340 resultados para AISI 316L


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Corrosion is an undesirable process that occurs in metallic materials. Studied was the effect of inhibiting Benzotriazole (BTAH), Benzimidazole (BZM) and Indole in different concentrations-for the stainless steel (SS) AISI 430 in H(2)SO(4) mol The techniques employed this research were: anodic potenciostatic polarisation, electrochemical impedance spectroscopy, optical microscopy and scanning electron microscopy The curves of anodic polarisation showed that BTAH, BZM and Indol act as corrosion inhibitors for 430 SS, at concentrations of 1x10(-3) and 5x10(-4) mol L(-1) but do not inhibit corrosion for concentrations equal to or less than 1x10(-4) mol L(-1). The in-crease of the efficiency in relation to the inhibitory substances studied followed this order: Indol

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A nitretação dos aços inoxidáveis austeníticos apresenta grande interesse tecnológico, pois tanto em processos convencionais tais como as nitretações a gás e em banho de sais como em processos a plasma, obtêm-se um aumento significativo de sua dureza superficial e resistência ao desgaste. No entanto, devido as altas temperaturas utilizadas nos processos convencionais, observa-se uma extensa formação de precipitados de nitretos de cromo, com consequente redução de resistência à corrosão do material. A proposta deste trabalho é utilizar a tecnologia de plasma para nitretar um aço inoxidável austenítico neste caso o ABNT 316 L a temperaturas relativamente baixas a fim de evitar precipitação de nitretos). As temperaturas utilizadas foram de 350, 375 e 400 0C, variandose o tempo de nitretação de 3 ,4 e 5 horas com duas misturas gasosas (76%N2 e 24%H2 e 5%H2 e 95%N2). As amostras foram analisadas através da microdureza superficial (método convencional e nanodureza), caracterização microestrutural por microscopia ótica, eletrônica de varredura e de transmissão, medida da profundidade de camadas formadas (MEV), rugosidade, determinação das fases presentes (Raios - X), nanodureza , perfil da composição química (GDOS) e resistência à corrosão (névoa salina e curvas de polarização) As amostras nitretadas nestas temperaturas e tempos produziram camadas de 1,9 a 5,5 µm medidas via GDOS e durezas que vão de 330HK a 987HK não observando-se a precipitação de nitretos de cromo, mas sim a formação de uma estrutura supersaturada de nitrogênio intersticial, chamada de “fase S” identificada por difração de Raios - X. As camadas nitretadas apresentaram um gradiente de nitrogênio que diminui, indicando um gradiente junto as características microestruturais, níveis de tensões residuais favoráveis para uma boa adesão, com a formação de uma camada com menor fragilidade. Esta fase “S”, além de produzir altas durezas superficiais, aumentou a resistência à corrosão do aço. Testes em campo com navalhas de corte e facas móveis tiveram um aumento de vida útil de 100% e 217%.

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Este trabalho apresenta um estudo de camada “duplex” em aços para trabalho à quente da classe AISI H13, com enfoque em matrizes de injeção de ligas de alumínio, visando otimizar a vida das matrizes atuando tanto sobre os mecanismos de ataque superficial da matriz pelo alumínio como sobre a formação de trincas por fadiga térmica. O tratamento duplex consistiu em nitretação à plasma, com gás contendo 5% de nitrogênio e diferentes parâmetros de tempos e temperaturas, sendo as amostras posteriormente revestidas com nitreto de titânio (TiN) ou nitreto de cromo (CrN). As camadas nitretadas foram avaliadas através de análises metalográficas, perfis de dureza e difração de raios X, buscando caracterizar e qualificar a camada nitretada. Tendo sido observado na difração de raios X a presença de camada de compostos (nitretos de ferro ε e γ’) mesmo com a utilização de gás pobre em nitrogênio, foram também avaliados substratos nitretados sem a remoção mecânica dos nitretos e com um polimento para remoção destes antes da deposição. A rugosidade dos substratos nitretados com e sem a realização do polimento mecânico também foram determinados, buscando relação deste parâmetro com os resultados obtidos. O conjunto camada nitretada e depósitos (TiN ou CrN) com e sem o polimento mecânico após-nitretação foram avaliados em termos de adesão com ensaios de indentação Rockwell C com análise em microscopia eletrônica de varredura (qualitativamente) e com o teste do risco (quantitativamente) avaliando tanto as cargas críticas para a falha do filme como o modo de falha também em microscopia eletrônica de varredura. Além disso, foram realizados testes de fadiga térmica em banho de alumínio para simulação e avaliação do desempenho da camada “duplex” em condições de trabalho, bem como foram testadas duas condições de nitretação com TiN ou CrN em regime industrial. Os resultados mostram ganhos de adesão crescentes com o aumento dos tempos e das temperaturas de nitretação, além de maiores ganhos com a remoção mecânica (polimento) do substrato nitretado antes da deposição dos filmes. O comportamento, frente às condições de trabalho também foi superior para condições de nitretação com maiores tempos e temperaturas, tanto nos ensaios de laboratório com nos testes em regime industrial.

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Filmes de polianilina (PAni) puros não apresentam propriedades mecânicas satisfatórias quando depositados sobre metais e mergulhados em soluções aquosas. Propriedades mecânicas melhoradas podem ser obtidas adicionando um plastificante ao polímero. Neste caso foi utilizado o dodecilfenol (DDPh) e as condições mais adequadas de adição do DDPh a PAni previamente solubilizada em N-metilpirrolidinona (NMP) foram determinadas a partir da avaliação das propriedades dos filmes depositados sobre eletrodos metálicos de aço carbono. As melhores condições foram: adição de 5% de DDPh á PAni seguido de aquecimento sob vácuo a 200o C durante uma hora. A PAni sintetizada quimicamente foi utilizada nas condições dedopada e dopada com 5% de ácido para-toluenosulfônico (TSA). Também foi preparada uma mistura de PAni com poli(orto-metóxianilina) (POMA) em diversas proporções e igualmente dedopadas e dopadas com 5% de TSA. Os filmes obtidos nestas condições foram analisados por técnicas variadas (espectroscopia infravermelho, Raman e de massa), testados por técnicas eletroquímicas (voltametria cíclica e medida do potencial de corrosão ao longo do tempo) e ensaios acelerados de corrosão (névoa salina e câmara úmida) O melhor desempenho como filme protetor contra a corrosão foi apresentado pela PAni plastificada com 5% de DDPh e dopada com 5% de TSA. No ensaio de potencial de corrosão contra o tempo, este filme foi capaz de manter o potencial do sistema PAni-DDPh-TSA / aço carbono durante sete dias num valor positivo. Filmes da mistura PAni-POMA plastificados e dopados com TSA também atuaram conforme um mecanismo do mesmo tipo, porém por um período de tempo inferior, demonstrando a influência da POMA nas propriedades da PAni. Os ensaios acelerados de corrosão mostraram que os filmes de PAni plastificados com 5% de DDPh e dopados com 5% de TSA são muito superiores na proteção contra a corrosão do aço quando comparados ao filme de PAni pura. No ensaio de névoa salina o aço revestido pelo filme de PAni plastificado com 5% de DDPh e dopado com 5% de TSA, não apresentou corrosão por um período de sete dias.

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R.R.M. de Sousa et al. Nitriding in cathodic cage of stainless steel AISI 316: Influence of sample position. Vacuum, [s.l.], n.83, 2009. Disponivel em: . Acesso em: 04 out.2010.

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Mechanical and tribological properties of AISI 304 and AISI 316 stainless steels submitted to glow discharge ion nitriding are reported. The atmosphere was 20:80 - N2:H2 with substrate temperatures ranging from 300 to 500 °C. Treatment at 300 °C produced expanded austenite (γN) in both steels. Increasing the temperature, the phases γ′-Fe4N and ε- Fe2+xN were present and the latter is the major phase for AISI 304. At 500 °C, the CrN phase was also identified in both steels. Hardnesses of about 13-14 GPa at near surface regions were obtained in both steels. Moreover, AISI 316 nitrided at 500 °C has the deepest hard layer. Tribological tests showed that wear can be reduced by up to a factor of six after the nitriding processes, even for a working temperature of 300 °C. The profiles during and after nanoscratch tests did not reveal significant differences after nitriding processes in both steels.

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In this work, AISI 1010 steel samples were plasma nitrided into 20% N 2 100 Pa and 400 Pa for N 2 and H 2 , respectively), temperatures of 500 and 580 °C, during 2 h. Three different procedures for cooling were accomplished after nitriding. In the first procedure the cooling occurred naturally, that is, the sample was kept on substrate holder. In the second one the sample was pulled off and cooling in a cold surface. Finally, in the third cooling process the sample was pulled off the substrate holder down into special reservoir filled with oil held at ambient temperature. The properties of the AISI 1010 steel samples were characterized by optical and electron microscopy, X-ray diffraction, Mössbauer spectroscopy and microhardness tests. Thermal gradient inside the sample kept on substrate holder during cooling process was measured by three inserted thermocouples at different depths. When samples were cooled rapidly the transformation of ϵ-Fe 2 − 3 N to γ′-Fe 4 N was inhibited. Such effect is indicated by the high concentration of ϵ-Fe compound zone. To get solid state solution of nitrogen in the diffusion zone, instead of precipitates of nitride phases, the cooling rate should be higher than a critical value of about 0.95 °C/s. When this value is reached at any depth of the diffusion zone, two distinct diffusion zones will appear. Temperature gradients were measured inside the samples as a consequence of the plasma treatment. It's suggested the need for standardization of the term “treatment temperature” for plasma treatment because different nitrided layer properties could be reported for the same “treatment temperature”.

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Mechanical and tribological properties of AISI 304 and AISI 316 stainless steels submitted to glow discharge ion nitriding are reported. The atmosphere was 20:80 - N2:H2 with substrate temperatures ranging from 300 to 500 °C. Treatment at 300 °C produced expanded austenite (γN) in both steels. Increasing the temperature, the phases γ′-Fe4N and ε- Fe2+xN were present and the latter is the major phase for AISI 304. At 500 °C, the CrN phase was also identified in both steels. Hardnesses of about 13-14 GPa at near surface regions were obtained in both steels. Moreover, AISI 316 nitrided at 500 °C has the deepest hard layer. Tribological tests showed that wear can be reduced by up to a factor of six after the nitriding processes, even for a working temperature of 300 °C. The profiles during and after nanoscratch tests did not reveal significant differences after nitriding processes in both steels.

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The present work shows a contribution to the studies of development and solid sinterization of a metallic matrix composite MMC that has as starter materials 316L stainless steel atomized with water, and two different Tantalum Carbide TaC powders, with averages crystallite sizes of 13.78 nm and 40.66 nm. Aiming the metallic matrix s density and hardness increase was added different nanometric sizes of TaC by dispersion. The 316L stainless steel is an alloy largely used because it s high resistance to corrosion property. Although, its application is limited by the low wear resistance, consequence of its low hardness. Besides this, it shows low sinterability and it cannot be hardened by thermal treatments traditional methods because of the austenitic structure, face centered cubic, stabilized mainly in nickel presence. Steel samples added with TaC 3% wt (each sample with different type of carbide), following a mechanical milling route using conventional mill for 24 hours. Each one of the resulted samples, as well as the pure steel sample, were compacted at 700 MPa, room temperature, without any addictive, uniaxial tension, using a 5 mm diameter cylindrical mold, and quantity calculated to obtain compacted final average height of 5 mm. Subsequently, were sintered in vacuum atmosphere, temperature of 1290ºC, heating rate of 20ºC/min, using different soaking times of 30 and 60 min and cooled at room temperature. The sintered samples were submitted to density and micro-hardness analysis. The TaC reforced samples showed higher density values and an expressive hardness increase. The complementary analysis in optical microscope, scanning electronic microscope and X ray diffractometer, showed that the TaC, processed form, contributed with the hardness increase, by densification, itself hardness and grains growth control at the metallic matrix, segregating itself to the grain boarders

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In the research, steel samples tool AISI D2, treated thermally, in the conditions: relief of tension, when maximum, seasoned and seasoned was treated thermally in the temperature of revenimento and revenida had been nitrited in plasma with cathodic cage, in atmosphere of 80%N2:20%H2. One used pressure of 2,5 mbar, 400 and 480°C temperatures with treatment time of 3 and 4 hours, with the objective to evaluate its performance in pipes cut tool. It was compared that the performance of the same steel when only thermally treated, both with tension relief. It was evaluated its hardness. Microstructural aspects (the layer thickness, interface, graisn size, etc) and crystalline phases on the surface. Besides, it was verified accomplishment possibility of nitriding simultaneous to annealing treatment. The tempering samples had presented hardness levels of 600 HV, while in nitrited samples these values had been 1100 HV

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This masther dissertation presents a contribution to the study of 316L stainless steel sintering aiming to study their behavior in the milling process and the effect of isotherm temperature on the microstructure and mechanical properties. The 316L stainless steel is a widely used alloy for their high corrosion resistance property. However its application is limited by the low wear resistance consequence of its low hardness. In previous work we analyzed the effect of sintering additives as NbC and TaC. This study aims at deepening the understanding of sintering, analyzing the effect of grinding on particle size and microstructure and the effect of heating rate and soaking time on the sintered microstructure and on their microhardness. Were milled 316L powders with NbC at 1, 5 and 24 hours respectively. Particulates were characterized by SEM and . Cylindrical samples height and diameter of 5.0 mm were compacted at 700 MPa. The sintering conditions were: heating rate 5, 10 and 15◦C/min, temperature 1000, 1100, 1200, 1290 and 1300◦C, and soaking times of 30 and 60min. The cooling rate was maintained at 25◦C/min. All samples were sintered in a vacuum furnace. The sintered microstructure were characterized by optical and electron microscopy as well as density and microhardness. It was observed that the milling process has an influence on sintering, as well as temperature. The major effect was caused by firing temperature, followed by the grinding and heating rate. In this case, the highest rates correspond to higher sintering.

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In general, among the corrosion inhibitors surfactants are the most commonly used compounds, because they are significantly effective by forming protective films on anodic and cathodic areas. In this study, microemulsions containing he biodegradable saponified coconut oil as surfactant (SME-OCS) was used as green corrosion inhibitors. With this purpose, methanolic extracts of Ixora coccinea Linn (IC) and a polar fraction rich in alkaloids (FA) obtained from Croton cajucara Benth solubilized in the SME-OCS system were examined in the presence of AISI 1020 carbon steel, in saline solution (NaCl 3,5 %). The efficiency of corrosion inhibition of IC and FA were evaluated in the following microemulsions: SME-OCS-IC and SME-OCS-FA. The microemulsion system SME-OCS in the presence and absence of IC and FA was assessed by measurements of weight loss and the electrochemical method of polarization resistance, with variation in the concentration of IC and FA (50 - 400 ppm), showing significant results of corrosion inhibition (83,6 % SME-OCS; 92,2 % SME-OCS-FA; and 95,3 % SME-OCS-IC)

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The technique of plasma nitriding by the cathode cage mainly stands out for its ability to produce uniform layers, even on parts with complex geometries. In this study, it was investigated the efficiency of this technique for obtaining duplex surface, when used, simultaneously, to nitriding treatment and thin film deposition at temperatures below 500°C. For this, were used samples of AISI 41 0 Martensitic Stainless Steel and performed plasma treatment, combining nitriding and deposition of thin films of Ti and/or TiN in a plasma atmosphere containing N2-H2. It was used a cathodic cage of titanium pure grade II, cylindrical with 70 mm diameter and 34 mm height. Samples were treated at temperature 420ºC for 2 and 12 hours in different working pressures. Optical Microscopy (OM), Scanning Electron Microscopy (SEM) with micro-analysis by Energy Dispersive Spectroscopy (EDS), X-Ray Diffraction (XRD), Atomic Force Microscopy (AFM) and analysis of Vickers Microhardness were used to investigate coating properties such as homogeneity and surface topography, chemical composition, layer thickness, crystalline phase, roughness and surface microhardness. The results showed there is a direct proportionality between the presence of H2 in plasma atmosphere and the quantity of titanium in surface chemical composition. It was also observed that the plasma treatment at lowpressure is more effective in formation of TiN thin film

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The heat transfer between plasma and a solid occurs mostly due the radiation and the collision of the particles on the material surface, heating the material from the surface to the bulk. The thermal gradient inside the sample depends of the rate of particles collisions and thermal conductivity of the solid. In order to study that effect, samples of AISI M35 steel, with 9,5 mm X 3,0 mm (diameter X thickness) were quenched in resistive furnace and tempereds in plasma using the plane configuration and hollow cathode, working with pressures of 4 and 10 mbar respectively. Analyzing the samples microstructure and measuring the hardness along the transversal profile, it was possible to associate the tempered temperature evaluating indirectly the thermal profile. This relation was obtained by microstructural analyzes and through the hardness curve x tempered sample temperature in resistive furnace, using temperatures of 500, 550, 600, 650 and 700°C. The microstructural characterization of the samples was obtained by the scanning electron microscopy, optic microscopy and X-ray diffraction. It was verified that all samples treated in plasma presented a superficial layer, denominated affected shelling zone, wich was not present in the samples treated in resistive furnace. Moreover, the samples that presented larger thermal gradient were treated in hollow cathode with pressure of 4 mbar

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Actually in the oil industry biotechnological approaches represent a challenge. In that, attention to metal structures affected by electrochemical corrosive processes, as well as by the interference of microorganisms (biocorrosion) which affect the kinetics of the environment / metal interface. Regarding to economical and environmental impacts reduction let to the use of natural products as an alternative to toxic synthetic inhibitors. This study aims the employment of green chemistry by evaluating the stem bark extracts (EHC, hydroalcoholic extract) and leaves (ECF, chloroform extract) of plant species Croton cajucara Benth as a corrosion inhibitor. In addition the effectiveness of corrosion inhibition of bioactive trans-clerodane dehydrocrotonin (DCTN) isolated from the stem bark of this Croton was also evaluated. For this purpose, carbon steel AISI 1020 was immersed in saline media (3,5 % NaCl) in the presence and absence of a microorganism recovered from a pipeline oil sample. Corrosion inhibition efficiency and its mechanisms were investigated by linear sweep voltammetry and electrochemical impedance. Culture-dependent and molecular biology techniques were used to characterize and identify bacterial species present in oil samples. The tested natural products EHC, ECF and DCTN (DMSO as solvent) in abiotic environment presented respectively, corrosion inhibition efficiencies of 57.6% (500 ppm), 86.1% (500 ppm) and 54.5% (62.5 ppm). Adsorption phenomena showed that EHC best fit Frumkin isotherm and ECF to Temkin isotherm. EHC extract (250 ppm) dissolved in a polar microemulsion system (MES-EHC) showed significant maximum inhibition efficiency (93.8%) fitting Langmuir isotherm. In the presence of the isolated Pseudomonas sp, EHC and ECF were able to form eco-compatible organic films with anti-corrosive properties