Methanol is manufactured from carbon monoxide and hydrogen in the following equilibrium reaction - Leaving Cert Chemistry - Question 7 - 2022
Question 7
Methanol is manufactured from carbon monoxide and hydrogen in the following equilibrium reaction.
$$\text{CO (g)} + 2\text{H}_2 (g) \rightleftharpoons \text{CH}_3\t... show full transcript
Worked Solution & Example Answer:Methanol is manufactured from carbon monoxide and hydrogen in the following equilibrium reaction - Leaving Cert Chemistry - Question 7 - 2022
Step 1
Explain chemical equilibrium in terms of (i) rates of reaction
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Answer
Chemical equilibrium is established when the rates of the forward and reverse reactions are equal, resulting in no net change in the concentrations of reactants and products. In the context of the reaction between carbon monoxide and hydrogen to form methanol, the rate of formation of methanol matches the rate at which methanol decomposes back into carbon monoxide and hydrogen.
Step 2
Explain chemical equilibrium in terms of (ii) the concentrations of the substances involved
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Answer
At equilibrium, the concentrations of carbon monoxide (CO), hydrogen (H₂), and methanol (CH₃OH) remain constant over time. This means that the amount of each substance present does not change, even though both the forward and reverse reactions continue to occur.
Step 3
Write an expression for the equilibrium constant Kc for this reaction
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Answer
The expression for the equilibrium constant (K_c) for the reaction is given by:
Kc=[CO][H2]2[CH3OH]
where [ ] denotes the molar concentration of the substances at equilibrium.
Step 4
Calculate Kc under the conditions described above based on the researcher’s report of a 25% conversion of carbon monoxide to methanol at equilibrium
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Initially, 5.0 moles of CO and 10.0 moles of H₂ are present. Given that 25% of CO reacts:
Moles of CO reacted = 0.25 × 5.0 = 1.25 mol
Moles of CO at equilibrium = 5.0 - 1.25 = 3.75 mol
Substituting these values into the expression for Kc:
Kc=(0.75)(1.52)0.25=(0.75)(2.25)0.25≈0.148
Step 5
What is an advantage of using a catalyst in an equilibrium reaction?
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Answer
An advantage of using a catalyst in an equilibrium reaction is that it accelerates the rate at which the equilibrium state is reached without affecting the position of the equilibrium. This means reactions can proceed more rapidly, allowing for faster production of desired products, such as methanol in this case.
Step 6
State Le Chatelier’s principle
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Le Chatelier’s principle states that if a system at equilibrium is subjected to a change in concentration, temperature, or pressure, the system will adjust to counteract that change and establish a new equilibrium.
Step 7
How was the yield of methanol affected when more carbon monoxide was added and equilibrium was allowed to re-establish? Explain your answer
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When more carbon monoxide is added, the equilibrium shifts to the right according to Le Chatelier’s principle, favoring the formation of methanol. This increases the yield of methanol as the system seeks to reduce the increased concentration of carbon monoxide.
Step 8
How was the value of Kc affected when more carbon monoxide was added and equilibrium was allowed to re-establish? Explain your answer
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Answer
The value of Kc remains unchanged when more carbon monoxide is added. Kc is a constant for a specific reaction at a given temperature, and while the concentrations of the reactants and products may change, the ratio defined by Kc does not.
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