7:["$","div",null,{"children":[["$","div",null,{"className":"select-question-page-con","children":[["$","h2",null,{"style":{"margin":"10px","textAlign":"center"},"children":"JAMB - Physics (1990 - No. 45)"}],["$","div",null,{"className":"question-page-q-con thickBG","children":[["$","div",null,{"children":[null,["$","div",null,{"className":"post-math-jax-item question-page-q-txt","style":{},"dangerouslySetInnerHTML":{"__html":"

What is the average velocity of the sprinter whose velocity time graph is as shown above

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Average velocity = \$\\frac{total speed}{total time}\$

\n\n

Total distance = Area under the graph i.e area of trapezium = \$\\frac{1}{2}\$(a + b) x h

\n\n

= 0.5(6 + 10) x 10 = 80m

\n\n

Total time = 10secs

\n\n

Average velocity = \$\\frac{total speed}{total time}\$ = \$\\frac{80}{10}\$ = 8m/s

\n\n

so closest answer is 8.5m/s

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JAMB - Physics (1990 - No. 45)

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