Schematic | Circuit guide | Manual Wiring diagram | Electronic
Showing posts with label voltage. Show all posts
Showing posts with label voltage. Show all posts

78xx Voltage Regulators

Posted by Unknown Monday, September 23, 2013 0 comments
The voltage regulators from the 78xx-series are found in many analogue power supplies. It seems, then, somewhat superfluous to say much more about them. But on the other hand, it can be very useful to highlight the important points, just because they are so ubiquitous. The 78xx is almost always used ‘bare’, because additional components are almost unnecessary. In fact, only one additional component is required, and that is capacitor C2. Based on the manufacturer’s recommendation, this capacitor should be 220nF in order to prevent oscillatory behavior. In practice, you will almost always see that a 100nF capacitor used here. This is a value that does not cause problems. C1 is the smoothing (reservoir) capacitor, its purpose is to reduce the ripple of the rectified AC voltage and is not actually related to voltage regulation.

If the DC voltage is provided by a mains adapter, then this electrolytic capacitor is usually already part of the adapter, although the value is rather small sometimes. C2 may only be omitted if C1 is close to the 78xx and C1 is of good quality (low ESR). But there is nothing wrong by playing it safe and always fitting C2. Rule of thumb: always place a 100 nF capacitor on the input as close to the regulator as is practicable. Strictly speaking, there is no need for a capacitor on the output. However, a capacitor of at least 100 nF (C3) ensures much-improved regulation with fast (several microseconds) changes in load current. In practice, a decoupling-capacitor is placed close to the power supply pins of many ICs. These can provide the same function, provided they are placed not too far away.
78xx Voltage Regulators Circuit DiagramAn electrolytic capacitor (C4) can be added for similar reasons: to catch slow (and fast, if it is a good capacitor) variations in load current. There is actually no compelling reason to deal with slow variations, because the IC is fast enough of regulating these on its own. Rule of thumb: always place an output capacitor of at least 100 nF preferably as close as possible to the IC with the greatest current consumption (read: greatest changes in current consumption). When building the circuit, it is important to connect the capacitors via the shortest possible path. So don’t use long wires or make large loops. Obtain the input voltage for the regulator directly from the connections of the smoothing capacitor, because the ripple is smallest there.

Finally, a few remarks about the temperature that a 78xx may run at. As a first approximation, if seem to burn your fingers when touching the regulator, the temperature of the regulator is above 60°C and a (small) heatsink is definitely recommended. It is not really a problem when the IC gets too hot, because it was designed in such a way that it will turn itself off when the temperature is too high. It doesn’t actually turn off, but the output current reduces when the temperature increases. When the internal temperature has reached 150°C, the output current will be only a little more than half the current delivered at 25°C. That is why it is possible that the output voltage of the regulator has dropped even though the output current is less than the rated current for the IC. A heatsink is the obvious solution. Rule of thumb: you should be able to touch the regulator (or the heatsink) without burning yourself. If not, then the heatsink has to be larger.

Over voltage Protection Circuit Diagram

Posted by Unknown Wednesday, September 11, 2013 0 comments
When testing a circuit, a source of voltage that is variable and has over voltage shutdown is veiy useful. In this circuit, Rl is adjusted to 1 to 2 V below the eventual shutdown threshold. R2 sets the trip voltage. When this voltage is reached, the circuit shuts the voltage to the circuit under test down. To reset, reduce Rl below trip threshold and depress reset switch SI.

Over voltage Protection Circuit Diagram

Overvoltage Protection Circuit Diagram

Wireless Mains Voltage Tester

Posted by Unknown Sunday, September 1, 2013 0 comments
This circuit can be used to test whether mains voltage is present or not without having electric contact with mains line. The CMOS IC CD4033 is the heart of this circuit. The CD4033 consists of a 5 stage decade Johnson counter and an output decoder for converting the Johnson code to a 7 segment decoded output for driving 7 segment LED display. A 10cm long insulated copper wire connected to the clock pin (pin1) of the IC serves as the sensor.

Wireless Mains Voltage Tester Circuit diagram:


The sensor wire has to be placed in the vicinity of the mains wire to be tested. When there is no voltage in the mains line, no voltage will be induced in the sensor wire and the display will show a random digit. When there is voltage in the mains line, a small voltage will be induced in the sensor wire due to electromagnetic induction and this voltage is sufficient enough to clock the CMOS IC CD4033. Now the display will count from zero to nine and repeat.

Notes:

  • The circuit can be assembled on a Vero board.
  • Use 9V PP3 battery for powering the circuit.
  • Use a 10cm insulated wire as the sensor.
  • The IC must be mounted on a holder.
  • Switch S1 can be a miniature ON/OFF switch.

Supply Voltage Monitor

Posted by Unknown Saturday, August 10, 2013 0 comments
A circuit for monitoring supply voltages of ±5 V and ±12 V is readily constructed as shown in the diagram. It is appreciably simpler than the usual monitors that use comparators, and AND gates. The circuit is not intended to indicate the level of the inputs. In normal operation, transistors T1 and T3 must be seen as current sources. The drop across resistors R1 and R2 is 6.3 V (12 –5 –0.7). This means that the current is 6.3mA and this flows through diode D1 when all four voltages are present. However, if for instance, the –5 V line fails, transistor T3 remains on but the base-emitter junction of T2 is no longer biased, so that this transistor is cut off. When this happens, there is no current through D which then goes out.

supply voltage monitorw Circuit diagram


Streampowers

Voltage Regulators

Posted by Unknown Tuesday, July 30, 2013 0 comments
Voltage regulator integrated circuits are widely used in electronics. There are two main types of regulator: linear and switching. This page concerns the linear variety.
The idea of a regulator is simple: you place it between an irregular voltage source (such as a battery, a solar cell, or an unsmoothed DC supply) and a circuit which requires a constant supply voltage. Even if your circuit can work from an unsmoothed supply it may still be a good idea to use a regulator because built into it is a current limiting feature which will protect the supply when you accidently short it on your circuit.
The simplest regulator of all is called a three terminal regulator .

There is one connection for the unsmoothed input, one for the regulated output, and one for a common. They are obtainable for outputs of 5, 12, 15 or 24 volts, either positive or negative. You also have a choice of permissable current capability: most often 100mA or 1A.
For experimental or prototype work it may be too expensive to stock all 16 types mentioned above.

Floorplans Power Voltage Structured Wiring Symbols

Posted by Unknown Friday, May 31, 2013 0 comments
Wiring Diagram Symbols on Floorplans With Power  Low Voltage And Structured Wiring Symbols
Floorplans With Power Low Voltage And Structured Wiring Symbols.


Wiring Diagram Symbols on Of Content How To Use This Manual Wiring And Electric Parts Symbols
Of Content How To Use This Manual Wiring And Electric Parts Symbols.


Wiring Diagram Symbols on How To Read Circuit Wiring Diagrams   Ehow Com
How To Read Circuit Wiring Diagrams Ehow Com.


Wiring Diagram Symbols on Diagram Electrical Wiring
Diagram Electrical Wiring.


Wiring Diagram Symbols on To Read Wiring Diagram Symbols  Terminal Codes  And Wiring Diagrams
To Read Wiring Diagram Symbols Terminal Codes And Wiring Diagrams.


Wiring Diagram Symbols on New Electrical Service   Home   Residential Wiring  Diy Advice
New Electrical Service Home Residential Wiring Diy Advice.


Wiring Diagram Symbols on Circuit Diagram Software Recommendations    Diybanter
Circuit Diagram Software Recommendations Diybanter.


Wiring Diagram Symbols on Same Symbols E G Wiring Symbols Http Hampgh Com Classmaterials Aspx
Same Symbols E G Wiring Symbols Http Hampgh Com Classmaterials Aspx.


Wiring Diagram Symbols on What Is Schematic Diagram     Circuit Schematic
What Is Schematic Diagram Circuit Schematic.


Wiring Diagram Symbols on Wiring Requires Knowledge Of The Symbols Used In Wiring Diagrams
Wiring Requires Knowledge Of The Symbols Used In Wiring Diagrams.


Low Voltage monitor

Posted by Unknown Tuesday, May 14, 2013 0 comments
This is a circuit which can be used to monitor batteries or other electric equipments current problems.Here that current will be indicated through the sound and through the LED.So you all can check your low volt equipments easily.

Parts:

U1 LM339 Voltage comparator IC
D1 1N5233B Zener Diode
D2 LED
R1, R3 1K 1/4W Resistor
R2 5K Pot
BZ1 Piezo Buzzer
MISC Board, wire, socket for IC

Note

# This circuit can be operated with 9v to 12v

12 V – 15A Voltage Regulator Circuit

Posted by Unknown Friday, April 12, 2013 0 comments
This is a circuit diagram of a powerful 12V regulator. The circuit can deliver up to 15 A of current. The circuit is based on work of the LM7812 IC as the core of the circuit. This is the figure of the circuit.


The common voltage regulator IC 7812(IC1) is used to keep the voltage at steady 12V and three TIP 2599 power transistors in parallel are wired in series pass mode to boost the output current.

The operation work of the circuit is the 7812 can provide only up to 1A and rest of the current is supplied by the series pass transistors. The 15A bridge B1 does the job of rectifying the stepped down AC input. The capacitor C1, C2 and C3 act as filters. The 1A fuse F1 protects the IC1 from over current in case if the pass transistors fail. The 15A fuse F2 protects the entire circuit (especially the pass transistors) from over current. The T1 can be a 230V AC primary, 18V secondary, 15A type transformer. The B1 can be a 15A bridge. If 15A Bridge is not available, make one using four RURG1520CC diodes. The IC1 and transistors must be mounted on heat sinks.