Answered step by step
Verified Expert Solution
Link Copied!

Question

1 Approved Answer

please help me Problem 1: Given at temperature 298K, the equilibrium constant for the dissociation of acetic acid in water is KD= 1.75105 1.1. At

image text in transcribed

please help me

Problem 1: Given at temperature 298K, the equilibrium constant for the dissociation of acetic acid in water is KD= 1.75105 1.1. At this temperature, calculate the degree of dissociation of acetic acid in its aqueous solution containing 5105 mol.dm 3CH3COOH only. 1.2. At this temperature, calculate the degree of dissociation of acetic acid in its aqueous solution containing 5105 mol. dm3CH3COOH and 101moldm3NaOH. Calculate the ionic strength of this solution. Then use the DebyeHckel 1st limiting law to calculate the mean activity coefficients of electrolytes inside this solution. 1.3. At this temperature, calculate the degree of dissociation of acetic acid in its aqueous solution containing 5105 ionic strength of this solution. Then use the Debye-Hckel 1st limiting law to calculate the mean activity coefficients of electrolytes inside this solution. 1.4. Try to qualitatively compare the conductivities of the 3 solutions mentioned above

Step by Step Solution

There are 3 Steps involved in it

Step: 1

blur-text-image

Get Instant Access to Expert-Tailored Solutions

See step-by-step solutions with expert insights and AI powered tools for academic success

Step: 2

blur-text-image

Step: 3

blur-text-image

Ace Your Homework with AI

Get the answers you need in no time with our AI-driven, step-by-step assistance

Get Started

Recommended Textbook for

Introduction To Chemical Engineering

Authors: S. Pushpavanam

1st Edition

8120345770, 978-8120345775

More Books

Students also viewed these Chemical Engineering questions