The equilibrium constant, Kp, for the following reaction is 9.52x10-² at 350 K: CH4(g) + CCl4(g) 2CH₂Cl₂(g) Calculate the equilibrium partial pressures of all species when CH4 and CCI4, each at an intitial partial pressure of 0.842 atm, are introduced into an evacuated vessel at 350 K. P CHA P CCIA P CH₂Cl₂ = = Submit Answer ? atm atm atm Retry Entire Group 9 more group attempts remaining

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The equilibrium constant, Kp, for the following reaction is 9.52x10-² at 350 K:
CH4(g) + CCl4(g) 2CH₂Cl₂(g)
Calculate the equilibrium partial pressures of all species when CH4 and CCI4, each at an intitial partial pressure of 0.842 atm, are introduced into an evacuated vessel at
350 K.
CH4
P
||
||
CC14
CH₂Cl₂
=
Submit Answer
?
atm
atm
atm
Retry Entire Group 9 more group attempts remaining
Transcribed Image Text:The equilibrium constant, Kp, for the following reaction is 9.52x10-² at 350 K: CH4(g) + CCl4(g) 2CH₂Cl₂(g) Calculate the equilibrium partial pressures of all species when CH4 and CCI4, each at an intitial partial pressure of 0.842 atm, are introduced into an evacuated vessel at 350 K. CH4 P || || CC14 CH₂Cl₂ = Submit Answer ? atm atm atm Retry Entire Group 9 more group attempts remaining
Expert Solution
Step 1: Interpretation

Given, the equilibrium reaction,

C H subscript 4 left parenthesis g right parenthesis plus C C l subscript 4 left parenthesis g right parenthesis left right arrow 2 C H subscript 2 C l subscript 2 left parenthesis g right parenthesis, equilibrium constant, Kp for the reaction is 9.52×10-2 at 350 K and initial partial pressure of CH4 and CCl4 are 0.842 atm.

we are asked to calculate the equilibrium partial pressures of all species.




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