AI Article Synopsis

  • The study examines unsteady squeezing flow between circular parallel plates using Levenberg-Marquardt backpropagation neural networks (LMBNN) to analyze the fluid dynamics.
  • It transforms governing partial differential equations into nonlinear ordinary differential equations and generates a dataset using the Runge-Kutta method, adjusting for factors like Reynolds number and volume flow rate.
  • The results produced by LMBNN are evaluated for accuracy through comparisons with reference data, utilizing metrics like mean square error and regression analysis.

Article Abstract

In this study, the unsteady squeezing flow between circular parallel plates (USF-CPP) is investigated through the intelligent computing paradigm of Levenberg-Marquard backpropagation neural networks (LMBNN). Similarity transformation introduces the fluidic system of the governing partial differential equations into nonlinear ordinary differential equations. A dataset is generated based on squeezing fluid flow system USF-CPP for the LMBNN through the Runge-Kutta method by the suitable variations of Reynolds number and volume flow rate. To attain approximation solutions for USF-CPP to different scenarios and cases of LMBNN, the operations of training, testing, and validation are prepared and then the outcomes are compared with the reference data set to ensure the suggested model's accuracy. The output of LMBNN is discussed by the mean square error, dynamics of state transition, analysis of error histograms, and regression illustrations.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8486874PMC
http://dx.doi.org/10.1038/s41598-021-99108-zDOI Listing

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