Monday, September 15, 2014

Stereo Power Amplifier Using IC 7905

79xx is a widely known series of low-cost, fixed-negative-voltage regulators. These integrated diagram are available with output current of 100-150 mA (L series), 0.4-0.5A (M series), up to 1A (standard series), etc. They can be used in many applications other than regulators, audio power amplifier being one of them.  As shown in the schema diagram, a simple stereo audio amplifier is built around two 7905 negative-voltage regulators (IC1 and IC2) and a few discrete components. The 7905 IC (a -5V regulator) used here is readily available. However, the schema will also work with other 79XX regulators if appropriate power supply is used. Both channels shown in the diagram are identical. Hence the description below is only for the first channel. The quality of the output signal is within acceptable limits. 

Circuit diagram :
Stereo-Power-Amplifier
Stereo Power Amplifier Circuit Diagram
 
Regulator IC 7905 works as an amplifier for the voltages applied to common pin2 (Ground or GND). The minimal voltage drop over the standard 7905 is around 2V and it depends on the output current. Feedback resistors in the IC set the gain of the channel internally. The amplifier is a class-A audio amplifier. The regulator IC produces the negative output signal. 

Resistor R3 provides the positive signal. It limits the maximum output current of the regulator during the negative half period of the amplified sinusoidal signal. The minimal applicable value of R3 for the regulator 7905 is 8.2 to 10 ohms per 5W.  Optimisation of the value of R3 depends on the output voltage of the regulator, negative power supply (–5V) and load resistance of loudspeaker (LS1). If the required output current for LS1 is below 100 mA, the value of resistor R3 can be 33 to 51 ohms per watt. 

Normally, the load resistance of the loudspeaker should be higher than of R3 in order to obtain a large peak-to-peak amplitude. But this can be neglected in order to obtain lower power dissipation on R3 and the IC. The schema works with any load resistance (R3 in parallel with LS1 as the load) under the condition that the regulator is not overloaded with current and power dissipation. However, it is preferable to use a loudspeaker with a high resistance (8 ohms, 16 ohms or more). The amplifier works well with low-impedance headphones having a resistance of 24 to 32 ohms. The voltage difference between the ground pin of 7905 and the output pin is fixed internally. 

The input resistance of the amplifier is relatively low and depends on potentiometer VR1 and input resistance of the ground pin. Practically, any stereo output capable of driving 24- or 32-ohm headphones and loudspeakers can drive the input of the stereo amplifier with 7905. If VR1 is removed, the amplifier will still work but there will be more distortion. Therefore potentiometer VR1 is used to provide sufficient variable audio signal.  The values of output capacitors C10 and C11 are usually between 0.1 µF and 1 µF. A small resistance can be connected in series with them if needed. S2 is the on/off switch. Switch S1 is for mono/stereo selection. When switch S1 is closed, the amplifier works as a two-way mono amplifier. If S1 is open, the amplifier works as a stereo amplifier. 

The schema is powered by a 12V battery. The positive terminal of the battery is the common node. The negative terminal is connected to pin 2 of IC1, which is the –12V supply line. The maximum operating voltage can be up to –35V. If no input signal is applied, the DC voltage on the output of the regulator 7905 should be around –5V, which depends to some extent on the value of VR1. The maximum output current of 7905 can be up to 1A and the maximum power dissipation is up to 15W. IC 7905 has internal thermal protection. 

Assemble the schema on a general-purpose PCB and enclose in a suitable cabinet. Fix the stereo female jack on the front panel and speaker to the rear side of the cabinet, and the 12V battery inside the cabinet. Fix LED1 and switches S1 and S2 too on the front panel of the cabinet. Mount the regulator IC 7905 on a heat-sink with thermal resistance below 15°C/W. The metallic part on the case is internally connected with the input pin of the regulator.

Author : Petre tzv. Petrov Sourced by: EFy
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Explanation Fuse Box Chevrolet Tracker 2001 Diagram

Fuse Box Chevrolet Tracker 2001 Diagram - This show you about Fuse Box Chevrolet Tracker 2001 Diagram.

Fuse Box Chevrolet Tracker 2001 Diagram



Fuse
Fuse

Fuse Panel Layout Diagram Parts: accessory power ooutlet, electronic fuel injecion system, headlamp, high beam indicator, heater, hazard lamp, rear combination lamp, dome light, horn, cigar lighter, radio, ignition coil, meter, wiper, washer, rear defroster, turn signal, back up lamp, anti lock brake system, all electrical loads, air conditioning.
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Stereo Tone Control circuit

This is stereo tone control schema based on IC LM1036. The schema should be works with supply voltage 9V to 15V DC.


Stereo



And here the diagram features:

  • Wide supply voltage range, 9V to 16V
  • Large volume control range, 75 dB typical
  • Tone control, ±15 dB typical
  • Channel separation, 75 dB typical
  • Low distortion, 0.06% typical for an input level of 0.3 Vrms
  • High signal to noise, 80 dB typical for an input level of 0.3 Vrms
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1997 Chevrolet Cavalier 2000 Engine Wiring Diagram

1997 Chevrolet Cavalier 2000 Engine Wiring Diagram
The part of 1997 Chevrolet Cavalier 2000 Engine Wiring Diagram: PCM, heater, ignition coil, injection, transaxle, throttle position sensor, engine coolant sensor, EGR vale, EVAP canister purge valve, engine coolant level, ignition control module, oxygen sensor, check engine lamp, intake air temperature sensor, electronic control module, connector, camshaft position sensor, air control module, cruise control, data link connector, solenoid, cooling fan relay, pressure control, fluid temp sensor, A/C pressure sensor, MAP sensor, fuel tank pressure sensor, A/C clutch relay, data link connector, cruise control, control motor, engine oil pressure sensor, brake switch.
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Sunday, September 14, 2014

Mercedes Explanation Fuse Box Year Benz 2001 SLK 320 Diagram

Fuse Box Mercedes-Benz 2001 SLK 320 Diagram - Below is Fuse Box Mercedes-Benz 2001 SLK 320 Diagram.

Fuse Box Mercedes-Benz 2001 SLK 320 Diagram



Fuse
Fuse

Fuse Panel Layout Diagram Parts: maxi fuse block, front of vehicle, fuse block (A, B, C)
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Cut Phone Line Detector


At present we can see most of people try to tap telephone line.So this is the schema to avoid that matter.If some one disconnect the line The unit which attach to the LOAD will operate






Parts:-

Q1 2N3904 Transistor or 2N2222

Q2 2N3906 Transistor


C1 0.47uF 250V Mylar Capicitor

Q3 IRF510 Power MOSFET

D1 1N914 Diode

R1, R2, R3 22 Meg 1/4 W Resistor

R4 2.2 Meg 1/4 W Resistor


MISC Wire, Phone Connectors, Circiut Board
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Proximity Detector Wiring diagram Schematic

This is the simple Proximity Detector Circuit Diagram. This proximity detector is constructed using an infrared diode detector. Infrared detector can be used in various equipment such as burglar alarms, touch free proximity switches for turning on a light, and solenoid-controlled valves for operating a water tap. Briefly, the schema consists of an infrared transmitter and an infra-red receiver (such as Siemens SFH506-38 used in TV sets).

  The transmitter part consists of two 555 timers (IC1 and IC2) wired in astable mode, as shown in the figure, for driving an infrared LED. A burst output of 38 kHz, modulated at 100 Hz, is required for the infrared detector to sense the trans mission; hence the setup as shown is required.  To save power, the duty cycle of the 38kHz astable multivibrator is maintained at 10 per cent.  The receiver part has an infrared detector comprising IC 555 (IC3), wired for operation in monostable mode, followed by pnp transistor T1. Upon reception of infrared signals, the 555 timer (mono) is turned  ‘on’ and it re-mains  ‘on’ as long as the infrared signals are being received.  
Circuit Diagram :
 
Proximity
Proximity Detector Circuit Diagram
 
When no more signals are received, the mono goes  ‘off’ after a few seconds (the delay depends on timing resistor-capacitor combination of R7-C5). The de-lay obtained using 470kilo-ohm resistor and 4.7µF capacitor is about 3 seconds. Unlike an ordinary mono, the capacitor in this mono is allowed to charge only when the reception of the signal has stopped, because of the pnp transistor T1 that shorts the charging capacitor as long as the output from IR receiver module is available (active low).  This setup can be used to detect proximity of an object moving by. Both transmitter and receiver can be mounted on a single breadboard/PCB, but care should be taken that infrared receiver is behind the infrared LED, so that the problem due to infrared leak-age is obviated.  

An object moving nearby actually reflects the infrared rays from the infrared LED. As the infrared receiver has a sensitivity angle of 60o, the IR rays are sensed within this lobe and the mono in the receiver section is triggered. This principle can be used to turn ‘on’ the light, using a relay, when a person comes nearby. The same automatically turns  ‘off’ after some time, as the person moves away. The sensitivity depends on the current limiting resistor in series with the infrared LED. It is ob-served that with in schema resistance of preset VR1 set at 20 ohms, the object at a distance of about 25 cms can be sensed.  This schema can be used for burglar alarms based on beam interruption, with the added advantage that the transmitter and receiver are housed in the same enclosure, avoiding any wiring problems.


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