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  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
1

Portaferramentas para torneamento com refrigeração interna baseada na mudança de fase do fluido /

Vicentin, Gilmar Cavalcante. January 2010 (has links)
Orientador: Luiz Eduardo de Ângelo Sanchez / Banca: Vicente Luiz Scalon / Banca: Alisson Rocha Machado / Resumo: A crescente produtividade de aumento na produtividade em operações de usinagem toma cada vez mais importante o desenvolvimento de novas ferramentas de corte e novos métodos de manufatura, os quais devem ter a capacidade de preencher a demanda atual. Deste modo, muitos esforços têm sido direcionados para permitir a utilização de velocidade de corte cada vez maiores. Um grande desafio é controlar a temperatura durante o processo de usinagem, uma vez que a temperatura aumenta com o aumento da velocidade de corte, reduzindo a dureza a quente da ferramenta e alimentando os mecanismos de desgaste. Para minimizar estes efeitos, vários métodos de refrigeração têm sido propostos, cada um com suas vantagens e desvantagens. Os métodos convencionais de refrigeração, que utilizam fluidos de corte, embora possuam eficiência reconhecida, adicionam custos ao processo, além de serem causadores de problemas relacionados com o meio ambiente e com a saúde dos operadores. Neste contexto a usinagem a seco, associada com o emprego de ferramenta com alta dureza a quente, tem sido um bom método para evitar os problemas mencionados. Outra opção é a usinagem criogênica, que utiliza ferramentas de metal duro em temperaturas abaixo de -150ºC, utilizando, para isso, nitrogênio líquido como fluido refrigerante. Entretanto, este método traz alguns problemas, como a necessidade de equipamentos especiais com tamanho significante ao lado da máquina-ferramenta. Neste estudo é proposto o desenvolvimento e a construção de um sistema de refrigeraçã de ferramenta para o processo de tornemaneto, com baixo custo e manutenção simples, composto por um porta-ferramenta, com um fluido refrigerante passando internamente ao seu corpo em um circuito fechado, onde o fluido evapora em uma câmara abaixo do inserto de usinagem, removendo assim calor da ferramenta. O fluido refrigerante passa então através... (Resumo completo, clicar acesso eletrônico abaixo) / Abstract: The growing need of increase in productivity in machining operations emphasizes the importance of the development of new cutting tools and new manufacturing methods, which have the capacity to fulfill the present demand. In this way, many efforts are directed to enable the utilization of higher cutting speeds. One great challenge is to control the temperature during the machining process, since the temperature rises with the increase of the cutting speed, reducing the hot hardness of the cutting tool and accelerating the tool wear mechanism. To minimize these effects, many cooling methods have been proposed, each one with advantages and disadvantages. The conventional cooling methods, which use cutting fluids, although have recognized efficiency, add costs to the process, besides to cause problems regarding to the environment and operators health. In this context, dry machining, associated with the employment of tools with high hot hardness, has been a good method to avoid these problems. Another option is the cryogenic machinig, which utilizes carbide tools in temperatures lower than - 150ºC, using, for this, liquid nitrogen as cooling fluid. However, this method brings some problems, like the need of special devices with significant size around the machine-tool. In this work, it is proposed the development and the construction of a cooling tool system for turning process, with low cost and simple maintenance, composed by a tool-holder, with a cooling fluid flowing within its body in a loop circuit, where the fluid evaporates just under the insert location, removing heat from it. The cooling fluid passes through a heat exchanger where it condensates and a new cyble is started. As result the development system provides a tool life equal or better than with the cutting fluid application, with clear economic and environmental advantages / Mestre
2

Portaferramentas para torneamento com refrigeração interna baseada na mudança de fase do fluido

Vicentin, Gilmar Cavalcante [UNESP] 17 June 2010 (has links) (PDF)
Made available in DSpace on 2014-06-11T19:28:20Z (GMT). No. of bitstreams: 0 Previous issue date: 2010-06-17Bitstream added on 2014-06-13T19:16:07Z : No. of bitstreams: 1 vicentin_gc_me_bauru.pdf: 1398083 bytes, checksum: b02b474f8b8ff324c644909a8dd89c24 (MD5) / Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES) / A crescente produtividade de aumento na produtividade em operações de usinagem toma cada vez mais importante o desenvolvimento de novas ferramentas de corte e novos métodos de manufatura, os quais devem ter a capacidade de preencher a demanda atual. Deste modo, muitos esforços têm sido direcionados para permitir a utilização de velocidade de corte cada vez maiores. Um grande desafio é controlar a temperatura durante o processo de usinagem, uma vez que a temperatura aumenta com o aumento da velocidade de corte, reduzindo a dureza a quente da ferramenta e alimentando os mecanismos de desgaste. Para minimizar estes efeitos, vários métodos de refrigeração têm sido propostos, cada um com suas vantagens e desvantagens. Os métodos convencionais de refrigeração, que utilizam fluidos de corte, embora possuam eficiência reconhecida, adicionam custos ao processo, além de serem causadores de problemas relacionados com o meio ambiente e com a saúde dos operadores. Neste contexto a usinagem a seco, associada com o emprego de ferramenta com alta dureza a quente, tem sido um bom método para evitar os problemas mencionados. Outra opção é a usinagem criogênica, que utiliza ferramentas de metal duro em temperaturas abaixo de -150ºC, utilizando, para isso, nitrogênio líquido como fluido refrigerante. Entretanto, este método traz alguns problemas, como a necessidade de equipamentos especiais com tamanho significante ao lado da máquina-ferramenta. Neste estudo é proposto o desenvolvimento e a construção de um sistema de refrigeraçã de ferramenta para o processo de tornemaneto, com baixo custo e manutenção simples, composto por um porta-ferramenta, com um fluido refrigerante passando internamente ao seu corpo em um circuito fechado, onde o fluido evapora em uma câmara abaixo do inserto de usinagem, removendo assim calor da ferramenta. O fluido refrigerante passa então através... / The growing need of increase in productivity in machining operations emphasizes the importance of the development of new cutting tools and new manufacturing methods, which have the capacity to fulfill the present demand. In this way, many efforts are directed to enable the utilization of higher cutting speeds. One great challenge is to control the temperature during the machining process, since the temperature rises with the increase of the cutting speed, reducing the hot hardness of the cutting tool and accelerating the tool wear mechanism. To minimize these effects, many cooling methods have been proposed, each one with advantages and disadvantages. The conventional cooling methods, which use cutting fluids, although have recognized efficiency, add costs to the process, besides to cause problems regarding to the environment and operators health. In this context, dry machining, associated with the employment of tools with high hot hardness, has been a good method to avoid these problems. Another option is the cryogenic machinig, which utilizes carbide tools in temperatures lower than - 150ºC, using, for this, liquid nitrogen as cooling fluid. However, this method brings some problems, like the need of special devices with significant size around the machine-tool. In this work, it is proposed the development and the construction of a cooling tool system for turning process, with low cost and simple maintenance, composed by a tool-holder, with a cooling fluid flowing within its body in a loop circuit, where the fluid evaporates just under the insert location, removing heat from it. The cooling fluid passes through a heat exchanger where it condensates and a new cyble is started. As result the development system provides a tool life equal or better than with the cutting fluid application, with clear economic and environmental advantages
3

Influencia do fluido de corte sob pressão no torneamento do aço ABNT 1045 / High pressure cutting fluid application in ABNT 1045 steel turning operation

Micaroni, Ricardo 07 December 2006 (has links)
Orientador: Anselmo Eduardo Diniz / Tese (doutorado) - Universidade Estadual de Campinas, Faculdade de Engenharia Mecanica / Made available in DSpace on 2018-08-07T07:00:53Z (GMT). No. of bitstreams: 1 Micaroni_Ricardo_D.pdf: 2196403 bytes, checksum: 4db1f057fa92acc55a6677b56f01f72d (MD5) Previous issue date: 2006 / Resumo: Na usinagem dos metais, a aplicação do fluido de corte otimizada é um recurso que pode aumentar a taxa de remoção de material. Dentre os beneficios pode-se citar a redução da temperatura da ferramenta e melhor formação dos cavacos. Na primeira fase deste trabalho foi estudada a viabilização do corte a seco, da aplicação do fluido de corte em fluxo abundante ou convencional e em alta pressão em diferentes direções no torneamento do aço ABNT 1045, empregando-se ferramentas de metal duro em operação de acabamento. Para isso, foi montado um sistema composto por uma bomba de alta pressão e injetores direcionados para a superficie de saída, para a superficie de folga e simultaneamente para estas duas direções. As variáveis de saída foram: desgaste e vida da ferramenta, rugosidade da peça, potência e temperatura de corte. Na segunda fase será estudada a influência do uso ou não do fluido de corte na dilatação térmica de corpos de parede fina. Foi observado que a redução da vazão e o aumento da pressão do fluido de corte aumentaram a vida da ferramenta em relação às outras condições de refrigeração e, que a redução da vazão não alterou significativamente a temperatura de corte da ferramenta. Por outro lado, nos ensaios de dilatação térmica ficou constatado que a ausência do fluido de corte influenciou significativamente a variação diametral dos corpos de prova de parede fina / Abstract: In machining, the suitable use of cutting fluid is a resource that can increase the rate of material removal. Among the benefits it is possible to mention the tool temperature decrease and better chip formation. In the first stage of this work, several cooling/lubrication conditions were compared in finish turning operations of ABNT 1045 steel. These conditions were: dry cutting, the application of a abundant flow of cutting fluid in a conventional way (high flow rate and small pressure) and application of high pressure fluid in different directions. With this purpose, it was assembled a system containing a high pressure pump and injectors directed. to rake face, flank face and simultaneously in both directions. The output parameters were: tool wear an tool life, workpiece surface roughness, cutting power and temperature. In the second phase will be study the influence of the cutting fluid in the thermal expansion of worpieces with thin wall. The flow reduction and cutting fluid pressure increase the lifetime of the tool compared to other cooling conditions and that the flow reduction did not significant1y affected the tool temperature. On the other hand, the diameter variation of the workpiece with thin walls was larger in the absence of the cutting fluid / Doutorado / Materiais e Processos de Fabricação / Doutor em Engenharia Mecânica
4

Improvements in ultrasonically assisted turning of TI 15V3Al3Cr3Sn

Maurotto, Agostino January 2013 (has links)
Titanium alloys have outstanding mechanical properties such as high hardness, a good strength-to-weight ratio and high corrosion resistance. However, their low thermal conductivity and high chemical affinity to tool materials severely impairs their machinability with conventional techniques. Conventional machining of Ti-based alloys is typically characterized by low depth of cuts and relatively low feed rates, thus adversely affecting the material removal rates (MRR) during the machining process. Ultrasonically assisted turning (UAT) is an advanced machining technique, in which ultrasonic vibration is superimposed on a cutting tool. UAT was shown to improve machinability of difficult-to-machine materials, such as ceramics, glass or hard metals. UAT employment in the industry is, however, currently lacking due to imperfect comprehensive knowledge on materials' response and difficulties in obtaining consistent results. In this work, significant improvements in the design of a UAT system were performed to increase dynamic and static stiffness of the cutting head. Concurrent improvements on depth-of-cut controls allowed precise and accurate machining operations that were not possible before. Effects of depth of cut and cutting speed were investigated and their influence on the ultrasonic cutting process evaluated. Different cutting conditions -from low turning speeds to higher recommended levelwere analysed. Thermal evolution of cutting process was assessed, and the obtained results compared with FE simulations to gain knowledge on the temperatures reached in the cutting zone. The developed process appeared to improve dry turning of Ti-15-3-3-3 with significant reduction of average cutting forces. Improved surface quality of the finished work-piece was also observed. Comparative analyses with a conventional turning (CT) process at a cutting speed of 10 m/min showed that UAT reduced the average cutting forces by 60-65% for all levels of ap considered. Temperature profiles were obtained for CT and UAT of the studied alloy. A comparative study of surface and sub-surface layers was performed for CT- and UAT-processed work-pieces with notable improvements for the UAT-machined ones. Two- to three-fold reductions of surface roughness and improvements of other surface parameters were observed for the UAT- machined surfaces. Surface hardness for both the CT- and UAT-machined surfaces was investigated by microindentation. The intermittent cutting of the UAT-process resulted in reduction of hardening of the sub-surface layers. Optical and electronic metallographic analyses of cross-sectioned work-pieces investigated the effect of UAT on the grain structure in material's sub-surface layers. Backscatter electron microscopy was also used to evaluate the formation of α-Ti during the UAT cutting process. No grain changes or α-precipitation were observed in both the CT- and UAT-machined work-pieces.
5

Hot ultrasonically assisted turning of Ti-15V3Al3Cr3Sn : experimental and numerical analysis

Muhammad, Riaz January 2013 (has links)
Titanium alloys have outstanding mechanical properties such as high hardness, a good strength-to-weight ratio, excellent fatigue properties and high corrosion resistance. However, several inherent properties including their low thermal conductivity and high chemical affinity to tool materials impairs severely their machinability with conventional machining techniques. Conventional machining of Ti-based alloys is typically characterized by low depths of cuts and relatively low feed rates, thus adversely affecting the material removal rates during the machining process. Recently, a non-conventional machining technique known as ultrasonically assisted turning (UAT) was introduced to machine modern alloys, in which low-energy, high-frequency vibration is superimposed on the movement of a cutting tool during a conventional cutting process. This novel machining technique results in a multi-fold decrease in the level of cutting forces with a concomitant improvement in surface finish of machined modern alloys. Also, since the late 20th century, machining of wear resistant materials that soften when heated has been carried out with hot machining techniques. In this work, a new hybrid machining technique called Hot Ultrasonically Assisted Turning (HUAT) is introduced for processing of a Ti-based alloy Ti-15V3Al3Cr3Sn. In this technique, UAT is combined with a traditional hot machining technique to gain combined advantages of both schemes for machining of intractable alloys. HUAT of the studied alloy was analysed experimentally and numerically to demonstrate its benefits in terms of reduction in cutting forces over a wide range of industrially relevant speed-feed combinations. Thermal evolution in the cutting process was assessed, and the obtained results were compared with FE simulations to gain knowledge of temperatures reached in the cutting zone. The developed novel turning process appeared to improve dry turning of the Ti alloy with significant reduction of average cutting forces without any substantial metallurgical changes in the workpiece material. Nano-indentation, light microscopy and SEM studies were performed to get an insight into the development of hardness in a zone near the machined surface in the workpiece. Backscatter electron microscopy was also used to evaluate the formation of α-Ti during the novel HUAT. No grain changes or α-precipitation were observed in machined workpieces in conventional and hybrid turning processes. 3D elasto-plastic thermomechanically coupled finite-element models for the orthogonal turning process were developed for conventional turning (CT), hot conventional turning (HCT), UAT and HUAT, followed by a more realistic novel 3D finite-element model for the oblique turning process. These 3D models were used to study the effects of cutting parameters (cutting speed, feed rate and depth of cut, ultrasonic vibration, ultrasonic frequency, rake angle and tool nose radius) on cutting forces, temperature in the process zone and stresses. The later model was used to analyse the effect of vibration and heat on the radial and axial components of cutting forces in HUAT, which was not possible with the developed 3D orthogonal-turning model. Comparative studies were performed with the developed CT, HCT, UAT and HUAT finite-element models and were validated by results from experiments conducted on the in-house prototype and in literature. The HUAT for the Ti-15333 was analysed experimentally and numerically to demonstrate the benefits in terms of a significant reduction in the cutting forces and improvement in surface roughness over a wide range of industrially relevant speed-feed combinations.
6

Estudo da geometria da aresta de corte de ferramentas aplicadas ao torneamento de superligas à base de níquel com alta velocidade de corte / Study of the edge geometry of tools employed to high speed turning of nickel based superalloys

Silva, Leonardo Roberto da 26 March 2002 (has links)
Pesquisadores e indústrias de todo o mundo estão firmemente comprometidos com o propósito de fazer o processo de usinagem ser precisamente veloz e produtivo. A forte concorrência mundial gerou a procura por processos de usinagem econômicos, com grande capacidade de produção de cavacos e que produzam peças com elevada qualidade. Dentre as novas tecnologias que começaram a ser empregadas, e deve tornar-se o caminho certo a ser trilhado na busca da competitividade em curto espaço de tempo, está a tecnologia de usinagem com altas velocidades (HSM de High Speed Machining). A tecnologia HSM surge como componente essencial na otimização dos esforços para manutenção e aumento da competitividade global das empresas. Durante os últimos anos a usinagem com alta velocidade tem ganhado grande importância, sendo dada uma maior atenção ao desenvolvimento e à disponibilização no mercado de máquinas-ferramentas com rotações muito elevadas (20.000 - 100.000 rpm). O processo de usinagem com alta velocidade está sendo usado não apenas para ligas de alumínio e cobre, mas também para materiais de difícil usinabilidade, como os aços temperados e superligas à base de níquel. Porém, quando se trata de materiais de difícil corte, têm-se observado poucas publicações, principalmente no processo de torneamento. Mas, antes que a tecnologia HSM possa ser empregada de uma forma econômica, todos os componentes envolvidos no processo de usinagem, incluindo a máquina, o eixo-árvore, a ferramenta e o pessoal, precisam estar afinados com as peculiaridades deste novo processo. No que diz respeito às máquinas-ferramenta, isto significa que elas têm que satisfazer requisitos particulares de segurança. As ferramentas, devido à otimização de suas geometrias, substratos e revestimentos, contribuem para o sucesso deste processo. O presente trabalho objetiva estudar o comportamento de diversas geometrias ) de insertos de cerâmica (Al2O3 + SiCw e Al2O3 + TIC) e PCBN com duas concentrações de CBN na forma padrão, assim como modificações na geometria das arestas de corte empregadas em torneamento com alta velocidade em superligas à base de níquel (Inconel 718 e Waspaloy). Os materiais foram tratados termicamente para dureza de 44 e 40 HRC respectivamente, e usinados sob condição de corte a seco e com utilização da técnica de mínima quantidade de lubrificante (minimal quantity lubricant - MQL) visando atender requisitos ambientais. As superligas à base de níquel são conhecidas como materiais de difícil usinabilidade devido à alta dureza, alta resistência mecânica em alta temperatura, afinidade para reagir com materiais da ferramenta e baixa condutividade térmica. A usinagem de superligas afeta negativamente a integridade da peça. Por essa razão, cuidados especiais devem ser tomados para assegurar a vida da ferramenta e a integridade superficial de componentes usinados por intermédio de controle dos principais parâmetros de usinagem. Experimentos foram realizados sob diversas condições de corte e geometrias de ferramentas para avaliação dos parâmetros: força de corte, temperatura, emissão acústica e integridade superficial (rugosidade superficial, tensão residual, microdureza e microestrutura) e mecanismos de desgaste. Mediante os resultados apresentados, recomenda-se à geometria de melhor desempenho nos parâmetros citados e confirma-se a eficiência da técnica MQL. Dentre as ferramentas e geometrias testadas, a que apresentou melhor desempenho foi a ferramenta cerâmica CC650 seguida da ferramenta cerâmica CC670 ambas com formato redondo e geometria 2 (chanfro em T de 0,15 x 15º com raio de aresta de 0,03 mm). / Researchers and industry personnel around the world are firmly committed to the purpose of doing the machining process dramatically faster and more precise. The tough global competition has generated a search for more economical machining processes, with high ability for chip removal and, in this way, producing high quality workpieces. Among the new technologies available nowadays, the high speed machining (HSM) is pointed out as the main solution to obtain competitiveness in a short period of time. The HSM technology appears as an essential component to optimize the efforts for maintaining, and increasing, the global competitiveness. During the last years, high speed machining technology has received great attention, specially the development and availability in the market of machine tools with high rotational speeds (20.000 - 100.000 rpm). The HSM has been used not only to machine aluminum and copper alloys, but also to difficult to machine rnaterials, such as hardened steels and nickel based superalIoys. However, for difficult to machine materiais, the literature is very incipient, specially concerning the turning process. However, before the HSM technology be used in an economic way, alI the components involved in the machining process, including the machine, the spindle, the tool and the operators, need to be tuned with the peculiarities of this new process. Concerning the tooling, they have to satisfy peculiar requirements of safety. Due to the optimization of their geometries, substrates and coatings, the cutting tools are contributing to the success of the process. The present work aims at the study of several insert geometries of ceramic tools (Al2O3 + SiCw and Al2O3 + TiC) and PCBN, with two concentrations of CBN, in the standard format and with modifications on the cutting edge geometry, working in the high speed turning of nickel based superaIloys (lnconel 718 and Waspaloy]. MateriaIs were heat treated to hardness of 44 and 40 HRC, respectively, and machined under dry cutting condition and also with minimal quantity of lubricant (MQL) to attend environmental requirements. The nickel based superalloys are known as difficult to cut materials due to their high hardness, high mechanical strength at high temperature, chemical affinity to tool materiaIs and lower thermal conductivity. The machining of superalloys affects negatively the integrity of the workpiece. For this reason, tool life and surface integrity of the machined component must be carefully analyzed throughout the control of the main machining parameters. Practical experiments were implemented using several cutting conditions and tool geometries to evaluate the following parameters: cutting force, temperature, acoustic emission and surface integrity (surface finishing, residual stress, microhardeness and microstructure) and wear mechanisms. Analyzing the results, the most suitable geometry for the mentioned parameters is recommended and the efficiency of the MQL technical is confirmed. Among all inserts and geometries tested, the CC650 ceramic tool presented better results, followed by the CC670 ceramic tool, both with round format and edge geometry number 2 (chamfer in T 0,15 x 15° with hone of 0,03 mm).
7

Estudo da geometria da aresta de corte de ferramentas aplicadas ao torneamento de superligas à base de níquel com alta velocidade de corte / Study of the edge geometry of tools employed to high speed turning of nickel based superalloys

Leonardo Roberto da Silva 26 March 2002 (has links)
Pesquisadores e indústrias de todo o mundo estão firmemente comprometidos com o propósito de fazer o processo de usinagem ser precisamente veloz e produtivo. A forte concorrência mundial gerou a procura por processos de usinagem econômicos, com grande capacidade de produção de cavacos e que produzam peças com elevada qualidade. Dentre as novas tecnologias que começaram a ser empregadas, e deve tornar-se o caminho certo a ser trilhado na busca da competitividade em curto espaço de tempo, está a tecnologia de usinagem com altas velocidades (HSM de High Speed Machining). A tecnologia HSM surge como componente essencial na otimização dos esforços para manutenção e aumento da competitividade global das empresas. Durante os últimos anos a usinagem com alta velocidade tem ganhado grande importância, sendo dada uma maior atenção ao desenvolvimento e à disponibilização no mercado de máquinas-ferramentas com rotações muito elevadas (20.000 - 100.000 rpm). O processo de usinagem com alta velocidade está sendo usado não apenas para ligas de alumínio e cobre, mas também para materiais de difícil usinabilidade, como os aços temperados e superligas à base de níquel. Porém, quando se trata de materiais de difícil corte, têm-se observado poucas publicações, principalmente no processo de torneamento. Mas, antes que a tecnologia HSM possa ser empregada de uma forma econômica, todos os componentes envolvidos no processo de usinagem, incluindo a máquina, o eixo-árvore, a ferramenta e o pessoal, precisam estar afinados com as peculiaridades deste novo processo. No que diz respeito às máquinas-ferramenta, isto significa que elas têm que satisfazer requisitos particulares de segurança. As ferramentas, devido à otimização de suas geometrias, substratos e revestimentos, contribuem para o sucesso deste processo. O presente trabalho objetiva estudar o comportamento de diversas geometrias ) de insertos de cerâmica (Al2O3 + SiCw e Al2O3 + TIC) e PCBN com duas concentrações de CBN na forma padrão, assim como modificações na geometria das arestas de corte empregadas em torneamento com alta velocidade em superligas à base de níquel (Inconel 718 e Waspaloy). Os materiais foram tratados termicamente para dureza de 44 e 40 HRC respectivamente, e usinados sob condição de corte a seco e com utilização da técnica de mínima quantidade de lubrificante (minimal quantity lubricant - MQL) visando atender requisitos ambientais. As superligas à base de níquel são conhecidas como materiais de difícil usinabilidade devido à alta dureza, alta resistência mecânica em alta temperatura, afinidade para reagir com materiais da ferramenta e baixa condutividade térmica. A usinagem de superligas afeta negativamente a integridade da peça. Por essa razão, cuidados especiais devem ser tomados para assegurar a vida da ferramenta e a integridade superficial de componentes usinados por intermédio de controle dos principais parâmetros de usinagem. Experimentos foram realizados sob diversas condições de corte e geometrias de ferramentas para avaliação dos parâmetros: força de corte, temperatura, emissão acústica e integridade superficial (rugosidade superficial, tensão residual, microdureza e microestrutura) e mecanismos de desgaste. Mediante os resultados apresentados, recomenda-se à geometria de melhor desempenho nos parâmetros citados e confirma-se a eficiência da técnica MQL. Dentre as ferramentas e geometrias testadas, a que apresentou melhor desempenho foi a ferramenta cerâmica CC650 seguida da ferramenta cerâmica CC670 ambas com formato redondo e geometria 2 (chanfro em T de 0,15 x 15º com raio de aresta de 0,03 mm). / Researchers and industry personnel around the world are firmly committed to the purpose of doing the machining process dramatically faster and more precise. The tough global competition has generated a search for more economical machining processes, with high ability for chip removal and, in this way, producing high quality workpieces. Among the new technologies available nowadays, the high speed machining (HSM) is pointed out as the main solution to obtain competitiveness in a short period of time. The HSM technology appears as an essential component to optimize the efforts for maintaining, and increasing, the global competitiveness. During the last years, high speed machining technology has received great attention, specially the development and availability in the market of machine tools with high rotational speeds (20.000 - 100.000 rpm). The HSM has been used not only to machine aluminum and copper alloys, but also to difficult to machine rnaterials, such as hardened steels and nickel based superalIoys. However, for difficult to machine materiais, the literature is very incipient, specially concerning the turning process. However, before the HSM technology be used in an economic way, alI the components involved in the machining process, including the machine, the spindle, the tool and the operators, need to be tuned with the peculiarities of this new process. Concerning the tooling, they have to satisfy peculiar requirements of safety. Due to the optimization of their geometries, substrates and coatings, the cutting tools are contributing to the success of the process. The present work aims at the study of several insert geometries of ceramic tools (Al2O3 + SiCw and Al2O3 + TiC) and PCBN, with two concentrations of CBN, in the standard format and with modifications on the cutting edge geometry, working in the high speed turning of nickel based superaIloys (lnconel 718 and Waspaloy]. MateriaIs were heat treated to hardness of 44 and 40 HRC, respectively, and machined under dry cutting condition and also with minimal quantity of lubricant (MQL) to attend environmental requirements. The nickel based superalloys are known as difficult to cut materials due to their high hardness, high mechanical strength at high temperature, chemical affinity to tool materiaIs and lower thermal conductivity. The machining of superalloys affects negatively the integrity of the workpiece. For this reason, tool life and surface integrity of the machined component must be carefully analyzed throughout the control of the main machining parameters. Practical experiments were implemented using several cutting conditions and tool geometries to evaluate the following parameters: cutting force, temperature, acoustic emission and surface integrity (surface finishing, residual stress, microhardeness and microstructure) and wear mechanisms. Analyzing the results, the most suitable geometry for the mentioned parameters is recommended and the efficiency of the MQL technical is confirmed. Among all inserts and geometries tested, the CC650 ceramic tool presented better results, followed by the CC670 ceramic tool, both with round format and edge geometry number 2 (chamfer in T 0,15 x 15° with hone of 0,03 mm).

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