Mikka, I am sorry to burst your bubble on this mass conspiracy of copper waste, but your theory doesn't hold true I am afraid.
Ok, but then explain me why my tranny does'nt toast while it supplies two EL84 since November 2010 and I use this amp three times by week in rehearsal and on stage ?
You are not unleashing hidden power by modifying your transformers. You are just switching what we could call "topology", which could also be done by purchasing a different product. What youøve found is that your transformers are more beefy than the minimum requirements, which is always nice.
When moving from CT to mount a single coil assembly I have not altered the available power of the transformer. I've never said anything to that effect! What must be understood is that the secondary voltage is increased from twice 225V to 225V at once. Thus by dividing the voltage by two, for the same power available, I double the current available since I use the two windings. It is mathematically simple and logical.
http://www.altronics.com.au/download/Da ... ormers.PDF
This site states DC current = 0.62 X AC current.
I vaguely recall from college that it was all much as muchness, but I'd still like to hear Mikka's explanation. If I'm incorrect, I'd like to be corrected, and if Mikka is incorrect, I'm sure he'd feel the same way.
I don't totaly agree with that factor because it doesn't take care all power supply component. Only one factor is not enough even it can give a global ratio. Be aware that the current peaks generated in the transformer is strongly influenced by the value of capacitors, especially the first. It is therefore impossible to deduce a valid factor for all head-mount capacitor power supply.
We can look at it by taking my simulation in Duncan PSU Designer :
http://www.hiboox.fr/go/images-100/fell ... 1.jpg.html
If you do the total consumption of the amplifier are:
0.075 + 0.0075 + 0.0013 + 0.005 = 0.0888A DC or 88.8mA DC
88.8 / 0.62 = 143mA AC
In the end I find this factor a little high and therefore in a certain way risky.
Now resume what I calculated on the basis of this simulation:
Irms = (Ix0.7)/ (Square root of 2) = (0.360x0.7) / 1.414 = 0.178A or 178mA AC
If I make the connection with the consumption of rectified current I find the following factor.
88.8mA DC / 178mA AC = 0.498
I have a relatively low factor because I have rather large current peaks due to my filter.
By selecting a factor of 0.62, the manufacturer is based on a very positive case which is surprising and risky.
My method is much more demanding and thus allows me to design power supplies more stable and more reliable.
where does Vs come from?
Measurements
What is the significance of Vn?
Unloaded nominal voltage
Sorry to ask so many questions, but I figure, what is the pointing of posting, if no one knows what you're talking about?
I thought I was on a technical forum and I had to do to connoisseurs.
