Thushari Jaya sekera 1. Question 1 is composed of 4 aparts. Answer each part in
ID: 1570965 • Letter: T
Question
Thushari Jaya sekera 1. Question 1 is composed of 4 aparts. Answer each part in detail and show all work. (a) 7 points A 6.0kg object moving 5.0m/s collides with and sticks to a 2.0kg object. After the collision the composite object is moving 2.0m/s in a direction opposite to the initial direction of motion of the 6.0kg object. Determine the speed of the 2.0kg object before the collision. (b) 7 points A 2.0kg object moving 3.0m/s strikes a 1.0kg object initially at rest. Immedi ately after the co on, the 2.0kg object has a velocity of 1.5m/s directed 300 from its initial direction of motion. What is the i component of the velocity of the 1.0kg object just after the collision?Explanation / Answer
1.(a)
Let the direction of the intitial velocity of the 6 kg block be positive. Let the speed of 2 kg block be v before collision.
Now applying conservation of momentum principle,we have
(6 kg)(5 m/s) + (2 kg)v = -(6 kg + 2kg)(2 m/s)
or, v = -23 m/s
So, before collision, the 2 kg block is moving at a speed of 23 m/s opposite to the 6 kg block.
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1.(b)
Applying momentum conservation along x-axis, we have
(2 kg)(3 m/s) + 0 = (2 kg)(1.5 m/s)cos300 + (1 kg)(vx)
or, vx = 3.4 m/s
So, the x-component of velocity of 1 kg block after collision is 3.4 m/s
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1.(c)
Impulse is equal to the area under F-t curve.
So impulse P = (1/2)(18000 N)(1.5ms) = (0.5)(18000 N)(1.5X10-3s)
or, P = 13.5 N-s
Average force exerted is,
F = 13.5N-s/1.5ms
F = 9000N
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1.(d)
Initial speed is u = 6 m/s
final speed v = 0
let he ascends a height h
So, using the formula, v2 - u2 = 2as, where v= 0, g = -9.8 m/s2
we get, 0 - (6 m/s)2 = (2)(-9.8 m/s2)h
or, h = 1.84 m
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This concludes the answers. Check the answer and let me know if it's correct. If you need any more clarification or correction, feel free to ask.....