Civil Engineering Reference
In-Depth Information
340
1 : 0
Then, t 1 ¼ 37.8 mm, taken as 50 mm, as shown in Figure 4.123 .
The radius of the curved part of the upper bearing plate, which has a
length of 700 mm as shown in Figure 4.123 , can be determined the same
way as that adopted for the design of the rollers:
109,668,000
225 t 1 ¼
f u
550 2
210,000
1
g 2 m ¼ 23 R
1
1 ¼ 33
N
Rd ¼ 23 R
E d
:
131 R
36 10 3
700
R D+L+ F
700 ¼
2193
:
N
Sd ¼
¼ 3133
:
4N
=
mm
Then, the radius of rollers can be determined by equalizing N Sd
with
N Rd
as follows:
131 R
Then, 94.6 mm, taken as 100 mm.
3133
:
4 ¼ 33
:
Design of Lower Bearing Plate
The lower bearing plate is shown in Figure 4.123 . The width and length of
the plate are dependent on the strength of concrete and are dependent on the
spacing between rollers and the length of rollers as well as the allowed move-
ment in the direction of rollers. The thickness of the upper bearing plate can
be determined as follows:
36 10 3
600 900 ¼ 4
R D+L+ F
a 3 b 3 ¼
2193
:
f c
g c ¼
40
1
f c ¼
:
06MPa
<
5 ¼ 26
:
7MPa (for a
:
typical concrete in bridges of C40/50 with f ck )
The plate thickness t 3 can be calculated from the distribution of bending
moment, caused by the pressure on the concrete foundation, as follows:
81, 200Nmm per unit width of the plate:
b 3 t 3
1 t 3
25 t 2 mm 3
W pl ¼
4 ¼
4 ¼ 0
:
f y
g M0
M
W pl ¼
81200
340
1
25 t 3 ¼
0
Then, t 3 ¼ 30.9 mm, taken as 40 mm, as shown in Figure 4.123 .
0
:
:
Search WWH ::




Custom Search