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  4. Parallel Computing in Automation of Decoupled flow and thermal-structural Simulation Approach
 
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2019
  • Paper

Titel

Parallel Computing in Automation of Decoupled flow and thermal-structural Simulation Approach

Titel Supplements
Published on arXiv
Abstract
Decoupling approach presents a novel solution/alternativeto the highly time-consuming fluid-thermal-structural simulation procedures when thermal effects and resultant displacements on machine tools are analyzed. Using high dimensional Characteristic Diagrams (CDs) along with a Clustering Algorithm that immensely reduces the data needed for training, a limited number of CFD simulations can suffice in effectively decoupling fluid and thermal-structural simulations. This approach becomes highly significant when complex geometries or dynamic components are considered. However, there is still scope for improvement in the reduction of time needed to train CDs. Parallel computation can be effectively utilized in decoupling approach in simultaneous execution of (i) CFD simulations and data export, and (ii) Clustering technique involving Genetic Algorithm and Radial Basis Function interpolation, which clusters and optimizes the training data for CDs. Parallelization reduces the entire computation duration from several days to a few hours and thereby, improving the efficiency and ease-of-use of decoupling simulation approach.
Author(s)
Glänzel, Janine
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU
Naumann, Andreas
TU Dresden
Kumar, Tharun Suresh
Fraunhofer-Institut für Werkzeugmaschinen und Umformtechnik IWU
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Language
Englisch
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IWU
Tags
  • Thermal effects

  • simulation

  • machine tool

  • Environment

  • positioning errors

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