600 mL of a mixture of Ozone(O3) and Oxygen(O2) weighs 1 g at NTP.Calculate the volume of Ozone(O3)in the mixture.
Anik Chatterjee
14 Years agoGrade 11
5 Answers
Harish R
Approved Tutor Answer14 Years ago
Assume xg of Ozone . O2= 1-x g
(Total moles of gas)/22.4 = 0.6 L
{x/48 + (1-x)/32} / 22.4 = 0.6
Solve for x...
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Paras Sharma
9 Years ago
Hey x will give the amount of O3 to find the volume of O3 we need to apply that V/22.4 = no. of moles = x/48
Here x=3/7 g
therefore :-
V=0.2 Lt.
AVINASH mandre
8 Years ago
.896/22.4=x/44 +(1.28-x)/28 .04=(28x+56.32-44x)/123216x=56.3-49.28x=0.44 gbasically we are comparing molesby Avinash mandre
Hari Krishnan
7 Years ago
32g of O2= 22.4l
1g=22.4/32 l
xg= 22.4x/32
Similarly, (1-x)g O3=(1-x)22.4/48 litres
Sum=> [22.4/x +(1-x)22.4/48] litres = 0.6 litres
Solving, x= 4/7 g Oxygen
(1-x)= 3/7 g Ozone
ie. 3/7 ×22.4/48 litres = 0.2 litres
=200 ml
Gopi Yadav
7 Years ago
Let the volume of ozone be V ml. Volume of oxegen = (600-V) ml Mass of 22,400 ml of ozone at STP = 48 g (Molar mass of O3 is 48 ) Mass of V ml of ozone = (48 x V/22400) g Mass of 22,400 ml of oxygen = 32 g (Molar mass of O2 is 32) Mass of (600-V) ml of oxygen = [32 x (600-V)}g]/22400 Now, [ 48 x V/22400 + 32 x (600-V)/22400]g = 1 g [48 x V + 32 x (600-v)]/22400 = 1
48 x V + 32 x 600 - 32 V = 22400 48 V- 32 V = 22400 - (32 x 600) 16 V = 3200 V = 200 ml.