Structural Engineering

Draft

12.2FlexuralStresses 205

M 0 =

(:183)(40)

2

8

= 36: 6 k.ft (12.9-b)

The
exuralstresseswillthus be equalto:

f

w 0

1 ; 2

=

M 0

S 1 ; 2

=

(36:6)(12;000)

1 ; 000

= 439 psi (12.10)

f 1 =

Pi

Ac

1

ec 1

r

2

M 0

S 1

(12.11-a)

= 83 439 = 522 psi (12.11-b)

fti = 3

q

f

0 c

= +190

p

(12.11-c)

f 2 =

Pi

Ac

1 +

ec 2

r

2

M 0

S 2

(12.11-d)

= 1 ; 837 + 439= 1 ; 398 psi (12.11-e)

fci = : 6 f

0 c=^2 ;^400

p

(12.11-f)

PeandM 0. If we have 15%losses,thentheeective forcePeis equalto (1 0 :15)169=

144 k

f 1 =

Pe

Ac

1

ec 1

r

2

M 0

S 1

(12.12-a)

=

144 ; 000

176

1

(5:19)(12)

68 : 2

439 (12.12-b)

= 71 439 = 510 psi (12.12-c)

f 2 =

Pe

Ac

1 +

ec 2

r

2

M 0

S 2

(12.12-d)

=

144 ; 000

176

1 +

(5:19)(12)

68 : 2

439 (12.12-e)

= 1 ; 561 + 439= 1 ; 122 psi (12.12-f)

notethat 71 and 1 ; 561 arerespectivelyequalto (0:85)(83)and(0:85)( 1 ;837)

respectively.

PeandM 0 +MDL+MLL

MDL+MLL=

(0:55)(40)

2

8

= 110k.ft (12.13)

andcorrespondingstresses

f 1 ; 2 =

(110)(12;000)

1 ; 000

= 1 ; 320 psi (12.14)

Thus,

f 1 =

Pe

Ac

1

ec 1

r

2

M 0 +MDL+MLL

S 1

(12.15-a)

Structural Engineering

Draft

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