969 resultados para Stainless steel AISI 304L


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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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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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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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No presente trabalho, foram realizados ensaios de tribocorrosão no aço inoxidável AISI 304L, no titânio comercialmente puro (CPTi) e na liga de titânio Ti6Al4V em solução aquosa de 0,90% m/v NaCl. Amostras de ligas de titânio com tratamento térmico superficial de refusão a laser também foram utilizadas. Um tribômetro do tipo pino-no-disco com contracorpo de alumina foi usado. Técnicas eletroquímicas in situ de monitoramento em circuito aberto, espectroscopia de impedância eletroquímica, curvas de polarização e amperimetria de resistência nula foram empregadas. Os resultados obtidos indicam que o desgaste tribocorrosivo das ligas de titânio é mais intenso do que o observado no aço inoxidável, apresentando perfis de superfície mais irregulares. A análise da impedância eletroquímica mostrou que todos os materiais utilizados apresentam uma rápida recuperação da camada passiva, exibindo módulos e fases um pouco menores do que os medidos antes do desgaste. Sob atrito, os diagramas de impedância apresentam uma forte redução do módulo. Sob desgaste, o expoente α do elemento de fase constante (CPE) atinge seu valor mais baixo, enquanto o parâmetro γ é máximo. As curvas de polarização exibem potenciais menores e densidades de corrente de corrosão maiores durante o desgaste. O tratamento de refusão a laser, embora mude a microestrutura e a dureza superficial das amostras, não indica uma mudança aparente nos parâmetros eletroquímicos sob tribocorrosão, bem como do coeficiente de atrito. Nos ensaios de amperimetria de resistência nula, foi possível estimar a corrente mensurada no ARN por meio do emprego de um circuito elétrico equivalente. A densidade espectral de potência dos sinais de potencial e de corrente exibe a frequência de rotação (1,25 Hz) e seus harmônicos. Para baixas frequências (abaixo de 10 mHz), o decaimento obedece à relação 1 ⁄ e 1⁄ para os sinais de potencial e corrente, respectivamente.

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Las características y capacidades de los aceros inoxidables sinterizados se han investigado en una doble vertiente. Por una parte con vista a sus capacidades de resistencia a la oxidación en caliente y por otra parte se ha investigado su capacidad para retener microorganismos que contribuyan a la descontaminación de un ambiente. Por ello, para cada una de estas funciones se han utilizado los aceros inoxidables sinterizados, que se han considerado más adecuados. Para estudiar sus capacidades de resistencia a la oxidación en caliente se ha utilizado un acero inoxidable austenítico AISI 304L, un acero inoxidable ferrítico AISI 430L y un acero inoxidable Fe-16Cr-3Al. Para estudiar sus capacidades para retener microorganismos se ha utilizado un acero inoxidable austenítico AISI 316L, un acero inoxidable ferrítico AISI 430L y un acero inoxidable dúplex 50%/50% de los anteriores. Para esta última finalidad los aceros se han compactado a tres diferentes presiones 300, 500 y 700 MPa, a las que corresponden diferentes porosidades. En relación con el comportamiento frente a la oxidación en caliente, se han cuantificado los incrementos positivos o negativos de volumen, masa y densidad en los diferentes tipos de sinterización y estados de tratamiento de oxidación. Como tónica general de comportamiento, puede decirse que los aceros sinterizados bajo vacío son más resistentes a la oxidación, que los sinterizados en atmósfera de N2-5H2 y que los aceros inoxidables austeníticos son algo más resistentes, que los Cr-Al y estos, a su vez, más que los aceros inoxidables ferríticos. Respecto a la retención de microorganismos, los tres aceros inoxidables sinterizados se han ensayado en diferentes medios de cultivo, utilizando cuatro especies de bacterias. Los mejores resultados se han obtenido con Staphylococcus aureus, muy favorable para su observación y recuento. Se han cuantificado, una vez sinterizados y colonizados por los microorganismos, para cada material y presión de compactación, las áreas de cada uno de los poros y el número de microorganismos situados en los poros y en la superficie sin poros. Se ha establecido en cada caso la densidad de microorganismos en las zonas de poros y en las zonas sin poros. Como tónica general puede decirse, que los aceros inoxidables austeníticos aparecen más favorables para estos estudios, que los aceros dúplex y estos más que los inoxidables ferríticos. Asimismo, se desprende que las áreas de los poros dependen de forma unívoca de la presión de compactación y que para áreas de poros decrecientes las densidades de microorganismos son crecientes. En consecuencia, podría deducirse, que a igualdad de área de poros en una superficie, aquella que tuviera los poros más pequeños, retendría mayor cantidad de bacterias. ABSTRACT The characteristics and capacities of sintered stainless steels have been researched from two perspectives: firstly, with a view to their resistance to hot oxidation, and secondly their capacity to retain microorganisms able to decontaminate the environment. For both these functions, sintered stainless steels were used, which are considered to be the most fit for purpose. To study their resistance to hot oxidation, we used austenitic stainless steel AISI 304L, ferritic stainless steel AISI 430L and stainless steel Fe-16Cr-3Al. To study their ability to retain microorganisms, we used austenitic stainless steel AISI 316L, ferritic stainless steel AISI 430L, and duplex stainless steel, being a 50/50 blend of the two former ones. For this last purpose, the steels were compacted at three different pressures (300, 500 and 700 MPa) corresponding to different porosities. With regard to the hot oxidation, we quantified the positive or negative increments in volume, mass and density in the different types of sintering and oxidation treatment states. As a general performance trend, we observed that vacuum sintered steels are more resistant to oxidation than those sintered in an atmosphere of N2-5H2, and that austenitic stainless steels are slightly more resistant than the Cr-Al steels which, in turn, are more resistant than the ferritic stainless steels. With regard to the retention of microorganisms, the three sintered stainless steels were tested in different culture media using four types of bacteria. The best results for observation and counting were obtained with Staphylococcus aureus bacteria. Once sintered and colonized by microorganisms, for each material and compacting pressure we quantified the areas of the pores and the number of microorganisms situated in the pores and on the pore-free surface. In each case, the density of microorganisms in the pores and in the pore-free areas was established. As a general rule, we can say that the austenitic stainless steels appear to be more favourable for this type of study than the duplex steels which, in turn, are more favourable than the ferritic stainless steels. It also emerged that the areas with the pores depend unequivocally on the compacting pressure, and that the smaller the area of the pore the higher the density of the microorganisms. Consequently, it can be deduced that comparing an equal area of pores on a surface, the one with the smaller pores would retain a larger number of bacteria.

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The deformation characteristics of 304L stainless steel in compression in the temperature range 20–700°C and strain rate range 0·001–100 s−1 have been studied with the aim of characterising the .flow instabilities occurring in the microstructure. At higher temperatures and strain rates the stainless steel exhibits flow localisation, whereas at temperatures below 500°C and strain rates lower than 0·1 s−1 the flow instabilities are due to dynamic strain aging. Strain induced martensite formation is responsible for the flow instabilities at room temperature and low strain rates (0·01 s−1). In view of the occurrence of these instabilities, cold working is preferable to warm working to achieve dimensional tolerance and reproducible properties in the product. Among the different criteria tested to explain the occurrence of instabilities, the continuum criterion, developed on the basis of the principles of maximum rate of entropy production and separability of the dissipation function, predicts accurately all the above instability features.

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Processing maps for hot working of stainless steel of type AISI 304L have been developed on the basis of the flow stress data generated by compression and torsion in the temperature range 600–1200 °C and strain rate range 0.1–100 s−1. The efficiency of power dissipation given by 2m/(m+1) where m is the strain rate sensitivity is plotted as a function of temperature and strain rate to obtain a processing map, which is interpreted on the basis of the Dynamic Materials Model. The maps obtained by compression as well as torsion exhibited a domain of dynamic recrystallization with its peak efficiency occurring at 1200 °C and 0.1 s−1. These are the optimum hot-working parameters which may be obtained by either of the test techniques. The peak efficiency for the dynamic recrystallization is apparently higher (64%) than that obtained in constant-true-strain-rate compression (41%) and the difference in explained on the basis of strain rate variations occurring across the section of solid torsion bar. A region of flow instability has occurred at lower temperatures (below 1000 °C) and higher strain rates (above 1 s−1) and is wider in torsion than in compression. To achieve complete microstructure control in a component, the state of stress will have to be considered.

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Processing and instability maps using a dynamic materials model have been developed for stainless steel type AISI 316L in the temperature range 600-1250-degrees-C and strain rate range 0.001-100 s-1 with a view to optimising its hot workability. Stainless steel type AISI 316L undergoes dynamic recrystallisation, with a peak efficiency of 35% at 1250-degrees-C and 0.05 s-1, which are the optimum parameters for hot working this material. The material undergoes dynamic recovery at 900-degrees-C and 0.001 s-1. The increase in the dynamic recrystallisation and dynamic recovery temperatures in comparison with stainless steel type AISI 304L is attributed to the presence of a backstress caused by the molybdenum additions. These results are in general agreement with those reported elsewhere on stainless steel type 316 deformed in hot extrusion and hot torsion. At temperatures < 850-degrees-C and strain rates > 10 s-1, the material exhibits flow localisation owing to adiabatic shear band formation, whereas at higher temperatures (> 850-degrees-C) and strain rates (> 10 s-1) mechanical twinning and wavy slip bands are observed. (C) 1993 The Institute of Materials.

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The influence of strain rate and state-of-stress on the formation of ferrite in stainless steel type AISI 304L, 304 and 304 as-cast, during hot working has been studied. Compression and torsion tests were conducted in the temperature range 1100 to 1250 degrees C and strain rate range 0.001 to 100 s(-1) on these materials, Ferrite formation occurs during deformation at temperatures above 1150 degrees C and strain rates above 10 s(-1), in stainless steel type AISI 304L and 304. The tendency for the formation of ferrite is more in as-cast 304 than in wrought 304, In as-cast 304 the ferrite forms at lower temperatures and strain rates, The tendency for the ferrite formation is more in torsion than in compression.

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The development of a microstructure in 304L stainless steel during industrial hot-forming operations, including press forging (mean strain rate of 0.15 s(-1)), rolling/extrusion (2-5 s(-1)), and hammer forging (100 s(-1)) at different temperatures in the range 600-1200 degrees C, was studied with a view to validating the predictions of the processing map. The results have shown that excellent correlation exists between the regimes exhibited by the map and the product microstructures. 304L stainless steel exhibits instability bands when hammer forged at temperatures below 1100 degrees C, rolled/extruded below 1000 degrees C, or press forged below 800 degrees C. All of these conditions must be avoided in mechanical processing of the material. On the other hand, ideally, the material may be rolled, extruded, or press forged at 1200 degrees C to obtain a defect-free microstructure.

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Processing maps for hot working of as-cast and wrought stainless steels of type AISI 304 have been developed in the temperature range 600 to 1250°C and strain rate range 0.001 to 100 s−1. The domain of dynamic recrystallization (DRX) in as-cast material occurs at higher temperatures (1250°C) and lower strain rates (0.001 s−1) than in the wrought steel (1100°C and 0.01 s−1). The effect is explained in terms of enhanced nucleation rate of DRX due to the carbide, ferrite particles, stable oxides/nitrides and second-phase intermetallics in the as-cast microstructure. The DRX domain is wider in the wrought material although the peak efficiency is less (32%) than in the as-cast case (40%). The flow instability regime is not significantly affected by the initial microstructure