Consider the following balanced equation for the combustion of butane, a fuel often used in lighters: 2C4H10(g)+13O2(g)→

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answerhappygod
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Consider the following balanced equation for the combustion of butane, a fuel often used in lighters: 2C4H10(g)+13O2(g)→

Post by answerhappygod »

Consider the following balanced equation for the combustion of
butane, a fuel often used in lighters:
2C4H10(g)+13O2(g)→8CO2(g)+10H2O(g)
Complete the following table, showing the appropriate masses of
reactants and products. If the mass of a reactant is provided, fill
in the mass of other reactants required to completely react with
the given mass, as well as the mass of each product formed. If the
mass of a product is provided, fill in the required masses of each
reactant to make that amount of product, as well as the mass of the
other product that is formed.
Part A
Complete the first row.
Express your answer using three significant figures separated by
commas.
massC4H10,massCO2,massH2O = _____________ g
Part B
Complete the second row.
Express your answer using three significant figures separated by
commas.
massO2,massCO2,massH2O=_______________g
Part C
Complete the third row.
Express your answer using four significant figures separated by
commas.
massC4H10,massO2,massH2O=_____________g
Part D
Complete the fourth row.
Express your answer using three significant figures separated by
commas.
massC4H10,massO2,massCO2=______________g
Part E
Complete the fifth row.
Express your answer using three significant figures separated by
commas.
massO2,massCO2,massH2O=_____________mg
Part F
Complete the sixth row.
Express your answer using three significant figures separated by
commas
massC4H10,massO2,massH2O=_____________mg
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