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Question

2 g of gas A is introduced in an evacuated flask at 25C. The pressure of the gas is 1 atm. Now 3 g of another gas B is introduced in the same flask and the total pressure becomes 1.5 atm. The ratio of molecular mass of A and B is:

A
31
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B
13
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C
14
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D
23
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Solution

The correct option is B 13
Initially 2 g of gas A was introduced in the evacuated flask, its pressure being 1 atm.

Partial pressure of gas A = pA

Let the molecular mass of the gas A be mA

Moles of A, nA =2mA

When 3 g of gas B was introduced, the pressure inside the flask increases to 1.5 atm.

Partial pressure of gas B, pB = Total pressure Partial pressure of gas A
pB = 1.5 1
pB = 0.5 atm

Let the molecular mass of the gas B be mB

Moles of B, nB=3mB

Assuming ideal gas behaviour,
At constant temperature and volume, pn

pApB=nAnB
Where p is the partial pressure of the gas
10.5=2mA3mB

mAmB=13

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