• 제목/요약/키워드: Heat reduction process

검색결과 438건 처리시간 0.027초

Deep Submicron 공정의 멀티미디어 SoC를 위한 저전력 움직임 추정기 아키텍쳐 (Low-Power Motion Estimator Architecture for Deep Sub-Micron Multimedia SoC)

  • 연규성;전치훈;황태진;이성수;위재경
    • 대한전자공학회논문지SD
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    • 제41권10호
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    • pp.95-104
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    • 2004
  • 본 논문에서는 0.13㎛ 이하의 deep sub-micron 공정처럼 누설 전류가 심한 공정을 이용하여 멀티미디어 SoC를 설계할 때, 가장 전력 소모가 높은 움직임 추정 기법의 전력 소모를 줄이기 위한 저전력 움직임 추정기의 아키텍쳐를 제안하였다. 제안하는 아키텍쳐는 기존의 동적 전력 소모만을 고려한 구조와는 달리 정적 전력 소모까지 고려하여 누설 전류가 심한 공정에 적합한 구조로, 효율적인 전력 관리가 필수적인 동영상 전화기 등의 각종 휴대용 정보기기 단말기에 적합한 형태이다. 제안하는 아키텍쳐는 하드웨어 구현이 용이한 전역 탐색 기법 (full search)을 기본으로 하며 동적 전력 소모를 줄이기 위하여 조기 은퇴(early break-off) 기법을 도입하였다. 또한 정적 전력 소모를 줄이기 위하여 전원선 잡음을 고려한 메가블록 전원 차단 기법을 사용하였다. 제안된 아키텍쳐를 멀티미디어 SoC에 적용하였을 때의 효용성을 검증하기 위해 시스템 수준의 제어 흐름과 저전력 제어 기법을 개발하였으며, 이를 바탕으로 시스템 수준에서의 소모 전력을 계산하였다. 모의실험 결과 0.13㎛ 공정에서 전력 소모가 50% 정도로 감소함을 확인할 수 있었다. 선폭의 감소와 칩 내부 발열량의 증가로 인한 누설 전류의 증가를 고려할 때, 기존의 동적 전력 소모만을 고려한 구조는 전력 감소 효율이 점점 나빠짐에 반하여 제안하는 움직임 추정기 아키텍쳐는 안정적인 전력 감소 효율을 보여주었다.

망간산화물(NMO, MnO2, Mn2O3)을 이용한 저온에서의 NH3-SCR의 반응속도 연구 (A Reaction Kinetic for Selective Catalytic Reduction of NOx with NH3 over Manganese Oxide (NMO, MnO2, Mn2O3) at Low Temperature)

  • 김민수;홍성창
    • 청정기술
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    • 제24권4호
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    • pp.307-314
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    • 2018
  • 본 연구에서는 NMO (Natural Manganese Ore), $MnO_2$, $Mn_2O_3$ 촉매를 산소 존재 하에 저온에서 $NH_3$를 환원제로 이용하여 질소산화물(NOx)을 제거하는 선택적 촉매 환원법에 사용되었다. NMO의 경우, 안정성 실험에서 질소산화물 전환율이 423 K에서 100시간 후에도 변하지 않는 것을 확인하였다. 동력학 실험의 경우, 열 및 물질전달이 영향을 주지 않는 영역에서 수행하였다. 정상상태에서의 반응속도 연구는 저온 SCR반응에서 암모니아에 대하여 0차이고 일산화질소에 대해서는 0.41 ~ 0.57차였으며 산소에 대해서는 0.13 ~ 0.26차인 것을 확인하였다. 온도가 증가할 때, 암모니아와 산소 농도의 결과에 따라 반응차수가 감소함을 확인하였다. 촉매 표면에 해리흡착 된 암모니아와 가스상 일산화질소(E-R 모델)와의 반응 및 흡착 된 일산화질소(L-H 모델)와의 반응을 확인하였다.

TiO2를 이용한 질소산화물 제거 특성 평가 (Evaluation of nitrogen oxide removal characteristics using TiO2)

  • 박준규;임희아;박영구
    • 한국응용과학기술학회지
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    • 제36권2호
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    • pp.668-675
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    • 2019
  • 대기오염물질 중 미세먼지는 심각한 사회적 환경문제로 인식되고 있다. 미세먼지의 원인 물질 중 하나인 질소산화물(NOx)은 석탄화력발전소의 연소공정에서 주로 발생하므로 효율적인 NOx 제거가 필요한 실정이다. 본 연구에서는 선택적 촉매 환원법(Selective Catalytic Reduction, SCR)을 이용한 NOx 제거에서 $TiO_2$ 광촉매의 NO 제거효율을 연구하였다. NO 제거효율을 평가하기 위해 발열제가 내장된 $Al_2O_3$ 기판 표면에 $TiO_2$ 촉매와 인산염의 접착 바인더를 혼합하여 도포한 후 제조된 기판을 열처리하면서 실험을 수행하였다. 온도에 따른 촉매의 NO 제거효율을 평가하였고, 촉매의 물리화학적 특성을 위하여 XRD, SEM, TG-DTA, BET 분석을 수행하였다. NOx 제거 효율은 시간에 따른 온도변화($250^{\circ}C{\sim}500^{\circ}C$)로 20분에서 제거효율은 58.7%~65.9%이며, 30분에서 63.7%~66.0%로 나타났다. 질소산화물 제거용 SCR로 사용되는 $TiO_2$$300^{\circ}C$가 제거효율이 가장 효율적인 것으로 판단된다.

Role of Citrate Synthase in Acetate Utilization and Protection from Stress-Induced Apoptosis

  • Lee, Yong-Joo;Kang, Hong-Yong;Maeng, Pil Jae
    • 한국미생물학회:학술대회논문집
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    • 한국미생물학회 2008년도 International Meeting of the Microbiological Society of Korea
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    • pp.39-41
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    • 2008
  • The yeast Saccharomyces cerevisiae has been shown to contain three isoforms of citrate synthase (CS). The mitochondrial CS, Cit1, catalyzes the first reaction of the TCA cycle, i.e., condensation of acetyl-CoA and oxaloacetate to form citrate [1]. The peroxisomal CS, Cit2, participates in the glyoxylate cycle [2]. The third CS is a minor mitochondrial isofunctional enzyme, Cit3, and related to glycerol metabolism. However, the level of its intracellular activity is low and insufficient for metabolic needs of cells [3]. It has been reported that ${\Delta}cit1$ strain is not able to grow with acetate as a sole carbon source on either rich or minimal medium and that it shows a lag in attaining parental growth rates on nonfermentable carbon sources [2, 4, 5]. Cells of ${\Delta}cit2$, on the other hand, have similar growth phenotype as wild-type on various carbon sources. Thus, the biochemical basis of carbon metabolism in the yeast cells with deletion of CIT1 or CIT2 gene has not been clearly addressed yet. In the present study, we focused our efforts on understanding the function of Cit2 in utilizing $C_2$ carbon sources and then found that ${\Delta}cit1$ cells can grow on minimal medium containing $C_2$ carbon sources, such as acetate. We also analyzed that the characteristics of mutant strains defective in each of the genes encoding the enzymes involved in TCA and glyoxylate cycles and membrane carriers for metabolite transport. Our results suggest that citrate produced by peroxisomal CS can be utilized via glyoxylate cycle, and moreover that the glyoxylate cycle by itself functions as a fully competent metabolic pathway for acetate utilization in S. cerevisiae. We also studied the relationship between Cit1 and apoptosis in S. cerevisiae [6]. In multicellular organisms, apoptosis is a highly regulated process of cell death that allows a cell to self-degrade in order for the body to eliminate potentially threatening or undesired cells, and thus is a crucial event for common defense mechanisms and in development [7]. The process of cellular suicide is also present in unicellular organisms such as yeast Saccharomyces cerevisiae [8]. When unicellular organisms are exposed to harsh conditions, apoptosis may serve as a defense mechanism for the preservation of cell populations through the sacrifice of some members of a population to promote the survival of others [9]. Apoptosis in S. cerevisiae shows some typical features of mammalian apoptosis such as flipping of phosphatidylserine, membrane blebbing, chromatin condensation and margination, and DNA cleavage [10]. Yeast cells with ${\Delta}cit1$ deletion showed a temperature-sensitive growth phenotype, and displayed a rapid loss in viability associated with typical apoptotic hallmarks, i.e., ROS accumulation, nuclear fragmentation, DNA breakage, and phosphatidylserine translocation, when exposed to heat stress. Upon long-term cultivation, ${\Delta}cit1$ cells showed increased potentials for both aging-induced apoptosis and adaptive regrowth. Activation of the metacaspase Yca1 was detected during heat- or aging-induced apoptosis in ${\Delta}cit1$ cells, and accordingly, deletion of YCA1 suppressed the apoptotic phenotype caused by ${\Delta}cit1$ mutation. Cells with ${\Delta}cit1$ deletion showed higher tendency toward glutathione (GSH) depletion and subsequent ROS accumulation than the wild-type, which was rescued by exogenous GSH, glutamate, or glutathione disulfide (GSSG). Beside Cit1, other enzymes of TCA cycle and glutamate dehydrogenases (GDHs) were found to be involved in stress-induced apoptosis. Deletion of the genes encoding the TCA cycle enzymes and one of the three GDHs, Gdh3, caused increased sensitivity to heat stress. These results lead us to conclude that GSH deficiency in ${\Delta}cit1$ cells is caused by an insufficient supply of glutamate necessary for biosynthesis of GSH rather than the depletion of reducing power required for reduction of GSSG to GSH.

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상용급 석탄가스화플랜트 최적설계에 관한 연구 (A study on the engineering optimization for the commercial scale coal gasification plant)

  • 김병현;민종선;김재환
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 추계학술대회 초록집
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    • pp.131.1-131.1
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    • 2010
  • This study was conducted for engineering optimization for the gasification process which is the key factor for success of Taean IGCC gasification plant which has been driven forward under the government support in order to expand to supply new and renewable energy and diminish the burden of the responsibility for the reduction of the green house gas emission. The gasification process consists of coal milling and drying, pressurization and feeding, gasification, quenching and HP syngas cooling, slag removal system, dry flyash removal system, wet scrubbing system, and primary water treatment system. The configuration optimization is essential for the high efficiency and the cost saving. For this purpose, it was designed to have syngas cooler to recover the sensible heat as much as possible from the hot syngas produced from the gasifier which is the dry-feeding and entrained bed slagging type and also applied with the oxygen combustion and the first stage cylindrical upward gas flow. The pressure condition inside of the gasifier is around 40~45Mpg and the temperature condition is up to $1500{\sim}1700^{\circ}C$. It was designed for about 70% out of fly ash to be drained out throughout the quenching water in the bottom part of the gasifier as a type of molten slag flowing down on the membrane wall and finally become a byproduct over the slag removal system. The flyash removal system to capture solid particulates is applied with HPHT ceramic candle filter to stand up against the high pressure and temperature. When it comes to the residual tiny particles after the flyash removal system, wet scurbbing system is applied to finally clean up the solids. The washed-up syngas through the wet scrubber will keep around $130{\sim}135^{\circ}C$, 40~42Mpg and 250 ppmv of hydrochloric acid(HCl) and hydrofluoric acid(HF) at maximum and it is turned over to the gas treatment system for removing toxic gases out of the syngas to comply with the conditions requested from the gas turbine. The result of this study will be utilized to the detailed engineering, procurement and manufacturing of equipments, and construction for the Taean IGCC plant and furthermore it is the baseline technology applicable for the poly-generation such as coal gasification(SNG) and liquefaction(CTL) to reinforce national energy security and create new business models.

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솔-젤법에 의한 다공성 실리카 세라믹스의 제조-$H_2O/TEOS$ 몰비의 영향- (Porous silica ceramics prepared by sol-gel process-Effect of $H_2O/TEOS$ molar ratio-)

  • 이진휘;김화중;이준
    • 한국세라믹학회지
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    • 제34권2호
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    • pp.216-224
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    • 1997
  • TEOS와 에탄올의 양을 고정하고 H2O/TEOS의 몰비가 2.6-59.0이 되는 범위에서 염산촉매를 사용하여 다공성 실리카 세라믹을 제조하였다. 서로 다른 조성의 솔 9종을 만든 후 젤화시간 측정, TG/DTA에 의한 건조시료의 열분석 및 FT-IR과 X-ray diffractometer에 의한 중간생성물의 특성분석을 수행하였고 50$0^{\circ}C$까지 열처리한 시료의 FT-IR에 의한 SiO2폴리머 분석, N2-adsorption isotherm을 이용한 비표면적과 기공크기분포 조사 및 TEM에 의한 SiO2폴리머의 형태와 기공의 변화를 조사하였다. 적용된 조성 및 촉매의 농도에서 최소 젤화반응시간은 TEOS1몰달 물의 양이 약 11몰에서, 가장 높은 중합도는 약 8-18몰에서, 그리고 가장 큰 비표면적값은 약 11몰에서 보였다. 이것은 물의 양이 약 11몰일 때 중합반응이 가장 빠르게 진행하였음을 의미한다. 결론적으로, 물의 양이 증가함에 따라서 약 11몰까지는 반응이 빠르게 진행되나 그 이상의 물이 사용될 경우 과잉의 물이 반응저해요인으로 작용하여 젤화시간의 지연 및 비표면적의 감소를 보인다.

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Quantitative analysis of formation of oxide phases between SiO2 and InSb

  • Lee, Jae-Yel;Park, Se-Hun;Kim, Jung-Sub;Yang, Chang-Jae;Kim, Su-Jin;Seok, Chul-Kyun;Park, Jin-Sub;Yoon, Eui-Joon
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2010년도 제39회 하계학술대회 초록집
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    • pp.162-162
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    • 2010
  • InSb has received great attentions as a promising candidate for the active layer of infrared photodetectors due to the well matched band gap for the detection of $3{\sim}5\;{\mu}m$ infrared (IR) wavelength and high electron mobility (106 cm2/Vs at 77 K). In the fabrication of InSb photodetectors, passivation step to suppress dark currents is the key process and intensive studies were conducted to deposit the high quality passivation layers on InSb. Silicon dioxide (SiO2), silicon nitride (Si3N4) and anodic oxide have been investigated as passivation layers and SiO2 is generally used in recent InSb detector fabrication technology due to its better interface properties than other candidates. However, even in SiO2, indium oxide and antimony oxide formation at SiO2/InSb interface has been a critical problem and these oxides prevent the further improvement of interface properties. Also, the mechanisms for the formation of interface phases are still not fully understood. In this study, we report the quantitative analysis of indium and antimony oxide formation at SiO2/InSb interface during plasma enhanced chemical vapor deposition at various growth temperatures and subsequent heat treatments. 30 nm-thick SiO2 layers were deposited on InSb at 120, 160, 200, 240 and $300^{\circ}C$, and analyzed by X-ray photoelectron spectroscopy (XPS). With increasing deposition temperature, contents of indium and antimony oxides were also increased due to the enhanced diffusion. In addition, the sample deposited at $120^{\circ}C$ was annealed at $300^{\circ}C$ for 10 and 30 min and the contents of interfacial oxides were analyzed. Compared to as-grown samples, annealed sample showed lower contents of antimony oxide. This result implies that reduction process of antimony oxide to elemental antimony occurred at the interface more actively than as-grown samples.

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Polymeric Material Application for The Production of Ceramic Foam Catalyst

  • Sangsuriyan, Anucha;Yeetsorn, Rungsima;Tungkamani, Sabaithip;Sornchamni, Thana
    • International Journal of Advanced Culture Technology
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    • 제3권1호
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    • pp.21-30
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    • 2015
  • Ceramic foams are prepared as positive images corresponding to a plastic foam structure which exhibits high porosities (85-90%). This structure makes the ceramic foams attractive as a catalyst in a dry reforming process, because it could reduce a high pressure drop problem. This problem causes low mass and heat transfers in the process. Furthermore, the reactants would shortly contact to catalyst surface, thus low conversion could occur. Therefore, this research addressed the preparation of dry reforming catalysts using a sol-gel catalyst preparation via a polymeric sponge method. The specific objectives of this work are to investigate the effects of polymer foam structure (such as porosity, pore sizes, and cell characteristics) on a catalyst performance and to observe the influences of catalyst preparation parameters to yield a replica of the original structure of polymeric foam. To accomplish these objectives industrial waste foams, polyurethane (PU) and polyvinyl alcohol (PVA) foams, were used as a polymeric template. Results indicated that the porosity of the polyurethane and polyvinyl alcohol foams were about 99% and 97%. Their average cell sizes were approximate 200 and 50 micrometres, respectively. The cell characteristics of polymer foams exhibited the character of a high permeability material that can be able to dip with ceramic slurry, which was synthesized with various viscosities, during a catalyst preparation step. Next, morphology of ceramic foams was explored using scanning electron microscopy (SEM), and catalyst properties, such as; temperature profile of catalyst reduction, metal dispersion, and surface area, were also characterized by $H_2-TPR$ and $H_2-TPD$ techniques, and BET, respectively. From the results, it was found that metal-particle dispersion was relatively high about 5.89%, whereas the surface area of ceramic foam catalysts was $64.52m^2/g$. Finally, the catalytic behaviour toward hydrogen production through the dry reforming of methane using a fixed-bed reactor was evaluated under certain operating conditions. The approaches from this research provide a direction for further improvement of marketable environmental friendly catalyst production.

Flat Plate Type 소형 냉각소자 개발 (Development of Flat Plate Type Small Cooling Device)

  • 문석환;황건;유인규;조경익;유병곤
    • 대한설비공학회:학술대회논문집
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    • 대한설비공학회 2008년도 동계학술발표대회 논문집
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    • pp.170-174
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    • 2008
  • Recently, a problem related to the thermal management in portable electronic and telecommunication devices is becoming issued. That is due to the trend of slimness of the devices, so it is not easy to find the optimal thermal management technology for the devices. From now on, a pressed circular type cooling device has been mainly used, however the cooling device with thin thickness is becoming needed by the inner space constraint. In the present study, the silicon and metal flat plate type cooling device with the separated vapor and liquid flow path was designed and fabricated. Through the experimental study, the normal isothermal characteristic by vapor-liquid phase change was confirmed and the cooling device with 70mm of total length showed 6.8W of the heat transfer rate within the range of $4{\sim}5^{\circ}C$/W of thermal resistance. In the meantime, the metal cooling device was developed for commercialization. The device was designed to have all structures of evaporator, vapor flow path, liquid flow path and condenser in one plate. And an envelope of that could be completed by combining the two plates of same structure and size. And the simplicity of fabrication process and reduction of manufacturing cost could be accomplished by using the stamping technology for fabricating large flow paths relatively. In the future, it will be possible to develop the commercialized cooling device by revising the fabrication process and enhancing the thermal performance of that.

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각종 주물사의 특성과 주강품 주조에 적합한 인공사 선택 (Selection of Artificial Sand Suitable for Manufacturing Steel Castings through Evaluation of Various Foundry Sand Properties)

  • 김광식;김재형;김명준;김지태;권기명;김성규
    • 한국주조공학회지
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    • 제43권3호
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    • pp.107-136
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    • 2023
  • 주강품 사형주조에는 천연규사가 보편적으로 사용되었고, 규사의 열적특성 부족에 의한 소착결함 억제를 위해, 크로마이트사가 사용되기도 하였으나, 반복 사용에 의한 골재 열화, 시스템샌드 혼입 문제, 분리 제거의 어려움, 높은 밀도에 따른 조형 시 하중증가, 크롬 함유 폐기물이 되는 단점이 있다. 최근에는 주조업계의 중요한 과제로써 산업폐기물 저감 및 대기환경 개선이 부각되고 있다. 종래의 주물사 사용 시 발생되는 문제점 해결과 주조공장의 환경개선을 위해서, 천연사를 대체 적용할 수 있는 다양한 인공사가 개발되어 소개되고 있다. 인공사는 용융분사법으로 제조된 인공사와 조립소결법으로 제조된 인공사 및 분쇄법으로 제조된 인공사로 분류할 수 있으며, 원료광물의 종류, 제조공법에 따라 상이한 물리적 특성을 나타낸다. 본 연구에서는 각종 주물사의 물성, 주형강도, 물리적 내구성, 열적 내구성, 소착시험편 주조 등의 비교 평가시험을 하였다. 밀도에 따른 주물사 실사용량, 주물사 형상에 따른 주형강도, 주물사의 물리적 및 열적 내구성, 주물사의 내열특성을 종합적으로 고려하였을 때, 아크용사법으로 제조된 용융인공사 A1 또는 분말식화염용사법으로 제조된 용융인공사 B가 대형주강품 주조에 가장 적합한 구형의 인공사로 판단된다.