What should be the volume occupied by 16 grams of oxygen gas ( O2 ) at 300K and 8.31MPa , provided: ( textP textc textV textc/ textRT textc) = (3/8) and ( textP textr textV textr/ textT textr) = text2.21 â(Given: R=8.314cm3MPaK-1mol-1 )

Question

What should be the volume occupied by 16 grams of oxygen gas ( O2 ) at 300K and 8.31MPa , provided: ( textP textc textV textc/ textRT textc) = (3/8) and ( textP textr textV textr/ textT textr) = text2.21 â(Given: R=8.314cm3MPaK-1mol-1 ) (A) 125.31mL (B) 124.31mL (C) 248.62mL (D) None of these

Tardigrade Admin · Accepted Answer

(( textPV) textm/ textRT) = (3/8) × text2.21 ; V textm = ((3/8) × text2.21) × ( textRT/ textP) ; textV textm = (3/8) × text2.21 × ( text8.314 × 3 0 0/ text8.314 × 1 06) = 248.625 mL ; textV textO2 = (1 6/3 2) × text248.625 = 124.31 mL

Q. What should be the volume occupied by $16$ grams of oxygen gas ( $O_{2}$ ) at $300 K$ and $8.31 MP a$ , provided:
$\frac{P _{c} V _{c}}{RT _{c}} = \frac{3}{8} an d \frac{P _{r} V _{r}}{T _{r}} = 2.21$
(Given: $R = 8.314 c m 3 MP a K - 1 m o l - 1$ )

$125.31 m L$

$124.31 m L$

$248.62 m L$

None of these

$\frac{( PV ) _{m}}{RT} = \frac{3}{8} \times 2.21 ; V_{m} = (\frac{3}{8} \times 2.21) \times \frac{RT}{P};$
$V_{m} = \frac{3}{8} \times 2.21 \times \frac{8.314 \times 300}{8.314 \times 1 0 ^{6}}$
$= 248.625 m L;$
$V_{O_{2}} = \frac{16}{32} \times 248.625 = 124.31 m L$

Q. What should be the volume occupied by 16 grams of oxygen gas ( O2​ ) at 300K and 8.31MPa , provided: RTc​Pc​Vc​​=83​andTr​Pr​Vr​​=2.21 ​(Given: R=8.314cm3MPaK−1mol−1 )

125.31mL

124.31mL

248.62mL