Saturday, September 21, 2013

Mosfet Amplifier with power output 400W

See figure below its power amplifier using transistor mosfet as amplifier.
Mosfet Amplifier with power output 400W
Mosfet Amplifier with power output 400W
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Friday, September 20, 2013

9 Volt Audio Power Amplifier

This is an audio amplifier to facilitate can be there used with a miniature 9 volt Battery Operated,Current draw on since insufficiently as 5 milliamps.And amplification up to 500 mW. Which is sufficient to spread out the sound from a sound almost or else the recording stroll guy vetoed to the minor speakers evidently.

9 Volt Audio Power Amplifier Circuit
9 Volt Audio Power Amplifier
Once entering the power supply 9-volt circuit IC1 total LM386 amplifier IC size is 300-800 mW, Depending on the power supply circuit with,This is from 4-15 volts. once upon a time entered into the input pin 3,The non inverting pin to amplifier non-return time.C1 resolve occur served remove out the clatter input to ground.And C2 increases the rate of amplifier,C2 is to add supplementary help.But if the C2 Too much distortion (the C2 must not exceed 100uF).The output of IC1 is out cold of the pin 5 through C4 coupling audio signals to better and DC blockade and not voted for to the spokesperson.on behalf of the audio portion bidding besides befall fed back through R2 and C3 to the above what is usual frequency response better.

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TransistorAmp software

TransistorAmp software for the design of transistor amplifiers .In this article I will try to gather a list with all the transistor amplifier design software that are free and educational. As you know, you can make the difference by sharing the links to missing resources from this list. With your help the list will grow larger and other electronics enthusiast and amateurs will find the tools to understand, design faster and better a transistor amplifier circuits that will work.

TransistorAmp is freeware and it helps design your individual transistor amplifier quick and easy. With TransistorAmp you are able to create your individual transistor amplifier with a few mouse clicks. TransistorAmp is a program for Microsoft Windows and runs under Windows 2000, Windows XP, Windows Vista and Windows 7.

Download Here
source: http://en.transistoramp.de/
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Wiring Diagram Fuse Saver

This
circuit will be particularly useful to those hobbyists who use a
‘breadboard’ to try out ideas and who also use a simple ‘home-made’ DC
power supply consisting of a transformer, rectifier, smoothing capacitor
and protective fuse, that is, one without over current protection! In
this circuit, the detecting element is resistor R6. Under normal
conditions, its voltage drop is not high enough to switch on transistor
T1.

The value of R6 can be altered to give a different cut-off
current, as determined by Ohm’s Law, if required. When a short circuit
occurs in the load, the voltage rises rapidly and T1 starts to conduct.
This draws in the relay, switching its contacts, which cuts off power
to the external circuit, and instead powers the relay coil directly,
latching it in this second state. The circuit remains in this state
until the primary power supply is switched off.

Capacitors C1 and
C2 hold enough charge (via D3, D4 and D6, which prevent the charge
from being lost to the rest of the circuit, whichever state it is in)
to keep T1 switched on and power the relay while it switches over, and
R2 and R4 provide slow discharge paths. LEDs D1 (red) and D5 (green)
indicate what state the circuit is in. Inductor L1 slows the inrush of
current when the circuit is switched on, which would otherwise cut off
the circuit immediately.


fuse saver circuit schematic

D2
and D7 provide the usual back-emf protection across the coils. In use,
the input of the circuit is connected to the main
transformer-rectifier-capacitor-fuse power supply via K1, and the output
is connected to the (experimental) load via K2. Note that the input
voltage must be a floating supply if Vout– is grounded via the load, as
Vin– and Vout– must not be connected together. Some consideration needs
to be given to a number of components.

First, the choice of
relay Re1. For the prototype, this was obtained from Maplin, part
number YX97F. This is has a coil resistance of 320 ?, which with R1
forms the collector load for T1. Its allowed pull-in voltage range is
nominally 9 V to 19 V, which limits the input power supply voltage to
between around 10 V to 30 V (DC only). R1 could be replaced by a wire
link for operation at input voltages below 10 V, or increased in value,
as determined by either the application of Ohm’s Law once more or
trial and error, for an input voltage above 30 V.

Coil L1 was
obtained from Farnell, part number 581-240. Finally, the protective
fuse for the input power supply should be a ‘slow-blow’ type; ‘fast’
fuses will rupture before the relay has time to switch. Also note that
this device is meant to save fuses, not replace them. A mains
transformer must always be fused if it is not designed to run safely,
i.e., without presenting a fire hazard, even if its output has a
continuous short-circuit fault.
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Thursday, September 19, 2013

Switching Mode Power Supply using STR

Switching Mode Power Supply  using STRSwitching Power supply circuit produces a voltage B + (dc voltage) needed television series taken from the net voltage household. G7 G7A chassis and power supply circuit using cool / cold in which the primary and the secondary power supply electrically separated so that the chassis can be directly connected to another device via an audio video terminal.

switcing power supply schematics
Switching power supply

This power supply circuit is a type SMPS (Switching Mode Power Supply) using mosfet transistor integrated circuit voltage controller in one IC package, namely STR-W6654. This IC will control the duty cycle of time off Vth2 Mosfet transistor to control the output voltage. Besides, the IC is also equipped with a safety circuit against overvoltage (OVP), overcurrent (OCP) and over temperature (TSD) circuit is working on 220V ac voltage with the input ac voltage range of 176V to 260V ac or known by the Wide range Regulators.

How to Work Series

Initial bias voltage dc pin6 IC801 obtained from an ac voltage through D811 and R817, in the beginning of this pin6 high input impedance, or simply need a current of about 100uA, if the voltage has reached the 10V, the IC will mendrive Mosfet transistor into On and transformer will generate stress induction through V1 , R819 and D816 making this pin6 voltage rises to 16V working voltage, and at this point impedance pin6 will shrink or current will increase to 30mA.

Voltage Stabilizer

Stabilizing the output voltage of the circuit is done by regulating the length of time off of the transistor current MOSFETs by using the feedback coupler photo released by the D807. And the D807 is controlled by the IC regulator IC802, IC is working based on the transformer secondary winding S2 (main output). Change IC802 PIN1 perceived stress will be informed on the photo coupler D807 and forwarded to the IC801 for correction.

Safety Over Voltage

In the event of errors / defects in the feedback path, the output voltage will rise out of control, but the series / IC801 has been equipped with a safety overvoltage, where pin6 IC801 can serve as a detection voltage, output voltage rises when the voltage V1 uncontrolled transformer also rises and via the R819, D816 IC801 pin voltage also rose, When the voltage reaches 34V in IC801 oscillator will stop / off switch and voltage pin6 will go down, and when the voltage reaches 7.5 V IC is going back to work and pin6 voltage rises again, if it again reaches 34V IC will die, so planes demikiian will be dead-alive, dead-alive.

Safety Flow / Cost More

The series is able to secure the power supply circuit to the flow or more load by detecting current flowing in the drain-source transistors MOSFETs. By placing a resistor R809, R835, and R811 on pin3 (source) and connected to pin7 (OCP), the more current or voltage drop on this resistor can be directly detected by a safety circuit overcurrent (OCP). In the event of overload or over current IC will stop for pin 6 voltage above 7.5V

Safety Over Temperature

IC STR-W6654 is also equipped with over temperature safety circuit (TSD). If an error occurs in the IC cooling load or metal, can cause uncontrolled temperature rise IC if IC exceeds 140 degrees then it will stop. The aircraft can live again when the voltage is below 7.5V pin6 (main switch is turned off) and the temperature has dropped below 140 degrees.

Stand-By Condition

With working characteristics pin6 tapped IC STR-W6654 especially voltage Latch Circuit Release Voltage (7.5V) the IC can be made to work on a very small load conditions (stand-by)

How it works series Stand-By

In normal conditions PIN1 UOC IC output is 5V (high) and on stand-by condition 0V (low). If the output of PIN1 UOC Low, Q852 off, Q857 is on, thus the input voltage to 10V PIN2 of IC 802 that will cause the output voltage to 52 volts IC801 PIN1. Thats due to the influence of input voltage PIN1 decreased from 26 V to 10V. so that the circuit feed back will inform you as there is more current. IC 801 IC801 stop temporarily until voltage falls below 7.5V pin6. After reaching 7.5V IC801 automatically revived. So this event will be repeated with certain intervals. The fall in line with all automatic 90V secondary circuit also fell, including PIN1 (V1) transformer. If the transformer voltage drop V1 also fell tentunnya pin6 IC801, IC801 will follow the working characteristics pin6.
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Police Lights Circuit with 555 and 4017 IC

This circuit uses a 555 timer which is setup to both runn in an Astable operating mode. This generates a continuous output via Pin 3 in the form of a square wave. When the timers output changes to a high state this triggers the a cycle on the 4017 4017 decade counter telling it to output the next sequential output high. The outputs of the 4017 are connected to the LEDs turning them on and off.

Police Lights Schematic
Police Lights Circuit Schematic

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Build an op amp with three Discrete Transistors

You can use three discrete transistors to build an operational amplifier with an open-loop gain greater than 1 million (Figure 1). You bias the output at approximately one-half the supply voltage using the combined voltage drops across zener diode D1, the emitter-base voltage of input transistor Q1, and the 1V drop across 1-MΩ feed-back resistor R2.
Build an op amp with three discrete transistors circuit diagram
Figure 1. This ac-coupled inverting op amp has an open-loop gain of 1 million. R1 and R2 set a closed-loop gain of −10.

Resistor R3 and capacitor C1 form a compensation network that prevents the circuit from oscillating. The values in the figure still provide a good square-wave response. The ratio of R2 to R1 determines the inverting gain, which is −10 in this example.

You can configure this op amp as an active filter or as an oscillator. It drives a load of 1 kΩ. The square-wave response is good at 10 kHz, and the output reduces by 3 dB at 50 kHz. Set the 50-Hz low-frequency response with the values of the input and the output capacitors. You can raise the high-frequency response by using faster transistors and doing careful layout. Link
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