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March 18, 2026Journal of the American Helicopter Society0 citations

Integration and Analytical Linearization of Viscous Terms in State-Space Vortex Particle Methods

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HHHussien A. A. H. HussienUSUmberto Saetti

Key Points

  • The central aim is to enhance vortex particle methods by incorporating viscous terms for better modeling of rotor wake dynamics.
  • Incorporated a panel method for blade modeling and a viscous vortex particle method for wake representation.
  • Formulated the dynamics as a system of ordinary differential equations resulting in a nonlinear time-periodic system.
  • Applied two linearization techniques: finite differencing and analytical linearization.
  • Utilized harmonic decomposition to approximate the linearized system as a time-invariant model.
  • Validated the methodology against experimental data and CFD using MATLAB®.
  • Linearized models effectively capture wake dynamics, especially under low-mid frequency forces.
  • Analytical linearization method significantly reduces computational costs by O(n2) compared to finite differencing.
  • Validation showed accuracy in both time and frequency domains against the nonlinear system.

Abstract

This study extends previous work on analytical linearization of state-space vortex particle methods by incorporating viscous terms. The current framework integrates a panel method for modeling blade surfaces and near-wake, and a viscous vortex particle method (VVPM) to model the far-wake. The code is formulated as a system of ordinary differential equations, resulting in a nonlinear time-periodic (NLTP) system in first-order form. The NLTP dynamics are linearized to yield a linear time-periodic (LTP) representation using two approaches: finite differencing and a novel analytical linearization technique. Harmonic decomposition is then applied to approximate the LTP system as a higher order linear time-invariant model, where the LTP system coefficients become states of the time-invariant dynamics, facilitating time-invariant system analysis techniques. The proposed methodology is implemented in MATLAB® and applied to a generic utility helicopter rotor blade, with validation performed against experimental data and CFD. A study was conducted to assess the impact of including viscous effects on the wake structure when modeling ground effect. The accuracy of the linearized models is assessed through comparisons with the nonlinear system in both time and frequency domains. Results indicate that the linearized models effectively capture wake dynamics, particularly for low-mid frequency forcing inputs. Notably, the analytical linearization approach significantly reduces computational cost compared to finite-difference-based methods, achieving an efficiency improvement of O(n2), where n represents the number of system states. This establishes analytical linearization of VVPM as a viable tool for advancing rotorcraft flight dynamics modeling by balancing fidelity with computational efficiency.

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Cite This Study

Hussien et al. (2026) studied this question.

synapsesocial.com/papers/69ba44154e9516ffd37a5fcahttps://doi.org/10.4050/jahs.71.032005
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Contributions to Vortex Particle Methods for the Computation of Three-Dimensional Incompressible Unsteady Flows1993 · 347 citations
  2. 2Modeling Rotor Wake Dynamics with Viscous Vortex Particle Method2009 · 91 citations
  3. 3Finite‐State Induced‐Flow Model for Rotors in Hover and Forward Flight1989 · 175 citations
  4. 4State-Space Representation of Vortex Wakes by the Method of Lines2005 · 20 citations
  5. 5Technical Note: Validation of Cross-Coupling Modeling Improvements for UH-60 Flight Mechanics Simulations2002 · 14 citations