Post on 20-Jul-2020
Beam Analysis by the Direct Stiffness Method
Steven VukazichSan Jose State University
Stiffness Based Approach
! = # ∆
Can think of a structure acting as a multi-dimensional spring
Δ& ! ! = &Δ
Δ' () Δ*(+
Δ, (-
!'
!*
!,
!) !+ !-
Consider an inclined beam member with a moment of inertia I and modulus of elasticity E subjected to shear force and bending moment at its ends.
x axis (local 1 axis in SAP 2000)i = initial end of elementj = terminal end element
Note the sign convention
Beam Element Stiffness Matrix in Local Coordinates
!"
#"
#$ !$
%Δ" Δ$
'
()
*"*$
+ ,
-
. = 0 1
We want to find this 4x4 matrix
12#$%& Δ
Δ
%
#$
6#$%) Δ
12#$%& Δ
6#$%) Δ
4#$% +
%
#$
6#$%) + +
2#$% +
6#$%) +
Each Column of the Frame Element Matrix in Local Coordinates is derived from Indeterminate Fixed End Moment Solutions
set Δi =1and θi =θi =Δj =0
Find the First Column of the Frame ElementStiffness Matrix in Local Coordinates
)* =12,-./
01 =6,-.3
4Δ* = 1 Δ1 = 0
.
,-
5* = 0
6 7
8
51 = 0
0* =6,-.3
)1 = −12,-./
Frame Element Stiffness Matrix
! = # $
%&'&%('(
=∆&*&∆(*(
12-./0
6-./2 −12-./0
6-./2
6-./2
4-./ −6-./2
2-./
−12-./0 −6-./212-./0 −6-./2
6-./2
2-./ −6-./2
4-./
Consider a beam comprised of two elements
Structure Stiffness Matrix
y
x
34
12 6
5
L2
EI1 EI2
L1
! = # ∆
The 6x6 structure stiffness matrix can be assembled from the element stiffness matrices
Each beam joint can move in two directions: 2 Degrees of Freedom (DOF) per joint
2. Joint and DOF numbering
Assemble Structure Stiffness Matrix
y
x
34
1
L1
12 6
5
23
1 2
L2
EI1
EI2
2n - 1
2nn
1. Number each element
Element DOF
1 2 3 4
Associated global DOF for element 1 1 2 3 4
Associated global DOF for element 2 3 4 5 6
3. Connectivity table to assemble structure stiffness matrix
34
Li
12 EIi
Label the rows and columns of each 4x4 element stiffness matrix with corresponding structure DOF from connectivity table
Assembly of Structure Stiffness Matrix from Element Contributions
Form 4x4 element stiffness matrix for element 1 from EI1 and L1
Form 4x4 element stiffness matrix for element 2 from EI2 and L2
Assemble 6x6 structure stiffness matrix
DOF 3 are 4 are free DOF;
DOF 1, 2, 5,and 6 are restrained (support) DOF
At restrained DOF, we know the displacements but the forces (support reactions) are unknown
At free DOF (blue), we know the forces (applied joint loads) but the displacements are unknown
Structure System of Equations: Free DOF
!"" !"# !"$ !"% !"& !"'!#" !## !#$ !#% !#& !#'!$" !$# !$$ !$% !$& !$'!%" !%# !%$ !%% !%& !%'!&" !&# !&$ !&% !&& !&'!'" !'# !'$ !'% !'& !''
(")#($)%(&)'
Δ"+#Δ$+%Δ&+'
=
x
34
L1
12 6
5EI1
EI2
DOF 3 are 4 are free DOF;
DOF 1, 2, 5,and 6 are restrained(support) DOF
At restrained DOF, we know the displacements (all equal to zero) but the forces (support reactions) are unknown
At free DOF (blue), we know the forces (applied joint loads) but the displacements are unknown
Free DOF System of Equations
!"" !"# !"$ !"% !"& !"'!#" !## !#$ !#% !#& !#'!$" !$# !$$ !$% !$& !$'!%" !%# !%$ !%% !%& !%'!&" !&# !&$ !&% !&& !&'!'" !'# !'$ !'% !'& !''
(")#($)%(&)'
00Δ$,%00
=
x
34
12 6
5V3
M4
Suppose we have loads applied to joint 2
Free DOF Equation Set
Solve for Displacements at Free DOF
x
34
12 6
5V3
!"" !"#!#" !##
∆"%# = '"
(#
Solvefor∆" and%#
M4
DOF 1, 2, 5 and 6 are restrained (support) DOF
After displacements are found, multiply to find unknown forces (support reactions)
Δ3 and θ4, found from previous step
Find Support Reactions
!"" !"# !"$ !"% !"& !"'!#" !## !#$ !#% !#& !#'!$" !$# !$$ !$% !$& !$'!%" !%# !%$ !%% !%& !%'!&" !&# !&$ !&% !&& !&'!'" !'# !'$ !'% !'& !''
(")#($)%(&)'
00Δ$,%00
=
!"$ !"%!#$ !#%!&$ !&%!'$ !'%
(")#(&)'
Δ$,%=