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Amplitude Modulation 2.2 AM RECEIVERS

Amplitude Modulation 2.2 AM RECEIVERS. To define AM demodulation To define and describe the receiver parameters To describe the operation of a tuned

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Page 1: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Amplitude Modulation2.2 AM RECEIVERS

Page 2: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

To define AM demodulation To define and describe the receiver

parameters To describe the operation of a tuned

radio frequency (TRF) receiver To describe the operation of a

superheterodyne receiver

Page 3: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Demodulation Receiver parameters Tuned radio frequency (TRF) receiver Superheterodyne receiver

Page 4: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

AM demodulation – reverse process of AM modulation.

Demodulator: converts a received modulated-wave back to the original source information.

Basic understanding of the terminology commonly used to describe radio receivers & their characteristics is needed to understand demodulation process

Page 5: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned
Page 6: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Selectivity Bandwidth improvement Sensitivity Dynamic range Fidelity Insertion Loss Noise temperature & Equivalent noise

temperature

Page 7: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Used to measure the ability of the receiver to accept a given band of frequencies and reject all others.

Way to describe selectivity is to simply give the bandwidth of the receiver at the -3dB points.

Not necessarily a good means of determining how well the receiver will reject unwanted frequencies.

Page 8: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Give the receiver bandwidth at two levels of attenuation. Eg: -3dB, -60dB

The ratio of two BW ~ Shape factor SF = B(-60 dB) / B(- 3dB)

Where SF – Shape factor B(-60dB) – BW 60dB below max signal level

B(-3dB) – BW 3dB below max signal level

Page 9: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

If both BW equal, the shape factor would be 1.

Impossible to achieve in practical circuit

Example application for SF nearly 1SatelliteMicrowaveTwo way radio Rx

Page 10: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Thermal noise directly proportional to bandwidth.

Reduce BW ~ reduce noise, improving system performance.

Reducing BW = improving the noise figure of the RX

Page 11: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Bandwidth Improvement, BIBI = BRF /BIF

Where BRF = RF Bandwidth (Hz)

BIF = IF Bandwidth (Hz)

Noise figure improvement,NF = 10 log BI

Page 12: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

The minimum RF signal level that can be detected at the input to the Rx and still produce a usable demodulated information signal.

Usually stated in micro volts of received signal.

Rx sensitivity also called Rx threshold.

Page 13: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Depends on:The noise power present at the input to

the Rx.Rx noise figure.AM detector sensitivity.BI factor of the Rx

To improve ~ reduce the noise level Reducing the temperature or Rx BW or RX noise

figure

Page 14: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

The difference (in dB) between the minimum input level necessary to discern a signal and the input level that will overdrive the Rx and produce distortion.

Input power range over which the Rx is useful.

Page 15: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

A dynamic range of 100dB is considered about the highest possible.

A low dynamic range can cause a desensitizing of the RF amplifiers and result in severe intermodulation distortion of the weaker input signal.

Page 16: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

A measure of the ability of a communication system to produce (at the output of the Rx) an exact replica of the original source information.

Page 17: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Forms of distortion that can deteriorate the fidelity of a communication system:-AmplitudeFrequency Phase

Page 18: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Thermal noise directly proportional to temperature ~ can be expressed in degrees, watts or volts.

Environmental temperature, T (kelvin) T = N/KB

Where N = noise power (watts) K = Boltzman’s Constant

(1.38 X 10-23 J/K) B = Bandwidth (Hz)

Page 19: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Equivalent noise temperature, (Te)

Te = T(F-1)

Where T = environmental temperature

(kelvin) F = Noise factor

Te often used in low noise, sophisticated radio receivers rather than noise figure.

Page 20: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

IL is a parameter associated with the frequencies that fall within the passband of a filter.

The ratio of the power transferred to a load with a filter in the circuit to the power transferred to a load without the filter.

IL (dB) = 10 log (Pout /Pin)

Page 21: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Two basic types of radio receivers.1. Coherent

Synchronous receivers The frequencies generated in the Rx & used for

demodulation are synchronized to oscillator frequencies generated in Tx.

2. Non-coherent Asynchronous receivers Either no frequencies are generated in the Rx or

the frequencies used for demodulation completely independent from the Tx’s carrier frequency.

Non-coherent detection = envelope detection.

Page 22: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

EXAMPLE OF COHERENT DEMODULATION: SSB

The received signal is heterodyned /mixed with a local carrier signal which is synchronous (coherent) with the carrier used at the transmitting end.

LPF XSSB

cos wct

Coherent demodulation

Page 23: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Tuned Radio Frequency Rx Superheterodyne Rx

Page 24: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned
Page 25: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

RF amplifier - to filter and amplify the received signal to a level sufficient to drive the detector

Audio detector - converts RF signals directly to information

Audio stage – amplifies the information signals to a usable level

Advantages – simple and have relatively high sensitivity

Page 26: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Bandwidth is inconsistent and varies with center frequency when tuned over a wide range of input frequenciesThis is caused by a phenomenon called

the skin effectSkin effect phenomenon:

B = f/QWhere Q is quality factor.

Page 27: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Instability due to large number of RF amplifiers all tuned to the same center frequency.Can be reduced by tuning each amplifier to

a slightly different frequency, slightly above or below the desired center frequency.

Their gains are not uniform over a very wide frequency range because of the non-uniform L/C ratios of the transformer-coupled tank circuits in the RF amplifiers

Page 28: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned
Page 29: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

RF section:Preselector is use to provide enough initial

bandlimiting to prevent a specific unwanted radio frequency called the image frequency from entering the receiver

Preselector also reduces the noise bandwidth of the receiver

RF amplifier determines the sensitivity of the receiver

Page 30: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Mixer/ converter section: Is a nonlinear device and its purpose is to

convert radio frequencies to intermediate frequencies (RF-to-IF translation)

IF section:Most of the receiver gain and selectivity is

achieved in the IF section IF is always lower in frequency than the RF

because it is easier and less expensive to construct high-gain, stable amplifiers for low-frequency signals.

Page 31: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Detector section:To convert the IF signals back to the original

source information Audio amplifier section:

Comprises several cascaded audio amplifiers and one or more speakers

Page 32: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

High side injection,flo = fRF + fIF

Low side injection flo = fRF - fIf

Page 33: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Mixers generate signals that are the sum and difference of the incoming signal frequency (fS) and the frequency of the local oscillator (fLO).

The difference frequency is more commonly chosen as the IF.

Some receivers use the sum frequency for the IF.

Page 34: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

An image (fIM) is an undesired signal that is separated from the desired signal frequency (frf) by two times the IF (fIF).

fI = frf + 2fIF or frf - 2fIF

Images interfere with the desired signal. Images can be eliminated or minimized by:

Proper selection of the IF in design.Use of highly selective filters before the mixer.Use of a dual conversion receiver.

Page 35: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Image frequencyfim = fRF + 2fIF

Image Frequency rejection ratio IFRR = √ (1 + Q²ρ²)Where ρ = (fim/fRF) –(fRF/fim)

Page 36: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

For a citizens band receiver using high-side injection with an RF carrier of 27 MHz and an IF center frequency of 455 kHz, determine

a. Local oscillator frequency b. Image frequency c. IFRR for a preselector Q of 100

Page 37: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

AM Radio broadcastingCommercial AM radio broadcasting utilizes

the frequency band 535 – 1605 kHz for transmission voice and music.

Carrier frequency allocation range, 540-1600 kHz with 10 kHz spacing.

Page 38: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

Radio stations employ conventional AM for signal transmission – to reduce the cost of implementing the Rx.

Used superheterodyne Rx. Every AM radio signal is converted to

a common IF frequency of fIF = 455 kHz.

Page 39: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

To define AM demodulation To define and describe the receiver

parameters To describe the operation of a tuned

radio frequency (TRF) receiver To describe the operation of a

superheterodyne receiver

Page 40: Amplitude Modulation 2.2 AM RECEIVERS.  To define AM demodulation  To define and describe the receiver parameters  To describe the operation of a tuned

END OF CHAPTER 2.2 :AM RECEIVER