Physics, asked by sreeramululic79, 11 months ago

A person walksOn a straight road from his home to market 3km away with a speed of 5km/h.finding market closed he walks back with a speed of 6km/h.what is the magnitude of average velocity

Answers

Answered by aviratwalia18
0

Answer:plz mark as brainliest

Explanation:

Time taken by the man to reach the market from home,t1 = 2.5/5 = 1/2 h = 30 min

Time taken by the man to reach home from the market, t2 = 2.5/7.5 = 1/3 h = 20 min

Total time taken in the whole journey = 30 + 20 = 50 min

(i) 0 to 30 min

Average velocity = Displacement/Time = 2.5/(1/2) = 5 km/h

Average speed = Distance/Time = 2.5/(1/2) = 5 km/h

(ii) 0 to 50 min

Time = 50 min = 50/60 = 5/6 h

Net displacement = 0

Total distance = 2.5 + 2.5 = 5 km

Average velocity = Displacement / Time = 0

Average speed = Distance / Time = 5/(5/6) = 6 km/h

(iii) 0 to 40 min

Speed of the man = 7.5 km/h

Distance travelled in first 30 min = 2.5 km

Distance travelled by the man (from market to home) in the next 10 min

= 7.5 × 10/60 = 1.25 km

Net displacement = 2.5 – 1.25 = 1.25 km

Total distance travelled = 2.5 + 1.25 = 3.75 km

Average velocity = Displacement / Time = 1.25 / (40/60) = 1.875 km/h

Average speed = Distance / Time = 3.75 / (40/60) = 5.625 km/h

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