So I got stuck on this question

asked Nov 19, 2023 228k views

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$\begin{gathered} d=v0\cdot t+(at^2)/(2) \\ d=0\cdot1.6+(9.81\cdot1.6^2)/(2) \\ d=12.557m \\ \end{gathered}$

The initial speed is 0, then while he falls down the speed increase

DaveM answered Nov 22, 2023

by DaveM

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