huang-mhd-turbulence

Analyze MHD turbulence simulations against Parker Solar Probe and Solar Orbiter observations.

1|Updated Apr 25, 2026
One-click install
npx skills add https://github.com/huangzesen/zesen-huang --skill huang-mhd-turbulence
Or copy as Structured Prompt for Agent▼
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Skill: huang-mhd-turbulence
Source: https://github.com/huangzesen/zesen-huang/tree/main/huang-zesen/huang-mhd-turbulence
Command: npx skills add https://github.com/huangzesen/zesen-huang --skill huang-mhd-turbulence

SYSTEM DOCUMENTATION & REQUIREMENTS

💡 This Skill includes scripts (resource) and references (resource) components.

What problem does it solve?

This Skill provides in-depth analysis and insights into MHD turbulence in the solar wind, leveraging Zesen Huang's research findings and methodologies.

Core Features & Use Cases

  • MHD Turbulence Theory: Offers comprehensive coverage of MHD turbulence theory, including the expanding-box model, residual energy, intermittency, and anisotropic scaling.
  • Simulation Analysis: Delivers detailed analysis of simulations and their comparison with spacecraft observations from Parker Solar Probe and Solar Orbiter.
  • Research Workflow: Guides users through the process of identifying research tensions, running simulations, and comparing synthetic observables with data.

Quick Start

Load the huang-mhd-turbulence skill and explore the expanding-box model and its implications for MHD turbulence in the solar wind.

Frequently Asked Questions about huang-mhd-turbulence

High-intent search queries and answers about installing and using this skill.

FAQPage Schema
What is the expanding-box model in MHD turbulence analysis?▼

The expanding-box model is a simulation framework for MHD turbulence that accounts for the spherical expansion of the solar wind. It helps analyze anisotropic scaling and residual energy evolution as plasma propagates outward.

How do I compare MHD turbulence simulations with Parker Solar Probe observations?▼

You can compare MHD turbulence simulations with Parker Solar Probe observations by generating synthetic observables from expanding-box model outputs and matching them against spacecraft data for intermittency and anisotropic scaling.

Do I need prior knowledge of MHD turbulence theory to use this analysis workflow?▼

Yes, you need prior knowledge of MHD turbulence theory and simulation techniques. The workflow focuses on research-level analysis of residual energy, intermittency, and anisotropic scaling rather than introductory concepts.

What is residual energy in solar wind MHD turbulence?▼

Residual energy in solar wind MHD turbulence is the difference between kinetic and magnetic energy fluctuations. Analyzing it with the expanding-box model reveals how energy partition evolves during solar wind expansion.

How does intermittency affect anisotropic scaling in solar wind turbulence?▼

Intermittency causes localized turbulent bursts that disrupt self-similar scaling, making anisotropic scaling in solar wind MHD turbulence dependent on scale and direction. The expanding-box model captures these effects for comparison with Solar Orbiter data.