A mass m 1 = 5 kg rests on a frictionless table and connected by a massless stri
ID: 1280123 • Letter: A
Question
A mass m1 = 5 kg rests on a frictionless table and connected by a massless string to another mass m2 = 3.6 kg. A force of magnitude F = 40 N pulls m1 to the left a distance d = 0.77 m.
1)How much work is done by the force F on the two block system? J
2)How much work is done by the normal force on m1 and m2? J
3)What is the final speed of the two blocks? m/s
4)How much work is done by the tension (in-between the blocks) on block m2? J
5)What is the tension in the string? N
6)The net work done by all the forces acting on m1 is:
positive
zero
negative
7)What is the NET work done on m1?
A mass m1 = 5 kg rests on a frictionless table and connected by a massless string to another mass m2 = 3.6 kg. A force of magnitude F = 40 N pulls m1 to the left a distance d = 0.77 m. 1)How much work is done by the force F on the two block system? J 2)How much work is done by the normal force on m1 and m2? J 3)What is the final speed of the two blocks? m/s 4)How much work is done by the tension (in-between the blocks) on block m2? J 5)What is the tension in the string? N 6)The net work done by all the forces acting on m1 is: positive zero negative 7)What is the NET work done on m1?Explanation / Answer
work done= F*d= 40*0.77== 30.8 j
work done by the normal force on m1 and m2= zero (since the normal force and distance moved are perpendicular to each other)
d = 0.77 m,u=0, a=F/m= 40/(5+3.6)== 4.65116279
so, using, v2 - u2 =2as
V2-0=2*4.651*0.77
V=final velocity=2.67629m/s
force on Mass m2= 3.6*4.651== 16.7436
tension in string=force on Mass m2== 16.7436 N
work done by the tension (in-between the blocks) on block m2=16.7436*0.77== 12.892572 J
net force acting on mass m1= 40-16.7436= 23.2564 N it is positive so net work done will be positive
Net work done = 23.2564*0.77== 17.907428 J
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