EASY
Earn 100

According to Le-Chatelier's principle, the addition of temperature to the following reaction

CO2g+2H2OgCH4g+2O2g

will cause it to the right. This reaction is, therefore :

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Important Questions on Equilibrium

EASY
For a given exothermic reaction Kp and K'p are the equilibrium constants at temperatures T1 and T2 respectively (T2.>T1 ). Assuming that heat of reaction is constant in temperatures range between T1 and T2, it is readily observed that:
EASY
The following reaction occurs in the Blast Furnace where iron ore is reduced to iron metal:

Fe2O3s+3COg  2Fe l+3CO2g

Using the Le Chatelier's principle, predict which one of the following will not disturb the equilibrium?
MEDIUM
For the reaction,

2SO2g+O2g2SO3g,

H=-57.2 kJ mol-1 and Kc=1.7×1016.

Which of the following statements is incorrect?
EASY

Consider the following reaction:
N2O4(g)=2NO2(g): ΔH0=+58k
For each of the following cases (a, b), the direction in which the equilibrium shifts is:
(a) Temperature is decreased.
(b) Pressure is increased by adding N2 at constant T.

MEDIUM
Consider the nitration of benzene using mixed conc. H2SO4 and HNO3 . If a large amount of KHSO4 is added to the mixture, the rate of nitration will be:
HARD
For the following Assertion and Reason, the correct option is:
Assertion: The pH of water increases with increase in temperature.
Reason: The dissociation of water into H+ and OH- is an exothermic reaction.
HARD
Which of the following lines correctly show the temperature dependence of equilibrium constant K, for an exothermic reaction?
Question Image
 
EASY

In a reaction A+BC+D, Le Chatelier's principle asserts that an equilibrium between A and B producing C and D can be shifted towards C and D by
(i) increasing the concentration of A or B

(ii)increasing the concentration of C or D

(iii) decreasing the concentration of A or B

MEDIUM
Two solids dissociate as follows:

A sB g+C g;KP1=x  atm2

D sC g+E g;KP2=y  atm2

The total pressure when both the solids dissociate simultaneously is:
EASY
The reaction C2H6gC2H4g+H2g is at equilibrium in a closed vessel at 1000 K. The enthalpy change H for the reaction is 137.0 kJ mol-1. Which one of the following actions would shift the equilibrium to the right?
EASY

The volume of a closed reaction vessel in which the following equilibrium reaction occurs is halved.

2SO2 g+O2 g2SO3 g

As a result,

EASY
Which one of the following statements is not correct?
MEDIUM

Following lists contain reactions and their corresponding equilibrium constants at different temperatures:

List - I (Reaction) List - II Kp
2SO2( g)+O2( g)2SO3( g) at 298 K 4.0×1024
2SO2( g)+O2( g)2SO3( g) at 700 K 3.0×104
N2O4( g)2NO2( g) at 298 K 0.98
N2O4( g)2NO2( g) at 500 K 1700

If H10 and H20 are the standard enthalpies for the reactions 2SO2 + O2  2SO3 and N2O4  2NO2  respectively, then: 

EASY
For the reversible reaction:
N2g+3H2g2NH3g+heat
The equilibrium shifts in forward direction:
EASY
In the equilibrium, H2+I22HI, if at a given temperature the concentrations of the reactants are increased, the value of the equilibrium constant, KC, will
EASY
For the reaction
A(g)+B(g)C(g)+D(g);H=-Q kJ
The equilibrium constant cannot be disturbed by
EASY
For the reaction, CO(g)+H2O=CO2( g)+H2(g) at a given temperature the equilibrium amount of CO2( g) can be increased by
EASY
The gas phase reaction 2NO2g  N2O4 g is an exothermic reaction. The decomposition of N2O4 , in equilibrium mixture of NO2 g and N2O4 (g) can be increased by:
EASY
Which one of the following conditions will favour the maximum formation of the product in the reaction?

A2 g+B2 gX2 g  ΔrH=-x kJ
MEDIUM
In NH3 synthesis by Haber's process, what is the effect on the rate of the reaction with the addition of Mo and CO , respectively?