{
"metadata": {
"name": ""
},
"nbformat": 3,
"nbformat_minor": 0,
"worksheets": [
{
"cells": [
{
"cell_type": "heading",
"level": 1,
"metadata": {},
"source": [
"Chapter 4:Reactions in Aqueous Solutions"
]
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.6,Page no:148"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"K2Cr2O7=294.2 #mol mass of K2Cr2O7, g\n",
"M=2.16 #Concentration of K2Cr2O7, M\n",
"V=0.250 #volume of K2Cr2O7, L\n",
"\n",
"#Calculation\n",
"moles=M*V #moles of K2Cr2O7\n",
"mass=moles*K2Cr2O7 \n",
"\n",
"#Result\n",
"print\"The mass of the K2Cr2O7 needed is :\",round(mass),\"g K2Cr2O7\\n\"\n"
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The mass of the K2Cr2O7 needed is : 159.0 g K2Cr2O7\n",
"\n"
]
}
],
"prompt_number": 12
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.7,Page no:149"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"mGlucose=3.81 #mass of Glucose, g\n",
"Glucose=180.2 #mol mass of Glucose, g\n",
"M=2.53 #Concentration of Glucose, M\n",
"\n",
"#Calculation\n",
"moles=mGlucose/Glucose #moles of Glucose\n",
"V=moles/M #volume of Glucose, L\n",
"\n",
"#Result\n",
"print\"The volume of the Glucose needed is :\",round(V*1000,2),\"mL soln\\n\"\n"
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The volume of the Glucose needed is : 8.36 mL soln\n",
"\n"
]
}
],
"prompt_number": 14
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.8,Page no:150"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"M2=1.75 #final Concentration of H2SO4, M\n",
"V2=500 #final volume of H2SO4, mL\n",
"M1=8.61 #initial Concentration of H2SO4, M\n",
"\n",
"#Calculation\n",
"V1=M2*V2/M1 #initail volume of H2SO4, mL\n",
"\n",
"#Result\n",
"print\"The volume of the H2SO4 needed to dilute the solution is :\",round(V1),\"mL\""
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The volume of the H2SO4 needed to dilute the solution is : 102.0 mL\n"
]
}
],
"prompt_number": 16
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.9,Page no:152"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"mSample=0.5662 #mass of sample, g\n",
"Cl=35.5 #mol mass of Cl, g\n",
"AgCl=143.4 #mol mass of AgCl, g\n",
"mAgCl=1.0882 #mass of AgCl formed, g\n",
"\n",
"#Calculation\n",
"p_Cl_AgCl=Cl/AgCl*100.0 #percent Cl in AgCl\n",
"mCl=p_Cl_AgCl*mAgCl/100.0 #mass of Cl in AgCl, g\n",
"mCl=round(mCl,3)\n",
"#the same amount of Cl is present in initial sample\n",
"p_Cl=mCl/mSample*100.0 #percent Cl in initial sample\n",
"\n",
"#Result\n",
"print\"The percentage of Cl in sample is :\",round(p_Cl,2),\"%\"\n"
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The percentage of Cl in sample is : 47.51 %\n"
]
}
],
"prompt_number": 25
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.10,Page no:154"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"mKHP=0.5468 #mass of KHP, g\n",
"KHP=204.2 #mol mass of KHP, g\n",
"\n",
"#Calculation\n",
"nKHP=mKHP/KHP #moles of KHP\n",
"VNaOH=23.48 #volume of NaOH, mL\n",
"MNaOH=nKHP/VNaOH*1000 #molarity of NaOH sol, M\n",
"\n",
"#Result\n",
"print\"The molarity of NaOH solution is :\",round(MNaOH,4),\"M\\n\""
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The molarity of NaOH solution is : 0.114 M\n",
"\n"
]
}
],
"prompt_number": 18
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.11,Page no:155"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"MNaOH=0.610 #molarity of NaOH, M\n",
"VH2SO4=20 #volume of H2SO4, mL\n",
"MH2SO4=0.245 #molarity of H2SO4, M\n",
"\n",
"#Calculation\n",
"nH2SO4=MH2SO4*VH2SO4/1000 #moles of H2SO4\n",
"VNaOH=2*nH2SO4/MNaOH #Volume of NaOH, L\n",
"\n",
"#Result\n",
"print\"The volume of NaOH solution is :\",round(VNaOH*1000,1),\"mL\\n\""
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The volume of NaOH solution is : 16.1 mL\n",
"\n"
]
}
],
"prompt_number": 19
},
{
"cell_type": "heading",
"level": 2,
"metadata": {},
"source": [
"Example no:4.12,Page no:157"
]
},
{
"cell_type": "code",
"collapsed": false,
"input": [
"#Variable declaration\n",
"MKMnO4=0.1327 #molarity of KMnO4, M\n",
"VKMnO4=16.42 #volume of KMnO4, mL\n",
"\n",
"#Calculation\n",
"nKMnO4=MKMnO4*VKMnO4/1000 \n",
"nFeSO4=5*nKMnO4 \n",
"VFeSO4=25 #volume of FeSO4, mL\n",
"MFeSO4=nFeSO4/VFeSO4*1000 \n",
"\n",
"#Result\n",
"print\"The molarity of FeSO4 solution is :\",round(MFeSO4,3),\"M\\n\""
],
"language": "python",
"metadata": {},
"outputs": [
{
"output_type": "stream",
"stream": "stdout",
"text": [
"The molarity of FeSO4 solution is : 0.436 M\n",
"\n"
]
}
],
"prompt_number": 20
}
],
"metadata": {}
}
]
}