284 research outputs found
Quantificação de fases argilominerais em matérias-primas cerâmicas pelo método de Rietveld
Tese (doutorado) - Universidade Federal de Santa Catarina, Programa de Pós-Graduação em Ciência e Engenharia de Materiais, Florianópolis, 2013.O método de Rietveld é usado no refinamento das estruturas cristalinas dos materiais na forma de pó e na quantificação de fases, a partir das informações de difração de raios X ou de nêutrons. Nessa pesquisa estudaram-se os procedimentos utilizados na quantificação de fases argilominerais através do método de Rietveld, com o intuito de determinar com mais precisão os teores das fases cristalinas e amorfas presentes no estado cru e no calcinado de matérias-primas argilosas em cerâmicas à base de silicatos. Para a realização do trabalho foram selecionadas as seguintes matérias-primas: caulim beneficiado (CB), caulim rosa (CR), argila itanema (AI), quartzo (Q), fluorita (F) e alumina (A). A partir dos caulins e da argila, produziram-se em laboratório amostras calcinadas. As amostras foram preparadas em um porta-amostra com abertura lateral e sugere-se a adoção desse modelo em difrações de pós envolvendo argilominerais. Constatou-se que existe variabilidade na quantificação das fases no refinamento das estruturas cristalinas da caulinita pelo método de Rietveld e que há variação desde a preparação da amostra até o refinamento propriamente dito. Propõe-se fornecer uma quantificação com margem de erro ±5%, quando envolver argilominerais crus e de ±3%, se as amostras forem calcinadas. Esta variabilidade identificada na quantificação de fases independeu do software utilizado. No entanto, de modo geral, o software livre GSAS apresentou menor variabilidade, com desvio padrão máximo de 0,78. As análises indicaram a adequação do método de Rietveld combinado como padrão interno para determinar o teor das fases cristalinas e amorfas em cerâmicas à base de silicatos. De acordo com o refinamento das amostras, o ciclo de queima influencia na formação de mulita, sendo que para o ciclo de 6 min a amostra CR formou 20% de mulita, CB 57% e AI 40%. E a 120 min a amostra CR formou 60% de mulita, as demais se mantiveram. Correlacionando os índices de conversão das matérias-primas ricas em caulinita após a queima, com o teor de caulinita bem cristalizada, quantificada pelo refinamento de Rietveld, a amostra CB contém 94% de caulinita bem cristalizada e apresentou 89% de conversão. As amostras CR e AI, apesar da baixa proporção de caulinita bem cristalizada, CR com 23% e AI com 6%, houve uma boa evolução da cristalização de mulita, com índices de conversão para o CR de 27% a 6min e 80% a 120 min e AI converteu 88%. Estes resultados estão fortemente relacionados à presença das impurezas nas amostras que induzem à cristalização da mulita. Assim, a partir das amostras estudadas, os resultados indicam que caulinitas bem cristalizadas e argilas ricas em alumina, contendo teor significativo de ilita, desenvolvem mulita mais rapidamente. Conclui-se que, com base nos dados do refinamento e na análise racional, pode-se caracterizar um material cerâmico com vistas à aplicabilidade e previsão de propriedades.2014-08-06T17:18:10
HISTÓRIA DA MATEMÁTICA: E-BOOK – COMO SURGIRAM ALGUNS CONCEITOS MATEMÁTICOS?
As escolas de ensino fundamental do município de Sombrio (SC), possuem projeto de incentivo à leitura, no qual todos os dias os alunos têm quinze minutos de leitura antes de iniciar as aulas. O projeto tem por objetivo de inserir neste contexto textos para este momento, relacionados com a História da Matemática, no entanto a elaboração de um e-book com estes textos torna-se acessível a todas escolas pertencentes a rede municipal e ainda expandir o projeto a demais escolas do ensino fundamental que são campo de estágio do curso de Licenciatura em Matemática do Campus Avançado Sombrio. Quanto a escolha dos temas foi realizada com base nos Parâmetros Curriculares Nacionais, proposta curricular de Santa Catarina e nos conteúdos da Base Curricular Comum e organizados de forma em conformidade com o ano escolar. No entanto, considera-se que a inserção da História da Matemática como metodologia de ensino nas aulas de Matemática pode ser instrumento eficaz para o processo de ensino e aprendizagem
Les droits disciplinaires des fonctions publiques : « unification », « harmonisation » ou « distanciation ». A propos de la loi du 26 avril 2016 relative à la déontologie et aux droits et obligations des fonctionnaires
The production of tt‾ , W+bb‾ and W+cc‾ is studied in the forward region of proton–proton collisions collected at a centre-of-mass energy of 8 TeV by the LHCb experiment, corresponding to an integrated luminosity of 1.98±0.02 fb−1 . The W bosons are reconstructed in the decays W→ℓν , where ℓ denotes muon or electron, while the b and c quarks are reconstructed as jets. All measured cross-sections are in agreement with next-to-leading-order Standard Model predictions.The production of , and is studied in the forward region of proton-proton collisions collected at a centre-of-mass energy of 8 TeV by the LHCb experiment, corresponding to an integrated luminosity of 1.98 0.02 \mbox{fb}^{-1}. The bosons are reconstructed in the decays , where denotes muon or electron, while the and quarks are reconstructed as jets. All measured cross-sections are in agreement with next-to-leading-order Standard Model predictions
Physics case for an LHCb Upgrade II - Opportunities in flavour physics, and beyond, in the HL-LHC era
The LHCb Upgrade II will fully exploit the flavour-physics opportunities of the HL-LHC, and study additional physics topics that take advantage of the forward acceptance of the LHCb spectrometer. The LHCb Upgrade I will begin operation in 2020. Consolidation will occur, and modest enhancements of the Upgrade I detector will be installed, in Long Shutdown 3 of the LHC (2025) and these are discussed here. The main Upgrade II detector will be installed in long shutdown 4 of the LHC (2030) and will build on the strengths of the current LHCb experiment and the Upgrade I. It will operate at a luminosity up to 2×1034
cm−2s−1, ten times that of the Upgrade I detector. New detector components will improve the intrinsic performance of the experiment in certain key areas. An Expression Of Interest proposing Upgrade II was submitted in February 2017. The physics case for the Upgrade II is presented here in more depth. CP-violating phases will be measured with precisions unattainable at any other envisaged facility. The experiment will probe b → sl+l−and b → dl+l− transitions in both muon and electron decays in modes not accessible at Upgrade I. Minimal flavour violation will be tested with a precision measurement of the ratio of B(B0 → μ+μ−)/B(Bs → μ+μ−). Probing charm CP violation at the 10−5 level may result in its long sought discovery. Major advances in hadron spectroscopy will be possible, which will be powerful probes of low energy QCD. Upgrade II potentially will have the highest sensitivity of all the LHC experiments on the Higgs to charm-quark couplings. Generically, the new physics mass scale probed, for fixed couplings, will almost double compared with the pre-HL-LHC era; this extended reach for flavour physics is similar to that which would be achieved by the HE-LHC proposal for the energy frontier
LHCb upgrade software and computing : technical design report
This document reports the Research and Development activities that are carried out in the software and computing domains in view of the upgrade of the LHCb experiment. The implementation of a full software trigger implies major changes in the core software framework, in the event data model, and in the reconstruction algorithms. The increase of the data volumes for both real and simulated datasets requires a corresponding scaling of the distributed computing infrastructure. An implementation plan in both domains is presented, together with a risk assessment analysis
Measurement of the J/ψ pair production cross-section in pp collisions at TeV
The production cross-section of J/ψ pairs is measured using a data sample of pp collisions collected by the LHCb experiment at a centre-of-mass energy of TeV, corresponding to an integrated luminosity of 279 ±11 pb. The measurement is performed for J/ψ mesons with a transverse momentum of less than 10 GeV/c in the rapidity range 2.0 < y < 4.5. The production cross-section is measured to be 15.2 ± 1.0 ± 0.9 nb. The first uncertainty is statistical, and the second is systematic. The differential cross-sections as functions of several kinematic variables of the J/ψ pair are measured and compared to theoretical predictions.The production cross-section of pairs is measured using a data sample of collisions collected by the LHCb experiment at a centre-of-mass energy of , corresponding to an integrated luminosity of . The measurement is performed for mesons with a transverse momentum of less than in the rapidity range . The production cross-section is measured to be . The first uncertainty is statistical, and the second is systematic. The differential cross-sections as functions of several kinematic variables of the pair are measured and compared to theoretical predictions
Measurement of forward production in collisions at TeV
A measurement of the cross-section for production in collisions is presented using data corresponding to an integrated luminosity of fb collected by the LHCb experiment at a centre-of-mass energy of TeV. The electrons are required to have more than GeV of transverse momentum and to lie between 2.00 and 4.25 in pseudorapidity. The inclusive production cross-sections, where the decays to , are measured to be \begin{align*} \begin{split} \sigma_{W^{+} \to e^{+}\nu_{e}}&=1124.4\pm 2.1\pm 21.5\pm 11.2\pm 13.0\,\mathrm{pb},\\ \sigma_{W^{-} \to e^{-}\bar{\nu}_{e}}&=\,\,\,809.0\pm 1.9\pm 18.1\pm\,\,\,7.0\pm \phantom{0}9.4\,\mathrm{pb}, \end{split} \end{align*} where the first uncertainties are statistical, the second are systematic, the third are due to the knowledge of the LHC beam energy and the fourth are due to the luminosity determination. Differential cross-sections as a function of the electron pseudorapidity are measured. The cross-section ratio and production charge asymmetry are also reported. Results are compared with theoretical predictions at next-to-next-to-leading order in perturbative quantum chromodynamics. Finally, in a precise test of lepton universality, the ratio of boson branching fractions is determined to be \begin{align*} \begin{split} \mathcal{B}(W \to e\nu)/\mathcal{B}(W \to \mu\nu)=1.020\pm 0.002\pm 0.019, \end{split} \end{align*} where the first uncertainty is statistical and the second is systematic.A measurement of the cross-section for production in collisions is presented using data corresponding to an integrated luminosity of fb collected by the LHCb experiment at a centre-of-mass energy of TeV. The electrons are required to have more than GeV of transverse momentum and to lie between 2.00 and 4.25 in pseudorapidity. The inclusive production cross-sections, where the decays to , are measured to be \begin{equation*} \sigma_{W^{+} \to e^{+}\nu_{e}}=1124.4\pm 2.1\pm 21.5\pm 11.2\pm 13.0\,\mathrm{pb}, \end{equation*} \begin{equation*} \sigma_{W^{-} \to e^{-}\bar{\nu}_{e}}=\,\,\,809.0\pm 1.9\pm 18.1\pm\,\,\,7.0\pm \phantom{0}9.4\,\mathrm{pb}, \end{equation*} where the first uncertainties are statistical, the second are systematic, the third are due to the knowledge of the LHC beam energy and the fourth are due to the luminosity determination. Differential cross-sections as a function of the electron pseudorapidity are measured. The cross-section ratio and production charge asymmetry are also reported. Results are compared with theoretical predictions at next-to-next-to-leading order in perturbative quantum chromodynamics. Finally, in a precise test of lepton universality, the ratio of boson branching fractions is determined to be \begin{equation*} \mathcal{B}(W \to e\nu)/\mathcal{B}(W \to \mu\nu)=1.020\pm 0.002\pm 0.019, \end{equation*} where the first uncertainty is statistical and the second is systematic.A measurement of the cross-section for W → eν production in pp collisions is presented using data corresponding to an integrated luminosity of 2 fb collected by the LHCb experiment at a centre-of-mass energy of TeV. The electrons are required to have more than 20 GeV of transverse momentum and to lie between 2.00 and 4.25 in pseudorapidity. The inclusive W production cross-sections, where the W decays to eν, are measured to be where the first uncertainties are statistical, the second are systematic, the third are due to the knowledge of the LHC beam energy and the fourth are due to the luminosity determination
Measurement of the B0s→μ+μ− Branching Fraction and Effective Lifetime and Search for B0→μ+μ− Decays
A search for the rare decays Bs0→μ+μ- and B0→μ+μ- is performed at the LHCb experiment using data collected in pp collisions corresponding to a total integrated luminosity of 4.4 fb-1. An excess of Bs0→μ+μ- decays is observed with a significance of 7.8 standard deviations, representing the first observation of this decay in a single experiment. The branching fraction is measured to be B(Bs0→μ+μ-)=(3.0±0.6-0.2+0.3)×10-9, where the first uncertainty is statistical and the second systematic. The first measurement of the Bs0→μ+μ- effective lifetime, τ(Bs0→μ+μ-)=2.04±0.44±0.05 ps, is reported. No significant excess of B0→μ+μ- decays is found, and a 95% confidence level upper limit, B(B0→μ+μ-)<3.4×10-10, is determined. All results are in agreement with the standard model expectations.A search for the rare decays and is performed at the LHCb experiment using data collected in collisions corresponding to a total integrated luminosity of 4.4 fb. An excess of decays is observed with a significance of 7.8 standard deviations, representing the first observation of this decay in a single experiment. The branching fraction is measured to be , where the first uncertainty is statistical and the second systematic. The first measurement of the effective lifetime, ps, is reported. No significant excess of decays is found and a 95 % confidence level upper limit, , is determined. All results are in agreement with the Standard Model expectations
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