Equilibrium Constant Calculator
Write Kc, solve ICE tables and convert between Kc and Kp with step-by-step solutions
Writing the Equilibrium Constant
For a balanced reversible reaction
the equilibrium constant in terms of concentration is
- — equilibrium molar concentrations, never initial ones.
- The exponents are the balancing coefficients, so belongs to one specific way of writing the equation.
- Pure solids and pure liquids are omitted, along with the solvent in a dilute solution, because their activities are 1.
For gases the same reaction has a pressure-based constant , built from partial pressures. The two are related by
with , in kelvin, and the change in moles of gas. When the two are numerically equal.
What this assumes. The system has actually reached equilibrium at a stated temperature, and concentrations approximate activities. changes only with temperature — not with pressure, catalysts or starting amounts.
Finding Equilibrium Concentrations
Reading K
A large means products dominate at equilibrium; a small means reactants do. is dimensionless by convention, because each concentration is really a ratio to a standard state.
Q versus K
The reaction quotient uses the same expression with whatever concentrations exist right now. If the reaction runs forward; if it runs in reverse; if it is at equilibrium.
The ICE table
- Initial — write the starting concentrations.
- Change — express every change as a coefficient times .
- Equilibrium — add the two rows.
- Substitute into and solve for .
Step 4 usually produces a quadratic. When is very small compared with the initial concentration, the approximation saves the algebra; check afterwards that is under about 5% of . If the expression is a perfect square — as it is for — take the square root of both sides instead.
Significant figures
carries the fewest significant figures of the concentrations used. Keep extra digits inside the ICE table and round only the final concentrations.
Common Mistakes to Avoid
- Using initial concentrations in . The expression takes equilibrium values; that is the entire purpose of the ICE table.
- Including a solid or a pure liquid. For , is just .
- Forgetting the exponents. In , hydrogen is cubed and ammonia squared. Dropping a power changes the answer by orders of magnitude.
- Ignoring how transforms. Reversing a reaction inverts ; doubling the coefficients squares it; adding reactions multiplies their constants.
- Using the wrong . Only gases count in for , and must be in kelvin.
- Keeping a negative root. A concentration cannot be negative; discard that solution of the quadratic.
- Thinking a catalyst changes . It speeds up both directions equally and shifts nothing.
示例题目
常见问题
Write the balanced equation, then divide the product concentrations by the reactant concentrations, each raised to its coefficient, using equilibrium values. Leave out pure solids and pure liquids. If you only have starting amounts, build an ICE table first.
Kc is built from molar concentrations, Kp from partial pressures of gases. They are related by Kp = Kc(RT)^Δn, where Δn is the change in moles of gas across the equation and T is in kelvin. When Δn = 0 the two are numerically identical.
They use the same algebraic expression. K uses equilibrium concentrations; Q uses whatever concentrations exist at the moment. Comparing them predicts direction: Q < K means the reaction proceeds forward, Q > K means it proceeds in reverse.
No. K depends only on the reaction and the temperature. Changing concentrations shifts the position of equilibrium but leaves K alone, and a catalyst speeds up both directions equally so it changes how fast equilibrium arrives, not where it lies.
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