问题
填空题
如右图所示,电源电动势E=9V,r=1Ω,R2=2Ω,灯A为“12V,12W”,灯B标有“4V,4W”,闭合电键后灯B恰好正常发光,则R1=______Ω,灯A此时的实际功率P=______W.
答案
根据题意得:A灯的电阻RA=
=12Ω,B灯的电阻RB=UA2 PA
=4Ω,UB2 PB
灯泡B正常发光,IB=
=1A,所以并联部分的电压U并=UB+IBR2=6VPB UB
所以A灯的实际功率P=
=3WU并2 RA
IA=
=0.5AU并 RA
则干路电流I=1.5A
根据闭合电路欧姆定律得:
R1=
=E-U并-Ir I
=1Ω9-6-1.5 1.5
故答案为:1;3