A mixture was found to contain 1.05g of SiO2, 0.69g of cellulose, 1.82g of calcium carbonate. The percentage of calcium carbonate is in the is [x]%. Note: round to the nearest percent.

Question

Chemistry

Rayan Hernandez

1 August, 16:26

A mixture was found to contain 1.05g of SiO2, 0.69g of cellulose, 1.82g of calcium carbonate. The percentage of calcium carbonate is in the is [x]%. Note: round to the nearest percent.

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Answers (2)

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Aditya Davies · Answer 1

Mass mixture = mass SiO2 + mass cellulose + mass CaCO3 =

mass mixture = 1.05 g + 0.69g + 1.82g = 3.56g

mass CaCO3 = 1.82 g

%CaCO3 = mass CaCO3/mass mixture * 100 = 1.82/3.56 * 100 = 51.123% = 51%

Theodore Benson · Answer 2

The porcentage of calcium carbonate in the mixture is calculated as the weight of calcium carbonate divided by the total wieght of the mixture times 100

% calcium carbonate = 1.82 g * 100 / [ 1.05 g + 0.69 g + 1.82 g] = 182 / 3.56 = 51.12 %