995 resultados para Co-álgebras primas


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Seja C uma co-álgebra. Consideremos o anel de convolução C*, que é a álgebra dual de C. Dado um co-módulo à direita (resp. à esquerda) sobre C é possível definir um C*-módulo à esquerda (resp. à direita) racional. Nesta tese, estudamos as noções correspondentes dos conceitos de primos, fortemente primos, semiprimos e fortemente semiprimos, que são encontrados na literatura em [2], [3], [4], [13] e [17], para co-módulos. A noção do conceito de primo é obtida também para co-álgebras. Mostramos que uma co-álgebra C é prima se, e somente se, C é uma co-álgebra simples.

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38 hojas : ilustraciones, fotografías.

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39 hojas : ilustraciones, fotografías.

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Desde sus inicios, el ser humano ha venido desarrollando prácticas que le han permitido mejorar su calidad de vida para cubrir una serie de necesidades. Para esto ha utilizado los elementos que la naturaleza le ha facilitado, a fin de transformarlos y luego adoptarlos y conservarlos, con el objetivo de garantizar su supervivencia. Desde la aparición del fuego, a lo largo de la historia han venido apareciendo nuevas técnicas y combinaciones de los elementos químicos de acuerdo con diferentes necesidades; por ejemplo, la fundición del hierro en el año 1500 a.c, la pólvora en el año 650 d.c, el papel en el año 105, hasta llegar a los tiempos modernos y a una era industrial en la cual el sector de la industria química viene a cumplir un papel fundamental para el crecimiento y el desarrollo, gracias a que se encarga de las transformaciones y procesamientos químicos para proveer materia prima para la fabricación de nuevas sustancias que posteriormente se convierten en bienes con valor agregado.

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El presente documento se propone estimar y analizar la existencia de una relación de equilibrio de largo plazo entre la producción industrial y la importación de bienes de capital y materias primas para el período enero de 1993 - abril de 2005, que resulta útil para monitorear la dinámica industrial en el corto plazo y las complementariedades que pueden existir entre los factores productivos del mercado interno con el externo. Para tal efecto, se desarrolla un análisis econométrico de la metodología de cointegración con componentes estacionales aplicado a las variables índice de producción real (IPR), importación de bienes de capital e importación de materias primas de la industria colombiana. A partir de un modelo de cointegración estacional se evidencia empíricamente la existencia de una relación de equilibrio de largo plazo entre estas variables durante el período analizado. Adicionalmente, se utiliza el modelo estimado para realizar ejercicios de impulso-respuesta para analizar la trayectoria futura de las variables de interés cuando son afectadas por choques exógenos en el tiempo.

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Composites based on alumina (Al2O3), tungsten carbide (WC) and cobalt (Co) exhibit specific properties such as low density, high oxidation resistance, high melting point and high chemical inertia. That composite shows to be a promising material for application in various fields of engineering. In this work, the mechanical properties of the composite (Al2O3 – WC – Co), particularly density and hardness, were evaluated according to the effects of the variables of powder processing parameters, green compact and sintered. Powder composites with the composition of 80 wt% Al2O3, 18 wt% WC and 2 wt% Co were processed by high energy ball milling in a planetary mill for 50 hours as well as mixed by manual mixing in a glass vessel with the same proportion. Samples were collected (2, 10, 20, 30, 40 and 50 hours) during the milling process. Then, the powders were compacted in a cylindrical die with 5 mm in diameter in a uniaxial press with pressures of 200 and 400 MPa. The sintering was in two stages: first, the solid phase sintering was performed at 1126 and 1300 °C for 1 hour with a heating rate of 10 °C/min in a resistive furnace under argon atmosphere for green samples compacted in 200 and 400 MPa; the second sintering was performed on dilatometer in solid phase at 1300 °C for green sample compacted in 200 MPa, another sintering also was performed on dilatometer, this time in liquid phase at 1550 °C for green samples compacted in 200 and 400 MPa, with the same parameters used in resistive furnace. The raw materials were characterized by X – ray diffraction (XRD), X – ray fluorescence (XRF), scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS) and laser particlemeter. The sintered samples were subjected to microhardness testing. The results showed that high energy milling achieved to the objectives regarding the particle size and the dispersion of composite phases. However, the hardness did not achieve to significant results, this is an indication that the composite has low fracture toughness.

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Composites based on alumina (Al2O3), tungsten carbide (WC) and cobalt (Co) exhibit specific properties such as low density, high oxidation resistance, high melting point and high chemical inertia. That composite shows to be a promising material for application in various fields of engineering. In this work, the mechanical properties of the composite (Al2O3 – WC – Co), particularly density and hardness, were evaluated according to the effects of the variables of powder processing parameters, green compact and sintered. Powder composites with the composition of 80 wt% Al2O3, 18 wt% WC and 2 wt% Co were processed by high energy ball milling in a planetary mill for 50 hours as well as mixed by manual mixing in a glass vessel with the same proportion. Samples were collected (2, 10, 20, 30, 40 and 50 hours) during the milling process. Then, the powders were compacted in a cylindrical die with 5 mm in diameter in a uniaxial press with pressures of 200 and 400 MPa. The sintering was in two stages: first, the solid phase sintering was performed at 1126 and 1300 °C for 1 hour with a heating rate of 10 °C/min in a resistive furnace under argon atmosphere for green samples compacted in 200 and 400 MPa; the second sintering was performed on dilatometer in solid phase at 1300 °C for green sample compacted in 200 MPa, another sintering also was performed on dilatometer, this time in liquid phase at 1550 °C for green samples compacted in 200 and 400 MPa, with the same parameters used in resistive furnace. The raw materials were characterized by X – ray diffraction (XRD), X – ray fluorescence (XRF), scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS) and laser particlemeter. The sintered samples were subjected to microhardness testing. The results showed that high energy milling achieved to the objectives regarding the particle size and the dispersion of composite phases. However, the hardness did not achieve to significant results, this is an indication that the composite has low fracture toughness.