Can someone help? The figure shows a cross-member of a bridge lying in the xy pl
ID: 1450803 • Letter: C
Question
Can someone help?
The figure shows a cross-member of a bridge lying in the xy plane of the page. The x- direction is horizontal and the y-direction is vertical. Gravity pulls down on the cross- member in the -y-direction. The mass of the member is M = 142 kg and its center of mass is at its geometrical center. Two forces, (1) F (with x and y components) acting at A and R (also with a- and y components) acting at O, represent the contacts at the ends of the member. The angle theta = 41.7degree and R_y = +2Mg. (a) what is R_x? N(plusminus 20 N) (b) What is F_x? N(plusminus 20 N) (c) What is F_y? N(plusminus 20 N).Explanation / Answer
Here
Rx = -Fx
Fx is the horizontal component of the force of member of bridge
So Fx= mgcos
Here given m=103kg, = 41.7o
Fx = (103)x (9.81) cos (41.7o)
= 1010.43 x0.7466 = 754.4N
Fx = 754.4N
F= 754.4N
Fy = mg sin
= 103 x 9.81 x sin 41.7o
= 672.2N