A body moving with an initial velocity U accelerates until it attains a velocity of V within a time t. The distance, s covered by the body is given by the expressions
s = (\(\frac{v - u}{2}\))t
s = (\(\frac{v + 2u}{2}\))t
s = (\(\frac{v + u}{2}\))t
s = (\(\frac{2v + u}{2}\))t
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To find the correct expression for distance \( s \) covered by the body, let's start with the equation of motion:
\[ v = u + at \]
Where:
- \( v \) is the final velocity
- \( u \) is the initial velocity
- \( a \) is the acceleration
- \( t \) is the time taken
Since the body accelerates until it attains velocity \( v \), we know that \( a \) is constant.
Now, using the formula for average velocity:
\[ v_{\text{avg}} = \frac{u + v}{2} \]
We can rearrange to find \( s \):
\[ s = v_{\text{avg}} \times t \]
\[ s = \frac{u + v}{2} \times t \]
\[ s = \frac{(u + u + at)}{2} \times t \]
\[ s = \frac{(2u + at)}{2} \times t \]
\[ s = (u + \frac{1}{2}at) \times t \]
\[ s = ut + \frac{1}{2}at^2 \]
Since \( a = \frac{v - u}{t} \), we can substitute this into the equation:
\[ s = ut + \frac{1}{2} \left( \frac{v - u}{t} \right) t^2 \]
\[ s = ut + \frac{1}{2}(v - u)t \]
\[ s = ut + \frac{1}{2}vt - \frac{1}{2}ut \]
\[ s = \frac{1}{2}vt + \frac{1}{2}ut \]
\[ s = \frac{(v+u)}{2} \times t \]
\[ s = \frac{(v+u)}{2}t \]
So, the correct expression for the distance \( s \) covered by the body is:
\[ \boxed{\text{C. } s = \frac{(v+u)}{2}t} \]
The correct ans should be option A
Since: a=v-u/t
==>S(distance)=1/2at²
=1/2(v-u/t)t²
=(v-u)t/2✅✍️💥
