927 resultados para DC load


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Although maximum power point tracking (MPPT) is crucial in the design of a wind power generation system, the necessary control strategies should also be considered for conditions that require a power reduction, called de-loading in this paper. A coordinated control scheme for a proposed current source converter (CSC) based DC wind energy conversion system is presented in this paper. This scheme combines coordinated control of the pitch angle, a DC load dumping chopper and the DC/DC converter, to quickly achieve wind farm de-loading. MATLAB/Simulink simulations and experiments are used to validate the purpose and effectiveness of the control scheme, both at the same power level. © 2013 IEEE.

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Multipulse rectifier topologies based on autoconnections, or differential connections, are more and more applied as interface stages between the mains and power converters. These topologies mitigate many low-order current harmonics in the utility, reducing the THD (total harmonic distortion) and increasing the power factor. This paper presents a mathematical model based on phasor diagrams, that results in a single expression able to unify all differential topologies connections (Delta and Wye), for both step-up or step-down autotransformers, for 12 and 18-pulse AC-DC converters. The proposed family of converters can be designed for any relationship between the input voltage and the load voltage. An immediate application would be the retrofit, i.e. to replace a conventional rectifier with poor quality of the processed energy by the 12 or 18 pulses rectifier with Wye or Delta-differential connection. The design procedure, simple and fast, is developed and tested for a prototype rating 6 kW and 250 V on the DC load © 2010 IEEE.

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Multipulse rectifier topologies based on auto-connections or differential connections, are more and more applied as interface stages between the mains and power converters. These topologies are becoming increasingly attractive not only for robustness, but to mitigate many low order current harmonics in the utility, reducing the total harmonic distortion of the line currents (THDi) and increasing the power factor requirements. Unlike isolated connections (delta-wye, zigzag, etc.), when the differential transformer is employed, most of the energy required by the load is directly conducted through the windings. Thus, only a small fraction of the kVA is processed by the magnetic core. This feature increases the power density of the converter. This paper presents a mathematical model based on phasor diagrams, which results in a single expression able to merge all differential connections (wye and delta), for both step-up and step-down rectifiers for 12 or 18 pulses. The proposed family of converters can be designed for any relationship between the line input voltage and the DC voltage, unlike the conventional phase-shift voltage connections. An immediate application would be the retrofit, i.e. to replace a conventional rectifier with poor quality of the processed energy by the 12 or 18-pulse rectifiers with Wye or Delta-differential connections, keeping the original values for the input and load voltages. The simple and fast design procedure is developed and tested for a prototype rating 6 kW and 400 V on DC load.

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El trabajo presentado en este documento se centra en la temática de la transferencia inalámbrica de energía, concretamente en aplicaciones de campo lejano, para llevar a cabo dicho trabajo nos centraremos en el diseño, implementación y medición de una rectenna operando en la banda ISM concretamente a una frecuencia de 2.45GHz, el objetivo primordial de este trabajo será analizar que parámetros intervienen en la eficiencia de conversión en la etapa de RF-DC a fin de lograr la máxima eficiencia de conversión posible. Para llevar a cabo dicho análisis se emplearán herramientas informáticas, concretamente se hará uso del software AWR Microwave Office, a través del cual se realizarán simulaciones SourcePull a fin de determinar la impedancia óptima de entrada que se le debe presentar a la etapa rectificadora RF-DC para conseguir la máxima eficiencia de conversión, una vez realizadas dichas pruebas se implementará físicamente un circuito rectenna a través del cual realizar medidas de SourcePull mediante un Wide Matching Range Slide Screw Tuner de MAURY MICROWAVE para cotejar las posibles diferencias con los resultados obtenidos en las simulaciones. Tras la fase de pruebas SourcePull se extrapolará una red de entrada en base a los datos obtenidos en las mediciones anteriores y se diseñará y fabricará un circuito rectenna con máxima eficiencia de conversión para un conjunto de valores de potencia de entrada de RF y carga de DC, tras lo cual se analizará la eficiencia del circuito diseñado para diferentes valores de potencia de RF de entrada y carga de DC. Como elemento rectificador emplearemos en nuestro trabajo el diodo Schottky HSMS-2820, los diodos Schottky se caracterizan por tener tiempos de conmutación relativamente bajos y pérdidas en directa reducidas los cual será fundamental a la hora de trabajar con niveles reducidos de potencia de RF de entrada, para implementar el circuito se empleará un substrato FR4 con espesor de 0.8mm para disminuir en la mayor medida posible las pérdidas introducidas por el dieléctrico, se analizarán diferentes posibilidades a la hora de implementar el filtro de RF a la salida del diodo rectificador y finalmente se optará por el empleo de un stub radial ya que será este el que mejor ancho de banda nos proporcione. Los resultados simulados se compararán con los resultados medidos sobre el circuito rectenna para determinar la similitud entre ambos. ABSTRACT. The work presented in this paper focuses on the issue of wireless transfer of energy, particularly applied to far-field applications, to carry out this work we focus on the design, implementation and measurement of a rectenna operating in the ISM band specifically at a frequency of 2.45GHz, the primary objective of this study is to analyze any parameter involved in the RF-DC conversion efficiency in order to achieve the maximum conversion efficiency as possible. Computer analysis tools will be used, particularly AWR Microwave Office software, in order to carry out SourcePull simulations to determine the optimal input impedance which must be presented to the rectifier stage for maximum conversion efficiency, once obtained, a rectenna circuit will be implemented to compute SourcePull measurements, and finally simulated results will be compared to measured results. Once obtained the result, an input network impedance is extrapolated based on data from previous measurements to design and implement a rectenna circuit with high conversion efficiency for a set of RF input power and DC load values , after that, the designed circuit efficiency will be analyzed for different values of RF input power and DC load. In this work a HSMS-2820 Schottky diode will be used as the rectifier , Schottky diodes are characterized by relatively low switching times and reduced direct losses, that properties will be essential when working with low RF input power levels , to implement the circuit a FR4 substrate with 0.8mm thickness is used to reduce as much as possible the dielectric losses, different possibilities to implement the RF filter to the output of the rectifier diode will be analyzed, finally we will opt for the use of a radial stub as this will provide the best bandwidth possible. The simulated results are compared with the results measured on the rectenna circuit to determine the similarity between them.

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In the first part some information and characterisation about an AC distribution network that feeds traction substations and their possible influences on the DC traction load flow are presented. Those influences are investigated and mathematically modelled. To corroborate the mathematical model, an example is presented and their results are confronted with real measurements.

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This work presents a behavioral-analytical hybrid loss model for a buck converter. The model has been designed for a wide operating frequency range up to 4MHz and a low power range (below 20W). It is focused on the switching losses obtained in the power MOSFETs. Main advantages of the model are the fast calculation time and a good accuracy. It has been validated by simulation and experimentally with one Ga, power transistor and two Si MOSFETs. Results show good agreement between measurements and the model.

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This work presents a behavioral-analytical hybrid loss model for a buck converter. The model has been designed for a wide operating frequency range up to 4MHz and a low power range (below 20W). It is focused on the switching losses obtained in the power MOSFETs. Main advantages of the model are the fast calculation time (below 8.5 seconds) and a good accuracy, which makes this model suitable for the optimization process of the losses in the design of a converter. It has been validated by simulation and experimentally with one GaN power transistor and three Si MOSFETs. Results show good agreement between measurements and the model

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The intensive use of semiconductor devices enabled the development of a repetitive high-voltage pulse-generator topology from the dc voltage-multiplier (VM) concept. The proposed circuit is based on an odd VM-type circuit, where a number of dc capacitors share a common connection with different voltage ratings in each one, and the output voltage comes from a single capacitor. Standard VM rectifier and coupling diodes are used for charging the energy-storing capacitors, from an ac power supply, and two additional on/off semiconductors in each stage, to switch from the typical charging VM mode to a pulse mode with the dc energy-storing capacitors connected in series with the load. Results from a 2-kV experimental prototype with three stages, delivering a 10-mu s pulse with a 5-kHz repetition rate into a resistive load, are discussed. Additionally, the proposed circuit is compared against the solid-state Marx generator topology for the same peak input and output voltages.

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A newly developed solid-state repetitive high-voltage (HV) pulse modulator topology created from the mature concept of the d.c. voltage multiplier (VM) is described. The proposed circuit is based in a voltage multiplier type circuit, where a number of d.c. capacitors share a common connection with different voltage rating in each one. Hence, besides the standard VM rectifier and coupling diodes, two solid-state on/off switches are used, in each stage, to switch from the typical charging VM mode to a pulse mode with the d.c. capacitors connected in series with the load. Due to the on/off semiconductor configuration, in half-bridge structures, the maximum voltage blocked by each one is the d.c. capacitor voltage in each stage. A 2 kV prototype is described and the results are compared with PSPICE simulations.

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A DC-DC step-up micro power converter for solar energy harvesting applications is presented. The circuit is based on a switched-capacitorvoltage tripler architecture with MOSFET capacitors, which results in an, area approximately eight times smaller than using MiM capacitors for the 0.131mu m CMOS technology. In order to compensate for the loss of efficiency, due to the larger parasitic capacitances, a charge reutilization scheme is employed. The circuit is self-clocked, using a phase controller designed specifically to work with an amorphous silicon solar cell, in order to obtain themaximum available power from the cell. This will be done by tracking its maximum power point (MPPT) using the fractional open circuit voltage method. Electrical simulations of the circuit, together with an equivalent electrical model of an amorphous silicon solar cell, show that the circuit can deliver apower of 1132 mu W to the load, corresponding to a maximum efficiency of 66.81%.

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In the energy management of the isolated operation of small power system, the economic scheduling of the generation units is a crucial problem. Applying right timing can maximize the performance of the supply. The optimal operation of a wind turbine, a solar unit, a fuel cell and a storage battery is searched by a mixed-integer linear programming implemented in General Algebraic Modeling Systems (GAMS). A Virtual Power Producer (VPP) can optimal operate the generation units, assured the good functioning of equipment, including the maintenance, operation cost and the generation measurement and control. A central control at system allows a VPP to manage the optimal generation and their load control. The application of methodology to a real case study in Budapest Tech, demonstrates the effectiveness of this method to solve the optimal isolated dispatch of the DC micro-grid renewable energy park. The problem has been converged in 0.09 s and 30 iterations.

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This paper presents a micro power light energy harvesting system for indoor environments. Light energy is collected by amorphous silicon photovoltaic (a-Si:H PV) cells, processed by a switched capacitor (SC) voltage doubler circuit with maximum power point tracking (MPPT), and finally stored in a large capacitor. The MPPT fractional open circuit voltage (V-OC) technique is implemented by an asynchronous state machine (ASM) that creates and dynamically adjusts the clock frequency of the step-up SC circuit, matching the input impedance of the SC circuit to the maximum power point condition of the PV cells. The ASM has a separate local power supply to make it robust against load variations. In order to reduce the area occupied by the SC circuit, while maintaining an acceptable efficiency value, the SC circuit uses MOSFET capacitors with a charge sharing scheme for the bottom plate parasitic capacitors. The circuit occupies an area of 0.31 mm(2) in a 130 nm CMOS technology. The system was designed in order to work under realistic indoor light intensities. Experimental results show that the proposed system, using PV cells with an area of 14 cm(2), is capable of starting-up from a 0 V condition, with an irradiance of only 0.32 W/m(2). After starting-up, the system requires an irradiance of only 0.18 W/m(2) (18 mu W/cm(2)) to remain operating. The ASM circuit can operate correctly using a local power supply voltage of 453 mV, dissipating only 0.085 mu W. These values are, to the best of the authors' knowledge, the lowest reported in the literature. The maximum efficiency of the SC converter is 70.3 % for an input power of 48 mu W, which is comparable with reported values from circuits operating at similar power levels.

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This paper proposes a methodology to increase the probability of delivering power to any load point through the identification of new investments. The methodology uses a fuzzy set approach to model the uncertainty of outage parameters, load and generation. A DC fuzzy multicriteria optimization model considering the Pareto front and based on mixed integer non-linear optimization programming is developed in order to identify the adequate investments in distribution networks components which allow increasing the probability of delivering power to all customers in the distribution network at the minimum possible cost for the system operator, while minimizing the non supplied energy cost. To illustrate the application of the proposed methodology, the paper includes a case study which considers an 33 bus distribution network.