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How many liters of chlorine are needed to produce 5.64 moles of aluminum chloride? Need help ASAP
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3 votes
How many liters of chlorine are needed to produce 5.64 moles of aluminum chloride? Need help ASAP

User VJ Hil
by
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1 Answer

3 votes

Answer:

190 L

Step-by-step explanation:

Given that:

Number of moles = mass/molar mass

number of moles = 5.64

molar mass of aluminum chloride = 133.34 g/mol

The balanced equation is:

2 Al + 3 Cl2 --> 2AlCl3.

From above reaction:

5.64 mole of AlCl3 reacts with 3 mole Cl2 to give 2 mole AlCl3

i.e


(5.64 \ mole \ AlCl3) * (3 \ mole \ Cl2 \ / \ 2 \ mole \ AlCl3)

= 8.46 mole Cl2 gas.

At Standard temperature and pressure:

= (22.4 L/1 mole gas) * (8.46 mole Cl2)

= 190 L chlorine gas

User ThP
by
5.9k points
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