Answer:
Explanation:
Block A sits on block B and force is applied on block A . Block A will experience two forces 1) force P and 2 ) friction force in opposite direction of motion . Block B will experience one force that is force of friction in the direction of motion .
Let force on block A be P . friction force on it will be equal to kinetic friction, that is μ mg , where μ is coefficient of friction and m is mass of block A
friction force = .4 x 2.5 x 9.8
= 9.8 N
net force on block A = P - 9.8
acceleration = ( P - 9.8 ) / 2.5
force on block B = 9.8
acceleration = force / mass
= 9.8 / 6
for common acceleration
( P - 9.8 ) / 2.5 = 9.8 / 6
( P - 9.8 ) / 2.5 = 1.63333
P = 13.88 N .
The acceleration is 3.722 ms-2.
For the block B;
0.400 = F/6.00 kg × 9.8 ms-2
F = 0.400 × 6.00 kg × 9.8 ms-2
F = 23.52 N
For block A;
0.400 = F/2.50 kg × 9.8 ms-2
F = 0.400 × 2.50 kg × 9.8 ms-2
F = 9.8 N
For common acceleration; 23.52 N - 9.8 N/(6 Kg - 2.5 Kg) =
a = 3.722 ms-2
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