$\frac{7FL}{2AY}$
The rods are in series, so the total elongation is the sum of elongations of each rod. The formula for elongation is $\Delta L = \frac{FL}{AY}$, where $L$ is the length, $A$ is the area, and $Y$ is Young's modulus.
For rod 1: $L_1 = L$, $A_1 = A$, elongation $\Delta L_1 = \frac{F \cdot L}{A \cdot Y}$.
For rod 2: $L_2 = 3L$, $A_2 = 2A$, elongation $\Delta L_2 = \frac{F \cdot 3L}{2A \cdot Y}$.
For rod 3: $L_3 = 3L$, $A_3 = 3A$, elongation $\Delta L_3 = \frac{F \cdot 3L}{3A \cdot Y} = \frac{F \cdot L}{A \cdot Y}$.
Total elongation $\Delta L = \Delta L_1 + \Delta L_2 + \Delta L_3 = \frac{FL}{AY} + \frac{3FL}{2AY} + \frac{FL}{AY}$.
Combine: $\Delta L = \frac{FL}{AY} (1 + \frac{3}{2} + 1) = \frac{FL}{AY} \left(1 + 1.5 + 1\right) = \frac{FL}{AY} \times \frac{7}{2} = \frac{7FL}{2AY}$.
If the given graph shows the load (W) attached to and the elongation ($\Delta l$) produced in a wire of length 1 meter and cross-sectional area 1 mm$^2$, then the Young's modulus of the material of the wire is
The following data represents the frequency distribution of 20 observations:
Then its mean deviation about the mean is:
What is the molarity of a solution prepared by dissolving 5.85 g of NaCl in 500 mL of water?
(Molar mass of NaCl = 58.5 g/mol)