• 제목/요약/키워드: slurry stability

검색결과 121건 처리시간 0.027초

Lanthanum Nickelates with a Perovskite Structure as Protective Coatings on Metallic Interconnects for Solid Oxide Fuel Cells

  • Waluyo, Nurhadi S.;Park, Beom-Kyeong;Song, Rak-Hyun;Lee, Seung-Bok;Lim, Tak-Hyoung;Park, Seok-Joo;Lee, Jong-Won
    • 한국세라믹학회지
    • /
    • 제52권5호
    • /
    • pp.344-349
    • /
    • 2015
  • An interconnect is the key component of solid oxide fuel cells that electrically connects unit cells and separates fuel from oxidant in the adjoining cells. To improve their surface stability in high-temperature oxidizing environments, metallic interconnects are usually coated with conductive oxides. In this study, lanthanum nickelates ($LaNiO_3$) with a perovskite structure are synthesized and applied as protective coatings on a metallic interconnect (Crofer 22 APU). The partial substitution of Co, Cu, and Fe for Ni improves electrical conductivity as well as thermal expansion match with the Crofer interconnect. The protective perovskite layers are fabricated on the interconnects by a slurry coating process combined with optimized heat-treatment. The perovskite-coated interconnects show area-specific resistances as low as $16.5-37.5m{\Omega}{\cdot}cm^2$ at $800^{\circ}C$.

Development of Alkali Metal Thermal-to-Electric Converter Unit Cells Using Mo/TiN Electrode

  • Seog, Seung-won;Choi, Hyun-Jong;Kim, Sun-Dong;Lee, Wook-Hyun;Woo, Sang-Kuk;Han, Moon-Hee
    • 한국세라믹학회지
    • /
    • 제54권3호
    • /
    • pp.200-204
    • /
    • 2017
  • Molybdenum (Mo), an electrode material of alkali metal thermal-to-electric converters (AMTEC), facilitates grain growth behavior and forms Mo-Na-O compounds at high operating temperatures, resulting in reduced performance and shortened lifetime of the cell. Mo/TiN composite materials have been developed to provide a solution for such issues. Mo is a metal that possesses excellent electrical properties, and TiN is a ceramic compound with high-temperature durability and catalytic activity. In this study, a dip-coating process with an organic solvent-based slurry was used as an optimal coating method to achieve homogeneity and stability of the electrodes. Cell performance was evaluated under various conditions such as the number of coatings, ranging from 1 to 3 times, and heat treatment temperatures of $800-1100^{\circ}C$. The results confirmed that the cell yielded a maximum power of 9.99 W for the sample coated 3 times and heat-treated at $900^{\circ}C$.

Analysis of electrochemical double-layer capacitors using a Natural Rubber-Zn based polymer electrolyte

  • Nanditha Rajapaksha;Kumudu S. Perera;Kamal P. Vidanapathirana
    • Advances in Energy Research
    • /
    • 제8권1호
    • /
    • pp.41-57
    • /
    • 2022
  • Electrochemical double-layer capacitors (EDLCs) based on solid polymer electrolytes (SPEs) have gained an immense recognition in the present world due to their unique properties. This study is about preparing and characterizing EDLCs using a natural rubber (NR) based SPE with natural graphite (NG) electrodes. NR electrolyte was consisted with 49% methyl grafted natural rubber (MG49) and zinc trifluoromethanesulfonate ((Zn(CF3SO3)2-ZnTF). It was characterized using electrochemical impedance spectroscopy (EIS) test, dc polarization test and linear sweep voltammetry (LSV) test. NG electrodes were made using a slurry of NG and acetone. EIS test, cyclic voltammetry (CV) test and galvanostatic charge discharge (GCD) test have been done to characterize the EDLC. Optimized electrolyte composition with NR: 0.6 ZnTF (weight basis) exhibited a conductivity of 0.6 x 10-4 Scm-1 at room temperature. Conductivity was predominantly due to ions. The electrochemical stability window was found to be from 0.25 V to 2.500 V. Electrolyte was sandwiched between two identical NG electrodes to fabricate an EDLC. Single electrode specific capacitance was about 2.26 Fg-1 whereas the single electrode discharge capacitance was about 1.17 Fg-1. The EDLC with this novel NR-ZnTF based SPE evidences its suitability to be used for different applications with further improvement.

노후 특수·화물 차량 PM/NOx 저감을 위한 SDPF 촉매 및 코팅 기술 연구 (A Study on Selective Catalytic Reduction on Diesel Particulate Filter Catalyst and Coating Technology the Removal of Particulate Matters and NOx for Old Special Cargo Vehicles)

  • 정관형;서필원;오형석;김종국;강소연;강정호;김현준;신병선
    • 공업화학
    • /
    • 제32권6호
    • /
    • pp.695-699
    • /
    • 2021
  • 본 연구에서는, 노후된 엔진을 사용하는 트럭 및 특수차량에서 배출되는 NOx 및 PM을 동시에 제거하기 위해 SDPF 후처리 시스템 연구를 수행하였다. 우선, SDPF의 SCR 촉매를 선정하기 위해서, V/TiO2와 Cu-zeolite 촉매의 de-NOx 성능을 비교하였으며, SCR 촉매특성분석은 BET, XRD 및 NH3-TPD를 통해 분석하였다. 촉매 활성시험 결과, Cu-zeolite 촉매가 가장 우수한 내열성을 보여주었다. 최적의 SDPF 코팅을 위해서, 목표로 설정된 입자 크기에 맞추어 슬러리를 제조하였다. SCR 코팅량에 따른 SDPF의 코팅안정성과 배압 결과, SDPF 촉매를 로딩량별로 A, B, C 샘플을 제작하여 코팅안정성과 배압 및 de-NOx 성능을 비교한 결과 B 샘플에서에서 가장 우수한 결과를 보였다. 최적 SDPF 후처리시스템에 대해 엔진동력계 시험을 실시하였으며, 시험결과 Eu-5 규제를 만족하였다.

전극 혼합 방식의 차이로 인한 특성 변화 최적화 (Optimization of Characteristic Change due to Differences in the Electrode Mixing Method)

  • 김정태;카르로스 타파라 음푸푸니;이범희;유선율
    • 전기화학회지
    • /
    • 제26권1호
    • /
    • pp.1-10
    • /
    • 2023
  • 리튬 이차전지의 4 대 구성요소에 포함되는 양극은 배터리의 에너지 밀도를 담당하는 중요한 구성요소에 속하며, 보편적으로 제작되는 양극의 습식 제작 공정에는 활물질, 도전재, 고분자 바인더의 혼합 과정이 필수적으로 이루어지게 된다. 하지만, 양극의 혼합 조건의 경우 체계적인 방법이 갖추어져 있지 않기 때문에 제조사에 따라 성능의 차이가 발생하는 경우가 대다수이다. 따라서, 양극의 슬러리 제작 단계에서 정돈되지 않은 혼합 방법의 최적화를 진행을 위해 보편적으로 사용되는 THINKY mixer와 homogenizer를 이용한 LiMn2O4 (LMO) 양극을 제조해 각각의 특성을 비교하였다. 각 혼합 조건은 2000 RPM, 7 min으로 동일하게 진행하였으며, 양극의 제조 동안 혼합 방법의 차이만을 판단하기 위해 다른 변수 조건들은 차단한 후, 실험을 진행하였다(혼합 시간, 재료 투입 순서 등). 제작된 THINKY mixer LMO (TLMO), homogenizer LMO (HLMO) 중 HLMO는 TLMO보다 더 고른 입자 분산 특성을 가지며, 그로 인한 더 높은 접착 강도를 나타낸다. 또한, 전기화학적 평가 결과, HLMO는 TLMO와 비교하여 개선된 성능과 안정적인 수명 주기를 보였다. 결과적으로 수명특성평가에서 초기 방전 용량 유지율은 HLMO가 69 사이클에서 TLMO와 비교하여 약 4.4 배 높은 88%의 유지율을 보였으며, 속도성능평가의 경우 10, 15, 20 C의 높은 전류밀도에서 HLMO가 더 우수한 용량 유지율과 1C에서의 용량 회복률 역시 우수한 특성을 나타냈다. 이는 활물질과 도전재 및 고분자 바인더가 포함된 슬러리 특성이 homogenizer를 사용할 때, 정전기적 특성이 강한 도전재가 뭉치지 않고 균일하게 분산되어 형성된 전기 전도성 네트워크를 생성할 수 있기 때문으로 간주된다. 이로 인해 활물질과 도전재의 표면 접촉이 증가하고, 전자를 보다 원활하게 전달하여 충전 및 방전 과정에서 나타나는 격자의 부피변화, 활물질과 도전재 사이의 접촉저항의 증가 등을 억제하는 것에 기인한다.

Preparation and Characterization of Ionic Liquid-based Electrodes for High Temperature Fuel Cells Using Cyclic Voltammetry

  • Ryu, Sung-Kwan;Choi, Young-Woo;Kim, Chang-Soo;Yang, Tae-Hyun;Kim, Han-Sung;Park, Jin-Soo
    • 전기화학회지
    • /
    • 제16권1호
    • /
    • pp.30-38
    • /
    • 2013
  • In this study, a catalyst slurry was prepared with a Pt/C catalyst, Nafion ionomer solution as a binder, an ionic liquid (IL) (1-butyl-3-methylimidazolium tetrafluoroborate), deionized water and ethanol as a solvent for the application to polymer electrolyte fuel cells (PEFCs) at high-temperatures. The effect of the IL in the electrode of each design was investigated by performing a cyclic voltammetry (CV) measurement. Electrodes with different IL distributions inside and on the surface of the catalyst electrode were examined. During the CV test, the electrochemical surface area (ESA) obtained for the Pt/C electrode without ILs gradually decreased owing to three mechanisms: Pt dissolution/redeposition, carbon corrosion, and place exchange. As the IL content increased in the electrode, an ESA decrement was observed because ILs leaked from the Nafion polymer in the electrode. In addition, the CVs under conditions simulating leakage of ILs from the electrode and electrolyte were evaluated. When the ILs leaked from the electrode, minor significant changes in the CV were observed. On the other hand, when the leakage of ILs originated from the electrolyte, the CVs showed different features. It was also observed that the ESA decreased significantly. Thus, leakage of ILs from the polymer electrolyte caused a performance loss for the PEFCs by reducing the ESA. As a result, greater entrapment stability of ILs in the polymer matrix is needed to improve electrode performance.

Preliminary numerical analysis of controllable prestressed wale system for deep excavation

  • Lee, Chang Il;Kim, Eun Kyum;Park, Jong Sik;Lee, Yong-Joo
    • Geomechanics and Engineering
    • /
    • 제15권5호
    • /
    • pp.1061-1070
    • /
    • 2018
  • The main purpose of retaining wall methods for deep excavation is to keep the construction site safe from the earth pressure acting on the backfill during the construction period. Currently used retaining wall methods include the common strut method, anchor method, slurry wall method, and raker method. However, these methods have drawbacks such as reduced workspace and intrusion into private property, and thus, efforts are being made to improve them. The most advanced retaining wall method is the prestressed wale system, so far, in which a load corresponding to the earth pressure is applied to the wale by using the tension of a prestressed (PS) strand wire. This system affords advantages such as providing sufficient workspace by lengthening the strut interval and minimizing intrusion into private properties adjacent to the site. However, this system cannot control the tension of the PS strand wire, and thus, it cannot actively cope with changes in the earth pressure due to excavation. This study conducts a preliminary numerical analysis of the field applicability of the controllable prestressed wale system (CPWS) which can adjust the tension of the PS strand wire. For the analysis, back analysis was conducted through two-dimensional (2D) and three-dimensional (3D) numerical analyses based on the field measurement data of the typical strut method, and then, the field applicability of CPWS was examined by comparing the lateral deflection of the wall and adjacent ground surface settlements under the same conditions. In addition, the displacement and settlement of the wall were predicted through numerical analysis while the prestress force of CPWS was varied, and the structural stability was analysed through load tests on model specimens.

사파이어 웨이퍼 DMP에서 마찰력 모니터링을 통한 재료 제거 특성에 관한 연구 (A Study of Material Removal Characteristics by Friction Monitoring System of Sapphire Wafer in Single Side DMP)

  • 조원석;이상직;김형재;이태경;이성범
    • Tribology and Lubricants
    • /
    • 제32권2호
    • /
    • pp.56-60
    • /
    • 2016
  • Sapphire has a high hardness and strength and chemical stability as a superior material. It is used mainly as a material for a semiconductor as well as LED. Recently, the cover glass industry used by a sapphire is getting a lot of attention. The sapphire substrate is manufactured through ingot sawing, lapping, diamond mechanical polishing (DMP) and chemical mechanical polishing (CMP) process. DMP is an important process to ensure the surface quality of several nm for CMP process as well as to determine the final form accuracy of the substrate. In DMP process, the material removal is achieved by using the mechanical energy of the relative motion to each other in the state that the diamond slurry is disposed between the sapphire substrate and the polishing platen. The polishing platen is one of the most important factors that determine the material removal characteristics in DMP. Especially, it is known that the geometric characteristics of the polishing platen affects the material removal amount and its distribution. This paper investigated the material removal characteristics and the effects of the polishing platen groove in sapphire DMP. The experiments were preliminarily carried out to evaluate the sapphire material removal characteristics according to process parameters such as pressure, relative velocity and so on. In the experiment, the monitoring apparatus was applied to analyze process phenomena in accordance with the processing conditions. From the experimental results, the correlation was analyzed among process parameters, polishing phenomena and the material removal characteristics. The material removal equation based on phenomenological factors could be derived. And the experiment was followed to investigate the effects of platen groove on material removal characteristics.

공정 계 동결제 슬러리의 동결건조 공정에 의한 Mo 다공체 제조 (Freeze Drying for Porous Mo with Sublimable Vehicles of Eutectic System)

  • 이규태;서한길;석명진;오승탁
    • 한국분말재료학회지
    • /
    • 제20권4호
    • /
    • pp.253-257
    • /
    • 2013
  • Freeze drying for porous Mo was accomplished by using $MoO_3$ powder as the source and camphor-naphthalene eutectic system as the sublimable material. Eutectic composition of camphor-naphthalene slurries with the initial $MoO_3$ content of 5 vol%, prepared by milling at $55^{\circ}C$ with a small amount of oligomeric dispersant, was frozen at $-25^{\circ}C$. The addition of dispersant showed improvement of dispersion stability in slurries. Pores were generated subsequently by sublimation of the camphor-naphthalene during drying in air for 48 h. To convert the $MoO_3$ to metallic Mo, the green body was hydrogen-reduced at $750^{\circ}C$, and sintered at $1100^{\circ}C$ for 2 h. The sintered samples, frozen by heated Teflon cylinder, showed large pores with the size of about 40 ${\mu}m$ which were aligned parallel to the sublimable vehicles growth direction. The formation of unidirectionally aligned pores is explained by the rejection and accumulation of solid particles in the serrated solid-liquid interface.

Experimental and modelling study of clay stabilized with bottom ash-eco sand slurry pile

  • Subramanian, Sathyapriya;Arumairaj, P.D.;Subramani, T.
    • Geomechanics and Engineering
    • /
    • 제12권3호
    • /
    • pp.523-539
    • /
    • 2017
  • Clay soils are typical for their swelling properties upon absorption of water during rains and development of cracks during summer time owing to the profile desorption of water through the inter-connected soil pores by water vapour diffusion leading to evaporation. This type of unstable soil phenomenon by and large poses a serious threat to the strength and stability of structures when rest on such type of soils. Even as lime and cement are extensively used for stabilization of clay soils it has become imperative to find relatively cheaper alternative materials to bring out the desired properties within the clay soil domain. In the present era of catastrophic environmental degradation as a side effect to modernized manufacturing processes, industrialization and urbanization the creative idea would be treating the waste products in a beneficial way for reuse and recycling. Bottom ash and ecosand are construed as a waste product from cement industry. An optimal combination of bottom ash-eco sand can be thought of as a viable alternative to stabilize the clay soils by means of an effective dispersion dynamics associated with the inter connected network of pore spaces. A CATIA model was created and imported to ANSYS Fluent to study the dispersion dynamics. Ion migration from the bottom ash-ecosand pile was facilitated through natural formation of cracks in clay soil subjected to atmospheric conditions. Treated samples collected at different curing days from inner and outer zones at different depths were tested for, plasticity index, Unconfined Compressive Strength (UCS), free swell index, water content, Cation Exchange Capacity (CEC), pH and ion concentration to show the effectiveness of the method in improving the clay soil.