Showing posts with label dc. Show all posts
Showing posts with label dc. Show all posts

Wednesday, December 18, 2013

Step up Down DC DC Converter Circuit Diagram

Positive output step-up and step-down dc-dc converters have a common limitation in that neither can handle input voltages that are both greater than or less than the output. For example, when converting a 12-V sealed lead/acid battery to a regulated +12 V output, the battery voltage might vary from a high of 15 V down to 10 V. 

By using a MAX641 to drive separate P-and N-cbannel MOSFETs, both ends of the inductor are switched to allow noninverting buck/boost operation. A second advantage of the circuit over most boostonly designs is that the output goes to 0 V when shutdown is activated. Inefficiency is a drawback because two MOSFETs and two diodes increase the losses in the charge and discharge path of the inductor. The circuit delivers +12 V at 100 mA at 70 percent efficiency with an 8-V input.


Step up Down DC - DC Converter Circuit Diagram

Step up Down DC - DC Converter Circuit Diagram

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Sunday, October 6, 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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Wednesday, May 29, 2013

Simple Circuit Temperature Controlled DC Fan

Simple Circuit Temperature Controlled DC FanHere is a Simple Circuit Temperature Controlled DC Fan primarily based on 2 transistors which will be used to control the speed of a 12 V DC fan looking on the temperature.A thermistor (R1) is employed to sense the temperature. When the temperature will increase the base current of Q1 (BC 547) will increase that in flip decreases the collector voltage of the same transistor. Since the collector of Q1 is coupled to the base of Q2 (BD 140), the decrease in collector voltage of Q1 forward biases the Q2 lot of and so do the speed of the motor. Also, the brightness of the LED are going to be proportional to the speed of the motor.

Notes.

  • The R1 can be a 15K @ 20°C ,N.T.C thermistor.
  • The M1 can be a 12V,700mA fan motor.
  • The capacitor C1 must be rated 25V.
  • The circuit can be powered from a 12V PP3 battery or 12V DC power supply.
  • Assemble the circuit on a good quality PCB or common board.
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Wednesday, April 3, 2013

a simple DC voltage booster

Joule Thief: a simple DC voltage booster

Joule thief
A joule thief circuit lit from a 0.5V AAA battery. Click to enlarge.

A Joule thief is a simple circuit that acts as a DC to DC booster, raising a supply voltage by several volts. In this iteration it uses the exhausted voltage of a alkaline battery and boosts it enough to light a blue LED that requires 2.8V to light. With an otherwise dead 0.5V AAA battery, it will light a blue LED and run for days, using (at the moment) just under 2mA of current. Its much much dimmer than using a fresh battery or running the LED with a proper current through it. Giving the Joule thief circuit 3V from two fresh batteries pulls 75mA through the LED, making it very, very bright and probably short-lived.

A schematic is below. The circuit works like this: When first turned on, current flows into the inductor and produces a magnetic field in the toroid. While this is happening, no voltage appears at the base of the transistor, so the transistor remains off. The LED sees at first no voltage and while the inductor fills up, it only sees a maximum voltage of the battery, which is not enough to pass the diode. Once the inductor is charged, the battery voltage appears at the base of the transistor, turning it on. This allows the right side of the inductor to want to dump the energy it has stored in its magnetic field as quickly as possible, and this gives us a high-voltage that appears across the inductor. When that voltage exceeds 2.8V the LED turns on and lights up until the voltage drops below, triggering the sequence to begin again. I measured the frequency of the on/off oscillation and it seems to run at about 34kHz; the multimeter said between 68 and 72kHz but a radio showed there was 34kHz signal as well, which I assume was the fundamental (and the 68kHz one a harmonic). It did change in frequency a bit while on.

Joule Thief Circuit Diagram
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