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VikaD [51]
2 years ago
3

What is the density of carbon dioxide gas at –25.2°C and 98.0 kPa? (R = 0.08206 L • atm/K • mol, 1 atm = 101,325 Pa)

Chemistry
1 answer:
neonofarm [45]2 years ago
6 0
Answer is: 2,09 g/L.
T (CO₂) = -25,2°C = -25,2 + 273,15 = <span>247.95 K, temperature.
p </span>(CO₂) = 98 kPa = 0.967 atm, pressure.
R = 0.08206 L • atm/K, <span>gas constant.
</span>Ideal gas law pV =nRT, can write down p<span>V = (m/M)RT.
</span>m - mass, M - molar mass.
Since density is: d = m/V, can write MPV=mRT and than (M·P)/(R·<span>T) = m/V.
</span>d = 44g/mol · 0,967atm / 0,08206 L • atm/K · 247.95 K = 2,09 g/L.

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Explanation:

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This means that,

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Rate of formation of Cl^{-} = 2 \times 1.96 \times 10^{-7}

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2 years ago
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