Discussion

Explanation:

The largest possible piece of cake from the three given pieces [9/2, 27/4, 36/5] can be obtained by finding the H.C.F of the three fractions,

∴ H.C.F. $\left[\frac{9}{2},\frac{27}{4},\frac{36}{5}\right]=\frac{\mathrm{H}.\mathrm{C}.\mathrm{F}. \mathrm{of} \mathrm{Numerator}}{\mathrm{L}.\mathrm{C}.\mathrm{M}. \mathrm{of} \mathrm{Denominator}}=\frac{9}{20}$

∴ The weight of the piece of cake given to each guest 9/20 lbs.

∴ Number of Guests = $\left(\frac{{\displaystyle \frac{9}{2}}}{{\displaystyle \frac{9}{20}}}\right)+\left(\frac{{\displaystyle \frac{27}{4}}}{{\displaystyle \frac{9}{20}}}\right)+\left(\frac{{\displaystyle \frac{36}{5}}}{{\displaystyle \frac{9}{20}}}\right)=$ 10 + 15 + 16 = 41
Hence, option (d).

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