习题解答汇编习题解答汇编第1章第2章第3章第4章第5章第6章第7章第8章习题解答汇编第1章1.1解:(1)1—1端短接时,谐振电感H25310100)102(11122620CL习题解答汇编(2)1-1端接时,因为LCCCCxx001所以pF200XC因为CrQ001所以9.15100CQr习题解答汇编因为CCCCrrQxxxe)(10所以9.15rrx习题解答汇编1.2解:根据原电路可以画出等效电路如题1.2图所示:,H586120CLLesLesgnggngggg22021'0'其中000211,16010,16040LQgnne,65.13g4310LgQe8.1007.0eQfBW习题解答汇编'sI'sg0egCL'Lg题1.2图习题解答汇编1.3解:pF402'2LCCCpF3.18'21'21CCCCCCsMHz6.41π210LCf谐振频率,31'11LCCCnS1.17002seLgggng习题解答汇编,k88.51gR,1.28L10gQeMHz48.107.0eQfBW习题解答汇编1.4解:610012122RRRRX610)(1211RRRXXsH,195.001XLpF195120XC习题解答汇编1.5解:设计型匹配网络如题1.5图所示,其中.CLCL是减小网络是增大网络2211,令LeeeLRQRRRRQ22211,则,1220eLeLLRRRRQRC习题解答汇编)(220eLeeRRRRQL022022,eLRQLRQCeeRRRQ11令,)(1110eeeRRRRQL则有eeRRRRQRC1111101习题解答汇编1,01)1(,,,12112122211011011LLeRRQRRQQLLLRQCRQL上式就是此型网络必须满足的条件,R1可以大于RL,也可以小于RL。习题解答汇编1.6解:先求额定功率增益SSSSSSAiAOPARRRRRRNFRRRRRRRPPG2211PA2112)(1G1))((可求得噪声系数习题解答汇编1.7解:由各部分的关系我们可以知道,总的噪声系数112131211,11PAPAPAPAGNFGGNFGNFNFNF而且因为20NF从而可求得习题解答汇编1.8解:我们可以分别求得各部分参数,再求总的噪声系数和信噪比.10808.11110000dB40,85.15dB12;100dB20,98.3dB62.316dB25,07.1121312133221011outinPAPAPAPAPAPAeSNRNFSNRGGNFGNFNFNFGNFGNFGTTNF习题解答汇编1.9解:按照题意,我们直接可以得到μV436.040NFDBWRTkEAA习题解答汇编第2章2.1解:根据公式:pF6.1010302102,pF6.181025.3,mS8.26330oeieieCfCg,mS31.0,9.36,mS45,mS2.0refefeoeyyg9.104re习题解答汇编2.2解:要正确理解各参数之间的关系。25.0205,25.020521nn,S371000LQge3.12,MHz66.0,3.161S5.22821007.0002221gynnAQfBWLgQggngngfeueeeieoe习题解答汇编2.3解(1)高频等效电路图如下:题2.3图习题解答汇编S410S351)2(220000ieoeeegngggLQgieoeCnCCC22)3((4)41,14.2721210nngynnAfeu习题解答汇编,310101030)5(66'7.00'BWfQeS118010''LQgek3.11S7704101180'pppgRggg两端并联电阻习题解答汇编2.4解:总通频带)40(kHz93.512031eeQQfBW允许最大)kHz10(7.2312''031BWBWfQe习题解答汇编2.5解:MHz57.2121001021222BWBWAuMHz22.61221'2'BWBW7104BWG又(增益带宽积),4.6104'7'BWAu总增益414.622''2uuAA习题解答汇编2.6解:(提示:此题可以参照教材图2.2.1画出晶体管共基极Y参数等效电路,然后再画出放大器等效电路.),pF28:obCCC根据条件可以求得S2882LobPgngggMHz64.124.170uCgBWgynAfb(注:是共基极Y参数)习题解答汇编第3章3.1解(1)%6024500ooccCCDcIIUPPPA347.00cI328.3524347.0oPPPDC习题解答汇编(2)%,8024500occCCCIIUPA26.0ocIW24.1526.024oPPPDCW088.224.1328.3CP习题解答汇编3.2解:e2m1co21RIP53102o1emcRPI),90(11cmmcII5.0)90(1又.5310221mccmII习题解答汇编5310π2)90(1)2cos1()2cos(2)2sin()90(000cmcII64.653102240cCCDIUP%34.7564.65oDcPP习题解答汇编235353101RIUmccm96.02423=习题解答汇编3.3解:CCcmCCccmmcUUUIUI01012121又三种情况下,均相同8.1:57.1:160:90:1806060:9090:180180::1110101016090180ggg习题解答汇编cmcmUIP1O21又三种情况下,均相同,782.0:1:1391.0:5.0:5.060:90:18060:90:180111OOOPPP习题解答汇编3.4解:W36.132.2253.0247000cmCCcCCDIUIUPA96.02.2436.07011cmmcIIV25.218.02.224mincrcmCCceCCcmgIUuUUW19.1025.2196.021211cmmcOUIP习题解答汇编W17.319.1036.13ODCPPP%7636.1319.10DOcPP2296.019.1022221mcOIPR习题解答汇编3.5解:(1)可改变R负载线斜率00011,,,PPPIUOmccm(3)可改变BBU负载线平行下移oP略下降,0003PP习题解答汇编(4)可改变bmU负载线不变OP略下降,0004PP(注:P00是原输出功率)由上面分析,从(1)可得,,1mccmIU而由(2)可得,cmU所以,c1mI000102PPP习题解答汇编所以,0403PP03040102PPPP用作图比较的方法,易得,43cmcmUU略大于但(3)时负载线平行下移,导通角减小,c1mI习题解答汇编3.6解:PO低而IC0略高,则小,故工作在欠压状态.c可以使eR,1eR则.OP3.7解:前者工作在欠压区,后者工作在过压区(Re相同)若要增大前者功率,应该使或BBbmUU或习题解答汇编3.8解:因为.,,也不变则不变和如果CCcmcccmUUUU..,,max态所以仍然工作在临界状不变所以不变cmBEIu.21.,,)(),(211111也减小了即的增大而增大随cmmcomcccUIPIgg原因在于UBB增大,Ubm减小,但保持uBEmax不变,即Icm不变.习题解答汇编3.9解:由教材中图3.2.4可知218.0)60(,391.0)60(01,A2.0201RPImcA512.0)60(11mccmII,10V1RIUmccm%3.37DOcPP因为0.512A时对应的临界电压V28.1V14,V28.1cmCCceUUu所以工作在欠压状态。习题解答汇编3.10解:错误之处主要有三处:(1)V1,V2管基极偏置与集电极偏置均不对。(2)两管均没有匹配电路。(3)带阻网络应该去掉。(提示:可以参考教材中例3.4电路进行修改)习题解答汇编第4章4.1解:如题4.1图所示。(a)(b)题4.1图习题解答汇编(c)题4.1图习题解答汇编4.2解:(a)不能,不能满足三点式法则。(b)不能,同上。(c)能,满足三点式法则。(d)能,两级反相放大。(e)不能。若第二级负载C2改为电阻则有可能产生振荡。习题解答汇编4.3解:(1)可将此电路用共基电路等效,如题4.3图所示。题4.3图习题解答汇编MHz6.22121210LCCCCf41103001010010100121212211CCCF∴共基极电路最小电压增益41minFAu习题解答汇编4.4解:如题4.4所示。题4.4图习题解答汇编先将右端b、e极之间,C2与并联的gie等效到c、b极之间(与L并联),可得到,再等效到c、e极之间(与并联),则可以得到gie。也可以参照式(1.1.31)直接得到。ieg,)(221121ieieiegCCCgngieieiegCCCgng221222)(ieiegCCg221)(又122111CCCCUUff习题解答汇编反馈系数21CCUUFfffifefUCCjBGUyU12所以其中,0eieoegggG12221LCCCB习题解答汇编022120'1eegCCCgjBGyCCUUTfeif21由此可求得振幅起振条件为所以1||'0'21eieoefegggyCC习题解答汇编即)(||'0'12eieoefegggCCy代入数据,可求得|yf|=20.6mS,mS75.0)('0'12eieoegggCC不等式成立,所以电路能起振:MHz102121210LCCCCf习题解答汇编4.5解:如题4.5图所示:pF6.12)(7654321CCCCCCCC串串串H8.0102CL习题解答汇编题4.5图习题解答汇编pF2.2pF2.8pF15pF3.3H57电容三点式:MHz58.90f(a)题4.6图4.6解:如题4.6图所示:习题解答汇编pF125~68H50pF1000pF1000(b)题4.6图电容三点式:MHz91.2~25.20f习题解答汇编4.7解:(a)电感三点式,210fff或者120fff(b)电容三点式,102fff习题解答汇编4.8解:MHz49.2Hz1049.2101.25.192121)1(616qqsCLfssoqspffCCff000021.15101.2