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February 13, 2026Nature Communications5 citationsOpen Access

Simulating fluid vortex interactions on a superconducting quantum processor

ZWZiteng WangJZJiarun ZhongKWKe Wang

Key Points

  • The aim is to simulate fluid vortex interactions using a quantum mechanical framework that overcomes the limitations of traditional methods.
  • Reformulated the Navier-Stokes equations within a quantum framework
  • Constructed an effective Hamiltonian for the vortex system
  • Implemented a spatiotemporal evolution circuit for prolonged dynamics
  • Utilized eight superconducting qubits with high gate fidelities
  • Successfully reproduced natural vortex interactions
  • Established a framework compatible with quantum system unitary evolution
  • Demonstrated viability of quantum resources for simulating complex fluid dynamics

Abstract

Vortex interactions are commonly observed in atmospheric turbulence, plasma dynamics, and collective behaviors in biological systems. However, accurately simulating these complex interactions is highly challenging due to the need to capture fine-scale details over extended timescales, which places computational burdens on traditional methods. In this study, we introduce a quantum vortex method, reformulating the Navier-Stokes (NS) equations within a quantum mechanical framework to enable the simulation of multi-vortex interactions on a quantum computer. We construct the effective Hamiltonian for the vortex system and implement a spatiotemporal evolution circuit to simulate its dynamics over prolonged periods. By leveraging eight qubits on a superconducting quantum processor with gate fidelities of 99.97% for single-qubit gates and 99.76% for two-qubit gates, we successfully reproduce natural vortex interactions. Overall, we establish a framework that reformulates vortex dynamics into a normalized wavefunction representation compatible with quantum system unitary evolution, combined with the designed spatiotemporal encoding scheme, providing a concrete pathway toward leveraging quantum resources in fluid systems.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/698ebedd85a1ff6a9301619ehttps://doi.org/10.1038/s41467-026-69168-8
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