certainlyIf I may ....
that's what I am beginning to concludeA transformer transforms power into a different voltage but the power going in always equals the power going out: V*I = the same number (watts) on both sides of the transformer. If you plug in a transformer that has 240 V into a 20 ohm resistor - the current will be 12 amps and the power will be 240 x 12 = 2,880 Watts. On the 120 volt side of the transformer with the same power demand the current is 2,880/120 or 24 Amps (not 6 amps).
This statement is correct.it seems to me a step up transformer uses less amperage to transmit power so there is less loss through heat then they step it down for the consumer
Not really. High voltage DC can be transmitted with less loss than high-voltage AC - especially if the wires have to be insulated, as in undersea cables. DC requires more capital expense to transform (you have to convert it to AC and then transform it -- transformers require AC). Also DC generators (and DC motors) have bothersome things like commutators/ brushes -- alternators don't.)this is why we use AC because DC does not step up, I think
Correct.First, some terminology - the side of the transformer which is connected to the supply side is called the primary, and the side connected to the resistor is called the secondary.
This does not sound like the conclusion an expert on the subject would necessarily make.What I have done is compare the secondary current, before I connected the transformer, to the secondary current after I connected the transformer.
What I should be doing is comparing the primary and secondary current after I connected the transformer
A cautious "yes" is the best response, here. But it's not because the relationship will no longer be valid. Here's the deal.So if you measure the primary current, you'll find that it equals 24A, or twice of what it is in on the secondary side, so it does step down the current.
However, if you leave the secondary circuit open there is no power consumed, therefore no current on either side of the transformer, so that relationship will no longer be valid
the current on the primary side will always be double the current on the secondary side if the transformer has doubled the voltage
does this sound correct?
It's been a while so help me on something that has slipped my feeble mind.Now, if the secondary coil has an open circuit, i.e the terminals of the secondary coil are not connected to anything, that means the resistance of the secondary circuit is now infinite ohms. Therefore, the current in the secondary coil is 240 / infinity, which is zero.
I do know that lightening will cut off parts of the amplitude causing major disruptionWhy do tvs use amplitude modulation?
okThis statement is correct.
Not really. High voltage DC can be transmitted with less loss than high-voltage AC - especially if the wires have to be insulated, as in undersea cables. DC requires more capital expense to transform (you have to convert it to AC and then transform it -- transformers require AC). Also DC generators (and DC motors) have bothersome things like commutators/ brushes -- alternators don't.)
Correct.
This does not sound like the conclusion an expert on the subject would necessarily make.
A cautious "yes" is the best response, here. But it's not because the relationship will no longer be valid. Here's the deal.
In your 2:1 transformer, you have N turns of wire in the primary and 2N turns of wire in the secondary. (More turns = more volts.) If you apply a voltage of 120 volts to the primary coil, you will have 240 volts in the secondary. If you have a load of 100 ohms connected across the terminals of the secondary coil, a current of 240 / 100 = 2.4 amps will flow in the secondary coil. A current of 4.8 amps will flow in the primary coil. This will consume electricity, the primary being connected to the power station) at the rate of 120 x 4.8 = 576 watts.
(Note that, in the secondary, 240 x 2.4 = 576 watts also. However, the transformer is not 100% efficient, so if the current in the secondary is 2.4 amps at 240 volts, the supply current in the primary will not be 4.8 amps, but will actually be 4.9 or 5.0 amps, at 120 volts.)
Now, if the secondary coil has an open circuit, i.e the terminals of the secondary coil are not connected to anything, that means the resistance of the secondary circuit is now infinite ohms. Therefore, the current in the secondary coil is 240 / infinity, which is zero.
The way transformers work, because the resistance of the secondary coil is infinite, the resistance of the primary coil also becomes infinite.
(Actually, the resistance of the coils in a transformer is called impedance, rather than resistance. Depending where you are starting from in your level of knowledge, the explanation of impedance and electromagnetic induction might be too much. Suffice it to say that if there is infinite resistance in the secondary, there will be infinite resistance in the primary.)
So, if there is zero current in the secondary, there will be zero current in the primary. The current that flows through the 2nd coil is determined by the resistance of whatever is connected to the 2nd coil. The current in the primary coil depends on whatever is the current in the 2nd, and is twice the current in the 2nd (plus a little bit).
As everybody knows, if you double zero, you still get zero. Told you it was simple.
So what is the last digit of Pi?I have had my hand up all night FFS!
I know the damn answer!
Ask me !
zeroSo what is the last digit of Pi?
Evidently there is!there is none
whew
I can finally put my hand down
A perfect voltmeter in the sense of having infinite ohms is imaginary only. Every voltmeter, in order to perform the act of measuring the voltage between two points in a circuit, draws off some current. The higher the resistance of the voltmeter, the smaller the drawn-off current. But the measurement always has to be energized. All you can do is minimize the draw-off, by increasing the resistance (impedance) of the voltmeter.You have your step up transformer described above connected to the 120 volts and an open circuit connected to secondary. I have a perfect voltmeter (infinite ohms) connected to the secondary ... what voltage will I read?
While not stupid, this is a bad question for you to be asking.ok so on the assumption there is no such thing as stupid question (ahem)
so what is the current in the conducting line between the primary coils and the secondary coils?
silly meIf there is such a thing as a conducting line between the primary coils and the secondary coils, it is a ground wire. It has nothing to do with the normal operation of the transformer.
In the transformer, the primary coil has terminals A and B. The 2ndary coil has terminals C and D. It is common to connect terminals B and D together with a wire and to connect this wire to ground. But during normal operation, no current flows along this wire, and no current flows to ground.
Same with the ground wires on your electrical appliances. The idea is to make sure that all metal things in your house, that you might touch, cannot be at a lethal voltage, even if the metal is in contact with a live wire. But during normal operation, no current flows along the ground wire. Similarly, no current flows from your washing machine to your fridge, even though they are connected together, via their connections to ground.
The two coils of a transformer are no more "connected together", by both being connected to ground, than your washing machine is connected to your fridge. There is no current flowing between terminals B and D, and there is no current in the ground wire. The transformer can operate without the ground wires -- just as fridges and dishwashers can operate without ground wires.
Actually I am very familiar with voltmeters & loading. The idea voltmeter has infinite resistance, the ideal current meter has zero. That is not an answer to my question. Your term imaginary is what we call theoretical.A perfect voltmeter in the sense of having infinite ohms is imaginary only. Every voltmeter, in order to perform the act of measuring the voltage between two points in a circuit, draws off some current. The higher the resistance of the voltmeter, the smaller the drawn-off current. But the measurement always has to be energized. All you can do is minimize the draw-off, by increasing the resistance (impedance) of the voltmeter.
The transformer has a primary coil and a secondary coil. The two are not connected together. The primary coil receives electrical power (voltage x current) from the mains, i.e from the power station."what is the current in the conducting wire between the generator and the step-up transformer (call it current 1) in relation to the current in the conducting wire coming out of the step-up transformer and heading towards the resistance? (call it current 2) "
Is Current 1 always greater than Current 2?
Who is/are "we"?Your term imaginary is what we call theoretical.
Am I missing something here? Of course, the voltmeter across the secondary will read 240 volts.Lets re-phrase the question so that it matches your voltmeter reality. I have a step up transformer connected to 120 VAC (RMS) and double the voltage such that with a small load , the voltage is 240 volts. I remove the load and put a voltmeter with an input resistance of 10E50 ohms (that is 10 to the 50th power) across the secondary winding - what voltage do I read ?
Theoretical (not imaginary) is a term we (students/teachers) to describe circuit design involving mathematical results as opposed to measured results.Am I missing something here? Of course, the voltmeter across the secondary will read 240 volts.