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Question

For the velocity-time graph shown in figure, in a time interval from t=0 to t=6 s, match the following

Table-1Table-2(A) Change in velocity(P) 53 SI unit(B) Average acceleration(Q) 20 SI unit(C) Total displacement(R) 10 SI unit(D) Acceleration at t=3 s(S) 5 SI unit

A
(A)(S);(B)(P);(C)(R);(D)(Q)
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B
(A)(S);(B)(P);(C)(S);(D)(R)
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C
(A)(R);(B)(P);(C)(R);(D)(S)
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D
(A)(R);(B)(P);(C)(S);(D)(P)
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Solution

The correct option is C (A)(R);(B)(P);(C)(R);(D)(S)
Initial velocity vi=+10 m/s
and final velocity vf=0
Change in velocity =Δv=vfvi=10 m/s
Average acceleration=Total change in velocityTotal time
aav=ΔvΔt=106=53 m/s2
Total displacement = area under vt graph (with sign)
Area under the vt graph from t=0 to t=6 s is given by
A=12×10×212×4×10=10 m
Acceleration = slope of vt graph.
Slope of the graph at (t=3 s)=10042=5 m/s2

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