代做The Common-Emitter Amplifier代写C/C++编程

Department of Electrical and Electrical Engineering

Experiment EC1                   The Common-Emitter Amplifier

Location: Part I Laboratory CYC – 102

Objective: To study the basic operation and analyze the characteristics of the common-emitter amplifier.

Apparatus:

HP E3611

DC Power Supply

× 1

HP 6116

A Pulse/Function Generator

× 1

HP 34401

A Multimeter

× 1

HP 54600

An Oscilloscope

× 1

Components:

Resistors:           150 Ω                                                          ×  1

1 kΩ,                                                          × 1

2 kΩ                                                            × 2

4.7 kΩ                                                          × 1

10 kΩ                                                          × 1

Capacitor:          0.033 μF                              × 2

                        1 μF,                                    × 1

                         2.2 μF                                 × 2

                        10 μF                                  ×  1

Transistor:         2N3904 NPN transistor             ×  1

Others:               A breadboard                         × 1

Reference:

A. S. Sedra and K. C. Smith, Microelectronic Circuits, 5th Edition, Oxford Press, 2004

Useful Formulas

Voltage gain from base to collector

(1)

(2) (normal circuit)

(3) (no load)

(4) (no bypass capacitor)

Transistor AC-emitter resistance (at room temperature)

(5)

Quiescent DC-base voltage

(6)

Quiescent DC-emitter voltage

(7)

Quiescent DC-emitter current

(8)

Quiescent DC-collector voltage

(9)

Quiescent DC-collector-emitter voltage

(10)

Amplifier-input impedance

(11)

Voltage gain in dB

(12)

Frequency response due to the input coupling capacitor C1

( 13) where RG = signal source impedance

Frequency response due to the bypass capacitor C2

(14)

Frequency response due to the output coupling capacitor C3

(15)

Preparation:

1. Before coming to the laboratory, run the PSPICE simulator  to analyze the circuit in this

experiment. Obtain the simulation results for Tables 1 – 7 and complete sketches 1-5.

2.   Derive Equations 2, 3, 4, 11, 13, 14 and 15.

3.   Suppose a resistor R is inserted between the signal generator and C1. Derive a relation between Vin and the AC voltage at point B.

Procedures:

1. Wire the circuit shown in Fig. 1 on the breadboard provided. Do not connect the signal generator and the power supply to the circuit yet!

2.   Check all connections. Apply the 15-V supply voltage. Use the DMM to individually measure the transistor DC-base voltage VB, emitter voltage VE and collector voltage VC  with  respect to the ground. Record the results into Table  1. Based  on the resistor values in Fig.  1, calculate the expect values of these three voltages using Eqns. 6, 7 and 9, assuming a base-emitter voltage drop of 0.7 V. Complete Table 1.

3.   Using the measured value for the DC-emitter voltage VE  obtained in  Step 2, calculate the DC- emitter  current IEQ  using  Eqn.  9  and  the  transistor  AC-emitter  resistance re    using  Eqn.  5. Complete Table 2.

4.   Connect Channels  1 and 2 of the oscilloscope to points I (vin ) and point O (vout ), respectively, of the circuit in Fig.  1. Then connect the signal generator to the circuit and adjust the sine wave output level of the generator to 0.02 V p-p (peak-to-peak) at a frequency of 5 kHz. Measure the actual p-p  output voltage  out  v  and  the p-p  input  voltage vin, calculate the  voltage  gain by dividing vout  by vin, and the expected value using Eqn. 2. Record them in Table 3. Sketch the output voltage waveform. in Sketch 1.

5.   Slowly increase the amplitude of v in to obtain the maximum symmetrical vout without getting any clipping on the output waveform. Measure the p-p values of vin  and vout, and then calculate the gain. Also, calculate the expected values using Eqn. 2. Record them in Table 3. Sketch the output waveform. in Sketch 2.

6.   Increase the amplitude of vin  in Step 5 by about 20%. Measure the p-p values of vin  and vout, and then calculate the gain. Also calculate the expected value using Eqn. 2. Record them in Table 3. Sketch the output waveform. in Sketch 3.

7.   Remove RL.  As  in  Step  4,  experimentally  determine  the  voltage  gain  by measuring the p-p voltages of vin and vout, and calculate the expected value using Eqn. 3. Record them in Table 3.

8.   Reconnect the 2-kΩ resistor as in the original circuit of Fig.  1. Remove the  10-μF emitter bypass capacitor from the circuit. As in Step 7, experimentally determine the voltage gain and calculate the expected value using Eqn. 4. Complete Table 3.

9.   Reconnect the 10-μF emitter bypass capacitor as in the original circuit of Fig. 1. Keep vin  at 0.02V (p-p). Vary the frequency of the input signal as indicated in Table 4 and measure vout  at each frequency. Plot the frequency response in Sketch 4. (Alternately, you can use PSPICE to generate the plot and then plot the measured values on the same figure.) Record the lower and upper 3-dB frequencies in Table 4.

10. Adjust  the  output  level  of the  signal  generator  to vin   =  0.02  (p-p)  at  50kHz. Measure vout. Determine the voltage gain of the amplifier in dB using Eqn. 12 and the expected voltage gain in dB using Eqns. 2 and 12. Complete Table 5.

11. In order to determine the amplifiers low frequency 3-dB point due to C1  only, replaced C1  with a

0.033 μF capacitor. Adjust the signal generator to give vin  = 0.02 V (p-p) at 50 kHz. Measure vout. Slowly reduce the  frequency  of the  input  signal until vout   drops to  0.707  (i.e.  1/ ·、 )  of that measured at 50 kHz input frequency. Record the frequency (f 1) at which this occurs in Table 6. Calculate the expected value using Eqn.  13, assuming β =150 for the 2N3094 transistor, and record it in Table 6. Replace C1 with the original 2.2 μF capacitor.

12. Replace C2   with  a   1-μF  capacitor  and  repeat  the  procedures  outlined  Step   11. Record the measured value off2  in Table 6. Calculate the expected value using Eqn.  14 and record it in Table 6. Replace C2 with the original 10-μF capacitor after the measurement.

13. Replace C3  with a 0.033-μF capacitor and repeat the procedures outlined in Step 11. Record the measured value off3  in Table 6. Calculate the expected value using Eqn.  14 and record it in Table 6.

NB when you use PSPICE to get the values for steps 11-13, you can first plot the frequency response for each case and then get the 3-dB frequency from the plot.

Figure 1



热门主题

课程名

mktg2509 csci 2600 38170 lng302 csse3010 phas3226 77938 arch1162 engn4536/engn6536 acx5903 comp151101 phl245 cse12 comp9312 stat3016/6016 phas0038 comp2140 6qqmb312 xjco3011 rest0005 ematm0051 5qqmn219 lubs5062m eee8155 cege0100 eap033 artd1109 mat246 etc3430 ecmm462 mis102 inft6800 ddes9903 comp6521 comp9517 comp3331/9331 comp4337 comp6008 comp9414 bu.231.790.81 man00150m csb352h math1041 eengm4100 isys1002 08 6057cem mktg3504 mthm036 mtrx1701 mth3241 eeee3086 cmp-7038b cmp-7000a ints4010 econ2151 infs5710 fins5516 fin3309 fins5510 gsoe9340 math2007 math2036 soee5010 mark3088 infs3605 elec9714 comp2271 ma214 comp2211 infs3604 600426 sit254 acct3091 bbt405 msin0116 com107/com113 mark5826 sit120 comp9021 eco2101 eeen40700 cs253 ece3114 ecmm447 chns3000 math377 itd102 comp9444 comp(2041|9044) econ0060 econ7230 mgt001371 ecs-323 cs6250 mgdi60012 mdia2012 comm221001 comm5000 ma1008 engl642 econ241 com333 math367 mis201 nbs-7041x meek16104 econ2003 comm1190 mbas902 comp-1027 dpst1091 comp7315 eppd1033 m06 ee3025 msci231 bb113/bbs1063 fc709 comp3425 comp9417 econ42915 cb9101 math1102e chme0017 fc307 mkt60104 5522usst litr1-uc6201.200 ee1102 cosc2803 math39512 omp9727 int2067/int5051 bsb151 mgt253 fc021 babs2202 mis2002s phya21 18-213 cege0012 mdia1002 math38032 mech5125 07 cisc102 mgx3110 cs240 11175 fin3020s eco3420 ictten622 comp9727 cpt111 de114102d mgm320h5s bafi1019 math21112 efim20036 mn-3503 fins5568 110.807 bcpm000028 info6030 bma0092 bcpm0054 math20212 ce335 cs365 cenv6141 ftec5580 math2010 ec3450 comm1170 ecmt1010 csci-ua.0480-003 econ12-200 ib3960 ectb60h3f cs247—assignment tk3163 ics3u ib3j80 comp20008 comp9334 eppd1063 acct2343 cct109 isys1055/3412 math350-real math2014 eec180 stat141b econ2101 msinm014/msing014/msing014b fit2004 comp643 bu1002 cm2030
联系我们
EMail: 99515681@qq.com
QQ: 99515681
留学生作业帮-留学生的知心伴侣!
工作时间:08:00-21:00
python代写
微信客服:codinghelp
站长地图