riversongs Posted November 23, 2024 Report Share Posted November 23, 2024 Free Download The Finite Element Method For Linear Structural AnalysisPublished 10/2024MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHzLanguage: English | Size: 51.82 GB | Duration: 59h 49mFrom Beginner to Expert: Unlocking FEA ProficiencyWhat you'll learnFormulation of key types of finite elements, including spring, bar, beam, plane stress and strain, 3D, and shell elements.In-depth finite element theory presented in a simple, easy-to-understand way.Hands-on practice with FEA software, where each exercise is directly connected to the theory covered.Complete FEA structure, covering pre-analysis, model setup, verification, validation, and post-processing.RequirementsBasic Engineering Knowledge: Students should have a fundamental understanding of engineering principles, including mathematics, physics, and mechanics.A Willingness to Learn: An eagerness to dive deep into the theoretical concepts and commit to hands-on practice is crucial for success in this course.DescriptionUnlock the power of Finite Element Analysis (FEA) in structural engineering with our comprehensive course, designed to take you from theory to practical proficiency. Over 12 engaging modules, you'll delve deep into the intricacies of FEA and reinforce your knowledge through hands-on workshops (exercises on FEA software). Whether you're a novice looking to start your journey or a seasoned professional seeking to refine your skills, this course has something valuable to offer at every level.Module 1: Introduction to Finite Element Analysis- Fundamental Concepts- Why is FEM so important?- Workshop 01: Building Your First Finite Element Model: Bike CrankModule 2: Linear Elastic Spring Element- Spring theory- System Assembly in Global Coordinates- Exercises- Workshop 02: Linear Spring ElementModule 3: Elastic Bar Element- Bar theory- Exercise- Strain Energy- Castigliano's First Theorem- Minimum Potential Energy- Workshop 03: Linear Bar ElementModule 4: Truss Structures- Nodal Equilibrium Equations- Element Transformation- Direct Assembly of Global Stiffness Matrix- Boundary Conditions, Constraint Forces- Element Strain and Stress- Comprehensive Example- Three dimensional Trusses- Workshop 04: 2D Truss StructureModule 5: Beam Element- Elementary Beam Theory- Beam Element- Beam Element Stiffness Matrix- Element Load Vector- Work Equivalence for Distributed Loads- Flexure Element with Axial Loading- A General Three-Dimensional Beam Element- Workshop 05: Beam ElementModule 6: Equations of Elasticity- Strain-Displacement Relations- Stress-Strain Relations- Equilibrium Equations- SummaryModule 7: Matrix Mathematics and Solution Techniques for Linear Algebraic Equations- Matrix Mathematics- Solution Techniques for Linear Algebraic EquationsModule 8: Plane Stress- Equations of Elasticity for Plane Stress- Finite Element Formulation: Constant Strain Triangle- Stiffness Matrix Evaluation- Distributed Loads- Body Forces- Workshop 06: Rectangular Plate with Central Circular HoleModule 9: Plane Strain- Equations of Elasticity for Plane Strain- Finite Element Formulation: Four-node Rectangle- Numerical Integration: Gaussian Quadrature- Workshop 07: C-ClampModule 10: Isoparametric Formulation- Four-node quadrilateral element- Exercise- Singularity of the Jacobian MatrixModule 11: General Three-Dimensional Stress Elements- Introduction- Equations of Elasticity- Finite Element Formulation- Example: 4-node Tetrahedral- Stress and Strain Computation- Workshop 08: Connecting LugModule 12: Shell Elements- Plate Element Theory- Plate Element Formulation- Shell Element Theory- Workshop 10: Thin Folded PlateThroughout this course, you'll receive expert guidance, learn best practices, and gain practical experience to tackle real-world structural analysis challenges confidently. Don't miss this opportunity to become a proficient Finite Element Analysis practitioner and enhance your career in structural engineering. Join us today and embark on a journey toward mastering FEA.OverviewSection 1: IntroductionLecture 1 Course MaterialLecture 2 Introduction - Part 1Lecture 3 Introduction - Part 2Lecture 4 Introduction - Part 3Lecture 5 Abaqus Instalation GuideLecture 6 Workshop 01 - Connecting Lug - Problem SpecificationLecture 7 Workshop 01 - Connecting Lug - Pre-analysisLecture 8 Workshop 01 - Connecting Lug - Create DomainLecture 9 Workshop 01 - Connecting Lug - Mesh the DomainLecture 10 Workshop 01 - Connecting Lug - Create Material and InstanceLecture 11 Workshop 01 - Connecting Lug - Apply BCs and Solve BVPLecture 12 Workshop 01 - Connecting Lug - Verification - Part 1Lecture 13 Workshop 01 - Connecting Lug - Verification - Part 2Lecture 14 Workshop 01 - Connecting Lug - Verification - Part 3Lecture 15 Workshop 01 - Connecting Lug - Convergence StudySection 2: Linear Elastic Spring ElementLecture 16 Linear Elastic Spring Element - Part 1Lecture 17 Linear Elastic Spring Element - Part 2Lecture 18 Linear Elastic Spring Element - Part 3Lecture 19 System Assembly in Global Coordinates - Part 1Lecture 20 System Assembly in Global Coordinates - Part 2Lecture 21 Exercises - Part 1Lecture 22 Exercises - Part 2Lecture 23 Workshop 02 - Spring Element - Pre-analysisLecture 24 Workshop 02 - Spring Element - Define DomainLecture 25 Workshop 02 - Spring Element - Define BCs and Governing EquationsLecture 26 Workshop 02 - Spring Element - VerificationLecture 27 Workshop 02 - Spring Element - Study Input FileSection 3: Linear Elastic Bar ElementLecture 28 Elastic Bar Element - Part 1Lecture 29 Elastic Bar Element - Part 2Lecture 30 Elastic Bar Element - Part 3Lecture 31 Exercise - Part 1Lecture 32 Exercise - Part 2Lecture 33 Exercise - Part 3Lecture 34 Strain EnergyLecture 35 Castigliano's First Theorem - Part 1Lecture 36 Castigliano's First Theorem - Part 2Lecture 37 Minimum Potential Energy - Part 1Lecture 38 Minimum Potential Energy - Part 2Lecture 39 Workshop 03 - Bar Element - Problem SpecificationLecture 40 Workshop 03 - Bar Element - Pre-AnalysisLecture 41 Workshop 03 - Bar Element - Define DomainLecture 42 Workshop 03 - Bar Element - Setup BCs and Define Governing EquationLecture 43 Workshop 03 - Bar Element - Post-ProcessingLecture 44 Workshop 03 - Bar Element - Analyse input fileSection 4: Truss StructuresLecture 45 Nodal Equilibrium Equations - Part 1Lecture 46 Nodal Equilibrium Equations - Part 2Lecture 47 Element TransformationLecture 48 Direct Assembly of Global Stiffness Matrix - Part 1Lecture 49 Direct Assembly of Global Stiffness Matrix - Part 2Lecture 50 Direct Assembly of Global Stiffness Matrix - Part 3Lecture 51 Boundary Conditions, Constraint ForcesLecture 52 Element Strain and Stress - Part 1Lecture 53 Element Strain and Stress - Part 2Lecture 54 Comprehensive Example - Part 1Lecture 55 Comprehensive Example - Part 2Lecture 56 Comprehensive Example - Part 3Lecture 57 Three dimensional Trusses - Part 1Lecture 58 Three dimensional Trusses - Part 2Lecture 59 Workshop 04 - Problem SpecificationLecture 60 Workshop 04 - Pre-analysisLecture 61 Workshop 04 - Define BPV - Part 1Lecture 62 Workshop 04 - Define BPV - Part 2Lecture 63 Workshop 04 - VerificationLecture 64 Workshop 04 - Input FileSection 5: Beam ElementLecture 65 Elementary Beam Theory - Part 1Lecture 66 Elementary Beam Theory - Part 2Lecture 67 Elementary Beam Theory - Part 3Lecture 68 Beam ElementLecture 69 Beam Element Stiffness Matrix - Part 1Lecture 70 Beam Element Stiffness Matrix - Part 2Lecture 71 Element Load Vector and ExerciseLecture 72 Work Equivalence for Distributed Loads - Part 1Lecture 73 Work Equivalence for Distributed Loads - Part 2Lecture 74 Flexure Element with Axial Loading - Part 1Lecture 75 Flexure Element with Axial Loading - Part 2Lecture 76 Flexure Element with Axial Loading - Part 3Lecture 77 A General Three-Dimensional Beam Element - Part 1Lecture 78 A General Three-Dimensional Beam Element - Part 2Lecture 79 Workshop 05 - Problem SpecificationLecture 80 Workshop 05 - Pre-analysisLecture 81 Workshop 05 - BPV Definition - Part 1Lecture 82 Workshop 05 - BPV Definition - Part 2Lecture 83 Workshop 05 - BPV Definition - Part 3Lecture 84 Workshop 05 - VerificationLecture 85 Workshop 05 - Analyse Stress and DisplacementSection 6: Equations of ElasticityLecture 86 Strain-Displacement RelationsLecture 87 Stress-Strain RelationsLecture 88 Equilibrium EquationsLecture 89 SummarySection 7: Matrix Mathematics and Solution Techniques for Linear Algebraic EquationsLecture 90 Matrix Mathematics - Basic DefinitionsLecture 91 Matrix Mathematics - Simple Matrix OperationsLecture 92 Matrix Mathematics - The Determinant of a MatrixLecture 93 Matrix Mathematics - The Inverse of MatrixLecture 94 Solution Techniques for Linear Algebraic Equations - Gauss EliminationLecture 95 Solution Techniques for Linear Algebraic Equations - LU DecompositionLecture 96 Solution Techniques for Linear Algebraic Equations - Gauss Seidel MethodSection 8: Plane StressLecture 97 Equations of Elasticity for Plane StressLecture 98 Finite Element Formulation Constant Strain Triangle - Part 1Lecture 99 Finite Element Formulation Constant Strain Triangle - Part 2Lecture 100 Finite Element Formulation Constant Strain Triangle - Part 3Lecture 101 Summary and Stiffness Matrix EvaluationLecture 102 Distributed Loads - Part 1Lecture 103 Distributed Loads - Part 2Lecture 104 Body Forces - Part 1Lecture 105 Body Forces - Part 2Lecture 106 Workshop 06 - Pre-analysisLecture 107 Workshop 06 - BVP Definition - Part 1Lecture 108 Workshop 06 - BVP Definition - Part 2Lecture 109 Workshop 06 - Symmetry ConditionLecture 110 Workshop 06 - Convergence StudyLecture 111 Workshop 06 - End of VerificationLecture 112 Workshop 06 - Final CommentsSection 9: Plane StrainLecture 113 Equations of Elasticity for Plane StrainLecture 114 Finite Element Formulation Four-node Rectangle - Part 1Lecture 115 Finite Element Formulation Four-node Rectangle - Part 2Lecture 116 Finite Element Formulation Four-node Rectangle - Part 3Lecture 117 Finite Element Formulation Four-node Rectangle - Part 4Lecture 118 Numerical Integration Gaussian Quadrature - Part 1Lecture 119 Numerical Integration Gaussian Quadrature - Part 2Lecture 120 Workshop 07 - Pre-AnalysisLecture 121 Workshop 07 - Define BVPLecture 122 Workshop 07 - Shear LockingLecture 123 Workshop 07 - Hourglass and Incompatible mode elementsLecture 124 Workshop 07 - Numerical SingularitySection 10: Isoparametric FormulationLecture 125 Four-node quadrilateral element - Part 1Lecture 126 Four-node quadrilateral element - Part 2Lecture 127 Four-node quadrilateral element - Part 3Lecture 128 ExerciseLecture 129 Singularity of the Jacobian MatrixLecture 130 Workshop 08 - Pre-analysisLecture 131 Workshop 08 - Define BVPLecture 132 Workshop 08 - Post-ProcessingSection 11: General Three Dimensional Stress ElementLecture 133 Introduction and Equations of ElasticityLecture 134 Finite Element FormulationLecture 135 Example: 4-node TetrahedralLecture 136 Stress and Strain Computation - Stress vs Strain CurveLecture 137 Stress and Strain Computation - Maximum shear stress theoryLecture 138 Stress and Strain Computation - Distortion Energy TheoryLecture 139 Workshop 09 - Pre-analysisLecture 140 Workshop 09 - Define BVP - Part 1Lecture 141 Workshop 09 - Define BVP - Part 2Lecture 142 Workshop 09 - Post-ProcessingSection 12: Shell ElementLecture 143 Plate Element TheoryLecture 144 Plate Element FormulationLecture 145 Shell Element FormulationLecture 146 Workshop 10 - Skew PlateLecture 147 Extra ExerciseEngineering and Science Students: This course is primarily aimed at undergraduate and graduate students studying engineering disciplines, such as mechanical, civil, aerospace, or materials engineering. It's also relevant to students in related scientific fields.,Engineering Professionals: Engineers and professionals who want to deepen their understanding of the finite element method theory and gain insights into the inner workings of commercial software tools can benefit from this course.,Researchers: Researchers in engineering and scientific fields who need to use finite element analysis as part of their research projects can enhance their skills and knowledge through this course.,Career Advancers: Individuals looking to advance their careers in industries where finite element analysis is widely used, such as automotive, aerospace, structural design, and manufacturing.,Curious Learners: Anyone with a genuine interest in understanding the theoretical foundations behind engineering simulations and software tools, even if they are not pursuing formal education or a career in 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