Respuesta :
The kinematic relations we find that the results are:
a) the time of cage 1 is t₁ = 114.76 s and the time of cage 2 e t₂ = 0.32 s
b) cage 2 reaches the bottom first
Given parameters
- Cage speed 1 v = 65.0 km / h
- Mine depth y = 2072 m
- Cage 2 acceleration a = 4.00 102 m / s²
To find
- The time it takes for each cage to reach the bottom
- Which cage comes first
The unit system allows us to exchange magnitudes with precision and without antiques, for which we will use the intentional system of measurements (SI), let's reduce
v = 65 km / h ( [tex]\frac{1000m}{1 km}[/tex] ) ( [tex]\frac{1h}{ 3600 s}[/tex] ) = 18.06 m / s
Kinematics allows finding the relationships between position, velocity and acceleration.
In this exercise we have two cages, work each one separately
Cage 1
They indicate that it is going at a constant speed, for which we can use the relations of uniform motion
[tex]v = \frac{d}{t} \\t = \frac{d}{v} \\t_1 = \frac{2072}{18.06}[/tex]
t₁ = 114.76 s
Cage 2
Stop from rest so your initial velocity is zero
y = v₀ t + ½ a t²
y = 0 + ½ a t²
t = [tex]\sqrt{\frac{2y}{a} }[/tex]
t₂ = [tex]\sqrt\frac{2 \ 2072}{4 \ 10^2}[/tex]
t₂ = 0.32 s
In conclusion using the kinematics relations we find the results are:
a) The time of cage 1 is t1 = 114.76 s and the time of cage 2 e t2 = 0.32 s
b) Cage 2 reaches the bottom first
learn more about kinematics here:
https://brainly.com/question/11298125
