For the reaction PCl5(g)<->PCl3(g)+Cl2(g) delta H=+93.6kJ and K=11.5 at 600 Kelvin. If K=1.2*10 at -4 power. Based on that data, when K=1.2*10 at -4 power is the temperature greater than or less than 600 Kelvin? Briefly explain your answer.
For the reaction PCl5(g)<->PCl3(g)+Cl2(g) delta H=+93.6kJ and K=11.5 at 600 Kelvin. If K=1.2*10 at -4 power....
For the following reaction at 600. K, the equilibrium constant, Kp, is 11.5. PCl5(g) PCl3(g) + Cl2(g) Suppose that 2.210 g of PCl5 is placed in an evacuated 535 mL bulb, which is then heated to 600. K. (a) What would be the pressure of PCl5 if it did not dissociate? (b) What is the partial pressure of PCl5 at equilibrium? (c) What is the total pressure in the bulb at equilibrium? (d) What is the degree of dissociation of...
PCl5 decomposes to PCl3 and Cl2 with kp = 3.70*10^-6 at 975 K. Given that delta H run = -74.0 Kj/mol determine temperature at which Kp = 5.20*10^-4
The equilibrium constant for the following reaction is 1.42×10-3 at 179 °C. PCl5(g)<-->PCl3(g) + Cl2(g) K = 1.42×10-3 at 179 °C Calculate the equilibrium constant for the following reactions at 179 °C. (a) PCl3(g) + Cl2(g)<--> PCl5(g) K = (b) 2 PCl5(g)<-->2 PCl3(g) + 2 Cl2(g) K =
The equilibrium constant, K, for the following reaction is 2.35×10-2 at 517 K. PCl5(g) PCl3(g) + Cl2(g) An equilibrium mixture of the three gases in a 11.3 L container at 517 K contains 0.269 M PCl5, 7.94×10-2 M PCl3 and 7.94×10-2 M Cl2. What will be the concentrations of the three gases once equilibrium has been reestablished, if the equilibrium mixture is compressed at constant temperature to a volume of 5.27 L? [PCl5] = M [PCl3] = M [Cl2] =...
The equilibrium constant, K, for the following reaction is 3.16×10-2 at 525 K. PCl5(g) <---> PCl3(g) + Cl2(g) An equilibrium mixture of the three gases in a 18.5 L container at 525 K contains 0.232 M PCl5, 8.57×10-2 M PCl3 and 8.57×10-2 M Cl2. What will be the concentrations of the three gases once equilibrium has been reestablished, if the equilibrium mixture is compressed at constant temperature to a volume of 8.42 L? [PCl5] = M [PCl3] = M [Cl2]...
For the reaction PCl5(g) <-->PCl3(g) + Cl2(g) the value of K = 28.3 at 532.0 K. Calculate the equilibrium partial pressures (in bar) of all species at 532.0 K if the initial pressures were P(PCl5(g)) = 0.664 bar, P(PCl3(g)) = 0.326 bar, and P(Cl2(g)) = 0.000 bar.
At 500 K the reaction PCl5(g) <----> PCl3(g) + Cl2(g) has Kp = 0.497. In an equilibrium mixture at 500 K, the partial pressure of PCl5 is 0.860 atm and that of PCl3 is 0.350 atm. What is the partial pressure of Cl2 in the equilibrium mixture?
The equilibrium constant, K, for the following reaction is 3.92×10-2 at 531 K. PCl5(g) PCl3(g) + Cl2(g) An equilibrium mixture of the three gases in a 16.1 L container at 531 K contains 0.178 MPCl5, 8.34×10-2 M PCl3 and 8.34×10-2 M Cl2. What will be the concentrations of the three gases once equilibrium has been reestablished, if the equilibrium mixture is compressed at constant temperature to a volume of 8.19 L? [PCl5] = M [PCl3] = M [Cl2] = M
For the reaction PCl5(g) ↔ PCl3(g) + Cl2(g) the value of K = 15.4 at 497.0 K. Calculate the equilibrium partial pressures (in bar) of all species at 497.0 K if the initial pressures were P(PCl5(g)) = 0.700 bar, P(PCl3(g)) = 0.320 bar, and P(Cl2(g)) = 0.000 bar.
Suppose K= 9.4 x 10^-3 at a certain temperature for the reaction PCl5--->PCl3+Cl2. Iif it is found that the concentration of PCl5 is twice the concentration of PCl3, what must be the concentration of Cl2 under these conditions?