willem2 said:I1 and I4 are the same.
There are two loops to use Kirchhoff's loop laws. You'll also need Kirchhoff's current law in some point.
VJ_1991 said:do u know what the actual circuit voltage is for this circuit since there are 2 batteries with different voltages? thanks for your reply btw.
VJ_1991 said:do u know what the actual circuit voltage is for this circuit since there are 2 batteries with different voltages? thanks for your reply btw.
collinsmark said:Hello VJ_1991
Welcome to Physics Forums,
I don't think there is such a thing as some sort of overall "actual circuit voltage", particularly in this case where there are multiple voltage sources. The voltage between any two given nodes depends upon which nodes you are "probing" (i.e. which nodes you are taking into consideration; i.e. between which particular nodes you are finding the potential difference).
As willem2 suggested, the way to solve this problem is to use Kirchhoff's laws.
VJ_1991 said:is it possible to use voltage division in this circuit? if so, which battery will i use( 20 V or 32V)? or will i use the difference between the two batteries when calculating for voltage division?
collinsmark said:The way I would approach this problem is to use Kirchhof's current law.
Define two different current loops in the circuit (say, i1 and i2 -- you can even use them the way the are already defined on your circuit diagram if you want to [or you an define your own if you prefer]). For each current loop, go through and add up the respective voltage drops, setting everything to 0.
You'll end up with 2 (simultaneous) equations and 2 unknowns. Solve for the unknowns using substitution, linear algebra, or whichever method you prefer to use for solving simultaneous equations.
VJ_1991 said:i agree, this is the method I've learned in school. btw I am a gr.12 high school student.
so the two equations i came up with are:
Eqn 1: -V4 + V1 + V3 = 0
Eqn 2: -V3 + V2 + V5 = 0
Note: V4 = 32V and V5 = 20V( i assigned the two batteries V4 and V5)
are these equations correct?
collinsmark said:Yes, those equations will work and are valid. The next thing you need to do solve for the currents which define each loop. You can do this by bringing in the resistor values, and by noting that V = iR.
A couple of things to be careful of:
(1) Be careful of how you handle the voltage drop across R3 (i.e. V3). It involves the currents in both of your loops.
(2) The direction in which you have defined your second current loop is opposite that of i2, as labeled on the diagram. There's no problem with that. Just don't forget the negative sign when you give your answer for i2.
VJ_1991 said:thanks, it helped a lot. just another quick question, does i1 = i2 ?
To solve for unknowns in a circuit, you can use Kirchhoff's laws and Ohm's law. Kirchhoff's laws state that the sum of all currents entering a node is equal to the sum of all currents leaving the node, and the sum of all voltages in a closed loop is equal to zero. Additionally, Ohm's law states that the voltage across a resistor is equal to the current through the resistor multiplied by the resistance. By applying these laws to the circuit, you can create a system of equations to solve for the unknown variables.
To determine the unknown voltages in a circuit, you can use a voltmeter to measure the voltage across each component. You can also use Kirchhoff's laws to create a system of equations and solve for the unknown voltages.
To find the unknown currents in a circuit, you can use an ammeter to measure the current flowing through each component. You can also use Kirchhoff's laws to create a system of equations and solve for the unknown currents.
Solving for unknowns in circuitry is important because it allows us to understand how current and voltage flow through a circuit, and how different components affect the overall behavior of the circuit. This information is crucial for designing and troubleshooting circuits in various electronic devices.
Some common mistakes to avoid when solving for unknowns in a circuit include not properly labeling components, not considering the direction of current flow, and not correctly applying Kirchhoff's laws. It is also important to double check calculations and make sure all units are consistent throughout the equations.