The vapour pressure of water at 25 o C in a closed container holding a sample of Na 2 SO 4 .10H 2 O(s) has to be found. Concept Introduction: Equilibrium constant using partial pressure: The equilibrium constant of partial pressure can be defined as the ratio of products and reactants concentration at equilibrium in terms of partial pressure. For a reaction, aA (g) + bB (g) ⇌ cC (g) + dD (g) The expression of K p can be given as K p = (P C ) c (P D ) d (P A ) a (P B ) b
The vapour pressure of water at 25 o C in a closed container holding a sample of Na 2 SO 4 .10H 2 O(s) has to be found. Concept Introduction: Equilibrium constant using partial pressure: The equilibrium constant of partial pressure can be defined as the ratio of products and reactants concentration at equilibrium in terms of partial pressure. For a reaction, aA (g) + bB (g) ⇌ cC (g) + dD (g) The expression of K p can be given as K p = (P C ) c (P D ) d (P A ) a (P B ) b
Definition Definition Transformation of a chemical species into another chemical species. A chemical reaction consists of breaking existing bonds and forming new ones by changing the position of electrons. These reactions are best explained using a chemical equation.
Chapter 17, Problem 17.108P
(a)
Interpretation Introduction
Interpretation:
The vapour pressure of water at 25o C in a closed container holding a sample of Na2SO4.10H2O(s) has to be found.
Concept Introduction:
Equilibrium constant using partial pressure:
The equilibrium constant of partial pressure can be defined as the ratio of products and reactants concentration at equilibrium in terms of partial pressure.
For a reaction,
aA(g)+ bB(g)⇌cC(g)+ dD(g)
The expression of Kp can be given as
Kp = (PC)c(PD)d(PA)a(PB)b
(b)
Interpretation Introduction
Interpretation:
How the given changes affect the ratio of hydrated form to anhydrous form for the system has to be explained.
Concept Introduction:
Equilibrium constant:
The relationship between the concentration of products and concentration of reactants in a chemical reaction at equilibrium is said to be equilibrium constant. It is denoted by K.
For a reaction,
xX + yY ⇌ zZ
The expression of K can be given as
Kc = [Z]z[X]x[Y]ywhere,[X] = equilibrium concentration of X[Y] = equilibrium concentration of Y[Z] = equilibrium concentration of Z
Equilibrium constant using partial pressure:
The equilibrium constant of partial pressure can be defined as the ratio of products and reactants concentration at equilibrium in terms of partial pressure.
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