38 CHAPTER 1. PROPERTIES OF MATTER
Load
(kg)Travelling Microscope
ReadingsDepression
for load
M= 0.05 kg
(m)Load
increasing(m)Load
decreasing(m)Mean
(m)L+ 0.05LL+ 0.10
L+ 0.15
L+ 0.20
L+ 0.25
Mean Depression (y) =Figure 1.34: Non-Uniform bending - Measurement of depression at the mid point of the
beam
Self Learning Activity : Young’s Modulus Non-uniform BendingUsing the non-unifrom bending simulator, determine Young’s
moduli of the available materials.
URL: http://vlab.amrita.edu/?sub=1&brch=280&sim=
1509&cnt=1Worked out Example 1.11.2A 1 m bar with square cross-section of
side 5 mm is supported horizontally at its
ends and is loaded with 100 g mass at the
middle. The mid point is depressed by
1.96 mm due to the load. Calculate the
Young’s Modulus of the material of the
load.Solution:
Since the beam is supported at its ends
and loaded at the middle, its bending is
nonuniform. Length between supports (l)= 1 m. Square cross-section of side 5 mm
impliesb=d=0. 005 m. Depression at
the mid point (y) = 1.96◊ 10 ≠^3 m. Mass
that produces the depression (M) = 0.1
kg. Then, Young’s Modulus is given by,Y =Mgl^3
4 bd^3 y=(0. 1 kg)(9.8m/s^2 )(1m)^3
4(5◊ 10 ≠^3 m)(5◊ 10 ≠^3 m)^3 (1. 96 ◊ 10 ≠^3 m)
=20.204 GPa1.12 Stress due to bending in beams
There are no longitudinal stresses or strains at the neutral axisNNÕ (Figure1.35)ofa
bent beam. If radius of curvature of the neutral surface =R, then strain in layer EF at
a distancexfrom the neutral axisNNÕ=x/R. Stress due to bending at layer EF is
‡(x) = (YoungÕs Modulus)◊(Strain in layer EF) =Y◊(^3) x
R
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