• 제목/요약/키워드: core gas

검색결과 540건 처리시간 0.022초

알루미늄합금 중력금형주조용 쉘중자 가스발생량의 정량적 예측 (Quantitative Prediction of Gas Evolved by Shell Core in Permanent Mold Casting of Aluminum Alloy)

  • 김기영;이민수
    • 한국주조공학회지
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    • 제18권5호
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    • pp.481-487
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    • 1998
  • Shell sand is widely used to make a complex shape castings due to its good collapsibility. When molten metal is poured into the mold, various gases are generated by the thermal decomposition of binder in the shell core. Casting defects such as blow hole and blister come from these gases. If it is possible to predict the evolution of gas quantitatively, it may provide effective solutions for minimizing the casting defects. To examine the gas evolution by shell core quantitatively, casting experiment and calculation were carried out. Gas pressure and gas volume evolved by shell core were measured in the experiment, and temperature distribution in the shell core was obtained by heat transfer analysis. From the result above, prediction on the gas volume evolved during pouring was tried. As forming pressure of the shell core increased and forming temperature decreased, the gas evolution increased. There was a close relationship between the calculated gas volume evolved and the measured one.

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Au/SnO2 core-shell 나노구조 센서의 구동온도가 CO 감동에 미치는 영향 (Effect of Working Temperature on Sensitivity of Au/SnO2 Core-Shell Structure Nanoparticles for CO Gas)

  • 유연태
    • 센서학회지
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    • 제21권6호
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    • pp.456-460
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    • 2012
  • Au/$SnO_2$ core-shell structure nanoparticles (NPs) were synthesized by microwave hydrothermal method, and the effect of working temperature on sensitivity of Au/$SnO_2$ core-shell NPs for CO gas was investigated. The $SnO_2$ shell layer was consisted of $SnO_2$ primary particles with 4.5 nm diameter. The response of Au/$SnO_2$ core-shell NPs for CO gas was maximized at the working temperature of $350^{\circ}C$ while the sensitivity increased with decreasing the working temperature due to the low grain size effect of $SnO_2$ NPs on the response of CO gas.

다공성 경량골재를 충전재로 활용한 샌드위치 패널 심재의 발열량 및 유해가스 배출특성 (Heating Value and Noxious Gases Generation of Sandwich Panel Core using Artifical Lightweight Aggregate)

  • 노정식;도정윤;문경주;조영국;소양섭
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2003년도 봄 학술발표회 논문집
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    • pp.261-266
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    • 2003
  • This study is to investigate the heating value and noxious gases generation such as CO, NO and $SO_2$ known as dangerous gas for human from specimen made of cement and lightweight aggregate. The most quanity of CO gas is generated in EPS(Expanded Poly Styrene), core of commercial sandwich panel. Although specimens mainly composed of cement discharged the relatively less CO gas than organic core such as EPS, specimens which SBR was added discharged the very much amount of CO gas similar to EPS and especially, specimens including foaming agent, gas foaming agent or redipersible powder of VA/VeoVa showed the good properties in the generation of CO gas. From the standpoint of the generation of NO and $SO_2$ gas, both the core of commercial sandwich panel such as EPS, Glass wool and specimens made with polymer dispersion such as St/BA and SBR discharge the very much amount of NO and $SO_2$ gas in comparison of the other specimens. From this study, it was confirmed that organic materials such as core of commercial sandwich panel dischared much more noxious gas than specimens composed of cement and inorganic lightweight aggregate.

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Circumnuclear gas around the central AGN in a cool-core cluster, A1644-South

  • Baek, Junhyun;Chung, Aeree;Kim, Jae-Woo;Jung, Taehyun
    • 천문학회보
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    • 제45권1호
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    • pp.30.2-31
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    • 2020
  • We present the properties of circumnuclear gas associated with the AGN located in the center of Abell 1644-South. A1644-S is the main cluster in a merging system, which is also known for gas sloshing in its core as seen in X-ray. The X-ray emission of A1644-S shows a rapidly declining profile, indicating the presence of cooling gas flow. This flow of cool gas may fuel the supermassive black hole embedded in the brightest cluster galaxy, leading to the activation of the central AGN. Indeed, we find a parsec-scale bipolar jet feature in the center of A1644-S in our recent KaVA observation, which implies that its central AGN is likely to have been (re)powered quite recently. In order to verify the hypothesis that cooling gas flow in the cluster core can (re)activate the central AGN, we probe the cold gas properties of the central 1 kpc region of A1644-S using the archival VLA and ALMA data. Based on the spatially resolved morphology and kinematics of HI and CO gas, we challenge to identify inflow/outflow gas streams and clumps. We study the role of circumnuclear cool gas in fueling the centrally located cluster AGN in the cool-core environment. We also discuss how the feedback due to the (re)powered AGN affects the surrounding medium.

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A Comparative Study of Gas Sensing Properties of Au-loaded ZnO and Au@ZnO Core-shell Nanoparticles

  • Majhi, Sanjit Manohar;Dao, Dung Van;Lee, Hu-Jun;Yu, Yeon Tae
    • 센서학회지
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    • 제27권2호
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    • pp.76-81
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    • 2018
  • Au@ZnO core-shell nanoparticles (NPs) were prepared by a simple method followed by heat-treatment for gas sensor applications. The advantage of the core-shell morphology was investigated by comparing the gas sensing performances of Au@ZnO core-shell NPs with pure ZnO NPs and different wt% of Au-loaded ZnO NPs. The crystal structures, shapes, sizes, and morphologies of all sensing materials were characterized by XRD, TEM, and HAADF-STEM. Au@ZnO core-shell NPs were nearly spherical in shape and Au NPs were encapsulated in the center with a 40-45 nm ZnO shell outside. The gas sensing operating temperature for Au@ZnO core-shell NPs was $300^{\circ}C$, whereas it was $350^{\circ}C$ for pure ZnO NPs and Au-loaded ZnO NPs. The maximum response of Au@ZnO core-shell NPs to 1000 ppm CO at $300^{\circ}C$ was 77.3, which was three-fold higher than that of 2 wt% Au-loaded ZnO NPs. Electronic and chemical effects were the primary reasons for the improved sensitivity of Au@ZnO core-shell NPs. It was confirmed that Au@ZnO core-shell NPs had better sensitivity and stability than Au-loaded ZnO NPs.

PCS(Pressure Core Sampler) 개발 및 성능평가실험 (Development of PCS and an experiment for performance evaluation)

  • 이하정;김해진;이계광;정효석;손인락
    • Journal of Advanced Marine Engineering and Technology
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    • 제39권9호
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    • pp.973-980
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    • 2015
  • 비전통 에너지자원은 전통 에너지자원에 비해 지리적으로 넓은 지역에 걸쳐 연속적인 형태로 분포되어 있으나, 잔존 기술적 회수가능 자원량(TRR : Technical Recoverable Resource)은 전통자원과 비슷하여 그 개발이 확대되고 있으며, 특히 셰일가스, 치밀가스, 석탄층 메탄가스, 가스하이드레이트 등의 비전통 가스자원의 개발이 활기를 띄고 있다. 그러나 현재의 물리검층 기술로는 비전통 자원에 포함된 물성, 특히 가스의 함량을 정확히 계산하기 어려우며 관련 기자재 또한 일부 해외 업체에서 독점하고 있다. 따라서 본 연구에서는 지하심부의 시료채취 순간부터 그 지점의 심부압력을 유지하여 시료 내 가스의 손실 없이 코어를 회수하고, 온도와 압력을 실시간으로 기록하는 저류층 PCS(Pressure Core Sampler)를 개발하였으며, 제작된 시제품의 검증을 위한 성능실험을 수행하였다. 모든 성능평가를 통과한 시제품은 In-situ 물성자료의 취득은 물론이고 정확하고 신뢰성 있는 시추코어를 확보하는 데 기여할 것이다.

알루미늄 합금 주조공정의 쉘 코아 가스 발생 전산모사 연구 (Investigation of Gas Evolution in Shell Cores during Casting Processes of Aluminum Alloys)

  • 조인성;남정호;김희수
    • 한국주조공학회지
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    • 제43권4호
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    • pp.187-193
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    • 2023
  • 쉘 중자 공법은 성형성, 탈사성에 있어서는 뛰어난 프로세스이나, 고온의 알루미늄 용탕이 중자와 접촉할 때 수지의 열분해에 의한 가스발생이 필연적이며, 이의 배출이 원활하지 못할 때에는 주물내부에 기공 등으로 남게 되어 주조품의 내기밀성에 직접 영 향을 미친다. 쉘 중자 이용 시 가스발생거동에 대해서는 일본에서 약간의 연구가 있었으나, 직접적인 예측 결과는 발표되지 않았고, 특 히 가스발생에 대한 모델링이 성립되어 있지 않아 이의 연구는 아주 미미한 상태이다. 개발되는 코어에 대한 온도-가스량과의 관 계를 고려한 발생 가스량 시뮬레이션 프로그램을 개발하고, 이를 이용하여 실린더 헤드 제품의 코어 금형 설계 및 저압주조 시 금속 용탕의 유동 및 응고 거동을 해석하고 주조결함 발생을 예측하여 결함발생을 최소화 하는 주조방안 도출하고자 한다.

중심 공기류를 이용한 환상 액막 미립화에 관한 연구-기/액 분사유속에 따른 입경 변화 고찰 (Atomization of Annular Liquid Sheet with Core Air Flow - SMD Variation with Gas/Liquid Injection Velocity)

  • 최철진;이상용
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 춘계학술대회논문집E
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    • pp.131-135
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    • 2001
  • The atomization characteristics of an annular liquid (water) sheet of small radius with a core gas (air) flow were studied. Different sizes of annular gaps (0.2, 0.4 and 0.8 mm) were tested to find the effect of liquid sheet thickness on SMD. The inner diameter of the gas port for the core gas flow was 4 mm. Cross-section averaged SMD was measured for various liquid and gas velocities. Regions of the SMD decrease with the increase of the liquid velocity always existed regardless of the liquid sheet thickness. This attributes to the transition of the flow patterns of spray and also to the aerodynamic interaction between the atomizing gas and the ripples on the liquid sheet surface.

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이온프로브 장착 점화플러그를 이용한 노크발생 판정 (Knock Detection Using an Ionization Probe Installed Spark Plug)

  • 한성주;이용규;민경덕;김응서
    • 한국자동차공학회논문집
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    • 제8권6호
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    • pp.1-8
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    • 2000
  • A new method of knock detection in SI engines, using a change of ion concentration in the combustion chamber, was developed. In order to measure in-cylinder ionization current, ionization probes were installed at spark plug and cylinder head of production engine. It was found that the electric current generated by ionized gas in core burned gas region of knocking cycle is between 2 and 10 times larger than that of normal cycle, because the burned gas temperature which is the dominant parameter of a change of ion concentration increases. However, a change of ionization current in boundary region of burned gas is relatively weak. Hence a change of ion concentration in core burned gas region can be used for knock detection.

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A new gas-solid reaction model for voloxidation process with spallation

  • Ryu, Je Ir;Woo, Seung Min
    • Nuclear Engineering and Technology
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    • 제50권1호
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    • pp.145-150
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    • 2018
  • A new methodology, the crack-spallation model, has been developed to analyze gas-solid reactions dominated by crack growth inside of the solid reactant and spallation phenomena. The new model physically represents three processes of the reaction progress: (1) diffusion of gas reactant through pores; (2) growth of product particle in pores; and (3) crack and spallation of solid reactant. The validation of this method has been conducted by comparison of results obtained in an experiment for oxidation of $UO_2$ and the shrinking core model. The reaction progress evaluated by the crack-spallation model shows better agreement with the experimental data than that evaluated by the shrinking core model. To understand the trigger point during the reaction progress, a detailed analysis has been conducted. A parametric study also has been performed to determine mass diffusivities of the gas reactant and volume increase constants of the product particles. This method can be appropriately applied to the gas-solid reaction based on the crack and spallation phenomena such as the voloxidation process.