Showing posts with label cell. Show all posts
Showing posts with label cell. Show all posts
Monday, November 17, 2014
GSM Cell Phone Jammer Circuit
A admirable diy gsm jammer or cellular adaptable buzz jammer schematic diagram for use alone in GSM1900 with abundance from 1930 MHz to 1990 MHz. The GSM1900 cellular corpuscle buzz arrangement is fabricated use of by USA, Canada and best of the nations in South America.
This cellular buzz jammer isnt applicative for use in Europe, Center East, nor Asia. The GSM jammer ambit could block adaptable adaptable buzz signals which operates on GSM1900 band, additionally articular as DCS.
This cellular buzz jammer isnt applicative for use in Europe, Center East, nor Asia. The GSM jammer ambit could block adaptable adaptable buzz signals which operates on GSM1900 band, additionally articular as DCS.
Wednesday, November 5, 2014
Cell Phone Controlled Audio Video Mute Switch
This cell-phone-controlled audio/ video mute switch is highly useful in automobiles. The circuit automatically disconnects power supply to the audio/video system whenever the mobile handset is lifted off the holder for making or receiving a call. You can use any readily available cell-phone holder with some mi-nor alterations or fabricate it yourself as shown in Fig. 1.
The circuit is wired around IC LM555 (IC1), the CMOS version of timer NE555, as shown in Fig. 2. IC1 is used as a medium current line driver with either an inverting or non-inverting output. It can sink (or source) current of up to 50 mA only, so take care while handling it. The audio/video system is connected to the circuit via normally opened (N/O) contacts of the relay.
When the cell phone is in its holder, LDR1 does not receive any light from white LED1 and its resistance is high. As a result, the voltage at pin 2 of IC1 re-mains high to provide a low output at pin 3. The low output of IC1 activates relay RL1 and the audio/video system gets power supply via its N/O contacts. LED3 glows to indicate that the audio/video system is ‘on.’ When the handset is taken off the holder, light rays from LED1 fall on LDR1 and its resistance decreases.
As a result, the voltage at pin 2 of IC1 de-creases to provide a high output at its pin 3. The high output of IC1 deactivates relay RL1 and the audio/video system does not get power supply. LED2 glows to indicate that the audio/video system is ‘off.’ Preset VR1 is used to control the sensitivity of the circuit. Zener diode ZD1 is used for protecting white LED1 from the higher voltage. The circuit works off a 12V car battery. Switch S1 can be used to manually switch on/off the audio/video system.
Friday, August 29, 2014
Single Cell LED Flashlight
High efficiency white LEDs have advanced to the point where they can replace glow bulbs and other light sources not only as indicators, but also for illumination. While many of the claims made about the LEDs efficiency, light quality, lifetime and economy are mostly exaggeration, the truth is that for very low light levels they are now competitive. They have equal or slightly higher efficiency than a flashlight bulb, a longer lifetime, and are very much tougher. On the other hand, they are still far more expensive than a bulb, for a given light output.
It follows that LEDs are almost ideal for very tiny, low power flashlights, in the less-than-one-watt category. But such a low power flashlight makes sense only if the whole flashlight is small and lightweight, and has a reasonable battery lifetime. But white LEDs require about 3.3 volts each, and typically some extra voltage is needed to provide room for current regulation! Thats why most commercial LED flashlights use at least three alkaline or NiMH cells, or a lithium cell. And often they cant use their batteries all the way down to the true end of their charges!
Using three AA cells isnt really practical for a small flashlight, simply because it will no longer be small! Lithium cells are expensive. So some manufacturers use three button cells, but these last only for minutes and are also expensive compared to their tiny energy contents! So I set out to build a schema that lights a string of white LEDs, using a single alkaline or NiMH cell. That allows using the widely available and inexpensive AA cell, obtaining a small size, low cost and good runtime.
A typical white LED has its best power-efficiency combination at about 20mA, and needs about 3.3V. This makes for a power of about 66mW per LED. I decided to use seven LEDs, because they can be arranged in a nice and compact way with one in the middle and the other six around, and the whole array runs at close to one half watt, which is a reasonable power for a tiny pocket flashlight. To avoid having to control the current separately for each LED, the LEDs were arranged in series. So, I needed a driver schema that will provide about 23V at 20mA, when fed from a 1.2V NiMH rechargeable cell or from a 1.5V alkaline cell. It should be ultra simple, low cost, efficient and reliable. And here it is!
The schema is a self-oscillating boost converter, and I certainly cannot claim having invented it. It is ages old! I only did the detail design of this one, and optimized it in the course of one afternoon. It runs with a beautifully clean waveform, with all components except the LEDs staying completely cold to the touch. At this low power level, even that doesnt guarantee a good efficiency, but I measured it at about 72%, which is quite good for a schema operating from such a low voltage!
How it works:
When switching it on, R1 and D1 bias the transistor into the linear range, through the feedback winding on T1. That causes a current through the 18 turn winding, and thanks to the positive feedback the transistor is driven into saturation. At this moment there will be a base current defined like this: The 1.2V of the cell, plus the 0.2V induced in the feedback winding, minus the 0.7V base-emitter drop of the transistor, make a total of 0.7V, which applied to the 22 ohm resistor gives about 32mA base current. D1 is not conducting a significant current at this time, because the transistor clamps the base voltage to 0.7V and the 3 turn winding subtracts 0.2V from this, so that we end up with only 0.5V across the diode.
This base current keeps the transistor in saturation until its collector current reaches approximately 1A, while the transformer loads up. At this point the transistor will start getting out of saturation, which makes the feedback voltage drop. This very quickly puts the transistor into blockage. The collector voltage will soar as T1 forces current to keep flowing, until D2 starts conducting and discharges the transformer into C2, by means of a quite narrow pulse. During operation this pulse is about 24V high, so that the feedback winding develops -4V, which results in applying about -3.3V to Q1s base, enough to switch it off very fast, but not enough to make the base reverse-conduct.
As soon as the transformer has fully discharged into C2, the voltage on it breaks down, and the transistor enters conduction to start a new cycle. The oscillating frequency is 30kHz, and the transformer operates at a peak flux density of 0.1 tesla, far away from saturation, and low enough to have very low loss. C2 has to eat the load pulses that start at about 1A, and has to keep the voltage constant enough to feed the LEDs an almost smooth DC. The value given works well. If anyone wants to build this schema to run 24 hours a day for 30 years, it would be good to pick a capacitor rated for low ESR and a relatively high ripple current, but for flashlight use a plain standard 47µF, 35V electrolytic capacitor works great.
C1 is not strictly necessary. With a good NiMH cell, the schema works the same without it, so you can save a few cents here. But with the capacitor in place, the schema keeps working better when the cell is almost fully discharged and its internal resistance gets higher, so its better to include it.
Components:
Of course, the part over which most builders will stumble is the transformer. I used an Amidon EA-77-188 core, because I had it at hand, and it was the smallest core I had. I should say that this core is still at least five times larger than required! So feel free to use the smallest ferrite double-E core you can find, or any other ferrite core that offers a closed loop and the possibility of assembling it with an air gap. But then you will have to redo the math!
The main winding has 18 turns, and I wound it with 7 strands of #30 enameled wire twisted together, simply because there is room enough to do so. But this thick wire bundle is huge overkill, like the whole transformer is! The feedback winding was wound with a single strand of that same #30 wire, and it has just three turns. The phasing is like shown in the diagram, of course. If you get the phasing wrong, the schema wont work and the transistor will get warm.
I used masking tape to hold the windings in place on the bobbin. No special insulation is required, because the voltages are so low that the enamel on the wire is insulation enough.
Now comes a very important step: This transformer is airgapped. The two core halves need to be separated by a distance of 0.1mm. I simply stuck little pieces of masking tape on the three legs of one core half, taking advantage of the fact that my masking tape is just the right thickness! Then I assembled the core, wrapping masking tape around it to hold it together.
If you have to use a different ferrite core, you can use my transformers and coils article to learn how to design your transformer. The turns ratio will of course remain 6:1, but the absolute number of turns will change in inverse proportion to the cores cross section. You can look up the data of my core on Amidons or Bytemarks websites, compare that to the data for your core, and go from there. After calculating the turns numbers, you have to calculate the required air gap to obtain an inductance of the main winding of about 40µH.
The transistor I used, the 2SC1226A, is a pretty old part and may no longer be available. I have a bunch of them, so I used it. It has a soft, thin copper tab which can easily be cut off, which is an advantage in this schema, because it allows saving some space! The transistor works cold, so it doesnt really need the tab! If you have to use another transistor instead, feel free, but look for one which has the proper characteristics: It should have a breakdown voltage of about 40V, a maximum continuous current of about 3A, be reasonably fast (mine is very fast, having an Ft of 150MHz!), it should have good saturation characteristics, and it should have a reasonably high hfe (at least 30, ideally about 100) at a current of 1A.
Any different transistor will most likely require a change in the value of R1, to set the proper power level for the LEDs. You can experimentally determine that resistor value, by placing a milliamperemeter in series with the LED string, and selecting the resistor for 20mA in the LEDs. By the way, if you want to build this schema for an alkaline cell instead of a NiMH cell, the resistor should be a bit higher. D2 is a Schottky rectifier. A non-Schottky ultrafast diode could be used too, but the Schottky is better. D1 instead is any plain simple silicon diode.
If your power switch doesnt have very low resistance, it might cause a significant loss in this low voltage schema! If that happens, you could instead place the power switch in series with R1, leaving the rest of the schema permanently energized. That will cost almost no lost battery power, because the only current drain when off will be the leakage through the parts, which should be in the microampere range. But if you place the switch at R1, you should also place a 1 megaohm resistor (or almost any other high value) in parallel with D1, to make sure that the transistor really does stay fully off when it should!
Source: Humo Ludens
Labels:
cell,
flashlight,
led,
single
Tuesday, August 5, 2014
Build a Cell Phone Jammer Schematic Diagram

This cell phone jammer operates at GSM800 frequency since most mobile phones use it to operate. So the selected VCO is a sweeping oscillator, which is very effective but may be hard to construct for the beginners without nice RF-testing equipment.
As a noise source you can use 45MHz clock oscillator which is driving Local Oscillator port located on a mini-circuit mixer. There is also an impedance matching network for Local Oscillator signal to pass through it. It is used to equate impedances of the clock oscillator and the port of the mixer.
RF input (which is this port of the mixer) connected to the first 800MHz cell phone antenna, and the RF output is sent to the mini-circuit amplifier. This amplifier increases the output power for 15-16dbm. The amplified signal then sent to the second cell phone antenna.

works
All cell phones which use GSM800 have their transmitted and received frequencies always separated by 45MHz. So when the mobile phone tries to call it is blocked by its own signal returning to it! Isn’t that cool? When the phone blabber annoys you – turn your jammer on and that wrongdoer will hear own voice in his or her cell phone.
Oh, by the way, you can also use this mobile signal jammer to block any cell-based tracking systems which use your GPS to track and record your car’s moves. And it is quite possible (though I didn’t actually tested it) to jam IEDs which detonated using cell phones.

The mixer used is designed to work up to 600MHz but in this case it works pretty well.

RF amplifier is doing its job perfectly yet (as it was mentioned in the Jammer Store blog post) draws additional power.Old aluminium box was used as a frame for the jammer and old UHF connectors from Motorola cell phone as input/output.You need to attach RF connectors to the circuit. Nine volt battery and voltage regulator were used to supply all components. The battery was placed inside and separated by the foamed plastic from the other components.The power on/off switch is placed on the top. The input and output antennas (also from old Motorola mobile phone) are screwed onto UHF connectors.Your cell phone jammer is ready. Enjoy!

Thursday, January 9, 2014
It is the place where cell phone jammers is necessary to be used
It is the place where cell phone jammers is necessary to be used
SMS one is not more than 70 words, sent from the platform to the user to receive the fastest just ten seconds; MMS a maximum capacity of about 40K or so, they can be quantified 10 (version), a total of 3000 words plus four pictures. During the Olympics, a huge crowd working life limit, in the absence or the move, this time, the convenience of the mobile newspaper will get the highlights. The mobile newspaper reported almost the only way they always watch the game. Even those people in front of the TV or computer all day, accustomed to the phone reported as the main source of information. After all, they care so deeply about the time of the live matches through mobile newspaper. It will supply the power for cell phone jammers itself.
You can use the minimum cost of reading to grasp all the games dynamic. Some even reported as a daily spectator guide. As of 24 on August 12, more than 10 million through China Mobiles "Olympics phone" concerned about the Olympic Games process. According to the survey interview, informed students on the use of mobile phones reported during the Olympic Games through the Olympic Mobile News Olympic Alerts feel convenient fashion. Some students said that each month as long as put into the cost of a few newspapers will be able to browse the entire month of Olympic information reports, cost-effective and innovative. Advantages: "Olympics phone" to take the combination of MMS and SMS text messages to ensure the timeliness, MMS meet the depth reading. It means the open wire and concealed wire laid on the wall where the installation of cell phone jammers will be carried out.
Early as the MMS one a day, one day a text message. July 1, 2008, increased to one day two MMS, SMS day three. Distinct content characteristics and strong technical support, Olympic mobile newspaper rapid expansion. To the Beijing Olympic Games start the first week, ordered the Olympic mobile newspaper users exceeded 10 million. The phone reportedly has a high arrival rate and circulation rate. This Olympic Games, millions of users are informed of Liu Xiang out of the race through the Olympic mobile phone SMS messages. Mobile terminal message, can be understood in a way to remind mandatory reading. Users also need to periodically delete old short color information in the phone to save memory space. It is the strong electricity around antenna of cell phone jammers .This removal process itself can also increase the likelihood of the second reading.
Here continue read..
SMS one is not more than 70 words, sent from the platform to the user to receive the fastest just ten seconds; MMS a maximum capacity of about 40K or so, they can be quantified 10 (version), a total of 3000 words plus four pictures. During the Olympics, a huge crowd working life limit, in the absence or the move, this time, the convenience of the mobile newspaper will get the highlights. The mobile newspaper reported almost the only way they always watch the game. Even those people in front of the TV or computer all day, accustomed to the phone reported as the main source of information. After all, they care so deeply about the time of the live matches through mobile newspaper. It will supply the power for cell phone jammers itself.
You can use the minimum cost of reading to grasp all the games dynamic. Some even reported as a daily spectator guide. As of 24 on August 12, more than 10 million through China Mobiles "Olympics phone" concerned about the Olympic Games process. According to the survey interview, informed students on the use of mobile phones reported during the Olympic Games through the Olympic Mobile News Olympic Alerts feel convenient fashion. Some students said that each month as long as put into the cost of a few newspapers will be able to browse the entire month of Olympic information reports, cost-effective and innovative. Advantages: "Olympics phone" to take the combination of MMS and SMS text messages to ensure the timeliness, MMS meet the depth reading. It means the open wire and concealed wire laid on the wall where the installation of cell phone jammers will be carried out.
Early as the MMS one a day, one day a text message. July 1, 2008, increased to one day two MMS, SMS day three. Distinct content characteristics and strong technical support, Olympic mobile newspaper rapid expansion. To the Beijing Olympic Games start the first week, ordered the Olympic mobile newspaper users exceeded 10 million. The phone reportedly has a high arrival rate and circulation rate. This Olympic Games, millions of users are informed of Liu Xiang out of the race through the Olympic mobile phone SMS messages. Mobile terminal message, can be understood in a way to remind mandatory reading. Users also need to periodically delete old short color information in the phone to save memory space. It is the strong electricity around antenna of cell phone jammers .This removal process itself can also increase the likelihood of the second reading.
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