1,973 research outputs found

    Full- & Reduced-Order State-Space Modeling of Wind Turbine Systems with Permanent-Magnet Synchronous Generator

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    Wind energy is an integral part of nowadays energy supply and one of the fastest growing sources of electricity in the world today. Accurate models for wind energy conversion systems (WECSs) are of key interest for the analysis and control design of present and future energy systems. Existing control-oriented WECSs models are subject to unstructured simplifications, which have not been discussed in literature so far. Thus, this technical note presents are thorough derivation of a physical state-space model for permanent magnet synchronous generator WECSs. The physical model considers all dynamic effects that significantly influence the system's power output, including the switching of the power electronics. Alternatively, the model is formulated in the (a,b,c)(a,b,c)- and (d,q)(d,q)-reference frame. Secondly, a complete control and operation management system for the wind regimes II and III and the transition between the regimes is presented. The control takes practical effects such as input saturation and integral windup into account. Thirdly, by a structured model reduction procedure, two state-space models of WECS with reduced complexity are derived: a non-switching model and a non-switching reduced-order model. The validity of the models is illustrated and compared through a numerical simulation study.Comment: 23 pages, 11 figure

    Superconducting Gap and Pseudogap in Bi-2212

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    We present results of Raman scattering experiments in differently doped Bi-2212 single crystals. Below Tc the spectra show pair-breaking features in the whole doping range. The low frequency power laws confirm the existence of a dx2y2d_{x^2-y^2}-wave order parameter. In the normal state between Tc and T* = 200K we find evidence for a pseudogap in B2g symmetry. Upon doping its effect on the spectra decreases while its energy scale appears to be unchanged.Comment: 2 pages, 1 EPS figure; LT22 Proceedings to appear in Physica

    Signatures of nematic quantum critical fluctuations in the Raman spectra of lightly doped cuprates

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    We consider the lightly doped cuprates Y0.97_{0.97}Ca0.03_{0.03}BaCuO6.05_{6.05} and La2x_{2-x}Srx_xCuO4_4 (with x=0.02x=0.02,0.04), where the presence of a fluctuating nematic state has often been proposed as a precursor of the stripe (or, more generically, charge-density wave) phase, which sets in at higher doping. We phenomenologically assume a quantum critical character for the longitudinal and transverse nematic, and for the charge-ordering fluctuations, and investigate the effects of these fluctuations in Raman spectra. We find that the longitudinal nematic fluctuations peaked at zero transferred momentum account well for the anomalous Raman absorption observed in these systems in the B2gB_{2g} channel, while the absence of such effect in the B1gB_{1g} channel may be due to the overall suppression of Raman response at low frequencies, associated with the pseudogap. While in Y0.97_{0.97}Ca0.03_{0.03}BaCuO6.05_{6.05} the low-frequency lineshape is fully accounted by longitudinal nematic collective modes alone, in La2x_{2-x}Srx_xCuO4_4 also charge-ordering modes with finite characteristic wavevector are needed to reproduce the shoulders observed in the Raman response. This different involvement of the nearly critical modes in the two materials suggests a different evolution of the nematic state at very low doping into the nearly charge-ordered state at higher doping.Comment: 12 pages with 10 figures, to appear in Phys. Rev. B 201

    First-Order Type Effects in YBa2_2Cu3_3O6+x_{6+x} at the Onset of Superconductivity

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    We present results of Raman scattering experiments on tetragonal (Y1yCay)Ba2Cu3O6+x{\rm (Y_{1-y}Ca_{y})Ba_{2}Cu_{3}O_{6+x}} for doping levels p(x,y)p(x,y) between 0 and 0.07 holes/CuO2_2. Below the onset of superconductivity at psc10.06p_{\rm sc1} \approx 0.06, we find evidence of a diagonal superstructure. At psc1p_{\rm sc1}, lattice and electron dynamics change discontinuously with the charge and spin properties being renormalized at all energy scales. The results indicate that charge ordering is intimately related to the transition at psc1p_{\rm sc1} and that the maximal transition temperature to superconductivity at optimal doping TcmaxT_{c}^{\rm max} depends on the type of ordering at p>psc1p>p_{\rm sc1}.Comment: 4 pages, 4 figure

    Instantaneous conduction and switching losses in two-level voltage source inverters

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    A mathematical model is derived which allows to compute instantaneously the conduction and switching losses in two-level voltage source inverters (2L-VSIs) regardless of the employed modulation scheme. The model is based on the use of switching vectors applied to the considered VSI, taking into account the instantaneous conduction and switching losses of the semiconductor devices. The advantages of this method are, (i) it can be extended to any type of VSI and any modulation scheme, (ii) it can be applied to analyze the power losses of VSIs during any desired period, and (iii) it can be easily implemented in any kind of the simulation software (e.g. Matlab/Simulink)

    Nernst effect in the electron-doped cuprates

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    We calculate the normal state Nernst signal in the cuprates resulting from a reconstruction of the Fermi surface due to spin density wave order. An order parameter consistent with the reconstruction of the Fermi surface detected in electron-doped materials is shown to sharply enhance the Nernst signal close to optimal doping. Within a semiclassical treatment, the obtained magnitude and position of the enhanced Nernst signal agrees with Nernst measurements in electron-doped cuprates.Comment: 9 pages, 5 figures, revised version as accepted by Phys. Rev. B, changed several citations and reference
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