• Title/Summary/Keyword: 전해물

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Fabrication of SOFC cell by transcription-method (전사법을 이용한 SOFC Cell 제작 및 출력특성)

  • Koo, JaBin;Choi, ByeongHyeon;Ji, MiJeong;An, YongTae;Hwang, HaeJin
    • 한국신재생에너지학회:학술대회논문집
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    • 2011.11a
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    • pp.91.1-91.1
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    • 2011
  • 고체산화물 연료전지(Solid Oxide Fuel Cell이하 SOFC)는 연료가 갖는 화학에너지를 연소과정 없이, 공기와 H2, CO, CH4와 같은 환원성 가스를 공급받아 $600{\sim}1000^{\circ}C$에서 전기화학적 반응을 통하여 직접 전기를 얻는 방식이다. SOFC는 $700^{\circ}C$ 이상의 고온에서 고체산화물이 연료와 공기가 반응하여 전기와 열을 동시에 생산하기 때문에 carnot cycle의 제한을 받지 않아 발전효율이 40% 이상으로 고효율이고, NOx 및 SOx를 배출하지 않아 무공해이며, moving parts가 없어 소음이 나지 않고, 건설과 증설이 지역이나 기후 조건에 제약 없이 용이하고, 다양한 용량이 가능하며, 고가의 백금 촉매를 사용하지 않으며, 수소, 석탄가스, 천연가스 등의 연료를 사용할 수 있는 장점이 있음, 또한 다향한 형태로 제작할 수 있으며 전해질이 고체에서 전해질 손실 및 보충에 문제가 없고 타 연료전지에 비해 개질기가 필요 없어 발전시스템이 간단하고 경량화가 가능하다. 전사법은 paste를 제작하여 전사용지에 Screen printing하여 건조 후 coating하는 방법으로 기존의 여러 coating 방법보다 제작이 용이하고 소재의 크기, 두께조절이 간편하며, 구성층의 표면조도나 굴곡에 대응이 용이한 방법이다. 본 실험에서는 paste 제조, 전사법을 이용하여 Anode, AFL, Electrolyte, CFL, Cathode전사지를 제작하고 이를 세라믹 평관형 지지체에 변수로 두께 조건별 Coating 한 후 $1400^{\circ}C$ 소결을 진행하여 SEM 분석으로 미세구조 관찰, 출력특성 및 Impedance을 확인하였다.

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Fabrication of low power micro-heater based on electrochemically prepared anodic porous alumnia (다공성 알루미늄 산화물을 이용한 저전력 마이크로 히터의 제조)

  • Park, Seung-Ho;Byeon, Seong-Hyeon;Lee, Dong-Eun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2016.11a
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    • pp.116.1-116.1
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    • 2016
  • 반도체 가스센서에서는 가연성 및 탄화수소계 가스를 감지 하기 위해서 $100{\sim}500^{\circ}C$ 이상의 동작온도를 필요로 한며, 이에 따라 반도체식 가스센서의 마이크로 히터 소재는 고온에서 열적 안정성이 있는 소재가 요구된다. 현재 상용화되고 있는 반도체식 가스센서는 실리콘(Silicon) 기반의 MEMS 기술을 이용한 가스센서이며, 구조적으로나 성능적 한계가 드러남에 따라 실리콘 이외의 다양한 재료의 MEMS 응용기술 개발이 필요한 실정이다. 본 연구에서는 이러한 실리콘의 재료적 한계를 극복하기 위해 다공성 알루미늄 산화물(AAO)을 기판으로 사용하여 마이크로 히터를 제작하였다. AAO의 제작에 앞서 CMP, 화학연마, 전해연마를 이용하여 적합한 전처리 공정을 선정하였고, AAO 제작 시 온도, 시간, 전압의 변수를 주어 마이크로 히터 기판에 적합한 공정을 탐색하였다. 마이크로 플랫폼은 MEMS 공정으로 제작되었으며, PR(Photo Resist)을 LPR(Liquid Photo Resist)과 DFR(Dry Film Resist)로 각각 2종 씩 선택하여 AAO에 적합한 제품을 선정하였다. 제작된 마이크로 히터는 $1.8mm{\times}1,8mm$로 소형화 하였고, 열손실의 제어를 위해 열확산 방지층을 추가하였다. 구동 온도, 소비전력, 장시간 구동시 안정성의 측정 및 평가는 적외선 열화상 카메라와 kiethly 2420 source meter를 이용하여 측정하였으며, 열확산 방지층의 유 무에 따른 온도 분포 및 소비전력을 비교평가 하였다. 최종적으로는 현재 사용화 되어있는 가스센서들의 소비전력과 비교 평가 하여 논의 하였다.

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A Comparison of the Discharged Products in Environmentally Benign Li-O2 and Na-O2 Batteries (친환경의 리튬 - 공기전지와 소듐 - 공기전지의 방전 생성물 비교 분석 연구)

  • Kang, Jungwon
    • Resources Recycling
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    • v.25 no.3
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    • pp.82-87
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    • 2016
  • The discharged products of Li-$O_2$ and Na-$O_2$ batteries using ether-based electrolyte as next-generation battery system were analyzed. The morphology of the discharged products showed millet-like shape in the both battery systems by FESEM. However, the discharged product, $Li_2O_2$ showed amorphous-like form in the Li-$O_2$ cell while crystalline $NaO_2$ is formed in the Na-$O_2$ cell when confirmed by X-ray diffraction. In this work, we comprehended a principle operating mechanism of Li-$O_2$ and Na-$O_2$ battery.

Substitution of Fe-oxide for capacity improvement of $LiMn_2O_4$ cathode material ($LiMn_2O_4$ 양극 물질의 용량 특성 향상을 위한 Fe산화물 치환)

  • Lee, Dae-Jin;Jee, Mi-Jung;Choi, Byung-Hyun;Wai, Yin-Loo;Bae, Hyeon
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.11a
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    • pp.293-293
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    • 2007
  • 현재 활발하게 진행되고 있는 이차전지 양극 물질 중 저렴한 가격과 친환경성으로 각광받고 있는 $LiMn_2O_4$ spinel 산화물은 여러 장점에도 불구하고 용량 값이 기존 알려져 있던 Co-계 산화물에 비해 떨어지고 cycle 특성 역시 현저하게 이어진다. 이는 Mn이 전해액과의 반응에 있어 구조적인 안정성을 지니지 못하여 용출되어 나타나는 특성이다. 이번 연구에서는 Mn의 용출을 저지하고 용량의 향상을 이룰 수 있는 전이금속 중 Fe산화물을 치환하여 구조적 안정성을 갖도록 하였다. Fe산화물 치환을 통해 기본적 물성의 변화와 전기적 특성 변화를 측정하였고 공정에서의 온도 및 입도에 따른 영향도 확인하였다. Fe산화물은 Mn 자리의 3+와 4+의 자리에 치환되어 용량을 증대시키고 사이클 특성을 10회 기준으로 20%가량 향상시키는 효과를 가져왔다.

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Evaluation on Design Factors of Electrolytic Flotation Reactor by Measuring Polarization Curve (분극곡선 측정을 통한 전해부상조의 설계인자 평가)

  • Lim, Bong-Su;Jin, Jing-Zhu;Choi, Chan-Soo
    • Journal of Korean Society on Water Environment
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    • v.23 no.2
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    • pp.244-250
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    • 2007
  • This study was carried out to obtain the optimum design factors for an eletrolytric flotation reactor. When the effluent of the leachate treatment facility was treated under the condition of 10 volts, 30 minutes, at the Al-Al electrode system; COD removal efficiency was 45%, and total phosphorus removal efficiency was 98%. The high removal efficiency was caused by the fact that phosphate was removed by leaching $Al^{3+}$ from two electrodes. The leachate containing high ammonium nitrogen concentration was treated by a batch test under the condition of 60 minutes reaction time and added chloride ion; ammonium nitrogen removal efficiency was 89%. This high efficiency was affected by added chloride ion to wastewater. To find the optimum current density and voltage of the leachate containing chloride ion (ratio of $Cl^-/NH_4-N$ is 11) a electrochemical polarization curve was used. These values were found to be $4.5mA/cm^2$ and about 2.1 V, respectively. When C-Al electrode system was used at a batch test, the total nitrogen removal efficiency was increased by 1.8 to 3.3 times, compared to Al-Al electrode system due to high $Cl_2$ gas production.

Effects of Nitrate Electrolyte as the MAO process for Ceramic Coating treatments of AZ31 alloy (MAO법을 이용한 산화피막처리에서 질산염 전해액성분 첨가에 따른 AZ31합금의 표면코팅 특성)

  • Cho, Young-Hee;Jang, Kyong-Soo;Park, Sei-He;Lee, Ho-Jeong;Lee, Tae-Haeng
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.13 no.10
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    • pp.4365-4370
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    • 2012
  • AZ31 Mg alloy were coated by Macro Arc Oxidation(MAO) with 3 types of electrolyte and various coating times at 4A/$cm^2$. The Surface morphology of coatings became lager pores and surface crack initiated as the coating time increased. The thickness and micro-hardness of coatings increased as the coating time increased. also. The phase of coatings on AZ31 alloy consisted of MgO, $Mg_2SiO_4$ and $MgAl_2O_4$ oxides. The salt spray corrosion resistance of coated AZ31 alloys revealed excellent corrosion resistance in 5% NaCl solution for 168hr.

Secondary Concentration Technology of Brine from Membrane Seawater Desalination Process with Electrodialysis (전기투석을 이용한 분리막 담수화 공정 배출 농축수의 이차 농축기술)

  • Moon, Jeong-Ki;Park, Kwang-Seok;Yoo, Yoon-Ki;Yun, Young-Ki
    • Transactions of the KSME C: Technology and Education
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    • v.1 no.1
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    • pp.69-73
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    • 2013
  • This study is about the secondary concentration technology using electrodialysis process for minimum discharge and maximize recovery ratio from seawater desalination by reverse osmosis process. The experimental method adopted the constant voltage driving method and, concentrated/desalination volume capacity ratio changes, voltage changes and electrolyte types. Multi-ion membrane is used, aiming to derive conditions to minimize the TDS concentration of desalination water, to minimize the volumes of secnodary concentraion water and minimizing the power efficiency. The results of this study are as follows. The optimal ratio of concentraion/desalination volume is 1:5, the final TDS concentration of desalinated water is 5.32g/l, the final secnodary concentrated water salinity is 17.07% and electric energy demands of desalinated water is $16.74kWh/m^3$.

Ionic Equilibria in $ZnSO_4-Na_2SO_4-H_2SO_4-NaOH-H_2O$ System ($ZnSO_4-Na_2SO_4-H_2SO_4-NaOH-H_2O$계의 이온 평형)

  • 이만승;박현주;나춘기
    • Resources Recycling
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    • v.11 no.1
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    • pp.19-25
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    • 2002
  • For $ZnSO_4$-$Na_2$$SO_4$-$H_2$ $SO_4$-$NaOH-H_2$O system, pH of solutions with different electrolyte concentrations was measured at $25^{\circ}C$ and ionic equilibria were analyzed by using K-value method. Activity of water and activity coefficients of solutes were calculated by Pitzer equation. The equilibrium concentration and activity coefficients of solutes were calculated from initial experimental conditions. At high ionic strength of 4m, the pH values calculated were in good agreement with those measured. In the experimental ranges of ionic strength of solution from 3.5 to 4.3 m, the mean activity coefcient of $ZnSO_4$calculated agreed well with those obtained from literature.

The PWM Control Which used Microprocessor for Intensity Control of Acid Ion Water (산성이온수 농도제어를 위한 Microprocessor를 이용한 PWM 제어)

  • Kwon, Yunjung;Nam, Sangyep
    • Journal of the Institute of Electronics and Information Engineers
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    • v.50 no.7
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    • pp.269-274
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    • 2013
  • We are used with the alkaline ion water which an application field does to object for drinking water compare with the alkaline ion water which asked ion acid electrolysis so as to be very different. This is used with sterilization disinfection use by residual chlorine in case of strong acidity according to ph intensity, and in case of middle acidity use by washing and face washing, and mix with meal materials in case of weak acidity widely usable in cooking. Acid ion water generates as we electrolyze water. Chlorine gas and sodium hydroxide etc. was generated at electrolysis process, and we have toward sterilizing power. Derelicts such as chlorine, phosphorus, sulfur etc. are gathered from a negative ion, and we make acid ion water to + electrode direction in electrolysis. We used a diaphragm in order to disconnect too acid water and alkaline water. We implemented so that the acid water which it came down to three kinds of PWM voltage to PWM (pulse width modulation) control, and implementation method of ph intensity change authorized ph intensity between weak acidity to electrode in strong acidity as we used Microprocessor, and intensity was adjusted successively by PWM control was generated.

Improved Cycling Ability of Si-SiO2-graphite Composite Battery Anode by Interfacial Stabilization (계면안정화를 통한 Si-SiO2-흑연 복합재 음극의 전기화학적 특성 개선)

  • Min, Jeong-Hye;Bae, Young-San;Kim, Sung-Su;Song, Seung-Wan
    • Journal of the Korean Electrochemical Society
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    • v.15 no.3
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    • pp.154-159
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    • 2012
  • Structural volume change occurring on the Si-based anode battery materials during alloying/dealloying with lithium is noticed to be a major drawback responsible for a limited cycle life. Silicon monoxide has been reported to show relatively improved cycling performance compared to Si-containing materials for rechargeable lithium batteries, due to the structural buffering role of in-situ formed $Li_2O$ and lithium silicate during the reaction of silicon monoxide and lithium. Here we report improved cycling ability of interfacially stabilized Si-$SiO_2$-graphite composite anode using silane-based electrolyte additive for rechargeable lithium batteries, which includes low cost silicon dioxide for structural stabilization and graphite for enhanced conductivity.