Answer:
The new equilibrium total pressure will be increased to one-half to initial total pressure.
Explanation:
From the information given :
The equation of the reaction can be represented as;
[tex]2SO_{2(g)}+O_{2(g)} \to2SO_{3(g)}[/tex]
From above equation:
2 moles of sulphur dioxide reacts with 1 mole of oxygen (i.e 2 moles +1 mole =3 moles ) to give 2 moles of sulphur trioxide
So; suppose the volume of this system is compressed to one-half its initial volume and then equilibrium is reestablished.
So if this process takes place ; the equilibrium will definitely shift to the side with fewer moles , thus the equilibrium will shift to the right. As such; there is increase in pressure.
Let the total pressure at the initial equilibrium be [tex]P_1[/tex]
and the total pressure at the final equilibrium be [tex]P_2[/tex]
According to Boyle's Law; Boyle's Law states that the pressure of a fixed mass of gas is inversely proportional to the volume, provided the temperature remains constant.
Thus;
P ∝ 1/V
P = K/V
PV = K
where K = constant
So;
PV = constant
Hence;
[tex]P_1V_1 = P_2V_2[/tex]
From the foregoing; since the volume is decreased to one- half to initial Volume; then ,
[tex]V_2 = \dfrac{V_1}{\dfrac{3}{2}} ----- (1)[/tex]
also;
Thus ;
[tex]P_1V_1 = P_2( \dfrac{V_1}{\frac{3}{2}})[/tex]
[tex]P_1V_1 = P_2 * 2 \dfrac{V_1}{3}[/tex]
[tex]3 P_1 V_1 = 2 P_2 V_1[/tex]
Dividing both sides by [tex]V_1[/tex]
[tex]3P_1 = 2P_2[/tex]
[tex]P_2 =P_1 \dfrac{3}{2} ----- (2)[/tex]
From ;
[tex]P_1V_1 = P_2V_2[/tex]
[tex]P_2 V_2 = P_1 * \dfrac{3}{2}* \dfrac{V_1}{\frac{3}{2}}[/tex]
[tex]P_2 V_2 = P_1 * \dfrac{3}{2}* \dfrac{2 }{3}}*V_1[/tex]
[tex]P_2 V_2 = P_1 V_1[/tex]
Thus; The new equilibrium total pressure will be increased to one-half to initial total pressure.
