Showing posts with label electronic. Show all posts
Showing posts with label electronic. Show all posts

Sunday, September 29, 2013

HANDY 0 12V DC POWER SUPPLY ELECTRONIC DIAGRAM


HANDY 0-12V DC POWER SUPPLY ELECTRONIC DIAGRAM

For heat protection, heat sink is needed for the BD679 transistor. It is because it will be over tempered when works more than 200mA.

FEATURES:
0v to 12 volt output:
- 700mA with M 2155
- 1.4amp with M 2156
- 1A with 16v AC 1.5 amp plug pack
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Monday, March 25, 2013

3V DC to 5V DC REGULATED POWER SUPPLY ELECTRONIC DIAGRAM


3V DC to 5V DC REGULATED POWER SUPPLY ELECTRONIC DIAGRAM

A 5V DC regulated output from 2 cells 3V DC batteries. The output current of the circuit is limited to 50mA. However, it still able to supply many microcontroller circuits. 3009 and 560R Resistor provide the 5V DC output, make up a voltage divider network.
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Saturday, March 23, 2013

Radio Controlled Electronic Flash

A radio controlled electronic flash is a useful item in any photographers kit. Professionals use them all the time. For example, a wedding photographer would put one behind the bride to back-light her gown and veil. You dont want wires showing in a shot like that. To build this control you will need an old R/C car (the simplest sort) in which the car runs in reverse at switch-on and goes ahead only when the remote is operated. They can be picked up cheaply as school fetes and garage sales. A typical car will run from 3V (two cells) and use 9V in the transmitter.

Before proceeding, make sure that the electronics in the car are operating. It doesnt matter if the wheels are broken or the motor is dead. You need to gain access to the leads to the motor. Normally (ie, without the remote operating), one is positive with respect to the other. Label them accordingly. On pressing the remote button, the polarity of the motor leads should swap. You will also need a flash extension cord you can cut into two sections. At the transmitter, the camera end of the extension cord is fed into the case and soldered to the control button contacts, as shown in Fig.1.


Radio controlled electronic flash circuit schematic

The contacts are in series with the battery supply, so if you dont want to open the transmitter, just cut one of the battery leads and connect the flash extension cord into the gap so created. You will then need to tape down the remote button so that it is permanently operated (ie, closed). All that needs to be done at the receiver end is to connect the normally negative motor lead to the gate circuit of an SCR, as shown in Fig.2, while the normally positive lead goes to the cathode of the SCR. Now, when the transmitter is operated by the cameras contacts, the lead polarity is reversed and the SCR acts as a switch to fire a portable electronic flash via the other half of the flash extension cord.

The transmitter can be attached to the camera via a flash bracket or a screw into the tripod socket, depending on what is the most convenient arrangement. The added components in the receiver can be mounted on Veroboard and housed in the space where the electric motor was. If appearance is a primary consideration, the receiver and the added components could be mounted in a standard jiffy box.
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Friday, March 22, 2013

YAMAHA R5C 350 ELECTRONIC DIAGRAM

YAMAHA R5C 350 ELECTRONIC DIAGRAM

It shows the connection between the parts such as the front flasher light, rear flasher light, flasher relay, battery, fuse, tail light, stop light, rear flasher light, rear stop switch, neutral switch, front stop switch, AC generator, coil, rectifier, regulator, horn, head light, tachometer, speedometer, high beam indicator light, rear flasher, front flasher, and many more.
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Tuesday, March 19, 2013

PHONE BROADCASTER ELECTRONIC CIRCUIT DIAGRAM

PHONE BROADCASTER ELECTRONIC CIRCUIT DIAGRAM

The automatic switching consists of resistors R1-R3, variable resistor VR1 as the regulator, transistor T1 and T2, zener diode D2, and diode D1. R1 and VR1 is useful as an input voltage divider from the telephone line.

Parts list :

  •     Resistor R1-R2, R4 : 47k ohm
  •     Resistor R3 : 100 ohm
  •     Resistor R5 : 22k ohm
  •     Resistor R6 : 1M ohm
  •     VR1 : 100k ohm
  •     Diode D1 : 1N4001
  •     Zener diode D2 : 24V, 400mA
  •     Capacitor C1 : o.o1 uF
  •     Capacitor C2 : 330 pF
  •     Trimmer C3 : 50p
  •     Capacitor C4 : 5.6 pF
  •     Capacitor C5 : 10 pF
  •     Transistor T1-T2 : BC548
  •     Transistor T3 : BF494
  •     Inductor L1 : 45rotation 36SWG in resistor carbon 1M 1W
  •     Inductor L2 : 3 rotation 21 SWG 12mm diameter
  •     Antenna
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Saturday, March 9, 2013

Electronic Game Circuit Proposal Unsolved

A request from another keen enthusiast and follower of this blog Sireesha dnv has been presented here, its regarding the making of an electronic game circuit with some interesting functions. The ask looks a bit tough, especially with discrete components and without micro-controllers, lets learn the functioning details of the proposed circuit from the following email that was sent to me.


 hello sir,
This is siree... as i told u i have a dream of making a circuit for a game so i will explain it in my words with my full effort..
the main aim of this game is just game is "to play with the simple calculations"at least two  must play the game. if there is only one player then kit must act as the second player.
here in this game we contain 100 numbers. it is divided into 10 groups. like 1-10 as 1st group, 11-20 as 2nd  and so on.. till 91 and 100 as 10th group so in each group one number of our (designer) choice is marked with red and other with black. the players have to through a die. if this player steps into the red mark numbered place then he is said to e in a "inquired state". then a random of 10 simple calculationsαwill displayed on the display and he has to answer them. the toughness in the mathematical expression depends on the group he is in.(for eg : if he is in 1st stage simple additions or subtractions, if 2nd group it may include combination of additions and subtraction.. finally int he last stage, it includes logical calculations like AND, OR ....) if he answer all the questions correctly then he will step to next number. an passing of each stage gives him a bonus of 10 points. if not he jumps to previous group (i.e -10 points). the person who steps in to the black mark can skips the numbers (for eg: if a  person stepped to 1st stage black point at number 2 then he can move to 3. at stage 2 if black point is at 12 he can move to 14. and so on......skipping of numbers increases correspondingly the stage level.)...
finally the person who reaches the last stage and crosses the red mark is said to be the winner....
that all..........

i hope u will show me a way suggest me if there are any modifications in the logics or any wrongs.
thank you..
 
So far I have no clue how to design this circuit because it appears that this circuit might require some complex logical calculations.
 
Any ideas? If you have any suggestions regarding the desired circuit, feel free to comment, will be greatly appreciated. 


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Wednesday, March 6, 2013

Make an Efficient 40 watt Electronic Ballast Circuit

From my experience the ballast uses some of the power but it somehow pushes more power in to the lamp no matter it's rating. Sort of like pushing a 120v incandescent bulb at 140vac instead of 120vac, it's brighter and uses more power but won't last as long. I also have some "green" shop light and it uses 65w no matter what 4 foot tubes I put it in, I tried the stock 40w, 32w and even a 28w and the kill-a-watt said 65w no matter which one was in there. the 28w tubes looked the brightest, but there wasn't much difference.

 for full detail can be found here
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