Question 15.2: The simply supported prismatic beam AB carries a uni- 611 fo...
The simply supported prismatic beam AB carries a uni-formly distributed load ω per unit length (Fig. 15.12). Determine the equation of the elastic curve and the maximum deflection of the beam.
Drawing the free-body diagram of the portion AD of the beam (Fig. 15.13) and taking moments about D, we find that
M = \frac{1}{2} wL x – \frac{1}{2} wx^{2} (15.12)
Substituting for M into Eq. (15.4) and multiplying both members of this equation by the constant EI, we write
EI \frac{d^{2}y}{dx^{2}} = \frac{M(x)}{EI} (15.4)
EI \frac{d^{2}y}{dx^{2}} = – \frac{1}{2} wx^{2} + \frac{1}{2} wL x (15.13)
Integrating twice in x, we have
EI \frac{dy}{dx}= – \frac{1}{6} wx^{3} + \frac{1}{4} wL x^{2} + C_{1} (15.14)
EI y = – \frac{1}{24} wx^{4}+ \frac{1}{2} wL x^{3} + C_{1}x + C_{2} (15.15)
Observing that y = 0 at both ends of the beam (Fig. 15.14), we first let x = 0 and y = 0 in Eq. (15.15) and obtain C_{2} = 0. We then make x = L and y = 0 in the same equation and write
0 = – \frac{1}{24} wL^{4} + \frac{1}{12} wL^{4} + C_{1}L
C_{1} = – \frac{1}{24} wL^{3}
Carrying the values of C_{1} and C_{2} back into Eq. (15.15), we obtain the equation of the elastic curve:
EI y = – \frac{1}{24} wx^{4} + \frac{1}{12} wL x^{3} – \frac{1}{24} wL^{3}x
or
y = \frac{w}{24EI} (-x^{4} + 2Lx^{3} – L^{3}x) (15.16)
Substituting into Eq. (15.14) the value obtained for C_{1}, we check that the slope of the beam is zero for x = L/2 and that the elastic curve has a minimum at the midpoint C of the beam (Fig. 15.15). Letting x = L/2 in Eq. (15.16), we have
y_{C} =\frac{w}{24EI} \left(- \frac{L^{4}}{16} + 2L \frac{L^{3}}{8} – L^{3} \frac{L}{2} \right) = – \frac{5wL^{4}}{384EI}
The maximum deflection or, more precisely, the maximum absolute value of the deflection, is thus
|y|_{max} = \frac{5wL^{4}}{384EI}
