A complete hi-fi preamp including tone controls (and with provision for PCB mounted pots) is something I have avoided, since the pots that are available in different parts of the world are not necessarily compatible. Due to demand, this project has been developed (along with a complete PCB) to fill the gap in the lineup available from ESP.
The preamp featured is very straightforward to make on the PCB, and has an innovative tone defeat function. Rather than completely disable the tone controls, they are massively de-sensitised, and when "defeated" have a maximum range as shown in Fig. 3 (below). This can be increased if desired, so you can have two tone control settings, one with the normal 10dB boost and cut, and the other with a very subtle 3dB boost and cut - this will be enough (surprisingly) for very minor adjustments such as you might need for day-to-day listening.
Otherwise, the design is fairly conventional, with the main advantage over other designs being that there are almost no wires to run. Source switching is done any way you like - I suggest a rotary switch at the rear of the enclosure, and an extension shaft to bring the shaft to the front. This results in the minimum of wiring, and reduces crosstalk from other active inputs.
Photo of Completed Revision-A Board
Note that the Rev-A board is slightly different from the Rev - circuitry shown here. The differences are not great, but you do need the info in the secure site to see where the various parts are located.
Description The input stage is configured as shown with a gain of 2 times (6dB), and also acts as a buffer for the tone control circuit. The tone control is a basic Baxandall type, but the addition of R117, 118 and 119 provide flexibility and easy reconfiguration that is not available with the traditional arrangement.
R119 is the tricky part in this circuit (which is unique, by the way - I have not seen this technique used before). As shown it is 100k, and this limits the tone control range to a sensible +/-10dB. To obtain more boost and cut, R119 (and R219) may be omitted altogether. Conversely, reducing the value will give a smaller range, with about 6dB at 20Hz, and 7.5dB at 20kHz with 22k.
Figure 1 - Input and Tone Controls
Figure 2 - Frequency Response (SW1 Open)
Figure 3 - Frequency Response (SW1 Closed)
Figure 4 - Balance, Volume and Output Stage
The final stage is inverting - this is to correct for the inversion in the tone controls, and brings the overall phase back to normal. Again, this stage runs with a nominal gain of 6dB, although this varies as the volume pot is adjusted. Lowest noise is obtained at a middle setting of VR4 - the general area where the pot will be used the most.
Where it is found that the gain is excessive, R114/214 can be reduced in value - with 15k resistors, gain of this stage will be reduced to unity (probably too low), and a sensible compromise would be 22k. It depends on the input sensivity of the power amplifier of course, so this is left up to the reader to determine after some initial tests. Additional holes are provided in the PCB to allow you to reduce the gain without having to remove the existing resistors should that be found necessary.
The final figure shows the opamp bypass components - ceramic 100nF caps and 10uF electros are used for RF stability as usual. These are essential, and especially so where high speed opamps are used.
Figure 5 - Supply Bypass Components
Construction Note that although shown using TL072 opamps, OPA2134 or anything else that suits your purposes may be used instead. I do not recommend using anything less than a TL072, even for the workshop or rumpus room, as there will be excessive noise and limited frequency response - this in turn limits the usefulness of the preamp.
The standard pinout for a dual opamp is shown on the
left. If the opamps are installed backwards, they will almost certainly
fail, so be careful. The suggested TL072 opamps will be quite satisfactory for most work, but if you prefer to use ultra low noise or wide bandwidth devices, that choice is yours. |
If the PCB is used, construction is a snap. As usual, all construction notes, Bill of Materials and recommended layouts will be available shortly. If you choose not to use the PCB, wiring is a little more challenging, since there are quite a few parts, and some wiring routing is reasonably critical if excessive crosstalk and oscillation is to be avoided.
All resistors should be metal film, and preferably 1% tolerance for best channel matching and noise performance. Likewise, the capacitors for the tone controls should be matched as closely as possible, using a capacitance meter. The pots are all linear, and for the PCB, you will need PCB mount 16mm pots, as these are reasonably common everywhere.
Power requirements are not critical, but the P05 power supply is recommended to maintain low noise. Power should be +/-12 to +/-15V, with the higher voltage giving the best headroom. As shown, it will be virtually impossible for any standard input signal to clip the input or tone control stages.
Finally, Figure 6 shows a fairly typical input switching system - nothing flash, but very functional. As mentioned above, a rotary switch at the rear of the case is recommended to minimise wiring and to make assembly as simple as possible.
Figure 6 - Input and Switching Suggestion
Source:http://sound.westhost.com/project97.htm
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