Showing posts with label INVERTER. Show all posts
Showing posts with label INVERTER. Show all posts

Tuesday, April 30, 2013

3000 watt power inverter 12V DC to 230V AC

Circuit Diagram of 3000 watt power inverter 12V DC  to  230V AC
Circuit Diagram of 3000 watt power inverter 12V DC  to  230V AC






Fig. 2: Sine-wave voltage and conventional square wave voltage with both 230 Volt rms


Fig. 3: Square wave voltage with duty cycle 25% for 230 Volt rms ("modified sine")


PCB Layout:3000 watt power inverter 12V DC  to  230V AC
 
Component Placement: 3000 watt power inverter 12V DC  to  230V AC




fig.: output voltage with no load or inductive load.



fig.: resistor 0,001 Ohm made of high-grade steel sheet metal


Control electronics | 3000 watt power inverter 12V DC  to  230V AC

fig.: control electronics on strip hole plate (previous version) and PCB of the "professional edition"
Assembly of the mosfet-transistors on the heat sink | 3000 watt power inverter 12V   DC  to  230V AC



fig.: heat sink, mosfet transistors, connections.


Final assembly | 3000 watt power inverter 12V DC  to  230V AC

fig.: 1500 VA inverter with 2 parallel transformers and 1000 VA inverter

Source:http://www.qsl.net
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Thursday, July 28, 2011

IRF44 Mosfet based on 100 Watt Inverter Circuit

IRF44 Mosfet based on 100 Watt Inverter CircuitIRF44 Mosfet based on 100 Watt Inverter Circuit

This inverter circuit can offer a really stable 230V Output Voltage. Frequency of operation is decided by a VR1 and is generally set to 60 Hz. varied “off the shelf” transformers can be used. Or Custom wind your own for best results. additional MosFets can be paralleled for higher power. it's recommended to own a “Fuse” within the Power Line and to perpetually have a “Load connected”, while power is being applied. The Fuse ought to be10 Amps per one hundred watts of output. the ability leads must be serious enough wire to handle this High Current Draw.

IRF44 Mosfet
Absolute Maximum Ratings of IRF44 Mosfet
  • Continuous Drain Current (25°C, 10V) = 49 A
  • Continuous Drain Current ( 100°C, 10V) = 35 A
  • Pulsed Drain Current = 160 A
  • Power Dissipation = 94 W
  • Gate-to-Source Voltage = ± 20 V
  • Avalanche Current = 25 A
  • Operating Junction = -55 to + 175
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Sunday, July 10, 2011

12VDC – 220VAC Inverter Using Cmos CD4047

12VDC – 220VAC Inverter Using Cmos CD4047
This circuit inverter converts 12V DC battery to AC 22oV as the replacement of home energy. The inverter can be used for small electronic devices such as lamps, radio, phone charger, disc player, etc.
12VDC – 220VAC Inverter Using Cmos CD4047
The inverter circuit is a central component, the CMOS 4047, and converts a DC voltage of 12 V to 220 V AC voltage. 4047 is used as an astable multivibrator. The pin 10 and 11 we find a symmetrical rectangular signal is amplified by Darlington transistors T1 and T2 trailer, and finally reaches the secondary coil of a transformer of the network (2 x 10V/100VA). Primary coil voltage is 220 AC voltage terminals. For best performance, use a toroidal core transformer with low losses. P1 to the output frequency can be regulated within certain limits (50 ... 400 Hz).
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Tuesday, August 11, 2009

Wednesday, July 8, 2009

Low cost 12VDC to 120/220VAC Inverter



This inverter will sufficiently power any of your 115VAC (or 220VAC)small appliances। T1 choice of amperage is yours to make, but if you can salvage a heavy-duty unit from somewhere, use it. The least expensive method to get a larger transformer would be to remove the old 2000v primary and then re-wind an old microwave transformer. Most of these transformers are rated 1KW or better. Your local TV or Electronics repair shop may have one or dig one up from the dumpster. Just in case you don't know, micro-wave transformers can keep their charge (via the connected electronics) for a long time, so be careful!R1 and R2 are 10 ohm, wire-wound, and at least 5 watts. Wattage/cooling should be increased accordingly if you decide to beef up the output. For D1 and D2 you can use any power diode like the 1N4002 to 1N4005.If you live in Europe, Australia, or any other country with a 220VAC system, the only different is the transformer. This particular circuit can be constructed to handle up to 1 KiloWatt (1000 watt). If there is enough interest, I can modify this circuit to include a crow-bar circuit, battery backup, or more output in watts, or everything.The power output is determined by transformer T1, and power transistors Q1 & Q2. Assume a transformer of about 15A and the chosen transistors of 2N3055 (15A) type, the inverter can supply about 300 watts with the parts shown. If you are good with electronics all you have to do is replace the 2N3055's and T1 accordingly for more output. It is imperative to mount Q1 and Q2 on large coolribs. If you intend to beef everything up with a couple kilowatts a standard (5") cooling fan will also be required. If this is the case, the 2N3771 power transistor is a good choice at 30Amps. NTE's replacement, NTE181, is an improved version of the 2N3771 and carries 90volts instead of the 40 volts and can dissipate 200W instead of 2N3771's 150W.It is mandatory to include at least one suitable fuse and enclose this project in the correct casing. To be really safe you may want to include a primary and secundary fuse for your own protection. You are dealing with 120VAC or 220VAC at respectible amperage so be careful. The powercord also needs to be secured to prevent accidents.The 68uF Tantalum capacitors were chosen for their endurance. Normal electrolytic capacitors would overheat and explode. Somesort of cooling fan inside the project case may be a good choice, I myself use a ball-bearing cpu-fan from an old computer. New they don't cost that much either, about 3 bucks or so.


Since T1, and Q1/Q2 are NOT part of the PCB, these few parts can easily be used on a piece of Vero or experimenters board. Radio Shack and Tandy have these boards also available at a very reasonable price. The receptacle(s) on T1's output will be part of the case (obviously). I Just a small note about the 12 Volt battery, this circuit and others similar can draw huge amounts of current and will drain your battery in hurry so don't let your battery go dead! That's why a wind/solar power combination would be an excellent future addition. For those interested in a PCB, I have included one below with a layout. As soon as I get my digital camera I will include pictures of the finished project.

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