Showing posts with label AMPLIFIER. Show all posts
Showing posts with label AMPLIFIER. Show all posts
Sunday, May 5, 2013
SRPP Headphone Amplifier Circuit Diagram
Mention valve amplifiers and many designers go depressive instantly over the thought of a suitable output transformer. The part will be in the history books forever as esoteric, bulky and expensive because, it says, it is designed and manufactured for a specific valve constellation and output power. There exist thick books on valve output transformers, as well as gurus lecturing on them and winding them by hand. However, with some concessions to distortion (but keeping a lot of money in your pocket) a circuit configuration known as SRPP (series regulated push-pull) allows a low-power valve amplifier to be built that does not require the infamous output transformer. SRPP is normally used for preamplifier stages only, employing two triodes in what looks like a cascade arrangement.
SRPP Headphone Amplifier Circuit Diagram
SRPP Headphone Amplifier Circuit Diagram
Here we propose the use of two EL84 (6BQ5) power pentodes in triode SRPP configuration. The reasons for using the EL84 (6CA5) are mainly that it’s cheap, widely available and forgiving of the odd overload condition. Here, two of these valves are SRPP’d into an amplifier that’s sure to reproduce that ‘warm thermionic sound’ so much in demand these days.
Before describing the circuit operation, it must be mentioned that construction of this circuit must not be attempted unless you have experience in working with valves at high voltages, or can rely on the advice and assistance of an ‘old hand’. As a safety measure, two anti-series connected zener diodes are f it ted at the amplifier output. These devices protect the output (i.e. your head-phones and ears) against possibly dangerous voltages at switch-on,or when output capacitor C3 breaks down.
The power supply is dimensioned for two channels, i.e. a stereo version of the amplifier. The values in brackets are for Elektor readers on 120 VAC power. Note the doubled values of fuses F1 and F3 in the AC primary circuits. The PSU is a conventional design, possibly with the exception of the 6.3 V heater voltage being raised to a level of about +80 V through voltage divider R7-R8. This is done to prevent exceeding the maximum cathode-heater voltage specified for the EL84 (6CA5). R6 is a bleeder resistor emptying the reservoir capacitors C8 and C9 in a quick but control-led manner when the amplifier is switched off. Rectifier diodes D3–D6 each have an anti-rattle capacitor across them.
In the amplifier, assuming the valves used have roughly the same emission, the half-voltage level of about +145 V exists at the junction of the anode of V1 and the control grid of V2. The SRPP is no exception to the rule that high quality, (preferably) new capacitors are essential not just for reproducibility and sound fidelity, but also for safety.
Before describing the circuit operation, it must be mentioned that construction of this circuit must not be attempted unless you have experience in working with valves at high voltages, or can rely on the advice and assistance of an ‘old hand’. As a safety measure, two anti-series connected zener diodes are f it ted at the amplifier output. These devices protect the output (i.e. your head-phones and ears) against possibly dangerous voltages at switch-on,or when output capacitor C3 breaks down.
The power supply is dimensioned for two channels, i.e. a stereo version of the amplifier. The values in brackets are for Elektor readers on 120 VAC power. Note the doubled values of fuses F1 and F3 in the AC primary circuits. The PSU is a conventional design, possibly with the exception of the 6.3 V heater voltage being raised to a level of about +80 V through voltage divider R7-R8. This is done to prevent exceeding the maximum cathode-heater voltage specified for the EL84 (6CA5). R6 is a bleeder resistor emptying the reservoir capacitors C8 and C9 in a quick but control-led manner when the amplifier is switched off. Rectifier diodes D3–D6 each have an anti-rattle capacitor across them.
In the amplifier, assuming the valves used have roughly the same emission, the half-voltage level of about +145 V exists at the junction of the anode of V1 and the control grid of V2. The SRPP is no exception to the rule that high quality, (preferably) new capacitors are essential not just for reproducibility and sound fidelity, but also for safety.
Sunday, November 20, 2011
25W AUDIO AMPLIFIER MOSFET IRF530-IRF9530 ELECTRONIC DIAGRAM
25W AUDIO AMPLIFIER MOSFET IRF530-IRF9530 ELECTRONIC DIAGRAM
Adjust R11 to set quiescent current at 100mA (best measured with an Avo-meter connected in series to Q8 Drain) with no input signal.
A correct grounding is very important to eliminate hum and ground loops. Connect to the same point the ground sides of R1, R4, R9, C3 to C8. Connect C11 to output ground. Then connect separately the input and output grounds to power supply ground.
20W CLASS-A POWER AMPLIFIER ELECTRONIC DIAGRAM
20W CLASS-A POWER AMPLIFIER ELECTRONIC DIAGRAM
The 0.25 Ohm resistor should cause little grief (4 x 1 Ohm 1W resistors in parallel), but some experimentation may be needed here, since the base-emitter voltage of the BC549 determines the current. This circuit works by using the BC549 to steal any excess base current from the compound pair. As soon as the voltage across the 0.25 Ohm resistor exceeds 0.65V, the transistor turns on and achieves balance virtually instantly.
The 1k trimpot in the collector of the first LTP transistor allows the DC offset to be adjusted. The nominal value is around 400 ohms, but making it variable allows you to set the output DC offset to within a few mV of zero.
Labels:
AMPLIFIER,
POWER AMPLIFIER,
POWER AMPLIFIER CIRCUIT,
POWER AMPLIFIER DIAGRAM,
POWER AMPLIFIER MANUAL,
POWER AMPLIFIER SCHEMATIC,
RANGKAIAN POWER AMPLIFIER,
SKEMA POWER AMPLIFIER
14W AUDIO AMPLIFIER TDA2030 ELECTRONIC DIAGRAM
14W AUDIO AMPLIFIER TDA2030 ELECTRONIC DIAGRAM
The values of R5 and C8 are worked out from the equations in the datasheet, but I used 1.8k ohm for R5 and 220pF for C8 and they work fine. Diodes should be 1N4001 or similar (make sure you solder them in the right way round).
A good heatsink is important and this should be a large size with good thermal conductivity. When you operate the TDA2030 from the (recommended) split rail power supply, you must insulate the device from the heatsink using a mica washer or similar. With single rail supply, this is not needed.
14W CLASS A AMPLIFIER USING 2N3055 ELECTRONIC DIAGRAM
14W CLASS A AMPLIFIER USING 2N3055 ELECTRONIC DIAGRAM
Why Class A ? Because , when biased to class A, the transistors are always turned on, always ready to respond instantaneously to an input signal. Class B and Class AB output stages require a microsecond or more to turn on. The Class A operation permits cleaner operation under the high-current slewing conditions that occur when transient audio signal are fed difficult loads. His amplifier is basically simple, as can be seen from the block diagram.
Labels:
2N3055,
2N3055 CIRCUIT,
2N3055 DIAGRAM,
2N3055 SCHEMATIC,
AMPLIFIER,
AMPLIFIER 14W,
AMPLIFIER 2N3055,
AMPLIFIER CLASS A,
RANGKAIAN 2N3055
12 V AUDIO AMPLIFIER WITH TRANSISTOR ELECTRONIC DIAGRAM
12 V AUDIO AMPLIFIER WITH TRANSISTOR ELECTRONIC DIAGRAM
List Component
- P1_____________10K Log.Potentiometer
- R1,R2__________33K 1/4W Resistors
- R3_____________33R 1/4W Resistor
- R4_____________15K 1/4W Resistor
- R5,R6___________1K 1/4W Resistors
- R7____________680R 1/4W Resistor
- R8____________120R 1/2W Resistor
- R9____________100R 1/2W Trimmer Cermet
- C1,C2__________10µF 63V Electrolytic Capacitors
- C3____________100µF 25V Electrolytic Capacitor
- C4,C7_________470µF 25V Electrolytic Capacitors
- C5_____________47pF 63V Ceramic Capacitor
- C6____________220nF 63V Polyester Capacitor
- C8___________1000µF 25V Electrolytic Capacitor
- D1___________1N4148 75V 150mA Diode
- Q1____________BC560C 45V 100mA PNP Low noise High gain Transistor
- Q2____________BC337 45V 800mA NPN Transistor
- Q3____________TIP31A 60V 4A NPN Transistor
- Q4 ___________TIP32A 60V 4A PNP Transistor
- SW1___________SPST switch
Labels:
AMPLIFIER,
AUDIO,
AUDIO AMPLIFIER,
RANGKAIAN TRANSISTOR,
TRANSISTOR,
TRANSISTOR CIRCUIT,
TRANSISTOR DIAGRAM,
TRANSISTOR SCHEMATIC
12 V AUDIO AMPLIVIER IC TDA7222AP ELECTRONIC DIAGRAM
12 V AUDIO AMPLIVIER IC TDA7222AP ELECTRONIC DIAGRAM
Use 12V DC for powering the circuit. The IC must be heatsinked. Speaker can be a 4 ohms one.For optimum performance input and output must be separately grounded.
Pin Name Description
1 Vcc Supply Voltage
2 RR Ripple Reject
3 MC Muting control
4 OP AF Signal Input
5 FB FB Filter
6 GA Gain adjust
7 GND Ground
8 GND Ground
9 OP AF Output
10 BS BootStrap
Labels:
AMPLIFIER,
AMPLIFIER 12V,
AMPLIFIER AP,
AMPLIFIER IC,
AMPLIFIER TDA,
AMPLIVIER,
AMPLIVIER CIRCUIT,
AMPLIVIER DIAGRAM,
AMPLIVIER SCHEMATIC,
RANGKAIAN AMPLIVIER
Thursday, November 3, 2011
10W AUDIO AMPLIFIER WITH BASS-BOOST ELECTRONIC DIAGRAM
10W AUDIO AMPLIFIER WITH BASS-BOOST ELECTRONIC DIAGRAM
Adjust the volume control on the minimum and R3 position with a minimum value of resistance as well. try to switch the circuit set in R3 to read the flow of about 20 to 25mA. Wait for 15 minutes, connect the ground of A1, P1, C2, C3dan C4. Connect the output also C9 ground
List Component
- P1 : 22K Log Potemsiometer (Dual gang for stereo)
- C3, 4 : 470uF/25V
- P2 : 100K Log Potemsiometer (Dual gang for stereo)
- C6 : 47pF 63V ceramic ar polyester capasitor
- R2, 4, 8 : 820R 1/4W
- C7 : 10nF 63V polyester capasitor
- R1 : 4K7 1/4W
- C9 : 100nF 63V polyester capasitor
- R3 : 500R 1/2W
- D1 : 1N4148 75V 150mA Diode
- R5 : 82K 1/4W
- IC 1 : NE5532 Low noise Dual Op-amp
- R6, 7 : 47K 1/4W
- Q1 : BC547B 45V 100mA NPN Transitor
- R9 : 10R 1/2W
- Q2 : BC557B 45V 100mA PNP Transitor
- R10 : 0,22 4W(wirewound)
- Q3 : TIP42A 60V 6A PNP Transistor
- C1, 8 : 470nF 63V polyester capasitor
- Q4 : TIP41A 60V 6A NPN Transistor
- C2, 5 : 100uF/25V J1 : RCA audio input socket
Labels:
AMPLIFIER,
AMPLIFIER 10W,
AUDIO AMPLIFIER,
BOOSTER,
BOOSTER CIRCUIT,
BOOSTER DIAGRAM,
BOOSTER SCHEMATIC,
RANGKAIAN BOOSTER
9V HEADPHONE AMPLIFIER NE5534 ELECTRONIC DIAGRAM
9V HEADPHONE AMPLIFIER NE5534 ELECTRONIC DIAGRAM
I have Used it with Sennheiser 465s and achieved ear-splitting volume. The amplifier is ideal as a booster for power-conserving stereo sources Such as portable CD players and for interfacing with passive EQ networks Such as tone controls or a headphone acoustic simulator.
Labels:
AMPLIFIER,
AMPLIFIER 9V,
HEADPHONE,
HEADPHONE CIRCUIT,
HEADPHONE DIAGRAM,
HEADPHONE SCHEMATIC,
RANGKAIAN HEADPHONE,
SKEMA HEADPHONE
4x25W CAR AMPLIFIER TDA7381 ELECTRONIC DIAGRAM
4x25W CAR AMPLIFIER TDA7381 ELECTRONIC DIAGRAM
The extremely reduced components count allows very compact sets. The on-board clipping detector simplifies gain compression operations. The fault diagnostics makes it possible to detect mistakes during Car- Radio assembly and wiring in the car.
Absolute maximum ratings of IC TDA7295 IC
- Operating supply voltage = 18 V
- DC supply voltage = 28 V
- Peak supply voltage (t = 50 ms) = 50 V
- Output peak current Repetitive (duty cycle 10 % at f = 10 Hz) = 3 A
- Output peak current Non repetitive (t = 100 µs) = 4A
- Power dissipation, (Tcase = 70 °C) = 80 W
- Junction temperature = 150 °C
- Storage temperature = -40 to 150 °C
Labels:
AMPLIFIER,
AMPLIFIER 25W,
AMPLIFIER 4W,
CAR,
CAR AMPLIFIER,
CAR AMPLIFIER CIRCUIT,
CAR AMPLIFIER DIAGRAM,
CAR AMPLIFIER SCHEMATIC,
RANGKAIAN CAR AMPLIFIER
3V - 6V MINI AUDIO AMPLIFIER ELECTRONIC DIAGRAM
3V - 6V MINI AUDIO AMPLIFIER ELECTRONIC DIAGRAM
IC TDA7052 is a mono output amplifier in 8-comng Head DI package (DIP). The device is designed primarily for battery-operated portable audio circuits. Features include TDA 7052, no external components needed, no switch-on or switch-off button sounds great overall stability and very low power consumption (quiescent current of 4 mA), low THD, it is not necessary any cooler and short-circuit proof.
Profit TDA 7052 is set internally at 40 dB. . Compensate for the reduction of output power due to low voltage TDA7052 uses Bridge-Tied-Load principle
(BTL), which can provide power about 1 to 2 W RMS (THD = 10%), 8 ohm load to the power supply 6 V.
0,5 WATT MINI AMPLIFIER TDA1015T ELECTRONIC DIAGRAM
0,5 WATT MINI AMPLIFIER TDA1015T ELECTRONIC DIAGRAM
Chances are you'll want this amplifier portable. Batteries do the trick fine, but you won't get much power out of a couple of 1.5V cells. Unfortunately the size of a decent amount of battery power will mean that the overall size of this amp will be much bigger and for that there are more benefits to be had using a device like the TDA7052 or TDA2822 for stereo.
Quick ref data of TDA1015T Chip
- Supply voltage range: 3,6 to 12 V
- Peak output current: 1 A
- Output power: 0,5 W
- Voltage gain power amplifier: 29 dB
- Voltage gain preamplifier: 23 dB
- Total quiescent current: 22 mA
- Operating ambient temperature range: -25 to +150 °C
- Storage temperature range: -55 to + 150 °C
Labels:
5W,
AMPLIFIER,
AMPLIFIER 0,
AMPLIFIER ELECTRONIC,
AMPLIFIER TDA,
MINI AMPLIFIER,
MINI AMPLIFIER CIRCUIT,
MINI AMPLIFIER DIAGRAM,
MINI AMPLIFIER SCHEMATIC,
RANGKAIAN MINI AMPLIFIER
Friday, October 28, 2011
LMC7101 - LMC7101Q TINY AMPLIFIER WITH RAIL-TO-RAIL INPUT-OUTPUT ELECTRONIC DIAGRAM
LMC7101 - LMC7101Q TINY AMPLIFIER WITH RAIL-TO-RAIL INPUT-OUTPUT ELECTRONIC DIAGRAM
The performance is similar to a single amplifier of the LMC6482/LMC6484 type, with rail-to-rail input and output, high open loop gain, low distortion, and low supply currents. The main benefits of the Tiny package are most apparent in small portable electronic devices, such as mobile phones, pagers, notebook computers, personal digital assistants, and PCMCIA cards.
Labels:
AMPLIFIER,
LMC7101,
LMC7101 CIRCUIT,
LMC7101 DIAGRAM,
LMC7101 SCHEMATIC,
RANGKAIAN LMC7101,
SKEMA LMC7101
Thursday, October 27, 2011
OPERATIONAL AMPLIFIER OP-AMP OSCILLATOR ELECTRONIC CIRCUIT
OPERATIONAL AMPLIFIER OP-AMP OSCILLATOR ELECTRONIC CIRCUIT
Timing capacitor (C1) produces several times constants which is used to allow large voltage swings on the input due to the LM101's large input voltage range. The R2 should be reduced and the C1 should be increased to keep from exceeding these ratings. The smaller polarized capacitors is still used by returning them to positive supply voltage instead of ground, even though C1 requires the large values.
Monday, October 10, 2011
MINI AUDIO AMPLIFIER ELECTRONIC CIRCUIT DIAGRAM
MINI AUDIO AMPLIFIER ELECTRONIC CIRCUIT DIAGRAM
The 8k2 across the 47u sets the emitter voltage on the BC 547 and this turns it on. The collector is directly connected to the base of a BC 557, called the driver transistor. Both these transistors are now turned on and the output of the BC 557 causes current to flow through the 1k and 470R resistors so that the voltage developed across each resistor turns on the two output transistors. The end result is mid-rail voltage on the join of the two emitters. The two most critical components are 8k2 between the emitter of the first transistor and 0v rail and the 470R resistor.
Wednesday, September 21, 2011
30W GUITAR AMPLIFIER ELECTRONIC DIAGRAM
Labels:
AMPLIFIER,
GUITAR,
GUITAR CIRCUIT,
GUITAR DIAGRAM,
GUITAR EFEK,
GUITAR EFFECT,
GUITAR ELECTRIC,
GUITAR SCHEMATIC,
SUARA GUITAR
Subscribe to:
Posts (Atom)











