Question

A 920 kg block is pushed on the slope of a 30

Answer 1

The mass of the block is 920 kg.

The angle of inclination of the slope with respect to the plane is 30 degree.

The initial speed of the block [u] =50 cm/s

                                                      =50×0.01 m/s

                                                      =0.5 m/s

The block is once pushed and it moves downward on the slope. The distance of the block from the bottom is 2.3 m .

Hence the distance travelled by the block [s]=2.3 m

We are asked to calculate the final velocity of the block when it touches the ground.

First we have to calculate the acceleration of the block.

Resolving g into horizontal and vertical component we get,

$[1] gsin\theta\ is\ along\ the\ slope\ and\ downward$

$[2] gcos\theta\ is\ along\ the\ normal\ drawn\ to\ the\ block$

Now putting the equation of kinematics we get-

                                  $v^2=u^2+2as$

Here v is called final velocity and a is the acceleration.

                                    $=[0.5]^2+2*gsin\theta *2.3$

                                    $=0.25+2*gsin30*2.3$  

                                    $=0.25+[2*9.8*0.5*2.3]$  [sin30=0.5]

                                    $=22.79$

                                    $v=\sqrt{22.79}\ m/s$

                                     $v=4.78 m/s$         [ans]

Answer 2

Using the kinetic energy theorem, we have:
sumW = 1/2 mV²final  - 1/2mV²initial
sumW=mgh, where h=sin30 x AB, AB= 2.3m
50 cm/s=0.5m/s

so 2gsin30 AB =  V²final  - V²initial and  V final = sqrt(2gsin30 AB + V²initial)
  
finally v= 4.77m/s