Law of Mass Action
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NX is produced by the following step of reactions:
1. M+ X2⟶MX2
2. MX2+X2⟶M3X8
3. M3X8+N2CO3⟶NX+CO2+M3O4
How much M (metal) is consumed to produce 206g of NX. (Take atomic weight of M=56, N=23, X=80)
42g
336g
74g
143g
For the equilibrium,
- Zero order
- First order
- Second order
- Third order
For the reaction R → P, the concentration of a reactant changes from 0.03 M to 0.02 M in 25 minutes. Calculate the average rate of reaction using units of time both in minutes and seconds.
- N2(g)+3H2(g) ⇋ 2NH3(g)
- PCl3(g)+Cl2(g) ⇋ PCl5(g)
- H2(g)+Cl2(g) ⇋ 2HCl(g)
- CaCO3(s)+ ⇋ CaO(s)+CO2(g)
Mention the factors that affect the rate of a chemical reaction.
How Does Concentration Affect Equilibrium?
Write the balanced chemical equation for the reaction of Lead Sulphate from Lead nitrate solution and Dilute sulphuric acid.
- active mass
- molecular mass
- atomic mass
- equivalent mass
- Equilibrium constant
- Properties of reactants
- Volume of apparatus
- Concentration of reactants
Rate =K[H2][NO]2, is:
- mol L−1 s−1
- s−1
- mol−2 L2 s−1
- mol−1 L1 s−1
In the above given chemical reaction, which of the following conditions is suitable to get a good yield of
Increase in pressure
Decrease in pressure
Increase in temperature
Decrease in temperature
- 12
- 16
- 32
- 10
- Decomposition of NH3
- Decomposition of HI
- All of the above
- Decomposition of PCl5
- Law of mass action
- Le - chatelier principle
- Law of constant proportion
- Faraday law of electrolysis
For the following Assertion and Reason, the correct option is
Assertion (A): When Cu (II) and Sulphide ions are mixed, they react together extremely quickly to give a solid.
Reason (R): The equilibrium constant of Cu2+ (aq) + S2– (aq) ⇌ CuS (s) is high because the solubility product is low.
a) (A) is false and (R) is true.
b) Both (A) and (R) is false
c) Both (A) and (R) are true but (R) is not the explanation for (A).
d) Both (A) and (R) are true but (R) is the explanation for (A).
N20
NO2
N2O3
N2O5
- Kc=[PCl3][Cl2][PCl5]
- Kc=[PCl5][PCl3][Cl2]
- Kc=[PCl3][Cl2][PCl5]5
- Kc=[PCl3]3[Cl2]2[PCl5]5
2A+3B+C→products
Order of reaction with respect to A, B and C are 3, 1 and 0 respectively. What will be the rate law of the given reaction?
- R=K[A]2[B]3[C]
- R=K[A]2[B]3
- R=K[A]3[B]1[C]0
- R=[A][B]2[C]3
- total mass
- molecular weights
- None of these
- active masses
- 0.314 atm2
- 1.000 atm2
- 0.480 atm2
- 2.000 atm2
For the reaction A+2B ⇌ C, the expression for equilibrium constant is
[C]/([A][B]2)
([A][B]2)/[C]
([A][B])/[C]
[C]/(2[B][A])
- 1500
- 1000
- 2500
- 500
Initial concentration of the reactant is 1 M .. the concentration becomes 0.9 0.8 0.7 in 2 hr , 4 hr, 6 hr respectively then order of the reaction
Ans is 0 pls put it on the paper
Reaction 1:
W→P1
Reaction 2:
X→P2
Reaction 3:
Y→P3
Reaction 4:
Z→P4
The order of the above reactions are 0, 1, 2 & 3 respectively. The graph between log[rate] (y-axis) vs. log[concentration of reactant] (x-axis) is plotted.
Which of the following reaction will have the highest slope?
- Reaction 1
- Reaction 2
- Reaction 3
- Reaction 4
Given 10−0.7≈0.2
- 0.05 mole
- 0.025 mole
- 0.1 mole
- 0.005 mole
(37.5). It happened due to the dissociation of some N2O4 into NO2. (Ar=40). What is the degree of dissociation of N2O4 ?
- 0.870
- 0.780
- 0.087
- Data is insufficient for calculation