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Tampilkan postingan dengan label Power Amplifier. Tampilkan semua postingan

BIPOLAR POWER AMPLIFIER 600W CIRCUIT

BIPOLAR POWER AMPLIFIER 600W CIRCUIT
BIPOLAR POWER AMPLIFIER 600W CIRCUIT

Power amplifier delivers 600 watts into 8 ohms (bridge mono) or 300 watts into 4 ohms (stereo) -
ideal for clubs, churches, auditoriums and more.
Admission to the 600W bipolar amps is achieved via XLR or phone jack, and output is achieved through two Speakon-type connectors or terminals.the 600W bipolar has over 860 ground switches, user switchable clip limiters,
selectable high-pass filter, and the ability to distinguish between stereo, parallel and bridge modes to choose, so that the the 600W bipolar series amplifiers ideal for real applications.
Features:

Power Output: 300W @ 4 ohms stereo, 200W stereo @ 8 ohms
High-current toroidal transformers for greater power and low noise
Independent user-defeatable peak limiters reduce distortion
Selectable high pass filter at 30Hz or 50Hz
XLR and 1 / 4 “TRS input jacks
Binding Post and Speakon outputs?-Type
Front-mounted gain control for easy access
Signal and Peak LED indicators to monitor performance
Short circuit, thermal, subsonic, RF protection, output DC offset
Power on / off muting
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IC TDA1514A Audio Power Amplifier 50W


IC TDA1514A Audio Power Amplifier 50W circuit audio amplifiers for car, which use it only number Transistor Circuit of IC, simple Circuit (and Top Popula)
Use TDA1514A transistor at low cost. It best Idea Circuit.
It’s receive a handful of additional external device in comparison to the generic diagram. Remember that there’s a simple HF filter on input signal. This IC supports mute and stand-by modes. I have not built this one, so I have get no suggestions concerning practical construction.

Remark:
Supply Voltage = +/- 30V
Ur = 0-1V : Stand by
= 2-4.5V : Mute
= 6-7V : Play
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EL34 Tube Audio Power Amplifier

EL34 Tube Audio Power AmplifierEL34 Tube Audio Power Amplifier Circuit|Rangkaian



A classic design of the last 35 Watt amplifier, and 2 push-pull EL34, Siemens and Halske.

m100se-BtThe amplifier has been from 1954 to 1989, when it came out, except that the operation, the average activity for 15 hours a day. It is not present in damages in excess, in particular the replacement of the tubes, capacitors and resistors, caused by natural wear. The fundamental change came with the replacement of a provision of the tube, to restore diodes. There is only one problem, they try to produce the transformer cost, (it is valid for all pipe manufactured), one of the code is there and it will help. It may cost to replace traditional transformer suitable for EL34. Its products they need (it is the force responsible for all districts), sufficient experience and attention to the high voltage electric shock.
Tubes
For this project, I decided to use some of the EL34. Check out DrTube [0] for additional information. Offer good performance at a decent price.
The load of reflection allows KT88 instead of one, if not provided enought power.
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Amplifier Class AB-Amplifier Sederhana

30W Class AB amplifier

This amplifier has been simulated extensively, although I haven't built it yet. I am saving building this one for a time when I can spend good time building and making sure the wiring is going to be optimal. I am going to use this amp in a bi-amp situation with passive filters on the input. This will result in two amplifiers that amplify the highs and two amplifying the lows (for stereo) and thus I can achieve an effective power of 120W into each speaker.


If you want to do the same, you must design the filters yourself. I'm going to be using Celestion F20's which have a crossover frequency of 2500Hz, so that is where I'll set my design point.


This is the power supply I will use. It should do fine for four amps, but if not, double up on the capacitance. The earth circuit came from here: http://sound.westhost.com/project04.htm.

I previously used a Class A amplifier (11W or so) but the amp wasn't stable enough for me. It sounded incredible, but I think that the lack of stability could have caused damage to my speakers in the long term. This amp theoretically produced 24W (CXI), but in practice it produced 11, which is loud, but considering the heat dissipated and the cost of everything, it wasn't worth it for an amplifier as unstable as that. Now I will use a Class AB amplifier with the same heatsinks, output devices and transformer and I will achieve lots more power, although at the expense of no Class A amplifier.

To set the above amplifier up, set R1 to max and R12 to 0. After doing this successfully, power on the amplifier. Set R1 so that the measured output offset is between 30 and 100mV. Once set, adjust R12 slowly to achieve a quiescent current of around 120mA. Keep checking the quiescent current as the amp heats up as it might change due to voltage drop changes in the output devices caused by heat. The heatsinks should be 0.6K/W or less for two amplifiers. If all is well after a while, enjoy. These steps are extremely important! If R12 is too high, the output devices will be destroyed. If R1 is too high, the offset could damage your nice expensive speaker.

Q10 and Q11 are for short protection. If you want to trade the risk of ugly clipping for the risk of a destroyed amp, you can leave them out. This will probably be wise if the amps are built in. The short protection will probably not affect the sound of the amp, but it could at extreme power. Just know that touching the output leads could destroy the amp if these transistors are left out. I estimate that you could short the output for 1s or less, so don't overestimate the protection; act as though it weren't there.

Frequency response: 10Hz - 100kHz flat
THD: Should be completely inaudible
Gain: 30.37dB (660mV input for 30W into 8 ohms)

10-14W Class A amplifier

I have built this amplifier and it does sound good. It requires a preamp as it hasn't got much gain. It doesn't sound very good when it distorts, but one would learn what level of sound would cause clipping. 10W is more than it sounds... It really is enough for everyday use. Class A also does sound very good. This isn't the most efficient amplifier ever - quiescent current is 1.6A.



Now it is inefficient and it requires big heat sinks and a large transformer and a great power supply and careful wiring, but in the end it is extremely simple and it sounds very good. The zener diode rejects any ripple coming from the power supply, But you still only want a ripple of 10mV max. The ripple reaching the input is amplified, so the zener gets rid of that, but whatever ripple there is will still reach the power stage.

If you want to build this, you're going to need to find a good power supply design. As I said before, I have built it and I am very satisfied. This amplifier is ideal for a bi amped system as the high driver's amplifier. It is stable (as any amplifier should be), but this does mean something to me as many of my old designs have been unstable. This is by far the easiest and most stable amplifier I have ever built.

To set it up, set the 470k trimmer to maximum resistance. Measure the current into the amplifier and slowly set the resistance of the 470k pot until a reading of between 1.65 and 1.7A is obtained.

21W Class AB amplifier

I designed this amplifier because I need an instrument amplifier for monitoring my music when on stage, etc. I sucked 21W out of this little design. Previously I had a decent 10W amplifier (RED Free Circuits), but we blew that one somehow. Now I will put this into the old box. I haven't built it yet, but the simulations say it works as I designed. In this design, wiring is important due to no differential amplifier. I might need to add ripple rejection with a zener as in the above design.


It is a simple design, and simple to set up. Set the 10k trimmer to about half way and the 470 ohm trimmer to 0 resistance. Power up and set the quiescent current to 30mA by trimming the 470 ohm trimmer. Once done, measure the offset voltage. Trim the 10k so that between -30 and 30mV is measured. The amplifier should now be able to pump out just over 21W.

Use heat sinks that are bigger than you would normally use for 20W. If you don't want to do this, change the Darlington pair to a compound pair like this:

In fact this is probably better in all ways.

Here is the power supply...


Couldn't be simpler. If you put a switch on, then put it in series with the live wire.

Frequency response: 2Hz - 17kHz flat
THD: Once again, very low (I haven't measured it yet). It won't be audible
Gain: 29.87dB (600mV for 21W into 8 ohms)

The gain can be modified by changing the 100k feedback resistor to a 470k resistor and the 10k in series with the input to a 33k. This will increase the input impedance significantly and the new gain will be 21.58dB (~1.6V input for 21W into 8 ohms). This suits my application for the amp. Just remember that changing these resistors will change the output offset voltage, so if you're going to experiment by changing the feedback loop, do it with a cheap, single driver speaker if you're experimenting with a speaker connected. Also readjust the offset and quiescent current!
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MOSFET AMPLIFIER CLASS A

MOSFET AMPLIFIER CLASS A Physical


I was in my final 6 ages assignment appellation with an electronics aggregation as a trainee. Within this aggregation there are a few audiophiles who are tube lovers and absorb ample amounts of money on their audio equipment. My training administrator had begin Mark's Class A MOSFET Amplifier Activity and appropriate that I architecture a PCB and body this activity as allotment of my training. I followed the Class A MOSFET Amplifier Schematic with the afterward exceptions. Instead of the 2SK1058, I acclimated the 2SK2221 mosfet which I had on hand. I compared the datasheets of the 2SK1058 and the 2SK2221 and the differences amid the two were actual small. The added change was to use a 6800 uF capacitor on the achievement instead of a 4700 uF capacitor.
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