Symmetric Output for USB Audio DAC

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This simple adapter circuit is specially intended for use with the USB Audio DAC published in this website elsewhere. With an easily implemented modification, it is possible to make the output of the D/A converter pseudo-symmetric, so that it can be connected to professional equipment having XLR line inputs. This will do even more justice to the high quality of the USB Audio DAC. The modification actually amounts to just adding a single resistor (R11a) and changing the value of the existing resistor at the output of the audio DAC (R11) from 100 Ωto 68Ω. Components C14 and R12 remain unchanged. It is not difficult to make this change on the printed circuit board of the audio DAC, but a bit of improvisation is necessary. After replacing R11 with a 68-Ω version, unsolder R12 and connect R11a in series with it. Bring out the junction of these two resistors to act as the signal return connection (pin 3 of the XLR socket). The same operation must also be carried out on the right channel, where the affected resistors are labelled R16, R16a and R17.

Symmetric Output for USB Audio DAC circuit diagram
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Monitor Life Extender

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This circuit was designed to protect a computer monitor from overheating. It is recommended to attach this circuit to power users’ monitors! Most computer monitors of the CRT type fail owing to over-heating. After one or two hours of use, the rear of a monitor may become as hot as 45 degrees C, or 20 degrees above ambient temperature. Most heat comes from the VGA gun drivers, the horizontal circuit, vertical circuit and power supply. The best possible way to extract heat and so prolong monitor life (and save the environment) is to add a brushless fan, which is lighter, energy-wiser and more efficient than a normal fan.

In the diagram, diodes D2, D3 and D4 sense the monitor’s temperature. These diodes have a total negative temperature coefficient of 6 mV per degree Celsius. To eliminate noise, shielded wire should be used for the connection of the temperature sensor to the circuit sensor. The +12-V supply voltage is borrowed from the computer’s power supply. Alternatively, a mains adapter with an output of 12 VDC may be used. C1 and C2 are decoupling capacitors to eliminate the ripple developed by switching or oscillation. R1 provides bias current to D1, a 6-V zener diode acting as a reference on the non-inverting pin of opamp IC2.B.

IC1, a ‘precision shunt regulator’ raises the sensor diodes’ voltage to just over 6 V depending on the adjustment of P1. C4 is the decoupling capacitor with the sensor network. Integrator network R4-C5 provides a delay of about 3 seconds, transforming the on/off output signal of IC2.B into an exponentially decreasing or increasing voltage. This voltage is fed to pin 3 of the second opamp, IC2.A. The hard on/off technique would produce a good amount of noise whenever the load is switched, hence an alternative had to be found. IC3, a TLC555, is used as an astable multivibrator with R5 and C6 controlling the charging network that creates a sawtooth voltage with a frequency of about 170 Hz.

Circuit diagram:

monitor-life-xtender-circuit-diagramw

Monitor Life Extender Circuit Diagram


This sawtooth is coupled to pin 2 of IC2.A, which compares the two voltages at its input pins and produces a PWM (pulsewidth modulated) output voltage. The sawtooth wave is essential to the PWM signal fed to power output driver T1 by way of stopper resistor R6. The power FET will switch the fan on and off fan according to the PWM drive signal. The back emf pulses that occur when T1 switches on and off are clamped by a high-speed diode, D7. Initially, turn P1 to maximum resistance.

Blow hot air from a hair dryer onto the sensor-diodes for a minute or so, then get the temperature meter near the sensor diodes and adjust P1 slowly towards the minimum resistance position with a digital meter hooked up on pin 7 of IC2.B. Roughly calibrate the temperature to 40 degrees C. At this temperature, the meter will show approximately 12 V. The circuit will draw about 120 mA from its 12-V supply.

Author: Myo Min - Copyright: Elektor July-August 2004

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Wiring Assistance Auto Testing Series

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Vehicle Wiring Products on Trac Vehicle Wiring Kit   Trac Outdoor Products T10135   Iboats
Trac Vehicle Wiring Kit Trac Outdoor Products T10135 Iboats.


Vehicle Wiring Products on Vehicle Wiring Kit By Hoppy   Part  40955
Vehicle Wiring Kit By Hoppy Part 40955.


Vehicle Wiring Products on This Wiring Harness Connects The Wrangler To The Towing Vehicle S 7
This Wiring Harness Connects The Wrangler To The Towing Vehicle S 7.


Vehicle Wiring Products on Figure 11  Wiring Diagram
Figure 11 Wiring Diagram.


Vehicle Wiring Products on Rapidly Tensions Cable Ties Then Automatically
Rapidly Tensions Cable Ties Then Automatically.


Vehicle Wiring Products on Vwp   Battery Clamps
Vwp Battery Clamps.


Vehicle Wiring Products on Ref  Exp1    0 00 Each
Ref Exp1 0 00 Each.


Vehicle Wiring Products on Jeep Cherokee Injector Wiring
Jeep Cherokee Injector Wiring.


Vehicle Wiring Products on Vehicle Wiring Kit By Hoppy   Part  40405
Vehicle Wiring Kit By Hoppy Part 40405.


Vehicle Wiring Products on Wiring Assistance Kit Auto Testing Series
Wiring Assistance Kit Auto Testing Series.


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Emergency Lamp using IC 555

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Emergency Lamp using IC 555
Emergency Lamp With 555 is one solution for lighting during power outages. With Emergency Lamp Series 555 uses a 12VDC voltage source that can be supplied from the 12V battery. Emergency Lamp 555 Series With these very simple and easy to make because all the components easily available in the market.

Emergency Lamp Series With this 555 can turn on the light 5W-10W. The circuit is built with an astable multivibrator with the IC 555 that is used to mendrive transformer through Q1. For more details can be viewed directly from the series Emergency Lamp With 555 follows.

schematic emergency lamp
Emergency Lamp Using TLC555

Working frequency range of 555 Emergency Lamp With this set of configurations R1, R2 and C2. T1 in series Emergency Lamp With 10V 500mA 555 is a transformer. Secondary part (0-10V) is connected to the Q1 to be given the signal from the multivibrator. Then the primary (0-220V) is connected to the lamp.
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6 18 Volt audio power amplifier

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audio power amplifier circuit
This time I will post about the audio amplifier based on IC KA2204. In an audio amplifier circuit has a power output that can also be referred to as a low-grade resources that have only 6 Watts output with 4 Ohm impedance. Frequency response 30 Hz to 18 kHz . For the scheme can be seen below.





Supply voltage and a maximum of at least 6 Volt to 18 Volt
Supply voltage and a maximum of at least 6 Volt to 18 Volt

Part List
R1 =  56R
C1 = 1uF
C2 = 220uF
C3 = 100uF
C4 = 47uF
C5 = 1000uF
C6 = 100nF
C7 = 470pF
C8 = 22pF
C9 = 47uF
C10 = 47pF



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2004 Chevrolet Corvette Coupe 350 Wiring Diagram

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2004 Chevrolet Corvette Coupe 350  Wiring Diagram


The Part of 2004 Chevrolet Corvette Coupe 350  Wiring Diagram:power distribution, fuse block, turn
signal, switch signal, ctrl module, panel cluster, power distribution schematic, multifunction turn signal lever, underhood fuse block, cruise control switch, powertrain control module, serial data, sedel data secondary, throttle actuator control module, instrument panel cluster, powertrain control module.

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Classification Transistor Amplifier

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A transistor amplifier must have a DC biasing circuit for several reasons. Especially, we will need two separate voltage supply to provide the desired class bias voltage to the emitter-collector and emitter-base. In fact it is actually only done in certain applications, but found that biasing voltage can be obtained separately from a single supply. Second, the transistor is very sensitive to temperature and creates a condition called thermal runaway. Thermal runaway will quickly destroy the bipolar transistor, because the collector current out of control quickly and will improve to the level of damage and the temperature will rise if there is no stabilizing the temperature at the amplifier to eliminate this effect.

A common class for refractive surgery is a Class A, AB, B, and C. All of these classes use the same arrangement of the components to her on the operation of the DC bias transistor Q-point or different.

Classification Transistor Amplifier
Location of the variation bias point Q for different amplifier classes

Class A bias on the amplified signal current flows in the form of a full circle, 3600 so that the output signal never reaches saturation or cutoff, so stay on the operation of the linear parameter. The output represents the strengthening of the similarity of the input signal accurately. Because of low efficiency, this class is typically used only for small signal (small-signal) which is not power applications, especially as a low distortion linear amplifier in the RF and IF. Reduction in efficiency occurs because of the DC power needed over time with or without the RF input signal to generate a constant current always flows through through this amplifier.

Class AB bias is obtained by lowering a little Q-point on the amplifier. Efficiency is slightly higher than Class A due to the static output current (Ic) flowing through the amplifier will be smaller and its shape is not a full circle, usually 3000 for power amplifier applications. But the single-ended power amplifier class AB will produce more distortion than Class A because of the clipping on the output. Class AB is also a common bias for push-pull audio power amplifier and linear RF power amplifier is a push-pull

Class B has a very high level of efficiency. Currently there is no input signal, the power dissipation that occurs close to zero. This is because almost no collector current flows, because the bias is reduced to cope with the slightest connection (junction) 0.6 V base-emitter junction. The output signal is close to 1800 in which this condition occurs because the RF signal is a half circle forward bias on the basis of the semi-circle while the other is the reverse bias on the emitter-base, causing a reduction in output signal.

Class C amplifiers are even more efficient than Class B because it only consumes less leakage current when no RF input signal. When the input signal is given, the class C amplifier will be strengthened less than a half circle and will only supply a pulse at its output terminal. Konduksinya angle of 1200 or less because of the connection (junction) emitter-base reversed a bit of bias
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