1/2 mole of helium is contained in a container at STP. How much heat energy is needed to double the pressure of the gas, (volume is constant) heat capacity of gas is 3 J g-1 K-1.

Question

1/2 mole of helium is contained in a container at STP. How much heat energy is needed to double the pressure of the gas, (volume is constant) heat capacity of gas is 3 J g-1 K-1. (A) 1436 J (B) 736 J (C) 1638 J (D) 5698 J

Tardigrade Admin · Accepted Answer

Here, n = (1/2), cv = 3 J g-1 K-1, M = 4g mol-1 ∴ Cv = Mcv = 4 × 3 = 12 Jmol-1 K-1 At constant volume P propto T. ∴ (P1/P1) = (T2/T1) = 2, T2 = 2T1 Rise in temperature Δ T=T2 - T1 = 2T1 - T1 = T1 = 273 K Heat required, Δ Q = nCV Δ T = (1/2)×12×273 = 1638 J

Q. $1/2$ mole of helium is contained in a container at $STP$ . How much heat energy is needed to double the pressure of the gas, (volume is constant) heat capacity of gas is $3 J g^{- 1} K^{- 1}$ .

$1436 J$

$736 J$

$1638 J$

$5698 J$

Q. 1/2 mole of helium is contained in a container at STP. How much heat energy is needed to double the pressure of the gas, (volume is constant) heat capacity of gas is 3Jg−1K−1.

1436J

736J

1638J

5698J

Here, n=21​,cv​=3Jg−1K−1, M=4gmol−1 ∴Cv​=Mcv​=4×3=12Jmol−1K−1 At constant volume P∝T. ∴P1​P1​​=T1​T2​​=2, T2​=2T1​ Rise in temperature ΔT=T2​−T1​=2T1​−T1​=T1​=273K Heat required, ΔQ=nCV​ΔT=21​×12×273=1638J

Q. $1/2$ mole of helium is contained in a container at $STP$ . How much heat energy is needed to double the pressure of the gas, (volume is constant) heat capacity of gas is $3 J g^{- 1} K^{- 1}$ .

$1436 J$

$736 J$

$1638 J$

$5698 J$