Equilibrium MCQs | Again 100 Questions | Class 11 Chemistry
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Equilibrium MCQs with Answers – Part 3 (Class 11 Chemistry)

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211. A concentration-time graph for \(\mathrm{A\rightleftharpoons B}\) shows a sudden vertical increase in \([\mathrm{A}]\), followed by a gradual decrease in \([\mathrm{A}]\) and a gradual increase in \([\mathrm{B}]\). The disturbance most likely was
ⓐ. removal of \(\mathrm{A}\)
ⓑ. addition of a catalyst only
ⓒ. lowering the temperature with no concentration change
ⓓ. addition of \(\mathrm{A}\)
212. Assertion: Adding a product to an equilibrium mixture at fixed temperature can make the reaction shift in the reverse direction. Reason: Adding product makes the reaction quotient larger than the equilibrium constant for many product-over-reactant expressions.
ⓐ. Both assertion and reason are true, and the reason explains the assertion
ⓑ. The assertion is false, but the reason is true
ⓒ. The assertion is true, but the reason is false
ⓓ. Both assertion and reason are true, but the reason does not explain the assertion
213. A decrease in volume of a gaseous equilibrium mixture at constant temperature causes the system pressure to increase. The equilibrium tends to shift toward the side with
ⓐ. fewer number of gaseous moles
ⓑ. greater number of gaseous moles
ⓒ. equal masses of all species
ⓓ. greater number of solid moles
214. For \(\mathrm{N_2(g)+3H_2(g)\rightleftharpoons2NH_3(g)}\), increasing pressure by decreasing volume shifts the equilibrium
ⓐ. toward the side with more gas moles
ⓑ. toward \(\mathrm{N_2}\) and \(\mathrm{H_2}\)
ⓒ. neither way because all species are gases
ⓓ. toward \(\mathrm{NH_3}\)
215. For \(\mathrm{H_2(g)+I_2(g)\rightleftharpoons2HI(g)}\), compression at constant temperature produces no pressure-based shift because
ⓐ. the equilibrium constant becomes zero
ⓑ. gaseous mole numbers are equal
ⓒ. the reaction contains no gases
ⓓ. the product is a solid
216. The table gives pressure disturbances for gaseous equilibria.
CaseChangeReaction featurePredicted shift
PCompressionProducts have fewer gaseous molesToward products
QExpansionProducts have more gaseous molesToward products
RCompressionBoth sides have equal gaseous molesNo pressure-based shift
SExpansionReactants have fewer gaseous molesToward reactants
The row that does not match the pressure-volume rule is
ⓐ. Q
ⓑ. P
ⓒ. S
ⓓ. R
217. For \(\mathrm{PCl_5(g)\rightleftharpoons PCl_3(g)+Cl_2(g)}\), increasing the volume at constant temperature shifts the equilibrium
ⓐ. left, because products are always disfavoured by expansion
ⓑ. neither way, because the reaction is reversible
ⓒ. right, because the right side has more gaseous moles
ⓓ. left, because the left side has fewer gaseous moles
218. Adding an inert gas to a gaseous equilibrium at constant volume usually causes no shift because
ⓐ. the total pressure remains unchanged
ⓑ. the inert gas reacts with all products
ⓒ. the equilibrium constant becomes larger
ⓓ. reacting partial pressures are unchanged
219. An inert gas is added to a gaseous equilibrium mixture at constant pressure. The volume increases, and the reacting gases are diluted. The shift, if any, is predicted by
ⓐ. treating it like an expansion and favouring the side with more gaseous moles
ⓑ. saying no shift is possible for any equilibrium
ⓒ. treating it like compression and favouring the side with fewer gaseous moles
ⓓ. changing \(K_p\) because an inert gas is present
220. For \(\mathrm{N_2O_4(g)\rightleftharpoons2NO_2(g)}\), lowering the pressure by increasing volume shifts the equilibrium
ⓐ. toward \(\mathrm{N_2O_4}\)
ⓑ. toward \(\mathrm{NO_2}\)
ⓒ. toward the side with fewer gas moles
ⓓ. neither way because both species contain nitrogen
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