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A comparison of the number of moles of one substance in a chemical equation. For example,

Na2CO3 + 2KCl -----> 2NaCl + K2CO3

The ratio of sodium carbonate to potassium chloride to sodium chloride to potassium carbonate is is 1:2:2:1.

A Mole Ratio is a conversion factor that relates the amounts in moles of any two substances involved in a chemical reaction.

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13y ago
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12y ago

I don't really know the answer but i know that the meaning is the ratio of mole one reactant product to the moles of another reactant.
tells you the relative amounts of reactants and products

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15y ago

the mole to mole ratio is determined by the coefficients of the chemical reactants and products, example:

FeS + 2HCl = FeCl2 + H2S

Mol ratio = 1 2 1 1

again:

2Ag2O = 4Ag + O2

Mol ratio 24 1

notice how the ratio is determined by an ONLY by the number before all the reactants and products.

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13y ago

Molar ratio is the proportion of one substance to another in a given chemical reaction. It is the ratio of their coefficients in the chemical equation.

For example, in the synthesis of water, the mole ratio of Hydrogen (H2) to Oxygen (O2) is 1:2...

H2 (g) + 2O2 (g) ----> 2H2O (l)
I don't really know the answer but i know that the meaning is the ratio of mole one reactant product to the moles of another reactant.
tells you the relative amounts of reactants and products

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6y ago

The mole ratio is the ratio of moles of compound of interest to total moles present in the mixture. It can be used to estimate/calculate vapor pressure of a mixture, as well as for other calculations. It is mostly, but not exclusively used for gas problems and gases. (See Dalton's Law of partial pressure, etc.)

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16y ago

Mole ratio is used for stoichiometric relative determination of amount of reactants or products ina chemical reaction.

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12y ago

It means a specific amount of a compound, reactant, or products in a balanced equation that you have.

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6y ago

The mole ratio is the ratio between two compounds involved in chemical reactions.

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Q: What is mole ratio and how would you use it?
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