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BEARING STRESS
BARRIENTOS, Lei AnneMARTIREZ, WilburMORIONES, Jan EbenezerNERI, Laiza Paulene
MAPUA INSTITUTE OF TECHNOLOGY
MEC32/A1
Members:
TOPICS
THEORY ON BEARING STRESS
FORMULA FOR BEARING STRESS
EXAMPLES ON BEARING STRESS
Bearing stress is a contact pressure between separate bodies. It differs from compressive stress because compressive stress is the internal stress caused by a compressive force.
FORMULA:
π π=ππ
π΄πWhere:
ππβπππππππ π ππ£πππππ
π΄πβ hπ πππππ‘ππππ π‘ππ ππππππππππππππ’πππ π‘π ππ
π πβππππππππ π‘πππ π
DIFFERENCE BETWEEN NORMAL, SHEAR AND BEARING STRESSES
Normal Stress β stress normal to the surface
Shearing Stress β stress tangent to the surface
Bearing Stress β compressive force divided by the characteristic area perpendicular to it
Bearing Stress β compressive force divided by the characteristic area perpendicular to it
In Fig. 1-12, 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 rivet. Determine (a) the minimum thickness of each plate; and (b) the largest average tensile stress in the plates.
PROBLEM 1
a) From shearing of rivet:
π=π π΄πππ£ππ‘π =60 [ 14 π (20)2]=6000ππ From bearing of plate material:
π=ππ π΄π
π‘=7.85ππ
b) Largest average tensile stress in the plate: π=π π΄
6000π=π [7.85(110β20) ]
SOLUTION
In the clevis shown in Fig. 1-11b, 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.
PROBLEM 2
For shearing of rivets (double shear):
14=20 [2(0.8618 π‘) ]
14=12 [2 ( 14 π π2)]
For bearing of yoke:π=ππ π΄π
SOLUTION
The lap joint shown in the figure is fastened by three 20 mm. diameter rivets. Assuming that P=50 Kn.1. Determine the shearing stress in each rivet.
2. Determine the bearing stress in each plate.
3. Determine the maximum average tensile stress in each plate. Assume that the axial load P is distributed equally among the three rivets.
PROBLEM 3
SOLUTION
1. Shearing stress in each rivet
2. Bearing Stress in each plate
3. Maximum tensile stress in each plate
ππππ₯=ππ΄πππ‘
π΄πππ‘=(130β20 ) (25 )=2750ππ2
For the lap joint shown in the figure.
1. Determine the maximum safe load P which may be applied if the shearing stress in the rivets is limited to 60 MPa.
2. Determine the safe load P which may be applied if the bearing stress of the plate is limited to 110 Mpa.3. Determine the safe load P if the average tensile stress of the plate is limited to 140 Mpa.
PROBLEM 4
1. Safe load P due to shear of rivets
2. Load P due to bearing of plates
3. Load P due to tearing of plates
P =
π΄πππ‘=(130β20 ) (25 )=2750ππ2
Therefore, maximum safe load, P=56 5 N (shearing of rivets govern).
SUMMARY
Bearing stress is a contact pressure between separate bodies.
Where:
REFERENCES
Strength of Materials 4th Edition by Andrew Pytel and Ferdinand L. Singer
Mechanics of Materials 2nd Edition by Andrew Pytel and Jaan KiusalaasβHow materials carry load?β http://emweb.unl.edu/Department of Engineering Mechanics, University of Nebraska, Lincoln, NELast modified at: 3:07 PM, Wednesday, August 30, 2000
