• 제목/요약/키워드: Uniform Temperature

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수직냉각관내에서 상변화물질의 응고에 관한 실험적 연구 (An Experimental Study on Freezing of Phase Change Material in a Cooled Vertical Tube)

  • 이재목;이채문;임장순
    • 대한설비공학회지:설비저널
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    • 제13권4호
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    • pp.223-229
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    • 1984
  • Experiments were performed for freezing of an initially superheated or nonsuperheated liquid phase in a cooled vertical tube. The liquid was placed in a copper tube whose surface maintained a uniform temperature during the data run and the freezing occurred in a copper tube. The phase change medium was n-odtadecane, a paraffin which freezes at about $61^{\circ}C$. Measurements were made which yielded information about the time dependence of the freezing front, of the amount of frozen mass, and of the various energy components extracted from the tube. The time-wise decay of the initial liquid superheat was also measured. Initial superheat of the liquid tends to moderately diminish the rozen mass and associated latent energy extraction at small times but has lit tie effect on these quantities at large tiems. Natural convection in the liquid Plays a modest role only at small times and disappears when the superheat decay to zero. Although the latent energy constitutes the largest contributor to the total extracted energy, the sensible energy components can make a significant contribution, especially at large tube wall subcoolings, large initial liquid superheating and short freezing time.

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체결용 Ti 합금의 미세조직 특성 및 기계적/전기화학적 거동 분석 연구 (A Study of the Microstructure Properties and Mechanical/electrochemical Behavior of Ti Alloy for Fastening)

  • 이효주;;최정묵;이근호;박이주;조훈휘
    • 소성∙가공
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    • 제31권3호
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    • pp.151-159
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    • 2022
  • Ti alloys are used in a wide range of applications, especially for aviation and medical purposes, because of their high specific strength and excellent corrosion properties. When subjected to various manufacturing processes, one of the most popular Ti alloys, Ti-6Al-4V, exhibits a variety of microstructural and mechanical properties that makes it an attractive lightweight metal. The purpose of this study was to analyze the microstructure and mechanical properties of Ti alloy wires. Subsequently, the microstructure and electrochemical behavior of Ti alloy bolts produced from these wires were analyzed. The Ti alloy wires are manufactured with different diameters (6.22, 7.81 mm alloys), and their microstructures are measured using electron backscatter diffraction. Recrystallization was observed to occur significantly in the 7.81 alloy than in the 6.81 alloy, and the strain distribution of 7.81 alloy is seen to be likely more uniform than 6.22 alloy. Ti alloy bolt was then forged under moderate temperature by using the 7.81 alloy. Results of the electrochemical analysis indicate that the Ti alloy bolt has excellent corrosion resistance.

Electrical and thermal properties of polyamideimide-colloid silica nanohybrid for magnetic enameled wire

  • Han, S.W.;Kang, D.P.
    • Journal of Ceramic Processing Research
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    • 제13권spc2호
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    • pp.428-432
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    • 2012
  • Polyamidimide (PAI)-colloidal silica (CS) nanohybrid films were synthesized by an advanced sol-gel process. The synthesized PAI-CS hybrid films have a uniform and stable chemical bonding and there is no interfacial defects observed by TEM. The thermal degradation ratio of PAI-CS (10 wt%) hybrid films is delayed by 100 ℃ compared with pure PAI sample determined by on set temperature range in TGA. The dielectric constant of PAI-CS (10 wt%) hybrid films decreases with increasing CS content up to about 5 wt% but increases at higher CS content, which is not explained simply by effective medium therories (EMT). The duration time of PAI-CS (10 wt%) hybrid coil is 38 sec, which is very longer than that of pure PAI coil sample. The PAI-CS (10 wt%) hybrid film has a higher breakdown voltage resistance than the pure PAI film at surge environment and exhibits superior heat resistance. The PAI-CS (10 wt%) sample shows the advanced and stable thermal emission properties in transformer module compared with the pure PAI sample. This result illustrates that the advanced thermal conductivity and expansion properties of PAI-CS sample in the case of appropriate sol-gel processes brings the stable thermal emission in transformer system. Therefore, new PAI-CS hybrid samples with such stable thermal emission properties are expected to be used as a high functional coating application in ET, IT and electric power products.

Dynamic vibration response of functionally graded porous nanoplates in thermal and magnetic fields under moving load

  • Ismail Esen;Mashhour A. Alazwari;Khalid H. Almitani;Mohamed A Eltaher;A. Abdelrahman
    • Advances in nano research
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    • 제14권5호
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    • pp.475-493
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    • 2023
  • In the context of nonclassical nonlocal strain gradient elasticity, this article studies the free and forced responses of functionally graded material (FGM) porous nanoplates exposed to thermal and magnetic fields under a moving load. The developed mathematical model includes shear deformation, size-scale, miscorstructure influences in the framework of higher order shear deformation theory (HSDT) and nonlocal strain gradient theory (NSGT), respectively. To explore the porosity effect, the study considers four different porosity models across the thickness: uniform, symmetrical, asymmetric bottom, and asymmetric top distributions. The system of quations of motion of the FGM porous nanoplate, including the effects of thermal load, Lorentz force, due to the magnetic field and moving load, are derived using the Hamilton's principle, and then solved analytically by employing the Navier method. For the free and forced responses of the nanoplate, the effects of nonlocal elasticity, strain gradient elasticity, temperature rise, magnetic field intensity, porosity volume fraction, and porosity distribution are analyzed. It is found that the forced vibrations of FGM porous nanoplates under thermal and live loads can be damped by applying a directed magnetic field.

Anti-corrosion impact of green synthesis of Silica nanoparticles for the sports structures in physical exercise activities

  • Zhixin Zhang;Zhiqiang Cai;Khidhair Jasim Mohammed;H. Elhosiny Ali
    • Advances in concrete construction
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    • 제15권1호
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    • pp.41-46
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    • 2023
  • Sport has no age limit and can be done anywhere and in any condition with minimal equipment. The existence of sports spaces in all parts of the world is considered a citizen's right. One of the activities carried out in this field is installing sports equipment and structures in parks and encouraging citizens to use this equipment for physical health with the least cost and facilities. Installing sports structures in open spaces such as parks is a practical step for developing citizens' sports. Although using devices in parks is acceptable, it is more critical to meet scientific and technical standards. The components of these structures must have high strength and endurance against changes in environmental conditions such as humidity, temperature difference, and corrosion. Among the various causes of material degradation, corrosion has always been one of several fundamental causes of metal equipment failure. Sports structures in open spaces are not safe from corrosion. Uniform corrosion is the most common type of corrosion. This corrosion usually occurs uniformly through a chemical or electrochemical reaction across the surface exposed to the corrosive environment. Rust and corrosion of outdoor sports structures are examples of this corrosion. For this reason, in this research, with the green synthesis of silica nanoparticles and its application in outdoor sports structures, the life span of these structures can be increased for the use of physical exercises as well as their quality.

Research on safety assessment and application effect of nanomedical products in physical education

  • Zhuli Li;Song Peng;Gang Chen
    • Advances in nano research
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    • 제15권3호
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    • pp.253-261
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    • 2023
  • This study investigates the application of nano-composite materials in physical education, specifically focusing on improving the performance of sports hall flooring. The research centers on carbon nanotube reinforced polyvinyl chloride (PVC) composites, which offer enhanced mechanical properties and durability. The incorporation of carbon nanotubes as reinforcements in the PVC matrix provides notable benefits, including increased strength, improved thermal stability, electrical conductivity, and resistance to fatigue. The key parameters examined in this study are the weight percentage of carbon nanotubes and the temperature during the fabrication process. Through careful analysis, it is found that higher weight percentages of carbon nanotubes contribute to a more uniform dispersion within the PVC matrix, resulting in improved mechanical properties. Additionally, higher fabrication temperatures aid in repairing macroscopic defects, leading to enhanced overall performance. The findings of this study indicate that the utilization of carbon nanotube reinforced PVC composites can significantly enhance the strength and durability of sports hall flooring. By employing these advanced materials, the safety and suitability of physical education environments can be greatly improved. Furthermore, the insights gained from this research can contribute to the optimization of composite material design and fabrication techniques, not only in the field of physical education but also in various industries where composite materials find applications.

페치니 공정을 이용한 몰리브덴-텅스텐 나노 분말 제조 및 소결 특성 평가 (Fabrication and Sintering Behavior Analysis of Molybdenum-tungsten Nanopowders by Pechini Process)

  • 김수연;권태현;김슬기;이동주
    • 한국분말재료학회지
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    • 제30권5호
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    • pp.436-441
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    • 2023
  • Molybdenum-tungsten (Mo-W) alloy sputtering targets are widely utilized in fields like electronics, nanotechnology, sensors, and as gate electrodes for TFT-LCDs, owing to their superior properties such as high-temperature stability, low thermal expansion coefficient, electrical conductivity, and corrosion resistance. To achieve optimal performance in application, these targets' purity, relative density, and grain size of these targets must becarefully controlled. We utilized nanopowders, prepared via the Pechini method, to obtain uniform and fine powders, then carried out spark plasma sintering (SPS) to densify these powders. Our studies revealed that the sintered compacts made from these nanopowders exhibited outstanding features, such as a high relative density of more than 99%, consistent grain size of 3.43 ㎛, and shape, absence of preferred orientation.

원자층 증착법을 통한 Nb-Si계 초내열합금 분말 상의 TiO2 박막 증착 연구 (TiO2 Thin Film Coating on an Nb-Si-Based Superalloy via Atomic Layer Deposition)

  • 박지영;은수민;변종민;최병준
    • 한국분말재료학회지
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    • 제31권3호
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    • pp.255-262
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    • 2024
  • Nano-oxide dispersion-strengthened (ODS) superalloys have attracted attention because of their outstanding mechanical reinforcement mechanism. Dispersed oxides increase the material's strength by preventing grain growth and recrystallization, as well as increasing creep resistance. In this research, atomic layer deposition (ALD) was applied to synthesize an ODS alloy. It is useful to coat conformal thin films even on complex matrix shapes, such as nanorods or powders. We coated an Nb-Si-based superalloy with TiO2 thin film by using rotary-reactor type thermal ALD. TiO2 was grown by controlling the deposition recipe, reactor temperature, N2 flow rate, and rotor speed. We could confirm the formation of uniform TiO2 film on the surface of the superalloy. This process was successfully applied to the synthesis of an ODS alloy, which could be a new field of ALD applications.

고온 고압용 상업적 규모의 중공사 투과증발 막시스템 개발 (Development of Commercial-scaled Pervaporation Hollow Fiber Membrane System for High Pressure and High Temperature Applications)

  • 염충균;강경록;김주열;안효성;권건오
    • 멤브레인
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    • 제23권4호
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    • pp.257-266
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    • 2013
  • 본 연구에서는 고온에서 유기용매를 정제할 수 있는 고온, 고압에서 안정한 상업화 규모의 고효율 중공사 투과증발막, 막모듈 개발, 상업 규모의 막분리 장치시스템 개발을 수행하였는데 구성 요소기술은 1) 고온 고압 하에서 사용할 수 있는 브레이드 강화 중공사 막제조, 2) 중공사 막모듈 제조, 3) 막 탈수, 정제장치 시스템 설계 및 제작기술등을 개발하였다. 개발 중 공사 투과증발막은 독일의 슐츠막 보다 막 안정성과 막 성능이 우수하였으며, 막면적 4.6 $m^2$의 고효율 상업적 규모의 중공사막모듈을 개발하였고, 200 L/hr 이상의 처리용량의 Pilot 규모의 투과증발 막장치 시스템을 개발하였다. 기존 평막 혹은 중공사막에서 모듈에서 볼 수 있었던 모듈내부에 공급액의 dead volume형성, 공급액의 채널링 현상들을 제거하기 위해서 본 개발 중공사막과 막모듈의 특징은 고온, 고압의 유기용매를 중공사막 내부로 공급되어 흐르도록 설계되어 있어 막분리 효율이 우수하며 특히 기존의 막제품의 대비 막모듈 가격이 저렴하고, 막성능 및 치수안정성이 우수하다. 또한 공급액의 열손실 적어 에너지 효율이 우수할 뿐 아니라 막모듈 내에 중공사막 사이의 간격이 일정하여 가해주는 진공이 균일하게 각 중공사막의 투과부 표면에 전달될 수 있기 때문에 투과된 투과물을 막 표면으로부터 효과적으로 제거할 수 있으므로 투과속도 또한 우수하다.

캥거루 케어를 반영한 스마트 감성 매트의 개발 (The Development of the Smart Sensibility Mat with Kangaroo Mother Care)

  • 조수민
    • 감성과학
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    • 제20권2호
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    • pp.171-178
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    • 2017
  • 캥거루 케어의 특징을 반영하여 신생아의 감성에 긍정적인 영향을 미치는 스마트 감성 매트(SSM; Smart Sensibility Mat)를 개발, 제작하였다. 청감 자극의 경우 사전에 녹음된 어머니의 심장박동소리와 목소리를 30dB로 제공할 수 있는 블루투스 스피커를 매트에 삽입하였다. 촉감 자극의 경우 $32^{\circ}C$의 일정한 온도를 제공하기 위해 실리콘 소재의 온수 튜브를 매트의 표면에 삽입하고 자동온도조절장치와 연결하였다. 매트의 전체에 균일한 온도 제공을 위해 열전도성 실을 삽입한 직물을 매트 표면에 부착하였다. 면 패드로 매트를 감싼 후 피부 접촉과 비슷한 촉감 자극을 주기 위해 폴리우레탄 폼을 매트 표면에 접착하였다. SSM이 신생아의 감성에 미치는 효과를 보기 위해 생후 2주 이내의 건강한 신생아 10명을 대상으로 일반 매트(GM; General Mat) 및 SSM에 있을 때 생리신호인 심박수, 호흡수와 체온을 10분 간격으로 2회씩 측정하였다. 이를 3일에 걸쳐 1일 1회씩 측정한 후 대응표본 t검정을 실시하였다. 그 결과, GM에 있을 때 보다 SSM에 있을 때 심박수(t=8.131, p<.001)와 호흡수(t=7.227, p<.001)가 정상범위 안에서 유의적으로 감소하였다. 이는 SSM의 감각 자극이 신생아의 심리적 안정에 긍정적인 영향을 미쳐 GM보다 빠른 시간 내에 심리적 안정을 주는데 기여한 것으로 볼 수 있다.