%global _empty_manifest_terminate_build 0 Name: python-AeroSandbox Version: 4.0.7 Release: 1 Summary: AeroSandbox is a Python package for design optimization of engineered systems such as aircraft. License: MIT License URL: https://peterdsharpe.github.io/AeroSandbox/ Source0: https://mirrors.nju.edu.cn/pypi/web/packages/cc/51/511690f9b6a1b548c174fd1e298d8dec76ee6512c8298c4ad2882d83dba9/AeroSandbox-4.0.7.tar.gz BuildArch: noarch Requires: python3-numpy Requires: python3-scipy Requires: python3-casadi Requires: python3-pandas Requires: python3-matplotlib Requires: python3-seaborn Requires: python3-tqdm Requires: python3-sortedcontainers Requires: python3-sphinx Requires: python3-furo Requires: python3-sphinx-autoapi Requires: python3-plotly Requires: python3-pyvista Requires: python3-ipyvtklink Requires: python3-trimesh Requires: python3-sympy Requires: python3-cadquery Requires: python3-pytest Requires: python3-nbval %description ### What can I do with AeroSandbox? Use AeroSandbox to design and optimize entire aircraft:
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Feather (an ultra-lightweight 1-meter-class RC motor glider)
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SEAWAY-Mini (a solar-electric, 13' wingspan seaplane)
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Dawn (later renamed SACOS) in first flight, Fall 2022 (Thanks to so, so many wonderful people!)
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Exploring how big a solar airplane needs to be to fly, as a function of seasonality and latitude |
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VLM simulation of a glider, aileron deflections of +-30°
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Aerodynamic shape optimization of a wing planform, using an arbitrary objective and constraints
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Structural optimization of a composite tube spar
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Electric motor analysis for propeller matching
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Tools to analyze unconventional propulsion (e.g., LH2)
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Detailed weights estimation for aircraft ranging from micro-UAVs to airliners
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Other conceptual design tools (AVL, XFLR5, XFoil, ASWING, MSES, etc.)
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CAD tools via STEP export (SolidWorks, Fusion 360, etc.) (STL, OBJ, etc. supported too)
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User-provided models + code (for custom aerodynamics, structures, propulsion, or anything else - e.g., for optimizing flight through a probabilistic wind field, shown below)
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Optimize the 2D Rosenbrock function
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Feather (an ultra-lightweight 1-meter-class RC motor glider)
|
SEAWAY-Mini (a solar-electric, 13' wingspan seaplane)
|
|
Dawn (later renamed SACOS) in first flight, Fall 2022 (Thanks to so, so many wonderful people!)
|
|
Exploring how big a solar airplane needs to be to fly, as a function of seasonality and latitude |
|
|
VLM simulation of a glider, aileron deflections of +-30°
|
Aerodynamic shape optimization of a wing planform, using an arbitrary objective and constraints
|
|
Structural optimization of a composite tube spar
|
Electric motor analysis for propeller matching
|
|
Tools to analyze unconventional propulsion (e.g., LH2)
|
Detailed weights estimation for aircraft ranging from micro-UAVs to airliners
|
|
Other conceptual design tools (AVL, XFLR5, XFoil, ASWING, MSES, etc.)
|
CAD tools via STEP export (SolidWorks, Fusion 360, etc.) (STL, OBJ, etc. supported too)
|
User-provided models + code (for custom aerodynamics, structures, propulsion, or anything else - e.g., for optimizing flight through a probabilistic wind field, shown below)
|
|
Optimize the 2D Rosenbrock function
|
|
|
Feather (an ultra-lightweight 1-meter-class RC motor glider)
|
SEAWAY-Mini (a solar-electric, 13' wingspan seaplane)
|
|
Dawn (later renamed SACOS) in first flight, Fall 2022 (Thanks to so, so many wonderful people!)
|
|
Exploring how big a solar airplane needs to be to fly, as a function of seasonality and latitude |
|
|
VLM simulation of a glider, aileron deflections of +-30°
|
Aerodynamic shape optimization of a wing planform, using an arbitrary objective and constraints
|
|
Structural optimization of a composite tube spar
|
Electric motor analysis for propeller matching
|
|
Tools to analyze unconventional propulsion (e.g., LH2)
|
Detailed weights estimation for aircraft ranging from micro-UAVs to airliners
|
|
Other conceptual design tools (AVL, XFLR5, XFoil, ASWING, MSES, etc.)
|
CAD tools via STEP export (SolidWorks, Fusion 360, etc.) (STL, OBJ, etc. supported too)
|
User-provided models + code (for custom aerodynamics, structures, propulsion, or anything else - e.g., for optimizing flight through a probabilistic wind field, shown below)
|
|
Optimize the 2D Rosenbrock function
|
|