//chapter 7 //Example 7.2 //Page 171 //solvingBAM clear;clc; //Voltage Sources Ea = 1.5; Eb = 1.5*(cos(-36.87 * %pi / 180) + %i * sin(-36.87 * %pi / 180)) Ec = 1.5; //admittances Ya = -%i*0.8; Yb = Ya; Yc= Ya; Yd = -%i*5; Ye = -%i*8; Yf = -%i*4; Yg = -%i*2.5; Yh = Yd; //current sourcs I1 = Ea * Ya; I2 = Eb * Yb; I3 = I1; I4 = 0; //Self-admittances Y11 = Yd + Yf + Ya; Y22 = Yh + Yg + Yb; Y33 = Ye + Yc + Yg + Yf; Y44 = Yd + Ye + Yh; //Mutual-admittances Y12 = 0;Y21 = Y12; Y13 = -Yf;Y31 = Y13; Y14 = -Yd;Y41 = Y14; Y23 = -Yg;Y32 = Y23; Y24 = -Yh;Y42 = Y24; Y34 = -Ye;Y43 = Y34; //Matrix Form I = [I1 ; I2 ; I3 ; I4]; Y = [Y11 Y12 Y13 Y14;Y21 Y22 Y23 Y24;Y31 Y32 Y33 Y34;Y41 Y42 Y43 Y44]; V = Y\I; disp('Node Voltages V1,V2,V3 and V4 in per unit is') disp(V) disp('In polar form') printf("\n V1 = %.2f /_%.2f per unit",abs(V(1,1)),atan(imag(V(1,1)),real(V(1,1))) * 180 / %pi) printf("\n V2 = %.2f /_%.2f per unit",abs(V(2,1)),atan(imag(V(2,1)),real(V(2,1))) * 180 / %pi) printf("\n V3 = %.2f /_%.2f per unit ",abs(V(3,1)),atan(imag(V(3,1)),real(V(3,1))) * 180 / %pi) printf("\n V4 = %.2f /_%.2f per unit \n\n",abs(V(4,1)),atan(imag(V(4,1)),real(V(4,1))) * 180 / %pi)