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authorprashantsinalkar2017-10-10 12:27:19 +0530
committerprashantsinalkar2017-10-10 12:27:19 +0530
commit7f60ea012dd2524dae921a2a35adbf7ef21f2bb6 (patch)
treedbb9e3ddb5fc829e7c5c7e6be99b2c4ba356132c /2459/CH21
parentb1f5c3f8d6671b4331cef1dcebdf63b7a43a3a2b (diff)
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diff --git a/2459/CH21/EX21.1/Ex21_1.PNG b/2459/CH21/EX21.1/Ex21_1.PNG
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diff --git a/2459/CH21/EX21.1/Ex21_1.sce b/2459/CH21/EX21.1/Ex21_1.sce
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index 000000000..49644cd47
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+//chapter21
+//example21.1
+//page456
+
+Vcc=10 // V
+Vbe=0.7 // V
+Rb=47d3 // ohm
+Rc=1d3 // ohm
+gain=100
+
+Ic_sat=Vcc/Rc
+Ib=Ic_sat/gain
+V_plus=Ib*Rb+Vbe
+
+printf("voltage required to saturate transistor = +%.3f V \n",V_plus)
diff --git a/2459/CH21/EX21.10/Ex21_10.JPG b/2459/CH21/EX21.10/Ex21_10.JPG
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diff --git a/2459/CH21/EX21.10/Ex21_10.sce b/2459/CH21/EX21.10/Ex21_10.sce
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+// chapter 21
+// example 21.10
+// page 478
+
+V=2 // V
+Vin=5 // V
+
+// during positive half cycle
+Vc_p=Vin-V // since Vin-Vc-V=0
+// thus capacitor charges to Vc_p
+
+// during negative half cycle
+Vout=-Vin-Vc_p // since Vin-Vc_p-Vout=0
+
+// we plot input and output waveforms using the following code instead of using xcos
+
+clf()
+t=0:0.1:5*%pi
+plot(t,5*squarewave(t,50))
+plot2d(t,-Vc_p+(-Vout+V)*squarewave(t,50)/2,style=3)
+xtitle("input - blue output - green","t","volts")
diff --git a/2459/CH21/EX21.10/Figure21_10.JPG b/2459/CH21/EX21.10/Figure21_10.JPG
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diff --git a/2459/CH21/EX21.11/Ex21_11.JPG b/2459/CH21/EX21.11/Ex21_11.JPG
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diff --git a/2459/CH21/EX21.11/Ex21_11.sce b/2459/CH21/EX21.11/Ex21_11.sce
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+// chapter 21
+// example 21.11
+// page 479
+
+V=-2 // V
+Vin=5 // V
+
+// during positive half cycle
+Vc_p=Vin-V // since Vin-Vc-V=0
+// thus capacitor charges to Vc_p
+
+// during negative half cycle
+Vout=-Vin-Vc_p // since Vin-Vc_p-Vout=0
+
+// we plot input and output waveforms using the following code instead of using xcos
+
+clf()
+t=0:0.1:5*%pi
+plot(t,5*squarewave(t,50))
+plot2d(t,-Vc_p+(-Vout+V)*squarewave(t,50)/2,style=3)
+xtitle("input - blue output - green","t","volts")
diff --git a/2459/CH21/EX21.11/Figure21_11.JPG b/2459/CH21/EX21.11/Figure21_11.JPG
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diff --git a/2459/CH21/EX21.2/Ex21_2.PNG b/2459/CH21/EX21.2/Ex21_2.PNG
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diff --git a/2459/CH21/EX21.2/Ex21_2.sce b/2459/CH21/EX21.2/Ex21_2.sce
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+//chapter21
+//example21.2
+//page463
+
+R=10d3 // ohm
+C=0.01d-6 // F
+
+T=1.4*R*C
+f=1/T
+
+printf("time period of square wave = %.3f ms \n",T*1000)
+printf("frequency of square wave = %.3f kHz \n",f/1000)
+
+// the accurate answer for frequency is 7.143 kHz but in book it is given 7 kHz
diff --git a/2459/CH21/EX21.3/Ex21_3.PNG b/2459/CH21/EX21.3/Ex21_3.PNG
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diff --git a/2459/CH21/EX21.3/Ex21_3.sce b/2459/CH21/EX21.3/Ex21_3.sce
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+// chapter 21
+// example 21.3
+// page 468
+
+printf("In RC differentiating circuit, the output votage is taken across \nR and waveform of output depends on time constant of \ncircuit. For proper functioning, product RC should be many \ntimes smaller than time period of input wave. \n")
diff --git a/2459/CH21/EX21.3/Ex21_3.xcos b/2459/CH21/EX21.3/Ex21_3.xcos
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diff --git a/2459/CH21/EX21.3/Figure21_3.JPG b/2459/CH21/EX21.3/Figure21_3.JPG
new file mode 100644
index 000000000..bb06423b8
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+++ b/2459/CH21/EX21.3/Figure21_3.JPG
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diff --git a/2459/CH21/EX21.4/Ex21_4.PNG b/2459/CH21/EX21.4/Ex21_4.PNG
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index 000000000..1e42b3619
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diff --git a/2459/CH21/EX21.4/Ex21_4.sce b/2459/CH21/EX21.4/Ex21_4.sce
new file mode 100644
index 000000000..a125015c1
--- /dev/null
+++ b/2459/CH21/EX21.4/Ex21_4.sce
@@ -0,0 +1,14 @@
+//chapter21
+//example21.4
+//page468
+
+R=10d3 // ohm
+C=2.2d-6 // F
+V1=0 // V
+V2=10 // V
+t1=0 // sec
+t2=0.4 // sec
+
+Eo=R*C*(V2-V1)/(t2-t1)
+
+printf("output voltage = %.3f V \n",Eo)
diff --git a/2459/CH21/EX21.5/Ex21_5.PNG b/2459/CH21/EX21.5/Ex21_5.PNG
new file mode 100644
index 000000000..7977016b7
--- /dev/null
+++ b/2459/CH21/EX21.5/Ex21_5.PNG
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diff --git a/2459/CH21/EX21.5/Ex21_5.sce b/2459/CH21/EX21.5/Ex21_5.sce
new file mode 100644
index 000000000..cb2ba3cbe
--- /dev/null
+++ b/2459/CH21/EX21.5/Ex21_5.sce
@@ -0,0 +1,22 @@
+//chapter21
+//example21.5
+//page472
+
+Vin_peak=12 // V
+
+// for positive half cycle diode conducts so
+Vout_peak=Vin_peak-0.7 // V
+
+// for negative half cycle diode does not conduct so
+Vout_min=0 // V
+
+printf("peak output voltage = %.3f V in positive half cycle and \n %.3f V in negative half cycle",Vout_peak,Vout_min)
+
+// plotting input and output waveforms in same graph using following code instead of using xcos
+clf()
+t=linspace(0,2*%pi,100)
+Vin=12*sin(t)
+Vout=Vout_peak*sin(t)+Vout_min
+plot2d(t,Vin,style=2,rect=[0,0,10,20])
+xtitle("input - blue output - green","t","volts")
+plot2d(t,Vout,style=3,rect=[0,0,10,20])
diff --git a/2459/CH21/EX21.5/Figure21_5.JPG b/2459/CH21/EX21.5/Figure21_5.JPG
new file mode 100644
index 000000000..d46b568ef
--- /dev/null
+++ b/2459/CH21/EX21.5/Figure21_5.JPG
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diff --git a/2459/CH21/EX21.6/Ex21_6.PNG b/2459/CH21/EX21.6/Ex21_6.PNG
new file mode 100644
index 000000000..78368f6af
--- /dev/null
+++ b/2459/CH21/EX21.6/Ex21_6.PNG
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diff --git a/2459/CH21/EX21.6/Ex21_6.sce b/2459/CH21/EX21.6/Ex21_6.sce
new file mode 100644
index 000000000..a3200f544
--- /dev/null
+++ b/2459/CH21/EX21.6/Ex21_6.sce
@@ -0,0 +1,20 @@
+//chapter21
+//example21.6
+//page472
+
+Rl=4 // kilo ohm
+R=1 // kilo ohm
+Vin_peak=10 // V
+
+Vout_peak=Vin_peak*Rl/(Rl+R)
+Vout_min=0 // because of diode
+printf("peak output voltage = %.3f V \n",Vout_peak)
+
+// plotting input and output waveforms in same graph using following code instead of using xcos
+clf()
+t=linspace(0,2*%pi,100)
+Vin=Vin_peak*sin(t)
+Vout=Vout_peak*sin(t)+Vout_min
+plot2d(t,Vin,style=2,rect=[0,0,10,20])
+xtitle("input - blue output - green","t","volts")
+plot2d(t,Vout,style=3,rect=[0,0,10,20])
diff --git a/2459/CH21/EX21.6/Figure21_6.JPG b/2459/CH21/EX21.6/Figure21_6.JPG
new file mode 100644
index 000000000..81c796e93
--- /dev/null
+++ b/2459/CH21/EX21.6/Figure21_6.JPG
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diff --git a/2459/CH21/EX21.7/Ex21_7.PNG b/2459/CH21/EX21.7/Ex21_7.PNG
new file mode 100644
index 000000000..1f3389996
--- /dev/null
+++ b/2459/CH21/EX21.7/Ex21_7.PNG
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diff --git a/2459/CH21/EX21.7/Ex21_7.sce b/2459/CH21/EX21.7/Ex21_7.sce
new file mode 100644
index 000000000..6a93e937c
--- /dev/null
+++ b/2459/CH21/EX21.7/Ex21_7.sce
@@ -0,0 +1,24 @@
+//chapter21
+//example21.7
+//page473
+
+V=-10 // V
+Vout=-0.7 // V
+
+Vr=V-Vout
+
+printf("output voltage = %.3f V \n",Vout)
+printf("voltage across R = %.3f V \n",Vr)
+
+// plotting input and output waveforms in same graph using following code instead of using xcos
+clf()
+t=linspace(0,%pi,100)
+Vin=V*sin(t)
+Vout=Vr*sin(t)
+subplot(1,2,2)
+plot2d(t,Vout,style=3,rect=[0,-0.7,10,11])
+xtitle("Vout","t","volts")
+
+subplot(1,2,1)
+plot2d(t,Vin,style=2,rect=[0,-11,10,1])
+xtitle("Vin","t","volts")
diff --git a/2459/CH21/EX21.7/Figure21_7.JPG b/2459/CH21/EX21.7/Figure21_7.JPG
new file mode 100644
index 000000000..9e681134b
--- /dev/null
+++ b/2459/CH21/EX21.7/Figure21_7.JPG
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diff --git a/2459/CH21/EX21.8/Ex21_8.PNG b/2459/CH21/EX21.8/Ex21_8.PNG
new file mode 100644
index 000000000..e465dc19d
--- /dev/null
+++ b/2459/CH21/EX21.8/Ex21_8.PNG
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diff --git a/2459/CH21/EX21.8/Ex21_8.sce b/2459/CH21/EX21.8/Ex21_8.sce
new file mode 100644
index 000000000..973855372
--- /dev/null
+++ b/2459/CH21/EX21.8/Ex21_8.sce
@@ -0,0 +1,35 @@
+//chapter21
+//example21.8
+//page473
+
+Rl=1d3 // ohm
+R=200 // ohm
+
+// for positive half cycle, diode is forward biased and since load is in parallel with diode we get
+V_out_p=0.7 // V
+
+// for negative half cycle, diode is reverse biased so it is open. Hence
+V_in=-10 // V
+V_out_n=V_in*Rl/(Rl+R)
+
+printf("output voltage for positive cycle = %.3f V \nand for negative cycle = %.3f V",V_out_p,V_out_n)
+
+// plotting input and output waveforms in same graph using following code instead of using xcos
+clf()
+t=linspace(0,%pi,100)
+Vin=V_in*sin(t)
+Vout=-V_out_n*sin(t)
+subplot(2,2,1)
+plot2d(t,-Vin,style=3,rect=[0,0,10,11])
+xtitle("Vin +ve","t","volts")
+subplot(2,2,2)
+plot2d(t,Vout,style=2,rect=[0,-5,10,0.7])
+xtitle("Vout","t","volts")
+t=linspace(%pi,2*%pi,100)
+Vin=V_in*sin(t)
+subplot(2,2,3)
+plot2d(t,-Vin,style=3,rect=[0,-11,10,0])
+xtitle("Vin -ve","t","volts")
+subplot(2,2,4)
+plot2d(t,-Vout,style=2,rect=[0,-11,10,0])
+xtitle("Vout","t","volts")
diff --git a/2459/CH21/EX21.8/Figure21_8.JPG b/2459/CH21/EX21.8/Figure21_8.JPG
new file mode 100644
index 000000000..b2043ad23
--- /dev/null
+++ b/2459/CH21/EX21.8/Figure21_8.JPG
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diff --git a/2459/CH21/EX21.9/Ex21_9.PNG b/2459/CH21/EX21.9/Ex21_9.PNG
new file mode 100644
index 000000000..628df0f9e
--- /dev/null
+++ b/2459/CH21/EX21.9/Ex21_9.PNG
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diff --git a/2459/CH21/EX21.9/Ex21_9.sce b/2459/CH21/EX21.9/Ex21_9.sce
new file mode 100644
index 000000000..eea342ef5
--- /dev/null
+++ b/2459/CH21/EX21.9/Ex21_9.sce
@@ -0,0 +1,5 @@
+//chapter21
+//example21.9
+//page474
+
+printf("The purpose of using series resistance R is : \n 1) if R is not present, diode will short voltage source in positive half cycle \n 2) so large current will flow which may damage voltage source or diode. \n To prevent this i.e. to protect diode and voltage source, R is used.")