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A 10.1 g bullet leaves the muzzle of a rifle with a speed of 425 m/s. What constant force is exerted on the bullet while it is traveling down the 0.6 m length of the barrel of the rifle?
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A 10.1 g bullet leaves the muzzle of a rifle with a speed of 425 m/s. What constant force is exerted on the bullet while it is traveling down the 0.6 m length of the barrel of the rifle?

User Tristan Hessell
by
8.5k points

1 Answer

2 votes

Answer

Force will be 1520.2604 N

Step-by-step explanation:

We have given mass of the bullet m = 10.1 gram = 0.0101 kg

Distance S= 0.6 m

Final velocity v = 425 m/sec

Initial velocity u will be 0 m/sec

From third equation of motion
v^2=u^2+2as


425^2=0^2+2* a* 0.6


a=150520.833m/sec^2

We know that force is given by F = ma

So force = 0.0101×150520.833 = 1520.2604 N

User Pratik Kumar
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