Showing posts with label converter. Show all posts
Showing posts with label converter. Show all posts

Tuesday, January 6, 2015

Step Down DC Converter


This is a ADP1821 Step Down DC-to-DC Converter circuit. 

This circuit uses ADP1821 that is synchronous pulse-width-modulated (PWM), step-down controller, inexpensive and versatile. 

It can drive all N-channel power stage to regulate an output voltage as low as 0.6 V.
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Sunday, October 19, 2014

LM2577 12V to 16V DC DC Converter

The circuit is a boost step-up regulator based around an LM2577-ADJ voltage regulator chip and a few other discrete components. Resistors R1 and R2 set the regulated output voltage.


A switch inside the voltage regulator closes between pins 4 and 3, causing current to flow through the inductor to ground. When the switch is released a few microseconds later, a back-EMF ‘kick’ is produced by the inductor, resulting in a positive pulse with respect to the input voltage. This pulse charges the output capacitor via the schottky diode, which tends towards an equilibrium voltage.
The switch continues to oscillate, the diode preventing the switch from shorting the output capacitor during the ‘on’ phase. The output voltage is monitored via the voltage divider R1/R2, causing the duty cycle of the switch oscillator to be continuously regulated in order to maintain a constant output voltage under varying loads.
Source: http://www.mcrent.com/workbench/dcdc1216/
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Thursday, October 16, 2014

Build a Period To Voltage Converter Circuit Diagram

The input signal drives ICD. Because ICD`s positive input (V+) is slightly offset to + 0.1 V, its steady stateoutput will be around +13 V. This voltage is sent to ICC through D2, setting ICC`s output to +13 V. Therefore, point D is cut off by Dl, and CI is charged by the current source. Assuming the initial voltage on CI is zero, the maximum voltage (^Cinax) is given by: 

When the input goes from low to high, a narrow positive pulse is generated at point A. This pulse becomes -13 V at point B, which cuts off D2. ICC`s V+ voltage becomes zero. The charge on CI will be absorbed by ICC on in a short time. 

The time constant of C2 and R5 determines the discharge period— about 10 /is. ICB is a buffer whose gain is equal to (R& + R9)~Rg = lM5. ICD`s average voltage will be (1362f 1.545) + 2 = 1052/. RIO and C3 smooth the sawtooth waveform to a dc output.


Period-To-Voltage Converter Circuit Diagram

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Tuesday, September 9, 2014

Precision Full Wave Ac Dc Converter Wiring diagram Schematic

A dc level is produced that corresponds to the ac input rms value (if sine wave), -i set the gain of IC2 to 1.11. This factor is the average-to-rms conversion factor. IC1 and IC2 act as a full-wave rectifier schema, with Dl and D2. 

Precision Full-Wave Ac/Dc Converter Circuit Diagram


Precision
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Wednesday, August 27, 2014

LTC3440 5V Boost Converter Circuit

A simple 5V boost converter using LTC3440 is shown here. LTC3440 is a highly efficient DC to DC converter which can be operated from input voltages below, higher than or equal to the output voltage. In terms of synchronous rectification, LTC3440 provides up to 96 efficiency and up to 600mA of output current is guaranteed. The IC contains a built in synchronizable oscillator whose frequency whose frequency can be adjusted from 300 KHz to 2 MHz.

In the circuit LTC3440 is wired as a 5V boost converter capable of delivering a steady 5V output @ 300mA from an input voltage from 2.7 to 4.2 V. Resistor R4 is employed to set the oscillator frequency while resistors R1 and R2 is employed to set the output to 5 volts. Resistor R3 and capacitor C1 forms a frequency compensation network while C3 serves as the input bypass capacitor. S1 is the shutdown switch and C2 is the output filter capacitor.
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Monday, August 25, 2014

Simple Voltage Converter Wiring diagram Schematic

Teledyne Semiconductor`s Type TSC9402 is a versatile IC. Not only can it convert voltage into frequency, but also frequency into voltage. It is thus eminently suitable for use in an add-on unit for measuring frequencies with a multimeter. Only a few additional components are required for this.. Just one calibration point sets the center of the measuring range (or of that part of the range that is used most frequently). 

The frequency-proportional direct voltage at the output (pin 12—amp out) contains interference pulses at levels up to 0.7 V. If these have an adverse effect on the multimeter, they can be suppressed with the aid of a simple RC network. 

The output voltage, U0, is calculated by: tfo=C/rei(Ci + 12 pF) R2fm Because the internal capacitance often has a greater value than the 12 pF taken here, the formula does not yield an absolute value. The schema has a frequency range of dc to 10 kHz. At 10 kHz, the formula gives a value of 3.4 V. The schema draws a current of not more than 1 mA.

Voltage Converter Circuit Diagram

Voltage

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