Find the tension in the two cords shown in the figure above. Neglect the mass of the cords, and assume that the angle is 38Β° and the mass m is 220 kg
[Take g = 9.8 ms-2]
- \(T_1\) = 2864 N, \(T_2\)= 3612 N
- \(T_1\)= 3612 N, \(T_2\) = 2864 N
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\(T_1\)= 3502 N, \(T_2\)= 2760 N
- \(T_1\) = 2760 N, \(T_2\) = 3502 N
The correct answer is: C
Explanation
W = mg = 220 x 9.8 = 2156 N
βSin 38ΒΊ = \(\frac{2156}{T_1}\)
β \(T_1\) = \(\frac{2156}{Sin 38}\)
β \(T_1\) = 3502 N
Cos 38ΒΊ = \(\frac{T_2}{T_1}\)
β \(T_2\) = 3502 x Cos 38ΒΊ
β \(T_2\) = 2760 N
; \(T_1\) = 3502 N, \(T_2\) = 2760 N.
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