Showing posts with label Featured. Show all posts
Showing posts with label Featured. Show all posts

Wednesday, January 20, 2016

Zero degree Celsius alarm

Description.
This simple circuit will produce an alarm whenever the temperature falls below zero degree. A thermistor is used here to sense temperature. The op-amp LM7215 is used to compare the reference voltage and voltage from the thermistor network. Reference voltage is given to the non inverting input (pin3) of the IC and voltage from thermistor network is given to the inverting input (pin4).When temperature becomes less than zero degree the voltage at the non inverting input becomes larger than the voltage at the inverting input and the output of the op-amp becomes high. This makes the transistor Q1 ON and drives the piezo buzzer to make the alarm. In the power supply section, IC 7805 is used to derive 5V from the 9V battery.
Circuit diagram with Parts list.
zero-degree-alarm-circuit

Friday, November 27, 2015

Build a 60 Watt Solar Panel

Build a 60 Watt Solar Panel
    Several years ago I bought some remote property in Arizona. I am an astronomer and wanted a place to practice my hobby far away from the terrible light pollution found near cities of any real size. I found a great piece of property. The problem is, it's so remote that there is no electric service available. That's not really a problem. No electricity equals no light pollution. However, it would be nice to have at least a little electricity, since so much of life in the 21st century is dependent on it.

    I built a wind turbine to

    How to Build Custom Speakers






















    Building your own custom speakers has got to be one of the most rewarding, straightforward and cost-effective DIY activities I've come across. I'm absolutely shocked that it hasn't had a larger presence on Instructables and in the community...well, until now of course.

    Some speaker projects can be complete in a weekend, while others can go on for years. Budget speaker kits start around $100, while top-of-the-line kits and components can add up to several thousands of dollars. Regardless of how much you choose to spend on your speakers, you'll likely be building something that will sound as good as commercial product that off the shelf would cost as much as 10 times more.

    So, if you've got access to

    Tuesday, November 10, 2015

    Low Power Ozone Generator

    Source:-http://www.electroschematics.com/10859/low-intensity-ozone-generator/

    Generating ozone and negative ions in the air can be done by a corona discharge. For this we can use a sharp tip of negative polarity, acting against a flat metal part of positive or neutral potential. The device generates negative air ions and ozone. The ozone acts against rot and mould, and can refresh the unhealthy air of humid cellars or whatsoever air charged with bacteria, fungus or bad smell.

    A cascade, generating a high DC voltage from grid voltage, is simple, silent and has a far higher efficiency than the typical flyback converters. Here is what we call in Germany a Greinacher- rectifier. In the English-speaking world the schematic is rather called a Cockroft-Walton multiplier, probably independently invented.

    Schematic of the ozone generator circuit

    ozone generator circuit
    The capacitors were put on the upper side and the diodes on the underside of perforated boards without copper islands, just the pure plastic board. In the negative branch are 15 Capacitors 68 nF 630V (0.068uF), in

    High Power Ozone Generator

    Here is a more powerful ionisator and ozone generator than described in my version-2. It is meant for continuous operation in problem spaces such as cellars with some rot & mould. It can also be operated in normal living rooms when you are not at home. But it is too aggressive for your lungs, if used continuously in inhabited spaces. It is not powerful enough to carry out short disinfection actions, for example after a burning frying pan has put your kitchen under smoke.
    The transformer is from an old TV set, which still used a single rectifier instead of a tripler or even a diode-split rectifier. The latter ones you cannot use because they output positive polarity against ground, and it is very difficult to “turn around”. Here the rectifier diode was inverted to generate “Minus” at the output.

    Schematic of the Ozone Generator Circuit

    high power ozone generator
    I have employed lacquered paper layers between

    Numeric Water Level Indicator Circuit

    Most water level indicators for water tanks are based upon the number of LEDs that glow to indicate the corresponding level of water in the container. Here we present a digital version of the water level indicator. It uses a 7-segment display to show the water level in numeric form from 0 to 9.

    The numeric water indicator circuit works off 5V regulated power supply. It is built around priority encoder IC 74HC147 (IC1), BCD-to-7-segment decoder IC CD4511 (IC2), 7-segment display LTS543 (DIS1) and a few discrete components.
    When the water tank is empty, all the inputs of IC1 remain high. As a result, its output also remains high, making all the inputs of IC2 low. Display LTS543 at this stage shows ‘0,’ which means the tank is empty. Similarly, when the water level reaches L-1 position, the display shows ‘1,’ and when the water level reaches L-8 position, the display shows ‘8.’ Finally, when the tank is full, all the inputs of IC1 become low and its output goes low to make all the inputs of IC2 high. Display LTS543 now shows ‘9,’ which means the tank is full.

    Water Level Indicator Circuit Schematic

    numeric water level indicator circuit diagram
    Assemble the water level indicator circuit on a general-purpose PCB and enclose in a box. Mount 7-segment LTS543 on the front panel of the box. For sensors L-1 though L-9 and ground, use corrosion free conductive-metal (stainless-steel) strips.
    Source:-http://www.electroschematics.com/5655/numeric-water-level-indicator/

    Static Reversing the 3 Phase Induction Motor

    This solid-state thyristor (SCR) switch circuit is perhaps the simplest means of reversing a 3 phase motor. “Static” is a catch-all term that essentially means without moving (mechanical) contacts –the traditional means of reversing is via a pair of contactors that swap two of the three AC lines. However, there are disadvantages to contactors as they are expensive, and have a finite life in repetitive reversing applications. Note that this circuit does not provide speed control as the motor runs at its base speed, nor does it provide zero voltage switching.
    Static Reversing 3 Phase SSS Schematic
    Gate Driver Control Schematic
    Gate Driver Control Schematic
    How it works
    The SCRs that are to be conducting are given a repetitive gate pulse train that both turns them on and keeps them conducting. The gate pulses are generated via a 555 oscillator and isolated via a 4secondary pulse transformer. There

    RF Based Wireless Remote Control System (Tested)

    It is often required to switch electrical appliances from a distance without being a direct line of sight between the transmitter and receiver. As you may well know, an RF based wireless remote control system (RF Transmitter & RF Receiver) can be used to control an output load from a remote place. RF transmitter, as the name suggests, uses radio frequency to send the signals at a particular frequency and a baud rate.

    The RF receiver can receive these signals only if it is configured for the pre-defined signal/data pattern. An ideal solution for this application is provided by compact transmitter and receiver modules, which operate at a frequency of 434 MHz and are available ready-made. Here, the radio frequency (RF) transmission system employs Amplitude Shift Keying (ASK) with transmitter (and receiver) operating at 434 MHz. The use of the ready-made RF module simplifies the construction of a wireless remote control system and also makes it more reliable.

    RF Transmitter

    434MHz transmitter moduleThis simple RF transmitter, consisting of a 434MHz license-exempt Transmitter module and an encoder IC , was designed to remotely switch simple appliances on and off. The RF part consists of a standard 434MHz transmitter module, which works at a frequency of 433.92 MHz and has a range of about 400m according to the manufacture. The transmitter module has four pins. Apart from “Data” and the “Vcc” pin, there is a common ground (GND) for data and supply. Last is the RF output (ANT) pin.
    Pin Assignment of the 434MHz Transmitter module
    Pin Assignment of the  434MHz  Transmitter module
    Note that, for the transmission of a unique signal, an encoder is crucial. For this, I have used the renowned encoder IC HT12E from Holtek. HT12E is capable of encoding information which consists of N address bits and 12N data bits. Each address/ data input can be set to one of the two logic states. The programmed addresses/data are transmitted together with the header bits via an RF transmission medium upon receipt of a trigger signal. Solder bridges TJ1 and TJ2 are used to set the address and data bits.
    The current consumption with a supply voltage of near 5.4V is about 10 mA. Since the current consumption is very little,the power can also be provided by standard button cells. Recommended antenna length is 17 cm for 433.92 MHz, and a stiff wire can be used as the antenna. Remember to mount the antenna (aerial) as close as possible to pin 4 (ANT) of the transmitter module.
    RF Transmitter – Schematic Diagram
    RF Transmitter Schematic Diagram

    RF Receiver

    This circuit complements the RF transmitter built aorund the small 434MHz transmitter module. The receiver picks up the transmitted signals using the 434Mhz receiver module. This integrated RF receiver module has been tuned to a frequency of 433.92MHz,exactly same as for the RF transmitter.
    434MHz receiver module
    434MHz  Receiver  module
    The miniature 434MHz RF receiver module receives On-Off Keyed (OOK) modulation signal and demodulates it to digital signal for the next decoder stage. Local oscillator is made of Phase Locked Loop (PLL) structure. Technically, this is an Amplitude Shift Keying (ASK) receiver module based on a single-conversion, super-heterodyne receiver architecture and incorporates an entire Phase-Locked Loop (PLL) for precise local oscillator (LO) generation. It can use in OOK / HCS / PWM modulation signal and demodulate to digital signal.
    The receiver module has eight (4+4) pins. Apart from three “ground (GND) ” and two “Vcc” pins, there are two pins (one for Digital Data & other for Linear Data) for data output. Last is the RF input (ANT) pin.
    Pin Assignment of the 434MHz Receiver module
    Pin Assignment of the  434MHz  Receiver module

    Pin Connections

    • 1 Antenna
    • 2 Ground
    • 3 Ground
    • 4 Vcc
    • 5 Vcc
    • 6 Linear Data (Normally NOT used)
    • 7 Digital Data (Normally Used)
    • 8 Ground
    The “coded” signal transmitted by the transmitter is processed at the receiver side by the decoder IC HT12F from Holtek. VR1 and R1 are used to tweak the oscillator frequency of the decoder to that of the transmitter. Any possible variations due to component tolerences and/or a different supply voltage can be compensated by this arrangement. HT12F is capable of decoding informations that consist of N bits of address and 12N bits of data. HT12F decoder IC receives serial addresses and data from the HT12E encoder that are transmitted by the RF transmitter module. HT12D compare the serial input data three times continuously with the local addresses.
    If no error or unmatched codes are found, the input data codes are decoded and then transferred to the output pins. The “Valid Transmission” (VT) pin also goes high to indicate a valid transmission.
    For proper operation, a pair of HT12E/HT12F ICs with the same number of addresses and data format should be chosen. The data bits are set up using solder bridges RJ1 and RJ2. Output of the decoder is brought out on a pinheader K1 , making the logical signal available to circuits that need it. This output is also fed to the relay driver transitor T1. The RF Receiver circuit can be powered from a standard 5VDC supply. Just as for the RF Transmiitter, the aerial (17 cm for 433.92 MHz) has to be mounted as close as possible to the RF IN (ANT) pin of the 434MHz RF receiver module.
    RF Receiver – Schematic Diagram
    RF Receiver Schematic Diagram
    Notes
    • RF transmitter circuit can be safely powered from DC 4.5V to 6V power supply. Here, diode D1 is added to introduce a 0.65V drop, but this is not very crucial
    • The 434 MHz RF module (Tx &Rx) is available from many sources. Connection terminals are usually labelled on the PCB. In case of any doubt, refer datasheets of the RF modules
    • In practice, the transmitter is usually powered by batteries. But you can power the receiver from an onboard /external dc supply too. In this case, make an optional “noise filter” arrangement , as shown here, to “clean” the 5V power rails of the 434MHz RF receiver module
    optional “noise filter” circuit
    optional noise filter circuit


    Source:-

    ULTRASONIC REMOTE CONTROL

    Here is a low cost, wireless switch controller. It uses ultrasonic sound waves for remote control of a switch.
    As with any other remote control, the system basically comprises a transmitter and a receiver circuit. Frequencies up to 20kHz are audible. Frequencies above 20kHz are  not audible. The transmitter circuit generates an ultrasonic frequency between 40-50kHz. The receiver senses the ultrasonic sound and switches on a relay.
    The transmitter uses a 555 astable multivibrator. It oscillates at a frequency of 40-50kHz. An ultrasonic transducer is used to transmit the frequency. The transmitter runs on a 9v battery. The ultrasonic receiver uses

    LIGHTENING DETECTOR

    Clouds can carry such huge electric charges that may to cause lightning flashes of thousands of volts. It is really a fascinating phenomenon.
    When a lightning flash takes place a broad spectrum of radio-frequencies is generated. In this broad spectrum there is special intense emissions of the VLF (Very Low Frequency) band. This project will allow you to build a receiver to pick up a band near 300 KHz. An LED will flash to indicate the lightning flashes.
    THE CIRCUIT
    The radio-signal generated by the lightning flash is picked up by the telescopic antenna with the help of a 10mH choke. The choke L1 resonates with the antenna and allows current to flow into the receiver circuit.
    The L2 of 330uH in parallel with the 680pF capacitor C1 forms a tuned circuit for 300KHz. This parallel-tuned tank circuit is coupled to the base of Q1 via D2. The amplified radio signal is again coupled into the base of Q2. Transistors Q2 and Q3 form an LED flasher circuit. Transistor Q4 is the LED driver.
    The flasher is biased so that when VR1 is carefully adjusted the LED flashes only when a radio burst appears at the input due to a lightning flash.
    Positive feedback ensures the LED to be full on. The circuit quickly resets by charging C4 capacitor through diode D1.
    The circuit draws only about 100uA in idle state. Therefore it can run on two cells for many hours.
     

    Monday, November 09, 2015

    Quadcopter frame design (fiberglass)

    Hi everyone thank you for viewing my instructable
    If you enjoyed it please give my instructable a vote :)
    Thank you.

    I'm a 17 year old student in South Africa with a passion for RC helicopters quad copters and

    Super Light Quadcopter

    Special thank you to : http://www.instructables.com/
    The aim of this project is to maximize the flight time/ battery life of the very famous Hubsan X4 quad-copter. This will show how you build your own for very low cost, simple to build and fun to play with. The 3D print is 100% designed by me for use with spare parts from the Hubsan H107L model. It consists of a chassis that fit a receiver, four 7x20mm motors, four 3mm LED´s and a clip to hold the battery.
    The weight of this chassis is only 4.18g plus battery clip 0.49g. The whole quadcopter including chassis, clip, LED's, motors, propellers and receiver is only 21g. Excluding battery, that is 25% lighter than the original H107L model which weight is 27.8g. Even loaded with a 380mAh battery it´s just 3.5g heavier than H107L without its battery.
    With battery: 31.35g compared to commercial 38.15g.
    Continuous flight time with a 380mAh battery was measured to 11.5 minutes. I don´t have a H107L to compare with but I think it´s maximum 10min. Please let me know it you have one!
    The 2 gram circuit board is quite advanced for its small size. It has a built-in radio receiver, 4 Motor + 4 LED drivers (which also signals low battery level), 6-Axis Flight Control with automatic or remote gyro calibration, 4-Way Flip support, and both Beginners & Advance Mode for different range of performance. The radio transmitter can be calibrated as well with adjusted sensitivity, flight control fine tuning and remotely turn off LEDs. Fligh performance can

    Thermoelectric Rotational Ornament

    Picture of Thermoelectric Rotational Ornament
    DSC00315.jpg
    DSC00316.jpg
    DSC00287.jpg

    VIDEOS




    Background:
    This is another thermoelectric experiment/ornament where the whole construction (candle, hot side, module and cool side) is rotating and both heating and cooling itself with a perfect balance between module output power, motor torque & rpm, candle efficiency, heat transfer, cooling efficiency, air flow and friction. A lot of physics are going on here but with a very simple construction. I hope you enjoy this project!
    See videos for final result:

    Sunday, November 08, 2015

    40w 12v peltier air heater - energy efficient

    Picture of 40w 12v peltier air heater - energy efficient
    temp_-1611578854.jpg
    In this i had used the heating effect of peltier .. many of us have knowledge about the electronic device peltier. it is basically made by the P-N juctions inside which makes the temprature difference when electricity is passed through it.
    i had used TEC1-12706 which have 127 PN couples in it and can withstand till 6A current..
    configuration of 12706 peltier are used nicely to produce freezing point temprature becoz of temprature difference it produce .


    sorry for nazi english ...

    Headphone Amplifier Circuit Design

    Typically, a headphone is connected to the loudspeaker output of the final amplifier stages through a voltage divider circuit. However, this simple design has two distinct disadvantages. Firstly, the headphone volume cannot be varied independently from the main speaker when the main speaker is switched on at the same time. Secondly, the voltage divider circuit causes attenuation at the same time affects the bass output negatively.
    The solution to this problem is an independent amplifier for the headphones such as the circuit presented bellow. This headphone amplifier circuit is connected to the output of the final amplifier through the potentiometer P1. IF a stereo headphone is used, this potentiometer must be replaced with a stereo type. Furthermore, the entire circuit must be duplicated for the second channel.
    The headphone amplifier delivers an output of around 1 watt. Use a power supply rated at 350 mA. The amplifier gain is dependent of the resistors R4 and R6. The values shown in the circuit gives a gain of 11. The voltage at the junction of R13 and R14 must be set at 50% of the power supply. This can be set through P2. The standby current through the final transistors is about 50 … 110 mA.

    Headphone amplifier circuit diagram

    headphone amplifier circuit schematic
    Typically, a headphone is connected to the loudspeaker output of the final amplifier stages through a voltage divider circuit. However, this simple design has two distinct disadvantages. Firstly, the headphone volume cannot be varied independently from the main speaker when the main speaker is switched on at the same time. Secondly, the voltage divider circuit causes attenuation at the same time affects the bass output negatively.
    The solution to this problem is an independent amplifier for the headphones such as the circuit presented bellow. This headphone amplifier circuit is connected to the output of the final amplifier through the potentiometer P1. IF a stereo headphone is used, this potentiometer must be replaced with a stereo type. Furthermore, the entire circuit must be duplicated for the second channel.
    The headphone amplifier delivers an output of around 1 watt. Use a power supply rated at 350 mA. The amplifier gain is dependent of the resistors R4 and R6. The values shown in the circuit gives a gain of 11. The voltage at the junction of R13 and R14 must be set at 50% of the power supply. This can be set through P2. The standby current through the final transistors is about 50 … 110 mA.

    Sound activated lights circuit

    This diy sound activated lights circuit turns a lamp ON for a short duration when the dog barks (or a relatively strong sound) giving an impression that the occupants have been alerted so it can be very useful.
    The condenser microphone fitted in a place to monitor sound and generates AC signals, which pass through DC blocking capacitor C1 to the base of transistor BC549 (T1). Transistor T1 along with transistor T2 amplifies the sound signals and provides current pulses from the collector of T2. When sound is produced in front of the condenser mic, triac1 (BT136) fires, activates lights and the bulb (B1) glows for about two minutes.

    Schematic of the sound activated lights circuit

    sound activated lights circuit schematic
    Assemble the circuit on a general purpose PCB (circuit board) and enclose in a plastic cabinet. Power can be derived from a 12V, 500mA step-down transformer with rectifier and smoothing capacitor. Solder the triac ensuring sufficient spacing between the pins to avoid short circuit. Fix the unit in the dog’s cage or close to the sound monitoring spot, with the lamp inside or outside as desired. Connect the microphone to the sount activated lights circuit using a short length of shielded wire. Enclose the microphone in a tube to increase its sensitivity.
    Caution: Since the sound activated lights uses 230V AC, many of its points are at AC mains voltage. It could give you lethal shock if you are not careful. So if you don’t know much about working with line voltages, do not attempt to construct this circuit. We will not be responsible for any kind of resulting loss or damage.

    Arduino Based Auto Transport Device

    AUTO TRANSPORT DEVICE is idea of making a self-driving device that is low cost and can carry high load to its destination. This device is ...