The equilibrium constant, Kc , for the following reaction is 5.10×10-6 at 548 K. NH4Cl(s) NH3(g) + HCl(g) If an equilibrium mixture of the three compounds in a 4.47 L container at 548 K contains 4.00 mol of NH4Cl(s) and 0.214 mol of NH3, the number of moles of HCl present is  moles.

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The equilibrium constant, Kc , for the following reaction is 5.10×10-6 at 548 K.

NH4Cl(s) NH3(g) + HCl(g)

If an equilibrium mixture of the three compounds in a 4.47 L container at 548 K contains 4.00 mol of NH4Cl(s) and 0.214 mol of NH3, the number of moles of HCl present is  moles.

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Step 1 To Calculate

Given, the chemical reaction as follows,NH4Cl(s)NH3(g)+HCl(g)the equilibrium constant Kc for the above reaction is 5.10×10-6the volume of container =4.47 Land the equilibrium mixture contains 4.00 mol of NH4Cl(s) and 0.214 moleof NH3 (g) we are asked to calculate the number of moles of HCl

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