113 resultados para Moinho
Resumo:
Este trabalho de conclusão tem como tema a Qualidade Seis Sigma e a produção de tintas, com foco no parâmetro viscosidade. O objetivo principal é o estudo da variabilidade da viscosidade das tintas, com vistas à diminuição do número de desvios de viscosidade de lotes de produção e, conseqüentemente, do retrabalho e lead-time fabril. Inicialmente, foi realizada uma revisão bibliográfica sobre a metodologia Seis Sigma, suas principais ferramentas, e sobre os processos de produção de tintas, suas fontes de variabilidade e possibilidadesde melhoria.Na seqüência, foi conduzido o estudo de caso, realizado em uma tradicional fábrica de tintas da grande Porto Alegre. O estudo seguiu as etapas da metodologiaSeis Sigma:definição,mensuração,análise,aprimoramentoe controle. Dos lotes de tinta analisados, 78,5% necessitaram de algum tipo de ajuste de viscosidade.A viscosidadedas tintas, após a etapade completagem,foi, em média, 5,3 vezes maior que a semi-amplitude da tolerância. O tempo médio de ajuste de viscosidade foi de 20 minutos, o dobro do tempo gasto caso fosse feita somente a medição da viscosidade. Analisando-se a viscosidade em segundos, a diferença entre a medição já com o solvente previsto, e a medição logo após a completagem, foi, em média, de 28 segundos. A etapa de acertos de cor e brilho proporciona um aumento médio na viscosidade de cerca de 6 segundos Observou-se que os processos de fabricação não eram estáveis e nem capazes de atender as especificações, sem a etapa de ajustes, sendo o pior processo o em moinho pequeno (l,5P), e o melhor, em processo mistura. O sistema de medição contribuía para a variabilidade da viscosidade e foi melhorado. Outros fatores influentes na variabilidade da viscosidade foram: o fluxo de moagem, a sistemática de lavagem dos moinhos e a instabilidade (aumento) da viscosidade com o tempo. Como etapa final, foram sugeridas melhorias para o processo, na forma de um plano de ação, contemplando todos os fatores de variação identificados.
Resumo:
O objetivo principal deste trabalho foi a análise da variação de alguns parâmetros físico-químicos da qualidade das águas de pequenos rios urbanos com baixas a médias densidades de ocupação populacional nas áreas de drenagem de suas bacias hidrográficas. Para isso, foram selecionadas 4 bacias hidrográficas urbanas situadas na Região Metropolitana de Porto Alegre/RS: Arroios Mãe d‘Água e Moinho apresentando média densidade populacional bruta (cerca de 70 hab/ha), Arroio Capivara apresentando baixa densidade populacional (8 hab/ha próximo às nascentes da bacia e 33 hab/ha considerando a área até próximo à sua foz), e o Arroio Agronomia que apresenta um tributário relativamente bem preservado, com ocupação urbana residual (<2 hab/ha), considerado como referencia regional para a qualidade físico-química das águas. Os resultados mostraram que a população residente nestas áreas apresenta deficiências de atendimento do ponto de vista do saneamento básico (coleta e tratamento de esgotos sanitários, coleta de lixo e abastecimento de água) impondo aos moradores o uso de tecnologias de disposição local dos seus resíduos. Como resultado, os dados mostraram uma relação direta entre a densidade populacional e a presença de esgotos não tratados nos corpos d’água, e como conseqüência, observaram-se alterações importantes em quase todas as variáveis físico-químicas escolhidas para o monitoramento da qualidade das águas, quando comparadas com a condição referencial. Entre os modelos de regressão testados (linear, potência, logarítmico, exponencial e polinomial de segundo e terceiro graus) o modelo logarítmico apresentou melhor ajuste sobre os demais, indicando a possibilidade do seu uso para 21 das 26 variáveis.A forma logarítmica indica que, a partir de uma condição natural não urbanizada, mesmo pequenas densidades populacionais são capazes de alterar significativamente a qualidade das águas.
Resumo:
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.
Resumo:
A urbanização descontrolada das cidades brasileiras tem provocado o agravamento das enchentes naturais e a ampliação de sua freqüência, além de criar novos pontos de alagamento localizados. Isto se deve à crescente impermeabilização do solo com aumento do volume pluvial escoado e redução de amortecimento. A concepção de um projeto de macrodrenagem em uma bacia urbana que considere o controle das inundações, como por exemplo, a implementação de reservatórios de amortecimento em áreas sujeitas a alagamentos, constitui-se em uma tarefa complexa e difícil devido ao grande número de alternativas possíveis, considerando todas as variáveis envolvidas, como capacidades hidráulicas existentes e necessárias das redes de drenagem, disponibilidade de áreas para construção de reservatórios, custos de desapropriação destas áreas, existência de sistemas mistos de coleta, uso de reservatórios abertos ou subterrâneos, dentre outras. Desta forma o projetista coloca-se diante de um dilema: qual o conjunto destas alternativas podem ser o mais eficiente? Este estudo promoveu a análise da aplicabilidade e eficiência de um modelo de otimização associado a modelos hidrológico-hidráulicos como instrumentos de suporte à decisão em problemas de drenagem urbana. A ferramenta desenvolvida compôs-se pelo modelo IPHS1 para a simulação hidrológica e hidráulica, pelo algoritmo de evolução SCE-UA para o processo de otimização através da minimização do custo de implantação das soluções e do módulo EXTRAN do modelo SWMM para a verificação hidráulica dos resultados obtidos e análises de riscos superiores. Os resultados mostraram-se bons e o sistema implementado adaptou-se bem às características das duas bacias analisadas: bacia do arroio do Moinho e bacia do arroio da Areia. O sistema forneceu os cenários de custos otimizados de implantação da solução com detenções distribuídas nas bacias e ampliações de redes, em um curto período de tempo e utilizando dados que seriam necessários para qualquer projeto de macrodrenagem deste tipo. Com os resultados compilados, foram obtidas funções de auxílio à tomada de decisão em planos e projetos de drenagem urbana através de curvas ajustadas aos pontos gerados nas bacias estudadas. Foi realizada a análise de sensibilidade e a avaliação das incertezas envolvidas com o modelo hidrológico utilizado com relação ao seu parâmetro principal, o Curve Number. Esta análise mostrou grandes variações nas vazões de saída das bacias e nos custos das obras com pequenas alterações nos valores de CN. Apresenta-se ainda uma análise econômica da aplicação dos valores obtidos de forma extrapolada para todo o município de Porto Alegre.
Resumo:
Ta-Cu bulk composites combine high mechanical resistance of the Ta with high electrical and thermal conductivity of the Cu. These are important characteristics to electrical contacts, microwave absorber and heat skinks. However, the low wettability of Ta under Cu liquid and insolubility mutual these elements come hard sintering this composite. High-energy milling (HEM) produces composite powders with high homogeneity and refines the grain size. This work focus to study Ta-20wt%Cu composite powders prepared by mechanical mixture and HEM with two different conditions of milling in a planetary ball mill and then their sintering using hydrogen plasma furnace and a resistive vacuum furnace. After milling, the powders were pressed in a steel dye at a pressure of 200 MPa. The cylindrical samples pressed were sintered by resistive vacuum furnace at 10-4torr with a sintering temperature at 1100ºC / 60 minutes and with heat rate at 10ºC/min and were sintered by plasma furnace with sintering temperatures at 550, 660 and 800ºC without isotherm under hydrogen atmosphere with heat rate at 80ºC/min. The characterizations of the powders produced were analyzed by scanning electron microscopy (SEM), x-ray diffraction (XRD) and laser granulometry. After the sintering the samples were analyzed by SEM, XRD and density and mass loss tests. The results had shown that to high intense milling condition produced composite particles with shorter milling time and amorphization of both phases after 50 hours of milling. The composite particles can produce denser structure than mixed powders, if heated above the Cu melting point. After the Cu to arrive in the melting point, liquid copper leaves the composite particles and fills the pores
Resumo:
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
Resumo:
Metal powder sintering appears to be promising option to achieve new physical and mechanical properties combining raw material with new processing improvements. It interest over many years and continue to gain wide industrial application. Stainless steel is a widely accepted material because high corrosion resistance. However stainless steels have poor sinterability and poor wear resistance due to their low hardness. Metal matrix composite (MMC) combining soft metallic matrix reinforced with carbides or oxides has attracted considerable attention for researchers to improve density and hardness in the bulk material. This thesis focuses on processing 316L stainless steel by addition of 3% wt niobium carbide to control grain growth and improve densification and hardness. The starting powder were water atomized stainless steel manufactured for Höganäs (D 50 = 95.0 μm) and NbC produced in the UFRN and supplied by Aesar Alpha Johnson Matthey Company with medium crystallite size 16.39 nm and 80.35 nm respectively. Samples with addition up to 3% of each NbC were mixed and mechanically milled by 3 routes. The route1 (R1) milled in planetary by 2 hours. The routes 2 (R2) and 3 (R3) milled in a conventional mill by 24 and 48 hours. Each milled samples and pure sample were cold compacted uniaxially in a cylindrical steel die (Ø 5 .0 mm) at 700 MPa, carried out in a vacuum furnace, heated at 1290°C, heating rate 20°C stand by 30 and 60 minutes. The samples containing NbC present higher densities and hardness than those without reinforcement. The results show that nanosized NbC particles precipitate on grain boundary. Thus, promote densification eliminating pores, control grain growth and increase the hardness values
Resumo:
This work a studied the high energy milling effect in microstructure and magnetic properties of the WC-10wt.%Co composite. The composite powders were prepared by mechanical mixed and milled at 2 hours, 100 hours, 200 hours and 300 hours in planetary milling. After this process the composite were compacted in stainless steel die with cylindrical county of 10 mm of diameter, at pressure 200 Mpa and sintered in a resistive furnace in argon atmosphere at 1400 oC for 5 min. The sintered composite were cutted, inlaid, sandpapered, and polished. The microestrutural parameters of the composite was analyzed by X-ray diffraction, scanning electronic microscopy, optical microscopy, hardness, magnetic propriety and Rietveld method analyze. The results shows, with milling time increase the particle size decrease, it possibility minor temperature of sintering. The increase of milling time caused allotropic transformation in cobalt phase and cold welding between particles. The cold welding caused the formation of the particle composite. The X-ray diffraction pattern of composite powders shows the WC peaks intensity decrease with the milling time increase. The X-ray diffraction pattern of the composite sintered samples shows the other phases. The magnetic measurements detected a significant increase in the coercitive field and a decrease in the saturation magnetization with milling time increase. The increase coercitive field it was also verified with decrease grain size with milling time increase. For the composite powders the increase coercitive field it was verified with particle size reduction and saturation magnetization variation is relate with the variation of free cobalt. The Rietveld method analyze shows at milling time increase the mean crystalline size of WC, and Co-cfc phases in composite sintered sample are higher than in composite powders. The mean crystallite size of Co-hc phase in composite powders is higher than in composite sintered sample. The mean lattice strains of WC, Co-hc and Co-cfc phases in composite powders are higher than in composite sintered samples. The cells parameters of the composite powder decrease at milling time increase this effect came from the particle size reduction at milling time increase. In sintered composite the cells parameters is constant with milling time increase
Resumo:
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
Resumo:
The effluents released by the textile industry have high concentrations of alkali, carbohydrates, proteins, in addition to colors containing heavy metals. Therefore, a filter was prepared aiming primarily to the removal of color. In order to prepare this filter, rice hulls and diatomite were used, which have in their structure, basically amorphous hydrated silica. The silica exists in three crystalline forms: quartz, tridymite and cristobalite. In accordance with the above considerations, this study was divided into two stages; the first corresponds to the preparation of the filter and the second to carry out the tests in the effluent/filter in order to verify the efficiency of the color removal. First, the raw material was subjected to a chemical analysis and XRD, and then the diatomite was mixed, via humid, with a planetarium windmill with 20 %, 40 %, 60 % and 80 % of rice husk ash. To the mixture, 5 % carboxymethylcellulose (CMC) was added as a binder at room temperature. The samples were uniaxially compacted into metallic matrix of 0.3 x 0.1 cm² of area at a pressure of 167 MPa by means of hydraulic press and then sintered at temperatures of 1,000 °C, 1,200 °C and 1,400 °C for 1 h and submitted to granulometry test using laser, linear retraction, water absorption, apparent porosity and resistance to bending, DTA, TMA and XRD. To examine the pore structure of the samples scanning electron microscope (SEM) was used. Also tests were carried out in a mercury porosimeter to verify the average size of the pores and real density of the samples. In the second stage, samples of the effluent were collected from a local industry, whose name will be preserved, located in Igapó, in the State of Rio Grande do Norte - RN. The effluent was first pretreated before filtration and then subjected to a treatment of flotation. The effluent was then characterized before and after filtration, with parameters of color, turbidity, suspended solids, pH, chemical and biochemical oxygen demand (COD and BOD). Thus, through the XRD analysis the formation of cristobalite α in all samples was observed. The best average size of pore was found to be 1.75 μm with 61.04 % apparent porosity, thus obtaining an average 97.9 % color removal and 99.8 % removal of suspended solid
Resumo:
This research studies the sintering of ferritic steel chips from the machining process. Were sintered metal powder obtained from machining process chips for face milling of a ferritic steel. The chip was produced by machining and characterized by SEM and EDS, and underwent a process of high energy mill powder characterized also by SEM and EDS. Were constructed three types of matrixes for uniaxial compression (relation l / d greater than 2.5). The differences in the design of the matrixes were essentially in the direction of load application, which for cylindrical case axial direction, while for the rectangular arrays, the longer side. Two samples were compressed with different geometries, a cylindrical and rectangular with the same compaction pressure of 700 MPa. The samples were sintered in a vacuum resistive furnace, heating rate 20 °C / min., isotherm 1300 °C for 60 minutes, and cooling rate of 25 °C / min to room temperature. The starting material of the rectangular sample was further annealed up to temperature of 800 ° C for 30 min. Sintered samples were characterized by scanning electron microscopy, optical microscopy and EDS. The sample compressed in the cylindrical matrix did not show a regular density reflecting in the sintered microstructure revealed by the irregular geometry of the pores, characterizing that the sintering was not complete, reaching only the second phase. As for the specimen compacted in the rectangular array, the analysis performed by scanning electron microscopy, optical microscopy and EDS indicate a good densification, and homogeneous microstructure in their full extent. Additionally, the EDS analyzes indicate no significant changes in chemical composition in the process steps. Therefore, it is concluded that recycling of chips, from the processed ferritic steel is feasible by the powder metallurgy. It makes possible rationalize raw material and energy by manufacture of known properties components from chips generated by the machining process, being benefits to the environment
Resumo:
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
Resumo:
In this study it was used two metallic oxides, Ta2O5 and TiO2, in order to obtain metallic powders of Ta and Ti through aluminothermic reduction ignited by plasma. Ta2O5 and TiO2 powders were mixed with Al in a planetary mill, using different milling times. A thermal analysis study (DTA and TG) was carried out, in order to know the temperature to react both the mixtures. Then, these mixtures were submitted to a hollow cathode discharge, where they were reacted using aluminothermic reduction ignited by plasma. The product obtained was characterized by XRD and SEM, where it was proven the possibility of producing these metallic particles, different from the conventional process, where metallic ingots are obtained. It was verified that the aluminothermic reduction ignited by plasma is able to produce metallic powders of Ta and Ti, and a higher efficiency was observed to the process with Ta2O5-Al mixtures. Among different microstructural aspects observed, it can be noted the presence of metallic nanoparticles trapped into an Al2O3 matrix, besides acicular structures (titanium) and dendritic structures (tantalum), which are a product characteristic from a fast cooling
Resumo:
Steel is an alloy EUROFER promising for use in nuclear reactors, or in applications where the material is subjected to temperatures up to 550 ° C due to their lower creep resistance under. One way to increase this property, so that the steel work at higher temperatures it is necessary to prevent sliding of its grain boundaries. Factors that influence this slip contours are the morphology of the grains, the angle and speed of the grain boundaries. This speed can be decreased in the presence of a dispersed phase in the material, provided it is fine and homogeneously distributed. In this context, this paper presents the development of a new material metal matrix composite (MMC) which has as starting materials as stainless steel EUROFER 97, and two different kinds of tantalum carbide - TaC, one with average crystallite sizes 13.78 nm synthesized in UFRN and another with 40.66 nm supplied by Aldrich. In order to improve the mechanical properties of metal matrix was added by powder metallurgy, nano-sized particles of the two types of TaC. This paper discusses the effect of dispersion of carbides in the microstructure of sintered parts. Pure steel powders with the addition of 3% TaC UFRN and 3% TaC commercial respectively, were ground in grinding times following: a) 5 hours in the planetary mill for all post b) 8 hours of grinding in the mill Planetary only for steel TaC powders of commercial and c) 24 hours in the conventional ball mill mixing the pure steel milled for 5 hours in the planetary mill with 3% TaC commercial. Each of the resulting particulate samples were cold compacted under a uniaxial pressure of 600MPa, on a cylindrical matrix of 5 mm diameter. Subsequently, the compressed were sintered in a vacuum furnace at temperatures of 1150 to 1250 ° C with an increment of 20 ° C and 10 ° C per minute and maintained at these isotherms for 30, 60 and 120 minutes and cooled to room temperature. The distribution, size and dispersion of steel and composite particles were determined by x-ray diffraction, scanning electron microscopy followed by chemical analysis (EDS). The structures of the sintered bodies were observed by optical microscopy and scanning electron accompanied by EDS beyond the x-ray diffraction. Initial studies sintering the obtained steel EUROFER 97 a positive reply in relation to improvement of the mechanical properties independent of the processing, because it is obtained with sintered microhardness values close to and even greater than 100% of the value obtained for the HV 333.2 pure steel as received in the form of a bar
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The power industry generates as waste ceramic bodies of electrical fuses that are discarded after use. The formulation of ceramic bodies for porcelain electrical insulators using waste from the bodies fuse allocation promotes environmentally appropriate, through the reuse of the material. This work evaluated the technical feasibility of using waste for use in electrical porcelains with formulations containing the residue, feldspar and kaolinite. The raw materials were processed through grinding and sieving to 200 mesh. The ceramic material obtained from the proposed formulations with 25%, 30%, 34% and 40% of the residue went through a vibratory mill for grinding and homogenization, and then were sieved at 325 mesh. The samples were shaped in a uniaxial press, with the application of 25 MPa and sintered at 1100° C, 1150°C, 1200°C, 1225°C and 1250°C, at levels of 20 and 45 minutes. Were also developed bodies of evidence with reference formulations obtained without residue, to establish a comparison on physical, mechanical and electrical. The tests were conducted and technology: linear shrinkage, porosity, water absorption, resistance to bending to three points, measuring insulation resistance electrical resistivity of the material, X-ray diffraction and X-ray fluorescence Waste characterizations pointed to the existence of two phases: mullite and quartz phases are of great importance in the microstructure of the ceramic and this fact reveals a possibility for reuse in electrical porcelains. The mullite is an important constituent because it is a phase that makes it possible to increase the mechanical strength in addition to the body allows the use at high temperatures. The use of ceramic bodies residue fuses, proved feasible for application in electrical porcelain and the most significant results were obtained by the formulations with 25% waste and sintering at 1200°C