A rectangular block floats in pure water with 0.5 inch above the surface and 1.5 inches below the surface. When placed in an aqueous solution, the block of material floats with 1 inch below the surface. Estimate the specific gravities of the block and the solution. (Suggestion: Call the horizontal crosssectional area of the block A. A should cancel in your calculations.)

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nuhulawal20 nuhulawal20 · Answer 1 · 2021-04-02T09:47:16+02:00

Answer:

- the specific gravity of the block is 0.75

- the specific gravity of the solution is 1.5

Explanation:

Given the data in the question;

first we find the specific gravity of a block SGB

SGB = ( block vol below / total block vol ) × the specific gravity of water

we substitute

SG[tex]_{BLOCK[/tex] = ( 1.5 / (1.5 + 0.5 ) ) × 1

SG[tex]_{BLOCK[/tex] = (1.5 / 2) × 1

SG[tex]_{BLOCK[/tex] = 0.75

Therefore, the specific gravity of the block is 0.75

specific gravity of solution SG[tex]_{SOLUTION[/tex]

SG[tex]_{SOLUTION[/tex] = (total block vol / block below ) × SG[tex]_{BLOCK[/tex]

we substitute

SG[tex]_{SOLUTION[/tex] = ( 2 / 1 ) × 0.75

SG[tex]_{SOLUTION[/tex] = 2 × 0.75

SG[tex]_{SOLUTION[/tex] = 1.5

Therefore, the specific gravity of the solution is 1.5