问题
问答题
R1=6Ω、R2=12Ω,并联后接到12V的电源上,求:(1)1min内电流通过R1所做的功.(2)通电多长时间,整个电路消耗10800J的电能?
答案
(1)1min内电流通过R1所做的功W1=
t=U2 R
×60s=1440J.(12V)2 6Ω
答:1min内电流通过R1所做的功为1440J.
(2)R总=
=R1R2 R1+R2
=4Ω.6Ω×12Ω (6+12)Ω
t1=
=WR总 U2
= 300S.10800J×4Ω (12V)2
答:通电300S,整个电路消耗10800J的电能.
