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Theoretical Grid-Forming Extreme of Inverters

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arxiv 2504.20367 v3 pith:5G223SXW submitted 2025-04-29 eess.SY cs.SY

classification eess.SYcs.SY
keywords grid-formingtheoreticaldc-sideinvertersabilityac-sidecircuitcontrol
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What are the theoretical and physical limits of a grid-forming inverter? This letter proposes that the extreme grid-forming ability of inverters is limited by their dc-side, ac-side, circuit topology dynamics, but not control. While many papers focus on how to improve grid-forming inverters stability, power sharing, inertia emulation, fault response, few, if any, formally define the fundamental theoretical limits or extremes of grid-forming behavior. It seems that the grid-forming can be improved endlessly. No physical system can support a grid indefinitely without limitations, especially under increasing levels of disturbance or uncertainty. Therefore, this boundary is explicitly shown by a mathematical expression in this letter. Consequently, the results show that relatively low dc-side voltage and high active power injection could damage the grid-forming ability. Poor consideration of dc-side, ac-side, and circuit topology dynamics in real practice will cause jeopardizing oscillation even by the theoretical best grid-forming control strategy.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Recurrent Residual Quantization: A Progressive Multi-Precision Representation for LLMs

    cs.LG 2026-08 conditional novelty 5.0 of 10

    A 2-bit base plus three 2-bit residual stages gives one checkpoint that runs at 2, 4, 6, or 8 bits, matching a prior multi-precision baseline at 6-8 bits in most tested models.

  2. Symmetric Sliding-Mode Control of Grid-Forming Inverters With Precision Region Under AC and DC Sides Varying

    eess.SY 2025-06 reject novelty 5.0 of 10

    A symmetric sliding-mode controller with an explicit voltage precision region and a band-pass asymmetry compensator is proposed for grid-forming inverters under simultaneous DC and AC variations.

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