터에 관한 것이다. 본 발명은 카본 나노튜브-키토산 멤브레인과 전기장을 이용하여 프린터에서 발생되는 미세입자를 효과적으로 집진할 수 있는 탄소 나노튜브-키토산 멤브레인을 포함한 프린터용 집진필터와 이를 포함하는 필터링 시스템 및 프린터를 제공할 수 있다. 또한, 본 발명은 환경 친화적인 재료인 카본 나노튜브와-키토산 멤브레인으로 제작된 탄소 나노튜브-키토산 멤브레인을 포함한 프린터용 집진필터와 이를 포함하는 필터링 시스템 및 프린터를 제공할 수 있다. 또한, 본 발명은 태양전지에서 공급된 전원으로 집진에 필요한 전기장을 형성하여 환경 친화적인 탄소 나노튜브-키토산 멤브레인을 포함한 프린터용 집진필터와 이를 포함하는 필터링 시스템 및 프린터를 제공할 수 있다. 집진, 필터, 탄소 나노튜브, 키토산, 전기장
Abstract:
본 발명은 광섬유의 소정 영역의 코어에 탄소나노구조체 층이 형성되어 있는 광섬유, 상기 광섬유를 포함하는 광섬유 화학 센서, 및 상기 광섬유 코어에 탄소나노구조체 층을 형성하는 방법에 관한 것으로서, 탄소나노구조체 층 표면의 굴절률이 가스 및 입자 등의 흡착에 대하여 민감하게 반응하는 것을 이용함으로써 상기 광섬유의 일부 코어 영역에 탄소나노구조체 층이 형성된 광섬유를 기체, 액체, 및 입자 등에 대한 센서에 응용할 수 있다. 광섬유, 탄소나노구조체, 그래핀, 센서
Abstract:
PURPOSE: A method for evaluating visibility of combine is provided to evaluate visibility of a development model without manufacturing a visible product of the combine. CONSTITUTION: A first database includes model structural data of combine. A second database includes the body size of a national farmer. The first database and the second database are generated(S100). The visible evaluation object combine is selected in the first database(S200). An average body measurement is detected in the second database(S300).
Abstract:
PURPOSE: An optical fiber with a carbon nano structure layer, an optical fiber chemical sensor, and a method for forming the carbon nano structure layer on an optical fiber core are provided to improve sensitivity. CONSTITUTION: A carbon nano structure layer(21) is formed on a core of an optical fiber and is selected from a group of graphene, graphite oxide, or carbon nano tube. A core(11) of the optical fiber is selected from a group of glass, plastic, or polymer.
Abstract:
PURPOSE: A dust collecting filter for a printer including a carbon nanotube-chitosan membrane, and a filtering system and a printer including the dust collecting filter are provided to effectively collect minute particles produced from a printer using the carbon nanotube-chitosan membrane and an electric field. CONSTITUTION: A dust collecting filter for a printer comprises a fixed member(110), a carbon nanotube-chitosan membrane(130), and an electrode(120). The carbon nanotube-chitosan membrane is formed of carbon nanotube and chitosan composition and placed in the fixed member. The electrode supplies power to the carbon nanotube-chitosan membrane.
Abstract:
A method of producing low resistivity SWNT bucky paper through Cu reducing reaction is provided to improve electric resistance of the bucky paper, which is useful in manufacturing microfine artificial muscles and super resistance composite materials by conducting electrolysis in a copper salt solution to combine the paper with copper molecules. The method comprises coupling of copper molecules to SWNT bucky paper(2) through copper reduction to lower electric resistivity. The copper reduction step is electrolysis of a copper salt solution and the electrolysis includes the steps of: preparing the copper salt; immersing a conductor connected to (+) pole and SWNT bucky paper connected to (-) pole in the copper salt; and applying voltage to both of (+) and (-) poles. The copper salt is copper acetate(1). SWNT is carbon nano-tube manufactured by a high pressure carbon monoxide manner. The low resistivity SWNT bucky paper has copper molecules combined thereto.
Abstract:
PURPOSE: A building energy simulation method is provided to improve user convenience by enabling information to be verified, simplified, modified, and generated with a middleware. CONSTITUTION: A building information input program(100) inputs a building shape and coded material information(20), and generates a building information file. A middleware(200) loads the building information file. A mapping module(230) maps the loaded, coded material information onto the loaded building shape. A converting module(240) converts the mapped building shape and coded material information into energy simulation program files. A building shape simplification module(211) simplifies the loaded building shape. [Reference numerals] (100) Building information input program; (20) Coded material information; (200) Middleware; (210) Checking module; (211) Building shape simplification module; (220) Viewing module; (221) Information modification module; (230) Mapping module; (231) Material library code module; (232) Material code generation module; (232a) Window and door code generation module; (233) Real use library code module; (234) Real use code generation module; (234a) Body information generation module; (234b) Lamp information generation module; (234c) Device information generation module; (234d) Infiltration information generation module; (234e) HVAC system information generation module; (240) Converting module; (250) Simulating module; (251) Display module; (252) Reporting module; (30) Coded real use information; (300) Energy simulation program; (400) Building information file; (500) File for energy simulation program; (600) Energy simulation program