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diff --git a/3890/CH6/EX6.1/EX6_1.sce b/3890/CH6/EX6.1/EX6_1.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.1
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+N=1750; //speed of the machine in rpm
+Z=728; //no of conductors
+f=25*10^(-3); //flux per pole
+
+E=f*N*Z/60; //since P=A
+
+printf('the voltage induced is %f V',E)
diff --git a/3890/CH6/EX6.1/Ex6_1.png b/3890/CH6/EX6.1/Ex6_1.png
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diff --git a/3890/CH6/EX6.10/Ex6_10.png b/3890/CH6/EX6.10/Ex6_10.png
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diff --git a/3890/CH6/EX6.10/Ex6_10.sce b/3890/CH6/EX6.10/Ex6_10.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.10
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+v=230; //supply voltage in v
+I1=80; //line current in A
+N1=750; //speed at I1 in rpm
+n=15; //number of turns per pole
+Rf=0.11; //field resistance in ohm
+Ra=0.14; //armature resistance in ohms
+I2=20; //line current in A
+
+E1=v-I1*(Rf+Ra);
+E2=v-I2*(Rf+Ra);
+At1=n*I1;
+At2=n*I2;
+phi1=4.3*10^3;phi2=1.4*10^3; //from Appendix 3 in wb
+N2=N1*E2*phi1/(E1*phi2);
+
+printf('The motor speed at I2 is %f rpm',N2)
+
diff --git a/3890/CH6/EX6.11/Ex6_11.png b/3890/CH6/EX6.11/Ex6_11.png
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diff --git a/3890/CH6/EX6.11/Ex6_11.sce b/3890/CH6/EX6.11/Ex6_11.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.11
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+p=25*10^3; //power rating in w
+E=230; //generated voltage in v
+N=1200; //speed in rpm
+Ra=0.12; //armature resistance in ohm
+Rf=100; //field resistance in ohm
+Pme=300; //machanical loss in W
+pml=200; //magnetic loss in w
+At1=2500; //ampere turns per pole
+At2=1500; //ampere turns per pole
+va=200; //voltage in V
+nf=1000; //number of turns in field winding
+
+Ia=p/va;
+V=E-Ia*Ra;
+Pout=V*Ia;
+Pa=Ia^2*Ra;
+If=At1/nf;
+Pf=If^2*Rf;
+pin=Pout+Pa+Pf+Pme+pml;
+Eff=Pout/pin;
+N1=(N*2*3.14)/60; //speed in rad/s
+Tin=(pin-Pf)/N1;
+Vreg=(E-V)*100/V;
+
+printf('armature terminal voltage is %f V\n',V)
+printf('Effeciency is %f\n',Eff)
+printf('Input torque is %f Nm\n',Tin)
+printf('Voltage regulation is %f in percentage',Vreg)
diff --git a/3890/CH6/EX6.12/Ex6_12.png b/3890/CH6/EX6.12/Ex6_12.png
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diff --git a/3890/CH6/EX6.12/Ex6_12.sce b/3890/CH6/EX6.12/Ex6_12.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.12
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+At1=2000; //amper eturns per pole
+Va=250; //armature voltage in v
+Ia=100; //armature current in A
+Ra=0.12; //armature resistance in ohm
+N=1200; //speed in rpm
+
+E=Va-Ia*Ra;
+E1=212; //from graph 6.41
+N1=N*E/E1;
+n1=N1*2*3.14/60;
+T=E*Ia/n1;
+
+printf('The motor speed is %f rpm[%f rad/s]\n',N1,n1);
+printf('the torque is %f Nm',T)
diff --git a/3890/CH6/EX6.13/Ex6_13.png b/3890/CH6/EX6.13/Ex6_13.png
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diff --git a/3890/CH6/EX6.13/Ex6_13.sce b/3890/CH6/EX6.13/Ex6_13.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.13
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+At1=2000; //amper eturns per pole
+Va=250; //armature voltage in v
+Ia=100; //armature current in A
+Ra=0.12; //armature resistance in ohm
+N=1200; //speed in rpm
+Atloss=250; //due to demagnetising effect
+
+Atnew=At1-Atloss;
+E=Va-Ia*Ra;
+E1=202; //from graph 6.41 at Atnew
+N1=N*E/E1;
+n1=N1*2*3.14/60;
+T=E*Ia/n1;
+
+
+printf('The motor speed is %f rpm[%f rad/s]\n',N1,n1);
+printf('the torque is %f Nm',T)
diff --git a/3890/CH6/EX6.2/Ex6_2.png b/3890/CH6/EX6.2/Ex6_2.png
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diff --git a/3890/CH6/EX6.2/Ex6_2.sce b/3890/CH6/EX6.2/Ex6_2.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:TataMcgraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.2
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+z=576; //no of conductors
+Ia=123.5; //armature current in A
+f=20*10^-3; //flux in wb
+
+Te=z*f*Ia/(2*3.14);
+
+printf('The electro magnetic torque required is %f Nm',Te)
diff --git a/3890/CH6/EX6.3/Ex6_3.png b/3890/CH6/EX6.3/Ex6_3.png
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diff --git a/3890/CH6/EX6.3/Ex6_3.sce b/3890/CH6/EX6.3/Ex6_3.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:TataMcgraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.3
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+z=576; //no of conductors
+Ia=123.5; //armature current in A
+f=20*10^-3; //flux in wb
+w=150; //angular velocity in rad/s
+
+Te=z*f*Ia/(2*3.14);
+E=Te*w/Ia;
+
+printf('The induced emf is %f V',E)
diff --git a/3890/CH6/EX6.4/EX6_4.sce b/3890/CH6/EX6.4/EX6_4.sce
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index 000000000..f5b01a609
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.4
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+V=250; //supply voltage
+Ra=.25; //armature resistance
+Rf=125; //field resistance
+Il0=5;n1=1200; //no load current and speed
+Il1=52; //full load current at certain load
+
+If=V/Rf;
+Ia0=Il0-If;
+E1=V-Ia0*Ra;
+Ia1=Il1-If;
+E2=V-Ia1*Ra;
+
+n2=E2*n1/E1;
+
+printf('The full load speed is %d rpm',n2)
diff --git a/3890/CH6/EX6.4/Ex6_4.png b/3890/CH6/EX6.4/Ex6_4.png
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diff --git a/3890/CH6/EX6.6/EX6_6.png b/3890/CH6/EX6.6/EX6_6.png
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diff --git a/3890/CH6/EX6.6/EX6_6.sce b/3890/CH6/EX6.6/EX6_6.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.6
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+P=50*10^3;
+V=250;
+Ra=.06;
+Rf=125;
+Vd=2;
+Rse=0.04;
+
+I=P/V;
+V1=I*Rse;
+Vf=V+V1;
+If=Vf/Rf;
+Ia=I+If;
+Va=Ia*Ra;
+E=V+Va+V1+Vd;
+
+printf('The terminal voltage is %f V\n',Va);
+printf('the induced emf is %f V',E);
diff --git a/3890/CH6/EX6.7/EX6_7.png b/3890/CH6/EX6.7/EX6_7.png
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diff --git a/3890/CH6/EX6.7/Ex6_7.sce b/3890/CH6/EX6.7/Ex6_7.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.7
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+V=230; //supply voltage in v
+Ra=.05; //armature resistance in ohms
+Rf1=75; //field resistance in no load in ohms
+Rf2=100; //field resistance in on load condition in ohms
+I1=7;N1=1120; //no load current and speed
+I2=46; //on load current in A
+
+If=V/Rf1;
+Ia1=I1-If;
+K=(V-Ia1*Ra)/(N1*If);
+Ia2=I2-If;
+N=(V-Ia2*Ra)/(If*K);
+
+If1=V/Rf2;
+Ia0=I2-If1;
+n=(V-Ia0*Ra)/(If1*K);
+
+printf('the motor speed at line current of 46 A is %f rpm\n',N)
+printf('the new motor speed is %f rpm',n)
diff --git a/3890/CH6/EX6.8/Ex6_8.png b/3890/CH6/EX6.8/Ex6_8.png
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diff --git a/3890/CH6/EX6.8/Ex6_8.sce b/3890/CH6/EX6.8/Ex6_8.sce
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+//Electric machines and power systems by Syed A Nasar
+//Publisher:Tata McGraw Hill
+//Year: 2002 ; Edition - 7
+//Example 6.8
+//Scilab Version : 6.0.0 ; OS : Windows
+
+clc;
+clear;
+
+V=230; //supply voltage in v
+Ra=.05; //armature resistance in ohms
+Rf1=75; //field resistance in no load in ohms
+Rf2=100; //field resistance in on load condition in ohms
+I1=7;N1=1120; //no load current and speed
+I2=46; //on load current in A
+Ra2=0.15 //armature resistance at on load condition in ohms
+
+If=V/Rf1;
+Ia1=I1-If;
+K=(V-Ia1*Ra)/(N1*If);
+Ia2=I2-If;
+N=(V-Ia2*Ra)/(If*K);
+
+If1=V/Rf1;
+Ia0=I2-If1;
+n=(V-Ia2*Ra2)/(If1*K);
+pl=(Ia0^2)*0.1;
+
+printf('speed of the motor is %d rpm\n',n)
+printf('power dissipated in 0.1 ohm resistor is %f W',pl)