Given data:
* The height of the hill is h_i = 20 meters.
* The length of the hill is L = 80 meters.
* The mass of the pig is m = 300 kg.
* The initial velocity of the pig is u = 0 m/s.
* The final height of the pig is h_f = 0 meters.
Solution:
The net energy of the system at the top of the hill is,
![E_i=mgh_i+(1)/(2)mu^2](https://img.qammunity.org/2023/formulas/physics/college/zyia2zpnaynk5w31ne9tzd4k3cwowi2uyk.png)
where g is the acceleration due to gravity,
Substituting the known values,
![\begin{gathered} E_i=300*9.8*20+0 \\ E_i=58800\text{ J} \end{gathered}](https://img.qammunity.org/2023/formulas/physics/college/1ciotnupefucpr0jg5mo2rv8m7sokz5oda.png)
The net energy of the system at the bottom of the hill is,
![E_f=\text{mgh}_f+(1)/(2)mv^2](https://img.qammunity.org/2023/formulas/physics/college/mokhz114rmwy42bqvvuzap42ieq6bvg5bv.png)
where v is the final velocity of the pig,
Substituting the known values,
![\begin{gathered} E_f=0+(1)/(2)*300* v^2 \\ E_f=150v^2 \end{gathered}](https://img.qammunity.org/2023/formulas/physics/college/b7xruoev59ayzrb5hcoyn0zwcri76mab5c.png)
According to the law of conservation of energy,
![undefined]()