wiz-icon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

The process of eudiometry is used to calculate the volume of the various reacting gases present in a closed vessel. A spark is made and the change in volume or pressure is noted depending on the conditions mentioned. Various reagents like alkaline pyrogallol, turpentine oil, caustic potash, conc. H2SO4 are used to absorb the selective gases like O2,O3,CO2 and H2O (v) respectively.
A 4.0 mole mixture of H2(g),O2(g) and He(g) are placed in a closed container at a pressure of 50 atm. An electric spark is passed, the pressure is noted to be 12.5 atm after cooling the contents to the room temperature. Oxygen gas is introduced to increase the pressure to 25 atm, keeping volume and the temperature constant. Again, an electrical spark is passed, and the pressure drops to 10 atm at room temperature conditions. List-I contains questions and List-II contains their answers. List- IList-II(I)What is the mole fraction of H2(g)present(P)0.6in the initial mixture?(II)How many moles of He(g) are present in the sample?(Q)1.0(III)How many moles of oxygen remain in the final gaseous(R)0.8mixture that is left?(IV)How many moles of O2(g) are introduced in the vessel (S)0.2after the first electrical spark? (T)0.7(U)0.4
Which of the following options has the correct combination considering List-I and List-II

A
(I), (R) and (III), (U)
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
(II), (S) and (IV), (Q)
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
C
(IV), (R) and (II), (U)
No worries! We‘ve got your back. Try BYJU‘S free classes today!
D
(I), (R) and (III), (P)
No worries! We‘ve got your back. Try BYJU‘S free classes today!
Open in App
Solution

The correct option is B (II), (S) and (IV), (Q)
Let partial pressure of H2 be x and that of O2 be y then that of He will be 50-x-y all in atm.
H2(g)+12O2(g)H2O(l)
xybefore reactionx2y0after reaction
As there is decrease in pressure is 50-12.5 atm
So, 2y+y=50-12.5 y=12.5 atm
After first spark, 12.5 atm O2 is introduced as pressure becomes 25 atm
H2(g)+12O2(g)H2O(l)
x2y12.5before reaction in second stage reaction012.512(x2y)after reaction
Now H2 will be limiting and decrease in pressure will be 32(x2y)=15 atm
32(x2×12.5)=15x=35 atm
So, partial pressure of He = 50-35-12.5 = 2.5 atm.
As 50 atm = 4 mol, So, 2.5 atm = 0.2 mol of He.
II) Thus moles of He present in the mixture sample is 0.2 mol.
III) Similarly since 12.5 atm of O2 is added after the first spark, it means 1 mol of O2 is introduced after the first spark.
Again,
Mole fraction of H2=3550=0.7
I) So mole fraction of H2 present in the initial mixture is 0.7
Partial pressure of O2 left in the final gaseous mixture =10-2.5 = 7.5 atm.
IV) So moles of oxygen remained in the final gaseous mixture = 0.6 mol.

flag
Suggest Corrections
thumbs-up
3
similar_icon
Similar questions
View More
Join BYJU'S Learning Program
similar_icon
Related Videos
thumbnail
lock
Dalton's Law of Partial Pressure
CHEMISTRY
Watch in App
Join BYJU'S Learning Program
CrossIcon