{ "metadata": { "name": "" }, "nbformat": 3, "nbformat_minor": 0, "worksheets": [ { "cells": [ { "cell_type": "heading", "level": 1, "metadata": {}, "source": [ "Chapter 2 : Diode Applications" ] }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.2\n", ": Page No 96" ] }, { "cell_type": "code", "collapsed": false, "input": [ "from __future__ import division\n", "from numpy import pi\n", "# Given data\n", "R_L = 1 # in K ohm\n", "R_L = R_L * 10**3 # in ohm\n", "V_m = 15 # in V\n", "V_i = '15*sin(314*t)' \n", "I_m= V_m/R_L # in A\n", "I_dc = I_m/pi # in A\n", "I_dc = I_dc * 10**3 # in mA\n", "print \"Average current through the diode = %0.2f mA\" %I_dc\n", "I_drms = V_m/(2*R_L) \n", "I_drms = I_drms * 10**3 # in mA\n", "print \"RMS current = %0.1f mA\" %I_drms\n", "I_m = V_m/R_L \n", "I_m = I_m*10**3 # in mA\n", "print \"Peak diode current = %0.f mA\" %I_m\n", "PIV = 2*V_m # in V\n", "print \"Peak inverse voltage = %0.f V\" %PIV" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "Average current through the diode = 4.77 mA\n", "RMS current = 7.5 mA\n", "Peak diode current = 15 mA\n", "Peak inverse voltage = 30 V\n" ] } ], "prompt_number": 48 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.3\n", ": Page No 101" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "R1 = 2.2*10**3 # in ohm\n", "R2 = 4.7*10**3 # in ohm\n", "R_AB = (R1*R2)/(R1+R2) # in ohm\n", "Vi = 20 # in V\n", "V_o = (Vi * R_AB)/(R_AB+R1) # in V\n", "PIV= Vi # in volts\n", "print \"The output voltage = %0.1f V\" %V_o\n", "print \"Peak inverse voltage = %0.f volts\" %PIV" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The output voltage = 8.1 V\n", "Peak inverse voltage = 20 volts\n" ] } ], "prompt_number": 49 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ " Example 2.4.2 (again 2.4)\n", ": Page No 102" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_in = 10 # in V\n", "R_L = 2000 # in ohm\n", "R1 = 100 # in ohm\n", "V_R= 0.7 # in V\n", "V_o = V_in * ( (R_L)/(R1+R_L) ) # in V\n", "print \"The peak magnitude of the positive output voltage = %0.f V\" %V_o \n", "Vo=-V_R # in V\n", "print \"The peak magnitude of the negative output voltage = %0.f V\" %Vo" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The peak magnitude of the positive output voltage = 10 V\n", "The peak magnitude of the negative output voltage = -1 V\n" ] } ], "prompt_number": 50 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ " Example 2.4\n", ": Page No 124" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_in = 10 # in V\n", "R1 = 2000 # in ohm\n", "R2 = 2000 # in ohm\n", "V_o = V_in * (R1/(R1+R2) ) # in V\n", "# Vdc= 5/(T/2)*integrate('sin(omega*t)','t',0,T/2) and omega*T= 2*pi, So\n", "Vdc= -5/pi*(cos(pi)-cos(0)) # in V\n", "print \"The value of Vdc = %0.2f volts\" %Vdc\n", "PIV= V_in/2 # in V\n", "print \"The PIV value = %0.2f volts\" %PIV" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The value of Vdc = 3.18 volts\n", "The PIV value = 5.00 volts\n" ] } ], "prompt_number": 51 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.7\n", ": Page No 141" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V=240 # in V\n", "R= 1 # in k\u03a9\n", "R=R*10**3 # in \u03a9\n", "Vsrms= V/4 # in V\n", "Vm= sqrt(2)*Vsrms # in V\n", "V_Ldc= -Vm/pi # in V\n", "print \"The value of average load voltage = %0.f volts\" %V_Ldc" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The value of average load voltage = -27 volts\n" ] } ], "prompt_number": 52 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.8\n", ": Page No 142" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V = 220 # in V\n", "f=50 # in Hz\n", "N2byN1=1/4 \n", "R_L = 1 # in kohm\n", "R_L= R_L*10**3 # in ohm\n", "V_o = 220 # in V\n", "V_s = N2byN1*V_o # in V\n", "V_m = sqrt(2) * V_s # in V\n", "V_Ldc = (2*V_m)/pi # in V\n", "print \"Average load output voltage = %0.2f V\" %V_Ldc\n", "P_dc = (V_Ldc)**2/R_L # in W\n", "print \"DC power delivered to load = %0.2f watt\" %P_dc\n", "PIV = V_m # in V\n", "print \"Peak inverse Voltage = %0.2f V\" %PIV\n", "f_o = 2*f # in Hz\n", "print \"Output frequency = %0.f Hz\" %f_o" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "Average load output voltage = 49.52 V\n", "DC power delivered to load = 2.45 watt\n", "Peak inverse Voltage = 77.78 V\n", "Output frequency = 100 Hz\n" ] } ], "prompt_number": 53 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.16\n", ": Page No 151" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_dc = 12 # in V\n", "R_L = 500 # in ohm\n", "R_F = 25 # in ohm\n", "I_dc = V_dc/R_L # in A\n", "V_m = I_dc * pi * (R_L+R_F) # in V\n", "V_rms = V_m/sqrt(2) # in V\n", "V = V_rms # in V\n", "print \"The voltage = %0.f V\" %round(V)" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The voltage = 28 V\n" ] } ], "prompt_number": 54 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.17\n", ": Page No 152" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_dc = 100 # in V\n", "V_m = (V_dc*pi)/2 # in V\n", "PIV = 2*V_m # in V\n", "print \"Peak inverse voltage for center tapped FWR = %0.2f V\" %PIV\n", "PIV1 = V_m # in V\n", "print \"Peak inverse voltage for bridge type FWR = %0.2f V\" %PIV1" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "Peak inverse voltage for center tapped FWR = 314.16 V\n", "Peak inverse voltage for bridge type FWR = 157.08 V\n" ] } ], "prompt_number": 55 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.19\n", ": Page No 153" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_Gamma = 0.7 # in V\n", "R_f = 0 # in ohm\n", "V_rms = 120 # in V\n", "V_max = sqrt(2)*V_rms # in V\n", "R_L = 1 # in K ohm\n", "R_L = R_L * 10**3 # in ohm\n", "I_max = (V_max - (2*V_Gamma))/R_L # in A\n", "I_dc = (2*I_max)/pi # in mA\n", "V_dc = I_dc * R_L # in V\n", "print \"The dc voltage available at the load = %0.2f V\" %V_dc\n", "PIV = V_max # in V\n", "print \"Peak inverse voltage = %0.1f V\" %PIV\n", "print \"Maximum current through diode = %0.1f mA\" %(I_max*10**3)\n", "P_max = V_Gamma * I_max # in W\n", "print \"Diode power rating = %0.2f mW\" %(P_max*10**3)" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The dc voltage available at the load = 107.15 V\n", "Peak inverse voltage = 169.7 V\n", "Maximum current through diode = 168.3 mA\n", "Diode power rating = 117.81 mW\n" ] } ], "prompt_number": 56 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.20\n", ": Page No 154" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V1 = 10 # in V\n", "V2 = 0.7 # in V\n", "V3 = V2 # in V\n", "V = V1-V2-V3 # in V\n", "R1 = 1 # in ohm\n", "R2 = 48 # in ohm\n", "R3 = 1 # in ohm\n", "R = R1+R2+R3 # in ohm\n", "I = V/R # in A\n", "I = I * 10**3 # in mA\n", "print \"Current = %0.f mA\" %I" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "Current = 172 mA\n" ] } ], "prompt_number": 57 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.22\n", ": Page No 155" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "R_L = 1 # in K ohm\n", "R_L = R_L * 10**3 # in ohm\n", "r_d = 10 # in ohm\n", "V_m = 220 # in V\n", "I_m = V_m/(r_d+R_L) # in A\n", "print \"Peak value of current = %0.2f A\" %I_m\n", "I_dc = (2*I_m)/pi # in A\n", "print \"DC value of current = %0.2f A\" %I_dc\n", "Irms= I_m/sqrt(2) # in A\n", "r_f = sqrt((Irms/I_dc)**2-1)*100 # in %\n", "print \"Ripple factor = %0.1f %%\" %r_f\n", "Eta = (I_dc)**2 * R_L/((Irms)**2*(R_L+r_d))*100 # in %\n", "print \"Rectification efficiency = %0.1f %%\" %Eta" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "Peak value of current = 0.22 A\n", "DC value of current = 0.14 A\n", "Ripple factor = 48.3 %\n", "Rectification efficiency = 80.3 %\n" ] } ], "prompt_number": 58 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.23\n", ": Page No 156" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_s = 12 # in V\n", "R_L = 5.1 # in k ohm\n", "R_L = R_L * 10**3 # in ohm\n", "R_s = 1 # in K ohm\n", "R_s = R_s * 10**3 # in ohm\n", "V_L = (V_s*R_L)/(R_s+R_L) # in V\n", "print \"Peak load voltage = %0.f V\" %V_L" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "Peak load voltage = 10 V\n" ] } ], "prompt_number": 59 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.24\n", ": Page No 157" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_s = 10 # in V\n", "R_L = 100 # in ohm\n", "I_L = V_s/R_L # in A\n", "print \"The load current during posotive half cycle = %0.1f A\" %I_L\n", "I_D2 = 0 # in A\n", "R2 = R_L # in ohm\n", "I_L1 = -(V_s)/(R2+R_L) # in A\n", "print \"The load current during negative half cycle = %0.2f A\" %I_L1" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The load current during posotive half cycle = 0.1 A\n", "The load current during negative half cycle = -0.05 A\n" ] } ], "prompt_number": 60 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.25\n", ": Page No 158" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "V_m = 50 # in V\n", "V_dc = (2*V_m)/pi # in V\n", "print \"The dc voltage = %0.2f V\" %V_dc" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The dc voltage = 31.83 V\n" ] } ], "prompt_number": 61 }, { "cell_type": "heading", "level": 2, "metadata": {}, "source": [ "Example 2.26\n", ": Page No 159" ] }, { "cell_type": "code", "collapsed": false, "input": [ "# Given data\n", "R1 = 1.1 # in K ohm\n", "R2 = 2.2 # in K ohm\n", "Vi= 170 # in V\n", "V_o = (Vi*R1)/(R1+R2) # in V\n", "print \"The output voltage = %0.2f V\" %V_o\n", "V_dc = (2*V_o)/pi # in V\n", "print \"The dc voltage = %0.2f V\" %V_dc" ], "language": "python", "metadata": {}, "outputs": [ { "output_type": "stream", "stream": "stdout", "text": [ "The output voltage = 56.67 V\n", "The dc voltage = 36.08 V\n" ] } ], "prompt_number": 62 } ], "metadata": {} } ] }