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1.How many moles of neon would be contained in 4.0 L of neon gas at 560 kPa and 127oC​

1.How many moles of neon would be contained in 4.0 L of neon gas at 560 kPa and 127oC​
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2 votes
1.How many moles of neon would be contained in 4.0 L of neon gas at 560 kPa and 127oC​

User Maciej Adamczewski
by
8.0k points

1 Answer

2 votes

Answer:

The number of moles present is 68267.08 moles

Step-by-step explanation:

V = 4.0L

P = 560kPa = 560*10³Pa

T = 127°C = (127 + 273.15)K = 400.15K

Number of moles (n) = ?

R = 0.082J / mol.K

From ideal gas equation,

PV = nRT

n = PV / RT

n = (560*10³ * 4.0) / (0.082 * 400.15)

n = 2240000 / 32.8123

n = 68267.08 moles

The number of moles present is 68267.08 moles

User Wfh
by
8.1k points
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