A bullet leaves a rifle with a muzzle velocity of 521 m/s. while accelerating through the barrel of the rifle, the bullet moves a distance of 0.840 m. Determine the acceleration of the bullet (assume a uniform acceleration)

Sagot :

[tex]velocity=\frac{distance}{time}\\\\ velocity*time=distance\\\\ time=\frac{distance}{velocity}\\\\ time=\frac{0,840m}{521\frac{m}{s}}=0,0016s\\\\ acceleration=\frac{velocity}{time}=\frac{521}{0,0016}=325625\frac{m}{s^2}[/tex]

Answer:

a = 1.62*105 m /s2

Explanation:

25.28 m2/s2 = vi2

vi = 5.03 m/s

To find hang time, find the time to the peak and then double it.

vf = vi + a*t

0 m/s = 5.03 m/s + (-9.8 m/s2)*tup

-5.03 m/s = (-9.8 m/s2)*tup

(-5.03 m/s)/(-9.8 m/s2) = tup

tup = 0.513 s

hang time = 1.03 s

Return to Problem 11

Given:

vi = 0 m/s

vf = 521 m/s

d = 0.840 m

Find:

a = ??

vf2 = vi2 + 2*a*d

(521 m/s)2 = (0 m/s)2 + 2*(a)*(0.840 m)

271441 m2/s2 = (0 m/s)2 + (1.68 m)*a

(271441 m2/s2)/(1.68 m) = a

a = 1.62*105 m /s2