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8-1 电路如图。管子的饱和压降,发射结压降及静态损耗均可忽略。

8-1 电路如图。管子的饱和压降,发射结压降及静态损耗均可忽略。. 1 若正弦输入信号的有效值为 10V ,求效率及每管的管耗。. 若功率管的参数为: P cm =10W , I cm =5A,U( BR ) C EO =40V, 试验证功率管的工作是否安全。. 解: 1 U im =14V P o =0.5*U om 2 /Rl=0.5*14 2 /4=24.5W. P v1 =1/4*(15*14/ π-142/4 )=4.45W. η = π*U om /4*V cc =73.3%.

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8-1 电路如图。管子的饱和压降,发射结压降及静态损耗均可忽略。

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  1. 8-1 电路如图。管子的饱和压降,发射结压降及静态损耗均可忽略。 1 若正弦输入信号的有效值为10V,求效率及每管的管耗。 • 若功率管的参数为:Pcm=10W, • Icm=5A,U(BR)CEO=40V, 试验证功率管的工作是否安全。

  2. 解:1 Uim=14V Po=0.5*Uom2/Rl=0.5*142/4=24.5W Pv1=1/4*(15*14/π-142/4)=4.45W η= π*Uom/4*Vcc=73.3% 2 Iomax=Vcc/Rl=3.75A<Icm=5A UCEmax=2Vcc=30V<U(BR)CEO=40V PvlM=0.2(Po)M=0.2*1/2*152/4=5.625W<PCM=10W 所以,功率管工作安全。

  3. 8-2 在如下电路中,设晶体管的饱和压降为1V,集成运放输出电压的最大幅值位+13V,二极管压降为0.7V。 1:计算最大不失真输出功率。 2:如果希望提高电路的输入电阻,试画出反馈网络。 3:如果在Ui=100mV时,要求Uo=8V,计算反馈网络的元件值。

  4. 解:1,(Uom)2M=+13V (Po)M=(Uom)2M/2Rl=10.6W 2:应该引入电压串联负反馈,其接法如图8-42的红线连接部分 3:Auf=1+Rf/(1K)=Uo/Ui=80 推出 Rf=79K Ω

  5. 8-3 分析图示电路的工作原理,并回答下面的问题; 1,静态时电容器C2两端的电压应为多大?应该调节哪个电阻才能实现这一点? 2,设R1=1.2K Ω,晶体管的β=50,PCM=200mW。如果电阻R2或二极管断开,问晶体管是否安全?

  6. 解: 1,电路为一单电源供电的OTL功率输出级,电容C2上的电压代替了5V的负电源 。静态时,C2两端的电压应为5V,调节R1能实现这一点。 2,R2或二极管断开,V1基极电位升高,V2基极电位降低,将使V1,V2的电流变得很大而损坏。 3, Ic=β*(5V-0.8)/1.2*103=175mA (UCE)max=5V (Pc)max=175mA*5V=875mW>PCM=200mW 由上可知,晶体管不安全。

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