1 3 .1 已知谐振功率放大电路CCU=24V,OP =5W 当c =60%时,试计算CP 和COI,若OP 保持不变,C 提高到80%则CP 和COI减少为多少? 解:C=OR /OP PD = P0 /c =5/60%=8.33 W PC = PD - P0=8.33-5=3.33W PD = ICO ×CCU ICO = PD / UCC =8.33/24=0.347A DP = P0/C =5/80%=6.25W DP COCCIU /CODCCIPU=0.26A 3.2 已知谐振功率放大电路工作在乙类状态CCU=24V,R =53Ω,OP =5W,试求DP ,C 和集电极电压利用系数 。 P0=1/2I 21MC R IMC1 =RP02=0.434A 因为在乙类工作时有Ci = ICO + IMC1cos0 t+IMC 2cos20 t+… =1/ Icm +1/2 ×Icm cos0 t+2/3 cos20 t+… ICO =1/ ×Icm IMC1=1/2 ×Icm ICO =2/ IMC1=0.276A PD = ICO UCC =0.27624=6.63W PC = PD - P0=6.63-5=1.63W c = P0/ PD =5/6.63=75.4% =VCM /CCV= IMC1R /CCV=0.958 3 .3 已知谐振功率放大电路的导通角 分别180 、90 和60 时,都工作在 2 临界状态,且三种情况下的CCU,CmI也都相同,试计算三种情况下效率C的比值和输出功率OP 的比值 甲类时:IMC1 ICO UCM UCC 甲= P0/ PD =1/2×(1/2 Icm UCM )/(1/ Icm UCC )=50% 乙类:ICO =1/ ×Icm IMC1 =1/2×Icm UCM UCC 乙=1/2×CCCMCMCMUIUI/12/1= /4=78。5% 丙类时: IMC1 = Icm 1(60)=0.391 0 (60)=0.218 丙=1/2×CCCMcmCMUIUI218.0391.0=89。7% 甲:乙: 丙=50% :78.5%:89.7%=1:1.57:1.79 由1 (180 0)=1 (90 0)。甲IMC1 = IMC1 乙 P0乙= P0甲=1/2 ×IMC12 R =1/8 ×ICM 2 R P0丙=1/2×IMC12 R =7.64% ICM 2 R 所以 P0甲:P0乙:P0丙=1:1:0.621 3.4 已知晶体管输出特性中饱和临界线跨导crg =0.8A/V,用此晶体管做成的谐振功放电路CCU=24V =70 ,CmI=2.2A,并工作在临界状态,计算OP ,DP ,c 和R (已知0 (70 )=0.253,1 (70 )=0.436。) 3 UceQVccUcmicgric 、Uce 、Ube转换特性曲线 题图3.4 由图可知:gcr = ICM /(Vcc -CMU ) VCM = (gcr Vcc - ICM )÷gcr=21.25V P0=1/2×2.2×0.436×21.25=10.19W PD =ICO ×Vcc= ICM0 (70 0)...
