85 resultados para Lei zero da termodinâmica

em Scielo Saúde Pública - SP


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This paper deals with Carathédory's formulation of the second law of thermodynamics. The material is presented in a didatical way, which allows a second year undergraduate student to follow the formalism. An application is made to an ideal gas with two independent variables. A criticism to Carnot formulation of the second law and an investigation of the historical origins of the Carathéodory formalism are also presented.

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Entropy is a concept that has long stimulated human curiosity, resulting in an huge intelectual production. The same has not occurred for the first law of thermodynamics, perhaps because of its apparent obviousness. In this article the first law presentation, as displayed in most traditional physical chemistry textbooks, is criticized. An alternative view is suggested, in accordance with temporal thermodynamics. The time derivative local form of the second law is used to stress the entropy concept implications on the notion of internal energy.

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The classical interpretations of Nicolas Léonard Sadi Carnot on some physical principles involved in the operation of heat engines were fundamental to the development and formulation of the Second Law of Thermodynamics. Moreover, an accurate historical survey clearly reveals that Carnot was, by that time, also well aware about some new concepts, which were further worked out by other scientists to lead to what was, some time later, known as the mechanical equivalent of heat and the conservation of energy. Benoit Paul Émile Clapeyron recognized these original concepts in the first of Carnot´s monographs, published in 1824, but no explicit citation is found in any post-Carnot classical texts dealing with the First Law of Thermodynamics, including those by Julius Robert Mayer, James Prescott Joule and Hermann Ludwig Ferdinand von Helmholtz. The main objective of the present work is to point out some historical evidences of the pioneering contribution of Carnot to the modern concept of the First Law of Thermodynamics.

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We treat some subtleties concerning the First Law of Thermodynamics and discuss the inherent difficulties, namely the interpretation of the heat and the work differentials. By proposing a new differential equation for the First Law, which is written using both system and neighborhood variables, we overcome the mentioned difficulties and establish a criterion for the definition of heat and work.

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Thermodynamics of homogeneous processes, which corresponds to the very special situation in thermodynamics of continuous media, is used to discuss the first law. An important part of this work is the exposition of some typical mathematical errors, frequently found in the traditional presentation of thermodynamics. The concepts of state and process functions are discussed, as well as reverse and reversible processes, temporality and its implications on thermodynamics, energy reservoirs and symmetry. Our proposal is to present the first law by using a time dependent viewpoint coherent with mechanics and the foundations of that viewpoint.

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Considering intrinsic characteristics of the system exclusively, both statistical and information theory interpretations of the second law are used to provide more comprehensive meanings for the concepts of entropy, temperature, and Helmholtz and Gibbs energies. The coherence of Clausius inequality to these concepts is emphasized. The aim of this work is to re-discuss the second law of thermodynamics in accordance to homogeneous processes thermodynamics, a temporal science which is the very special oversimplification of continuum mechanics for spatially constant intensive properties.

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The author proves that equation, Σy n ΣZx | ΣxyZx ΣxZx ΣxZ2x | = 0, Σy ΣZx Σy2x | where Z = 10-cq and q is a numerical constant, used by Pimentel Gomes and Malavolta in several articles for the interpolation of Mitscherlih's equation y = A [ 1 - 10 - c (x + b) ] by the least squares method, always has a zero of order three for Z = 1. Therefore, equation A Zm + A1Zm -1 + ........... + Am = 0 obtained from that determinant can be divided by (Z-1)³. This property provides a good test for the correctness of the computations and facilitates the solution of the equation.

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O presente artigo analisa o processo de criação e regulamentação da Lei do Abate no Brasil, que autoriza a derrubada em pleno voo de aeronaves civis suspeitas de envolvimento no tráfico de drogas. Investigam-se as relações entre a elaboração da Lei do Abate, a política de guerra às drogas propagada pelos EUA e as preocupações estratégicas dos militares brasileiros acerca da segurança da Região Amazônica. Como parte da contextualização da criação dos programas de interdição aérea baseados no abate de aeronaves, estudam-se as origens e as transformações das políticas antidrogas dos EUA desde a década de 1960 e o modelo de guerra às drogas (War on Drugs). Analisa-se também o processo de discussão parlamentar no Brasil sobre a Lei do Abate e os debates para a sua regulamentação. A pesquisa ocorreu por meio da análise de documentos produzidos pelos governos dos EUA (abertos e sigilosos reclassificados) e do Brasil, da investigação dos anais do Congresso Nacional e do estudo de livros e artigos científicos nacionais e estrangeiros. Verifica-se que os programas que autorizam o abate nascem sob a justificativa do combate ao tráfico, mas se ligam às necessidades militares específicas de Peru e Colômbia. A lei brasileira surge para combater o transporte aéreo ilícito vinculado ao tráfico; contudo, sua origem e os debates posteriores para sua regulamentação submetem-se ao condicionamento dos temores e projetos militares em torno da defesa da soberania sobre a Amazônia brasileira.