strength of materials 2013a
DESCRIPTION
Strength of MaterialsTRANSCRIPT
-
Strength of Materials(I)
Engr. Reynaldo P. Roca
Reviewer
-
A structural system is not only effected by external conditions,
but also by the properties and behavior of the materials which
comprise it. These also determine the nature of the system's
reaction(s) to external forces. The study of Strength of Materials
is concerned specifically with the following issues:
1. the internal forces of a member caused by the external forces
acting on that member or system.
2. the changes in dimension of a member caused by these forces.
3. the physical properties of the material in the member
Strength of Material
-
z
x
y
Mzz
Pxz
Mxy
Mxx
Pxy
Pxx
F1
F2
Components of internal effects of f the
Applied loads
-
Pxx Axial force. This force measures the pulling (or pushing ) action perpendicular to the section.
Pxy Pxz Shear force. These are components of the total resistance to
sliding the portion to one side of the exploratory section past the
other.The resultant force is usually designated byV and its
components by Vy and Vz.
Mxx Torque. This components measures the resistance to twisting the
member and is commonly given the symbol T.
Mxy,Mxz Bending moments. These components
measure the resistance to bending the member
about the y or z axes and are often denoted
merely by My or Mz.
-
Where: = stress
P = applied load
A = cross sectional area
Simple Stress Stress. The unit strength of a material.It is also the
intensity of internal force.
= P
A
Classification of Simple Stress
1. Normal Stress- develops when a force is applied perpendicular to the
cross-sectional area of the material.
If the force is going to pull the material, the stress is said to be tensile stress and compressive stress develops when the material is being compressed by two
opposing forces
2. Shearing Stress
3. Bearing Stress
-
Shearing stress. Caused by forces acting along
or parallel to the area resisting the forces.
-produced whenever the applied loads cause
one section of a body to tend to slide past its
adjacent section.
= V where: = shearing stress
A V = resultant shearing force
A = area under shear
-
Bearing stress. Caused by contact pressure
between separate bodies.
-
1. A homogeneous 800-kg bar AB is supported at either end by a cable as shown. Calculate the smallest
area of each cable if the stress is not to exceed 90 MPa in bronze and 120 Mpa in steel.
2. A rod is composed of an aluminum section rigidly attached between steel and bronze
sections as shown. Axial loads are applied at the positions indicated . If P = 3000 lb and the
cross sectional area of the rod is 0.5 in2, determine the stress in each section.
-
3. For the truss shown, calculate the stresses in members CE, DE, and DF. The cross
sectional area of each member is 1.8 in2. Indicate tension(T) or compression(C).
30kips
A B
C
D
E
F
8 ft 8 ft 8 ft 6 ft
6 ft
4. Determine the diameter d of the steel bolts N of
a press for a maximum compressive P= 100,000
lbs if the working stress for steel in this case is
10,000 psi.
-
5. The homogeneous bar shown is supported by a smooth pin at C and a cable that
runs from A to B around the smooth peg at D. Find the stress in the cable if its
diameter is 0.6 inch and the bar weighs 6000 lb.
6. Find the smallest diameter bolt that can be used in the clevis shown if P = 400
kN. The shearing strength of the bolt is 300 MPa.
-
6. What force is required to punch a 20 mm diameter hole in a plate that is 25 mm
thick? The shear strength is 350 MN/m2.
7. Compute the shearing stress in the pin at B for the member supported as shown.
The pin diameter is 20 mm.
250mm
B
200mm
A 40 kN
350
C
-
9. In the clevis shown , find the minimum bolt diameter and the minimum thickness of each yoke that will support a load P = 14 kips without exceeding a shearing stress of 12
ksi and a bearing stress of 20 ksi.
8. Assume that a 20 mm diameter rivet joins the plates that are each 110 mm wide. The
allowable stresses are 120 MPa for Bearing in the plate material and 60 Mpa for shearing
of the rivet. Determine (a) the minimum thickness of each plate; and (b) the largest
average tensile stress in the plates.
-
Thin -Walled Pressure Vessels
Pressure vessels are exceedingly important in industry. Normally two types of pressure vessel are
used in common practice such as cylindrical pressure vessel and spherical pressure vessel.
A tank or pipe carrying a fluid or gas under a pressure is subjected to tensile forces, which resist
bursting, developed across longitudinal and transverse sections.
By thin walled cylinder we mean that the thicknesst' is very much smaller than the radius Ri and
we may quantify this by stating that the ratio t / Ri should be less than 0.1.
In the analysis of this walled cylinders subjected to internal pressures it is assumed that the radial
planes remains radial and the weight of the fluid is considered neglible.
Tangential stress- stress acts tangent to the surface of the cylinder also known as circumferential
stress, hoop stress and girth stress. This is the stress which is set up in resisting the bursting effect
of the applied pressure .
Longitudinal stress - stress acts parallel to the longitudinal of the axis of the cylinder.
-
t = PD
2t Where:
t = tangential stress
P = pressure
D = diameter of the cylinder
t = thickness
-
where: L= longitudinal stress P = pressure
D= Diameter of Cylinder
t = Thickness
-
1. A cylindrical steel pressure vessel 400 mm in diameter with a wall thickness of 20 mm,
is subjected to an internal pressure of 4.5 MN/m2.
(a) Calculate the tangential and longitudinal stresses in the steel.
(b) to what value may the internal pressure be increased if the stress in the steel
is limited to 120 MN/m2?
( c) If the internal pressure were increased until the vessel burst, sketch the type
of fracture that would occur.
2. Calculate the minimum wall thickness for a cylindrical vessel that is to carry a
gas at a pressure of 1400 psi. The diameter of the vessel is 2 ft, and the stress is
limited to 12 ksi.
-
STRAIN
DEFINITION
-
Stress-Strain Diagram
x
x x
x
x
x
Stress
=P/A
Strain = / L
Proportional limit
Elastic limit
Yield point
Actual rupture
strength
Rupture
strenth
Ultimate strength
-
Proportional limit. Stress is proportional to strain.
Elastic limit. Stress beyond which the material will not return to
its original shape when unloaded but will retain a permanent
deformation called permanent set.
Yield point. The point at which there is an appreciable elongation
or yielding of the material without any corresponding increase
of load.
Ultimate strength. The highest ordinate on the stress-strain curve.
Rupture strength. Stress at failure.
The slope of the line from o to proportional limit is called the
modulus of elasticity.
E = / or = E
where: = stress
= strain
E =modulus of elasticity
-
1. A steel wire 30 ft long, hanging vertically, supports a load of 500 lb. Neglecting the
weight of the wire, determine the required diameter if the stress is not to exceed 20 ksi
and the total elongation is not to exceed 0.20 in. Assume E = 29 106 psi.
2. An aluminum bar having a cross-sectional area of 0.5 in.2 carries the axial loads
applied at the position shown. Compute the total change in length of the bar if E =
10 x 106 F psi. Assume that the bar is suitably braced to prevent lateral buckling.
-
4. . The rigid bar AB,attached to two vertical rods as shown is horizontal before the load P is applied .Determine the vertical movement of P if its magnitude is 50 KN.
3. The rigid bar ABC shown is hinged at A and supported by a steel rod at B.
Determine the largest load P that can be applied at C if the stress in the steel rod is
limited to 30 ksi and the vertical movement of end C must not exceed 0.10 in.