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A gas X has a density of 3 g/L at 27°C and 1520 mm Hg pressure. Calculate its gram molecular mass.

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Question

A gas X has a density of 3 g/L at 27°C and 1520 mm Hg pressure. Calculate its gram molecular mass.

Numerical
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Solution

Given:

Density, d = 3 g/L

Temperature, T = 27°C = 300 K

Pressure, P = 1520 mm Hg = 2 atm

Using the ideal gas equation:

PM = dRT

Therefore,

M = `(dRT)/P`

Where R = 0.0821 L atm mol−1 K−1.

M = `(3 xx 0.0821 xx 300)/2`

= `73.89/2`

= 36.945

≈ 37 g mol−1​

The gram molecular mass of gas X is 37 g mol−1​.

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Chapter 5: Mole Concept and Stoichiometry - EXERCISE [Page 109]

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Lakhmir Singh Chemistry [English] Class 10 ICSE
Chapter 5 Mole Concept and Stoichiometry
EXERCISE | Q 13. | Page 109
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