• WARNING: Tube/Valve amplifiers use potentially LETHAL HIGH VOLTAGES.
    Building, troubleshooting and testing of these amplifiers should only be
    performed by someone who is thoroughly familiar with
    the safety precautions around high voltages.

EL152 Single End Amplifier

You can increase the damping factor by connecting the cathode resistor with one end the secondary of the output transformer and grounding the other end. If connected correctly you get negative feedback resulting in both lower distortion and higher damping (and somewhat lesser sensitivity of course) connected wrongly sensitivity increases and/or oscillation will occur. In that case simply reverse the connections.
 
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You can increase the damping factor by connecting the cathode resistor with one end the secondary of the output transformer and grounding the other end
Using the circuit switches to set for no NFB or cathode NFB from the OPT secondary the Sim finds 5 db NFB
And the Damping Factor is about One. Much better than no NFB. 👍
 

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  • Test X.JPG
    Test X.JPG
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Impulse Testing
In these tests switches are operated by keys on the PC KB. Switch C selects Impulse or Sine Wave.
Switch X selects 4R or a speaker simulator load. Switch A selects VC to cathode FB. And switch Q open circuits the output.
With the speaker sim connected & driven by an impulse by switch Z at the amp front end we see a large resonance
on the speaker simulator. With the VC to cathode NFB the resonance is completely damped out. 👍
 

Attachments

  • Impulse Test A no NFB.JPG
    Impulse Test A no NFB.JPG
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  • Impulse Test B 5db Local NFB.JPG
    Impulse Test B 5db Local NFB.JPG
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  • Speaker Simulator 4R 6W.jpg
    Speaker Simulator 4R 6W.jpg
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Improving the EL152 12AU7 SE amp

The front end 12AU7 circuit needs some adjustment. For any common triode, D% increases as the load decreases. Refer to the distortion curve vs load resistance for the 6A3 triode. The curve is generic & applies to any common triode. In theory max output occurs when Rl is 2 rp. In practice the relation is more like when Rl is 2.5 rp. But distortion is high, better to select a load somewhat higher.

For this load the tube rp should be at the current it is operating at, not the figure we see on the front page of the data sheet. So for the 12AU7 the rp of 7.7K is while the tube is conducting 10.5 mA. In the modified circuit the tube will be conducting 6 mA, so rp becomes 9K. Curves covering that are at the top of p3 on the GE 12AU7 data.

On the modified circuit drawing a 33K plate load is now used. And 100K has been added to the following grid resister. The real AC plate load includes the following tubes grid resister in parallel. The actual load on the 12AU7 plate becomes ~25.8K. In the original cct the total of Rl was 8.16K. Far too low.

The simulation indicates a one volt input generates a 6W output. And the DF of the final stage remains the same unchanged, the 12AU7 is not inside the cathode NFB. 👍
 

Attachments

  • Test K.JPG
    Test K.JPG
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  • Half 12AU7 Operating Point.jpg
    Half 12AU7 Operating Point.jpg
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  • EL152 12AU7 Amp Drawing 150 dpi Adjusted.jpg
    EL152 12AU7 Amp Drawing 150 dpi Adjusted.jpg
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  • 12AU7 GE.pdf
    12AU7 GE.pdf
    435 KB · Views: 65
  • 6A3 Triode Distortion.jpg
    6A3 Triode Distortion.jpg
    21.9 KB · Views: 128
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Impulse Testing
In these tests switches are operated by keys on the PC KB. Switch C selects Impulse or Sine Wave.
Switch X selects 4R or a speaker simulator load. Switch A selects VC to cathode FB. And switch Q open circuits the output.
With the speaker sim connected & driven by an impulse by switch Z at the amp front end we see a large resonance
on the speaker simulator. With the VC to cathode NFB the resonance is completely damped out. 👍
Now THD is good although power is not full rated.
 

Attachments

  • F8285ED9-AA34-4387-8B5F-FCED1250A8D0.jpeg
    F8285ED9-AA34-4387-8B5F-FCED1250A8D0.jpeg
    216 KB · Views: 63