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Answers
Explanation:
Given :-
A stone is allowed to fall from the top of a tower of height = 100 m
Acceleration due to gravity = 10 m/s²
Initial velocity of stone projected upwards = 25 m/s
To Find :-
When will the two stones meet.
Where will the two stones meet.
Solution :-
We know that,
g = Gravity
u = Initial velocity
t = Time
s = Displacement
Using the formula,
\underline{\boxed{\sf Displacement=ut+\dfrac{1}{2} gt^2}}
Displacement=ut+
2
1
gt
2
Given that,
Initial velocity (u) = 0 m/s
Gravity (g) = 10 m/s
Substituting their values,
Let the height covered by the falling stone by s₁.
⇒ s₁ = 0 × t + 1/2 (10) t²
⇒ s₁ = 10/2 t²
⇒ s₁ = 5t² ____(1)
Given that,
Gravity (g) = 10 m/s
Initial velocity (u) = 25 m/s
Substituting their values,
Let the distance covered by the stone thrown upward be s₂.
⇒ s₂ = 25t + 1/2 (-10) t²
⇒ s₂ = 25t + -10/2 t²
⇒ s₂ = 25 - 5t² ____(2)
Given that,
Total height = 100 m
By adding (1) and (2),
s₁ + s₂ = 100m
⇒ 5t² + (25t - 5t²) = 100
⇒ 5t² - 5t² + 25t = 100
⇒ 25t = 100
⇒ t = 100/25
⇒ t = 4 sec ____(3)
By substituting (3) in (1),
s₁ = 5t²
⇒ s = 5 (4)²
⇒ s = 5 (16)
⇒ s = 80 m
Therefore, the two stones will meet at a distance of 80 m after 4 sec.