FLOW-3D CAST v5.1 full crack license unlimited keygen

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FLOW-3D CAST v5.1 full crack license unlimited keygen


FLOW-3D CAST v5.1 cracked version download​

What’s New in FLOW-3D CAST v5.1 full crack license unlimited keygen​

Flow Science is pleased to announce the release of FLOW-3D CAST v5.1. This release provides casters with a complete simulation tool for modeling all the casting processes commonly found in modern foundries. Highlights of the FLOW-3D CAST v5.1 release include new process workspaces for investment casting, sand core making, centrifugal casting, and continuous casting, an expansive database of exothermic risers, and a brand new, chemistry-based alloy solidification model.
A major development in FLOW-3D CAST v5.1 is our new, award-winning alloy solidification model. This ground-breaking achievement provides casters with the ability to predict casting strength characteristics and reduce material usage while still meeting product safety and performance requirements.
FLOW-3D CAST v5.1

The new process workspaces greatly reduce simulation setup and results analysis time. The Investment Casting Workspace features a fast and accurate shell mold generation tool and a full radiation model. The Sand Core Making Workspace models sand core shooting as well as all the hardening processes. The Centrifugal Casting Workspace provides the most accurate simulation tool available for all centrifugal processes. Finally, the Continuous Casting Workspace simulates all continuous casting processes including direct chill.
Additionally, databases for heat transfer coefficients, air vents, HPDC machines, and risers provide information at the users’ fingertips. The new exothermic riser database along with the solidification hotspot identification tool lets users quickly and easily place an appropriately sized exothermic riser at locations where shrinkage is predicted to occur.

State-of-the-art Solidification Model​

FLOW-3D CAST v5.1 features a new, state-of-the art, chemistry-based solidification model that advances solidification modeling into the next frontier of casting simulation – the ability to predict the strength properties of castings. Using only readily-available chemical compositions of alloys, users will be able to determine properties such as ultimate tensile strength, elongation, and thermal properties such as thermal conductivity. Additionally, the new solidification model provides output such as the dimensionless Niyama criteria and micro-porosity for more accurate assessments of porosity issues.
Many factors affect the mechanical properties of a casting. These properties are primarily determined by the microstructure which is in turn determined by factors such as the solidification rate, segregation rate, and nucleation. Using the new solidification model, process designers can determine the effect of various process parameters and alloy compositions on the mechanical properties to optimize the performance of their castings to produce the highest quality, safest products possible.

Investment Casting Workspace​

The Investment Casting Process Workspace is a streamlined tool for simulating investment casting processes such as filling, solidification (with either static or moving shell molds), and cooling. A shell mold creation tool allows users to quickly and reliably create a shell mold of any thickness. A wide range of controls are available for generating radiating clusters, computing view factors of participating radiating surfaces and reducing computational overhead. In castings such as turbine blades, where grain growth is controlled by directional solidification, a moving oven with a hot upper section separated by a baffle from a cooler lower section can be modeled.
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Continuous Casting Workspace​

The Continuous Casting Process Workspace is a streamlined package that delivers the tools needed to model continuous billet casting and direct chill continuous casting, so casting engineers can improve their designs quickly and efficiently. Process parameters such as mold and billet cooling requirements, melt flow rate and superheat, and mold geometry can be analyzed and adjusted to minimize defects.