Tampilkan postingan dengan label Radio signal. Tampilkan semua postingan
Tampilkan postingan dengan label Radio signal. Tampilkan semua postingan

If you're in the market for a new auto sound system you might want to seriously take a moment and consider whether or not you would be benefited by subscribing to either Sirius or XM Satellite Radio. Both of these subscription-based services have something wonderful to offer their subscribers and both of them require specialized equipment in order to operate. This means if you are going to wish to use either service, you will need to have decided which service before you have your auto sound system installed.


XM Satellite Radio Vs. Sirius for your Auto Sound System Selection
It really doesn't matter which of these you choose they each have different features that will appeal to a wide variety of audiences. You will find some wonderful competition among the two not only by way of music radio but also talk radio. If you really love talk radio you really need to subscribe to one of these in order to find a treasure chest of talk radio gems. You will find everything from the mundane to the controversial. From Oprah to Howard Stern exist in the realm of satellite radio, which seems to not only be catching on but also here to stay.

It has been commented on many times that XM Satellite Radio has a strong lead when it comes to subscriptions. This is very true but you should also keep in mind that the new subscribers seem to be leaning more towards Sirius for their satellite radio rather than going with the traditional favorite. I've checked out the line up and can't see that one has much of a clearly defined lead over the other so I can't give a definitive reason for the massive new subscribers to Sirius or even the phenomenal lead that XM Satellite radio is currently enjoying. Regardless if this is something that might interest you, you really should check out each website and decide for yourself which, if either, is more appealing to you as well as whether that appeal is worth the investment and the monthly subscription fee.

I will say this however: XM Satellite Radio for the moment seems to have much better toys to offer consumers. That being said, I'm actually quite surprised that the vast number of new subscribers are going with Sirius rather than XM. Of course, being the gadget geek that I am, I am basing that surprise solely on the fact that XM seems to have much better toys. At the moment XM is offering some really cool gadgets that double not only as XM Satellite Radio receivers but also offer GPS functionality and navigation assistance and controls. Some of these devices even go one step further and play DVDs, CDs, MP3s, among other things.

Believe me, Sirius has a lot to offer its customers as well, I'm simply thrilled over select items that can be found at XM that I really haven't seen adequate competition for elsewhere. On the level of music, both seem to carry similar genres, lineups, etc. The same holds true for the Talk radio line up. The only major difference I am finding between the two are the gadgets. Even the prices are rather competitive with one another. I see only one other major difference and that is the fact that Sirius offers a lifetime membership that cost about the same as the five-year plan from XM Satellite Radio. The thing to remember however is that the lifetime membership is for the lifetime of the device not the subscriber.

I should also point out that opting for satellite radio more than likely will not eliminate your need for a new auto sound system it may however pose certain requirements for the type of sound system you will be able to choose. One thing I have noticed with both companies is that there are plenty of devices from which to choose. You will have your hands full selecting the right equipment for your auto sound system upon which to enjoy the wonderful sounds that satellite radio will bring to your ears each and every day.

Tracking FM Transmitter Schematics

FM tracer was prepared using the LM3909 IC and some supporting components. 1.5V FM trackers This will provide an indicator of revenue sources by providing a signal emitted by the LED. FM tracking uses a source voltage of the battery cell and fruit consumption current is 3.7 mA.
After completion of assembling Tracker FM 1.5V, then the next step is setting the operating frequency of the FM tracker is, for convenience we can use the FM receiver and adjust the working frequency FM 1.5V Tracking (tracking transmitter) by regulating C3.

Have been obtained if the working frequency Tracking FM 1.5V  (tracking transmitter) then the corresponding LED will light emitted by the transmitter information such as sound through an FM receiver is terdengan. 1.5V FM tracker (tracking transmitter) can use a regular 12-inch antenna. Playing and learning electronics that will be happy,

1.5 Volt Tracking FM circuit (Tracking Transmitter)


Circuit  Description 1.5 Volt Tracking FM (Tracking Transmitter)
  • For stability, use a NPO types for C2 & C4.
  • Tolerance for R1 should be 1 or 2%.
  • Frequency range is usually 87-109Mhz FM.
  • Email wire used in wire coil is made of 'hookup' 22 ga, like the solid Bell phone wire.

There are two signals that are directed at the so-called FM transmitterthe coder (coding). Multiplexing Mpx signal has been contained, two left signals and right indirectly. Frequency modulation of a transmitter carried by the signal Mpx. The receiver output signal is obtained on Mpx and FM detector is then passed to the decoder. At the decoder do the opposite with the coder in the transmitter, because at this level produced two signals L and D.
ic tda, stereophonic, tda 7088T

Signal is amplified by audio amplifier dientik two, then reproduced through two speakers are the same. Now listeners can heard coming from the left half the loudspeaker is placed on the left and right half of which is placed on the right side. Situation amid the orchestra will be equal to that of the second lordspeaker reproduced, made ​​an impression on the listener as if there.

The third loudspeaker placed midway between the left and right. Based on all these listeners have a picture of the layout space, which is significantly increased total musical impression. Electronic circuits of the portable stereophonic radio receiver with headphones reproduction, made ​​by the IC TDA 7088T is shown in Figure the above. This is a practical embodiment of the receiver with TDA7040T decoder and two audio amplifier with TDA7050T IC.

Choke (coils) L3, L4 and L5 are HF coil allows the headphone cable is used as a receiving antenna. this fulfilled by connecting one contact of the plug-in headphones, through a 10 pF capacitor at the point where the output of the antenna is connected. Coil has a significant barrier to the signal station, preventing ground connection through capacitor 47 mF or through the TDA7050T output.

FM Radio Receiver Circuit with IC TDA 7012T

TDA 7012T FM Radio Receiver
FM Radio Receiver IC TDA 7012T is very simple, but it has an FM radio receiver sensitivity and good selectivity. Single Chip FM Receifer cool name of IC TDA7012T 7012T TDA is to build an FM receiver requires a few additional components. 
Feature contained in FM receiver IC TDA 7012T is quite tempting to an FM receiver. Among features an FM receiver TDA 7012T is a low-voltage applications micro affability arrangement (MTS), Frequency Loked Loop (FLL) to 76 KHz range and selectivity of FM receiver with RC Filter. In an article by FM Radio Receiver IC TDA 7012T can be seen in the FM receiver circuit which can be made​​.



FM Radio Receiver with IC TDA 7012T

From the picture above components to make the FM Radio Receiver IC TDA 7012T as follows:

R1 = 8kΩ2
R2 = 10kΩ
R3 = 390Ω
C1, C3 = 10nF
C2, C6, C9, C16 = 100nF
C4 = 33pF
C5 = 25pF trimmer
C7, C10 = 1nF5
C8 = 820pF C11 = 1NF
C12 = 68pF
C13 = 220pF
C14 = 47μF 10V
C15 = 3nF3
L1 = 36nH
L2 = 1μH,
IC1 = TDA7021T

Hopefully useful and become an idea in the manufacture of Mini FM Receiver with IC TDA 7012T

Building a radio station

Requires us to make things systematically and efficiently, because time is very valuable to us, then some of the advances in technology has been applied in various fields, including education, because this is where all the technological advances developed.Lots of technology is rapidly expanding in our country today. With technology growing by leaps and bounds this is what will make the work more systematic and efficient.Based on our technological advances and his friends create a system are related to the Electronics course, we propose the same faculty to develop a community tool. We got a second job in four semesters, which makes the FM transmitter.
Departing from hobby assembling electronic items, we try to assemble a mini-power transmitter that can emit a short signal of approximately 100 meters with power (power) 5 watts. This is a pilot who later became 12 watts. With 12 watts of power, radio broadcasts to reach a village. 
1.2 Formulation of ProblemProblems are handled from this lab assignment is to create and analyze the quality of an FM transmitter to get the data at test point 1, point 2 test, test point 3 and the exact frequency as desired.Things are of practical tasks is restricted only to analyze the quality of a transmitter and retrieve data from an existing test point. 
1.3 LimitationsProblems to be addressed in this lab assignment is limited to some of the following:1 • Retrieving data from the frequency and calculate TP 1 to TP 3.2 • Analyze a transmitter in the room, based on measurement data and make conclusions. 
1.4 ObjectivesObjectives to be achieved in this task are:A. Students can design and make the circuit in fm transmitter.2. 12 Watt FM transmitter that can be made of appropriate tools and can be marketed. 
1.5 MethodologyIn completing this lab assignment, the steps are as follows:1 • Learn about basic electronics concepts and learn concepts about the mechanism of FM modulation.2 • Analyze and conclude the experimental results, and give advice when it is applied to the practical task of the real system.3 • Preparing a report on second semester practicum assignment. 
1.6 DiscussionThis book of this lab assignment consists of 5 (five) chapters, in each chapter related to one another, namely: 
CHAPTER 1:Provide background on the issues, goals, problems and constraints of the problems discussed in this lab assignment.CHAPTER 2:Provide the theoretical basis to support problem solving in this lab assignment. The basic theory is given include: the mechanism of the tool inused in making the FM transmitter 
CHAPTER 3:Planning and manufacture of tools and how each blog diagram contained in FM transmitterCHAPTER 4:Contains the results of calculations and data processing, and analysis resultscalculation.CHAPTER 5:Provide conclusions about the results already obtained and suggestions.CHAPTER IIBASIC THEORY 
2.1 Koker

Koker serves to regulate or determine the frequency of the radio transmitter. In koker also Ferrite that serves as a core inductor in addition there is an inductance coil comprising primary and secondary winding. Way of working is to facilitate search koker empty wave. When filling koker in turn to the right to a maximum frequency of the oscillator produce more low. If the FM transmitter lights, turn left up the core koker to hissing on the FM radio signal is lost it will be found a strong and stable.

2.2 Inductor

Coil of wire that is wrapped with a particular matter, in this case to determine the value of the inductor is typically used Q-meter. Inductor serves as an impedance adjustment, so that the output of the impedance can be changed and in accordance with the desired (match).


2.3 Transistor

 Transistors have two connections, one of which is the emitter and the other base and collector. Because this is a transistor as two diodes. ransistor C1970 type normally used to raise the voltage 0.8 to 1 watt, I think it was in the C1970 study could increase about 8 times.On the C1971 transistor can be coupled directly from the exciter circuit and the voltage of 6.5 to 7 watts or bias raised about 10 times.If the C1970 to C1971 join the output power of about 12 watts or more. (All will be explained in Chapter III) 

2.4 ExciterExciter circuit consists of an oscillator and buffer.•  OscillatorTransmitter is the core of an oscillator. To be able to build a good communication system should begin with an oscillator that can work perfectly. In the communication system, the oscillator generates a sine wave is used as the carrier signal. Then the information signal is superimposed on a carrier signal with the modulation process.•  Buffer (Buffer)All types of oscillators require a buffer. Buffer serves to stabilize the frequency and / or amplitude of the oscillator from loading the next level. Usually a buffer consisting of 1 or 2 levels of the transistor amplifier dibias as class A.The heart of the broadcast transmitter FM exciter is located on it. Function of the exciter is to generate and modulate a carrier wave with one or more input (mono, stereo, SCA) in accordance with FCC standards. Which has been modulated carrier wave is then amplified by a wideband amplifier to the level required by the next level. 

2.5 BoosterPower amplifier is more popularly known as Booster. Booster is a device mounted radio transmitters attached to and used to amplify radio frequency transmit power in any direction that you want to go. For example, for a transmitter power of 25 watts which include only a single village, Booster is used to transmit power to be 50 to 100 watts so it can besurrounding the district. Boosters are generally small squares connected by cable to the transmitter which he built.Power amplifier is divided into two. First, the power amplifier which amplifies the signal in one cycle, the best signal quality and harmonious. The second, which only reinforces the power amplifier input signal is less than half of the cycle and generate a wave that damaged the same frequency.


2.6 Antenna

 Antenna function and simultaneously capture signals radiate radio wave radiation. The antenna is divided into two by the beam, ie• omnidirectional (all directions). This antenna radiates radio waves are equally strong all directions.• Bidirectional (both directions). This antenna radiates equally strong radio waves to only two directions. Two parameters that need to be considered is the polarization of the antenna and its gain. Put simply, an antenna has vertical polarization if the antenna is placed in a position perpendicular to the earth. Antenna with vertical polarization would produce radio waves with vertical polarization as well. In addition to the vertical, some horizontal polarized antenna, when the antenna is positioned parallel to the field of the earth.

2.7 Transmission LineTransmission line is the introduction to the generated power to the transmitter antenna. As an introduction to power, a good transmission line will not reduce the power of delivery and did not radiate, because it is the duty antennas radiate. So that the maximum power transfer occurs, then the transmission line characteristic impedance should also have the same view of resource load. Transmission line characteristic impedance is 300 W common (ribbon cable to the black and white TV), 75 W (on a color TV coaxial cable) and 50W (coaxial cable to the amateur radio equipment).Additional tools are in need in assembling a 12-watt FM transmitter, among which are:
 •  Power MeterPower Meter is a tool to measure the wave. On a transmission line that is not worth it, but the waves come rolling waves are reflected. Wave dating from the source to the load direction (from transmitter to antenna), while the reflected wave from the opposite direction (from the antenna to the transmitter). Usually on the Power Meter has two scales, onecame to power and one for the reflected power. The reflected power scale to be smaller than the scale for the future.
 •  SWR MeterSWR meter or measuring comparative standing waves are used to measure the ratio of the incident wave and reflected wave. So it is known how a resource commensurate with the burden. The working principle is based on the Power Meter SWR Meter. If there is only one Power Meter measurements, the SWR can be calculated from the incident power (Pf) andthe reflected power (Pr) with the formula:SWR = (OPF + ÖPr) (OPF - ÖPr).
• From the formula, the state equivalent (Pr = O) will be obtained SWR = 1.
• For a state that is not worth going to get SWR> 1.
• For the worst circumstances in which all power is reflected back dating (Pf = Pr) will get the SWR = infinity.
•  Dummy LoadTo be able to broadcast a maximum transmit power, but efficient, it takes a load impedance that is known with certainty as it is called Dummy Load reference. Dummy Load is free from the influence of frequency and can handle the disposal of the transmit power is too great. Dummy Load impedance is usually 50 or 75 Ohm. Dummy Load can be made withput some resistors in parallel in order to obtain the desired resistance and power. Parallelize some resistors minimize the stray inductance of the resistor. For example, can use the carbon resistor 300 Ohm / 2 watt for 6 seeds that are connected in parallel to get the Dummy Load with power of 12 watts and 50 Ohm impedance.

CHAPTER IIIPLANNING AND DEVELOPMENT TOOLS
3.1. PreliminaryTo plan and create a 12 Watt FM transmitter, need to know first about a block diagram of the system, the working system of the circuit isOverall, the calculations and planning.
3.2. System Block Diagram and Figure Series Overall

The picture above shows a block diagram of this system and imageThe overall network is made in full.Transmission System Block Diagram picture as a whole
3.2.1 Block diagram of the image transmitter exciter circuit FM

Picture Exciter Circuit Network consists of exciter oscillator and buffer. In this Exciter Network using the specification of components as follows:•  Koker•  Inductor: L2 = 0.12 micro-Henry, Henry Micro L3 = 0.12, L4 = 0.2 micro-Henry•  Transistor: C930•  Ohm: 5.6 K, 47 K, 33 K•  Babysitter WANTED: 2.2 nF, 100 nF, 18 pF, 20 pF, 5 pF•  trimer: 5-60 pFExciter is a network that produces oscillations, because the exciter are oscillator that acts as a sine wave generator and it will be dimodulasikan. In the oscillator system is also available buffer (buffer) that functions to stabilize the frequency / modulation oscillator amplifier due to the loading process by the next level. 
3.2.2 Network Booster (Power Amplifier)

The series of images BoosterIn the Booster circuit uses components withthe following specifications: 
 •  Inductors: L1 = 0.2 micro-Henry. L2 = 0.2 micro-Henry. 0085 L3 = L4 = 0.04 micro micro Henry Henry. L5 = 0.1 micro-Henry. L6 = 0.2 micro-Henry L7 = 0.2 micro-Henry. 
 •  Transistor 1970: 10 V VCEIc 0.1 AΒ 10-180 
 •  trimer: 5-30 pFBooster circuit consists of two levels of transistor amplifiers, each working on a class C, each input and output transistor amplifier circuit is given impedance adjustment.Strengthening of the first transistor using C1970. Strengthening the circuit has a 9.2 dB power gain (8 times), so that from the exciter-power 0.25 W of power generated should be 2 W. In fact the output of this first level of reinforcement produces only 1.75 Watt power, this is due to the loss of matching network circuit.Strengthening of the second level using transistor C1971. The amplifier circuit has a 10dB power gain (10 times). So that the power of the first level of 1.75 W can be strengthened to 17.5 W. In fact strengthening the power of the second level only reached 12.5 Watt. 
This is due to the loss of matching network and the limited range ofC1971 transistor. Because the price of the C1971 transistor is relatively expensive it is to use only the C1970 transistor. Therefore, the power generated by the transmitter is not as high as 12 Watt. Because of the heat generated second transistor is large enough then we put enough cooling. 

CHAPTER IVTESTING TOOLS4.1 
GeneralThis chapter discusses the testing and analysis system that has been made. In general, this test aims to determine if the device has been realized that can be worked in accordance with a predetermined plan specifications. The purpose of the tests performed on the system are as follows: 
•  Knowing how the exciter circuit 
•  Knowing how the booster circuit


4.2 Testing exciter circuit
•  The purposeTo find out if the oscillator can work well and achieve the desired frequency. And also to determine whether the buffer is running properly.
•  The equipment usedA. Koker2. Inductor3. Transistor4. Resistor5. Trimer6. Dummy Load7. 5 volt power supply8. Multimeter9. Frequency Counter10. PCB
•  The test procedureTest Block DiagramA. Assemble the equipment used in accordance Picture2. Provide 12 volt power supply to the exciter circuit3. Switch the exciter circuit to get the most power in large4. Calculate the voltage at TP 1, TP 2 and, TP 35. Observe the output (at V output)
•  The test resultsThe test results are shown in Table. the following:Exciter circuit Testing ResultsTest Results PointA 0.6V2 0.6V3 11.75 V
 4.3 Testing a series of booster
•  The purposeTo gain greater power and also increase the distance range of further emission up to 7-fold.
•  The equipment usedA. Inductor2. Transistor3. Trimer4. Dummy Load5. 12 Volt Power Supply
•  The test procedureTesting Block Diagram Picture Booster:A. Assemble the equipment used in accordance Picture2. Large test circuit voltage that can be accepted3. Observing the output
•  The test resultsThe test results are shown in Table. the following:Booster circuit Testing ResultsTest Results Point4 11,755 11,75

 CHAPTER VCLOSING
5.1. ConclusionBased on the test results it can be concluded:
•  In a series of FM transmitters we've made, the power output is only 2 Watt for C1970 transistor used is that only 1 Watt power up
•  FM transmitter that can be made only reach 93 MHz frequency
•  The distance achieved depends on the power emitted by the FM transmitter
 5.2 Advice
•  If you want to make the transmitter starts with a good oscillator.
• If you want to make a series of FM with a power greater then use the transistor C1971, C1946. the power generated about 25 watts.
• To balance the output of the FM transmitter mounted circuit PLL (Phase Local Loop).







Boster 15 watt rd 15 no tune

15 rd booster requires only 0.5 watts of input capable of out 15 watts, the voltage of 13.8 volts it needs. in this series are made to work freq 87-108 mhz fm broadcast. but did not rule to be modified in other freq. schematic and pcb layout to please download here

 

Booster BLW 60

In this post an opportunity, I upload booster BLW 60 which may be an inspiration to create home brew. Here I include a file layout that can be unlocked via software sprint layout. of course the software you can download here as well. ok g tuk need to talk at length, immediately wrote download the full data here


50 ohm dummy load

Assemble their own 50 ohm dummy load with a capacity of 40 watts. first of all we need is a 1k resistor 2watt as many as 20 seeds, plain PCB, and also the female connector just as the picture above.The first step is the form of a round PCB with the above picture just as much as 2 pieces of 3 cm diameter, to which drilled the diameter of the connector. 


With the goal as a PCB connector while the other will not need to be drilled due to the bottom.two pairs of resistors that is just as in the picture. if the test is finished living, 50 g 0hm what? if the resistor is not needed to be corrected again.What if want a bigger watt capacity, we simply replace the resistor, 1K5 ato 2k, of course, if using a 2k resistor smakin much we need. resistor which point no matter how much we want to attach. critical values ​​should be 50 ohms and the value of each resistor must be equal.survived the experiment may be useful

Low pass filter is a circuit to filter freq dirty from an fm transmitter. so we get a clean signal. and can maximize the output power generated from the booster. low pass filter is capable to 150 watts. in this post . file [lay] that can only be opened with software sprint layout. for those interested please download here.


This post is for an antenna loading coil telex broadcast on freq. let us buy Simply put wrote specifically for the antenna loading coil at the store component telex, because loading the settings is still for freq 2 meter, we must slightly modify it. The trick is easy, just replace the existing loops. original about 5 convolution convolution continues we replace 10 with 1 to 1.5 mm diameter wire. for more details see the pictures. may be useful ..



Wave antenna 5/8 pro VKV FM

Wave antenna 5/8 consists of a vertical radiator which is fed at the base of the antenna. A suitable device of some sort should be added between the antenna and feedline if you want to eat with coax. Adding a coil in series with the antenna on the base is one of these methods are suitable. 



So why would anyone use an antenna 5/8 wave if they have to go through all that extra work? After all, a ground plane antenna provides a good match. There are several answers. The first is GAIN. The computer shows that the antenna (mounted 1 foot above the ground) has a margin of about 1.5 dBd higher than a dipole (also installed 1 foot above the ground.)The second reason you might want to use the wave 5/8 vertical is to get a lower angle of radiation. Peak radiation angle A half-wave antenna is 20 degrees. You will find that the angle 5/8 wave antenna radiation is only 16 degrees so it is better dx antenna. 

 You may have noticed a pattern developing here. A quarter-wave ground plane antenna has a radiation pattern that produces the maximum gain at about 25 degrees and half-wave antenna drops to 20-degree angle, and wave antenna 5/8 further drops to 16 degrees angle. So why not just keep extending the antenna to one full wave? Well it would be nice if it worked, but unfortunately the wave patterns begin to create a very high angle of radiation waves exceed 5/8. So we've reached the maximum gain at this point and extend the antenna further reduce profits only where we want it (low angle). 

Of course if you are interested in a very short jump, extend the antenna will produce a nice profit on the dipole.All the length of the antenna depends on various factors. Some of these factors are: height above ground, the diameter of the wire, nearby structures, the effects of other antennas in the area and even the conductivity of the soil.This page allows you to calculate the wavelength for the antenna 5/8. It uses the standard formula, 585 / f (178.308 / f for metric) MHz to calculate the length of the element. If you have experimented with 5/8 wave antenna before and know a better formula for your QTH, feel free to change the formula accordingly. This formula is for the antenna wire. 

Of course if you build your antenna out of the tube, total length of the antenna will be shorter, for example I have found that 21.5 feet seems to provide maximum benefit to the frequency of 28.5 MHz when using a 1 "tube, and 22.5. Foot seems be the best long-wire at the same frequency. Since the formula to calculate the antenna to be about 2 feet shorter, be sure to experiment and maybe add a little for your final term.

Simple fm transmitter for the experiment. This designation may be appropriate to call this series, because rangkaianya very simple and suitable for learning / beginners. and preferably when assembling, which assembled its first part oscilator. then we try it first. if able to function normally, we can proceed to the next level up to the booster. for the scheme and a list of components please download here.



Radio Control for toy car

Radio Control for toy car
Play toy cars controlled by radio signals is an interesting game. The much-loved toy cars children, plus a simple circuit would be ideal for toy cars. This series of families use traditional digital CMOS IC which requires a very small electric current, so it does not impose on the performance of the original toy cars.
In this system, radio signals emitted not continuously but only generated when the controller sends a command left / right or forward / backward, and even then only a radio frequency of an intermittent, so it is sending pulses of radio wave frequency.
Number of pulses sent represents a command is sent, the command GO is represented by 8 pulses, represented by 16 pulses LEFT, RIGHT DOWN 32 pulses and 64 pulses. Command sent to a combination of two orders once gus, which is a combination of command forward / backward and right / left, for example, could be sent forward command and left once gus, in this case the number of pulses sent is 24, which is the sum of the forward command command as much as 8 pulses and left as many as 16 pulses.
Once a command is sent, the system stops sending commands in a certain time lag, the lag time it takes the receiver circuit will have sufficient time to execute properly. Frequency pulses were visible on the right side of Figure 1.

How it works The transmitter
Radio signals generated by the oscillator circuit formed by transistors Q1 9016, the working frequency of the oscillator is determined by the crystal Y1 is worth 27.145 MHz. A very critical part of this oscillator circuit is T1, L1 and L2, which specifically dealt with separately at the end of this article.
Work of the oscillator is controlled by a NOR gate U2D 14001, while the output gate (pin 3) is worth '1 ', the oscillator will work and transmit radio frequency 27.145 MHz, and at the output U2D value '0' the oscillator will stop working.
U2D NOR gate receives the clock signal from the NOR gates U2B. NOR gate CMOS type with the help of resistors R4 and R5 and capacitor C8 to form a low frequency oscillator circuit to control the clock shaper of existing digital circuits. Working from the clock generator is controlled via the input leg 6, the circuit will generate the input clock that is berlevel '0 '.
NOR gate U2A and U2C form a latch circuit (RS Flip Flop), due to the influence of resistor R2 and capacitor C11 which is fed to pin 9 on U2C, when the circuit gets power supply output U2C must be '1 'and U2A output (pin 3) to '0 '. This situation resulted EUIS clock generator generating a clock U2B work and release the reset state of the enumerator 14 024 IC (U1), so that the U1 start chopping and 27.145 MHz oscillator circuit to send pulses of the clock generator frequency during work.
At the start chopping, all the output IC 14 024 enumerators in kedaan '0 ', after chopping the 8 pulse output Q4 (pin 6) will be '1', after chopping 16 Q5 pulse output (pin 5) to '1 ', after chopping 32 Q6 output pulse (pin 4) to '1 ', after 64 counts pulses output Q7 (pin 3) to '1'.
Outputs are used to control the voltage above 9 feet U2C through diode D1 and D2, as long as it remains one of the output value '0 'then the plant U2B clock still works, it will continue until dankatode D2 D1 cathode to '1' so that the foot 9 U2C a '1 'as well. This situation will lead to 3 feet U2A output to '1 ', which stops the clock generator and reset U2B enumerator 14 024 danberhenti is sending pulses of frequency 27 145 MHz.
To generate the lag time for the receiver circuits have enough time to perform the command, used a series of 9014 Q2, the resistor R7 and capacitor C10. The magnitude of the delay time is determined by the value of R7 and C10. The switch to send the command forward / backward and to send the command left / right are two separate switches. Each switch has three positions, the center position means that the scalar does not send commands.
How It Works Recipients
Figure 2 is a recipient of a series of paired images dimobil toy, serves to receive signals from the transmitter to control the motor cars, so cars can move forward / backward and left / right. Transistor Q1 with the help of resistors; capacitors and T1 form as a series of 27.145 MHz radio signal receiver. T1 in series with a T1 is exactly the same used in the transmitter circuit, how to make it are discussed below.
Transistor Q2 perlangkapannya formed following a series of pulses to change the radio frequency received from the transmitter into the box pulses that can be accepted as a digital signal by the CMOS IC. Digital signal will be received as the clock had to be chopped by enumerator 14 024 IC (U2). Output of 14 024 would correspond to the number of pulses sent by the transmitter, forward command and left (which is used as an example in the discussion of the transmitter) is the pulse number of 24, the enumeration of these pulses resulted in 14 024 to be output Q4 = '1 ', Q5 = '1', Q6 = '0 'and Q7 = '0'.
The received digital signal other than U2 used as counter clock IC 14 024 discussed above, is also used to move the 3 pieces of the time delay circuit to generate pulses which controls the sequence of work.
The first control pulse will appear after submission frequency pulse stopped because the lag time between sending the code, this pulse count function to record the results of 14 024 to 14 042 U3 (D Flip Flop), so that the final condition of 14 024 will be retained to control the motor. After the results were recorded for 14 024 14 042, 14 042 counter is reset by the second pulse, so that after the lag time counter counts up starting from 14 042 to 0 again.
Circuit formed by transistors Q3, Q4, Q7, Q8, Q9 and Q10 H Bridge is named as a series, this series is very powerful to drive the DC motor. With this circuit the DC motor can be rotated to the right-to-left or stop motion. The main requirement is the use of this circuit Q7 and the base voltage of Q10 base voltage must be opposed, for example, the base Q7 = '1 'and the base of Q10 = '0' motor rotates to the left, the base of Q7 = '0 'and the base of Q10 = '1' motor will turning to the right, the base Q7 = '0 'and Q10 base = '0' motor stop motion, but should not be happening base Q7 = '1 'and the base Q10 = '1'.
Similarly, Q5, Q6, Q11, Q12, Q13 and Q14 form an H Bridge. H Bridge to the left in Figure 2 is used to control a motor that regulates the movement of cars left / right, while the H Bridge to the right is used to control a motor that regulates the movement forward / backward cars.
The relationship between outpur enumerator 14 042 and input D Flip Flop 14 024 is arranged such that the signal is fed to each of the H Bridge can not be all '1 'simultaneously.


Manufacture of transformer TX and RX
Transformer T1 in the series transmitter and receiver, is the same stuff, and have made ​​themselves. Transformer was built using a plastic transformer Koker (spare part radio) that has a step that appears 5 lines that can be filled with coils of wire, as shown in the photograph. Wearing this Koker facilitate wire transformer windings. Otherwise it could be similar Koker, just the usual wear. Koker is a small transformer and feritnya also small (3 mm) as that used to be used for the assembly of CB 27 MHz radio.
Can wear a wire to wire the transformer in the unloading of Koker, carefully open coil of wire that already exist in the Koker because the wire is quite smooth and quite easy to break.
Step 1: rolls of wire which is numbered 5 feet to 4 feet in the direction of h (CW) for 3 rolls right on level 1 (pathway level above the bottom line)
Step 2: Roll the wire from 1 foot to 2 feet in a clockwise direction as much as 4 rolls right on level 2.
Step 3: Continue the roll (from step 2) in a clockwise direction as much as three quarter roll to 3 feet on three levels. (Can be determined exactly a quarter of the roll, because it has a track kokernya split into 4).
Manufacture of coil L1
Roll of copper wire diameter from 0.3 to 0.5 mm by 10 quarter rolls on Koker diameter of about 4 mm (which will be released) is also in a clockwise direction.
Manufacture of coil L2
Roll of copper wire 0.1 mm diameter by 50 rolls in plastic Koker without ferrite diameter of about 3.5 - 4 mm (look for the plastic material from scrap) is also in a clockwise direction. Long section on liputi rolls along the 5 mm.

Smart Tracker - track anything from your child to shoes

The EPE Minder consists of two type- approved transmitter units and a receiver. If either transmitter becomes separated from the receiver, a buzzer in the latter part will sound.
The receiver is fitted with a switch to allow the use of only one transmitter if required.

MIND HOW YOU GO

This system was originally designed as a two-channel child alarm (to protect either a single child or two children at the same time) but many other applications spring to mind. For example, one transmitter could be placed inside a briefcase and another in a coat pocket. If the user forgot to pick up either of these items and walked away, the buzzer would sound in the receiver. The receiver must be carried on the per- son in a way that would make it practically impossible to lose it. This could be done using a belt clip, for example. Note that it will not be possible to use this system if either the transmitter or receiver were placed inside metal containers or if there were substantial metallic “screening” objects between them.

OPERATING RANGE
The operating range may be adjusted according to the intended purpose. However, it does depend on conditions. Adjustment is carried out by means of “aerial link wires” on the circuit panels. With all these in place, the range of the prototype exceeds 12 metres in open air. It will also work throughout several rooms indoors if required. If the battery voltage in either transmit- ter or receiver falls below a certain value, or if a transmitter is switched off, a buzzer will sound. The specified batteries in the transmitters should provide several hun- dred hours of operation. Those in the receiver should provide around 100 hours.

PERSONAL CODE
The EPE Minder uses a system of digitally encoded low-power radio signals,
which pass from the transmitters to the receiver. The code is different for each transmitter so that the receiver is able to distinguish one from the other. Type-approved, pre-aligned transmitter and receiver modules that operate at 433MHz. are used. No traditional “radio” skills are needed and no licence is needed for their use in the UK.

TRANSMITTER CIRCUIT
The circuit diagram for a single trans- mitter unit is shown in Fig.1. Current is
supplied to the circuit from a 3V “coin” cell, B1, via on-off switch S2 and diode D1. The diode provides reverse-polarity protection. It is best to use the specified Schottky device which introduces a smaller forward voltage drop, and therefore less loss, than a conventional silicon diode (0·2V rather than 0·7V approximately). Capacitor C2 provides a small reserve of energy and pre- vents the supply voltage from fluctuating. This stabilises operation. A low power 7555 timer, IC1, is set up in a standard astable (pulse generator) con- figuration. While switched on, this produces a continuous train of on-off pulses at its output, pin 3.The choice of resistors R1, R2 and capacitor C1 provide one pulse per second for one of the transmitters (Unit A) and one pulse every 1·2 seconds for the other one (Unit B). In fact, the timings are slightly longer but it helps to consider them as above. Also, the on times are much longer than the off ones in each case. The purpose of this will be explained presently.




RECEIVER CIRCUIT

Receiver module, IC1, requires a supply of between 4·5V and 5·5V. The 6V nomi-
nal battery pack, B1, is brought within range by the forward drop of diode D5
(0·7V approx.) This diode also provides reverse-polarity protection. Capacitor C4 charges up and provides a small reserve of energy. This will be useful when the battery is nearing the end of its operating life. When the supply voltage falls below some 4V, the receiver stops working and the buzzer will sound. Below around 3V, the buzzer itself will not operate so it is important to check operation each time the units are used. Receiver IC1 should be of the a.m. (amplitude modulation) type as specified in the components list. As such, it will respond to the on-off pulses provided by the transmitter. The inexpensive super regenerative (rather than superhet) variety will be perfectly adequate. The low-power variants of these receivers have not been tested. Although for battery operation they would appear to be ideal, the standard type is more readily available.

The receiver may be considered as hav- ing separate r.f. (radio frequency) and a.f. (audio frequency) sections. These have individual supply inputs (pins 1, 10, 12 and 15 with some being duplicated). These are all connected together and decoupled using capacitor C1.

TESTING

Having completed the Receiver board, we can now commence testing all three
boards. It helps to minimise the Receiver “hold-off” time by adjusting preset VR1 fully anti-clockwise (as viewed from the left-hand side of the p.c.b.) and preset VR2 fully clockwise (as viewed from the right- hand side of the p.c.b.). Check that the Test link has been left unconnected to prevent IC4b signal from passing to transistor TR1’s base. Switch on Single Channel switch S3 so that Channel A is enabled. With On-Off switch S4 off, insert the batteries. Switch on. After a short delay, the buzzer WD1 should sound. Now place Transmitter A approximately
three metres away from the Receiver, insert the battery and switch on. The buzzer should begin to bleep every second. The same procedure is now repeated for Transmitter B. To do this, switch S3 off to disable Channel A and firmly twist together the ends of the Test link wires. It is not advisable to solder this connection unless the i.c.s are removed first. The buzzer should bleep at a slightly slower rate than for Transmitter A. It is unlikely that the time periods of the two transmitters will be the same (due to overlapping component tolerances).
However, if they are, one of them will need to be changed. Choose slightly higher values for resistors R1 and R2 to slow it down and vice versa. Remove the i.c.s before making any modifications.

HOLD-OFF TIME
When both transmitters have been test- ed, switch S3 on to enable both channels. presets VR1 and VR2 should now be adjusted to approximately mid-track posi- tion. This should provide a sufficient “hold off” time plus a small margin. The buzzer should now remain off and only sound when one of the transmitters is switched off or moved out of range. Leave them operating for several minutes. If the occasional spurious bleep is heard, increase the settings of VR1/VR2 to pre- vent this happening.

10Mhz to 1 MHz Frequency Converter

10Mhz to 1 MHz Frequency Converter Circuit

10Mhz to 1 MHz Frequency Converter

Part ListIC1 7404 = 1
IC2 7490A = 1
R 1 K = 2
R 3.3 K = 1
C Trim Polymer 39 pF = 1
C Electrophoresis 4.7 uF 16V = 1
C Milar 47 nF 16 V = 1
C Milar 10 nF 16 V = 1
C Ceramic 68 pF 50 V = 1 

TDA7000 Single Chip FM Radio

This fm radio series fm radio receiver circuit that uses a single ic TDA.


Quite easy to make this fm radio circuit, where all functions can be done by IC TDA, so we only add to the technical components only. External components are intended to support so you can determine its own range of frequencies to be used. Actually if you want to have the radio equipment are satisfactory you can buy a radio market. Now this type of radio is very varied and the prices varying as well. To be sure with the money of 30 thousand you can get the fm radio with satisfactory quality. Because now the most sold radio is using digital functions, unlike the more dominant is the first transistor radio. But if you are a hobby with experimental electronics, not the rupiah value but which you consider the value of their knowledge.

For the working principle of this circuit does not really exist that must be addressed because all the functions already performed by the internal circuit is ic TDA. That if we do a surgical series is in the ic, the result will not be much different circuits fm radio receiver in general.

Component List:
1. IC TDA 7000
2. Resistor: 100 Kohm, 22 Kohm 100 Kohm and potensio
3. Capacitors: 39 pF, 37 pF, 220 nF, 22 nF, 10 nF, 180 pF, 150 pF, 100 nF, 330 pF, 220 pF, 3.3 nF, 330 pF, 3.3 pF, 220 nF, 1.8 nF, 1.8 nF, 25-50 pF
4. Inductors: 56 NH (2 pieces)
5. Loudspeaker
6. Antenna

Transceiver Homebrew QRP SSB 80M Band

Radio communication transceiver is a radio transmitter at the same time the plane doubles as a radio receiver used for communication purposes.
It consists of the transmitter and the receiver are assembled in an integrated way. In mulamula generation, the transmitter or receiver or transmitter and receiver sections are assembled separately and is part of a stand sendirisendiri and can work well sendirisendiri Currently employed both parts are integrated in turn.

Transceiver Homebrew QRP SSB 80M Band

Aircraft simple transmitter consists of an oscillator generating radio vibration and this vibration after vibration boarded with our voice, in a technique called dimodulir radio, then by the antenna is converted into radio waves and transmitted. As we know that the sound waves we can not reach long distances, although its power is quite large, while the radio waves with a relatively small force can reach a distance of thousands of kilometers. In order for our voice can reach a far distance, then our voice superimposed on radio wave radio results from the vibration generator, called a carrier wave or carrier and the carrier wave was going to deliver our voice to distant places.

In a place far earlier, the radio waves emitted by the antenna received our speaker. By the antenna, radio waves had, in the form of electromagnetic waves is converted into electrical vibrations and into the receiver.

In our speaker receiver plane, vibration and vibration carriernya then discarded and then raised our voices be accommodated through the speakers. With this technique it is possible modilasi an audio vibrations reach a far range.

We sound vibrations enter the transmitter through a microphone, microphone output was often needs to be strengthened first with an audio amplifier is called a microphone preamplifier can be superimposed on the carrier for the modulator.

To increase the transmission power of a transmitter, vibration of the oscillator was before the emitted amplified first with a radio frequncy amplifier. Strengthening can be done once and can also be done more than once. Transmitter is not reinforced is called a level transmitter and the reinforced one called two-level and beyond. In general, to reach 100 Watt transmit power need to strengthen the 3 times, the first amplifier is called predriver, the next amplifier called the driver and final amplifier called the final amplifier.



Block Diagram of SSB Transceiver

If we're talking about the Single Side Band, then we touched more on amplitude modulation (AM). At each modulation we do we actually do the mixing between the radio frequency to audio frequency. Any mixing of two frequencies will occur the second summation process and at the same frequency reduction process occurs from both frequencies.

So every time we memodulir carrier, will produce two frequencies at once. For example, a carrier with a frequency of 3000 Kc we modulir with audio ferkuensi 3 Kc, the result is 3003 Kc and Kc 2997, or said occurred two sides of the band is the upper side and lower side. The top side and bottom side are shaped symetris, so if it is a direct result of modulation we mean we memancarakan exude the same two goods.

If we shine the way mentioned above, we use the mode is said to Double Side Band (DSB) because the carrier that includes top and bottom sides are emitted together. In factory-made plane, this mode is usually coded in terms actual AM radio is the DSB technique.

We know there are two kinds of ways to make the SSB, the first way is by phase shift method, another way is by filtering methods. The first way is not widely used and factory-made aircraft SSB generally use filtering.

Signal DSBSC, before the amplified and transmitted, is inserted into the SSB filter in advance to produce LSB or USB. Filters are used for this purpose is filtering crystal or mechanical filters. SSB transmitter is said to be more efficient than AM (DSB), we can give this picture as follows. For example transmitter AM (DSB) with power 150 Watt (100% modulation depth), then power on the USB and LSB respectively and the carrier has a 25 Watt 100 Watt power. We know that the audio side we are on the band. In the SSB emission, emitted only one side band LSB or USB is a powernya only 25 Watt.

With SSB 25 Watt beam, the audio we have to arrive at destination with the same clarity of information with jet AM (DSB) 150 Watt earlier.

Another advantage of SSB is the wide-band mode that can be more narrow. For the purposes of communication, SSB mode requires only the band width of about 3 Kc, while the DSB mode takes about 6 Kc, thus providing savings SSB mode the use of the band.

In the detector a SSB receiver, the received signal must be mixed in advance with the frequency of the outcome of a Beat Frequency Oscillator (BFO) and used as the BFO carrier oscillator.



Homebrew QRP SSB Transceiver circuit 80m Band

In general, the transceiver has the following block diagram, basically Transceiver tebagi into three main parts: Part VFO and BFO Part Transmitter (transmitter) and Section Receiver (receiver), where there are some special blocks that are used for both paths are either transmitter or receiver. Simply in this transceiver merkit Use the tools that we only Multi tester, RF Probe, SWR and Power Meter, Tone Generator Af 1Kc and multi-band Radio HF SSB to function as a monitor frequency BFO, VFO, monitor Balanced Modulator Exciter at once both the transmitter or receivers .



Data Transceiver:

Frekwency Range: 3700 Kc a / d 3900 Kc

Mode: LSB Singgle conversi

IF: 455 Kc (Ceramic Filter SFU type 455)

Local oscillator: VFO with Fine Tuning varactor diode

BFO: Ceramic Filter 455 SFU

RF PA: Power FET IRF640, IRF540, IRFZ44

DC: 13.8 V

RF Power: Over 8Watt



Description Schema.

The order of assembly sequence of assembling consecutive start BFO, VFO, AF Amp, IF amplifier and detector products to filter amplifier circuit, Mic Amplifier, Balanced modulator, RX mixer + Rf amplifier, mixer TX last order to facilitate the checking of each unit due to series This is a merger of several units of its own circuit.



BFO.

Memprgunakan SFU type ceramic filters used 455 two-foot middle leg to ground is coupled with capacitor and capacitor trimer and one leg edges to the base of the transistor, BFO uses two types of 2SC1815 transistors. Tc 1 to set the BFO on 453.5Kc frekwensy being black 455Kc IF transformer to regulate the level rather than BFO. To check this The set uses RF Probe. At the secondary BFO output T9 check with RF probe set T9 smpai maximum output level monitor in the radio frequency or HF trimer and Counter set Capacitor capacitor pararelnya until fulfilled the required frequency of 453.5Kc. To check whether there are oscillations in the BFO off Ceramik filter whether RF probe was still moving when he checks it again rangakain ceramik here if we filter out the RF probe is not moving.



VFO.

For we use the VFO FET 2SK192 Type and reinforced with a single fruit type transistor 2SC1815. Raft of this series as neat munkin with component selection, especially capacitor here we use a paper capacitor in series of Colpits oscillator. Close this series with a metal box along with all Varconya. VFO same testing with the BFO circuit Trime Koker Ferrite T13 dapakan frequency monitor the frequency of 4100 Kc s / d 4300 Kc obtained in case of no frequency range is set set the number of coil and capacitor values ​​bypas to groundnya.



AF amplifier.

AF Amplifier IC type LM386 used raft this section and check out by Spiker at putnya. Plug the foot of its inputs with a screwdriver had no defects at the time vulume potensio enlarged.



IF AMP AND PRODUCT detector.

Raft had Produc detectornya from starting until the fourth diode 1N60 IF transformer T7 455 black color until the transformer bypass capacitor to ground. Plug one side of the transformer with a screwdriver kai harden the audio volume on the speakers should be no reaction. Attach the amplifier transistor for testing at its base on the speaker should be louder voice. Raft this section everything.



FILTER amplifier.

Put all the components properly to eighth ceramic filter installed all. Just listen to the speaker plug on the input or pairs if a small number of meters of cable serves as an antenna trim T6 and T8 listen to the voice on the speaker until no defects dispeaker be hissed loudly.



RX MIXER AND RF amplifiers.

This series of rafts with the good and right in making the winding must be in a state of neat. Enter Snyal VFO to try to monitor the input mixer is QSO friends turn ferrite in successive Koker turu of T3 and T4 to get a strong signal reception and set the T1 and T2 ferrite to signal strong receipts received with respect to the level of the S Meter. If that is not found try to check this section further. Thus selesei we've Section Receiver unit.



MIC amplifier.

Raft of this section and replace all the LM 741 IC listen with headphones turn out putnya potensio putnya try out the level of talk in the microphone must be perfect without any defects in the out putnya.



BALANCE modulator.
Balanced modulator uses AN612 ic type commonly used on the CB radio. Raft all components correctly. To check this series of pairs of probes to the output at ic AN612 when no signal on the IC probe set trimpot until the deviation of zero and then try to plug in with tweezers pda mic input amplifier should have needle probe deviation. Then plug micropon try talking meter on the probe to move the motion according to your speech input level. Put some small cable length as the antenna you are trying to monitor diradio HF signal here was DSB Uper and Lower Side band sound. Dengarka until there is no defect here is selesei sets. Then go Filter amplifier output to try to talk Rangkian denagan put up some yards kabbel to secondary T6 try IF 455 White color monitor frequency of 455 Kc diradio on and try to talk trim ferrite Ferrite T6 and T8 until you hear the sound on USB diradio no oscillation and no deviation selef the meter on the probe. If on your radio monitors have didapatka perfect sound means you've selesei at once to part If rceifernya.



TX MIXER.
Raft section make this all too well circumference at T11 and T12 as neat as possible. Mixer that we use the type of premises IC TA7310 2SC1815 transistor amplifier pairs as well. Then plug VFO output and Out put Balnce Modulatornya on laulu TA7310 ic input probe pairs give the mic input with tone generator af ferrite trim T11 and T12 refer to deviation meter probe to obtain the largest deviation meter. Put microppon try talking dimicropon deviation meter see if we're not talking micropon but no deviation on the meter needle probe set trim T11 and T12 until no deviation in meters try to talk again in micropon deviation meter should move according to their level talks on the microphone. Try installing a few meters of the small wires on the monitor amplifier output tx diradio exciter in accordance with the frequency of our work with the fashion side band LSB if we do not get on the LSB mode with sempurana set again trimer capacitor on the BFO and rotate slightly if T8 transformer ferrite in black color smpai obtained side band we want. Up here seleseilah exciter circuit.



TX PA amplifier.
PA series we take the type of Power FET because it is cheap and easily available in the market. Create a transformer with a good and right not to email pda scuffed pair of wires until there is a first level transistor 2SC1815 output pairs of probes on trying to talk on the microphone deviation at Beh probe must be greater than the level of exciter here should not happen if not self-oscillation oscillation talk there is no deviation on the meter needle probe. In the event of self-oscillation try to check the part. Similarly, the driver assembly. Drivers are taking transistor type 2 SC1162. gained power level meter must be greater than the previous level as well. Then the final units also make coils as neat as possible. Testing out first input of the exciter arur Pa measuring voltage trimpot should not exceed 3V plug out put a probe hyarus no deviation on the meter. In the event of significant deviation occurs in pagian the oscilasi cell. Then plug the input of the exciter ac voltmeter pairs of avo meter try to speak in micropon meter on ac at avo meter should show a few volts ac in accordance with the level of talking on the microphone.

LOW PASS FILTER.
Create a winding low pass filter with a nice and neat L1 and L2. pairs of all components of the relay to properly check penyambunngan pairs dumy 50 Ohm load at the antenna output connector do not forget to SWR and Power meter is installed. Speaking at a microphone set set ferrite Koker L1 and L2 to obtain the maximum and then check SWR poiwer it must appoint 1: 1 with dumy Load 50 ohms if not check again Low Pass filters. After iti try to plug the 80m band antenna connector is on your monitor qrp radio QSO friends who try to enter it and asked for the report

source [link

AM Transmitter circuit analysis

AM Transmitter circuit analysis


Parts of the transmitter AM:

1. The input signal
The input signal in the form of electrical signals generated by mechanical equipment modifier into electrical vibrations. Tools that generate these signals include a microphone, LPs, and others. Power signals issued by these tools, the amplitude is still too small, so it requires strengthening again.



2. Audio amplifier
Audio signal that is still small signal voltage amplitude will be strengthened, so that the resulting stress intensity audio signal is strong. Amplifier section can be either audio amplifier or preamp only with the amplifier end.

3. Oscillator circuit
Oscillator circuit is an electronic circuit that functions to produce high vibration. The frequency of the resulting circuit is high because if low, this electrical vibration will not radiate much.
Oscillator which is used in the transmitter is the oscillator RF. RF oscillator is a high frequency generator that serves as a signal carrier. Terms oscillator which is capable of generating both high-frequency equipment. Electronic components that can generate these frequencies is Crystal. Crystals are commonly used in FM transmitter has rangkainan 27MHz output frequency.

4. Buffer amplifier (Buffer)
Buffer serves to insulate the RF oscillator with power amplifier, so the fixed oscillator frequency. In addition, this section also reinforces the amplitude of RF signals.

5. Modulator
Modulator is part of an audio signal / information signal with carrier signal. In AM transmitters, the carrier signal amplitude changes are made in accordance with changes in signal amplitude information.

6. Power amplifier
Served to strengthen the power amplifier before dikirimkam termodulsi signal to the antenna to be transmitted. Type of amplifier used is a class C power amplifier class C power amplifier diplih because of its ability to strengthen the radio frequency (above 20kHz). Transistors are used in this amplifier is the RF power transistor, which has the characteristics of the output power ranged from 1 to 75 watts.

7. Power supply
Power supply is a source of power for the transmitter circuit to operate. At the transmitter power supply is required with a low level of ripple DC. It is intended to prevent hum.

8. Antenna
Antennas in a transmitter is spearheading the delivery of a radio signal transmitter to a receiver. If the antenna is used at a transmitter not meeting the correct specification, then the results are not expected to be achieved. In addition to the range to be erratic also the possibility of damage to the transmitter circuit due to back pressure from the antenna. When the rod antenna is widely used on aircraft such as the transistor radio, car radio receiver, walky Talky, Handy Talky, and so forth.



How it works series AM transmitters:

This powerful AM transmitters ntuk fairly large, use the tuner 3.587 mhz ceramic resonator and resonator filters are also sold with a value of 5.5 mhz, 7.7 mhz and 10.7 mhz.Jarak transmitter range is approximately 2-4 km. the working principle of this circuit are: filter resonator / ceramic filters generate value from the filter frequency resonator tsb. This frequency is amplified by the transistor can be changed so that t1.frekuensi dpperlukan C7 as a regulator / placement. superimposed sound signal through the audio transformer.frekuensi which awakened by the filter resonator and fed t1 kepenguat to be strengthened further so as to achieve the desired power passed to the antenna. t2 and t3 as a buffer as a final power amp

RF power amplifier IC

RF power amplifier IC is a type of electronic amplifier used to convert low-power radio frequency signal into a larger signal strength is important, usually for driving a transmitting antenna. This is usually optimized for high-efficiency, high output power (P1dB) of compression, loss of income on the input and output, better benefits, and optimal heat dissipation.



RF power amplifier IC
RF power amplifier IC
To make our amplifiers can also use transistors or IC OP Amp. In the op amp is actually a transistor that is in the form of a series so it's easier to use.

Suppose that is used in the amplifier IC Op Amp 741 is a monolithic high performance electronic components that use Fairchild epitacial process. IC Op Amp 741 is an IC in which packed a differential circuit. The data sheet of IC Op Amp 741.

Transmitter and Receiver AM Superheterodyne

TRANSMITTER AND RECEIVER AM SUPERHETERODYNE

Distribution of information from one place to another can be done with a wide - variety of ways. As one way to distribute information in a radio communications technique, was made with modulated AM transmitter rise. The term superheterodyne stands for supersonic heterodyne, which can be interpreted as the generation of mixed frequencies above the hearing.

Transmitter

Receiver

-AM-Transmitter
AM transmitter is a transmitter that utilizes analog modulation techniques are AM (Amplitude Modulation), to transmit information signals. The source carrier is driven by a crystal oscillator at the carrier frequency or multiples below. The amount of output frequency can be adjusted by changing the value of L and C. Cultivated constant frequency emitted wave output generated for the better. This was followed by a buffer amplifier tuned. With the buffer labored to frequencies generated by the oscillator constant. Signal information entered on this circuit to be mixed with a carrier signal. At the transmitter, there are a series of modulators, which generally is a class C amplifier Class C amplifier is actually resulted in the emergence of unexpected flaw in the envelope modulation signal containing information. The output of RF amplifier is transmitted via an antenna.

Superheterodyne-AM-Receiver
AM receiver functions to receive signals modulated AM and do the demodulation of the signals. The signal was first received by the antenna, then the selection signals are separated is then amplified to a level that can separate the information signal from the signal (carrier) at the time of the AM demodulator or detector AM. Recipients an old-fashioned AM
used for receiving amplitude modulated signals typically use the principle of a tuned radio frequency or TRF. Recipients of this kind have poor selectivity adjacent signals, especially when required to tune in scope - a wide frequency range.
Therefore now superheterodyne receiver was developed to improve the selectivity of the channel adjacent fatherly (adjacent channel selectivity) of this by placing the bulk of the frequency selectivity at the level - the level of intermediate frequency (IF) after the first frequency conversion much easier fatherly get this selectivity in the IF, because stay tuned to the IF circuit and does not change even if the selected stations - different stations. Superheterodyne principle occurs when when two sinusoidal signals with different frequencies are mixed, so that they multiply or add to each other and the output signal will contain components - the component signal at a frequency which is the sum, difference and of the two original frequencies. There is also a mixture of harmonics of this signal, but if the second fundamental frequency is selected with the heart - this heart does not interfere with each other (interference).
The first level of a tuned RF functions to improve the ratio S / N. This level also provides a little perbaiakn RF selectivity and a decrease in back of the oscillator beam. Then tune the RF output is fed to the input signal from an oscillator circuit where there penyampur generation with tuning capacitance, and a third tuning capacitor (tuning capacitor) together (ganged) mechanically on a common axis and button settings. Penyampur oscillator and can be a separate circuit or it can also be combined as in the series penyampur autodyne. Next penyampur fed into two IF amplifier tuning, which remains tuned and has sufficient selectivity to reject signals from the channel boundaries. The output of the IF amplifier is inserted into the detector, where the audio signal generated back or in demodulation. The detector also provides a signal for automatic acquisition settings (Automatic Gain Control).
AGC signal applied to one or several of IF and RF amplifiers. Audio output, transmitted through a volume control to the audio amplifier, which usually consists of one low-level voltage amplifier followed by a
power amplifier and finally connected to a loudspeaker.