Monday, August 25, 2014

Tiny Subwoofer Amplifier Circuit With UA741

 Tiny Subwoofer Amplifier Circuit With UA741



Sub-woofer schema for you take it to apply with your sound system or devices as the device is small and few electronic part. We provides completed PCB and component layout.

Mini
 Mini Subwoofer Top PCB

We use the IC dual operational amplifiers TL072 in this schema.

This subwoofer project is a subwoofer or a speaker to drive low frequencies, rank of 20 Hz to 150 Hz electronic schema diagram below shows in details of a schema and parts of the main amplifier UA741 for 22 watt in 4 ohm of car subwoofer driver and you can turn on VR50K for adjusted frequently of mini subwoofer .

The device is designed for an existing stereo amplifier, often requires adding another blow to the music of driving a subwoofer.
The amplifier uses BTL is a good and cheap ((Bridge Tied Load channels) 8-pin IC UA741 from Philips is now NXP Semiconductors, that may provide a small number of components and 22W at 4 ohm load voltage 12 volt car battery default.
Mini
 Mini Subwoofer Bottom Side

The mini subwoofer consists of several parts: the name of the potentiometer, dual-linear motion potentiometers, 1/4W resistors, capacitors, electrolytic 25V, 63V Polyester capacitors, 24 W BTL car radio RCA audio input amplifier and two speakers 4 ohm or 8 ohm woofers in isobaric parallel wiring.
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Build a Derived Center Channel Stereo System Circuit Digram

A simple method of deriving a center or third channel without the use of an extra transformer or amplifier, (a) 4- speakers are connected to 8- amplifier taps. 8 and 16- speakers connect to 16- taps, (b) By blending the inputs it is possible to cancel out undesired crosstalk. 

Derived Center-Channel Stereo System Circuit Digram
 
Derived
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Build a Home Alarm Loop Wiring diagram Schematic

Every one need security him home to day i share a article about house alarm. How to Build a Home Alarm Loop Circuit Diagram ? This is a simple loop alarm schema , This schema offers open and closed loop contacts (switches 1,2,3) that triggers the alarm ON and stays ON for 5 -10 minutes. The triggering delay (entrance/exit) is 27 seconds. This simple alarm schema Has also a cancel button for resetting the schema to stand-by mode again.It uses 4001 and 4011 gates and one NPN transistor who drives the siren.

Home Alarm Loop Circuit Diagram

Build

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2x110W AF power amplifier class AB 2 channels

Circuit Diagram:
2x110W  AF power amplifier class AB 2 channels

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Simple Configurable Power Supply Wiring diagram Schematic

The adjustable supply can easily be reconfigured by altering the value of V2 and beefing up some other components, as is necessary. The output voltage is given by Vnm = 1.25 (1 + R2!R^). R2 can be changed, as is necessary.


Configurable Power Supply Circuit Diagram

Configurable


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Sunday, August 24, 2014

Mini Alarm

This schema, enclosed in a small plastic box, can be placed into a bag or handbag. A small magnet is placed close to the reed switch and connected to the hand or the clothes of the person carrying the bag by means of a tiny cord. If the bag is snatched abruptly, the magnet looses its contact with the reed switch, SW1 opens, the schema starts oscillating and the loudspeaker emits a loud alarm sound. A complementary transistor-pair is wired as a high efficiency oscillator, directly driving a small loudspeaker. Low part-count and 3V battery supply allow a very compact construction.












Parts:

R1 = 330K
R2 = 100R
C1 = 10nF-63V
C2 = 100uF-25V
Q1 = BC547
Q2 = BC327
B1 = 3V Battery or Two AA Cells in Series
SW1 = Read Switch & Small Magnet
SPKR = 8R Loudspeaker (See Notes)






Notes:

* The loudspeaker can be any type; its dimensions are limited only by the box that will enclose it.
* An on-off switch is unnecessary because the stand-by current drawing is less than 20µA.
* Current consumption when the alarm is sounding is about 100mA.
* If the schema is used as anti-bag-snatching, SW1 can be replaced by a 3.5mm mono Jack socket and the magnet by a 3.5mm. Mono Jack plugs having its internal leads shorted. The Jack plug will be connected to the tiny cord etc.
* Do not supply this schema at voltages exceeding 4.5V: it will not work and Q2 could be damaged. In any case a 3V supply is the best compromise.

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Simple Electrification Unit

The Simple Electrification Unit schema is intended for carrying out harmless experiments with high-voltage pulses and functions in a similar way as an electrified fence generator. The p.r.f. (pulse repetition frequency) is determined by the time constant of network R1-C3 in the feedback loop of op amp IC1a: with values as specified, it is about 0.5 Hz. The stage following the op amp, IC1b, converts the rectangular signal into narrow pulses. Differentiating network R2-C4, in conjunction with the switching threshold of the Schmitt trigger inputs of IC1b, determines the pulse period, which here is about 1.5 ms. The output of IC1b is linked directly to the gate of thyristor THR1, so that this device is triggered by the pulses.

The requisite high voltage is generated with the aid of a small mains transformer, whose secondary winding is here used as the primary. This winding, in conjunction with C2, forms a resonant schema. Capacitor C3 is charged to the supply voltage (12 V) via R3.When a pulse output by IC1b triggers the thyristor, the capacitor is discharged via the secondary winding. The energy stored in the capacitor is, however, not lost, but is stored in the magnetic field produced by the transformer when current flows through it. When the capacitor is discharged, the current ceases, whereupon the magnetic field collapses. This induces a counter e.m.f. in the transformer winding which opposes the voltage earlier applied to the transformer.

Simple Electrification Unit Circuit diagram:


Simple
Simple Electrification Unit Circuit Diagram

This means that the direction of the current remains the same. However, capacitor C2 is now charged in the opposite sense, so that the potential across it is negative. When the magnetic field of the transformer has returned the stored energy to the capacitor, the direction of the current reverses, and the negatively charged capacitor is discharged via D1 and the secondary winding of the transformer. As soon as the capacitor begins to be discharged, there is no current through the thyristor, which therefore switches off. When C2 is discharged further, diode D1 is reverse-biased, so that the current loop to the transformer is broken, whereupon the capacitor is charged to 12 V again via R3. At the next pulse from IC1b, this process repeats itself.

Since the transformer after each discharge of the capacitor at its primary induces not only a primary, but also a secondary voltage, each triggering of the thyristor causes two closely spaced voltage pulses of opposite polarity. These induced voltages at the secondary, that is, the 230 V, winding, of the transformer are, owing to the higher turns ratio, much higher than those at the primary side and may reach several hundred volts. However, since the energy stored in capacitor C2 is relatively small (the current drain is only about 2 mA), the output voltage cannot harm man or animal. It is sufficient, however, to cause a clearly discernible muscle convulsion.

Author: P. Lay - Copyright: Elektor Electronics
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