A car accelerates from rest at a constant rate - for some time- after which it decelerates at a constant rate - and finally come to rest- If the total time elapsed is t seconds- the total distance travelled is -

During acceleration, v_o=0+α t_1=α t_1 During deceleration, nbsp; 0=v_o β t_2⇒ v_o=β t_2 Also, t_1+t_2=t ⇒v_oα+v_oβ=t ⇒ v_o=αβα+β t Now, total distance ...

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Byju's Answer

Standard XI

Physics

Displacement

A car acceler...

Question

A car accelerates from rest at a constant rate $α$ for some time, after which it decelerates at a constant rate $β$ and finally come to rest. If the total time elapsed is $t$ seconds, the total distance travelled is -

\frac{α β}{2 (α + β)} t^{2}

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\frac{α β}{4 (α + β)} t^{2}

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\frac{4 α β}{(α + β)} t^{2}

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\frac{2 α β}{(α + β)} t^{2}

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Solution

The correct option is A $\frac{α β}{2 (α + β)} t^{2}$

During acceleration,
$v_{o} = 0 + α t_{1} = α t_{1}$

During deceleration,
$0 = v_{o} - β t_{2} \Rightarrow v_{o} = β t_{2}$

Also, $t_{1} + t_{2} = t$

$\Rightarrow \frac{v_{o}}{α} + \frac{v_{o}}{β} = t$

$\Rightarrow v_{o} = \frac{α β}{α + β} t$

Now, total distance travelled,
$=$ Area under speed-time graph

$= \frac{1}{2} \times t \times v_{o}$

$= \frac{1}{2} \times t \times \frac{α β}{α + β} t$

$= \frac{α β}{2 (α + β)} t^{2}$

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A car accelerates from rest at a constant rate α for some time, after which it decelerates at a constant rate β and finally come to rest. If the total time elapsed is t seconds, the total distance travelled is -

The correct option is A αβ2(α+β) t2 During acceleration, vo=0+αt1=αt1 During deceleration, 0=vo−βt2⇒vo=βt2 Also, t1+t2=t ⇒voα+voβ=t ⇒vo=αβα+β t Now, total distance travelled, = Area under speed-time graph =12×t×vo =12×t×αβα+β t =αβ2(α+β) t2

A car accelerates from rest at a constant rate $α$ for some time, after which it decelerates at a constant rate $β$ and finally come to rest. If the total time elapsed is $t$ seconds, the total distance travelled is -