VECTOR MECHANICS FOR ENGINEERSapl100.wdfiles.com/local--files/notes/chapter6.pdfVECTOR MECHANICS FOR...
Transcript of VECTOR MECHANICS FOR ENGINEERSapl100.wdfiles.com/local--files/notes/chapter6.pdfVECTOR MECHANICS FOR...
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VECTOR MECHANICS FOR ENGINEERS:
STATICS
Eighth Edition
Ferdinand P. Beer
E. Russell Johnston, Jr.
Lecture Notes:
J. Walt Oler
Texas Tech University
CHAPTER
© 2007 The McGraw-Hill Companies, Inc. All rights reserved.
6 Analysis of
Structures
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Analysis of Frames
6 - 3
•Frames and machines are structures with at least one multiforce member.
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Analysis of Frames
6 - 4
•Frames are designed to support loads and are usually stationary.
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Analysis of Frames
6 - 5
•Machines contain moving parts and are designed to transmit and modify forces.
50 lb
50 lb
5” 2”
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Analysis of Frames
6 - 6
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Analysis of Frames
6 - 7
•A free body diagram of the complete frame is used to determine the external forces acting on the frame.
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Analysis of Frames
6 - 8
•Internal forces are determined by dismembering the frame and creating free-body diagrams for each component.
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Analysis of Frames
6 - 9
•Forces on two force members have known lines of action but unknown magnitude and sense.
•Forces on multiforce members have unknown magnitude and line of action. They must be represented with two unknown components.
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Analysis of Frames
6 - 10
•Forces between connected components are equal, have the same line of action, and opposite sense.
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6 - 11
•A free-body diagram of the complete frame indicates four unknown force components which can not be determined from the three equilibrium conditions.
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Frames Which Cease To Be Rigid When Detached From Their Supports
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•The frame must be considered as two distinct, but related, rigid bodies.
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Frames Which Cease To Be Rigid When Detached From Their Supports
6 - 13
•With equal and opposite reactions at the contact point between members, the two free-body diagrams indicate 6 unknown force components.
•Equilibrium requirements for the two rigid bodies yield 6 independent equations.
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6 - 14
The structure is statically determinate and rigid. All unknowns can be determined and all equations satisfied. If there are more unknowns than equations then the structure is indeterminate. If there are fewer unknowns than equations then the structure is non-rigid.
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6 - 15
Look up sample problem 6.5
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6 - 16
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6 - 17
•Here EF makes the system rigid and it is no longer possible to determine the external reactions at A and B. We have 3 members and 9 equations. However, the unknowns are Ax, Ay,Bx,By,Ex,Ey,Fx,Fy, Cx,Cy.
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6 - 18
Either we say EF is a two force member and then don’t use it. In that case we have seven unknowns and only six equations. If we use EF, we have three equations from it.
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6 - 19
Look up questions 6.119 to 6.121
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Sample Problem 6.4
6 - 24
Members ACE and BCD are connected by a pin at C and by the link DE. For the loading shown, determine the force in link DE and the components of the force exerted at C on member BCD.
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Sample Problem 6.4
6 - 25
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Sample Problem 6.4
6 - 26
SOLUTION:
•Create a free-body diagram for the complete frame and solve for the support reactions.
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6 - 27
Cx Cy FDE Ax Ay B
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Sample Problem 6.4
6 - 28
07.28tan150801
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Sample Problem 6.4
6 - 29
N 4800 yy AF N 480yA
mm 160mm 100N 4800 BM A
N 300B
xx ABF 0 N 300xA
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Sample Problem 6.4
6 - 30
•Define a free-body diagram for member BCD. The force exerted by the link DE has a known line of action but unknown magnitude. It is determined by summing moments about C.
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Sample Problem 6.4
6 - 31
07.28tan150801
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Sample Problem 6.4
6 - 32
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Sample Problem 6.4
6 - 33
0 sin 250 mm
300 N 60 mm 480 N 100 mm
C DEM F
CFDE N 561
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Sample Problem 6.4
6 - 34
N 300cosN 561 0
N 300cos0
x
DExx
C
FCF
N 795xC
N 480sinN 5610
N 480sin0
y
DEyy
C
FCF
N 216yC
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Sample Problem 6.4
6 - 35
•With member ACE as a free-body, check the solution by summing moments about A.
0mm 220795mm 100sin561mm 300cos561
mm 220mm 100sinmm 300cos xDEDEA CFFM
(checks)
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Machines
6 - 36
•Machines are structures designed to transmit and modify forces. Their main purpose is to transform input forces into output forces.
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Machines
6 - 37
•Given the magnitude of P, determine the magnitude of Q.
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Machines
6 - 38
•Create a free-body diagram of the complete machine, including the reaction that the wire exerts.
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Machines
6 - 39
•Use one of the components as a free-body. Taking moments about A,
Pb
aQbQaPM A 0
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Example: Simple pliers
6 - 40
For the machine (simple pliers) shown, determine the magnitude of the gripping forces when two 50-lb forces are applied as shown. Also determine the mechanical advantage.
50 lb
50 lb 5” 2”
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Example: Simple pliers
6 - 41
50 lb
50 lb 5” 2”
forceInput
forceOutput advantage Mechanical
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6 - 42
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samprob_04_09a
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Objective
6 - 44
To analyze a truss and determine stresses in it members.
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Definition of a Truss
6 - 45
•A truss consists of straight members connected at joints.
•No member is continuous through a joint.
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Definition of a Truss
6 - 46
•Most structures are made of several trusses joined together to form a space framework. Each truss carries those loads which act in its plane and may be treated as a two-dimensional structure.
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Examples of Trusses
6 - 47
Photo 6.1 - Pin-jointed connection of the approach span to the San Francisco-Oakland Bay Bridge
Gusset plate
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Examples of Trusses
6 - 48
Joints are often bolted, riveted, or welded. Gusset plates are also often included to tie the members together. However, the members are designed to support axial loads so assuming that the joints act as if they are pinned is a good approximation.
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Definition of a Truss
6 - 49
•Forces acting at the member ends reduce to a single force and no couple. Only two-force members are considered.
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Definition of a Truss
6 - 50
•When forces tend to pull the member apart, it is in tension. When the forces tend to compress the member, it is in compression.
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Members of a truss are slender and not capable of supporting large lateral loads. Loads must be applied at the joints.
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In a bridge, the load is first transmitted to the stringers, then to the floor beams and finally to the joints of the two supporting side trusses.
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Definition of a Truss
6 - 53
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Examples of Trusses
6 - 54 Roof trusses – Safeco Field in Seattle
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Examples of Trusses
6 - 55
The roof truss shown is formed by two planar trusses connected by a series of purlins.
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Examples of Trusses
6 - 56
Photo 6.3 - Because roof trusses, such as those shown, require support only at their ends, it is possible to construct buildings with large unobstructed floor areas.
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Simple Trusses
6 - 57
•A rigid truss will not collapse under the application of a load.
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Retreating armies and bomb.
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Simple Trusses
6 - 59
•A simple truss is constructed by successively adding two members and one connection to the basic triangular truss.
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Simple Trusses
6 - 60
•In a simple truss, m = 2n - 3 where m is the total number of members and n is the number of joints.
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Simple Trusses
6 - 61
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6 - 62
Method of Joints
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Analysis of Trusses by the Method of Joints
6 - 63
•Dismember the truss and create a free body diagram for each member and pin.
•The two forces exerted on each member are equal, have the same line of action, and opposite sense.
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Analysis of Trusses by the Method of Joints
6 - 64
•The two forces exerted on each member are equal, have the same line of action, and opposite sense.
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Analysis of Trusses by the Method of Joints
6 - 65
•Forces exerted by a member on the pins or joints at its ends are directed along the member and equal and opposite.
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6 - 66
•Conditions of equilibrium on the pins provide 2n equations for 2n unknowns. For a simple truss, 2n = m + 3. May solve for m member forces and 3 reaction forces at the supports.
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6 - 67
•Conditions of equilibrium on the pins provide 2n equations for 2n unknowns. For a simple truss, 2n = m + 3. May solve for m member forces and 3 reaction forces at the supports.
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Analysis of Trusses by the Method of Joints
6 - 68
•Conditions for equilibrium for the entire truss provide 3 additional equations which are not independent of the pin equations.
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Joints Under Special Loading Conditions
6 - 69
•Forces in opposite members intersecting in two straight lines at a joint are equal.
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Joints Under Special Loading Conditions
6 - 70
•The forces in two opposite members are equal when a load is aligned with a third member. The third member force is equal to the load (including zero load).
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6 - 71
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Joints Under Special Loading Conditions
6 - 72
•The forces in two members connected at a joint are equal if the members are aligned and zero otherwise.
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Example: Problem 6.29
6 - 73
For the given loading, determine the zero-force members in the truss shown.
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Example: Problem 6.29
6 - 74
MN, LM, IJ, IL, BC,CD
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6 - 75
Why are zero-force members necessary? Increase stability of truss during construction. To provide support, if loading is changed.
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Sample Problem 6.1
6 - 76
Using the method of joints, determine the force in each member of the truss.
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6 - 77
•Based on a free-body diagram of the entire truss, solve the 3 equilibrium equations for the reactions at E and C.
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Sample Problem 6.1
6 - 78
•Joint A is subjected to only two unknown member forces. Determine these from the joint equilibrium requirements.
•In succession, determine unknown member forces at joints D, B, and E from joint equilibrium requirements.
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6 - 79
m 63.6mN 10007.2mN 2000
0
E
M C
N 000,10E
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6 - 80
xx CF 0
0xC
yy CF N 10,000 N 1000 - N 20000
N 7000yC
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6 - 81
•Joint A
0
0
y
x
F
F
0sin2000
0cos
ADy
ADABx
FF
FFF
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6 - 82
1500 N
2500 N
AB
AD
F
F
CF
TF
AD
AB
N 2500
N 1500
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6 - 83
•joint D.
35
2
DB AD
DE AD
F F
F F
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6 - 84
CF
TF
DE
DB
N 3000
N 2500
2500 N
3000 N
DB
DE
F
F
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6 - 85
• joint B.
N 3750
25001000054
54
BE
BEy
F
FF
CFBE N 3750
N 5250
375025001500053
53
BC
BCx
F
FF
TFBC N 5250
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6 - 86
•There is one unknown member force at joint E. Assume the member is in tension.
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6 - 87
N 8750
37503000053
53
EC
ECx
F
FF
CFEC N 8750
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Sample Problem 6.1
6 - 88
•All member forces and support reactions are known at joint C. However, the joint equilibrium requirements may be applied to check the results.
checks 087507000
checks 087505250
54
53
y
x
F
F
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6 - 89
Method of Sections
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Analysis of Trusses by the Method of Sections
6 - 90
•When the force in only one member or the forces in a very few members are desired, the method of sections works well.
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Analysis of Trusses by the Method of Sections
6 - 91
•To determine the force in member BD, pass a section through the truss as shown and create a free body diagram for the left side.
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Analysis of Trusses by the Method of Sections
6 - 92
•With only three members cut by the section, the equations for static equilibrium may be applied to determine the unknown member forces, including FBD.
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Trusses Made of Several Simple Trusses
6 - 93
•Compound trusses are statically determinate, rigid, and completely constrained.
32nmnon-rigid rigid
32nm 42nm
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Trusses Made of Several Simple Trusses
6 - 94
•Truss contains a redundant member and is statically indeterminate.
32nmnon-rigid rigid
32nm 42nm
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Trusses Made of Several Simple Trusses
6 - 95
•Additional reaction forces may be necessary for a non-rigid truss.
non-rigid rigid 32nm 42nm
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Trusses Made of Several Simple Trusses
6 - 96
•Necessary but insufficient condition for a compound truss to be statically determinate, rigid, and completely constrained, nrm 2
non-rigid rigid 32nm 42nm
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Sample Problem 6.3
6 - 97
Determine the force in members FH, GH, and GI.
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Sample Problem 6.3
6 - 98
SOLUTION:
•Take the entire truss as a free body. Apply the conditions for static equilibrium to solve for the reactions at A and L.
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6 - 99
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Sample Problem 6.3
6 - 100
kN 5.12
kN 200
kN 5.7
m 25kN 1m 25kN 1m 20
kN 6m 15kN 6m 10kN 6m 50
A
ALF
L
L
M
y
A
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Sample Problem 6.3
6 - 101
•Pass a section through members FH, GH, and GI and take the right-hand section as a free body.
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6 - 102
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6 - 103
kN 13.13
0m 33.5m 5kN 1m 10kN 7.50
0
GI
GI
H
F
F
M
TFGI kN 13.13
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6 - 104 kN 82.13
0m 8cos
m 5kN 1m 10kN 1m 15kN 7.5
0
07.285333.0m 15
m 8tan
FH
FH
G
F
F
M
GL
FG
CFFH kN 82.13
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6 - 105 kN 371.1
0m 10cosm 5kN 1m 10kN 1
0
15.439375.0m 8
m 5tan
32
GH
GH
L
F
F
M
HI
GI
CFGH kN 371.1
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Determine the force in members IK and HK of the truss shown
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•An elementary space truss consists of 6 members connected at 4 joints to form a tetrahedron.
•A simple space truss is formed and can be extended when 3 new members and 1 joint are added at the same time.
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•In a simple space truss, m = 3n - 6 where m is the number of members and n is the number of joints.
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•Conditions of equilibrium for the joints provide 3n equations. For a simple truss, 3n = m + 6 and the equations can be solved for m member forces and 6 support reactions.
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•Equilibrium for the entire truss provides 6 additional equations which are not independent of the joint equations.
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Photo 6.4 – Three-dimensional or space trusses are used for broadcast and power transmission line towers, roof framing, and spacecraft applications, such as components of the International Space Station.
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