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    Power spectrum and FFT-based signal analysis in turbulence measurements

    , Article World Academy of Science, Engineering and Technology ; Volume 40 , 2009 , Pages 275-278 ; 2010376X (ISSN) Dehghan Manshadi, M ; Tamadonfar, P ; Soltani, M. R ; Ghorbanian, K ; Masdari, M ; Sharif University of Technology
    2009
    Abstract
    In this research, the employment of an innovative but simple and cost effective method for turbulent reduction in a low speed wind tunnel is investigated and the effect of this turbulence reduction on the Power Spectrum and FFT-Based signals that obtained from Hot-wire Anemometry is studied. These terms represents the amount of power contained in the signals. Several situations are studied in this paper. One of these situations is when there are four screens in the settling chamber of the wind tunnel and after that by adding the trip strip in the contraction region of the wind tunnel the tests were repeated. In the next stage, three screens were removed from the settling chamber of the wind... 

    Modified Coulomb potential of QED in a strong magnetic field

    , Article 25th International Symposium on Lattice Field Theory, LATTICE 2007, 30 July 2007 through 4 August 2007 ; Volume 42 , 2007 ; 18248039 (ISSN) Sadooghi, N ; Sharif University of Technology
    Sissa Medialab Srl  2007
    Abstract
    The static Coulomb potential of Quantum Electrodynamics is calculated in the presence of a strong magnetic field by computing perturbatively the vacuum expectation value of the corresponding Wilson loop in the lowest Landau level (LLL) approximation. In the LLL, two different regimes of dynamical mass, md yn., can be distinguished. These two regimes are |q2 | ≪ m2 d yn. ≪ |eB| and m2 d yn. ≪ |q2 | ≪ |eB|, where q is the longitudinal components of the momentum relative to the external magnetic field B. As it turns out, the potential in the first regime, |q2 | ≪ m2 d yn. ≪ |eB|, has the general form of a modfied Coulomb potential V1(R, θ ) = −α R A1(α, θ ) −γ A2 R (α 2 ,θ ) + γ 2 A3 (α,θ ) ,...