diff options
Diffstat (limited to '911/CH8')
35 files changed, 300 insertions, 0 deletions
diff --git a/911/CH8/EX8.1.a/ex_8_1_a.pdf b/911/CH8/EX8.1.a/ex_8_1_a.pdf Binary files differnew file mode 100644 index 000000000..aa542995f --- /dev/null +++ b/911/CH8/EX8.1.a/ex_8_1_a.pdf diff --git a/911/CH8/EX8.1.a/ex_8_1_a.sce b/911/CH8/EX8.1.a/ex_8_1_a.sce new file mode 100644 index 000000000..e0eecdad9 --- /dev/null +++ b/911/CH8/EX8.1.a/ex_8_1_a.sce @@ -0,0 +1,58 @@ +//example 8.1 (a)//
+clear
+//clears the screen//
+clc
+//clears the variable//
+close
+//R =input('Enter the value of the resistance R in Kohms : ')//
+//C =input('Enter the value of the Capacitance C in micro farads : ' ) ;
+sp =input ('Enter the spacing between two input pulses in microseconds: ' );
+R =14.5;
+//taking give values//
+C =0.01;
+t= 693* R*C;
+//calculting time constant//
+tt=t*10;
+p =1;
+len =sp*60 -1;
+q =1;
+for j=1: len
+//plotin the graphs//
+lo = sp *10;
+f= modulo (j,lo);
+if f ==0 then
+inpu (j)=1;
+else
+inpu (j)=0;
+end
+inpu (1) =1;
+o(j)=2;
+end
+while q<len
+result (q) =0;
+q=q+1;
+end
+while p<len
+if inpu (p)==1 then
+for k=1: tt
+result (p+k) =1;
+end
+p=p+tt;
+else
+result (p) =0;
+p=p+1;
+end
+end
+subplot (2 ,1 ,1);
+//ploting bothe graphs in same window//
+plot (o);
+plot ( inpu );
+xlabel ( ' time X10^7 seconds ' );
+ylabel ( 'Magnitude ' ) ;
+title ( ' input pulses ' );
+subplot (2 ,1 ,2);
+plot (o);
+plot ( result );
+xlabel ( ' t ime X10^7 seconds' );
+ylabel ( 'Magnitude' );
+title ( ' Output ' );
\ No newline at end of file diff --git a/911/CH8/EX8.1.b/ex_8_1_b.pdf b/911/CH8/EX8.1.b/ex_8_1_b.pdf Binary files differnew file mode 100644 index 000000000..a31891ffd --- /dev/null +++ b/911/CH8/EX8.1.b/ex_8_1_b.pdf diff --git a/911/CH8/EX8.1.b/ex_8_1_b.sce b/911/CH8/EX8.1.b/ex_8_1_b.sce new file mode 100644 index 000000000..64282ffd5 --- /dev/null +++ b/911/CH8/EX8.1.b/ex_8_1_b.sce @@ -0,0 +1,11 @@ +//example 8.1(b)//
+clc
+//clears the screen//
+clear
+//clears the variable//
+disp('An astable multivibrator with a 500 Hz symmetrical waveform applied to its RESET terminal is alternatively HIGH and LOW for 1ms. Whem the reset input is low, the output is forced to low state. When the reset input is HIGH, an astable waveform appears at the output. The high period of multivibrator is determined as:')
+r=14.5*1000;
+c=0.01*(10^-6);
+h = .69*r*c;
+disp(h,'high time(s)=')
+disp('The astable output is thus a 5KHz symmetrical waveform. every time the reset terminal goes to HIGH for 1 ms, five cycles of %KHz waveform appear at the output.')
\ No newline at end of file diff --git a/911/CH8/EX8.1.c/ex_8_1_c.pdf b/911/CH8/EX8.1.c/ex_8_1_c.pdf Binary files differnew file mode 100644 index 000000000..80b359562 --- /dev/null +++ b/911/CH8/EX8.1.c/ex_8_1_c.pdf diff --git a/911/CH8/EX8.1.c/ex_8_1_c.sce b/911/CH8/EX8.1.c/ex_8_1_c.sce new file mode 100644 index 000000000..bb39b59f3 --- /dev/null +++ b/911/CH8/EX8.1.c/ex_8_1_c.sce @@ -0,0 +1,11 @@ +//example 8.1(c)//
+clc
+//clears the screen//
+clear
+//clears the variable//
+disp('An astable multivibrator with a 500 Hz symmetrical waveform applied to its RESET terminal is alternatively HIGH and LOW for 1ms. Whem the reset input is low, the output is forced to low state. When the reset input is HIGH, an astable waveform appears at the output. The low period of multivibrator is determined as:')
+r=14.5*1000;
+c=0.01*(10^-6);
+l = .69*r*c;
+disp(l,'low time(s)=')
+disp('The astable output is thus a 5KHz symmetrical waveform. every time the reset terminal goes to HIGH for 1 ms, five cycles of %KHz waveform appear at the output.')
\ No newline at end of file diff --git a/911/CH8/EX8.2.a/ex_8_2_a.pdf b/911/CH8/EX8.2.a/ex_8_2_a.pdf Binary files differnew file mode 100644 index 000000000..3efc33e27 --- /dev/null +++ b/911/CH8/EX8.2.a/ex_8_2_a.pdf diff --git a/911/CH8/EX8.2.a/ex_8_2_a.sce b/911/CH8/EX8.2.a/ex_8_2_a.sce new file mode 100644 index 000000000..23d2fa82d --- /dev/null +++ b/911/CH8/EX8.2.a/ex_8_2_a.sce @@ -0,0 +1,58 @@ +//example 8.2 (a)//
+clear
+//clears the screen//
+clc
+//clears the variable//
+close
+//R =input('Enter the value of the resistance R in Kohms : ')//
+//C =input('Enter the value of the Capacitance C in micro farads : ' ) ;
+sp =input ('Enter the spacing between two input pulses in microseconds: ' );
+R =10;
+//taking give values//
+C =0.01;
+t= 693* R*C;
+//calculting time constant//
+tt=t*10;
+p =1;
+len =sp*60 -1;
+q =1;
+for j=1: len
+//plotin the graphs//
+lo = sp *10;
+f= modulo (j,lo);
+if f ==0 then
+inpu (j)=1;
+else
+inpu (j)=0;
+end
+inpu (1) =1;
+o(j)=2;
+end
+while q<len
+result (q) =0;
+q=q+1;
+end
+while p<len
+if inpu (p)==1 then
+for k=1: tt
+result (p+k) =1;
+end
+p=p+tt;
+else
+result (p) =0;
+p=p+1;
+end
+end
+subplot (2 ,1 ,1);
+//ploting bothe graphs in same window//
+plot (o);
+plot ( inpu );
+xlabel ( ' time X10^7 seconds ' );
+ylabel ( 'Magnitude ' ) ;
+title ( ' input pulses ' );
+subplot (2 ,1 ,2);
+plot (o);
+plot ( result );
+xlabel ( ' t ime X10^7 seconds' );
+ylabel ( 'Magnitude' );
+title ( ' Output ' );
\ No newline at end of file diff --git a/911/CH8/EX8.2.b/ex_8_2_b.pdf b/911/CH8/EX8.2.b/ex_8_2_b.pdf Binary files differnew file mode 100644 index 000000000..1a5bc2c5f --- /dev/null +++ b/911/CH8/EX8.2.b/ex_8_2_b.pdf diff --git a/911/CH8/EX8.2.b/ex_8_2_b.sce b/911/CH8/EX8.2.b/ex_8_2_b.sce new file mode 100644 index 000000000..528c5a61a --- /dev/null +++ b/911/CH8/EX8.2.b/ex_8_2_b.sce @@ -0,0 +1,20 @@ +//example 8.2(b)//
+//to find frequency of output waveform//
+clc
+//clears the screen//
+clear
+//clears the variables//
+f=10*1000;
+//frequency of trigger waveform in Hertz//
+t=100*(10^-6);
+//time period b/w two successive leading or trailing edges in microseconds//
+r=10*1000;
+//resistance in Ohms//
+C=.01*(10^-6);
+//capacitance in microfarads//
+ep=1.1*r*C;
+disp('the trigger waveform is a symmetrical one; it has HIGH and LOW time periods of 50microsec each. Since the LOW state time period of trigger waveform is less than the expected output pulse width, it can succesfully trigger the monoshot on its trailing edges')
+disp(ep,'expected pulse width=')
+disp('since the time period between two successive trailing edges is 100 microsec and the expected output pulse width is 110 microsec, therefore only alternate trsiling edges of trigger waveform will trigger the monoshot')
+f0=f/2;
+disp(f0,'output frequency')
\ No newline at end of file diff --git a/911/CH8/EX8.2.c/ex_8_2_c.pdf b/911/CH8/EX8.2.c/ex_8_2_c.pdf Binary files differnew file mode 100644 index 000000000..e70a5cdb4 --- /dev/null +++ b/911/CH8/EX8.2.c/ex_8_2_c.pdf diff --git a/911/CH8/EX8.2.c/ex_8_2_c.sce b/911/CH8/EX8.2.c/ex_8_2_c.sce new file mode 100644 index 000000000..5da65386a --- /dev/null +++ b/911/CH8/EX8.2.c/ex_8_2_c.sce @@ -0,0 +1,24 @@ +//example 8.2(b)//
+//to find frequency of output waveform//
+clc
+//clears the screen//
+clear
+//clears the variables//
+f=10*1000;
+//frequency of trigger waveform in Hertz//
+t=100*(10^-6);
+//time period b/w two successive leading or trailing edges in microseconds//
+r=10*1000;
+//resistance in Ohms//
+C=.01*(10^-6);
+//capacitance in microfarads//
+ep=1.1*r*C;
+disp('the trigger waveform is a symmetrical one; it has HIGH and LOW time periods of 50microsec each. Since the LOW state time period of trigger waveform is less than the expected output pulse width, it can succesfully trigger the monoshot on its trailing edges')
+disp(ep,'expected pulse width=')
+disp('since the time period between two successive trailing edges is 100 microsec and the expected output pulse width is 110 microsec, therefore only alternate trsiling edges of trigger waveform will trigger the monoshot')
+f0=f/2;
+disp(f0,'output frequency')
+t=1/f0;
+disp(t,'time period of output waveform=')
+dc=ep/t;
+disp(dc,'duty cycle of output waveform=')
\ No newline at end of file diff --git a/911/CH8/EX8.3/ex_8_3.pdf b/911/CH8/EX8.3/ex_8_3.pdf Binary files differnew file mode 100644 index 000000000..f5f6d2689 --- /dev/null +++ b/911/CH8/EX8.3/ex_8_3.pdf diff --git a/911/CH8/EX8.3/ex_8_3.sce b/911/CH8/EX8.3/ex_8_3.sce new file mode 100644 index 000000000..96831d64d --- /dev/null +++ b/911/CH8/EX8.3/ex_8_3.sce @@ -0,0 +1,48 @@ +//EXAMPLE 8.3//
+//flip flop//
+clc
+//clears the history//
+close
+//closes all other files//
+clear
+//clears the variables//
+disp('The first three entries of the function table indicate the JK flip flop has active high PRESET and clear inputs. Referrinf to fourth and fifth entries of the function table, it has active low J and K inputs The seventh row of function table confirms this. The output responds to positive (LOW to HO+IGH) edges of clock input. Thus the flip flop represented by the given function table is presettable, clearable, positive edge triggered flip flop with active HIGH PRESET, CLEAR and aCTIVE LOW J & K inputs')
+disp ("since J=K=1 ,the flipflop simply toggles each time the clock goes low , The waveform at Q has a period twice of that of the waveform . In other words , the frequency of Q is only one-half of that of . This circuit acts as a frequency divider the output frequency divide by 2. Note that Q changes state on NTs of the clock. The waveforms are as shown in the figure");
+t =50;
+//taken time period//
+p =1;
+while p<t*10
+//taking values for ploting the graph//
+if p ==1 | modulo (p,t)==0 then
+for k=1: t/2
+cin (p+k)=0;
+end
+p=p+t/2;
+else
+cin (p)=1;
+p=p+1;
+end
+end
+t =100;
+p =1;
+while p<t*5
+if p ==1 | modulo (p,t)==0 then
+for k=1: t/2
+dout (p+k) =0;
+end
+p=p+t/2;
+else
+dout (p)=1;
+p=p+1;
+end
+end
+y =[3 3];
+subplot (2 ,1 ,1)
+//plotin both the plots in a single window//
+title ( ' input at pin C ' )
+plot (cin)
+plot (y)
+subplot (2 ,1 ,2)
+title('output at pin D' )
+plot ( dout )
+plot (y)
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\ No newline at end of file diff --git a/911/CH8/EX8.4.a/ex_8_4_a.pdf b/911/CH8/EX8.4.a/ex_8_4_a.pdf Binary files differnew file mode 100644 index 000000000..4f1c5069c --- /dev/null +++ b/911/CH8/EX8.4.a/ex_8_4_a.pdf diff --git a/911/CH8/EX8.4.a/ex_8_4_a.sce b/911/CH8/EX8.4.a/ex_8_4_a.sce new file mode 100644 index 000000000..3bb5b9150 --- /dev/null +++ b/911/CH8/EX8.4.a/ex_8_4_a.sce @@ -0,0 +1,7 @@ +//example 8.4(a)//
+clc
+//clears the screen//
+clear
+//clears the variables//
+disp('Refer to figure. Q is initially 0, this makes J and K inputs to be initially 1 and 0 respectively. With the first trailing edge of clock input, Q goes 1 state. Thus J and K acquire logic status of 0 and 1 respectively. With the next trailing edge of clock input, Q goes to logic 0. This process continues and Q alternatively becmos 1 and 0.')
+disp('The frequency of the Q output waveform in the two cases is equal to half the frequency of the clock input for obvious reasons and is therefore 50kHz')
\ No newline at end of file diff --git a/911/CH8/EX8.4.a/ex_8_4_a.xcos b/911/CH8/EX8.4.a/ex_8_4_a.xcos new file mode 100644 index 000000000..b535fbce6 --- /dev/null +++ b/911/CH8/EX8.4.a/ex_8_4_a.xcos @@ -0,0 +1 @@ +<?xml version="1.0" encoding="UTF-8"?><XcosDiagram background="-1"><mxGraphModel as="model"><root><mxCell id="576f5af:13dba49a507:-7fb1"/><mxCell id="576f5af:13dba49a507:-7fb2" parent="576f5af:13dba49a507:-7fb1"/><BasicBlock blockType="h" dependsOnU="1" id="576f5af:13dba49a507:-7fa3" interfaceFunctionName="JKFLIPFLOP" parent="576f5af:13dba49a507:-7fb2" simulationFunctionName="csuper" simulationFunctionType="DEFAULT" style="JKFLIPFLOP;fontSize=12"><ScilabDouble as="exprs" height="0" width="0"/><Array as="realParameters" scilabClass="ScilabMList"><ScilabString height="1" width="5"><data column="0" line="0" value="diagram"/><data column="1" line="0" value="props"/><data column="2" line="0" value="objs"/><data column="3" line="0" value="version"/><data column="4" line="0" 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\ No newline at end of file diff --git a/911/CH8/EX8.4.b/ex_8_4_b.pdf b/911/CH8/EX8.4.b/ex_8_4_b.pdf Binary files differnew file mode 100644 index 000000000..4a7f6eebc --- /dev/null +++ b/911/CH8/EX8.4.b/ex_8_4_b.pdf diff --git a/911/CH8/EX8.4.b/ex_8_4_b.sce b/911/CH8/EX8.4.b/ex_8_4_b.sce new file mode 100644 index 000000000..18c9d8600 --- /dev/null +++ b/911/CH8/EX8.4.b/ex_8_4_b.sce @@ -0,0 +1,7 @@ +//example 8.4(a)//
+clc
+//clears the screen//
+clear
+//clears the variables//
+disp('In this case of flip flop, J and K are initially 0 & 1 respectively. Thus J is active. With the first leading edge of clock input, Q and therefore J goes to logic 1 state. The second leading edge edge forces Q to go to logic 0 state as now it is K input that is in logic 0 state and active. This circuit also behaves in the same way as the earlier one. The output goes alternatively to logic 0 and 1 state. However the transitions occur on the leading edge of clock input.')
+disp('The frequency of the Q output waveform in the two cases is equal to half the frequency of the clock input for obvious reasons and is therefore 50kHz')
\ No newline at end of file diff --git a/911/CH8/EX8.4.b/ex_8_4_b.xcos b/911/CH8/EX8.4.b/ex_8_4_b.xcos new file mode 100644 index 000000000..5796b95c3 --- /dev/null +++ b/911/CH8/EX8.4.b/ex_8_4_b.xcos @@ -0,0 +1 @@ +<?xml version="1.0" encoding="UTF-8"?><XcosDiagram background="-1"><mxGraphModel as="model"><root><mxCell id="576f5af:13dba49a507:-7f8d"/><mxCell id="576f5af:13dba49a507:-7f8e" parent="576f5af:13dba49a507:-7f8d"/><BasicBlock blockType="h" dependsOnU="1" id="576f5af:13dba49a507:-7f8c" interfaceFunctionName="JKFLIPFLOP" parent="576f5af:13dba49a507:-7f8e" simulationFunctionName="csuper" simulationFunctionType="DEFAULT" style="JKFLIPFLOP"><ScilabDouble as="exprs" height="0" width="0"/><Array as="realParameters" scilabClass="ScilabMList"><ScilabString height="1" width="5"><data column="0" line="0" value="diagram"/><data column="1" line="0" value="props"/><data column="2" line="0" value="objs"/><data column="3" line="0" value="version"/><data column="4" line="0" 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\ No newline at end of file diff --git a/911/CH8/EX8.5/ex_8_5_a.pdf b/911/CH8/EX8.5/ex_8_5_a.pdf Binary files differnew file mode 100644 index 000000000..57bb853c3 --- /dev/null +++ b/911/CH8/EX8.5/ex_8_5_a.pdf diff --git a/911/CH8/EX8.5/ex_8_5_a.sce b/911/CH8/EX8.5/ex_8_5_a.sce new file mode 100644 index 000000000..b0d20eb34 --- /dev/null +++ b/911/CH8/EX8.5/ex_8_5_a.sce @@ -0,0 +1,15 @@ +//example 8.5(a)//
+clc
+//clears the screen//
+clear
+//clears the variables//
+close
+//closes all existing files other than this//
+disp('As there are two flip flops so, for first output frequency will be half of the original one while for second flip flop output frequency will be half of the first flip flop, so overall it will be one-fourth of the input frequency')
+T=10*(10^-6)
+//time period in seconds//
+fi=1/T;
+//input frequency//
+f=fi/4;
+//output frequency//
+disp(f,'output frequency(in Hz)=')
\ No newline at end of file diff --git a/911/CH8/EX8.6.b/ex_8_6_b.pdf b/911/CH8/EX8.6.b/ex_8_6_b.pdf Binary files differnew file mode 100644 index 000000000..5080be7c6 --- /dev/null +++ b/911/CH8/EX8.6.b/ex_8_6_b.pdf diff --git a/911/CH8/EX8.6.b/ex_8_6_b.sce b/911/CH8/EX8.6.b/ex_8_6_b.sce new file mode 100644 index 000000000..d09cbd817 --- /dev/null +++ b/911/CH8/EX8.6.b/ex_8_6_b.sce @@ -0,0 +1,8 @@ +//example 8.6(b)//
+clc
+//clears the screen//
+clear
+//clears all variables//
+close
+//closes all existing files//
+disp('When the ENABLE input is LOW, the upper AND gate is disabled(with its output going to logic 0) and the lower AND gate is enabled(with its output becoming the same as the Q output owing to the feedback). The NOR gate output in this case is Q'', which means that the Q output holds its state as long as the ENABLE input is LOW')
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\ No newline at end of file diff --git a/911/CH8/EX8.6/ex_8_6_a.pdf b/911/CH8/EX8.6/ex_8_6_a.pdf Binary files differnew file mode 100644 index 000000000..d728f85d8 --- /dev/null +++ b/911/CH8/EX8.6/ex_8_6_a.pdf diff --git a/911/CH8/EX8.6/ex_8_6_a.sce b/911/CH8/EX8.6/ex_8_6_a.sce new file mode 100644 index 000000000..b05f6349b --- /dev/null +++ b/911/CH8/EX8.6/ex_8_6_a.sce @@ -0,0 +1,8 @@ +//example 8.6(a)//
+clc
+//clears the screen//
+clear
+//clears all variables//
+close
+//closes all existing files//
+disp('When the ENABLE input is HIGH, the upper AND gate is enabled while the lower AND gate is disabled. The outputs of upper and lower AND gates are D and logic 0 respectively. They constitute inputs of the NOR gate whose output is D''. The Q output is therefore D')
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\ No newline at end of file diff --git a/911/CH8/EX8.7.a/ex_8_7_a.pdf b/911/CH8/EX8.7.a/ex_8_7_a.pdf Binary files differnew file mode 100644 index 000000000..0f3b389bd --- /dev/null +++ b/911/CH8/EX8.7.a/ex_8_7_a.pdf diff --git a/911/CH8/EX8.7.a/ex_8_7_a.sce b/911/CH8/EX8.7.a/ex_8_7_a.sce new file mode 100644 index 000000000..b4f2dd75a --- /dev/null +++ b/911/CH8/EX8.7.a/ex_8_7_a.sce @@ -0,0 +1,9 @@ +//example 8.7(a)//
+clc
+//clears the screen//
+clear
+//clears all variables//
+close
+//closes all existing files//
+disp('A positive edge triggered D flip flop, as shown in figure can be used for the purpose. Waveform A is applied to the D input and waveform B is applied to the clock input. If we examine the two waveforms, we will find that, on every occurence of leading edge of waveform B, waveform A is in logic 1 state. Thus, the Q output in this case will always be in a logic 1 state')
+disp('the rest is shown in diagram')
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\ No newline at end of file diff --git a/911/CH8/EX8.7.b/ex_8_7_b.pdf b/911/CH8/EX8.7.b/ex_8_7_b.pdf Binary files differnew file mode 100644 index 000000000..9fce8bb9c --- /dev/null +++ b/911/CH8/EX8.7.b/ex_8_7_b.pdf diff --git a/911/CH8/EX8.7.b/ex_8_7_b.sce b/911/CH8/EX8.7.b/ex_8_7_b.sce new file mode 100644 index 000000000..bd0a7eac7 --- /dev/null +++ b/911/CH8/EX8.7.b/ex_8_7_b.sce @@ -0,0 +1,9 @@ +//example 8.7(b)//
+clc
+//clears the screen//
+clear
+//clears all variables//
+close
+//closes all existing files//
+disp('By interchanging the connections of waveforms A and B with respect to earlier one. Q output will be at logic 0 state as long as waveform A leads waveform B in phase. In this case, on every occurence of the leading edge of waveform A(clock input), waveform B(D input) is in a logic 0 state.')
+disp('the rest is shown in diagram')
\ No newline at end of file diff --git a/911/CH8/EX8.7.b/ex_8_7_b.xcos b/911/CH8/EX8.7.b/ex_8_7_b.xcos new file mode 100644 index 000000000..4c2129e2a --- /dev/null +++ b/911/CH8/EX8.7.b/ex_8_7_b.xcos @@ -0,0 +1 @@ +<?xml version="1.0" encoding="UTF-8"?><XcosDiagram background="-1" title="ex_8_7_a"><mxGraphModel as="model"><root><mxCell id="-4a9bd440:13dbbffb3fd:-7faf"/><mxCell id="-4a9bd440:13dbbffb3fd:-7fb0" parent="-4a9bd440:13dbbffb3fd:-7faf"/><BasicBlock blockType="h" dependsOnU="1" id="-4a9bd440:13dbbffb3fd:-7fa3" interfaceFunctionName="DLATCH" parent="-4a9bd440:13dbbffb3fd:-7fb0" simulationFunctionName="csuper" simulationFunctionType="DEFAULT" style="DLATCH"><ScilabDouble as="exprs" height="0" width="0"/><Array as="realParameters" scilabClass="ScilabMList"><ScilabString height="1" width="5"><data column="0" line="0" value="diagram"/><data column="1" line="0" value="props"/><data column="2" line="0" value="objs"/><data column="3" line="0" value="version"/><data column="4" 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