i hv jst started wid 6.002 as a self learner and want to confirm my answers for hw1...

Question

anonymous · Answer

i just want the answers....

anonymous · Answer

just to check where mine answers are correct or not

kenljw · Answer

The answer to question come with procedure used, ask individual question and someone will answer. Example
Problem 1.1a  DC supply in series with R!,R2,R3
Find I, P for each
KVL,  V = V1+V2+V3
V=IR, V = IR1+IR2+IR3 = I(R1+R2+R3),  I = V/(R1+R2+R3)
Power in equals power out
P = IV, P = I^2R
IV= V^2/(R1+R2+R3)
I^2 R1+I^2 R2+I^ R3 = V^2 R1/(R1+R2+R3)^2+V^2 R2/(R1+R2+R3)^2+V^2 R3/(R1+R2+R3)^2
V^2/(R1+R2+R3)
The answers correlate, there's different way's of coming to a solution, its good to know all of them so you can pick the basic and simplest.  In asking only for answers assume your why is the best way.

anonymous · Answer

oooky got is so
i need answer for the 1.2

kenljw · Answer

You should ask how to do Problem 1.1b, DC current supply in parallel with R1,R2,R2 Find Voltage across each and power across each resister
KCL  I = I1+I2+I3 = V/R1+V/R2+V/R3  V = I/{1/R!1 +1/R2+1/R3}
the simple way to express this is R1||R2||R3 = 1/{1/R!1 +1/R2+1/R3}
power in = IV= I^ 2R1||R2||R3
Power loss across R1 V^2/R1 = I^2 (R1||R2||R3)^2/R1
continue for R2 and R3 and prove power in equals power out

kenljw · Answer

You should eventually give Best Response and/medal if answer is concise and accurate.

kenljw · Answer

1K||1K = 1K (1||1); 1K + 1K =1K (1+1)
(1+1)||1+1= 5/3,  realize > 1 therefore must add one
(1+1||1)||1=3/5    realize < 1 therefore must have || with one end