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| author | Siddharth Agarwal | 2019-09-03 18:27:40 +0530 |
|---|---|---|
| committer | Siddharth Agarwal | 2019-09-03 18:27:40 +0530 |
| commit | 8ac15bc5efafa2afc053c293152605b0e6ae60ff (patch) | |
| tree | e1bc17aae137922b1ee990f17aae4a6cb15b7d87 /Working_Examples/83/CH5/EX5.1 | |
| parent | 52a477ec613900885e29c4a0b02806a415b4f83a (diff) | |
| download | Xcos_block_examples-8ac15bc5efafa2afc053c293152605b0e6ae60ff.tar.gz Xcos_block_examples-8ac15bc5efafa2afc053c293152605b0e6ae60ff.tar.bz2 Xcos_block_examples-8ac15bc5efafa2afc053c293152605b0e6ae60ff.zip | |
Diffstat (limited to 'Working_Examples/83/CH5/EX5.1')
| -rwxr-xr-x | Working_Examples/83/CH5/EX5.1/example_5_1.sce | 43 | ||||
| -rwxr-xr-x | Working_Examples/83/CH5/EX5.1/result_example_5_1.txt | 11 |
2 files changed, 54 insertions, 0 deletions
diff --git a/Working_Examples/83/CH5/EX5.1/example_5_1.sce b/Working_Examples/83/CH5/EX5.1/example_5_1.sce new file mode 100755 index 0000000..d64c735 --- /dev/null +++ b/Working_Examples/83/CH5/EX5.1/example_5_1.sce @@ -0,0 +1,43 @@ +//Chapter 5 +//Example 5.1 +//page 132 +//To find sending-end voltage and voltage regulation +clc;clear; + +load1=5000; //kW +pf=0.707; +Vr=10000; //receiving end voltage +R=0.0195*20; +X=2*%pi*50*0.63*10^-3*20; + +//to find sending end voltage and voltage regulation +I=load1*1000/(Vr*pf); +Vs=Vr+I*(R*pf+X*sin(acos(pf))); +voltage_regulation=(Vs-Vr)*100/Vr; +printf('\n\nReceiving current =I=%d A\n',I); +printf('Sending end voltage =Vs=%d V\n',Vs); +printf('Voltage Regulation=%0.2f %%',voltage_regulation); + +//to find the value of the capacitor to be connected in parallel to the load +voltage_regulation_desi=voltage_regulation/2; +Vs=(voltage_regulation_desi/100)*Vr+Vr; +//by solving the equations (i) and (ii) +pf=0.911; +Ir=549; +Ic=(Ir*(pf-%i*sin(acos(pf))))-(707*(0.707-%i*0.707)); +Xc=(Vr/imag(Ic)); +c=(2*%pi*50*Xc)^-1; +printf('\n\nCapacitance to be connected across the load so as to reduce voltage regulation by half of the above voltage regulation is given by :\n C = %d uF\n',c*10^6); + +//to find efficiency in both the cases +//case(i) +losses=I*I*R*10^-3; +n=(load1/(load1+losses))*100; +printf('\n Efficiency in : \nCase(i) \t n=%0.1f%%',n); +//caase(ii) +losses=Ir*Ir*R*10^-3; +n=(load1/(load1+losses))*100; +printf('\nCase(ii) \t n=%0.1f%%',n); + + + diff --git a/Working_Examples/83/CH5/EX5.1/result_example_5_1.txt b/Working_Examples/83/CH5/EX5.1/result_example_5_1.txt new file mode 100755 index 0000000..99064b3 --- /dev/null +++ b/Working_Examples/83/CH5/EX5.1/result_example_5_1.txt @@ -0,0 +1,11 @@ + +Receiving current =I=707 A +Sending end voltage =Vs=12174 V +Voltage Regulation=21.75 % + +Capacitance to be connected across the load so as to reduce voltage regulation by half of the above voltage regulation is given by : + C = 87 uF + + Efficiency in : +Case(i) n=96.2% +Case(ii) n=97.7% |