Showing posts with label pulse. Show all posts
Showing posts with label pulse. Show all posts
Thursday, 23 February 2017
Inverter 5000W with PWM Pulse Width Modulator
Inverter 5000W with PWM

This inverter uses PWM (Pulse Width Modulator) with type IC SG3524. IC serves as a oscillator 50Hz, as a regulator of the desired output voltage. Input power ranging from 250W up to 5000W output and has. Following a series INVERTER 5000W with PWM (Pulse Width Modulator).
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| Schematic Inverter 5000W with PWM (Pulse Width Modulator) |
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| Layout PCB Inverter 5000W with PWM (Pulse Width Modulator) |
below is the output power settings that can be issued by this inverter:
DC voltage and Transformer "T2" winding recommendation:
Winding Power Supply
12VDC 750W P: 24V "12-0-12" / S: 220V
1500W 24VDC P: 48V "24-0-24" / S: 220V
2250w 36VDC P: 72V "36-0-36" / S: 220V
3000w 48VDC P: 96V "48-0-48" / S: 220V
3750w 60VDC P: 120V "60-0-60" / S: 220V
4500w 72VDC P: 144V "72-0-72" / S: 220V
5250w 84VDC P: 168V "84-0-84" / S: 220V
Transformer used is the transformer CT
R1 serves to regulate the voltage to 220v inverter
R2 serves to regulate the inverter output frequency of 50 or 60 Hz (as appropriate)

Monday, 9 January 2017
Pulse Generator Signal Tracer Circuit Diagram
Dual-purpose test-instrument
Very simple circuitry, 1.5V Battery-operated
Circuit Diagram
Parts:
Device Purpose:
Notes:
Author: RED Free Circuit Designs
Source http://www.redcircuits.com/
Very simple circuitry, 1.5V Battery-operated
Circuit Diagram

- R1 1M 1/4W Resistor
- R2,R4 2K7 1/4W Resistors
- R3 150K 1/4W Resistor
- C1 2n2 630V Ceramic or Polyester Capacitor (See Notes)
- C2,C3 4n7 63V Ceramic or Polyester Capacitors
- D1 1N4148 75V 150mA Diode
- Q1 BC547 45V 100mA NPN Transistor
- Q2 BC557 45V 100mA PNP Transistor
- SW1 SPST miniature Slider Switch (See Notes)
- J1 Stereo switched 3mm. Jack socket (See Notes)
- Probe Metal Probe 3 to 5 cm. long
- Clip Miniature Crocodile Clip
- B1 1.5V Battery (AA or AAA cell etc.)
This simple circuit generates narrow pulses at about 700-800Hz frequency. The pulses, containing harmonics up to the MHz region, can be injected into audio or radio-frequency stages of amplifiers, receivers and the like for testing purposes. A high-pitched tone can be heard from the speaker of the device under test when all is working properly. The clip must be connected to the ground of the device under test, touching with the probe the different stages of the circuit, starting from the last stage and going up towards the first. When the tone is no longer heard, the defective stage has been found.
Connecting an earclip or headphone to J1, the circuit will automatically change into a two-stage amplifier and any audio signal coming from the device under test and picked-up by the probe will be heard through the headphones. The testing of a circuit should be made in the reverse manner, i.e. starting from the first stage and going down until the last stage. When nothing is heard, the defective stage has been found.
Circuit Operation: Q1 & Q2 form a complementary astable multivibrator, whose operating frequency is set mainly by R3, C2 & C3 values. Output pulses are taken at Q2 Collector and applied to the probe by means of decoupling capacitor C1. D1 provides a symmetrical shape for the output waveform. If an earclip or headphone jack is plugged into J1, the connection from Q2 Collector and C1-C2 is broken by the switch incorporated into J1: in this case the circuit becomes a two-stage amplifier.
- If you intend to use the circuit to test valve operated devices C1 must be a 630V type. Working with low voltage supply transistor devices the voltage of C1 can be lowered to 63 or 100V.
- If instead of a short probe, you intend to connect the circuit to the device under test by means of a piece of wire longer than a few centimeters, a small ceramic capacitor (470 to 1000pF) should be added in parallel to D1 to prevent unwanted RF oscillation.
- Current drawing when in Pulse-Generator mode is about 60µA and 1.2mA when in Signal-Tracer mode operation. Therefore SW1 can be omitted, provided that the earclip or headphones are unplugged when the circuit is unused.
- J1 is a stereo switched jack socket wired to obtain a series connection of the two earpieces forming a stereo headphone. In this manner the circuit is loaded with a higher impedance and sensitivity will be improved.
- Therefore, the higher the load impedance the more sensitive the Signal-Tracer. In any case, common 32 Ohm impedance mini-headphones suitable for walkman sets will work fine.
- A crystal (high impedance) earpiece is a good solution, provided you substitute J1 with a mono switched jack socket.
- The entire circuit can be easily fitted into a pen-like enclosure, with the probe protruding like a nib.
Author: RED Free Circuit Designs
Source http://www.redcircuits.com/
Saturday, 19 November 2016
Simple Clock pulse Generator with CD4049
If you want to generate clock with CD4049 CMOS you can do as the follow picture.The typical resister values is 100K and Capacitor is 0.01-0.1uF.The output frequency is about 1/1.1RC ___Hz
Simple Clock pulse Generator with CD4049 Circuit Diagram

Tuesday, 15 November 2016
Pulse Timer Control Relay Circuit with IC555
Today we would like to offers solutions for a set time for take control relay and take NO. / NC. contact to apply to control other devices . such as disable or enable the device.function of this circuit is using IC555 to determine the pulse and a resistor R1 to the period of time.
Pulse Timer Control Relay Circuit Diagram

R1 #Seconds
100k 2
220k 3
470k 6
1M 15
The increase provides more time to increase the value of the Capacitor.
Part List
R1 = 1 Meg, Preset Pot
R2 = 10K
R3,R4 = 1K
C1 = 10uF, 16V
C2 = 0.01uF
T1 = BC547 (Gen Purp NPN)
T2 = 2N2222 (Hi Current NPN)
D1 = 1N4001 (Gen Purp Si)
IC1 = 555 (Lo-Power version)
RLA1 = Relay, 9V (amps of your choice)
Pulse Timer Control Relay Circuit Diagram

R1 #Seconds
100k 2
220k 3
470k 6
1M 15
The increase provides more time to increase the value of the Capacitor.
Part List
R1 = 1 Meg, Preset Pot
R2 = 10K
R3,R4 = 1K
C1 = 10uF, 16V
C2 = 0.01uF
T1 = BC547 (Gen Purp NPN)
T2 = 2N2222 (Hi Current NPN)
D1 = 1N4001 (Gen Purp Si)
IC1 = 555 (Lo-Power version)
RLA1 = Relay, 9V (amps of your choice)
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