Thus, using the ACI Code, E 0 = (145)
15
(33)(4000)°-
5
= 3,644,000 IMn
2
(25,125.4
MPa).- Construct the prestress-moment diagrams associated
with the three cases described
See .Fig. 38. By symmetry, the elastic curve corresponding to F 1 is horizontal at midspan.
Consequently, A^ equals the deviation of the elastic curve at the support from the tangent
to this curve at midspan. - Using the literal values shown in Fig. 38, develop an equation
for Ap by evaluating the tangential deviation; substitute
numerical values
Thus, case a:
V^
or A^ = 430,000(8.8)(36)^2 (144)/[8(3,644,000)(40,000)] = 0.61 in (15.494 mm). For case
b:
= M(2L^2La-a^
p 24EJ ^ }or A^ = 0.52 in (13.208 mm). For case c:
A
5ML
A * ^m
'=^7(60)or Ap = 0.51 in (12.954 mm).- Compute Aw
Thus, Aw - -5ww/,^4 /(384£c/) = -0.09 in (-2.286 mm). - Combine the foregoing results to obtain A 7 -
Thus: case a, A, = 0.61 - 0.09 = 0.52 in (13.208 mm); case b, A, = 0.52 - 0.09 = 0.43 in
(10.922 mm); case c, A,- = 0.51 - 0.09 - 0.42 in (10.688 mm).
(a) StraigM tendons (b) Deflected tendons (c) Parabolic tendonsFIGURE 38. Prestress-moment diagrams.