The equilibrium partial pressure of CH 4 (g) has to be calculated. Concept Introduction: Equilibrium constant ( K p ) : In gas phase reactions, partial pressure is used to write equilibrium equation than molar concentration. Equilibrium constant ( K p ) is defined as ratio of partial pressure of products to partial pressure of reactants. Each partial pressure term is raised to a power, which is same as the coefficients in the chemical reaction Consider the reaction where A reacts to give B. aA ⇌ bB Rate of forward reaction = Rate of reverse reaction k f P A a =k r P B a On rearranging, P B b P A a = k f k r =K p Where, k f is the rate constant of the forward reaction. k r is the rate constant of the reverse reaction. K p is the equilibrium constant.
The equilibrium partial pressure of CH 4 (g) has to be calculated. Concept Introduction: Equilibrium constant ( K p ) : In gas phase reactions, partial pressure is used to write equilibrium equation than molar concentration. Equilibrium constant ( K p ) is defined as ratio of partial pressure of products to partial pressure of reactants. Each partial pressure term is raised to a power, which is same as the coefficients in the chemical reaction Consider the reaction where A reacts to give B. aA ⇌ bB Rate of forward reaction = Rate of reverse reaction k f P A a =k r P B a On rearranging, P B b P A a = k f k r =K p Where, k f is the rate constant of the forward reaction. k r is the rate constant of the reverse reaction. K p is the equilibrium constant.
Definition Definition Study of the speed of chemical reactions and other factors that affect the rate of reaction. It also extends toward the mechanism involved in the reaction.
Chapter 17, Problem 17.46P
Interpretation Introduction
Interpretation:
The equilibrium partial pressure of CH4(g) has to be calculated.
Concept Introduction:
Equilibrium constant(Kp):
In gas phase reactions, partial pressure is used to write equilibrium equation than molar concentration. Equilibrium constant (Kp) is defined as ratio of partial pressure of products to partial pressure of reactants. Each partial pressure term is raised to a power, which is same as the coefficients in the chemical reaction
Consider the reaction where A reacts to give B.
aA⇌bB
Rate of forward reaction = Rate of reverse reactionkfPAa=krPBa
In this reaction, after they add the epoxide, then they add water. Why doesn't adding water to an epoxide produce a 1,2-diol? Wouldn't the water form a bond with one of the carbons on the ring when it opens the ring?
Please correct answer and don't used hand raiting
Chapter 17 Solutions
Connect 2-Year Access Card for Chemistry: The Molecular Nature of Matter and Change
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.