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21 votes
21 votes
A 21.2 kg mass falls from a height of 4.000m. The momentum of the mass just before it hits the ground is

A. 144.2
B. 187.8
C. 320.0
D. 442.4
E. 502.1

User Seanhalle
by
2.9k points

1 Answer

11 votes
11 votes

Given :-

  • Initial velocity of mass,u = 0
  • Distance travelled by mass before hitting ground ,S = 4 m
  • Mass of object, m = 21.2 kg

Solution:-

By third equation of motion -


\green{ \underline { \boxed{ \sf{v^2-u^2=2aS}}}}

where

  • v= final velocity
  • u = initial velocity
  • a = acceleration
  • S = distance travelled

Putting Values to find final velocity of mass before hitting the ground-


\begin{gathered}\\\implies\quad \sf v^2-(0)^2=2* g * 4 \quad (g = acceleration \: due \:to \: gravity) \\\end{gathered}


\begin{gathered}\\\implies\quad \sf v^2=2* 9.8 * 4\quad (g= 9.8 \:m/s) \\\end{gathered}


\begin{gathered}\\\implies\quad \sf v=√(78.6) \\\end{gathered}


\begin{gathered}\\\implies\quad \sf v= 8.86 \:m/s \\\end{gathered}

Now finding the momentum of the mass at that moment -


\green{ \underline { \boxed{ \sf{Momentum= mass * velocity}}}}


\begin{gathered}\\\implies\quad \sf Momentum= 21.2 * 8.86 \\\end{gathered}


\begin{gathered}\\\implies\quad \sf Momentum= 187.8 \:kgms^(-1) \\\end{gathered}


\longrightarrowThe momentum of the mass just before it hits the ground is 187.8 kgm/s


\\


\therefore \sf Option \: B) \: is \:correct✔️

User Michael Eden
by
2.5k points