If the reaction quotient ( Q ) is greater than the equilibrium constant ( K_{eq} ), the system will shift to the left to reach equilibrium, favoring the formation of reactants. This shift occurs because the concentration of products is too high relative to the reactants, prompting the reaction to consume some of the products to restore balance. Ultimately, the system will adjust until ( Q ) equals ( K_{eq} ).
Chat with our AI personalities
Products. keq equals [products] / [reactants] . A (-) Keq indicates a reactant favored reaction.
is 2 * abs(q -19). where abs(q-19) = q - 19 if q >= 19 and 19 - q if q <= 19
The sum of p and q means (p+q). The difference of p and q means (p-q).
if q+9=16 q=16-9 q= 7
if the statement is : if p then q converse: if q then p inverse: if not p then not q contrapositive: if not q then not