256 resultados para microdureza


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O tratamento duplex de nitretação a plasma e posterior deposição de TiN pode proporcionar um aumento na vida útil de ferramentas revestidas, já que a camada nitretada garante uma melhor adesão e maior capacidade de sustentação de carga. Essa melhoria ocorre desde que não haja a formação de uma camada contínua de nitretos de ferro, visto que esta é extremamente frágil, podendo causar o lascamento do filme protetor. A possibilidade de integração da nitretação a baixas pressões e posterior deposição de TiN em um processo contínuo se mostra interessante, pois possibilita a nitretação sem formação de camada de nitretos de ferro, eliminando assim uma etapa de polimento, diminuindo o grau de impurezas do revestimento e o tempo de processamento como um todo. O objetivo desse trabalho é o estudo dos parâmetros de processo mais adequados para a nitretação a baixas pressões de um aço de trabalho a quente H13, de modo a preparar o substrato de forma efetiva para uma posterior deposição de TiN. Diferentes temperaturas (faixa de 400-530ºC), pressões e composições gasosas (misturas de N2, N2 + Ar e N2+H2) foram avaliadas por microscopia ótica, testes de microdureza e difração de raios X. Buscou-se a melhor condição de nitretação, caracterizada pela camada de difusão mais profunda, maior dureza superficial e não aparecimento de uma camada de nitretos de ferro Os resultados indicam que adições de argônio e hidrogênio não resultam na melhor condição de nitretação do aço H13, e que outros parâmetros que não haviam sido considerados como importantes, como rotação das amostras e proteção dos termopares com miçangas, têm grande efeito indireto no tamanho da camada nitretada. O melhor resultado obtido foi com os parâmetros de: temperatura 450ºC, pressão total de N2 de 2x10-3 mbar, termopares protegidos com miçangas, árvore de sustentação das amostras girando a duas e meia revoluções por minuto e filamentos de tungstênio novos.

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O objetivo do estudo foi avaliar as características da dentina cariada remanescente de molares decíduos quanto à coloração, consistência e microdureza, após um período médio de 3 anos e 8 meses da realização do capeamento pulpar indireto. O estudo clínico constou de 27 dentes que apresentavam lesões cariosas ativas com expressão radiográfica em metade interna de dentina. Aleatoriamente, foi realizado o capeamento pulpar indireto e utilizado como material capeador o hidróxido de cálcio (HC) e o cimento de ionômero de vidro resinoso modificado (CIVRM). As crianças foram acompanhadas através de exames clínicos e radiográficos, e ao longo de um período médio de 3 anos e 8 meses, observou-se um índice de sucesso de 89% para o grupo do HC e de 93% para o CIVRM, não havendo diferença estatisticamente significante entre os dois grupos (p=0,62). Os dentes considerados como sucesso no estudo clínico foram agrupados em um único grupo (grupo teste), que constou de 13 dentes que sofreram esfoliação natural ou exodontia por motivos ortodônticos. Além disso, foram selecionados 15 molares decíduos hígidos (grupo controle positivo) e 15, portadores de lesões cariosas ativas em metade interna de dentina (grupo controle negativo). As amostras do grupo teste tiveram suas respectivas restaurações removidas, a profundidade medida e a dentina remanescente avaliada por um operador calibrado, seguindo critérios descritivos, quanto à consistência e a coloração. Nos dentes do grupo controle positivo, foram realizados preparos cavitários oclusais em até 4 mm de profundidade, enquanto que, no grupo controle negativo, o mesmo operador do estudo clínico realizou a remoção parcial de tecido cariado in vitro. A partir daí, todos os dentes foram preparados para análise de microdureza, que foi realizada por um examinador calibrado, que empregou o princípio de cegamento. Na análise da consistência, todos os dentes do grupo teste (n=13) apresentaram-se endurecidos, enquanto que 9, apresentaram coloração amarela-clara (8 do CIVRM e 1 do HC) e 4, castanho-escura (1 do CIVRM e 3 do HC). Para o teste de microdureza no grupo teste, obteve-se uma média KHN de 40,81 (±16,28) MPa, enquanto que nos grupos controles positivo e negativo, foram alcançados valores médios de 62,73 (±11,24) MPa e 19,15 (±6,99) MPa, respectivamente. A análise estatística mediante o teste ANOVA indicou que houve diferença significativa entre os 3 grupos. Foi constatada a remineralização da dentina de dentes decíduos em que foi realizada a técnica do capeamento pulpar indireto após um período médio de 3 anos e 8 meses, através de critérios clínico (consistência) e laboratorial (análise da microdureza).

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Na tentativa de produzir componentes cada vez mais leves e seguros a industria automotiva vem continuamente atualizando seus produtos no que diz respeito à associação de materiais, uso de uniões por solda, utilização de ligas leves em substituição de ligas de aço e etc. Três são os motivos básicos para estas mudanças: aumento da segurança dos passageiros, diminuição do consumo de combustível e redução os custos de produção. As ligas de alumínio, em sua maioria desenvolvidas para uso em tecnologia aeronáutica, vêm ganhando espaço também na produção de automóveis de passeio. Um dos maiores problemas apresentados pelas ligas de alumínio é a baixa soldabilidade dificultando a produção de componentes como os conhecidos Tailor Welded Blanks (TWB). TWB consiste em unir através de solda materiais de espessura e ou propriedades mecânicas diferentes formando uma geratriz para posterior estampagem de um componente Este trabalho inova confeccionando juntas a partir de chapas de espessuras diferentes (TWB) através de soldagem por fricção e mistura mecânica (SFMM) a partir de ligas de alumínio com velocidades de soldagem convencionais (1m/min) e em altas velocidades atingindo 5 e 10m/min dependendo da liga. Duas ligas de alumínio foram utilizadas, AA5754 (não tratável termicamente) e AA6181 (tratável termicamente). Foram realizados ensaios metalográficos, perfis de microdureza, ensaios de tração. Foram realizados também ensaios para levantamento de curvas limite de conformação através de ensaios de tração em corpos de prova etalhados e ensaios de estampabilidade. Os resultados mostram que o processo SFMM é adequado para soldas de espessuras diferentes em altas velocidades. Os ensaios de microdureza não apresentam as típicas variações observadas em processos de soldagem convencional, os testes mecânicos apresentam bons resultados, especialmente paras as juntas da liga AA6181 que em ambas as condições de soldagem apresentaram valores de tensão próximos aos valores do material de base. Os testes de estampagem mostram que as juntas da liga AA5754 apresentam desempenho superior ao material de base quando conformadas, desta forma provando que essa técnica pode ser utilizada para fabricação de geratrizes para estampagem de componentes.

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Esta dissertação tem como objetivos o estudo da produção de uma liga metálica nanoestruturada através do processo de moagem de alta energia, determinar a evolução microestrutural desta liga metálica durante o seu processamento e sua utilização na forma de revestimento protetor, depositado por aspersão térmica HVOF. O material escolhido foi a superliga NiCrAlY devido a sua grande importância tecnológica e pela pequena quantidade de trabalhos publicados até o momento sobre a produção e o emprego desta liga na forma nanoestruturada. A superliga NiCrAlY foi processada através de um moinho de alta energia do tipo Szegvari, empregando-se esferas de aço AISI 52100 como meio de moagem, em 3 diferentes condições de agitação e 3 relações entre meio de moagem/material. O material processado foi caracterizado através de diferentes métodos de análise, segundo critérios como: i) morfologia, caracterizada através de microscopia eletrônica de varredura e granulometria por difração de laser, ii) tamanho de cristalito, através da análise do alargamento dos picos de difração de raios X pelo método single-line, iii) nível de contaminação por Fe, determinado através da análise por fluorescência de raios X. Revestimentos protetores foram depositados através do processo de aspersão térmica HVOF sobre substratos de aço inox AISI 304 para o estudo dos parâmetros de deposição e controle microestrutural dos revestimentos, com o objetivo de manter o tamanho de cristalito nanométrico das partículas após a deposição Os resultados mostram que o processo de moagem de alta energia provoca uma profunda alteração na morfologia das partículas, originando partículas achatadas e pequenos fragmentos, além de uma rápida redução do tamanho de cristalito, atingindo valores menores do que 20 nm nas primeiras horas de processamento. A microestrutura dos revestimentos depositados apresenta-se com um caráter lamelar acentuado, devido ao formato pré-aspersão das partículas, e uma microestrutura densa com uma quantidade relativamente grande de óxidos interlamelares. Também foi constatado que o processo de deposição dos revestimentos por aspersão térmica HVOF leva a um crescimento no tamanho dos cristalitos das partículas, mas é capaz de manter o tamanho dos cristalitos inferior a 100 nm após a deposição, levando a um revestimento com microdureza Vickers 35% superior com relação ao revestimento depositado com o material convencional.

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O presente trabalho apresenta o desenvolvimento de um equipamento utilizado para acompanhamento e monitoramento do processo de nitretação a plasma enquanto ele ocorre, ou seja, de forma in-situ. Os resultados obtidos com a utilização deste equipamento são demonstrados e confirmam a potencialidade da técnica na caracterização de mecanismos de nitretação a plasma. Ensaios de adaptação à técnica foram realizados, visando adquirir experiência no reconhecimento e detecção de fases formadas durante o processo e de possibilidades de caracterização proporcionadas pela técnica. Desta forma a influência de três composições gasosas na formação de camadas nitretadas em aço médio carbono AISI 1045 foi avaliada de forma in-situ por difração de raios-X e post-mortem por metalografia, GDOS e microdureza Vickers. A composição gasosa de 76% N2 – 24% H2 mostrou alto poder de nitretação, e formou camadas de compostos espessas e zonas de difusão profundas, com aumentos consideráveis de dureza. A composição gasosa de 5% N2 – 95% H2, formou camadas de compostos pequenas e zonas de difusão profundas, além de aumentos de dureza superficial. Em uma segunda avaliação, amostras de aço AISI 1045, foram nitretadas em duas composições gasosas: 5% N2 – 95% H2 e 25% N2 – 75% H2, nas temperaturas de 450ºC, 480ºC, 520ºC, 540ºC e 560ºC. Com o acompanhamento in-situ por difração de raios-X de trechos específicos de 2Θ correspondentes às linhas de difração das fases γ’ e ε, foi possível obter o tempo de incubação da fase γ’ para cada combinação composição gasosa - temperatura, que foram comparados com dados já existentes para nitretação a gás. Também foi possível o acompanhamento do crescimento, desenvolvimento e de mudanças na largura das linhas destas fases O tempo de incubação da fase γ’ permitiu a comparação entre os resultados das nitretações a plasma e os resultados previstos por um diagrama de Lehrer, e uma boa correlação entre as fases previstas pelo diagrama e as encontradas na prática foi encontrada. As amostras foram avaliadas ainda por difração de raios-X em ângulos rasantes, que permitiu a caracterização das camadas mais superficiais das amostras e, com base nestes resultados e nos resultados das análises in-situ, obteve-se um mapa prático de previsão de fases para a nitretação a plasma.

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Ceramics materials have good properties including chemical stability, high hardness and wear resistance. Moreover, due to its fragility, can suffer failure under relatively low levels of tension. Actually zirconia is the material of choice in metal free dental prostheses used in dentistry due its inertia in physiological environment, good bending strength, hardness and fracture toughness. The alumina and mixed tungsten and titanium carbides additions, acting as reinforcement elements in the zirconia matrix, have as their main objective the improvement of mechanical properties of this material. In this work, samples of zirconia, zirconia with 30% wt of alumina and zirconia with 30% wt mixed carbides were analyzed. The samples were sintered by uniaxial hot pressing on 30 MPa pressure, for 1 hour in an argon atmosphere. They were physically characterized by porosity and density measurements, and mechanically by 3-points bending strength and Vickers microhardness. The X-ray diffraction was used for the phase identifications and microstructure was examined by scanning electron microscopy (SEM). The addition of mixed carbides as reinforcement elements in zirconia matrix provides improvements in all properties analyzed in this work. The alumina addition has dropped the zirconia strength, although it caused improvement in other properties

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In this work, was studied the formation of a composite of the refractory metal niobium with copper, through the process of high-energy milling and liquid phase sintering. The HEM can be used to synthesize composite powders with high homogeneity and fine size particle distribution. It may also produce the solid solubility in immiscible systems such as Nb-Cu, or extend the solubility of systems with limited solubility. Therefore, in the immiscible system Cu-Nb, the high-energy milling was successfully used to obtain the composite powder particles. Initially, the formation of composite particles during the HEM and the effect of preparation technique on the microstructure of the material was evaluated. Four loads of Nb and Cu powders containing 20%wt Cu were synthesized by MAE in a planetary type ball mill under different periods of grinding. The influence of grinding time on the metal particles is evaluated during the process by the withdrawal of samples at intermediate times of milling. After compaction under different forces, the samples were sintered in a vacuum furnace. The liquid phase sintering of these samples prepared by HEM produced a homogeneous and fine grained. The composite particles forming the sintered samples are the addition of a hard phase (Nb) with a high melting point, and a ductile phase (Cu) with low melting point and high thermal and electrical conductivities. Based on these properties, the Nb-Cu system is a potential material for many applications, such as electrical contacts, welding electrodes, coils for generating high magnetic fields, heat sinks and microwave absorbers, which are coupled to electronic devices. The characterization techniques used in this study, were laser granulometry, used to evaluate the homogeneity and particle size, and the X-ray diffraction, in the phase identification and to analyze the crystalline structure of the powders during milling. The morphology and dispersion of the phases in the composite powder particles, as well the microstructures of the sintered samples, were observed by scanning electron microscopy (SEM). Subsequently, the sintered samples are evaluated for density and densification. And finally, they were characterized by techniques of measuring the electrical conductivity and microhardness, whose properties are analyzed as a function of the parameters for obtaining the composite

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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 this paper we developed a prototype for dynamic and quantitative analysis of the hardness of metal surfaces by penetration tests. It consists of a micro-indenter which is driven by a gear system driven by three-rectified. The sample to be tested is placed on a table that contains a load cell that measures the deformation in the sample during the penetration of micro-indenter. With this prototype it is possible to measure the elastic deformation of the material obtained by calculating the depth of penetration in the sample from the difference of turns between the start of load application to the application of the load test and return the indenter until the complete termination of load application. To determine the hardness was used to measure the depth of plastic deformation. We used 7 types of steel trade to test the apparatus. There was a dispersion of less than 10% for five measurements made on each sample and a good agreement with the values of firmness provided by the manufacturers.

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Microalloyed steels constitute a specific class of steel with low amount of carbon and microalloying elements such as Vanadium (V), Niobium (Nb) and Titanium (Ti). The development and application of microalloyed steels and steels in general are limited to the handling of powders with particles of submicron or nanometer dimensions. Therefore, this work presents an alternative in order to construction of microalloyed steels utilizing the deposition by magnetron sputtering technique as a microalloying element addiction in which Ti nanoparticles are dispersed in an iron matrix. The advantage of that technique in relation to the conventional metallurgical processes is the possibility of uniformly disperse the microalloying elements in the iron matrix. It was carried out deposition of Ti onto Fe powder in high CH4, H2, Ar plasma atmosphere, with two deposition times. After the deposition, the iron powder with nanoparticles of Ti dispersed distributed, were compacted and sintered at 1120 ° C in resistive furnace. Characterization techniques utilized in the samples of powder before and after deposition of Ti were Granulometry, Scanning Electron Microscopy (SEM), energy-dispersive X-ray spectroscopy (EDX) and X-ray diffraction (DRX). In the case of sintered samples, it was carried out characterization by SEM and Vickers Microhardness assays. The results show which the deposition technique by magnetron sputtering is practicable in the dispersion of particles in iron matrix. The EDX microanalysis detected higher percentages of Ti when the deposition were carried out with the inert gas and when the deposition process was carried out with reactive gas. The presence of titanium in iron matrix was also evidenced by the results of X-ray diffraction peaks that showed shifts in the network matrix. Given these results it can be said that the technique of magnetron sputtering deposition is feasible in the dispersion of nanoparticles of iron matrix in Ti.

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The cobalt-chromium alloy is extensively used in the Odontology for the confection of metallic scaffolding in partial removable denture. During the last few years, it has been reported an increasing number of premature imperfections, with a few months of prosthesis use. The manufacture of these components is made in prosthetic laboratories and normally involves recasting, using parts of casting alloy and parts of virgin alloy. Therefore, the objective of the present study was to analyze the mechanical properties of a commercial cobalt-chromium alloy of odontological use after successive recasting, searching information to guide the dental prosthesis laboratories in the correct manipulation of the cobalt-chromium alloy in the process of casting and the possible limits of recasting in the mechanical properties of this material. Seven sample groups were confectioned, each one containing five test bodies, divided in the following way: G1: casting only with virgin alloy; G2: casting with 50% of the alloy of the G1 + 50% of virgin alloy; G3: casting with 50% of the alloy of the G2 + 50% of virgin alloy; G4: casting with 50% of the alloy of the G3 + 50% of virgin alloy; G5: 50% of alloy of the G4 + 50% of virgin alloy; G6: 50% of alloy of the G5 + 50% of virgin alloy and finally the G7, only with recasting alloy. The modifications in the mechanical behavior of the alloy were evaluated. Moreover, it was carried the micro structural characterization of the material by optic and electronic scanning microscopy, and X ray diffraction.and fluorescence looking into the correlatation of the mechanical alterations with structural modifications of the material caused by successive recasting process. Generally the results showed alterations in the fracture energy of the alloy after successive recasting, resulting mainly of the increasing presence of pores and large voids, characteristic of the casting material. Thus, the interpretation of the results showed that the material did not reveal significant differences with respect to the tensile strength or elastic limit, as a function of successive recasting. The elastic modulus increased from the third recasting cycle on, indicating that the material can be recast only twice. The fracture energy of the material decreased, as the number of recasting cycles increased. With respect to the microhardness, the statistical analyses showedno significant differences. Electronic scanning microscopy revealed the presence of imperfections and defects, resulting of the recasting process. X ray diffraction and fluorescence did not show alterations in the composition of the alloy or the formation of crystalline phases between the analyzed groups. The optical micrographs showed an increasing number of voids and porosity as the material was recast. Therefore, the general conclusion of this study is that the successive recasting of of Co-Cr alloys affects the mechanical properties of the material, consequently leading to the failure of the prosthetic work. Based on the results, the best recommendadition is that the use of the material should be limited to two recasting cycles

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Nickel alloys are frequently used in applications that require resistance at high temperatures associated with resistance to corrosion. Alloys of Ni-Si-C can be obtained by means of powder metallurgy in which powder mixtures are made of metallic nickel powders with additions of various alloying carriers for such were used in this study SiC, Si3N4 or Si metal with graphite. Carbonyl Ni powder with mean particle size of 11 mM were mixed with 3 wt% of SiC powders with an average particle size of 15, 30 and 50 μm and further samples were obtained containing 4 to 5% by mass of SiC with average particle size of 15 μm. Samples were also obtained by varying the carrier alloy, these being Si3N4 powder with graphite, with average particle size of 1.5 and 5 μm, respectively. As a metallic Si graphite with average particle size of 12.5 and 5 μm, respectively. The reference material used was nickel carbonyl sintered without adding carriers. Microstructural characterization of the alloys was made by optical microscopy and scanning electron microscopy with semi-quantitative chemical analysis. We determined the densities of the samples and measurement of microhardness. We studied the dissociation of carriers alloy after sintering at 1200 ° C for 60 minutes. Was evaluated also in the same sintering conditions, the influence of the variation of average particle size of the SiC carrier to the proportion of 3% by mass. Finally, we studied the influence of variation of the temperatures of sintering at 950, 1080 and 1200 ° C without landing and also with heights of 30, 60, 120 and 240 minutes for sintering where the temperature was 950 °C. Dilatometry curves showed that the SiC sintered Ni favors more effectively than other carriers alloy analyzed. SiC with average particle size of 15 μm active sintering the alloy more effectively than other SiC used. However, with the chemical and morphological analyzes for all leagues, it was observed that there was dissociation of SiC and Si3N4, as well as diffusion of Si in Ni matrix and carbon cluster and dispersed in the matrix, which also occurred for the alloys with Si carriers and metallic graphite. So the league that was presented better results containing Si Ni with graphite metallic alloy as carriers, since this had dispersed graphite best in the league, reaching the microstructural model proposed, which is necessary for material characteristic of solid lubricant, so how we got the best results when the density and hardness of the alloy

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Metal substrates were coated by thermal spraying plasma torch, they were positioned at a distance of 4 and 5 cm from the nozzle exit of the plasma jet. The starting materials were used for deposition of tantalum oxide powder and aluminium. These two materials were mixed and ground into high-energy mill, then immersed in the torch for the production of alumina coating infused with particles of tantalum with nano and micrometric size. The spraying equipment used is a plasma torch arc not transferred, which operating in the range of 250 A and 80 V, was able to produce enough heat to ignite aluminothermic between Ta2O5 and aluminum. Upon reaching the plasma jet, the mixing powders react with the heat of the blaze, which provides sufficient energy for melting aluminum particles. This energy is transferred through mechanisms of self-propagating to the oxide, beginning a reduction reaction, which then hits on the surface of the substrate and forms a coating on which a composite is formed by a junction metal - ceramic (Ta +Al2O3). The phases and quantification of each were obtained respectively by X-ray diffraction and the Rietveld method. Morphology by scanning electron microscopy and chemical analysis by energy dispersive spectroscopy EDS. It was also performed measurements of the substrate roughness, Vickers microhardness measurements in sprays and determination of the electron temperature of the plasma jet by optical emission spectroscopy EEO. The results confirmed the expectation generated around the end product of spraying the mixture Ta2O5 + Al, both in the formation of nano-sized particles and in their final form. The electron excitation temperature was consistent with the purpose of work, in addition, the thermodynamic temperature was efficient for the reduction process of Ta2O5. The electron excitation temperature showed values of 3000, 4500 and 8000 K for flows10, 20 and 30 l / min respectively, these values were taken at the nozzle exit of the plasma jet. The thermodynamic temperature around 1200 ° C, was effective in the reduction process of Ta2O5

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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 metalceramic crowns are usually used in dentistry because they provide a resistant structure due to its metallic base and its aesthetics from the porcelain that recovers this structure. To manufacture these crowns, a series of stages should be accomplished in the prosthetic laboratories, and many variables can influence its success. Changes in these variables cause alterations in the metallic alloy and in the porcelain, so, as consequence, in the adhesion between them. The composition of the metal alloy can be modified by recasting alloys, a common practice in some prosthetic laboratories. The aim of this paper is to make a systematic study investigating metalceramic crowns as well as analyzing the effect of recasting Ni-Cr alloys. Another variable which can influence the mechanism of metalceramic union is the temperature used in firing porcelain procedure. Each porcelain has to be fired in a fixed temperature which is determined by the manufacturer and its change can cause serious damages. This research simulate situations that may occur on laboratory procedures and observe their consequences in the quality of the metalceramic union. A scanning eletron microscopy and an optic microscopy were accomplish to analyse the metal-ceramic interface. No differences have been found when remelting alloys were used. The microhardness were similar in Ni-Cr alloys casted once, twice and three times. A wettability test was accomplished using a software developed at the Laboratório de Processamento de Materiais por Plasma, on the Universidade Federal do Rio Grande do Norte. No differences were found in the contact angle between the solid surface (metallic substratum) and the tangencial plane to the liquid surface (opaque). To analyse if the temperature of porcelain firing procedure could influence the contact area between metal and porcelain, a variation in its final temperature was achieve from 980° to 955°C. Once more, no differences have been found