Electric Circuits - Simplifying Circuits SP

UNIT 2
Electric Circuits
AGORA International School
Technology
3 ESO

SERIES AND PARALLEL CIRCUITS
 Step 1. Analyze the circuit to find a section in which all resistors are either series or parallel.
 Step 2. Reduce series and parallel configurations into equivalent resistances (RE).
 Step 3. Continue combining resistors until one, total resistance (RT) remains.
 Step 4. Reconstruct the circuit step-by-step while analyzing individual resistors finding voltage
(V) and current (I).
SIMPLIFYING CIRCUITS
Most circuits are not in a basic series or parallel configuration, but rather consist of a complex
combination of series and parallel resistances. The key to simplifying circuits is to combine complex
arrangements of resistors into one main resistor. The general rules for solving these types of problems
are as follows:
Tip: Redraw the schematic after every step so you don't miss
an opportunity to simplify

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
 Step 1. Analyze the circuit to find a section in which all resistors are either series or
parallel.

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
1) Resistors 1 and 2 are in series.
parallel.
R2 R1

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R2 R1
We can the equivalent resistance:

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
Redraw the simplified circuit:

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
R3 R4

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
R3 R4
RE 3-4 = R3+ R4 = 4 Ω + 5 Ω = 9 Ω

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
R3 R4
RE 3-4 = R3+ R4 = 4 Ω + 5 Ω = 9 Ω
RE 1-2
RE 3-4

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
2) Resistors 3 and 4 are in series. 3) Resistors E1-2 and E2-3 are in parallel.
R3 R4
RE 3-4 = R3+ R4 = 4 Ω + 5 Ω = 9 Ω
RE 1-2
RE 3-4
𝑅 𝐸1−2
𝑅 𝐸3−4

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
R3 R4
RE 3-4 = R3+ R4 = 4 Ω + 5 Ω = 9 Ω
RE 1-2
RE 3-4
1
𝑅 𝑇
=
1
𝑅 𝐸1−2
+
1
𝑅 𝐸3−4
=
1
4Ω
+
1
9Ω
1
𝑅 𝑇
= 0,36
1
Ω
→ RT =
1
0,36
1
Ω
= 2,8 𝜴
𝑅 𝐸1−2
𝑅 𝐸3−4

ProblemB
R4
R2
R3
R1
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
RE 1-2 = R1 + R2 = 2 Ω + 2 Ω = 4 Ω
R4
RE 1-2
R3
R2 R1
R3 R4
RE 3-4 = R3+ R4 = 4 Ω + 5 Ω = 9 Ω
RE 1-2
RE 3-4
1
𝑅 𝑇
=
1
𝑅 𝐸1−2
+
1
𝑅 𝐸3−4
=
1
4Ω
+
1
9Ω
1
𝑅 𝑇
= 0,36
1
Ω
→ RT =
1
0,36
1
Ω
= 2,8 𝜴
RT
𝑅 𝐸1−2
𝑅 𝐸3−4

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
1) Resistors 1 and 2 are in parallel.
R1
R2

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2
R3
R4

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2
R3
R4
1
𝑅 𝐸3−4
=
1
𝑅3
+
1
𝑅4
=
1
4Ω
+
1
5Ω
1
𝑅 𝐸3−4
=
0,45
Ω
→ 𝑹 𝑬 𝟑−𝟒
=
1
0,45
Ω
= 2,2 𝜴

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2
R3
R4
1
𝑅 𝐸3−4
=
1
𝑅3
+
1
𝑅4
=
1
4Ω
+
1
5Ω
1
𝑅 𝐸3−4
=
0,45
Ω
→ 𝑹 𝑬 𝟑−𝟒
=
1
0,45
Ω
= 2,2 𝜴
RE 1-2RE 3-4

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
2) Resistors 3 and 4 are in parallel. 3) Resistors E1-2 and E2-3 are in series.
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2
R3
R4
1
𝑅 𝐸3−4
=
1
𝑅3
+
1
𝑅4
=
1
4Ω
+
1
5Ω
1
𝑅 𝐸3−4
=
0,45
Ω
→ 𝑹 𝑬 𝟑−𝟒
=
1
0,45
Ω
= 2,2 𝜴
RE 1-2RE 3-4
RE 1-2RE 3-4

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2
R3
R4
1
𝑅 𝐸3−4
=
1
𝑅3
+
1
𝑅4
=
1
4Ω
+
1
5Ω
1
𝑅 𝐸3−4
=
0,45
Ω
→ 𝑹 𝑬 𝟑−𝟒
=
1
0,45
Ω
= 2,2 𝜴
RE 1-2RE 3-4
𝑅 𝑇 = 𝑅 𝐸1−2
+𝑅 𝐸3−4
= 1𝛺 + 2,2𝛺
𝑹 𝑻 = 3,2 𝛀
RE 1-2RE 3-4

ProblemC R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R3
R4
R1
R2
R1
R2
1
𝑅 𝐸1−2
=
1
𝑅1
+
1
𝑅2
=
1
2Ω
+
1
2Ω
1
𝑅 𝐸1−2
= 1
1
Ω
→ 𝑹 𝑬 𝟏−𝟐
=
1
1
1
Ω
= 1 𝜴
R3
R4
RE 1-2
R3
R4
1
𝑅 𝐸3−4
=
1
𝑅3
+
1
𝑅4
=
1
4Ω
+
1
5Ω
1
𝑅 𝐸3−4
=
0,45
Ω
→ 𝑹 𝑬 𝟑−𝟒
=
1
0,45
Ω
= 2,2 𝜴
RE 1-2RE 3-4
𝑅 𝑇 = 𝑅 𝐸1−2
+𝑅 𝐸3−4
= 1𝛺 + 2,2𝛺
𝑹 𝑻 = 3,2 𝛀
RT
RE 1-2RE 3-4

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
 Step 3. Continue combining resistors until one, total resistance (RT) remains.R4
R2R3 R1

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R4
R2R3 R1
R2R3

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
2) Resistors 𝑅 𝐸2−3
and 4 are in parallel
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
6Ω
+
1
5Ω
1
𝑅 𝐸2−3−4
=
0,37
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,37
Ω
= 2,7 𝜴
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
6Ω
+
1
5Ω
1
𝑅 𝐸2−3−4
=
0,37
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,37
Ω
= 2,7 𝜴
𝑅1𝑅 𝐸2−3−4
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
and 4 are in parallel 3) Resistors 𝑅 𝐸2−3−4
and 𝑅1 are in
series
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
6Ω
+
1
5Ω
1
𝑅 𝐸2−3−4
=
0,37
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,37
Ω
= 2,7 𝜴
𝑅1𝑅 𝐸2−3−4
R1𝑅 𝐸2−3−4
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
and 𝑅1 are in
series
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
6Ω
+
1
5Ω
1
𝑅 𝐸2−3−4
=
0,37
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,37
Ω
= 2,7 𝜴
𝑅1𝑅 𝐸2−3−4
𝑅 𝑇 = 𝑅 𝐸2−3−4
+𝑅1= 2,7𝛺 + 2𝛺
𝑹 𝑻 = 4,7 𝛀
R1𝑅 𝐸2−3−4
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3

ProblemD
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
and 𝑅1 are in
series
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
6Ω
+
1
5Ω
1
𝑅 𝐸2−3−4
=
0,37
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,37
Ω
= 2,7 𝜴
𝑅1𝑅 𝐸2−3−4
𝑅 𝑇 = 𝑅 𝐸2−3−4
+𝑅1= 2,7𝛺 + 2𝛺
𝑹 𝑻 = 4,7 𝛀
RT
R1𝑅 𝐸2−3−4
R4
R2R3 R1
R2R3
𝑅 𝐸2−3
= 𝑅2 +𝑅3= 2𝛺 + 4𝛺
𝑅 𝐸2−3
= 6 𝛺
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R2
R3
R4
R1

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R2
R3
R4
R1
R2
R3

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R4
𝑅 𝐸2−3 R1
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
1,3 Ω
+
1
5 Ω
1
𝑅 𝐸2−3−4
=
0,97
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,97
Ω
= 1,0 𝜴
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
1,3 Ω
+
1
5 Ω
1
𝑅 𝐸2−3−4
=
0,97
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,97
Ω
= 1,0 𝜴
𝑅1𝑅 𝐸2−3−4
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
and 𝑅1 are in
series
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
1,3 Ω
+
1
5 Ω
1
𝑅 𝐸2−3−4
=
0,97
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,97
Ω
= 1,0 𝜴
𝑅1𝑅 𝐸2−3−4
R1𝑅 𝐸2−3−4
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
and 𝑅1 are in
series
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
1,3 Ω
+
1
5 Ω
1
𝑅 𝐸2−3−4
=
0,97
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,97
Ω
= 1,0 𝜴
𝑅1𝑅 𝐸2−3−4
𝑅 𝑇 = 𝑅 𝐸2−3−4
+𝑅1= 1,0𝛺 + 2𝛺
𝑹 𝑻 = 3 𝛀
R1𝑅 𝐸2−3−4
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemE
R1 = 2Ω
R2 = 2Ω
R3 = 4Ω
R4 = 5Ω
parallel.
and 𝑅1 are in
series
1
𝑅 𝐸2−3−4
=
1
𝑅 𝐸2−3
+
1
𝑅4
=
1
1,3 Ω
+
1
5 Ω
1
𝑅 𝐸2−3−4
=
0,97
Ω
→ 𝑹 𝑬 𝟐−𝟑−𝟒
=
1
0,97
Ω
= 1,0 𝜴
𝑅1𝑅 𝐸2−3−4
𝑅 𝑇 = 𝑅 𝐸2−3−4
+𝑅1= 1,0𝛺 + 2𝛺
𝑹 𝑻 = 3 𝛀
RT
R1𝑅 𝐸2−3−4
R4
𝑅 𝐸2−3 R1
R4
𝑅 𝐸2−3
R2
R3
R4
R1
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴

ProblemF
R1 = 2 Ω
R2 = 2 Ω
R3 = 4 Ω
R4 = 5 Ω
parallel.
1) Resistors 𝑹 𝟐 and 𝑹 𝟑 are in parallel.
2) Resistors 𝑹 𝑬 𝟐−𝟑
and 𝑹 𝟏 are in series 3) Resistors 𝑅 𝐸2−3−4
and 𝑅1 are in
parallel
𝑅 𝐸1−2−3
= 𝑅 𝐸2−3
+ 𝑅1= 1,3 𝛺 + 2𝛺
𝑹 𝑻 = 2,3 𝛀
RT
R1𝑅 𝐸2−3
R2
R3
1
𝑅 𝐸2−3
=
1
𝑅2
+
1
𝑅3
=
1
2Ω
+
1
4Ω
1
𝑅 𝐸2−3
=
0,75
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,75
Ω
= 1,3 𝜴
R2
R3
R1
R4
𝑅 𝐸2−3 R1
R4
R4
𝑅 𝐸1−2−3
1
𝑅 𝑇
=
1
𝑅 𝐸1−2−3
+
1
𝑅4
=
1
2,3Ω
+
1
5Ω
1
𝑅 𝐸2−3
=
0,63
Ω
→ 𝑹 𝑬 𝟐−𝟑
= 1
0,63
Ω
= 1,6 𝜴
𝑅 𝐸1−2−3
R4

Electric Circuits - Simplifying Circuits SP

Recommended

Recommended

More Related Content

What's hot

What's hot (18)

Similar to Electric Circuits - Simplifying Circuits SP

Similar to Electric Circuits - Simplifying Circuits SP (20)

More from Ignacio Anguera de Sojo Palerm

More from Ignacio Anguera de Sojo Palerm (20)

Recently uploaded

Recently uploaded (20)

Electric Circuits - Simplifying Circuits SP