Direction of current flow in a circuit

AI Thread Summary
The discussion centers on understanding the direction of current flow in a circuit with a current source and its impact on voltage calculations. It is clarified that current generally flows in the direction indicated by the arrow on the current source, and in a single-loop circuit, the current remains consistent throughout. The application of Kirchhoff's voltage law is emphasized, stating that the sum of voltages around a closed loop must equal zero, highlighting the importance of energy conservation in circuit analysis. Confusion arises regarding whether the voltage across the current source represents a gain or drop, with the consensus that moving from the top to the bottom of the current source indicates a voltage drop. Ultimately, understanding the relationship between current direction and voltage changes is crucial for accurate circuit analysis.
theBEAST
Messages
361
Reaction score
0

Homework Statement


I attached a picture of the problem. I am confused about how the current source will affect the direction of current flow. Does the current flow in the direction of the current source arrow? If not what does the arrow dictate? Our professor said the direction of the current flow does not matter but when I tried solving this using the loop method it does.

For example if I assume the current flows ccw my equation becomes IR + V - E = 0 which means E=10V. But if the current flows cw my equation becomes IR - V + E = 0 which means E=8V.
 

Attachments

  • Capture.PNG
    Capture.PNG
    9.9 KB · Views: 1,268
Physics news on Phys.org
theBEAST said:

Homework Statement


I attached a picture of the problem. I am confused about how the current source will affect the direction of current flow. Does the current flow in the direction of the current source arrow? If not what does the arrow dictate? Our professor said the direction of the current flow does not matter but when I tried solving this using the loop method it does.

For example if I assume the current flows ccw my equation becomes IR + V - E = 0 which means E=10V. But if the current flows cw my equation becomes IR - V + E = 0 which means E=8V.

I'm not sure what you mean by "E" here. Generally speaking, yes, current flows in the direction indicated by the arrow on the current source. And since the circuit is a single loop, the current must be the same everywhere. This means that the current flows counterclockwise through the circuit, and that it is equal to 2 A.

Let's call the voltage across the current source VI. Let's measure voltages relative to the the minus terminal of the battery (at the bottom of the loop). This is our ground reference point. Since current flows counterclockwise, the right hand side of the resistor is at a higher potential than the left hand side. (The right hand side is "upstream" and the left hand side is "downstream", after energy has been dissipated as heat in the resistor). Therefore, as you move clockwise through circuit, starting at the battery minus terminal, your voltage increases by V as you go across the battery. Then it increase by IR as you go across the resistor from left to right (opposite to the current). Then it decreases as you go down across the current source. Hence:

V + IR - VI = 0

VI= V + IR

= 10 V + (2 A)(1 Ω) = 10 V + 2 V = 12 V

The voltage drop across the current source is 12 V.

It makes sense that the potential at the top of the current source is higher than the potential at the + terminal of the battery. This is necessary if it is to "win" the fight and drive the current counterclockwise. (The battery wants to drive it clockwise).
 
cepheid said:
I'm not sure what you mean by "E" here. Generally speaking, yes, current flows in the direction indicated by the arrow on the current source. And since the circuit is a single loop, the current must be the same everywhere. This means that the current flows counterclockwise through the circuit, and that it is equal to 2 A.

Let's call the voltage across the current source VI. Let's measure voltages relative to the the minus terminal of the battery (at the bottom of the loop). This is our ground reference point. Since current flows counterclockwise, the right hand side of the resistor is at a higher potential than the left hand side. (The right hand side is "upstream" and the left hand side is "downstream", after energy has been dissipated as heat in the resistor). Therefore, as you move clockwise through circuit, starting at the battery minus terminal, your voltage increases by V as you go across the battery. Then it increase by IR as you go across the resistor from left to right (opposite to the current). Then it decreases as you go down across the current source. Hence:

V + IR - VI = 0

VI= V + IR

= 10 V + (2 A)(1 Ω) = 10 V + 2 V = 12 V

The voltage drop across the current source is 12 V.

It makes sense that the potential at the top of the current source is higher than the potential at the + terminal of the battery. This is necessary if it is to "win" the fight and drive the current counterclockwise. (The battery wants to drive it clockwise).

Thanks, so if the current source arrow was pointing the other direction would the voltage drop be 8V?
 
theBEAST said:
Thanks, so if the current source arrow was pointing the other direction would the voltage drop be 8V?

Follow the rules and work it out. If the current flows from left to right across the resistor, what is the direction of the voltage drop across the resistor?
 
cepheid said:
Follow the rules and work it out. If the current flows from left to right across the resistor, what is the direction of the voltage drop across the resistor?

Alright I am very confused now, my professor has not gone over these concepts as this is a MATH course. He says that it's not about the physics but for this question the answer changes depending on how you look at the physics. So I am confused about how you tell if it is a voltage gain or drop. I noticed that you said it is a drop of 12V how do you know this? Why isn't it a gain of 12V?
 
theBEAST said:
Alright I am very confused now, my professor has not gone over these concepts as this is a MATH course. He says that it's not about the physics but for this question the answer changes depending on how you look at the physics. So I am confused about how you tell if it is a voltage gain or drop. I noticed that you said it is a drop of 12V how do you know this? Why isn't it a gain of 12V?

From Kirchoff's loop rule: the sum of voltages around a closed loop in a circuit is zero.

This is also known as "Kirchoff's voltage law" or KVL, but fundamentally it is just an expression of the conservation of energy. When you go around a closed loop, the amount of energy gained by the charges has to be equal to the amount of energy lost, otherwise you are creating energy from nothing.

Conservation of energy is very much a physics principle. You do need to know physics in order to do circuit analysis.

How do I know it's a voltage drop when you go from the top side of the current source to the bottom side? Conservation of energy. Let's say I start at the battery minus terminal and move clockwise around the circuit (this is the opposite direction from the current flow, but let's say we go in this direction, just for the sake of argument). I gain potential energy in moving up across the battery, since the electric potential is higher at the top (+ terminal) than at the bottom. I gain even more energy in moving across the resistor from left to right, because the potential is lower on the left side of the resistor than on the right side. (The potential drop across a resistor is always in the direction of current flow). So, now, all the energy I've gained up to this point has to be lost in going across the current source from top to bottom. So the electric potential at the bottom end of the current source must be lower than it is at the top end.

If you don't know what electric potential is, then you don't know what voltage is, so I'd highly recommend you brush up on this concept in that case.

EDIT: It makes no sense that this is for a math course, unless it's a very low-level math course (middle school or early high school). I can't think of what math this problem would be testing other than basic algebra.
 
cepheid said:
From Kirchoff's loop rule: the sum of voltages around a closed loop in a circuit is zero.

This is also known as "Kirchoff's voltage law" or KVL, but fundamentally it is just an expression of the conservation of energy. When you go around a closed loop, the amount of energy gained by the charges has to be equal to the amount of energy lost, otherwise you are creating energy from nothing.

Conservation of energy is very much a physics principle. You do need to know physics in order to do circuit analysis.

How do I know it's a voltage drop when you go from the top side of the current source to the bottom side? Conservation of energy. Let's say I start at the battery minus terminal and move clockwise around the circuit (this is the opposite direction from the current flow, but let's say we go in this direction, just for the sake of argument). I gain potential energy in moving up across the battery, since the electric potential is higher at the top (+ terminal) than at the bottom. I gain even more energy in moving across the resistor from left to right, because the potential is lower on the left side of the resistor than on the right side. (The potential drop across a resistor is always in the direction of current flow). So, now, all the energy I've gained up to this point has to be lost in going across the current source from top to bottom. So the electric potential at the bottom end of the current source must be lower than it is at the top end.

If you don't know what electric potential is, then you don't know what voltage is, so I'd highly recommend you brush up on this concept in that case.

EDIT: It makes no sense that this is for a math course, unless it's a very low-level math course (middle school or early high school). I can't think of what math this problem would be testing other than basic algebra.

Oh that is just a simple circuit that confused me. The other circuits have many resistors/other components so we have write a system of linear equations and use Gaussian elimination to solve it

EDIT: I think I understand it now. So if we moved counter clockwise it would be a voltage gain? Since we are now moving from the negative (low potential) to the positive (high potential) terminal of the current source.
 

Similar threads

Current flowing in an open circuit
Replies
9
Views
1K
How do I fix the signs in Faraday's Law in RL Circuit?
Replies
5
Views
1K
Determine the Thevenin equivalent circuit
Replies
2
Views
2K
Connecting a number of EMF sources in a circle to form a circuit
Replies
9
Views
1K
Circuit with potential difference across battery being zero?
Replies
3
Views
1K
Current through an inductor as a function of time
Replies
10
Views
377
Understanding Inductance and Induced EMF in Simple Circuits
Replies
49
Views
3K
Why do the headlights on the car become dim when the car is starting?
Replies
4
Views
2K
Induced Current Direction in a Changing Magnetic Field
Replies
1
Views
2K
Current flowing through a resistor in an RRL DC circuit
Replies
5
Views
2K

Hot Threads

Recent Insights

Back
Top