ICSE class X question...Please give the solution....if u are right I will surely mark you BRAINLIEST....if u spam I will report.
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Given=R1=R2=2ohms
Internal resistance=r
In parallel current flows=1.2 A
In series current flows =0.4A
Assuming potential of source remains constant in both case:
Equivalent resistant in parallel :
Rp=R1R2/R1+R2
=2x2/2+2
=1ohm
Thus , sum of potential drops at individual resistance=total potential difference applied
i(Rp+r)=v
1.2(1+r)=V-----------------1
now for series connection:
Rs=2+2+r=r+4
Thus sum of potential drops at individual resistance=total potential difference applied
iRs=V
0.4x(4+r)=V------------------2
from eq. 1 and 2
1.2(1+r)=0.4x(4+r)
r=0.5ohms
Answered by
2
Answer:
a 1.2 * 2= x*0.4
2.4/0.4=x
x= 6 is my ans..
Explanation:
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