A stone is thrown vertically upward at a speed of 27.70 m/s at time t=0. A second stone is thrown upward with the same speed 2.140 seconds later. At what time are the two stones at the same height?

At the top point v=0 =>
time of upward motion of the 1st stone is
t=v/g =22.7/9.8=2.32 s.

Δt =2.32 -2.14 =0.18 s.
At t=2.32 s the 1st stone is at the top point
h₁=v₀t-gt²/2 =27.7•2.32 – 9.8•2.32²/2 =37.9 m
with v=0 and begins its free fall
The 2nd stone was at the point
h₂= v₀Δt-g(Δt)²/2 =27.7•0.18 – 9.8•0.18²/2 =4.83 m
and moved with upward velocity
v₂=v₀-gΔt=
=27.7-9.8•0.18=25.9m/s
Δh=37.9-4.83=33.07 m

h₁=gt²/2
h₂=v₂t- gt²/2
Δh= h₁+h₂=gt²/2+ v₂t- gt²/2 =v₂t
t= Δh/ v₂=33.07/25.9=1.28 s
h₁=gt²/2 =9.8•1.28²/2=8.03 m
The height two stones pass each other is
h₀= 37.9-8.03 =29.9 m
The time of the 1st stone motion is
2.32+1.28 = 3.6 s.
The downward speed of the first stone is
v=gt=9.8•1.28 =12.54 m/s.