Electrical Engineering - Series-Parallel Circuits - Discussion
Discussion Forum : Series-Parallel Circuits - General Questions (Q.No. 16)
16.
A 12 k
resistor, a 15 k resistor, and a 22 k resistor are in series with two 10 k resistors that are in parallel. The source voltage is 75 V. Current through the 15 k resistor is approximately
resistor, a 15 k resistor, and a 22 k resistor are in series with two 10 k resistors that are in parallel. The source voltage is 75 V. Current through the 15 k resistor is approximatelyDiscussion:
16 comments Page 1 of 2.
ARUNsankar P said:
1 decade ago
49*75/20+75=38.68
THEN
38/38.68=1.37...SO ROUND OFF 1.4
THEN
38/38.68=1.37...SO ROUND OFF 1.4
Tisha said:
1 decade ago
(12+15+22)+ ((10*10)/(10+10))=54kohm
I=V/R= 75/54= 1.3888
approx 1.4
I=V/R= 75/54= 1.3888
approx 1.4
Haris Ismail said:
1 decade ago
But Question is Current through the 15 k resistor is approximately?
Here all of you give the answer of full resistance of the circuit not for particular one.
Here all of you give the answer of full resistance of the circuit not for particular one.
Dhiraj kadh said:
1 decade ago
Ok but they add total resistance of the the circuit. And in series circuit current same in all resistance so answer is 1.4mA.
RKM said:
1 decade ago
Using current divider rule after total current flow we get the answer.
Ahmed said:
1 decade ago
RKM , we do not have any current source so how can CDR be used ?
If the question about any 10 k ohm , then we find the total resistor then use I=V/R(total) <<<= here I is as I source.
Then back to the original drawing and use CDR:
I(throught 10 kohm) = (R(total of two 10kohm)/R10kohm+R10kohm)*Isource.
I = (5/10)*1.388m.
=0.694mA for each R10 k ohm.
By using kirshof current low ( KCL ) we prove that Isource = I1 + I2.
I = (0.694 + 0.694 ) mA.
= 1.388 mA.
If the question about any 10 k ohm , then we find the total resistor then use I=V/R(total) <<<= here I is as I source.
Then back to the original drawing and use CDR:
I(throught 10 kohm) = (R(total of two 10kohm)/R10kohm+R10kohm)*Isource.
I = (5/10)*1.388m.
=0.694mA for each R10 k ohm.
By using kirshof current low ( KCL ) we prove that Isource = I1 + I2.
I = (0.694 + 0.694 ) mA.
= 1.388 mA.
Mahesh said:
10 years ago
@Tisha's method is basic method in electrical.
Shashank said:
10 years ago
One doubt in question they asked to find the current through 15 K resistor. As we know that current in series circuit are same. So by ohm's law we can find that I = V/R.
So I = 75/15K is 5 ma right? Answer any one?
So I = 75/15K is 5 ma right? Answer any one?
(1)
THEJASVI said:
9 years ago
5mA is correct.
Can anyone clarify it?
Can anyone clarify it?
SANDEEP K PATIL said:
8 years ago
@Thejasvi.
How can you say 5ma is correct?
The current through circuit is 1.4ma and through 15k resistor is also the same because it is connected in series, for your kind information voltage across 15k resistor is not 75 volts. it varies in series circuit.
How can you say 5ma is correct?
The current through circuit is 1.4ma and through 15k resistor is also the same because it is connected in series, for your kind information voltage across 15k resistor is not 75 volts. it varies in series circuit.
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