Can the Slope of a Graph Determine EMF and Internal Resistance?

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Homework Help Overview

The discussion revolves around determining the electromotive force (EMF) and internal resistance of a battery through experimental measurements of voltage and current. Participants are analyzing a graph plotted with voltage on the y-axis and current on the x-axis, derived from a 4.5 V battery.

Discussion Character

  • Exploratory, Conceptual clarification, Mathematical reasoning, Problem interpretation

Approaches and Questions Raised

  • Participants discuss the relationship between the slope of the graph and the concepts of EMF and internal resistance. Questions arise regarding the interpretation of a negative slope and its implications for the EMF value. Some participants explore the equations related to voltage, current, and resistance.

Discussion Status

The conversation includes various interpretations of the graph and its implications for calculating internal resistance. Some participants have offered insights into the relationships between the plotted variables, while others express uncertainty about the implications of their findings. There is no explicit consensus on the interpretation of the negative slope or the correct application of the formulas.

Contextual Notes

Participants mention varying resistance values and their effects on voltage measurements, as well as the constraints of using specific formulas for internal resistance. There is an acknowledgment of potential language barriers affecting understanding.

mininirime
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I'm doing a few practicals at home this summer, and the one that is bugging me is about EMF. I have measured voltage and current at different resistances across a 4,5 V battery, and made a graph. But to find the emf, am I supposed to take the slope of the graph, or the gradient? Or is that the same, aka the derivative? English isn't my first language, but I go to an English school, so...

My graph gives a function y=-1,26x + 5,772. Is it possible for the slope to be negative, and thus the emf? I have current at x-axis and voltage at y-axis.

Thanks for all the help, I hope this doesn't seem like I want you to do my homework for me ^^o:)
 
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The slope of voltage vs. current is resistance, as given by the equation: V=IR The gradient is the slope is the derivative for straight lines

I don't see how you could have gotten a negative slope. But then again, I don't see how your voltage is capable of varying on a 4.5 volt battery.
 
this is why Electricity is my least favourite part of physics

No, the battery is 4.5 volts, which measn that the perfect emf is 4,5 volts, right? And then I vary the length of resistance, or the wire, from 100 cm to 5 cm. I measure the potential difference and current, and plot those two... so the voltage shrinks because the resistance gets bigger. does that make sense?
e=rI + V <- I'm supposed to be using this.
Maybe the slope is negative because I plotted the biggest resistance results first, and then the smaller resistance results. This would mean that the highest voltage values would come first...
 
The internal resistance of the cell is the "negative" of the slope when
plotting V vs I. V = E - IR where V is the ordinate (y-axis and I is
the abcissa (x-axis).
 
Thanks, I plotted V along y-axis and I along X-axis. But to find the internal resistance r, should I use the formula V=Ir, or does that only work for "external" resistances? Because I can only use the V=E-Ir with one unknown, and currently the r is sort of unknown. Or I am blind and/or stupid :p

I really appreciated the help ;)
 
Last edited:
mininirime said:
Thanks, I plotted V along y-axis and I along X-axis. But to find the internal resistance r, should I use the formula V=Ir, or does that only work for "external" resistances? Because I can only use the V=E-Ir with one unknown, and currently the r is sort of unknown. Or I am blind and/or stupid :p

I really appreciated the help ;)
Okay, you've plotted your graph correctly, now compare your equation (in a slightly re-arranged form) with the standard equation of a straight line;

V = -rI + E
y = mx + c

Note, that here voltage is on the y-axis and current is plotted on the x axis. Which letter is r equivalent to in the second equation and what does this letter represent?
 
well, when you put it that way... It makes much more sense ;) I've managed to find the internal resistance and E now! I think it's about seing the connections... which I'm really not that good at :s but thanks for the help!
 
mininirime said:
I think it's about seing the connections... which I'm really not that good at :s but thanks for the help!
That will come, in time. My pleasure.
 

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