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Parametric variation analysis of CUK converter for constant voltage applications Rheesabh Dwivedi 1, Vinay Kumar Dwivedi 2, Rahul Sharma 3 • Assistant Professor, Department of Electrical Engineering, Teerthanker Mahaveer University, Moradabad, Uttar Pradesh, India • Assistant Professor, Department of Electrical Engineering, Teerthanker Mahaveer University, Moradabad, Uttar Pradesh, India • Lecturer, Department of Electrical Engineering, Teerthanker Mahaveer University, Moradabad, Uttar Pradesh, India Related article at, Visit for more related articles at.
To illustrate the factors that play a role in a buck converter’s efficiency, the Table below lists the equations used to estimate the most significant power losses. The parameters to minimize for high efficiency can be quickly determined utilizing these equations. The dominant losses in a buck converter design depend on the specific operating conditions of the circuit, and hence, it is important to perform the calculations below for your application. You can click on the table to enlarge it for easy viewing. Efficiency Parameters From these equations, the following parameters can be used to improve the efficiency of a buck converter.
A Synchronous Cuk Converter is used for examine the performance of solar PV system. Cuk converter is a chopper which reduces losses with MOSFET the conduction losses are reduced andswitching losses are reduced. Key Words: Cuk converter, Synchronous cuk converter, photovoltaic system, MOSFET, auxiliary and main circuit.
Keep in mind that typically the output voltage and current are fixed by the load requirement. Parameters to Minimize for High Efficiency Switching Frequency (f SW) Decreasing the switching frequency will decrease the losses in the MOSFETs, rectifier and the inductor core. Practical considerations usually limit the switching frequency. As the switching frequency decreases, the inductance and capacitance must increase in order to. Related Articles • • • maintain an acceptable amount of inductor current ripple and output voltage ripple. As a result, the physical size of the inductors and capacitors will increase, and may not be acceptable in some applications.
At low switching frequencies, the conduction losses will dominate and little is gained by decreasing the switching frequency any further. In the majority of point-of-load applications, an acceptable lower frequency range is approximately 150 to 350 kHz. Switching frequencies much greater than 350 kHz are possible while maintaining good efficiency as long as care is taken in selecting MOSFETs. Today’s MOSFETs allow for reasonable efficiencies at switching frequencies reaching 1.5 MHz without a substantial cost penalty.
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High-Side MOSFET Both conduction and switching losses can be significant in the high-side MOSFET. Conduction losses are proportional to the R DS(ON), whereas switching losses are proportional to the gate charge, Q G, of the MOSFET. Unfortunately, for a given MOSFET fabrication process, low R DS(ON) devices will tend to have a higher gate charge and vice versa. Deciding which MOSFET parameter is best to optimize depends on the duty cycle and switching frequency. For low duty cycles (.