Showing posts with label am. Show all posts
Showing posts with label am. Show all posts

Saturday, October 4, 2014

AM Receiver based on TDA1572 IC

The circuit is a high performance AM receiver based on the Philips TDA1572 IC. The TDA1572 is an integrated AM receiver circuit that has all the essential circuits such as RF amplifier, mixer, IF amplifier, AGC circuit, the pilot signal strength indicator, audio pre amplifier, etc. controlled oscillator incorporated into it. The internal oscillator frequency can be up to 50 Hz and the IC can accept RF signals up to 500 mV. HF inputs are static protected and separate buffer, voltage controlled oscillator makes it possible to use single coils in the circuit.

Inductor L1 connected between pins 14 and 13 of the IC sets the frequency of the oscillator. Potentiometer R12 is used to vary the voltage on the varicap tuning diode D2. C4 is associated with the internal balance of full-wave detector circuit. Pin 11 is the circuit output if the internal field indicator of strength. The power available on this pin is a function of field strength available and has a good linearity for logarithmic input signals.

The intermediate frequency of this circuit is built around 455 KHz. The band pass filter circuit ago about CF1 and CF2 6kHz select the band around the intermediate frequency. In simple words, IF double-balanced mixer output available on pin is filtered and applied to the input of gain controlled amplifier filter capacitors C16 and C17 are used to reduce the solution time of AGC. The transistor Q2 and associated components form the driver circuit M1 field strength meter. Resistors R9 R5and preset can be used to configure the meter. Capacitor C3 is a bypass capacitor for the audio preamplifier circuit of frequency within the IC. Capacitors C16 and C12 prevent noise (if any) of the power line.

TDA7052 is an audio stage 1W amplifier to drive the speaker. TDA7052 is an integrated bridge amplifier that can deliver an output power of 1W at 8 ohm speaker. Capacitor C18 couples the audio output of the TDA1572 to TDA7052. Potentiometer R10 can be used to control the volume.

Sunday, September 14, 2014

SW Converter for Digital AM Car Radio

SW Converter for Digital AM Car Radio Circuit Diagram This schema is purposely presented with many loose ends (not literally, of course) to stimulate experimenting with RF schemary at a small outlay. Looking at the schema diagram you may recognize a modified version of the SW Converter for AM Radios described elsewhere in this issue. The modifications were necessary to make the schema compatible with a digital rather than analogue AM car radio. The main difference between digital AM radios and their all-analogue predecessors is that tuning is in 9 kHz (some-times 4.5 kHz steps) in compliance with the international frequency allocation for the band. Obviously, that particular step size, desirable as it may be on MW, is a stumbling block if you want to use a digital AM receiver in combination with a frequency step-up converter for SW, where chaos reigns and there is no fixed step size. The first attempt was to make the crystal oscillator variable by about 5 kHz each way.
 
SW Converter for Digital AM Car Radio Circuit diagram :
SW
SW Converter for Digital AM Car Radio Circuit Diagram
 
Unfortunately, despite serious efforts, the crystal could not be pulled more than 1 or 2 kHz so another solution had to be found. After studying the NE/SA602/612 datasheet, it was found that a variable LC based oscillator was the best alternative. The schema worked after winding a resonant LC schema and adding a 0.1 µF series capacitor to block the DC component on pin 6 of the NE602 (612). When the tuning was found to be a bit sharp with the original capacitor, a simple bandspread (or fine tuning) feature was added by shunting the LC resonant schema with a lightly loaded 365 pF tuning capacitor (C10) which, like the main tuning counterpart, C8, was ratted from an old transistor radio. The tuning coil, L1, consists of 8 to 10 turns of 0.6-0.8mm dia. enamelled copper wire (ECW) on a 6-8 mm dia. former without a core. With this coil, frequency coverage will be from about 4 MHz to 12 MHz or so. Details on Tr1 may be found in the referring article.
 
Note that no tuning capacitor is used on the secondary — the input stray capacitance of the NE602 (612) does the trick. A BFO (beat frequency oscillator) was added to enable SSB (single sideband) signals to be received. The BFO built around T1 is simple, has a heap of output and is stable enough to hold an SSB signal for a few minutes without adjustment. The BFO frequency is tuned with C3. Tr2 is a ready-made 455 kHz IF transformer whose internal capacitor was first crushed and then removed with pliers. When S2 is closed the BFO output signal is simply superimposed on the NE602 (612) IF output to the MW radio. The converter should be built into a metal box for shielding. If you find that the BFO gives too much output, disconnect it as suggested in the schema diagram and let stray coupling do the work. Sensitivity, even on a 1-metre length of car radio aerial, is quite amazing. Bearing in mind that most of the major international SW broadcasting stations like Radio NHK Japan, Moscow, BBC etc.) generate enough power to make sure that you will hear them, it is still quite exciting to hear such signals for the first time on your car radio. 

Sunday, September 7, 2014

AM Receiver circuit with MK484

This is a AM Receiver with single IC MK484. If your are interested to build this radio schema, you may buy the kits include the component part list at kitsrus.com.

One

Part list:

R9, R10_________ 6R8
R6_____________ 100R
R3_____________ 1K
R1_____________ 4K7
R7_____________ 5K6
R4_____________ 10K
R2_____________ 100K
R5_____________ 150K
R8_____________ 820K
Pot_____________ 10K log pot
Coil & ferrite bar set
C7______________ 470p ceramic
C, C4, C5, C6_____ 470nF monoblock
C2______________ 100nF monoblock
C3, C8___________ 100uF electrolytic capacitor
VariCap__________ 60/160 AM tuning cap
D1, D2, D3, D4____ 1N4148 diode
Q1, Q3___________ BC548
Q2______________ BC558
IC1_____________ MK484 AM radio IC TO92
Speaker__________ 0.5 or 1W, 8 ohm speaker

Visit this AM Radio Receiver for more explanation.

Sunday, August 17, 2014

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.