

| C1, C3 | 2 | 10uF 35V Electrolytic Capacitor | |
| C2 | 1 | 1uF 35V Electrolytic Capacitor | |
| R1 | 1 | 0.1 Ohm 10W Resistor | |
| R2 | 1 | 27K 1/2W Resistor | |
| R3, R4 | 1 | 1K 1/4W Resistor | |
| R5 | 1 | 470K 1/4W Resistor | |
| R6 | 1 | 4.7K 1/2W Resistor | |
| R7 | 1 | 10K 1/4W Resistor | |
| D1, D2, D4 | 3 | 1N4004 Rectifier Diode | |
| D3 | 1 | 1N4744 15V 1 Watt Zener Diode | |
| U1 | 1 | LM358N Dual Op Amp IC | |
| Q1 | 1 | 2N3904 NPN Transistor | |
| K1 | 1 | Relay, 12VDC Coil, 120VAC 10A Contacts | |
| S1 | 1 | SPST Switch 120AVC, 10A | |
| MISC | 1 | Board, Wire, Socket For U1, Case, Mains Plug, Socket |





To get the voltage gain needed for a normal installation, the DoZ preamp can be used. Everyone who has built this circuit has commented on the exceptional sound quality, and it is ideally suited to this application.
Figure shows the modified version of the preamp, the output of which would be connected directly to R1 in the circuit. The quiescent output voltage is now set by VR1 in the preamp, and the voltage at the source of T1 should be set to 19.8V as shown in Figure 1 by means of VR1 - the voltage at the gate (preamp output) should be 4V higher, i.e. 23.8V. The DoZ preamp board is stereo, and can drive a pair of the power followers with ease. Q2 and Q3 should be fitted with small "flag" heat sinks to allow them to dissipate the increased power caused by the higher operating voltage.
As shown, the gain is 3.2, so it will require nearly 4V RMS input for full power. To change the gain, I suggest that R4 be changed to 3k3 to obtain a gain of 7.7 (17.7dB), which will give an input sensitivity of about 1.5V for maximum output. C3 will also need to be changed, and a value of 100uF will be more than adequate. I do not recommend that R4 be reduced to less than 2k7, which will give a gain of 9.15 (19.2dB). To maintain good low frequency response, C3 will need to be about 100uF, although even with 25uF, the low frequency response is maintained to 2Hz. Ideally, the input network should define the low frequency limit, so the higher value is recommended if R4 is reduced.
Unless a preamp is used in front of the amp, a pot will be needed at the input for gain control. 10k is fine here, and will not cause excessive loading on the source.
Low-Power Voltage Doubler Circuit Diagram
MIC2941 regulator has guaranteed 1.25A output

Overture Audio Power Amplifier Series Dual 20-Watt Audio Power Amplifier with Mute and Standby Modes
The LM1876 is a stereo audio amplifier capable of delivering typically 20W per channel of continuous average output power into a 4 or 8
load with less than 0.1% THD+N.
Each amplifier has an independent smooth transition fade-in/out mute and a power conserving standby mode which can be controlled by external logic.
The performance of the LM1876, utilizing its Self Peak Instantaneous Temperature (°Ke) (SPiKe™) protection circuitry, places it in a class above discrete and hybrid amplifiers by providing an inherently, dynamically protected Safe Operating Area (SOA). SPiKe protection means that these parts are safeguarded at the output against overvoltage, undervoltage, overloads, including thermal runaway and instantaneous temperature peaks.
Circuit Diagram
Dual 20-Watt Audio Power Amplifier Circuit Diagram
| Key Specification |
| THD+N at 1kHz at 2 x 15W continuous average | |
| output power into 4 | 0.1% (max) |
| THD+N at 1kHz at continuous average | |
| output power of 2 x 20W into 8 | 0.009% (typ) |
| Standby current: | 4.2mA (typ) |
Applications
Features