Respuesta :
Answer:
The speed of the Porsche = 180 km/h
The speed of the Ferrari = 200 km/h
Explanation:
The distance of one lap = 2 km
The distance the Ferrari laps the Porsche = 9 laps
The distance the Ferrari will lap the Porsche with 10 km/h less speed = 18 laps
Let the speed of the Ferrari = S[tex]_F[/tex], the speed of the Porsche = S[tex]_P[/tex], and the time that lapse before two cars lapped = t
we have;
S[tex]_F[/tex] × t₁ - S[tex]_P[/tex] × t = 2 km
S[tex]_P[/tex] × t₁ = 9 laps × 2 km/lap = 18 km
S[tex]_P[/tex] × t₁ = 18 km
S[tex]_F[/tex] × t₁ = 2 km + S[tex]_P[/tex] × t = 2 km + 18 km = 20 km
S[tex]_F[/tex] × t₁ = 20 km
∴
Similarly, we are given that the following relation;
(S[tex]_F[/tex] - 10) × t₂ - S[tex]_P[/tex] × t₂ = 2 km...(2)
From which we have;
S[tex]_P[/tex] × t₂ = 18 laps × 2 km/lap = 36 km
S[tex]_P[/tex] × t₂ = 36 km
(S[tex]_F[/tex] - 10) × t₂ = 2 km + 36 km = 38 km
(S[tex]_F[/tex] - 10) × t₂ = 38 km
Therefore, given that S[tex]_P[/tex] × t₂ (36 km) = 2 × S[tex]_P[/tex] × t₁ (18 km), we have;
S[tex]_P[/tex] × t₂ = 2 × S[tex]_P[/tex] × t₁
t₂ = 2×t₁
Equation (2) becomes;
(S[tex]_F[/tex] - 10) × 2×t₁ - S[tex]_P[/tex] × 2×t₁ = 2 km...(2)
From which we have;
(S[tex]_F[/tex] - 10) × 2×t₁ = 38 km
(S[tex]_F[/tex] - 10) × 2×t₁ = 38 km
2 × t₁ × S[tex]_F[/tex] - 2 × t₁ × 10 = 38 km
∵ S[tex]_F[/tex] × t₁ = 20 km, we have;
2 × 20 km - 2 × t₁ × 10 = 38 km
2 × t₁ × 10 = 2 × 20 km - 38 km = 2 km
20 × t₁ = 2 km
t₁ = 2/20 = 0.1 hour = 6 minutes
Therefore, we have;
S[tex]_P[/tex] × t₁ = 18 km
S[tex]_P[/tex] × 0.1 h = 18 km
S[tex]_P[/tex] = 18 km/0.1 h = 180 km/h
The speed of the Porsche = S[tex]_P[/tex] = 180 km/h
S[tex]_F[/tex] × t₁ = 20 km
S[tex]_F[/tex] × 0.1 h = 20 km
S[tex]_F[/tex] = 20 km/0.1 h = 200 km/h
The speed of the Ferrari = S[tex]_F[/tex] = 200 km/h
