Altair HyperWork Modelling Meshing Run Solver File
- DESIGN
- Jan 12, 2025

Altair HyperWork – Modelling – Meshing – Run Solver File, available at $59.99, has an average rating of 4, with 55 lectures, based on 43 reviews, and has 341 subscribers.
You will learn about FEM Theory Meshing of 1d 2d 3d Create and set-up Finite element models for analysis Improve knowledge of meshing Topology, size, Shape Optimization learner HyperWork tutorial learner Hyperwork CFD This course is ideal for individuals who are Computer aided design & engineering or learn practical application of FEA and CAE or Aerospace Engineering or Mechanical and Industrial Engineer or Learn Meshing and Analysis of Mechanical System or Automobile Engineers It is particularly useful for Computer aided design & engineering or learn practical application of FEA and CAE or Aerospace Engineering or Mechanical and Industrial Engineer or Learn Meshing and Analysis of Mechanical System or Automobile Engineers.
Enroll now: Altair HyperWork – Modelling – Meshing – Run Solver File
Summary
Title: Altair HyperWork – Modelling – Meshing – Run Solver File
Price: $59.99
Average Rating: 4
Number of Lectures: 55
Number of Published Lectures: 55
Number of Curriculum Items: 55
Number of Published Curriculum Objects: 55
Original Price: $19.99
Quality Status: approved
Status: Live
What You Will Learn
Who Should Attend
Target Audiences
Hyperworks is a complete CAE software made by Altair engineering. It consists all the modules of CAE i.e. modelling, meshing, solver. It is a complete package of finite element procedure. Pre-processing, Solving and Post-processing can be done using Hyperworks.
Altair HyperWorks provides the most comprehensive, open-architecture CAE solution in the industry including best-in-class modeling, analysis and optimizatio.
HyperWorks line of software, including:
OptiStruct – Structural Analysis Solver (linear and non-linear); solution for structural design and optimization
RADIOSS – Structural Analysis Solver (highly non-linear problems under dynamic loadings); an industry standard for automotive crash and impact analysis
MotionView – Solver-neutral Multi-body Pre-processor
MotionSolve – Multi-body Solver; an integrated solution to analyze and optimize multi-body system performance
HyperXtrude – Metal & Polymer Extrusion Solver; an advanced solver for manufacturing process simulations and validations
HyperForm – Metal Forming Solver
HyperMesh, HyperCrash, Simlab, HyperView, HyperGraph – CAE Pre & Post Processing[1]
HyperStudy – Design of Experiments and Multi-disciplinary Design Optimization
HyperMath – Mathematical Analysis Environment
AcuSolve – General-purpose Finite Element Based CFD Solver
FEKO – 3D Electromagnetic Solver
Course Curriculum
Chapter 1: Theory of FEA and CAE
Lecture 1: Introduction
Lecture 2: How to decide element type
Lecture 3: Can we solve same problem using 1-D, 2-D and 3D element
Lecture 4: How to do meshing in critical area
Lecture 5: 3d Element
Lecture 6: Minimum element length using in time and crease calculation analysis
Lecture 7: Material and property Information
Chapter 2: 1D Meshing
Lecture 1: 1D Meshing Introduction
Lecture 2: Create Hyper-beam
Lecture 3: Create HyperBeam I Solving the problem usinng 10 rod element
Lecture 4: Create bar element
Lecture 5: Concept of C-D-E-F point
Lecture 6: Bar element analysis
Lecture 7: Create bar element using rectangular cross section
Lecture 8: Different of dof (Degree of freedom)
Lecture 9: Roll cage Analysis
Chapter 3: 2D Meshing
Lecture 1: 2D Meshing topic cover in session
Lecture 2: how to open and save file In HyperMesh
Lecture 3: Working with panel
Lecture 4: Organizing a model
Lecture 5: Importing and repairing CAD
Lecture 6: Create a Mid-surface
Lecture 7: Simplifying Geometry
Lecture 8: Refining topology to achieve a quality mesh
Lecture 9: Auto Meshing panel
Lecture 10: Meshing without surfaces
Lecture 11: Create a Meshing in Curved surfaces
Lecture 12: Checking and editing Mesh
Chapter 4: 3D Meshing
Lecture 1: Create and Edit solid geometry
Lecture 2: Perform Tetra Meshing
Lecture 3: Creating a hex-penta mesh using surfaces part 1
Lecture 4: Creating a hex-penta mesh using surfaces part 2
Lecture 5: Creating a hexahedral mesh using the solid map function
Lecture 6: Using the tetramesh process manager
Chapter 5: Analysis and Post Processing
Lecture 1: Linear static analysis of a plate with a hole Part 1
Lecture 2: Linear static analysis of a plate with a hole part 2
Lecture 3: Thermal stress analysis of a coffee pot lid
Lecture 4: Normal modes analysis of a splash shield
Lecture 5: 3D Inertia relief analysis using RADIOSS
Lecture 6: 3D Buckling analysis using RADIOSS
Lecture 7: Connection of dissimilar meshes using CWELD element
Lecture 8: Analysis of a composite aircraft structure using PCOMPG
Lecture 9: Direct frequency response analysis of a flat plate
Lecture 10: Model frequency response analysis of a flat plate
Lecture 11: Acoustic analysis of a half car model
Lecture 12: Random response analysis of a flat plate
Lecture 13: Nonlinear gap analysis of an airplane wing rib
Lecture 14: Direct transient dynamic analysis of a bracket
Chapter 6: Topology Optimization
Lecture 1: Design concept for a structural C-clip
Lecture 2: Design concept for a structural C-clip with minimum member size control
Lecture 3: Topology optimization for an automotive control arm
Lecture 4: Increasing natural frequencies of an automotive splash shield with ribs
Lecture 5: Control arm topology optimization with draw direction constraints
Lecture 6: Sport weld reduction using CWELD and 1-D Topology optimization
Chapter 7: Use 3D Models in practice
Lecture 1: Practice models
Instructors

Swaylen CAD I CAM I CAE Expert
Learn engineering Course anytime and anywhere
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