A Hybrid Boundary Conduction Modulation for a Single-Phase H-bridge Inverter to Alleviate Zero-Crossing Distortion and Enable Reactive Power Capability

2020 ◽  
Vol 35 (8) ◽  
pp. 8311-8323
Author(s):  
Hao Yin ◽  
Tianchen Lang ◽  
Xiang Li ◽  
Shixiang Du ◽  
Haibing Hu
2017 ◽  
Vol 64 (9) ◽  
pp. 6989-6999 ◽  
Author(s):  
Tan Kheng Suan Freddy ◽  
June-Hee Lee ◽  
Hyun-Cheol Moon ◽  
Kyo-Beum Lee ◽  
Nasrudin Abd Rahim

2020 ◽  
Vol 2 (2) ◽  
Author(s):  
A. A. Mukaila ◽  
I. Olugbemi ◽  
E. E. Sule

It is known that the power consumption and efficiency of an equipment owes directly to its power factor. The lower the power factor of the equipment the more the energy consumption of such equipment and vice-versa. Hence, the need to develop an equipment to measure accurately the operating power factor of domestic and industrial equipment and appliances [1]. The operating principle of this power factor meter design is based on Zero Crossing detection principle, the principle is utilized using Arduino Nano, instrument transformers, LM324 operational amplifier, generic resistor, generic XOR Gate 7488 and 2X16LCD. The input current and voltage signal is taken by the transformers and sent to the op- amp which carries out the zero crossing detection in order to get the time difference after which the microcontroller does the calculation to determine the power factor and the deficit reactive power which is then displayed on an interface [2].


2020 ◽  
Vol 10 (6) ◽  
pp. 6515-6520
Author(s):  
B. M. Rija ◽  
M. K. Hussain ◽  
A. M. Vural

Power Factor (PF) correction is a major power quality function in electrical distribution systems. This paper proposes a low-cost Automatic Power Factor Correction (APFC) system to increase the PF of both lagging and leading single-phase loads. The Arduino Mega 2560 microcontroller was used to calculate the PF and activate the relays that connect the capacitor/inductor banks to the load in parallel. Thus, the required capacitive or inductive reactive power was produced by the APFC system by automatically connecting the capacitor/inductor banks to the load in parallel. The APFC system can also measure and display many electrical parameters of the load such as the rms voltage, the rms current, PF, and the real, reactive, and apparent power on an LCD display. Two zero-crossing detector circuits are used to find the phase angle difference between voltage and current waveforms of the load. The measurement ability of the APFC system was tested for resistive, inductive, and capacitive loads with two different sizes. The measurement results were compared with the measurements of a commercial digital power meter and a measurement error of less than 8.0% was observed. The PF correction ability of the APFC system was verified for inductive and capacitive loads with two different sizes. The experiments show that the PF increased to close to unity for both lagging and leading loads.


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