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The Mean Activity Coefficient is the measure of ion-ion interaction in the solution containing both cation and anion. Check FAQs
γ±=A±(413)m
γ± - Mean Activity Coefficient?A± - Mean Ionic Activity?m - Molality?

Mean Activity Coefficient for Uni-Bivalent Electrolyte Example

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Here is how the Mean Activity Coefficient for Uni-Bivalent Electrolyte equation looks like with Values.

Here is how the Mean Activity Coefficient for Uni-Bivalent Electrolyte equation looks like with Units.

Here is how the Mean Activity Coefficient for Uni-Bivalent Electrolyte equation looks like.

0.756Edit=0.06Edit(413)0.05Edit
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Mean Activity Coefficient for Uni-Bivalent Electrolyte Solution

Follow our step by step solution on how to calculate Mean Activity Coefficient for Uni-Bivalent Electrolyte?

FIRST Step Consider the formula
γ±=A±(413)m
Next Step Substitute values of Variables
γ±=0.06mol/kg(413)0.05mol/kg
Next Step Prepare to Evaluate
γ±=0.06(413)0.05
Next Step Evaluate
γ±=0.755952629936924
LAST Step Rounding Answer
γ±=0.756

Mean Activity Coefficient for Uni-Bivalent Electrolyte Formula Elements

Variables
Mean Activity Coefficient
The Mean Activity Coefficient is the measure of ion-ion interaction in the solution containing both cation and anion.
Symbol: γ±
Measurement: NAUnit: Unitless
Note: Value can be positive or negative.
Mean Ionic Activity
The Mean Ionic Activity is the measure of the effective concentration of cation and anion in the solution.
Symbol: A±
Measurement: MolalityUnit: mol/kg
Note: Value can be positive or negative.
Molality
Molality is defined as the total number of moles of solute per kilograms of solvent present in the solution.
Symbol: m
Measurement: MolalityUnit: mol/kg
Note: Value can be positive or negative.

Other Formulas to find Mean Activity Coefficient

​Go Mean Activity Coefficient for Uni-Trivalent Electrolyte
γ±=A±(2714)m
​Go Mean Activity Coefficient for Uni-Univalent Electrolyte
γ±=A±m
​Go Mean Activity Coefficient using Debey-Huckel Limiting Law
γ±=exp(-A(Zi2)(I))

Other formulas in Mean Activity Coefficient category

​Go Ionic Strength for Bi-Bivalent Electrolyte
I=(12)(m+((Z+)2)+m-((Z-)2))
​Go Ionic Strength for Uni-Univalent Electrolyte
I=(12)(m+((Z+)2)+m-((Z-)2))
​Go Ionic Strength of Bi-Trivalent Electrolyte
I=(12)(2m+((Z+)2)+3m-((Z-)2))
​Go Ionic Strength of Uni-Bivalent Electrolyte
I=(12)(m+((Z+)2)+(2m-((Z-)2)))

How to Evaluate Mean Activity Coefficient for Uni-Bivalent Electrolyte?

Mean Activity Coefficient for Uni-Bivalent Electrolyte evaluator uses Mean Activity Coefficient = Mean Ionic Activity/((4^(1/3))*Molality) to evaluate the Mean Activity Coefficient, The Mean activity coefficient for Uni-bivalent electrolyte formula is defined as the ratio of mean ionic activity to the cube root of four and molality of the electrolyte. Mean Activity Coefficient is denoted by γ± symbol.

How to evaluate Mean Activity Coefficient for Uni-Bivalent Electrolyte using this online evaluator? To use this online evaluator for Mean Activity Coefficient for Uni-Bivalent Electrolyte, enter Mean Ionic Activity (A±) & Molality (m) and hit the calculate button.

FAQs on Mean Activity Coefficient for Uni-Bivalent Electrolyte

What is the formula to find Mean Activity Coefficient for Uni-Bivalent Electrolyte?
The formula of Mean Activity Coefficient for Uni-Bivalent Electrolyte is expressed as Mean Activity Coefficient = Mean Ionic Activity/((4^(1/3))*Molality). Here is an example- 1.111695 = 0.06/((4^(1/3))*0.05).
How to calculate Mean Activity Coefficient for Uni-Bivalent Electrolyte?
With Mean Ionic Activity (A±) & Molality (m) we can find Mean Activity Coefficient for Uni-Bivalent Electrolyte using the formula - Mean Activity Coefficient = Mean Ionic Activity/((4^(1/3))*Molality).
What are the other ways to Calculate Mean Activity Coefficient?
Here are the different ways to Calculate Mean Activity Coefficient-
  • Mean Activity Coefficient=Mean Ionic Activity/((27^(1/4))*Molality)OpenImg
  • Mean Activity Coefficient=Mean Ionic Activity/MolalityOpenImg
  • Mean Activity Coefficient=exp(-Debye Huckel limiting Law Constant*(Charge Number of Ion Species^2)*(sqrt(Ionic Strength)))OpenImg
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