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ME1401 – INTRODUCTION OF FINITE ELEMENT ANALYSIS
CONTENTS
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Problems (III set)
Advantages of Finite Element Method
Disadvantages of Finite Element Method
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Applications of Finite Element Analysis
UNIT – II
One Dimension Problems
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Syllabus
One Dimensional elements
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Bar, Beam and Truss
Stress, Strain and Displacement
Types of Loading
Finite Element Modeling
Co – Ordinates
Natural Co – Ordinate (ε)
Shape function
Polynomial Shape function
Properties of Stiffness Matrix
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Problem (III set)
UNIT – III
Two Dimension Problems – Scalar variable Problems
Syllabus
Two dimensional elements
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Plane Stress and Plane Strain
Finite Element Modeling
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Constant Strain Triangular (CST) Element
Shape function for the CST element
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Displacement function for the CST element
Strain – Displacement matrix [B] for CST element
Stress – Strain relationship matrix (or) Constitutive matrix [D] for two dimensional
element
Stress – Strain relationship matrix for two dimensional plane stress problems
Stress – Strain relationship matrix for two dimensional plane strain problems
Stiffness matrix equation for two dimensional element (CST element)
Temperature Effects
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Syllabus
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AXISYMMETRIC CONTINUUM
Elasticity Equations
Axisymmetric Elements
Axisymmetric Formulation
Equation of shape function for Axisymmetric element
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Equation of Strain – Displacement Matrix [B] for Axisymmetric element
Equation of Stress – Strain Matrix [D] for Axisymmetric element
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Equation of Stiffness Matrix [K] for Axisymmetric element
Temperature Effects
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Problem (I set)
UNIT – V
ISOPARAMETRIC ELEMENTS FOR TWO DIMENSIONAL CONTINUUM
Isoparametric element
Superparametric element
Subparametric element
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Problem (I set)
ME 1401
INTRODUCTION OF FINITE ELEMENT ANALYSIS
Unit – I
Fundamental Concepts
Syllabus
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Force Method – Internal forces are considered as the unknowns of the problem
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Displacement or stiffness method – Displacements of the nodes are considered
as the unknowns of the problem
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for the unknown displacements > computation of the element strains and stresses
from the nodal displacements > Interpret the results (post processing)
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The boundary conditions on
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displacements to prevail at certain points on the boundary of the body, whereas
the boundary conditions on stresses require that the stresses induced must be in
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equilibrium with the external forces applied at certain points on the boundary of
the body
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Rayleigh – Ritz Method (Variational Approach)
It is useful for solving complex structural problems
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Otherwise, Galerkin’s method of weighted
Problems (I set)
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1
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Determine the bending moment and deflection at midspan by using
Rayleigh – Ritz method and compare with exact solutions
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A bar of uniform cross section is clamed at one end and left free at another end
and it is subjected to a uniform axial load P
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Compare
with exact solutions
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For non –
structural problems, the method of weighted residuals becomes very useful
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The popular four methods are,
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Point collocation method,
Residuals are set to zero at n different locations X i, and the weighting function wi
is denoted as (x - xi)
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Subdomain collocation method,
1 forxinD1
w1 =
0 forxnotinD1
3
...
4
...
wi = Ni (x)
Ni (x) [R (x; a1, a2, a3… an)]2 dx = 0,
i = 1, 2, 3, …n
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The following differential equation is available for a physical phenomenon
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Trial function is y = a1x (10-x)
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d
are y (0) = 0 and y (10) = 0
...
2
...
Obtain two term Galerkin solution b using the trial functions:
2
dx
N1(x) = x(x-1); N2(x) = x2(x-1); 0 x 1
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Matrix Algebra
are
equal
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are zero
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Unit matrix: All diagonal elements are unity and other elements are zero
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Gaussian Elimination Method
It is most commonly used for solving simultaneous linear equations
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Problems (III set)
1
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Solve by using Gauss – Elimination
method
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2a+4b+2c = 15, 2a+b+2c = -5, 4a+b-2c = 0
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Gauss – Elimination method
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FEM can handle irregular geometry in a convenient manner
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Handles general load conditions without difficulty
3
...
4
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Disadvantages of Finite Element Method
1
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It requires longer execution time compared with FEM
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Output result will vary considerably
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Structural Problems:
1
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Stress concentration problems typically associated with holes, fillets or
other changes in geometry in a body
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Buckling Analysis: Example: Connecting rod subjected to axial
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compression
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Vibration Analysis: Example: A beam subjected to different types of
loading
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Heat Transfer analysis:
Example: Steady state thermal analysis on composite cylinder
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Fluid flow analysis:
Example: Fluid flow through pipes
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approach – Galarkin approach – Assembly of stiffness matrix and load vector – Finite
element equations – Quadratic shape functions – Applications to plane trusses
One Dimensional elements
Bar and beam elements are considered as One Dimensional elements
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Bar, Beam and Truss
Bar is a member which resists only axial loads
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A truss is an assemblage of bars with pin joints and a frame is
an assemblage of beam elements
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the form of vector by the variable x as e x, Displacement is denoted in the form of
vector by the variable x as ux
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Unit
is Force / Unit volume
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(2) Traction (T)
It is a distributed force acting on the surface of the body
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But for one dimensional problem, unit is Force / Unit length
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(3) Point load (P)
It is a force acting at a particular point which causes displacement
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(1) Discretization of structure
CO – ORDINATES
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(A) Global co – ordinates, (B) Local co – ordinates and (C) Natural co –
ordinates
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Integration of polynomial terms in natural co – ordinates for two dimensional
elements can be performed by using the formula,
L1 L2 L3 dA ! ! ! X 2 A
!
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Shape function
N1N2N3 are usually denoted as shape function
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Shape function need to satisfy the following
(a) First derivatives should be finite within an element; (b) Displacement should
be continuous across the element boundary
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(2) It is easy to formulate and computerize the finite element equations
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Stiffness Matrix [K]
B DBdv
T
in
Stiffness Matrix [K] =
V
Properties of Stiffness Matrix
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It is a symmetric matrix, 2
...
It is an unstable element
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Equation of Stiffness Matrix for One dimensional bar element
w
[K] =
AE 1 1
l 1 1
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Finite Element Equation for One dimensional bar element
F1 AE 1 1 u1
F2
l 1 1 u2
The Load (or) Force Vector {F}
F e Al
1
Problem (I set)
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A two noded truss element is shown in figure
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Calculate the displacement at x = ¼, 1/3 and ½
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The following
assumptions are made while finding the forces in a truss,
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Stiffness Matrix [K] for a truss element
w
w
w
l2
lm
Ae E e lm
m2
K
l e l 2 lm
2
lm m
lm
2
lm m
l2
lm
2
lm
m
l2
Finite Element Equation for Two noded Truss element
l2
lm
m2
lm
l 2 lm
2
lm m
Problem (II set)
lm u1
lm m 2 u 2
l2
lm u 3
lm
m 2 u 4
l2
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Consider a three bar truss as shown in figure
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Calculate (a) Nodal displacement, (b) Stress in each member and
(c) Reactions at the support
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element 2 = 2500 mm2, Area of element 3 = 2500 mm2
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Cantilever beam, 2
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Over hanging beam, 4
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Continuous beam
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Point or Concentrated Load, 2
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Uniformly
Problem (III set)
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Calculate the rotation at Point
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Unit – III Two Dimension Problems – Scalar variable Problems
Syllabus
Finite element modeling – CST & LST elements – Elements equations – Load vectors and
heat transfer
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boundary conditions – Assembly – Applications to scalar variable problems such as torsion,
Two dimensional elements are defined by three or more nodes in a two
dimensional plane (i
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, x, y plane)
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Plane Stress and Plane Strain
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Plane Stress Analysis:
It is defined to be a state of stress in which the normal stress () and shear
stress () directed perpendicular to the plane are assumed to be zero
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Finite Element Modeling
It consists of 1
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Numbering of nodes
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Discretization:
The art of subdividing a structure into a convenient number of smaller
components is known as discretization
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Numbering of nodes:
In one dimensional problem, each node is allowed to move only in x
direction
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directions i
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, x and y
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Nodes
123
234
435
536
637
738
839
931
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It has six unknown displacement degrees of freedom (u 1v1, u2v2, u3v3)
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Shape function N3 = (p3 + q3x + r3y) / 2A
Displacement function for the CST element
u ( x, y ) N1
Displacement function u =
v ( x, y ) 0
0
N2
0
N3
N1
0
N2
u1
v1
0 u 2
X v 2
N 3
u 3
v3
0
Strain – Displacement matrix [B] for CST element
in
q1
1
0
Strain – Displacement matrix [B] =
2A
r1
q2
0
q3
r1
0
r2
0
q1
r2
q2
r3
0
r3
q3
r1 = x3 – x2
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in
v
0
(1 v)
E
v
(1 v)
0
[D] =
1 v 1 2v
1 2v
0
0
2
Stiffness matrix equation for two dimensional element (CST element)
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(1 v)
v
0
E
v
(1 v)
0
[D] =
1 v 1 2v
1 2v
0
0
2
Distribution of the change in temperature (ΔT) is known as strain
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σ = D (Bu - e0)
Galerkin Approach
Stiffness matrix [K] e = [B]T [D][B] A t
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It has twelve unknown displacement degrees of freedom
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functions of the element are quadratic instead of linear as in the CST
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Determine the shape functions N1, N2 and N3 at the interior point P for the
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The two dimensional propped beam shown in figure
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Determine the nodal displacement and element stresses using plane stress
conditions
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Take, Thickness (t) = 10mm,
in
Young’s modulus (E) = 2x105 N/mm2,
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25
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A thin plate is subjected to surface traction as in figure
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By using
these displacement solutions, stresses and strains are calculated for each element
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For example, in a two dimensional plate, the unknown
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Equation of Temperature function (T) for one dimensional heat conduction
Temperature (T) = N1T1 + N2T2
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Equation of Shape functions (N1 & N2) for one dimensional heat conduction
N1 =
lx
l
N2 =
x
l
Equation of Stiffness Matrix (K) for one dimensional heat conduction
1
l 1 1
K c Ak
1
Finite Element Equations for one dimensional heat conduction
Case (i): One dimensional heat conduction with free end convection
1 1
0 0 T1
0
1 1 hA0 1 T hT A1
2
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Ak
l
1 1 hPl 2 1 T1 QAl PhT l 1
1 1 6 1 2 T
2
2
1
Finite element Equation for Torsional Bar element
1 1 1x
1 1
2 x
in
M 1x GJ
l
M 2 x
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An Aluminium alloy fin of 7 mm thick and 50 mm long protrudes from a wall,
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which is maintained at 120°C
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The heat
transfer coefficient and thermal conductivity of fin material are 140 W/m2 K and 55
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w
W/mK respectively
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2
...
The fin is rectangular in shape and is 120 mm long, 40mm
wide and 10mm thick
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Use two elements
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3W/mm°C, h = 1 x 10-3 W/ mm2 °C, T=20°C
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– Body forces and temperature effects – Stress calculations – Boundary conditions –
Applications to cylinders under internal or external pressures – Rotating discs
Elasticity Equations
Elasticity equations are used for solving structural mechanics problems
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The types of elasticity equations are
1
...
z y
in
yz
ex – Strain in X direction, ey – Strain in Y direction
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xy - Shear Strain in XY plane, xz - Shear Strain in XZ plane,
yz - Shear Strain in YZ plane
2
...
3
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y yz xy
x xy xz
By 0
Bx 0 ;
y
z
x
x
y
z
z xz yz
Bz 0
z
x
y
σ – Stress, τ – Shear Stress, Bx - Body force at X direction,
B y - Body force at Y direction, Bz - Body force at Z direction
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Compatibility equations
There are six independent compatibility equations, one of which is
2
2
2 e x e y xy
2
2
xy
y
x
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Axisymmetric Elements
...
Those types of problems are solved by a special two dimensional element called
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as axisymmetric element
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u
u r , z
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The stress σ is given by
r
Stress,
z
rz
The strain e is given by
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in
v
v
0
1 v
v 1 v
v
0
E
D
v
v 1 v
0
1 v 1 2v
1 2v
0
0
0
2
Equation of Stiffness Matrix [K] for Axisymmetric element
K 2 rABT DB
r1 r 2 r 3
; A = (½) bxh
3
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r
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Temperature Effects
w
3z
r
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f t
F1u
F w
1
F u
2
F2 w
F3u
F3 w
1
...
Take E=200GPa and
in
υ= 0
...
...
For the figure, determine the element stresses
...
1x105N/mm2 and
υ= 0
...
The co – ordinates are in mm
...
05mm,
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w
w
w1=0
...
02mm, w2=0
...
0mm, w3=0
...
3
...
By using two
elements on the 15mm length, calculate the displacements at the inner radius
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The four node quadrilateral – Shape functions – Element stiffness matrix and force
vector – Numerical integration - Stiffness integration – Stress calculations – Four node
quadrilateral for axisymmetric problems
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A large number of elements may be used to obtain reasonable
resemblance between original body and the assemblage
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drawback, isoparametric elements are used
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Superparametric element
If the number of nodes used for defining the geometry is more than number of
nodes used for defining the displacements, then it is known as superparametric
element
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Subparametric element
If the number of nodes used for defining the geometry is less than number of
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...
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nodes used for defining the displacements, then it is known as subparametric
Equation of Shape function for 4 noded rectangular parent element
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Equation of Stiffness Matrix for 4 noded isoparametric quadrilateral element
1
1
T
K t B DB J
1 1
J 11
...
0
0
2
in
Equation of element force vector
Fx
[N ] ;
Fy
T
...
w
Numerical Integration (Gaussian Quadrature)
The Gauss quadrature is one of the numerical integration methods to calculate the
definite integrals
...
In
w
w
N 4
N 4
0
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i
0
0
0
N 4
N 4
Number of
Location
Corresponding Weights
Points
xi
wi
1
2
3
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000
x1, x2 =
x1, x3
1
0
...
000
3
0
...
555555
9
8
0
...
000
2
...
3478548451
0
...
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x1, x4= 0
...
3399810436
4
Problem (I set)
x
1
w
1
...
2
...
Compare with exact solution
...
For the isoparametric quadrilateral element shown in figure, determine the
local co –ordinates of the point P which has Cartesian co-ordinates (7, 4)
...
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4
...
Determine (i) Jacobian
matrix,
(ii) Strain – Displacement matrix and (iii) Element Stresses
...
25, u=[0,0,0
...
004,0
...
004,0,0] T, Ɛ= 0, ɳ=0
...
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Assume plane stress condition