Showing posts with label ac. Show all posts
Showing posts with label ac. Show all posts

Friday, September 19, 2014

Automatic Night Light Feeds Directly From the AC Line

There are many approaches to the problem of activating a light when it becomes dark, and a recent Design Idea covers this topic (Reference 1). Some approaches require a dc power supply and an electromechanical relay, but a better approach involves feeding the device directly from the ac line, minimizing the number of components 

(Figure 1).


Figure 1. The photoresistor activates the TRIAC and the load when darkness falls.

The heart of the device is a light-sensitive cadmium-sulphide resistor, PR, with a resistance of approximately 200 kΩ in the dark and decreasing to a few kilohms in the light. PR and capacitor C1 form an ac-voltage divider. In daylight, the voltage across PR is too low to generate the required gate-trigger current to turn on bidirectional ac switch Q1, thus keeping the load – usually a lamp – off. When it becomes dark, PR’s resistance rises, resulting in an increase in the TRIAC’s gate current that triggers the TRIAC and lights the lamp.

The schema uses inexpensive, off-the-shelf components, including the VT90N1 photoresistor; a 0.1-μF, 275V capacitor; and an L2004F61 TRIAC with a load current of 4A rms, a peak blocking voltage of 200V, and a gate-trigger current of 5 mA. The exact specifications of these components are not critical; you could use others instead.

Editor’s note:
Attributes worth mentioning include the fact that the capacitor introduces a phase shift, which places the peak of the gate voltage close to the zero crossing of the load’s sine wave for optimum turn-on timing. Another benefit is thermal hysteresis, which occurs due to the reduction of the required triggering voltage and current as the TRIAC warms up after the initial turn-on. 

Friday, September 12, 2014

DC to AC with NE 555


This is a inverter schema by using this schema you can get 230v current.If your an under age one be careful when you deal with this.Always try to get the assistance of an elder.If there was a fault we cant get the responsibility of it.



Tuesday, September 9, 2014

Simle DC to AC Inverter by IC 555

This be basic AC inverter Circuit. Convenient for the initiator who have to is extremely fond of something experience. Because of use IC 555 highly popular, perform produce the frequency ,then enlarge with transistor NPN and PNP number TIP41 and TIP42 drive the coil transformer. Get by can pay Voltage output about 120V to 230V at frequency 50Hz. By have R4 perform control the frequency and should use. Voltage supply about 5V to 15V the detail sees in schema picture sir.

Simple DC to AC Inverter by IC 555 Circuit Diagram



Monday, September 8, 2014

500W Inverter 12V DC to 220V AC

This is inexpensive inverter schema which able to convert 12V DC become 220V AC. IC CD4047 is use to generate the square wave of 50hz and amplify the current and then amplify the voltage by using the step transformer.
500W

How to calculate transformer rating

The basic formula is P=VI and between input output of the transformer we have Power input = Power output

For example if we want a 220W output at 220V then we need 1A at the output. Then at the input we must have at least 18.3V at 12V because: 12V*18.3 = 220v*1

So you have to wind the step up transformer 12v to 220v but input winding must be capable to bear 20A.

Sunday, September 7, 2014

DC to DC AC Inverter Wiring diagram Schematic

This DC-to-DC AC Inverter Circuit Diagram uses no special components such as the torodial transformer used in many inverters. Cost is kept low with the use of cheap, readily available components. Essentially, it is a power amplifier driven by an asta-ble multivibrator. The frequency is around 1200 Hz which most 50/60 Hz power transformers handle well without too much loss. 

Increasing the value of capacitors Cl and C2 will lower the frequency if any trouble is experienced. However, rectifier filtering capacitors required are considerably smaller at the higher operating frequency. The two 2N3055 transistor should be mounted on an adequately sized heatsink. The transformer should be rated ac-cordingto the amount of output power required allowing for conversion efficiency of approximately 60%.


DC-to-DC AC Inverter Circuit Diagram

DC-to-DC

Saturday, September 6, 2014

120V AC Line Powered LED

120V


The following schema diagram shows you about how to powering a LED (or two) from the 120 volt AC line applying | working with a capacitor to drop the voltage together with a little resistor to limit the inrush electric current. Considering that the capacitor need to pass current in both directions, a modest diode is connected in parallel using the LED to supply a path for the negative half cycle and also to limit the reverse voltage across the LED. A second LED using the polarity reversed could be subsituted for the diode, or perhaps a tri-color LED might be put to use which would appear orange with alternating current. The schema is fairly efficient and draws only about a half watt from the line. The resistor value (1K / half watt) was chosen to limit the worst case inrush electric current to about 150 mA which will drop to much less than 30 mA in a millisecond as the capacitor charges. This appears to be a secure value, Ive switched the schema on and off several times without having harm to the LED. The 0.47 uF capacitor has a reactance of 5600 ohms at 60 cycles so the LED current is about 20 mA half wave, or 10 mA average. A bigger capacitor will boost the electric current along with a smaller 1 will lessen it. The capacitor should be a non-polarized kind having a voltage rating of 200 volts or a lot more.

The lower schema is an demonstration of obtaining a low regulated voltage from the AC line. The zener diode serves as a regulator and also supplies a path for the negative half cycle electric current when it conducts inside the forward direction. In this example the output voltage is about 5 volts and will give over 30 milliamps with about 300 millivolts of ripple. Use caution when operating any electronic diagram hooked up straight to the AC line.

120V AC Line Powered LED schema source:
http://www.bowdenshobbydiagram.info/page10.htm#lineled.gif

Saturday, August 30, 2014

Simple AC Static Single Pole Double Throw Switch Wiring diagram Schematic

This is a Simple AC Static Single Pole Double Throw Switch Circuit Diagram. SPDT is a a simple type of changeover electrical switch. An SPDT solid state relay is shown. When voltage is applied Ql will turn on, activating load 1, because the full line voltage appears across Q2, supplying gate current through Rl. When SI is closed. Q2 turns on removing the gate drive from Ql and activating load 2. 

AC Static Single Pole Double Throw Switch Circuit Diagram

AC

Saturday, August 23, 2014

230 V AC To 400 V DC Power Supply Wiring diagram Schematic


Description

               A lot of students are who dont know how to convert 230 volt AC to 400 DC. So today i am published   230 V AC to 400 V DC schema diagram on my blog. Working principle of this schema diagram is very simple. You already knew the working principle of a bridge rectifier. This schema is same as bridge rectifier and the working principle is also same. The fuse is used to protect the schema, if the current is greater than 1 A.

Parts List

Component No:Value
F11 A
B1IN4007 
C1470MF/450V 
V1230 V AC 

Tuesday, August 19, 2014

Single Supply AC Buffer Amplifier Wiring diagram Schematic

This is a Useful AC Buffer Amplifier Circuit. This is a Single Supply AC Buffer Amplifier Circuit Diagram. The input is dc biased to mid-operating point and is ac coupled. Its input impedance is 11 - OUTPUT approximately 500K at low frequencies For dc loads referenced to ground, the quiescent current is increased by the load current set at the input dc bias voltage. 

Single Supply AC Buffer Amplifier Circuit Diagram


Single