Also, moment equilibrium (or concurrency) gives: The line of ( R ) must pass through I.
Ignore friction at the hinge.
So I = (2.5 cos50°, 5 sin50°).
Given the intersection I, distances: Let’s put coordinates: A = (0,0), B = (5 cos50°, 5 sin50°). Weight at midpoint M = (2.5 cos50°, 2.5 sin50°). Rope at B, horizontal left. Intersection I: Horizontal line through B: y_B = 5 sin50°. Vertical through M: x_M = 2.5 cos50°. Also, moment equilibrium (or concurrency) gives: The line
So ( R = \frac200\sin\alpha = \frac200\sin 67.2° \approx \frac2000.922 \approx 216.9 , N). 5 sin50°). Given the intersection I
Forces in y-direction: [ R_y = W = 200 , N ] B = (5 cos50°
Question: Trouvez les tensions ( T_1 ) et ( T_2 ) dans les câbles.