Showing posts with label Power Supply. Show all posts
Showing posts with label Power Supply. Show all posts

Adjustable Power Supply 3-30V/2.5A This is an adjustable power supply circuit, also known as variable power supply. . You may use this circuit for gen

Adjustable Power Supply 3-30V/2.5A

This is an adjustable power supply circuit, also known as variable power supply. . You may use this circuit for general purpose usage.

Here the schematic diagram:
Adjustable Power Supply 3-30V/2.5A circuit diagram

Component list:
R1 = 560R 1/4W C1 = 100nF
R2 = 1,2 K 1/4W C2 = 2200uF 35-40V
R3 = 3,9 K 1/4W C3 = 100 pF
R4 = 15K 1/4W C4 = 100uF/ 35V
R5 = 0,15R 5W


D = B40 C3300/2200, 3A rectifier bridge
P1 = 10K potesiometer TR1 = BD 135
IC = LM723 TR2 = 2N3055


Bottom PCB layout:
Adjustable Power Supply 3-30V/2.5A pcb layout

Top PCB layout (Components placement):
Adjustable Power Supply 3-30V/2.5A pcb layout

For complete explanation, circuit's works and how to build this circuit into the box, download the full tutorial here

General DC Power Supply with uA723 This is the power supply circuit for general purpose usage. General Power Supply with uA723 circuit diagram The s

General DC Power Supply with uA723

This is the power supply circuit for general purpose usage.
General Power Supply with uA723 circuit diagram


The supply can be used for supply output voltages from 1 to 35V. The line transformer should be selected to give about 1.4 times the desired output voltage from the positif side of filted capacitor C1 to ground. Potensiometer R2 sets the output voltage to the desired value by adjusting the reference input. Rsc is the current limit set resistor.

For example, if the maximum current output is to be 1A, Rsc=0.65/1.0 = 0.65 Ohm. The 1KOhm resistor,R5, is a light-loaded resistor designed to improve the no-load stability of the supply.

5-18V Stabilized Power Supply This power supply will give you fixed regulated output at 5V, 6V, 9V and 12V, while the 18V output is unregulated. You c

5-18V Stabilized Power Supply

This power supply will give you fixed regulated output at 5V, 6V, 9V and 12V, while the 18V output is unregulated. You could add some regulated IC like LM7815 or 7818 if you need higher output voltage.
electronic circuit diagram


This circuit provide an audio indicator that will act like an alarm if any circuit short contact.

Uninterruptible Power Supply circuit Here the Uninterruptible Power Supply (UPS) circuit with PIC17C43 microcontroller. Your UPS will be automaticall

Uninterruptible Power Supply circuit

Here the Uninterruptible Power Supply (UPS) circuit with PIC17C43 microcontroller. Your UPS will be automatically controlled by the microcontroller.

Uninterruptible Power Supply circuit

UPS systems are traditionally designed using analog components. Today these systems can integrate a microcontroller with AC sine wave generation, offering the many benefits.

The PIC17C43 microcontroller handles all the control of the UPS system. The PIC17C43 is unique because it provides a high performance and low cost solution not found in other microcontrollers.

Download the document of Uninterrupted Power Supply

IC-7805,7905 based Power Supply +5V to +25V, -5V to -25V 1A

IC-7805,7905 based Power Supply +5V to +25V, -5V to -25V 1A with

DC Voltage Regulator dual Power Supply +5V to +25V, -5V to -25V 1A with LM7805 LM7905

Here is Circuit Power Supply Regulator Adjustable Voltage Output +5 to +25V, -5V to -25V 1A ,Use IC 7805 for +Vout and IC 7905 for -Vout.
VR1 for Adjustable + Volt output,VR2 for adjustable -volt output.
Detail more see to circuit.

Variable DC Power Supply Voltage range 0.7 – 24V, Current limiting range 50mA – 2A

Voltage range: 0.7 – 24V

Current limiting range: 50mA – 2A

Device purpose:
A Variable DC Power Supply is one of the most useful tools on the electronics hobbyist’s workbench. This circuit is not an absolute novelty, but it’s simple, reliable, “rugged” and short-proof, featuring variable voltage up to 24V and variable current limiting up to 2A. It’s well suited to supply the circuits shown in this website. You can adapt it to your own requirements as explained in the notes below.
Parts:
P1____________500R Linear Potentiometer
P2_____________10K Log. Potentiometer
R1,R2___________2K2 1/2W Resistors
R3____________330R 1/4W Resistor
R4____________150R 1/4W Resistor
R5______________1R 5W Resistor
C1___________3300Î…F 35V Electrolytic Capacitor (see Notes)
C2______________1Î…F 63V Polyester Capacitor
D1,D2________1N5402 200V 3A Diodes
D3_____________5mm. Red LED
Q1____________BC182 50V 100mA NPN Transistor
Q2____________BD139 80V 1.5A NPN Transistor
Q3____________BC212 50V 100mA PNP Transistor
Q4 __________2N3055 60V 15A NPN Transistor
T1_____________220V Primary, 36V Center-tapped Secondary 50VA Mains transformer (see Notes)
PL1____________Male Mains plug
SW1____________SPST Mains switch
Device purpose:
A Variable DC Power Supply is one of the most useful tools on the electronics hobbyist’s workbench. This circuit is not an absolute novelty, but it’s simple, reliable, “rugged” and short-proof, featuring variable voltage up to 24V and variable current limiting up to 2A. It’s well suited to supply the circuits shown in this website. You can adapt it to your own requirements as explained in the notes below.

Notes:
P1 sets the maximum output current you want to be delivered by the power supply at a given output voltage.
P2 sets the output voltage and must be a logarithmic taper type, in order to obtain a more linear scale voltage indication.
You can choose the Transformer on the grounds of maximum voltage and current output needed.
Best choices are: 36, 40 or 48V center-tapped and 50, 75, 80 or 100VA.
Capacitor C1 can be 2200 to 6800uF, 35 to 50V.
Q4 must be mounted on a good heatsink in order to withstand sustained output short-circuit.
In some cases the rear panel of the metal box in which you will enclose the circuit can do the job.
The 2N3055 transistor (Q4) can be replaced with the slightly less powerful TIP3055 type.
Excellent quality-price ratio: enjoy!
source: RED Free Circuit Designs

Switching power supply Regulator 0-40V 4A by L296

Switching power supply Regulator 0-40V 4A by L296

Specificaly for the chip that is used in this circuit data are like this: Oscilator runs at freq 200kHz, output noise is below 1% (worst case), max current is 4A at 20V. Voltage can be regulated from 0,0 V (true zero), to 40 V. Voltage and current limit, can be adjusted. You should take special care when purchasing choke. Its ferrite material should be build for frequencies up to 300kHz. Input to the regulator can be DC or AC voltage – becouse the input is rectifier bridge.

Read more Source:http://www.peg.si/electro/switcher.html

TL783C based 48V PHANTOM POWER SUPPLY circuit with explanation

TL783C based 48V PHANTOM POWER SUPPLY circuit with explanation

This is a simple 48 V regulated linear power supply design that will provide up to 60 mA of current. This circuit is based on the Texas Instruments TL783C high voltage adjustable linear regulator IC, because this device will provide short circuit protection for an input to output differential voltage of up to 125 V. An LM317T can also be used in this circuit, but a short on the output will destroy the regulator IC. Protective diodes are included in this design to provide a discharge path around the regulator in case of an accidental reverse bias condition.

Part :
C1,C2,C3 – 220 uF 100 V
C5,C6 -10 uF 100 V
C6 -10 uF 100 VD1-D6 – 1N4002
R1 – 82 OHM 1/4 W
R2 – 1 K OHM TRIMMER
R3 – 2.7K OHM 1 W
T1 – 40 V at 0.15 A (6 VA)
U1 – TL783C


Source:http://members.aol.com/ecc81/ps48.html
thank you.

FAN302HL bassed 5-volt switching power supply circuit project

FAN302HL bassed  5-volt switching power supply circuit projectFAN302HL bassed  5-volt switching power supply circuit project

A very simple 5 volt switching power supply electronic circuit project can be designed using FAN302HL highly integrated PWM controller integrated circuit, that provides several features to enhance the performance of general flyback converters.
The constant-current control, of the FAN302HL proprietary topology enables simplified circuit designs without secondary feedback circuitry for battery charger applications.
This 5 volt switching power supply electronic circuit project accepts a wide range input voltage from 90 to 265 VAC and will provide a 5 volt regulated output at a maximum output current of 1.2 ampere .
A proprietary Burst-Mode function with low operation current minimizes standby power consumption.

The FAN302HL controller also provides several like protections : VDD Over-Voltage Protection (Auto-Restart) ,VS Over-Voltage Protection (Latch Mode) , Fixed Over-Temperature Protection .
The most difficult part that is require in this project is the transformer.
W1 is four winds; for each wind of turns, refer to table bellow. Add one insulating tape between the first and second layers.
W2 is wound two layers and uses triple-insulated wire: end of positive fly line is 3.5cm, layer end of negative fly line is 2.5cm.
W3 is spares winding in one layer.
W4 is wound in the core of the outermost layer and sparse winding.


LM317 Adjustable Breadboard Power Supply


This Instructable will show you how to build an adjsutable breadboard power supply entirely from Radioshack parts. It can provide multiple voltages directly to the power rails on a prototyping breadboard. This could be useful for people on a low budget, who don’t like to order parts online, or who need a good weekend project.
Read More Source:http://www.instructables.com/id/The-Radioshack%2c-Adjustable%2c-Breadboard-Power-Suppl/
Thank you.

0-50V 1A Laboratory Power Supply Variable Voltage

 


Laboratory Power Supply – Variable voltage from 0V to 50V and variable current from 0A to 1A
Reverse engineered circuit diagram of an expensive commercial variable lab power supply. This unit is designed around an ordinary op-amp and easy to obtain parts. Although the unit uses a single transformer with two output windings the circuit works equally well using a big transformer and a little transformer.
Read More Source:http://members.shaw.ca/novotill/LabSupply50V1A/index.htm
Thank you.

2N3055+UA723 Power Supply Adjustable 0-30V 2A


It is a simple circuit regulated power supply, based on the known UA723, that drive a transistor Q1 [2N3055]. The regulation of voltage, of expense becomes with potentiometer R1 from 0v-30v DC roughly. In order to we achieve 30 V, will should the transformer of supply TR1, it gives all the current that it asks the load, differently the output voltage it will be found in the levels of 26 V roughly. Essential is the use of a good heatsink for transistor Q1, as well as good quality of potentiometer in the place of R1.
Source:http://users.otenet.gr/~athsam/power_supply_30.htm

CA3140,TIP41, 2N3055 Lab Power Supply 0-30V 2A


This is the schematic of the 30V/2A power supply I use in my own lab.It may look very complex, but it really isn’t very difficult to understand: it uses only the knowledge we’ve learned in the previous lessons.
The top part looks like the power supply we built in Lesson 7: the transformer L1 transforms the outlet voltage to a safe 30V, which is rectified by bridge rectifier G2 and smoothed by capacitor C5. Transistors T3 and T6 form a darlington transistor. This darlington replaces transistor T1 in Lesson 7. However, the base voltage is not controlled by a simple potmeter, but by an ‘electronic potmeter’ with voltage feedback. The advantage of this feedback is a load-independent output voltage.
Read more original source:
http://www.hobby-electronics.info/go.php?to=11000

LM7905, LM7805, Dual Variable Regulator power supply 5-25V



When you want Dual power supply Variable Regulator be simple. I begs for to advise this circuit, because use the integrated circuit LM7805 and LM7905. Make have Voltage +5V to +25V and -5V to -25V unless. Still pay current get about 1A enough with general usability. The important factor is you should use Transformer at enough size doesn’t lower 2A and IC all stick let off the heat with. The detail is other see in circuit picture better sir.

0-30V power supply bench variable



Today I seeks variable power supply circuit come to deposit again. Which be the circuit that use base equipment, build not difficult follow the circuit can fine volt get 0-30V , give current get about 1-2A depend on transformer at you choose to use. The prominent point of the circuit use transistor join a pin BE replace Zener Diode. Then get around problems about seek buy Zener voltage that can’t want. By transistor at use 2N3638 numbers or the number replaces. For transistor output use 2N3055 durable numbers current not exceed 2A. For other detail , request friends , see in the circuit better.

0-30V 0-30A DC POWER SUPPLY MASTECH VARIABLE REGULATED

Two levels of control for both current and voltage output: coarse and fine for ease of use Result: Adjustable at 0-30 and 0-30 VA Input Voltage: 110V AC and 220V AC prevklyuchvaemi Line Regulation: CV <= 0.02% + 3 MV, CC <= 0,5% + 3 ma Load Regulation: CV <= 0,02% + 10mV, CC <= 0,5% + 10 mA ringing noise: CV <= 10 MV RMS, CC <= 10 mA RMS Protection of constant current and short circuit protection LED reading accuracy: + / -1% for voltage and + / -2% Current Environment: 0-40 C, relative humidity <90% Size: 12 ‘x 10′ x 6 “Weight: 20 lbs Warranty: 1 years.

buy at amazon.com/

30V 5A Mastech Variable Linear Lab Power Supply

Mastech Variable Linear Lab Power Supply 30V 5A

Two levels of control for both current and voltage output: coarse and fine for ease of use Adjustable Output: 0-30V and 0-5A Input Voltage: 110V AC and 220V AC prevklyuchvaemi Line Regulation: CV <= 0.01% + 1 MV, CC <= 0,2% + 1 mA Load Regulation: CV <= 0,01% + 3mV, CC <= 0,2% + 3 ma ringing noise: CV <= 0.5 MV RMS, CC <= 3 mA RMS Protection of constant current and short circuit protection LCD reading accuracy: + / -1% for voltage and + / -2% Current Environment: 0-40 C, relative humidity <90%>Buy now

3A Adjustable 3-30V Regulated DC Power Supply

This power supply is meant as an auxiliary or as a permanent power supply for all common circuits based on a stabilized DC voltage between 3 and 30V provided that the consumption does not exceed 3A. Of course this power supply unit can also be used for other purposes. Be replacing the trimmer by a potentiometer, it may even be used as an adjustable power supply unit. A good quality heatsink must be used.
[...]
Parts list:
R1 = 8.2K
R2 = 2.2K
R3 = 680R
R4 = 1K
R5 = 82K
R6 = 0.18R/5W
C1 = 470p
C2 = 100nF-63V
C3 = 100nF-63V
C4 = 100uF-63V
C5 = 10KuF-60V
D1-D6 = 6.6A
Q1 = MJ3001 (Darligton)
IC1 = UA723D
Specifications:
* Overload protected
* Sshort-circuit stable
* Output current: max. 3A
* Output ripple voltage: 0.5mV
* Output voltage: adjustable from 3 to 30V, stabilized
* Input voltage: 9 to 30V AC (depending on the desired output voltage)
Source: http://www.extremecircuits.net/2010/02/3-30v-3a-adjustable-regulated-dc-power.html

2N3055 and LM723 3-30 V/2.5 A Stabilized power supply


This is a very useful project for anyone working in electronics. It is a versatile power supply that will solve most of the supply problems arising in the everyday work of any electronics work shop. It covers a wide range of voltages being continuously variable from 30 V down to 3 V. The output current is 2.5 A maximum, more than enough for most applications. The circuit is completely stabilised even at the extremes of its output range and is fully protected against short-circuits and overloading.

——————————————————————————–
Technical Specifications – Characteristics
Input voltage: 24V DC
Output current: 2.5 A
Output volytage: 3-30V DC
——————————————————————————–

How it Works
The power supply is using a well known and quite popular VOLTAGE STABILIZER IC the LM 723. The IC can be adjusted for out put voltages that vary continuously between 2 and 37 VDC and has a current rating of 150 mA which is of course too low for any serious use. In order to increase the current handling capacity of the circuit the output of the IC is used to drive a darlington pair formed by two power transistors the BD 135 and the 2N3055. The use of the transistors to increase the maximum current output limits the range of output voltages somewhat and this is why the circuit has been designed to operate from 3 to 30 VDC. The resistor R5 that you see connected in series with the output of the supply is used for the protection of the circuit from overloading. If an excessively large current flows through R5, the voltage across it increases and any voltage greater than 0.3 V across it has as a result to cut the supply off, thus effectively protecting it from overloads. This protection feature is built in the LM 723 and the voltage drop across R5 is sensed by the IC itself between pins 2 and 3. At the same time the IC is continuously comparing the output voltage to its internal reference and if the difference exceeds the designer’s standards it corrects it automatically. This ensures great stability under different loads. The potentiometer P1 is used to adjust the out put voltage at the desired level. If the full range from 3 to 30 V is desired then you should use a mains transformer with a secondary winding having a rating of at least 24 V/3 A. If the maxi mum voltage output is not desired you can of course use a transformer with a lower secondary voltage output. (However, once rectified the voltage across the capacitor C2 should exceed by 4-5 volts the maximum output expected from the circuit.
Parts List
R1 = 560R 1/4W C1 = 100nF
R2 = 1,2 K 1/4W C2 = 2200uF 35-40V
R3 = 3,9 K 1/4W C3 = 100 pF
R4 = 15K 1/4W C4 = 100uF/ 35V
R5 = 0,15R 5W

D = B40 C3300/2200, 3A rectifier bridge
P1 = 10K potesiometer TR1 = BD 135
IC = LM723 TR2 = 2N3055

Read More Source: http://www.uashem.com/pageid-215.html
Thank you.

40A- 13.8V Switching Power Supply circuit and explanation


Here is a switched mode power supply circuit specifically designed to power a ham station. This switching power supply produces 13.8V regulated on a continuous load current up to 40A.
Very precise connected directly to a 12V battery backup because it has a current-limiting. If the potentiometer is rotated, while in a state regulated, switching power supply can deliver up to 60A on an intermittent basis. No minimum load is required.
With 88% efficiency there is the ripple on the output by about 20mV. The condition of the output voltage levels: normal, too high or too low is marked by a tricolor LED. A cooling fan operates depends on the average current drawn, and It does not produce any sound is detected at RF frequencies higher than the primary switching frequency 50kHz.
Switching Power Supply Schematic
Switching Power Supply Schematic
Line voltage enters through a CEE-22 connector with included fuse and EMI filtering (P1). It is then passed through a 2-pole power switch, and an additional common mode noise filter (C1, L1, C2). Two NTC resistors limit the inrush current. A bridge rectifier delivers the power to a big electrolytic capacitor (C3), which works at the 300VDC level.
The power oscillator of switching power supply is formed by Q1, Q2, the components near them, and the feedback and control transformer (T3). T2 and the associated components act as a primary current sensor. T1 is the power transformer, delivering about 20 V square wave to the Schottky rectifiers (D6..9).
A toroidal inductor (L2) and a six-pack of low equivalent series resistance electrolytic capacitors form the main filter, while L3 and C23-24 are just there for additional ripple reduction. The 13.8V is delivered to the output through a string of ferrite beads with some small decoupling capacitors mounted directly on the output terminals.
The control circuit is a 3524 IC (U1), powered from an auxiliary rectifier (D17). The IC contains a voltage reference, oscillator, pulse width modulator, error amplifier, current sense amplifier, flip-flop and driving circuitry. It senses the output voltage and the current level, and through transistors Q3 and Q4 controls the power oscillator. C37, C35 and R23 are used to implement a full PID (proportional-integral-derivative) response in the control loop.
A quadruple operational amplifier (U2) is used for two auxiliary purposes: To control the cooling fan according to the average current level, and to drive the voltage indicating tricolor LED: It will glow green if the voltage is OK, orange if the voltage is too low and red if it is too high.