890 resultados para HEAT-TREATMENT
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Of all laser-based processes, laser machining has received little attention compared with others such as cutting, welding, heat treatment and cleaning. The reasons for this are unclear, although much can be gained from the development of an effcient laser machining process capable of processing diffcult materials such as high-performance steels and aerospace alloys. Existing laser machining processes selectively remove material by melt shearing and evaporation. Removing material by melting and evaporation leads to very low wall plug effciencies, and the process has difficulty competing with conventional mechanical removal methods. Adopting a laser machining solution for some materials offers the best prospects of effcient manufacturing operations. This paper presents a new laser machining process that relies on melt shear removal provided by a vertical high-speed gas vortex. Experimental and theoretical studies of a simple machining geometry have identifed a stable vortex regime that can be used to remove laser-generated melt effectively. The resultant combination of laser and vortex is employed in machining trials on 43A carbon steel. Results have shown that laser slot machining can be performed in a stable regime at speeds up to 150mm/min with slot depths of 4mm at an incident CO2 laser power level of 600 W. Slot forming mechanisms and process variables are discussed for the case of steel. Methods of bulk machining through multislot machining strategies are also presented.
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Boronizing is a thermochemical diffusion-based process for producing iron boride layers in the surface of steel components. The boride layer is wear resistant and is very hard. Large residual stresses are found to exist in the surface layers, which are a function of substrate steel composition and heat treatment. By slow cooling from the boronizing temperature (900°C), a large compressive stress is developed in the boride layer. Hardening the steel by rapid cooling, either directly from the boronizing treatment or after subsequent austenitizing, develops tension in the coating which causes it to fracture. Tempering of the martensite produces compression in the coating, closing but not welding the cracks. The results of solid particle erosion experiments using silicon carbide, quartz, and glass bead erodents on boronized steels are presented.
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CP43和CP47是PSII中位于类囊体膜上的两种内周天线色素蛋白复合体,它们都是由六个跨膜的α-螺旋和五个膜外环组成。CP43和CP47的主要功能是把光系统II(PSII)外周天线色素蛋白复合体(LHCII)吸收的能量传给反应中心(RC),从而引起光化学反应。因此,研究CP43和CP47的结构与功能对于揭示植物光合作用高效吸能、传能的分子机理具有重要意义。由于CP43和CP47的分离纯化比较困难,所以相对于其它的光合膜蛋白来说,人们对CP43和CP47的研究比较少。在本文中,我们在分离、纯化CP43和CP47的基础上,采用多种光谱学和波谱学技术对CP43和CP47在GuHCl和高温作用下的变性过程及其结构与功能的变化规律进行了比较深入的研究,获得了如下结果: 1. CP43和CP47膜外区的结构特点及盐酸胍(GuHCl)引起的变性研究 我们用荧光光谱、园二色(CD)光谱研究了GuHCl引起CP43和CP47的变性过程及其膜外区的结构特点。研究发现:CP43和CP47的膜外区具有一定的有序结构,而不是一种没有规则的伸展状态;和CP43相比,CP47的三级结构及Chl a的微环境对GuHCl更敏感。在GuHCl作用下,从β-Car到Chl a的能量传递变化和三级结构的变化密切相关,而与二级结构变化的相关性则较小;和大多数水溶性蛋白不一样,CP43和CP47对GuHCl变性有一定的抵抗力,而且其变性过程不表现为二态过程,这些都是膜蛋白的特点。 2 CP43和CP47中与芳香族氨基酸有关的能量传递研究 我们用吸收光谱、荧光光谱并参照PSII的3.5 Å的晶体结构分析结果研究了CP43和CP47中与芳香族氨基酸有关的能量传递。发现:和水溶性蛋白不一样,CP43和CP47中的酪氨酸(Tyrs)并不能有效的把其能量传给色氨酸(Trps);CP43和CP47中的芳香族氨基酸能通过Föster机制和Dexter机制把其能量传给Chl a,并且CP47中的传递效率要大于CP43;在CP47中Föster机制是芳香族氨基酸和Chl a之间能量传递的主要方式,而在CP43中Dexter机制则是主要方式。这些结果也暗示了,太阳光中的紫外辐射对植物来说除了其伤害作用以外也有一定的益处。 3 GuHCl诱导CP43和CP47变性的太赫兹(THz)光谱研究 THz时域光谱技术(THz-TDS)是研究分子构型状态的一个新工具。近年来,已被应用于物理或化学分子的研究中。我们首次把这个技术应用到光合膜蛋白CP43和CP47的GuHCl变性研究上。研究发现,在小于1.5 THz时,THz吸收光谱强度随着频率的增加而增加可以看作是蛋白质变性的标志。在GuHCl作用下频域光谱中出现的1.8 THz峰应来源于Chl a和GuHCl之间的相互作用。实验结果表明,THz光谱是区分蛋白分子的不同构型状态以及监测蛋白变性过程的有力工具。 4 CP43热变性的傅立叶变换红外光谱和THz光谱研究 我们用傅立叶变换红外光谱技术(FT-IR)、SDS聚丙稀凝胶电泳(SDS-PAGE)和THz光谱技术对CP43的热变性过程进行了研究。结果表明,在高温处理下,CP43的二级结构发生了变化,且其跃变点发生在59℃。随着温度的逐渐升高,CP43先发生凝集,接着又发生降解;CP43的低频振动模随着温度的升高和分子量的减小也发生变化。我们还证实THz光谱技术在监测膜蛋白的热变性时既有它的优越性,也存在一些不足之处。这些结果为THz-TDS技术在生物样品上的应用提供了基本的资料,并完善了相关的理论。
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百合是重要的球根花卉,是世界五大切花之一。我国的百合野生资源丰富,但百合鲜切花生产与世界花卉大国相比仍然存在差距,优质的商品种球大量依靠进口,实现商品种球国产化能够促进百合鲜切花生产和农业经济发展。温度是影响百合生长发育最重要的因子之一,影响百合鳞茎发育,限制百合的分布区域。 百合鳞茎具有自然休眠的特性,低温处理是目前打破百合鳞茎休眠的最常用的方法。低温处理期间,鳞茎内发生复杂的反应,淀粉水解,鳞茎内的淀粉酶(α-淀粉酶和β-淀粉酶)活性增加,可溶性糖主要是蔗糖积累;可溶性蛋白质含量增加,游离氨基酸在鳞茎相对幼嫩的器官中集中;休眠解除期间脱落酸和玉米素核苷含量呈下降趋势,赤霉素含量呈上升趋势且活性增高,鳞茎各部位生长素都有上升,一些其他生长调节剂如Me-JA和多胺对解除百合鳞茎也有作用。低温处理期间,鳞茎内各种激素相互作用,共同调控鳞茎的休眠状态。利用低温处理打破百合鳞茎休眠的过程中,温度要求控制在稳定的范围内。利用冰箱低温处理打破百合鳞茎休眠的实验中,放入样品前冰箱内的温度在所设定温度±1℃范围内波动,且不同部位温度均匀;但冰箱内放入样品后,其内部不同部位的温度相差较大,表现为上部温度高,下部温度低,冰箱内部不同部位温度差异很大。 从百合资源在中国的分布看,华北地区的百合资源相对稀缺,温度是限制其生长的重要环境因子。新铁炮百合能够在炎热的华南地区露地栽培,将其在华北地区进行区域化露地栽培实验,对百合栽培应用推广,扩大栽培面积,降低运输成本,以及保证鲜切花质量有重要意义。通过气体交换测定的光合作用是对高温最敏感和综合的生理指标,可以在植物生长和生物量积累未发生明显变化之前揭示高温的影响。本研究通过人工气候箱,设定四个温度梯度:25℃,32℃,38℃,44℃,处理2h,通过测定新铁炮百合幼苗的光合特性研究其耐热程度、探讨可能的耐热机制。结果表明:净光合作用速率(Pn)在小于38℃时下降幅度不大,大于38℃后显著下降,随着处理温度的提高,气孔导度(Gs)呈下降的趋势,胞间二氧化碳浓度(Ci)则上升,而气孔限制值(Ls)下降。高温下,两品种叶片最小荧光(Fo)无明显变化,最大荧光(Fm)和光系统II(PSⅡ)最大光化学效率(Fv/Fm)下降程度较小;光下,PSⅡ实际光化学效率(ΦPSⅡ)呈下降趋势,44℃处理后显著下降;NPQ随处理温度的提高而上升;处理温度升高,SOD、APX、CAT、POD活力增强。研究表明新铁炮百合能够耐受32-38℃的高温;热胁迫下,叶片通过提高非光化猝灭和抗氧化酶活性两种机制来抵御高温胁迫。
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Atom probe tomography was used to study the redistribution of platinum and arsenic atoms after Ni(Pt) silicidation of As-doped polycrystalline Si. These measurements were performed on a field-effect transistor and compared with those obtained in unpatterned region submitted to the same process. These results suggest that Pt and As redistribution during silicide formation is only marginally influenced by the confinement in microelectronic devices. On the contrary, there is a clear difference with the redistribution reported in the literature for the blanket wafers. Selective etching used to remove the non-reacted Ni(Pt) film after the first rapid heat treatment may induce this difference. © 2011 American Institute of Physics.
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Composites of magnetoresistive La 0.7Ca 0.3MnO 3 (LCMO) with insulating Mn 3O 4 are useful as a model system because no foreign cation is introduced in the LCMO phase by interdiffusion during the heat treatment. Here we report the magnetotransport properties as a function of sintering temperature T sinter for a fixed LCMO/Mn 3O 4 ratio. Decreasing T sinter from 1250 °C to 800 °C causes an increase in low field magnetoresistance (LFMR) that correlates with the decrease in crystallite size (CS) of the LCMO phase. When plotting LFMR at (77 K, 0.5 T) versus 1/CS, we find that the data for the LCMO/Mn 3O 4 composites sintered between 800 °C and 1250 °C follow the same trend line as data from the literature for pure LCMO samples with crystallite size >∼25 nm. This differs from the LFMR enhancement observed by many authors in the usual manganite composites, i.e., composites where the insulating phase contains cations other than La, Ca or Mn. This difference suggests that diffusion of foreign cations into the grain boundary region is a necessary ingredient for the enhanced LFMR. © 2012 American Institute of Physics.
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High strength steels can suffer from a loss of ductility when exposed to hydrogen, and this may lead to sudden failure. The hydrogen is either accommodated in the lattice or is trapped at defects, such as dislocations, grain boundaries and carbides. The challenge is to identify the effect of hydrogen located at different sites upon the drop in tensile strength of a high strength steel. For this purpose, literature data on the failure stress of notched and un-notched steel bars are re-analysed; the bars were tested over a wide range of strain rates and hydrogen concentrations. The local stress state at failure has been determined by the finite element (FE) method, and the concentration of both lattice and trapped hydrogen is predicted using Oriani's theory along with the stress-driven diffusion equation. The experimental data are rationalised in terms of a postulated failure locus of peak maximum principal stress versus lattice hydrogen concentration. This failure locus is treated as a unique material property for the given steel and heat treatment condition. We conclude that the presence of lattice hydrogen increases the susceptibility to hydrogen embrittlement whereas trapped hydrogen has only a negligible effect. It is also found that the observed failure strength of hydrogen charged un-notched bars is less than the peak local stress within the notched geometries. Weakest link statistics are used to account for this stressed volume effect. © 2013 Elsevier Ltd.
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The current generation of advanced gravitational wave detectors utilize titania-doped tantala/silica multilayer stacks for their mirror coatings. The properties of the low-refractive-index silica are well known; however, in the absence of detailed direct measurements, the material parameters of Young's modulus and coefficient of thermal expansion (CTE) of the high refractive index material, titania-doped tantala, have been assumed to be equal to values measured for pure tantala coatings. In order to ascertain the true values necessary for thermal noise calculations, we have undertaken measurements of Young's modulus and CTE through the use of nanoindentation and thermal-bending measurements. The measurements were designed to assess the effects of titania doping concentration and post-deposition heat-treatment on the measured values in order to evaluate the possibility of optimizing material parameters to further improve thermal noise in the detector. Young's modulus measurements on pure tantala and 25% and 55% titania-doped tantala show a wide range of values, from 132 to 177 GPa, dependent on both titania concentration and heat-treatment. Measurements of CTE give values of (3.9 +/- 0.1) x 10^-6 K^-1 and (4.9 +/- 0.3) x 10^-6 K^-1 for 25% and 55% titania-doped tantala, respectively, without dependence on post-deposition heat-treatment.
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A birnavirus strain, Paralichthys olivaceus birnavirus (POBV), was isolated and characterized from cultured flounder in China, and its complete genomic sequence was subsequently determined. The virus could induce cytopathic effects (CPE) in four of seven fish cell lines and was resistant to chloroform, 5-iodo-2'-deoxyuridine, acid and alkaline pH, and heat treatment. Purified virus particles had a typical icosahedral shape, with a diameter of approximately 55-60 nm. The genomic segments A and B of POBV were 3,091 and 2,780 bp in length and shared many of the features of the members of the family Birnaviridae. Segment A contained two partially overlapping ORFs encoding a polyprotein, pVP2-VP4-VP3, and a nonstructural protein, VP5, while segment B had only one ORF encoding for the VP1, a viral RNA-dependent RNA polymerase (RdRp). This is the first report about a birnavirus strain from a new non-salmonid host in China and its complete genome sequence.
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Devitrite is a novel material produced by heat treatment of commercial soda-lime-silica glass. It consists of fans of needle-like crystals which can extend up to several millimeters and have interspacings of up to a few hundred nanometers. To date, only the material properties of devitrite have been reported, and there has been a distinct lack of research on using it for optical applications. In this study, we demonstrate that randomly oriented fans of devitrite crystals can act as highly efficient diffusers for visible light. Devitrite crystals produce phase modulation of light because of their relatively high anisotropy. The nanoscale spacings between these needles enable light to be diffused to large scattering angles. Experimentally measured results suggest that light diffusion patterns with beam widths of up to 120° are produced. Since devitrite is an inexpensive material to produce, it has the potential to be used in a variety of commercial applications.
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An unknown virus was isolated from massive mortality of cultured threadfin (Eleutheronema tetradactylus) fingerlings. The virus replicated in BF-2 fish cell line and produced a plaque-like cytopathic effect. Electron micrographs revealed non-enveloped, icosahedral particles approximately 70-80 nm in diameter composed of a double capsid layer. Viroplasms and subviral particles approximately 30 run in diameter and complete particles of 70 nm in diameter were also observed in the infected BF-2 tissue culture cells. The virus was resistant upon pH 3 to 11 and ether treatment. It is also stable to heat treatment (3 h at 56 T). Replication was not inhibited by 5-iododeoxyuridine (5-IUdR). Acridine orange stain revealed typical reovirus-like cytoplasmic inclusion bodies. Electrophoresis of purified virus revealed 11 segments of double-stranded RNA and five major structural polypeptides of approximately 136, 132, 71, 41 and 33 kDa. Based on these findings, the virus isolated was identified to belong to the genus Aquareovirus and was designated as threadfin reovirus. This virus differed from a majority of other aquareovirus by its increase in virus infectivity upon exposure to various treatments such as high and low pH, heat (56 degreesC), ether and 5-IUdR. The RNA and virion protein banding pattern of the threadfin reovirus was shown to differ from another Asian isolate, the grass carp hemorrhage reovirus (GCV). Artificial injection of the threadfin reovirus into threadfin fingerlings resulted in complete mortality, whereas sea bass (Lates calcarifer) fingerlings infected via bath route showed severe mortality within a week after exposure. These results indicate that the threadfin virus is another pathogenic Asian aquareovirus isolate that could cross-infect into another marine fish, the sea bass. (C) 2002 Elsevier Science B.V. All rights reserved.
Synthesis and temperature-dependent near-band-edge emission of chain-like Mg-doped ZnO nanoparticles
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Chain-like Mg-doped ZnO nanoparticles were prepared using a wet chemical method combined with subsequent heat treatment. The blueshifted near-band-edge emission of the doped ZnO sample with respect to the undoped one was investigated by temperature-dependent photoluminescence. Based on the energy shift of the free-exciton transition, a band gap enlargement of similar to 83 meV was estimated, which seems to result in the equivalent shift of the bound-exciton transition. At 50 K, the transformation from the donor-acceptor-pair to free-to-acceptor emissions was observed for both the undoped and doped samples. The results show that Mg doping leads to the decrease of the acceptor binding energy. (c) 2006 American Institute of Physics.
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Nanocomposite films consisting of nanosized Ag particles embedded in partially oxidized amorphous Si-containing matrices were prepared by radio frequency magnetron co-sputtering deposition. We studied the influence of ambient atmosphere during the preparation and heat-treatment of Ag/SiOx (0 less than or equal to x less than or equal to 2) nanocompositefilm on its optical absorption properties. We found that the plasmon resonance absorption peak shifts to shorter wavelengths with the increasing oxygen content in the SiOx matrix. The analysis indicates that the potential barrier between Ag nanoparticles and SiOx matrix increases with the increasing x value, which will induce the surface resonance state to shift to higher energy. The electrons in the vicinity of the Fermi level of Ag nanoparticles must absorb more energy to be transferred to the surface resonance state with the increasing x value. It was also found that the plasmon resonance absorption peaks of the samples annealed in different ambient atmospheres are located at about the same position. This is because the oxidation surface layer is dense enough to prevent the oxygen from penetrating into the sample to oxidize the silicon in the inner layer.
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The photoluminescence (PL) of CdSexS1-x semiconductor quantum dots (QDs) in a glass spherical microcavity is investigated. The CdSexS1-x semiconductor clusters embedded in a glass matrix are fabricated by using the heat treatment method. Periodical structures consisting of sharp spectral lines are observed in the PL spectra of CdSexS1-x QDs, which can be well explained by the coupling with the whispering gallery modes of the spherical microcavity based on Mie scattering theory.
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Deep trap levels in a Mg-doped GaN grown by metalorganic vapor phase epitaxy are studied with deep level transient spectroscopy (DLTS). The Mg concentration of the sample was 4.8 x 10(19) cm(-3), but the hole concentration was as low as 1.3x10(17) cm-3 at room temperature. The DLTS spectrum has a dominant peak D-1 with an activation energy of 0.41+/-0.05 eV, accompanied by two additional peaks with activation energies of 0.49+/-0.09 eV (D-2) and 0.59+/-0.05 eV (D-3). It was found that the dominant peak D-1 consists of five peaks, each of which has different activation energy and capture cross section. In order to investigate these deep levels further, we performed heat treatment on the same samples to observe the variations of activation energy, capture cross section, and amplitude of DLTS signals. It was found that the longer the heat treatment duration is, the lower the amplitude of DLTS peaks become. This suggests that the decrease of the DLTS signal originates from hydrogen atom outgoing from the film during the annealing process. The possible originality of multiple trap levels was discussed in terms of the Mg-N-H complex. (C) 2000 American Vacuum Society. [S0734-2101(00)01701-2].