• 제목/요약/키워드: heating elements

검색결과 264건 처리시간 0.022초

필름 히터를 이용한 스마트 팜 난방 성능 설계에 관한 연구 (A Study on the Design of Smart Farm Heating Performance using a Film Heater)

  • 김웅
    • 소성∙가공
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    • 제32권3호
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    • pp.153-159
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    • 2023
  • This paper presents the optimal design of a heating system using radiant heating elements for application in smart farms. Smart farming, an advanced agricultural technology, is based on artificial intelligence and the internet of things and promotes crop production. Temperature and humidity regulation is critical in smart farms, and thus, a heating system is essential. Radiant heating elements are devices that generate heat using electrical energy. Among other applications, radiant heating elements are used for environmental control and heating in smart farm greenhouses. The performance of these elements is directly related to their electrical energy consumption. Therefore, achieving a balance between efficient electrical energy consumption and maximum heating performance in smart farms is crucial for the optimal design of radiant heating elements. In this study, the size, electrical energy supply, heat generation efficiency, and heating performance of radiant heating elements used in these heating systems were investigated. The effects of the size and electrical energy supply of radiant heating elements on the heating performance were experimentally analyzed. As the radiant heating element size increased, the heat generation efficiency improved, but the electrical energy consumption also increased. In addition, increasing the electrical energy supply improved both the heat generation efficiency and heating performance of the radiant heating elements. Based on these results, a method for determining the optimal size and electrical energy supply of radiant heating elements was proposed, and it reduced the electrical energy consumption while maintaining an appropriate heating performance in smart farms. These research findings are expected to contribute to energy conservation and performance improvement in smart farming.

첨가제 변화에 따른 $MoSi_2$ 고온발열체의 전기적 특성 (A Study on Electrical $MoSi_2$ High Temperature Heating Elements by Additives)

  • 이후인;한상옥;구경완
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 하계학술대회 논문집 C
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    • pp.1405-1407
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    • 2001
  • It was studied to prepare high temperature heating elements using molybdenum disilicide($MoSi_2$). Molybdenum disilicide is widely used as material for manufacturing high temperature heating elements. $MoSi_2$ heating elements could be used at 1700-1900$^{\circ}C$. However, it is relatively expensive, and its demand depends on import. $MoSi_2$ powders was mixed with 4-5wt% of montmorillonites type bentonite as plasticizer and a small amount of $Si_3N_4$, $ThO_2$, and B as additives to prepare specimen of heating elements. Then, it was extruded, dried, sintered and machined followed by heating test. Effects of sintering conditions and amount of additives were investigated, It was sintered effectively at 1,350$^{\circ}C$ for five hours. Electrical resistivity was decreased with increasing of sintering temperature and time, and related with apparent density of the specimens. It was linealy decreased with increasing of sintered density. The heating elements thus prepared was stable at 1700$^{\circ}C$ and the physical properties such as specific electrical resistivity, hardness, apparent density, thermal expansion coefficient, and bending strength were almost identical with those of commercial heating elements.

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이규화몰리브덴 고온발열체의 전기적 특성 및 제조에 관한 연구 (The Electric Properties And Fabrication of High Temperature Heating Elements of $MoSi_2$)

  • 이후인;심건주;한상옥
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2001년도 하계학술대회 논문집
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    • pp.605-608
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    • 2001
  • Molybdenum disilicide is widely used for manufacturing high-temperature heating elements owing to its low electrical resistivity, good thermal conductivity, and ability to withstand oxidation at high temperatures. MoSi$_2$heating elements with 4-5wt% of montmorillonite type bentonite as plasticzer and a small amount of Si$_3$N$_4$, ThO$_2$, and B as additives was manufactured. Extruded rods of 3.7mmø and 6.7mmø diameter and 400mm long were fabricated using a vacuum extruder, which were then sinrered for 4-5 hrs. at the max. temperrature of 140$0^{\circ}C$. After 10 minute's oxidation treatment, the diameter of the rod is reduced. The heating elements thus prepared was stable at 1$700^{\circ}C$ and the physical properties such as specific electrical resistivity, hardness, apparent densisty, thermal expansion coefficient, and bending strength were almost identical with thoes of commercial heating elements. In this study we have tried to gain the practical knowledge of manufacturing MoSi$_2$heating elements so that it may be utilized later in a research of pilot scale and eventually be transferred to industry.

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전기자동차의 난방용 면상 후막히터의 제조방법과 성능에 관한 실험적 연구 (An Experimental Study on the Manufacturing Method and Performance of Planar Thick Film Heaters for Electric Vehicle Heating)

  • 이채열;임종한;이재욱;박상희
    • 한국산업융합학회 논문집
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    • 제27권3호
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    • pp.685-692
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    • 2024
  • Currently used heating elements are metal and non-metal heating elements, including various types of heaters, and resistance line heating elements have a problem of decreasing thermal efficiency over time, so to solve this problem, a planar heating element using high-purity carbon materials and oxidation-resistant inorganic compounds was applied. Through the manufacture of planar heating elements using CNT, ruthenium composite materials, and ruthenium oxide, physicochemical performance and capacity were increased, and instantaneous responsiveness was increased. Through thick film technology applicable to various base bodies, fine patterns were formed by the screening method in consideration of the fact that the performance of the heat source depends on the viscosity and pattern shape. The heating element was manufactured by thick film printing technology by mixing ruthenium oxide, CNT, Ag, etc. The characteristics of each paste were analyzed through viscosity measurement, and STS 430 was used as a base. Surface temperature and efficiency were measured by testing heaters manufactured for small wind tunnels and real-vehicle experiments. The surface temperature decreased as the air volume increased, and the optimal system boundary was found to be about 200 mm. Among the currently used heating elements, this paper manufactured a planar heating element using thick film technology to find out the relationship between air volume and temperature, and to study the surface temperature.

공동주택 주동형태별 세대위치에 따른 일사분석 및 난방부하 절감요소에 관한 연구 (A Study on Solar Radiation Analysis and Saving Elements of Heating Load according to the Location and Type of Housing in Multi-family Apartments)

  • 김수정;박두용;김강수
    • KIEAE Journal
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    • 제13권1호
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    • pp.47-55
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    • 2013
  • This study aims to evaluate the correlation between vertical solar radiation and the level of heating load according to the location and type of housing in multi-family apartments. This study shows that heating load is related with factors such as wall loss, window loss, ventilation loss and solar radiation gain. The heating load increases in the order of the middle floors, the highest floors and the lowest floors. The lowest and the highest floors are the most vulnerable floors, and it should be as emphasized as the middle floors. The heating load saving proposal contains 52 Alt. that shows heating load savings from min. 4% to max. 49%. The goal is to reduce the heating load of the highest and the lowest floors to the level of the middle floors. The result showed that there are 3 Alt. for the lowest floors and 16 Alt. for the highest floors as the heating load saving proposal. This study suggests integrated application to compose saving elements of heating load. so it could be utilized as a data for the construction of passive houses.

유연한 탄화규소 섬유 로프 발열체의 제조와 저항 발열 특성 (Fabrication and resistance heating properties of flexible SiC fiber rope as heating elements)

  • 주영준;조광연
    • 한국결정성장학회지
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    • 제30권6호
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    • pp.258-263
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    • 2020
  • 고분자로부터 제조되는 탄화규소 섬유는 고온 내산화성, 인장강도, 그리고 경량성 때문에 세라믹 복합체의 강화재료로 주로 적용되고 있다. 본 연구에서 탄화규소 연속섬유는 유연한 로프 형태의 고온 발열체(> 650℃)로 제조하기 위해 사용되었다. 특히, 탄화규소 섬유 발열체는 고효율의 저항 발열을 위해 단면적과 길이에 대한 저항 변화를 2-point probe 방법으로 측정하고, 비정질 탄화규소 섬유에 존재하는 산소 불순물과 결정립의 크기 제어를 통해 로프형 섬유 발열체의 저항 값을 최적화하였다. 그 결과, 약 100~200 Ω의 저항 범위를 가지는 탄화규소 섬유 발열체는 탄소 섬유 발열체보다 1.5배의 우수한 소비전력 효율을 가졌다.

국부 근접 난방 모듈을 이용한 전기차 탑승자의 열쾌적성에 대한 실험적 연구 (Experimental study on Thermal Comfort of Electric Vehicle Occupants Using Local Proximity Heating Module)

  • 이채열 ;임종한;이재욱;박상희
    • 한국산업융합학회 논문집
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    • 제27권3호
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    • pp.655-663
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    • 2024
  • In order to meet the technological demand for indoor heating systems that ensure winter thermal comfort during the transition from internal combustion engines to electrification, a localized proximity heating module using surface heating elements was developed. The operational performance of heating module was tested in the low temperature chamber. The experiment conditions were varied by changing the chamber temperature (-10, 0℃), the air flow rate (6.2, 6.0, 4.2m3/h), the heater power (100, 80, 60, 40W). Thermal comfort model was confirmed using the CBE Thermal Comfort Tool applying ASHRAE standard 55. Under -10℃ condition, thermal comfort was satisfied at 23.4, 23.2℃ at power of 100W and air flow rate 6.0, 4.6m3/h. Under 0℃ condition, at power of 80W, air flow rate 6.2, 6.0m3/h, and at power of 60W, air flow rate 4.6m3/h showed results of 25.7, 26.1, 23.0℃, respectively, satisfying thermal comfort. This study analyzed the operating performance of the local proximity heating module in the low temperature chamber and applied thermal comfort model to prove applicability of local proximity heating module using surface heating elements and how to utilize the thermal comfort model.

탄소나노섬유복합체를 이용한 의류용 직물발열체의 제조 및 특성 (Preparation and Characterization of Carbon Nanofiber Composite Coated Fabric-Heating Elements)

  • 강현숙;이선희
    • 한국의류학회지
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    • 제39권2호
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    • pp.247-256
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    • 2015
  • This study prepared fabric-heating elements of carbon nanofiber composite to characterize morphologies and electrical properties. Carbon nanofiber composite was prepared with 15wt% PVDF-HFP/acetone solution, and 0, 1, 2, 4, 8, and 16wt% carbon nanofiber. Dispersion of solution was conducted with stirring for a week, sonification for 24 hours, and storage for a month, until coating. Carbon nanofiber composite coated fabrics were prepared by knife-edge coating on nylon fabrics with a thickness of 0.1mm. The morphologies of carbon nanofiber composite coated fabrics were measured by FE-SEM. Surface resistance was determined by KS K0555 and worksurface tester. A heating-pad clamping device connected to a variable AC/DC power supply was used for the electric heating characteristics of the samples and multi-layer fabrics. An infrared camera applied voltages to samples while maintaining a certain distance from fabric surfaces. The results of morphologies indicated that the CNF content increased specifically to the visibility and presence of carbon nanofiber. The surface resistance test results revealed that an increased CNF content improved the performance of coated fabrics. The results of electric heating properties, surface temperatures and current of 16wt% carbon nanofiber composite coated fabrics were $80^{\circ}C$ and 0.35A in the application of a 20V current. Carbon nanofiber composite coated fabrics have excellent electrical characteristics as fabric-heating elements.

코발트실리사이드 박막을 이용한 발열 엑츄에이터의 제작 (Fabrication of Heating Actuator Using Cobalt Silicided Thin Films)

  • 노영규;장호정
    • 한국마이크로전자및패키징학회:학술대회논문집
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    • 한국마이크로전자및패키징학회 2002년도 춘계 기술심포지움 논문집
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    • pp.234-237
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    • 2002
  • The cobalt silicide was formed OH POly-Si/SiO$_2$/Si Substrates by the E-beam evaporation of Co metal and rapid thermal annealing method for the application of heating actuators. The most stable CoSi$_2$crystal was obtained at temperature of above $700^{\circ}C$ for 20 sec in $N_2$ambient. From the SEM observation, the thickness and diameter of the heating elements were about $1{\mu}{\textrm}{m}$ and $50{\mu}{\textrm}{m}$, respectively. Temperature resistance coefficient of heating elements was found to be about 0.0014($1/^{\circ}C$) with $30~35\Omega$ of resistance.

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전기영동증착법으로 폴리이미드를 코팅한 탄소섬유의 발열 특성 연구 (Heating Characteristics of Carbon Fiber Polyimide-Coated by Electrophoretic Deposition)

  • 정건주;김태유;정승부;김광석
    • 마이크로전자및패키징학회지
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    • 제30권1호
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    • pp.90-94
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    • 2023
  • 금속 발열체는 높은 열손실과 화재 위험성 등의 문제점이 있어 우수한 열전도도와 전기전도도 특성을 갖는 탄소섬유가 대체소재로 각광받고 있다. 그러나 탄소섬유는 약 200℃ 이상에서 산화하여 단선되기 때문에 발열체 적용이 제한적이며, 현재 진공관 형태로 탄소섬유 발열체가 일부 사용되고 있다. 본 연구에서는 진공관을 사용하지 않고 대기 중탄소섬유 산화방지를 위해 전기영동증착법으로 탄소섬유 표면에 내열성이 높은 폴리이미드를 코팅하였으며 인가전압에 따른 코팅 두께와 내열성을 확인하였다. 폴리이미드를 코팅한 탄소섬유 발열체를 직렬 연결하여 만든 히터는 최대 292℃ 까지 안정적인 발열 특성을 보였으며 이는 열전달 시뮬레이션의 발열온도 결과와 유사하였다. 전기영동증착방법으로 코팅한 폴리이미드 층은 200℃ 이상에서 탄소섬유의 산화방지에 효과적이며 발열 안정성을 요구하는 2차전지, 우주항공, 전기자동차 등 다양한 발열 부품에 적용 가능할 것으로 기대된다.