Each side of a metallic cube of mass 5.580 te | vedclass

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(B) Density $ho = \frac{	ext{Mass}}{	ext{Volume}}$.Mass $m = 5.580 	ext{ kg}$.Side length $a = 9.0 	ext{ cm} = 9.0 	imes 10^{-2} 	ext{ m}$.Vol

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$7.7$

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(B) Density $ho = \frac{	ext{Mass}}{	ext{Volume}}$.Mass $m = 5.580 	ext{ kg}$.Side length $a = 9.0 	ext{ cm} = 9.0 	imes 10^{-2} 	ext{ m}$.Volume $V = a^3 = (9.0 	imes 10^{-2} 	ext{ m})^3 = 729 	imes 10^{-6} 	ext{ m}^3 = 7.29 	imes 10^{-4} 	ext{ m}^3$.Density $ho = \frac{5.580 	ext{ kg}}{7.29 	imes 10^{-4} 	ext{ m}^3} \approx 7654.32 	ext{ kg m}^{-3} = 7.65432 	imes 10^3 	ext{ kg m}^{-3}$.Since the side length $9.0 	ext{ cm}$ has only two significant figures,the final result must be rounded to two significant figures.Rounding $7.65432$ to two significant figures gives $7.7$.Therefore,$X = 7.7$.

Each side of a metallic cube of mass $5.580 \text{ kg}$ is measured to be $9.0 \text{ cm}$. Keeping the significant figures in view,the density of the material of the cube can be best expressed as $X \times 10^3 \text{ kg m}^{-3}$,where the value of $X$ is:

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