phy1161_10_kirchhoffcurrent/voltagelaw loop rule and junction rule-1.ppt

Physics 1161: Lecture 10
Kirchhoff’s Laws

Kirchhoff’s Rules
•Kirchhoff’s Junction Rule:
–Current going in equals current coming
out.
•Kirchhoff’s Loop Rule:
–Sum of voltage changes around a loop
is zero.

Using Kirchhoff’s Rules
(1)Label all currents
(3)Choose loop and direction
•Choose any direction
•You will need one less loop than
unknown currents
(4) Write down voltage changes
Be careful about signs
•For batteries –voltage change is
positive when summing from
negative to positive
•For resistors –voltage change is
negative when summing in the
direction of the current
R
4
I
1
I
3
I
2
I
4
R
1

1
R
2
R
3
2

3
R
5
A
B
(2) Write down junction equation
I
in= I
out
I
5

Loop Rule Practice
R
1=5 W I

1= 50V
R
2=15 W

2= 10V
A
B
Find I:

Loop Rule Practice
R
1=5 W I
+
1 -IR
1-
2-IR
2 = 0
+50 -5 I -10 -15 I = 0
I = +2 Amps

1= 50V
R
2=15 W

2= 10V
A
B
Find I:
Label currents
Choose loop
Write KLR

Resistors R
1and R
2are1 2 3
0% 0%0%
1.In parallel
2.In series
3.neither
I
1R
1=10 W
R
2=10 W
E
1= 10 V
I
B
E
2= 5 V
I
2
+
-

Resistors R
1and R
2are1 2 3
0% 0%0%
1.In parallel
2.In series
3.neither
I
1R
1=10 W
R
2=10 W
E
1= 10 V
I
B
E
2= 5 V
I
2
+
-
Definition of parallel:
Two elements are in parallel if (and
only if) you can make a loop that
contains only those two elements.
Upper loop contains R
1and R
2but also E
2.

Preflight 10.1
R=10 W
E
1= 10 V
I
B
I
1
E
2= 5 V
R=10 WI
2
1) I
1= 0.5 A 2) I
1= 1.0 A 3) I
1= 1.5 A
E
1-I
1R = 0
24% 62% 24%
Calculate the current through resistor 1.
27
I
1= E
1/R = 1A

How would I
1change if the switch was
opened?1 2 3
0% 0%0%
E
1= 10 V
I
B
R=10 WI
1
R=10 W
I
2
E
2= 5 V
1.Increase
2.No change
3.Decrease

Preflight 10.2
R=10 W
E
1= 10 V
I
B
I
1
E
2= 5 V
R=10 WI
2
1)I
2= 0.5 A
2)I
2= 1.0 A
3)I
2= 1.5 A
E
1-E
2-I
2R = 0
43%
I
2 = 0.5A
Calculate the current through resistor 2.
35
28%
28%

Preflight 10.2
R=10 W
E
1= 10 V
I
B
I
1
E
2= 5 V
R=10 WI
2
- +
+
-
+E
1-E
2+ I
2R = 0 Note the sign change from last slide
I
2 = -0.5A Answer has same magnitude as before but
opposite sign. That means current goes to the left, as we found
before.
How do I know the direction of I
2?
It doesn’t matter. Choose whatever direction
you like. Then solve the equations to find I
2.
If the result is positive, then your initial guess
was correct. If result is negative, then actual
direction is opposite to your initial guess.
Work through preflight with opposite
sign for I
2?

Kirchhoff’s Junction Rule
Current Entering = Current Leaving
I
1 I
2
I
3
I
1= I
2+ I
3
1) I
B= 0.5 A 2) I
B= 1.0 A 3) I
B= 1.5 A
I
B= I
1+ I
2= 1.5 A
7% 37% 57%
R=10 W
E
1= 10 V
I
B
I
1
E= 5
V
R=10 WI
2
+
-
Preflight 8.3
“The first two can be calculated using V=IR because the
voltage and resistance is given, and the current through E1
can be calculated with the help of Kirchhoff's Junction
rule, that states whatever current flows into the junction
must flow out. So I1 and I2 are added together.”

Kirchhoff’s Laws
(1)Label all currents
Choose any direction
(2)Write down the junction equation
I
in= I
out
(3)Choose loop and direction
Your choice!
(4)Write down voltage changes
Follow any loops
(5)Solve the equations by substitution or
combination .
R
4
R
1
E
1
R
2
R
3E
2
E
3
I
1
I
3
I
2
I
4
R
5
A
B

You try it!
In the circuit below you are given 
1, 
2, R
1, R
2and R
3. Find I
1, I
2and I
3.
R
1
R
2 R
3
I
1
I
3
I
2
+
-

1

2
+-

You try it!
R
1
R
2 R
3
I
1
I
3
I
2
+
-
Loop 1: +
1-I
1R
1+I
2R
2 = 0
1.Label all currents (Choose any direction)
3. Choose loop and direction(Your choice!)
4.Write down voltage changes
Loop 2:

1
Node:I
1+I
2 = I
3

2
3 Equations, 3 unknowns the rest is math!
In the circuit below you are given 
1, 
2, R
1, R
2and R
3. Find I
1, I
2and I
3.
Loop 1
Loop 2

+-


-I
2R
2-I
3R
3 -
2= 0


2. Write down junction equation

Let’s put in actual numbers
In the circuit below you are given 
1, 
2, R
1, R
2and R
3. Find I
1, I
2and I
3.
2
5
10
10
I
1
I
3
I
2
+
-
20
+-
1.junction: I
3=I
1+I
2
2. left loop: 20 -5I
1+10I
2= 0
3. right loop: -2 -10I
2-10I
3= 0
solution: substitute Eq.1 for I
3in Eq. 3:
rearrange: -10I
1 -20I
2= 2
rearrange Eq. 2: 5I
1-10I
2= 20
Now we have 2 eq., 2 unknowns. Continue on next slide

-10I
1-20I
2= 2
2*(5I
1 -10I
2= 20) = 10I
1–20I
2= 40
Now we have 2 eq., 2 unknowns.
Add the equations together:
-40I
2 = 42 I
2 = -1.05 A
note that this means direction of I
2is opposite to that shown on the
previous slide
Plug into left loop equation:
5I
1-10*(-1.05) = 20
I
1=1.90 A
Use junction equation (eq. 1 from previous page)
I
3=I
1+I
2= 1.90-1.05
I
3= 0.85 A

phy1161_10_kirchhoffcurrent/voltagelaw loop rule and junction rule-1.ppt

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