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A student rides on bicycle at 8 km/hour and reaches his school 2.5 minutes late. The next day he increases his speed to 10 km/ hour and reaches school 5 minutes early. How far is the school from his house ?
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5 km 8 - 8 km
- 5 km
- 10 km
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Correct Option: C
Let x km. be the required distance.
Difference in time = 2.5 + 5 = 7.5 minutes
| = | hrs. = | hrs. | ||
| 60 | 8 |
| Now, | − | = | |||
| 8 | 10 | 8 |
| ⇒ | = | ||
| 40 | 8 |
| ⇒ x = | = 5 km. | |
| 8 |
Second Methdod :
Here, S1 = 8, t1 = 2.5
S2 = 10, t2 = 5
| Distance = | |
| S2 −S1 |
| = | |
| 10 − 8 |
| = 40 × | = 5 km | |
| 60 |
