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Practical Finite Element Simulations with SOLIDWORKS 2022

Practical Finite Element Simulations with SOLIDWORKS 2022

By : Khameel B. Mustapha
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Practical Finite Element Simulations with SOLIDWORKS 2022

Practical Finite Element Simulations with SOLIDWORKS 2022

By: Khameel B. Mustapha

Overview of this book

SOLIDWORKS is a dominant computer-aided design (CAD) software for the 3D modeling, designing, and analysis of components. This book helps you get to grips with SOLIDWORKS Simulation, which is a remarkable and integral part of SOLIDWORKS predominantly deployed for advanced product performance assessment and virtual prototyping. With this book, you'll take a hands-on approach to learning SOLIDWORKS Simulation with the help of step-by-step guidelines on various aspects of the simulation workflow. You'll begin by learning about the requirements for effective simulation of parts and components, along with the idealization of physical components and their representation with finite element models. As you progress through the book, you'll find exercises at the end of each chapter, and you'll be able to download the geometry models used in all the chapters from GitHub. Finally, you’ll discover how to set up finite element simulations for the static analysis of components under various types of loads, and with different types of materials, from simple isotropic to composite, and different boundary conditions. By the end of this SOLIDWORKS 2022 book, you'll be able to conduct basic and advanced static analyses with SOLIDWORKS Simulation and have practical knowledge of how to best use the family of elements in the SOLIDWORKS Simulation library.
Table of Contents (15 chapters)
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1
Section 1: An Introduction to SOLIDWORKS Simulation
6
Section 2: SOLIDWORKS Simulation with Shell and Solid Elements
10
Section 3: Advanced SOLIDWORKS Simulation with Complex Material and Loading Behavior

Overview of axisymmetric body problems

A crucial aspect of engineering simulation is figuring out approximations that allow us to simplify specific problems without compromising the accuracy of our analysis. Designating certain problems as axisymmetric problems is one such approximation in the context of structural analysis.

In general, an axisymmetric body problem is characterized by two fundamental features:

  • First, it involves a component that may be generated by revolving a curve or a plane section around an axis of symmetry [1] (see the Further reading section).
  • Second, the component under question is assumed to have radially symmetric material properties, supports and loading configurations.

There are three important problems where the notion of axisymmetric considerations has contributed to the simplifications of analysis:

  • Pressurized Vessels: This includes various kinds of vessels in the form of thin-walled/thick-walled cylindrical, conical, toroidal...

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