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माध्यमिक शिक्षण विमाश
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Answers
Explanation:
_______________________________________________________________________
\text{\huge\underline{\red{Question:-}}}
Question:-
:\Longrightarrow⟹ The breaks applied to a car produce an acceleration of 6m/s 2 in the opposite direction to the motion. If the car takes 2s to stop after the application of breaks , calculate the distance it travels during this time?
\text{\huge\underline{\orange{Given:-}}}
Given:-
:\Longrightarrow⟹ Acceleration , a = -6m/s².
:\Longrightarrow⟹ Time , t = 2s.
:\Longrightarrow⟹ Final velocity, v = 0m/s.
\text{\huge\underline{\green{To\ find:-}}}
To find:-
:\Longrightarrow⟹ If the car takes 2s to stop after the application of breaks , calculate the distance it travels during this time
\text{\large\underline{\blue{By\ using\ formula:-}}}
By using formula:-
:\Longrightarrow⟹ 1. v = u + at.
:\Longrightarrow⟹ 2. s = u + \mathrm{\dfrac{1}{2}}
2
1
at².
\text{\huge\underline{\purple{Solution:-}}}
Solution:-
:\Longrightarrow⟹ v = u + at
:\Longrightarrow⟹ 0 = u - 6 × 2
:\Longrightarrow⟹ u = 12m/s.
:\Longrightarrow⟹ s = u + \mathrm{\dfrac{1}{2}}
2
1
at²
:\Longrightarrow⟹ s = 12 × 2 + \mathrm{\dfrac{1}{2}}
2
1
× (-6) × 4
:\Longrightarrow⟹ s = 12m.
\text{\huge\underline{\bf{Hence,\ Verified}}}
Hence, Verified