A 30-sided polygonal space vector structure with modular low voltage capacitor fed cascaded H bridge for IM drive

Author(s):  
Rakesh R. ◽  
Apurv Kumar Yadav ◽  
Krishna Raj R. ◽  
K. Gopakumar ◽  
L. Umanand
2018 ◽  
Vol 33 (9) ◽  
pp. 7349-7358 ◽  
Author(s):  
Apurv Kumar Yadav ◽  
Mathews Boby ◽  
Sumit Kumar Pramanick ◽  
K. Gopakumar ◽  
Loganathan Umanand ◽  
...  

2021 ◽  
Author(s):  
Gopakumar K

<div>Abstract—In this work, a multi-level 42-sided polygonal space vector structure (SVS) for suppression of lower order harmonics for Open-End Induction Motor(OEIM) drive applications is proposed. The proposed power circuit topology consists of two inverters feeding an Open-End Induction Motor from either side. The main inverter fed with a single DC link providing active power for motor operation is switched at low switching frequency. The secondary</div><div>inverter fed with a capacitive supply is switched at high frequency to suppress lower order harmonics upto 39th order, up to the base speed of operation allowing maximum utilization of the DC link. The advantages of lower order harmonic suppression in motor phase voltage, for polygonal space vector structures are combined with multi-level inverter topology. This results in lower switching losses in low frequency switching main inverter and low voltage secondary inverter. Use of a single DC link facilitates four quadrant operation of the inverter. The proposed scheme is validated for steady state and dynamic performance by experimental results.</div>


2021 ◽  
Author(s):  
Jiacheng Wang

High-power multimodular matrix converters (MMMCs) comprising multiple threephase to single-phase matrix converter modules have emerged as a viable topology candidate for medium-voltage adjustable speed drives. As a combination of direct power conversion and cascaded multilevel structure, the MMMCs inherit features such as elimination of dc capacitors, four quadrant operation capability, employment of lowvoltage devices only, and superior output waveform quality under a limited device switching frequency. Due to their particular topological structure, modulation scheme design for the MMMCs is not straightforward and complicated. The presented work is mainly focused on development of suitable modulation schemes for the MMMCs. Several viable schemes as well as their corresponding switching patterns are proposed and verified by both simulation and experimental results. In order for the MMMCs to produce sinusoidal waveforms at both input and output ac terminals, a direct transfer matrix based modulation scheme is presented. It is revealed that a suitable modulation strategy for the MMMCs should aim at fabricating the total input current on the primary side of the isolation transformer. For topologies with more than two modules in cascade on each output phase, switching period displacement is necessary among modules to generate multilevel output waveforms. An indirect space vector based modulation scheme for the MMMCs is developed. With a few presumptions satisfied and viewed from a certain perspective, the MMMCs can still be modeled indirectly and be divided into fictitious rectifier and inverter stages. Therefore, space vector modulation methods can be independently applied to both stages for duty ratio calculation, before the results are converted and combined for determining per-phase output pulses. A new output switching pattern providing improved harmonic performance is also proposed. A novel modulation scheme based on diode rectifier emulation and phase-shifted sinusoidal pulse-width modulation is proposed. The method sacrifices input power factor adjustment, but enables the use of an indirect module construction leading to significantly reduced device count and complexity. Strategy for reducing additional switchings caused by input voltage ripples is also implemented and explained. In addition to simulation verifications, all the proposed schemes are further tested experimentally on a low-voltage prototype built in the lab. Details about the prototype implementation are introduced.


2020 ◽  
Vol 67 (1) ◽  
pp. 126-135
Author(s):  
Mohammed Imthias ◽  
Krishna Raj R. ◽  
Apurv Kumar Yadav ◽  
K. Gopakumar ◽  
L. Umanand ◽  
...  

2019 ◽  
Vol 34 (10) ◽  
pp. 9906-9915 ◽  
Author(s):  
Krishna Raj R ◽  
K. Gopakumar ◽  
Apurv Kumar Yadav ◽  
L. Umanand ◽  
Mariusz Malinowski ◽  
...  

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