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+{
+"cells": [
+ {
+ "cell_type": "markdown",
+ "metadata": {},
+ "source": [
+ "# Chapter 7: Conductivity"
+ ]
+ },
+{
+ "cell_type": "markdown",
+ "metadata": {},
+ "source": [
+ "## Example 7.1: chapter_7_example_1.sce"
+ ]
+ },
+ {
+"cell_type": "code",
+ "execution_count": null,
+ "metadata": {
+ "collapsed": true
+ },
+ "outputs": [],
+"source": [
+"clc\n",
+"//initialisation of variables\n",
+"R= 10 //ohms\n",
+"V= 5 //v\n",
+"t= 20 //min\n",
+"//CALCULATIONS\n",
+"I= V/R\n",
+"Q= I*t*60\n",
+"E= Q*V\n",
+"//RESULTS\n",
+"printf (' current= %.1f amp',I)\n",
+"printf (' \n coloumbs of electricity will pass= %.f coloumbs',Q)\n",
+"printf (' \n energy expended= %.f joules',E)"
+ ]
+ }
+,
+{
+ "cell_type": "markdown",
+ "metadata": {},
+ "source": [
+ "## Example 7.2: chapter_7_example_2.sce"
+ ]
+ },
+ {
+"cell_type": "code",
+ "execution_count": null,
+ "metadata": {
+ "collapsed": true
+ },
+ "outputs": [],
+"source": [
+"clc\n",
+"//initialisation of variables\n",
+"I= 50 //amp\n",
+"t= 1 //hr\n",
+"F= 96500 //amp-sec\n",
+"mh= 1.01 //gms\n",
+"mc= 35.46 //gms\n",
+"ms= 107.88 //gms\n",
+"mb= 79.9 //gms\n",
+"mf= 55.85 //gms\n",
+"V= 11.2 //lit\n",
+"e= 8 //v\n",
+"//CALCULATIONS\n",
+"N= I*t*60*60/F\n",
+"Mh= mh*N\n",
+"Mc= mc*N\n",
+"Ms= ms*N\n",
+"Mb= mb*N\n",
+"Mf= mf*N\n",
+"v= N*V\n",
+"E= e*I*60*60\n",
+"//RESULTS\n",
+"printf (' quantity of hydrogen produced= %.2f gms',Mh)\n",
+"printf (' \n quantity of chlorine produced= %.2f gms',Mc)\n",
+"printf (' \n quantity of silver produced= %.2f gms',Ms)\n",
+"printf (' \n quantity of bromine produced= %.2f gms',Mb)\n",
+"printf (' \n quantity of ferrous ion produced= %.2f gms',Mf)\n",
+"printf (' \n Volume occupied by gases= %.1f lit',v)\n",
+"printf (' \n energy expenditure= %.f joules',E)"
+ ]
+ }
+,
+{
+ "cell_type": "markdown",
+ "metadata": {},
+ "source": [
+ "## Example 7.3: chapter_7_example_3.sce"
+ ]
+ },
+ {
+"cell_type": "code",
+ "execution_count": null,
+ "metadata": {
+ "collapsed": true
+ },
+ "outputs": [],
+"source": [
+"clc\n",
+"//initialisation of variables\n",
+"i= 20 //amp\n",
+"t= 50 //min\n",
+"F= 96500 //coloumb\n",
+"we= 8 //gms\n",
+"Mo= 32 //gms\n",
+"M= 27 //gms\n",
+"n= 3\n",
+"//CALCULATIONS\n",
+"nf= i*t*60/F\n",
+"V= we*22.4/Mo*nf\n",
+"G= M/n\n",
+"q= G*nf\n",
+"//RESULTS\n",
+"printf (' volume of oxygen produced= %.2f lit',V)\n",
+"printf (' \n quantity of aluminium produced= %.2f grams',q)"
+ ]
+ }
+,
+{
+ "cell_type": "markdown",
+ "metadata": {},
+ "source": [
+ "## Example 7.4: chapter_7_example_4.sce"
+ ]
+ },
+ {
+"cell_type": "code",
+ "execution_count": null,
+ "metadata": {
+ "collapsed": true
+ },
+ "outputs": [],
+"source": [
+"clc\n",
+"//initialisation of variables\n",
+"L= 0.025 //ohms\n",
+"k= 0.0112 //ohms\n",
+"//CALCULATIONS\n",
+"C= k/L\n",
+"//RESULTS\n",
+"printf (' cell constant= %.3f ',C)"
+ ]
+ }
+,
+{
+ "cell_type": "markdown",
+ "metadata": {},
+ "source": [
+ "## Example 7.5: chapter_7_example_5.sce"
+ ]
+ },
+ {
+"cell_type": "code",
+ "execution_count": null,
+ "metadata": {
+ "collapsed": true
+ },
+ "outputs": [],
+"source": [
+"clc\n",
+"//initialisation of variables\n",
+"m= 0.01 //M\n",
+"CB= 235 //mm\n",
+"R= 426.3 //ohms\n",
+"M= 265 \n",
+"C= 0.448\n",
+"//CALCULATIONS\n",
+"k= M*C/(R*CB)\n",
+"A= k*1000/m\n",
+"//RESULTS\n",
+"printf (' equivalent conductance= %.1f ohms',A)"
+ ]
+ }
+],
+"metadata": {
+ "kernelspec": {
+ "display_name": "Scilab",
+ "language": "scilab",
+ "name": "scilab"
+ },
+ "language_info": {
+ "file_extension": ".sce",
+ "help_links": [
+ {
+ "text": "MetaKernel Magics",
+ "url": "https://github.com/calysto/metakernel/blob/master/metakernel/magics/README.md"
+ }
+ ],
+ "mimetype": "text/x-octave",
+ "name": "scilab",
+ "version": "0.7.1"
+ }
+ },
+ "nbformat": 4,
+ "nbformat_minor": 0
+}