Figure shows the graph of elastic potential energy `(U)` stored versus extension, for a steel wire `(Y = 2xx10^(11) Pa)` of volume `200 c c`. If area of cross- section `A` and original length L, then A. `A = 10^(-4) m^(2)`B. `A= 10 ^(-3) m^(2)`C. `L=1.5 m`D. `L = 2 m`

Figure shows the graph of elastic potential energy `(U)` stored versus

1.	Figure shows the graph of elastic potential energy `(U)` stored versus extension, for a steel wire `(Y = 2xx10^(11) Pa)` of volume `200 c c`. If area of cross- section `A` and original length L, then A. `A = 10^(-4) m^(2)`B. `A= 10 ^(-3) m^(2)`C. `L=1.5 m`D. `L = 2 m`
Answer» Correct Answer - A::D `U =1/2 kx^(2)` . It is a parabola symmetric about U- axis . At `x = 0.2 mm`, `U =0.2 J` ( from the figure ) `:. 0.2 = 1/2 k(2xx10^(-4))^(2)` `rArr k = (YA)/(L) ` `(A)/L = (K)/(Y) = (10^(7)) Nm^(-1)` `k = (YA)/(L)` `rArr (A)/(L) = (k)/(Y) = (10^(7))/(2xx10^(11)) = 5xx10^(-5)` ...(i) `AL = "Volume" = 200xx10^(-6) m^(3)` ...(ii) On solving Eqs. (i) and (ii) , We get `A= 10^(-4) m^(2)` and `L = 2 m`

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Figure shows the graph of elastic potential energy `(U)` stored versus extension, for a steel wire `(Y = 2xx10^(11) Pa)` of volume `200 c c`. If area of cross- section `A` and original length L, then A. `A = 10^(-4) m^(2)`B. `A= 10 ^(-3) m^(2)`C. `L=1.5 m`D. `L = 2 m`

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