A body moving with uniform acceleration is having velocity 2 m/s and 8 m/s at t=1 s and t= 4 s respectively.Then average velocity of particle in the time intervl t= 1 s to t= 4 is
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Answer:
a=(v-u) /t
where ,
a= acceleration
v=final velocity
u=initial velocity
t=time
So, the acceleration is (8–2)/(3–1)=2m/s^2
Now,
s= ut+1/2at^2
=(0*4+1/2*2*4^2)m [as the particle started from rest]
=(0+16)m
=16m
For the 1st second displacement was 1/2*2*1^2=1m
Now,
average velocity
=total displacement /total time
=(16–1/4–1)m/s
=5m/s
2 nd method
Area of v-t curve =displacement
So, the displacement from t=1 to t=4sec is the red marked area
Now; to get the red marked area we need to subtract the green marked area from the total area.
[(1/2*4*8)-(1/2*1*2)]m/s*s
=(16–1)m
=15m
average velocity
=total displacement /total time
=(15/3)m/s
=5m/s
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