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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. Package: openfoam-nopv-deps Version: 20240705 Architecture: arm64 Maintainer: OpenFOAM Foundation Depends: libopenmpi-dev, zlib1g-dev, gnuplot, gnuplot-x11, libxt-dev, build-essential, cmake, flex Filename: dists/jammy/main/binary-arm64/openfoam-nopv-deps.deb Size: 630 MD5sum: 6e96a07e4387bee9cf6f8e5fc54213b0 SHA1: 05c3aa37dc1d8adc048550122fa7b63e988ccaa7 SHA256: 3386f68eb9b6cbaa72f0c64467d032adfa3cb7c44232b61a0b5afffd831ce360 Homepage: https://openfoam.org Description: Installs dependent software to compile OpenFOAM but not including the reader modules for ParaView. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers. 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OpenFOAM has has a large user base across most areas of engineering and science, from both commercial and academic organisations. It has an extensive range of features to simulate fluid flow, heat transfer, thermodynamics, chemical reactions, discrete particles, fluid films, and more. It includes tools for meshing in and around complex geometries, data processing and visualisation. The OpenFOAM's environment supports customised development, with compilation tools and a modular structure. Almost all computations can be executed in parallel as standard to take full advantage of multi-core processors and multi-processor computers.