The correct internal-inductance of Windfeld cart.?


What (on earth) is the correct internal-inductance of the Ortofon Peer Windfeld cartridge?

They made a mistake in the brochure about the loading impedance: it says >10k but should read >10 ohms. This was admitted by the factory's techies.

The brochure also says internal-inductance: 700 mH !!!
This you would expect from an MM cart. Was this also a factor 1 000 error? I can not find ANY help on the web to clear this up. Can any one help?
axelwahl
Now to the current. A trannie like a 1:31.6 has a DCR of about 1.5 ohms on primary, and as we calculated 47ohm inductance and with a 13ohm in || a 10.18 ohm impedance.

what is a 47 ohm inductance? Also the 10.18 ohm is only the resistive nature of the reflected load. In order to call it the impedance you need to add in the inductance and capacitance of the SUT. To give an impedance you also need to give a frequency (or better yet a plot of impedance vs. frequency) and if just a fixed value such as 10.18 ohms is given, I would expect the word "Nominal" to be added.


Now try do the maths and see how much more current will go through the primary than in a non SUT set-up.

this confuses me, the non-sut setup will not have a primary. The only way to increase current through the primary is to apply the desired load across the secondary, by loading the primary you DECREASE the current through the SUT primary.


On the secondary you have MORE than twenty times the Voltage! Now this can ONLY come from a higher current, right? (ohms law)

actually it comes with less current, the current follows the exact inverse of the voltage. The volts * amps (assuming the ideal transformer) must be equal on either side so if you have 20X the voltage you have 1/20th the current.

Veff= [10/(10.18+4)]*0.3*31.6= 6.7mV that the phone-pre will see.
As I said, more than twenty times 6.7/0.3= 22.3

that is the voltage increase and why we use SUT's I don't see where current ever comes into the picture since it is purely a function of the V and Z.

So it is the SUT's primary that enables the cart to deliver 20 time more current than if you are offering 0.3mV to your phono-pre.

I'm sorry this is incorrect. The transformer allows the delivery of 20X more voltage but that comes at the cost of 1/20th of the current.

The cartridge outputs current based on the load. Assuming a 10R load, the cartridge will output the same current whether or not a transformer is in place. If the 10 ohms is provided by terminating a 1:30 with a 9K resistance then all of the current output by the cartridge will travel through the transformer to the load. The other extreme of this is a situation where a 10 ohm resistor is placed on the primary side of the transformer and the secondary is left open. Then all of the current generated by the cartridge will traverse the 10 ohm resistor and virtually no current will traverse the transformer. This is of course makes lots of assumptions but will suffice for a simple first order model. As you add in the parasitics your model becomes more complex (and more accurate) but you still need to adhere to the concepts of the ideal.

dave
Hi Dave,
uff, let me try this. You are right that a higher output voltage (at the secondary) would come at the cost of a lower current --- IF you would not be able to DRAW more current through the cart coil, but you can. That is the WHOLE point.

As to the 47 ohm 'natural impedance' (on primary), I though to have said impedance! Sorry that was a typo, need an editor, methinks. Thanks for pointing it out.

The 10.18 ohms is also impedance since it is in parallel with the reflected secondary impedance of 47 ohm on primary, calculation as we know.

The next item is explained also by drawing more current, as I said on top. You are going into a 10.18 ohm impedance rather than some 100 to 47k! Take your pick, what ever your 'normal' loading would have been.

A cart is actually a 'floating' device, XLR floating, NO ground. So NOTHING is shunted to ground only +/- at least in one of the better scenarios.

>>> The other extreme of this is a situation where a 10 ohm resistor is placed on the primary side of the transformer and the secondary is left open. Then all of the current generated by the cartridge will traverse the 10 ohm resistor and virtually no current will traverse the transformer <<<
That is right on the money, next to nothing can then go through 47k pre-input-impedance...

Yes, and all the parasitic etc., of course but that is actually for the practical reason negligible.

The main point you are missing here is that 20 times the voltage i.e. 6.8mV instead of 0.3mV into 47k pre-input-impedance, WILL and DOES 'pull' more current on the primary side which has ONLY 10 ohm impedance! A virtual short circuit!!

Well, I could go on but let's see if that makes any sense now.
Greetings,
Axel
One more thing to help understand this concept: A cart is a GENERATOR! and not some fixed current source.
Axel
The main point you are missing here is that 20 times the voltage i.e. 6.8mV instead of 0.3mV into 47k pre-input-impedance, WILL and DOES 'pull' more current on the primary side which has ONLY 10 ohm impedance! A virtual short circuit!!

I'm sorry, No it doesn't. In order to not break the first law of thermodynamics, applying the load to the primary of the transformer while keeping a fixed load on the cartridge must DECREASE the current through the transformer.

Furthermore, If you want a 10 ohm load on the cartridge, you can do one of three things,

-10,000 ohms on the secondary of a 31.6:1
-13 ohms on the primary and 47K on the secondary
-dispense with the SUT altogether and place 13R in parallel with the 47K input resistor.

In all three of these situations will draw the same current from the cartridge.

From the transformer perspective, the secondary load will draw more current through the transformer.

the total "source impedance" for whatever is downstream of the 47K resistor is (assuming a 2.5R cart):

Primary load has a source impedance of 2000 ohms
secondary load has a source Z of 2000 ohms
the No SUT has a souce Z of 2 ohms.

dave
OK Dave,
if you would have ever worked with an SUT you'd give me less of a hard time.

I might misread what you try to tell me -- but it sounds like: bumble bees can't fly i.e. must be due also to the: "first law of thermodynamics"...

Please forgive my lack of stamina with all this, at least nobody can say we haven't tried. I will also not ask for a job as physics teacher either, now that I have so miserably failed with such a basic matter as a step-up transformer.

I feel like Galileo must have during inquisition trial: and say it still works...

I'm out of thermodynamics right now.
Greetings,
Axel
PS: your missing thermodynamics come from the rotation of the platter, that imparts energy into the cart, that imparts energy into the coil, that imparts.... don't go ask me now about why the platter is turning, please.