• 제목/요약/키워드: Matrix-free

검색결과 742건 처리시간 0.029초

Antiapoptotic Effects Induced by Different Wavelengths of Ultraviolet Light

  • Ibuki, Yuko;Goto, Rensuke
    • Journal of Photoscience
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    • 제9권2호
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    • pp.485-487
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    • 2002
  • Cells receive signals for survival as well as death, and the balance between the two ultimately determines the fate of the cells. UV-triggered apoptotic signaling has been well documented, whereas UV-induced survival effects have received little attention. We have reported previously that UVB irradiation prevented apoptosis, which was partly dependent on activation of the phosphatidylinositol 3-kinase (PI3-kinase)/ Akt pathway. In this study, anti-apoptotic effects of UV with different wavelength ranges, UVA, UVB and UVC, were examined. NIH3T3 cells showed apoptotic cell death by detachment from the extracellular matrix under serum-free conditions, which was prevented by all wavelengths. However, the effect of UVA was less than those of UVB and UVC. Reduction of mitochondrial transmembrane potential and activation of caspase-9 and -3 were suppressed by all three wavelengths of UV, showing wavelength-dependent effects as mentioned above. The PI3-kinase inhibitor wortmannin partially inhibittrl the UVB and UVC-induced suppression of apoptosis, but not the inhibitoty effect of UVA. The Akt phosphotylation by UVB and UVC was completely inhibittrl by addition of wortmannin, but that by UVA was not P38 MAP kinase inhibitor SB203580 partially inhibited the UVB and UVC-induced suppression of apoptosis and Akt phosphotylation, and completely inhibited UVA-induced those. These results suggested the existence of two different survival pathways leading to suppression of apoptosis, one for UVA that is independent of the PI3-kinase/Akt pathway and dependent on p38 MAP kinase, and the other for UVB and UVC that is dependent on both pathways.

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스크랩 불순물이 Zr 합금의 미세조직 및 기계적 특성에 미치는 영향 (Effect of Scrap Impurities on Microstructure and Mechanical Properties of Zr Alloys)

  • 정구범;김인원;송재숙;신평우;홍순익
    • 한국주조공학회지
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    • 제36권3호
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    • pp.81-87
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    • 2016
  • In this study, the effect of scrap ratio on the mechanical properties of Zr alloys was studied. Oxygen content in the ingot cake increased rapidly with increasing fraction of scrap, which can be attributed to the surface oxide of scrap including small pieces of turning, chips, etc. Iron content did not increase much with the increasing addition of scrap, suggesting scrap materials was well reserved in the iron-free container. As-cast structure of Zr alloy with the scrap:sponge ratio displayed plate/or needle ${\alpha}$ phase and no appreciable change of the cast structure was observed with change of scrap fraction. The strength increases with increasing fraction of scrap, which can be attributed to the increase of oxygen content. The ductility decreased slightly with increase of scrap fraction. Dislocation-oxygen interaction is known to increase the strength at the expense of ductility. Ingot cake with intentionally added $Fe_2O_3$ exhibited the drastic decrease of the formability, even exhibited the brittle fracture behavior during rolling. The oxidation resistance, however, increased with the increase of scrap fraction because of high oxygen content, which may prevent more penetration and diffusion of oxygen into matrix.

Piezoelectric nanocomposite sensors assembled using zinc oxide nanoparticles and poly(vinylidene fluoride)

  • Dodds, John S.;Meyers, Frederick N.;Loh, Kenneth J.
    • Smart Structures and Systems
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    • 제12권1호
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    • pp.55-71
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    • 2013
  • Structural health monitoring (SHM) is vital for detecting the onset of damage and for preventing catastrophic failure of civil infrastructure systems. In particular, piezoelectric transducers have the ability to excite and actively interrogate structures (e.g., using surface waves) while measuring their response for sensing and damage detection. In fact, piezoelectric transducers such as lead zirconate titanate (PZT) and poly(vinylidene fluoride) (PVDF) have been used for various laboratory/field tests and possess significant advantages as compared to visual inspection and vibration-based methods, to name a few. However, PZTs are inherently brittle, and PVDF films do not possess high piezoelectricity, thereby limiting each of these devices to certain specific applications. The objective of this study is to design, characterize, and validate piezoelectric nanocomposites consisting of zinc oxide (ZnO) nanoparticles assembled in a PVDF copolymer matrix for sensing and SHM applications. These films provide greater mechanical flexibility as compared to PZTs, yet possess enhanced piezoelectricity as compared to pristine PVDF copolymers. This study started with spin coating dispersed ZnO- and PVDF-TrFE-based solutions to fabricate the piezoelectric nanocomposites. The concentration of ZnO nanoparticles was varied from 0 to 20 wt.% (in 5 % increments) to determine their influence on bulk film piezoelectricity. Second, their electric polarization responses were obtained for quantifying thin film remnant polarization, which is directly correlated to piezoelectricity. Based on these results, the films were poled (at 50 $MV-m^{-1}$) to permanently align their electrical domains and to enhance their bulk film piezoelectricity. Then, a series of hammer impact tests were conducted, and the voltage generated by poled ZnO-based thin films was compared to commercially poled PVDF copolymer thin films. The hammer impact tests showed comparable results between the prototype and commercial samples, and increasing ZnO content provided enhanced piezoelectric performance. Lastly, the films were further validated for sensing using different energy levels of hammer impact, different distances between the impact locations and the film electrodes, and cantilever free vibration testing for dynamic strain sensing.

Stability and parameters influence study of fully balanced hoist vertical ship lift

  • Cheng, Xionghao;Shi, Duanwei;Li, Hongxiang;Xia, Re;Zhang, Yang;Zhou, Ji
    • Structural Engineering and Mechanics
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    • 제66권5호
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    • pp.583-594
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    • 2018
  • A theoretical formulation based on the linearized potential theory, the Descartes' rule and the extremum optimization method is presented to calculate the critical distance of lifting points of the fully balanced hoist vertical ship lift, and to study pitching stability of the ship lift. The overturning torque of the ship chamber is proposed based on the Housner theory. A seven-free-degree dynamic model of the ship lift based on the Lagrange equation of the second kind is then established, including the ship chamber, the wire rope, the gravity counterweights and the liquid in the ship chamber. Subsequently, an eigenvalue equation is obtained with the coefficient matrix of the dynamic equations, and a key coefficient is analyzed by innovative use of the minimum optimization method for a stability criterion. Also, an extensive influence of the structural parameters contains the gravity counterweight wire rope stiffness, synchronous shaft stiffness, lifting height and hoists radius on the critical distance of lifting points is numerically analyzed. With the Runge-Kutta method, the four primary dynamical responses of the ship lift are investigated to demonstrate the accuracy/reliability of the result from the theoretical formulation. It is revealed that the critical distance of lifting points decreases with increasing the synchronous shaft stiffness, while increases with rising the other three structural parameters. Moreover, the theoretical formulation is more applicable than the previous criterions to design the layout of the fully balanced hoist vertical ship lift for the ensuring of the stability.

Bending, buckling, and free vibration analyses of carbon nanotube reinforced composite beams and experimental tensile test to obtain the mechanical properties of nanocomposite

  • Mohammadimehr, M.;Mohammadi-Dehabadi, A.A.;Akhavan Alavi, S.M.;Alambeigi, K.;Bamdad, M.;Yazdani, R.;Hanifehlou, S.
    • Steel and Composite Structures
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    • 제29권3호
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    • pp.405-422
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    • 2018
  • In this research, experimental tensile test and manufacturing of carbon nanotube reinforced composite beam (CNTRC) is presented. Also, bending, buckling, and vibration analysis of CNTRC based on various beam theories such as Euler-Bernoulli, Timoshenko and Reddy beams are considered. At first, the experimental tensile tests are carried out for CNTRC and composite beams in order to obtain mechanical properties and then using Hamilton's principle the governing equations of motion are derived for Euler Bernoulli, Timoshenko and Reddy theories. The results have a good agreement with the obtained results by similar researches and it is shown that adding just two percent of carbon nanotubes increases dimensionless fundamental frequency and critical buckling load as well as decreases transverse deflection of composite beams. Also, the influences of different manufacturing processes such as hand layup and industrial methods using vacuum pump on composite properties are investigated. In these composite beams, glass fibers used in an epoxy matrix and for producing CNTRC, CNTs are applied as reinforcement particles. Applying two percent of CNTs leads to increase the mechanical properties and increases natural frequencies and critical buckling load and decreases deflection. The obtained natural frequencies and critical buckling load by theoretical method are higher than other methods, because there are some inevitable errors in industrial and hand layup method. Also, the minimum deflection occurs for theoretical methods, in bending analysis. In this study, Young's and shear modulli as well as density are obtained by experimental test and have not been used from the results of other researches. Then the theoretical analysis such as bending, buckling and vibration are considered by using the obtained mechanical properties of this research.

MoSiA를 이용한 수전해용 공유가교 SPEEK/Cs-MoSiA/Ceria복합막의 제조 및 성능 연구 (Synthesis and Characterization of Covalently Cross-Linked SPEEK/Cs-substituted MoSiA/Ceria Composite Membranes with MoSiA for Water Electrolysis)

  • 서현;송유리;오연선;문상봉;정장훈
    • 한국수소및신에너지학회논문집
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    • 제26권6호
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    • pp.524-531
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    • 2015
  • To improve the electrochemical and mechanical characteristics, engineering plastic of the sulfonated polyether ether ketone (SPEEK) as polymer matrix was prepared in the sulfonation reaction of polyether ether ketone (PEEK). The SPEEK organic-inorganic blended composite membranes were prepared by sol-gel casting method. It was loaded with the highly dispersed ceria and cesium-substituted molybdosilicic acid (Cs-MoSiA) and 1,4-diiodobutane which was cross-linking agent contents of $10{\mu}L$. Cs-MoSiA was added to increase proton conductivity. Ceria ($CeO_2$) was used as a free radical scavenger which degrade the membrane in polymer electrolyte membrane water elctrolysis (PEMWE). In conclusion, CL-SPEEK/Cs-MoSiA/Ceria 1% composite membrane showed high proton conductivity 0.2104 S/cm at $25^{\circ}C$ which was better than Nafion 117 membrane.

LC-MS/MS를 이용한 담배 연기 중 Heterocyclic Amines의 분석 (Analysis of Heterocyclic Amines in Mainstream Cigarette Smoke using by LC-MS/MS)

  • 김익중;장기철;지상운;민혜정;김효근;황건중
    • 한국연초학회지
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    • 제30권1호
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    • pp.33-38
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    • 2008
  • This study was carried out to determine the analytical methods for heterocyclic amines(HAs) of the tobacco smoke by LC/MS/MS. HAs have been found in pyrolysate of protein and cooked food including protein, were known the Sugimura compound. HAs content of the smoke were known to exist very low ppb level. Especially, some of HAs are mutagenic and carcinogenic compounds. In according to IARC, the toxicity of N-heterocyclic amines classified IARC class 2A or 2B group. Precursors of these compounds are glutamic acid, protein and free amino acids including tryptophan, therefore, the precursors have been proved in cooked food continuously. This study was investigate multiple analysis methods for HAs and HAs contents of some commercial products. In this study, we used the linear type smoking machine for HAs analysis. At the ISO conditions, mainstream smoke was collected on cambridge filter pad, and then cambridge filter pad was extracted by 0.1% acetic acid. The extracted solution were passed cation exchange SPE cartridge to remove matrix, samples were analyzed using LC/MS/MS on MRM mode. From the result that optimized this methods, the correlation coefficient(R) of the individual compounds were good linearity over 0.999, recovery rate over 96% and the limit of detection were good values between 0.06 to 0.37 ng/mL, In addition, HAs content of some commercial products were in range of 0.02 to 43.8 ng/cig.

극저온에서의 미세역학시험법을 이용한 섬유/수지 복합재료의 계면 특성 평가 (Inherent and Interfacial Evaluation of Fibers/Epoxy Composites by Micromechanical Tests at Cryogenic Temperature)

  • 권동준;왕작가;구가영;엄문광;박종만
    • Composites Research
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    • 제24권4호
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    • pp.11-16
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    • 2011
  • 극저온 응용에서 사용하는 고분자복합재료의 계면물성 유지가 아주 중요하다. 본 연구에서는 상온과 극저온에서 사용하는 단일 탄소섬유강화 에폭시 복합재료를 마이크로드롭넷 시험과 전기-미세역학시험법을 이용한 계면전단강도와 겉보기 강성도를 평가하였다. 탄소섬유와 저온용 에폭시의 극저온에 따른 기계적 물성변화를 확인하였다. 극저온에서 탄소섬유 인장실험 결과, 상온과 비교하여 강성도는 유지하면서 강도와 연신율이 감소하였다. 이에 비해, 에폭시 기지는 상온보다 극저온에서 강도가 증가되었으나, 연신율이 감소하는 결과를 보여주었다. 이는 탄소섬유에 비해 에폭시 수지내 존재하는 빈 공간이 극저온에서 열적 수축이 최대로 일어나기 때문이다. 계면전단강도는 $-10^{\circ}C$에서 최대를 보인 후에 극저온까지 점차 감소를 보여 주었다. 그러나, 탄소섬유와 YDF-175 에폭시가 극저온에서도 여전히 상온보다 양호한 계면전단강도를 보여주었다. 이 결과는 아주 유용하며 선정된 저온용 에폭시의 인성과 계면접착력이 극저온에서도 유지되기 때문이다.

모재-섬유 함침 비율에 따른 건설용 GFRP 기둥구조의 고유진동 특성 (Natural Frequency Characteristics of GFRP Pole Structures for Civil Structures with Different Fiber-Volume Fraction)

  • 이상열
    • Composites Research
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    • 제27권2호
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    • pp.66-71
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    • 2014
  • 본 연구는 GFRP 복합재료로 구성된 기둥 구조에 대하여 마이크로 역학 접근방법에 의한 섬유의 함침비율 변화에 따라 탄성계수를 예측하고 매크로 역학 기반으로 고유진동 특성을 분석하였다. 본 연구에서 제시하는 멀티 스케일 접근법에 의한 유한요소 모델은 해석의 정확성과 재료들 간의 상관관계를 상세하고 정확이 보여준다는 장점이 있다. 수치해석은 적층 갯수, 적층배열, 섬유함침비율의 변화에 따라서 고유진동의 변화를 분석하는데 중점을 두고 있다. 수치예제로부터 섬유와 모재의 재료비율은 거시적 동역학적 특성에 중요한 영향을 주고 있음을 알 수 있었다. 본 연구는 고유진동에 영향을 미치는 최적의 섬유와 모재 재료비율을 상세 분석하였으며, 해석 결과는 건설용으로서의 복합소재 기둥구조가 경제적이면서 우수한 동적 구조 성능을 만족하도록 설계하는데 기여할 수 있을 것으로 기대된다.

DBR 다공성 실리콘/고분자 Composite 재료-이중적 광학특성 (DBR PSi/Polymer Composite Materials -Dual Photonic Characteristics)

  • 박철영;장승현;김지훈;박재현;고영대;김성진;고영춘;손홍래
    • 한국진공학회지
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    • 제16권3호
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    • pp.221-226
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    • 2007
  • 광 발광성 (photoluminescence, PL)과 광 반사성(reflectivity)의 두 가지 광학적 성질을 동시에 가지고 있는 새로운 다층 DBR(distributed Bragg reflector) 다공성 실리콘 composite 필름을 개발하였다. 발광 효율이 높은 실리콘 고분자 폴리실올을 PMMA(polymethylmethacrylate)에 첨가하여 다층 DBR 다공성 실리콘 표면에 코팅을 한 composite 필름을 제조하였다. 이 composite 필름은 510 nm에서의 발광스펙트럼과 565 nm에서의 반사스펙트럼을 동시에 나타낸다. 이러한 composite 필름은 광학적 정보가 저장되어있고 물리적인 힘을 가하여도 그 광학적 정보를 잃지 않는 장점을 갖는다. 또한 다층 DBR 다공성 실리콘 필름은 쉽게 부서지는 단점 때문에 다루기가 어려운 반면 composite 필름은 고분자로 고형화 되어있으므로 기계적인 안정도를 증가시킬 수 있었다.