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February 8, 2026Machines0 citationsOpen Access

A Coordinated Control Strategy for Current Zero-Crossing Distortion Suppression and Neutral-Point Potential Balance in Unidirectional Three-Level Back-to-Back Converters

HWHaitao WangZLZongwei LiuMTMuQin Tian

Key Points

  • The aim is to develop a control strategy that mitigates current zero-crossing distortion and neutral-point potential imbalance in converters.
  • Proposed a coordinated control strategy targeting current distortion and neutral-point potential issues.
  • Implemented reactive current compensation on the Vienna rectifier side to address current distortion.
  • Reconstructed the neutral-point current target function for optimal control.
  • Utilized interpolation to derive zero-sequence voltage for inverter reference.
  • Successfully eliminated current zero-crossing distortion through reactive compensation.
  • Achieved balanced neutral-point potential on the DC bus using optimal control strategies.
  • Demonstrated effectiveness on an independently developed experimental platform.

Abstract

Unidirectional multilevel back-to-back (BTB) converters are widely employed in renewable energy generation systems and in motor drives for coal mining operations. However, the current zero-crossing distortion (CZCD) on the grid side and the neutral-point potential (NPP) imbalance on the common DC bus all restrict its applicability, such as in grids with stringent low harmonic requirements and in medium to high power situations. This paper proposes a coordinated control strategy to simultaneously address these issues theoretically. The study focuses on topology comprising a Vienna rectifier structure on the grid side and a three-level NPC inverter structure on the load side. In the proposed strategy, the current distortion angle, the manifestation of CZCD, is first eliminated by reactive current compensation on the Vienna rectifier side. Furthermore, the coupling between CZCD and NPP imbalance is resolved by reconstructing the neutral-point current target function. Ultimately, the optimal zero-sequence voltage (ZSV) is obtained using an interpolation function and then injected into the three-phase reference voltages of the inverter side to balance the NPP on the DC bus. The strategy transforms the influence of the rectifier on the NPP from an unknown coupling factor into a known disturbance and enables the inverter to actively compensate for variations in the overall converter system. An experimental platform was independently developed to verify the effectiveness of the proposed control strategy.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/698828770fc35cd7a8847fa7https://doi.org/10.3390/machines14020183
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Also Consider

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  5. 5Carrier-Based Modulation Scheme Plus Neutral-Point Current Control for Balancing Neutral-Point Voltage of Three-Phase Four-Leg Three-Level Inverter Over Entire Power Factor2024