From 41f1f72e9502f5c3de6ca16b303803dfcf1df594 Mon Sep 17 00:00:00 2001 From: Thomas Stephen Lee Date: Fri, 4 Sep 2015 22:04:10 +0530 Subject: add/remove/update books --- Thermodynamics_Demystified/Chapter5.ipynb | 594 ------------------------------ 1 file changed, 594 deletions(-) delete mode 100755 Thermodynamics_Demystified/Chapter5.ipynb (limited to 'Thermodynamics_Demystified/Chapter5.ipynb') diff --git a/Thermodynamics_Demystified/Chapter5.ipynb b/Thermodynamics_Demystified/Chapter5.ipynb deleted file mode 100755 index a93ee1a4..00000000 --- a/Thermodynamics_Demystified/Chapter5.ipynb +++ /dev/null @@ -1,594 +0,0 @@ -{ - "metadata": { - "name": "", - "signature": "sha256:3928ce1341a76de85540172b210e9512b16c46c42e882063576b52bdb907073d" - }, - "nbformat": 3, - "nbformat_minor": 0, - "worksheets": [ - { - "cells": [ - { - "cell_type": "heading", - "level": 1, - "metadata": {}, - "source": [ - "Chapter 5:The Second Law of Thermodynamics" - ] - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.4:PG-112" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "Th=200+273.0 # higher temperture in kelvin \n", - "Tl=20+273.0 # lower temperture in kelvin\n", - "Wdot=15 # output of engine in kW\n", - "\n", - "ef=1-(Tl/Th) # carnot efficiency\n", - "\n", - "Qhdot=Wdot/ef # heat supplied by reservoir\n", - "print \" The heat suppled by higher temperature reservoir is\",round(Qhdot,2),\"kW \\n \"\n", - "# using forst law\n", - "Qldot=Qhdot-Wdot # heat rejected to reservoir\n", - "print \" The heat suppled by lower temperature reservoir is\",round(Qldot,2),\"kW\"\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The heat suppled by higher temperature reservoir is 39.42 kW \n", - " \n", - " The heat suppled by lower temperature reservoir is 24.42 kW\n" - ] - } - ], - "prompt_number": 3 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.5:PG-113" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "TL1=-5+273.0 # lower temperature in kelvin for first situation\n", - "TH=20+273.0 # higher temperature in kelvin\n", - "TL2=-25+273.0 #lower temperature in kelvin for second situation\n", - "\n", - "#solution\n", - "\n", - "COP1=TL1/(TH-TL1) # carnot refrigerator COP for first situation\n", - "# Let Heat be 100 kJ\n", - "QL=100.0 # assumption\n", - "W1=QL/COP1 # work done for situation 1\n", - "\n", - "# for situation 2\n", - "COP2=TL2/(TH-TL2) # COP carnot for second situation\n", - "W2=QL/COP2 # work done\n", - "\n", - "Per=(W2-W1)*100/W1 # percentage increase in work done \n", - "#result\n", - "print\" The perccentage increase in work is \",round(Per,1),\"%\"\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The perccentage increase in work is 94.5 %\n" - ] - } - ], - "prompt_number": 7 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.6:PG-117" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "import math\n", - "# initialization of variables\n", - "T1=20+273 # initial temperature in kelvin\n", - "P=200 # pressure in kPa\n", - "V=2 # volume in m^3\n", - "R=0.287 # gas constant for air\n", - "W=720 # work done on air in kJ\n", - "Cv=0.717 # specific heat at constant volume for air\n", - "\n", - "#solution\n", - "m=(P*V)/(R*T1) # mass of air\n", - "\n", - "T2=T1+(W/(m*Cv))# final temperature in kelvin\n", - "\n", - "delS=m*Cv*math.log(T2/T1) # ENROPY CHANGE FOR CONSTANT VOLUME PROCESS\n", - "print \" The Entropy increase is\",round(delS,3),\"kJ/K \"" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The Entropy increase is 1.851 kJ/K \n" - ] - } - ], - "prompt_number": 15 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.7:PG-118" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "T1=350+273 # initial temperature in kelvin\n", - "P1=1200.0 # initial pressure in kPa\n", - "P2=140 # final pressure in kPa\n", - "k=1.4 # polytopic index for air\n", - "Cv=0.717 # specific heat at constant volume for air\n", - "#solution\n", - "T2=T1*((P2/P1)**((k-1)/k)) # reversible adiabatic process relation\n", - "\n", - "w=-Cv*(T2-T1) # work done by gases in reversible adiabatic process\n", - "print\" The work done by gases is\",round(w),\"kJ/kg\"\n", - "\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The work done by gases is 205.0 kJ/kg\n" - ] - } - ], - "prompt_number": 18 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.8:PG-120" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "import math\n", - "# initialization of variables\n", - "T1=20+273.0 # initial temperature in kelvin\n", - "P1=200.0 # pressure in kPa\n", - "V=2 #volume in m^3\n", - "R=0.287 # gas constant for air\n", - "W=-720 # negative as work is done on air in kJ\n", - "\n", - "#solution\n", - "\n", - "m=(P1*V)/(R*T1)# mass of air\n", - "\n", - "u1=209.1 #specific internal energy of air at 293K and 200 kPa from table E.1\n", - "s1=1.678 # by interpolation from table E.1\n", - "# change in internal energy= work done\n", - "u2=-(W/m)+u1 # final internal energy\n", - "T2=501.2# final temperature interpolated from table E.1 corresponding to value of u2\n", - "s2=2.222 # value of s from table E.3 by interpolating from corresponding to value of u2\n", - "\n", - "P2=P1*(T2/T1) # final pressure in kPa\n", - "\n", - "delS=m*(s2-s1-R*math.log(P2/P1))# entropy change\n", - "# result\n", - "print \" The Entropy increase is\",round(delS,3),\"kJ/K \"" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The Entropy increase is 1.855 kJ/K \n" - ] - } - ], - "prompt_number": 22 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.9:PG-120" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "T1=350+273.0 # initial temperature in kelvin\n", - "P1=1200.0 # initial pressure in kPa\n", - "P2=140.0 # final pressure in kPa\n", - "k=1.4 # polytopic index for air\n", - "\n", - "#solution\n", - "# The values are taken from table E.1\n", - "Pr660=23.13# relative pressure @ 660K\n", - "Pr620=18.36# relative pressure @ 620K\n", - "Pr1=((Pr660-Pr620)*3/40)+Pr620 # relative pressure by interpolation\n", - "\n", - "Pr2=Pr1*(P2/P1) # relative pressure at state 2\n", - "\n", - "Pr340=2.149 # relative pressure @ 340K\n", - "Pr380=3.176 # relative pressure @ 380K\n", - "T2=((Pr2-Pr340)/(Pr380-Pr340))*40+340 # interpolating final temperature from table E.1\n", - "\n", - "# now interpolating u1 AND u2 from table E.1\n", - "u620=451.0# specific internal energy @ 620k\n", - "u660=481.0# specific internal energy @ 660k\n", - "u1=(u660-u620)*(3/40.0)+u620 # initial internal energy\n", - "\n", - "u380=271.7 #specific internal energy @ 380k\n", - "u340=242.8 #specific internal energy @ 340k\n", - "u2=((Pr2-Pr340)/(Pr380-Pr340))*(u380-u340)+u340 # final internal energy\n", - "\n", - "w=u2-u1 # work= change in internal energy\n", - "print \" The work done by gas is\",int(w),\"kJ/kg\"\n", - "# The answer is slightly different as values are approximated in textbook\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The work done by gas is -209 kJ/kg\n" - ] - } - ], - "prompt_number": 33 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.10:PG-123" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "T1=300+273.0 # initial temperature in kelvin\n", - "P1=600 # initial pressure in kPa\n", - "P2=40 # final pressure in kPa\n", - "\n", - "#solution\n", - "#please refer to steam table for values\n", - "v1=0.4344 # specific volume from steam table @ 573k and 600 kPa\n", - "v2=v1 # rigid container\n", - "u1=2801.0 # specific internal energy from steam table @ 573k and 600 kPa\n", - "s1=7.372 # specific entropy @ 600 kPa and 573 K\n", - "\n", - "vg2=0.4625 # specific volume of saturated vapour @ 40 kPa and 573 K\n", - "vf2=0.0011 # specific volume of saturated liquid @ 40 kPa and 573 K\n", - "sf2=1.777 # specific entropy of saturated liquid @ 40 kPa and 573 K\n", - "sg2=5.1197 # specific entropy of saturated vapour @ 40 kPa and 573 K\n", - "x=(v2-vf2)/(vg2-vf2)# quality of steam using pure substance relation\n", - "\n", - "s2=sf2+x*sg2 # overall specific enthalpy at quality 'x' \n", - "delS=s2-s1 # entropy change\n", - "print\" The entropy change is\",round(delS,3),\"kJ/kg.K \\n \"\n", - "\n", - "#heat transfer\n", - "uf2=604.3 #specific internal energy of saturated liquid @ 40 kPa and 573 K\n", - "ug2=1949.3 #specific internal energy of saturated vapour @ 40 kPa and 573 K\n", - "u2=uf2+x*ug2 #specific internal energy @ quality x\n", - "q=u2-u1 # heat transfer in kJ/kg from first law as W=0\n", - "print \" The heat transfer is\",int(q),\"kJ/kg\"\n", - "# result\n", - "# the answers are approximated in textbook but here they are precise thus minute difference is there" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The entropy change is -0.787 kJ/kg.K \n", - " \n", - " The heat transfer is -366 kJ/kg\n" - ] - } - ], - "prompt_number": 37 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.11:PG-126" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "import math\n", - "# initialization of variables\n", - "v1=0.5 # assumed as air is filled in half of the tank\n", - "v2=1.0 # final volume when partition is removed\n", - "R=0.287 # gas contant for air\n", - "#solution\n", - "q=0 # heat transfer is zero\n", - "w=0 # work done is zero\n", - "# temperatue is constant as no change in internal energy by first law\n", - "dels=R*math.log(v2/v1)# change in entropy when temperature is constant\n", - "print \"The change in specific entropy is\",round(dels,3),\"kJ/kg.K\"\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - "The change in specific entropy is 0.199 kJ/kg.K\n" - ] - } - ], - "prompt_number": 49 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.12:PG-127" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "T1=400+273.0 # initial temperature in kelvin\n", - "P=600 # pressure in kPa\n", - "Tsurr=25+273.0 # surrounding temperature in K\n", - "m=2 # mass of steam in kg\n", - "\n", - "#solution\n", - "#please refer to steam table for values\n", - "s1=7.708 # specific entropy of steam @ 400 degree celsius and 0.6 MPa\n", - "s2=1.9316# specific enropy of condensed water @ 25 degree celsius and 0.6 MPa\n", - "delSsys=m*(s2-s1) # entropy change in system i.e of steam\n", - "\n", - "h1=3270 # specific enthalpy of steam @ 400 degree celsius and 0.6 MPa\n", - "h2=670.6#specific enropy of condensed water @ 25 degree celsius and 0.6 MPa\n", - "\n", - "Q=m*(h1-h2)# heat transfer at constant pressure\n", - "delSsurr=Q/Tsurr # entropy change in surroundings\n", - "\n", - "sigma=delSsys+delSsurr # net entropy change\n", - "\n", - "print \"The net entropy production is\",round(sigma,1),\"kJ/K\"\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - "The net entropy production is 5.9 kJ/K\n" - ] - } - ], - "prompt_number": 53 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.13:PG-130" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "T1=600+273 # initial temperature in kelvin\n", - "P1=2 # initial pressure in MPa\n", - "P2=10 # final pressure in kPa\n", - "mdot=2 # mass flow rate in kg/s\n", - "\n", - "#solution\n", - "#please refer to steam table for values\n", - "h1=3690 # specific enthalpy in kJ/kg @ 2MPa and 600 degree celsius\n", - "s1=7.702 #specific entropy in kJ/kg.K @ 2MPa and 600 degree celsius\n", - "s2=s1 # Reversible adiabatic process thus entropy is constant\n", - "sf2=0.6491 #specific entropy of saturated liquid from steam table @ 10 kPa\n", - "sg2=8.151 #specific entropy of saturated vapour from steam table @ 10 kPa\n", - "\n", - "x2=(s2-sf2)/(sg2-sf2) # quality of steam at turbine exit\n", - "\n", - "h2f=191.8 #specific enthalpy of saturated liquid from steam table @ 10 kPa\n", - "h2g=2584.8 #specific enthalpy of saturated vapour from steam table @ 10 kPa\n", - "h2=h2f+x2*(h2g-h2f) # specific enthalpy @ quality 'x' \n", - "\n", - "WdotT=mdot*(h1-h2)# from work done in adiabatic process\n", - "# result\n", - "print \" The maximum power output is\",int(WdotT),\"kJ/s\"\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - " The maximum power output is 2496 kJ/s\n" - ] - } - ], - "prompt_number": 56 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.14:PG-130" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "\n", - "T1=600+273 # initial temperature in kelvin\n", - "P1=2 # initial pressure in MPa\n", - "P2=10 # final pressure in kPa\n", - "mdot=2 # mass flow rate in kg/s\n", - "EffT=0.8 # efficiency of turbine \n", - "WdotT=2496 # theoritical power of turbine in kW\n", - "\n", - "#solution\n", - "Wdota=EffT*WdotT # actual power output of turbine\n", - "h1=3690 # specific enthalpy @ 2MPa and 600 degree celsius\n", - "h2=h1-(Wdota/mdot) # final enthalpy from first law of thermodynamics\n", - "\n", - "T2=((h2-2688)/(2783-2688))*(150-100)+100 # by interpolating from steam table @ P2= 10 kPa, h2=2770 \n", - "s2=8.46 # final specific entropy by interpolation from steam table\n", - "\n", - "print \"The temperature by interpolation is\",round(T2),\" degree celsius \\n\"\n", - "print \"The final entropy by interpolation is\",round(s2,2),\"kJ/kg.K\"\n", - "# The temperature and entropy are found by interpolation from steam table and cannot be shown here.\n" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - "The temperature by interpolation is 102.0 degree celsius \n", - "\n", - "The final entropy by interpolation is 8.46 kJ/kg.K\n" - ] - } - ], - "prompt_number": 59 - }, - { - "cell_type": "heading", - "level": 2, - "metadata": {}, - "source": [ - "Ex5.15:PG-131" - ] - }, - { - "cell_type": "code", - "collapsed": false, - "input": [ - "# initialization of variables\n", - "\n", - "T2=250.0 # temperature of steam in degree celsius\n", - "mdot2=0.5 # mass flow rate of steam in kg/s\n", - "T1=45 # temperature of water in degree celsius\n", - "mdot1=4 # mass flow rate of water in kg/s\n", - "P=600.0 # pressure in kPa\n", - "\n", - "\n", - "mdot3=mdot1+mdot2 # by mass balance\n", - "\n", - "h2=2957 # specific enthalpy in kJ/kg of steam @ 600 Kpa from steam table\n", - "h1=188.4 # specific enthalpy in kJ/kg of water @ 600 Kpa from steam table\n", - "\n", - "h3=(mdot1*h1+mdot2*h2)/mdot3 # specific enthalpy in kJ/kg at exit\n", - "\n", - "# by interpolation from saturated steam table\n", - "T3=(h3-461.3)*10/(503.7-461.3)+110 # temperature of mixture\n", - "\n", - "sf3=1.508 # entropy of saturated liquid in kJ/kg.K at 600Kpa and T3 temperature from steam table\n", - "s3=sf3 # by interpolating sf\n", - "s2=7.182 # entropy of superheated steam in kJ/kg.K @ 600Kpa from steam table\n", - "s1=0.639 # entropy of entering water in kJ/kg.K at T= 45 degree celsius\n", - "\n", - "sigmaprod=mdot3*s3-mdot2*s2-mdot1*s1\n", - "# result\n", - "print \"The rate of entropy production is\",round(sigmaprod,3),\"kW/K \"" - ], - "language": "python", - "metadata": {}, - "outputs": [ - { - "output_type": "stream", - "stream": "stdout", - "text": [ - "The rate of entropy production is 0.639 kW/K \n" - ] - } - ], - "prompt_number": 60 - }, - { - "cell_type": "code", - "collapsed": false, - "input": [], - "language": "python", - "metadata": {}, - "outputs": [] - } - ], - "metadata": {} - } - ] -} \ No newline at end of file -- cgit