12 research outputs found

    Data for: Effects of Drill String Eccentricity on Frictional Pressure Losses in Annuli

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    Simulation results and plot

    Data for: Effects of Drill String Eccentricity on Frictional Pressure Losses in Annuli

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    Simulation results and plotsTHIS DATASET IS ARCHIVED AT DANS/EASY, BUT NOT ACCESSIBLE HERE. TO VIEW A LIST OF FILES AND ACCESS THE FILES IN THIS DATASET CLICK ON THE DOI-LINK ABOV

    Acknowledgement to reviewers of fluids in 2018

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    Search for flavor changing neutral current interactions of the top quark in final states with a photon and additional jets in proton-proton collisions at s\sqrt{s} = 13 TeV

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    International audienceA search for the production of a top quark in association with a photon and additional jets via flavor changing neutral current interactions is presented. The analysis uses proton-proton collision data recorded by the CMS detector at a center-of-mass energy of 13 TeV, corresponding to an integrated luminosity of 138 fb1^{-1}. The search is performed by looking for processes where a single top quark is produced in association with a photon, or a pair of top quarks where one of the top quarks decays into a photon and an up or charm quark. Events with an electron or a muon, a photon, one or more jets, and missing transverse momentum are selected. Multivariate analysis techniques are used to discriminate signal and standard model background processes. No significant deviation is observed over the predicted background. Observed (expected) upper limits are set on the branching fractions of top quark decays: B\mathcal{B}(t\touγ\gamma) <\lt 0.95×\times105^{-5} (1.20×\times105^{-5}) and B\mathcal{B}(t\tocγ\gamma) <\lt 1.51×\times105^{-5} (1.54×\times105^{-5}) at 95% confidence level, assuming a single nonzero coupling at a time. The obtained limit for B\mathcal{B}(t\touγ\gamma) is similar to the current best limit, while the limit for B\mathcal{B}(t\tocγ\gamma) is significantly tighter than previous results

    Search for flavor changing neutral current interactions of the top quark in final states with a photon and additional jets in proton-proton collisions at s= \sqrt{s}= 13 TeV

    No full text
    A search for the production of a top quark in association with a photon and additional jets via flavor changing neutral current interactions is presented. The analysis uses proton-proton collision data recorded by the CMS detector at a center-of-mass energy of 13 TeV, corresponding to an integrated luminosity of 138 fb1 ^{-1} . The search is performed by looking for processes where a single top quark is produced in association with a photon, or a pair of top quarks where one of the top quarks decays into a photon and an up or charm quark. Events with an electron or a muon, a photon, one or more jets, and missing transverse momentum are selected. Multivariate analysis techniques are used to discriminate signal and standard model background processes. No significant deviation is observed over the predicted background. Observed (expected) upper limits are set on the branching fractions of top quark decays: B(tuγ)< \mathcal{B}(\mathrm{t}\to\mathrm{u}\gamma) < 0.95 ×\times 105^{-5} (1.20 × \times 105^{-5} ) and B(tcγ)< \mathcal{B}(\mathrm{t}\to\mathrm{c}\gamma) < 1.51 ×\times 105^{-5} (1.54 × \times 105^{-5} ) at 95% confidence level, assuming a single nonzero coupling at a time. The obtained limit for B(tuγ) \mathcal{B}(\mathrm{t}\to\mathrm{u}\gamma) is similar to the current best limit, while the limit for B(tcγ) \mathcal{B}(\mathrm{t}\to\mathrm{c}\gamma) is significantly tighter than previous results.A search for the production of a top quark in association with a photon and additional jets via flavor changing neutral current interactions is presented. The analysis uses proton-proton collision data recorded by the CMS detector at a center-of-mass energy of 13 TeV, corresponding to an integrated luminosity of 138 fb1^{-1}. The search is performed by looking for processes where a single top quark is produced in association with a photon, or a pair of top quarks where one of the top quarks decays into a photon and an up or charm quark. Events with an electron or a muon, a photon, one or more jets, and missing transverse momentum are selected. Multivariate analysis techniques are used to discriminate signal and standard model background processes. No significant deviation is observed over the predicted background. Observed (expected) upper limits are set on the branching fractions of top quark decays: B\mathcal{B}(t\touγ\gamma) <\lt 0.95×\times105^{-5} (1.20×\times105^{-5}) and B\mathcal{B}(t\tocγ\gamma) <\lt 1.51×\times105^{-5} (1.54×\times105^{-5}) at 95% confidence level, assuming a single nonzero coupling at a time. The obtained limit for B\mathcal{B}(t\touγ\gamma) is similar to the current best limit, while the limit for B\mathcal{B}(t\tocγ\gamma) is significantly tighter than previous results

    Search for flavor changing neutral current interactions of the top quark in final states with a photon and additional jets in proton-proton collisions at s\sqrt{s} = 13 TeV

    No full text
    International audienceA search for the production of a top quark in association with a photon and additional jets via flavor changing neutral current interactions is presented. The analysis uses proton-proton collision data recorded by the CMS detector at a center-of-mass energy of 13 TeV, corresponding to an integrated luminosity of 138 fb1^{-1}. The search is performed by looking for processes where a single top quark is produced in association with a photon, or a pair of top quarks where one of the top quarks decays into a photon and an up or charm quark. Events with an electron or a muon, a photon, one or more jets, and missing transverse momentum are selected. Multivariate analysis techniques are used to discriminate signal and standard model background processes. No significant deviation is observed over the predicted background. Observed (expected) upper limits are set on the branching fractions of top quark decays: B\mathcal{B}(t\touγ\gamma) <\lt 0.95×\times105^{-5} (1.20×\times105^{-5}) and B\mathcal{B}(t\tocγ\gamma) <\lt 1.51×\times105^{-5} (1.54×\times105^{-5}) at 95% confidence level, assuming a single nonzero coupling at a time. The obtained limit for B\mathcal{B}(t\touγ\gamma) is similar to the current best limit, while the limit for B\mathcal{B}(t\tocγ\gamma) is significantly tighter than previous results
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