A07B500S manual
Pag. 56
.The unwanted transmitter L is then modulated with
a 500Hz sinusoidal one obtained from audio generator A.
AttenuatorB Is then adjusted to obtain a deviation of 32 KHz.
The audio frequency level as the input of the unwanted
transmitter
before the pre-emphasis
is now measured by
means of the noise voltmeter U. The noise-weighting network
is switched off. Next, a noise signal C+D replaces the
sinusoidal tone, and attenuator E is adjusted to obtain the
same peak-reading as before at the noise voltmeter. The quasi-
peak deviation is thus equal to 32 KHz.
Since the pre-
emphasis has not been included in the level measurement,
the actual peak deviation is higher .
The described adjustment
corresponds to the present-day broadcasting practice.
Note. –
A normal sound-broadcasting programme without
compression is simulated by modulating the unwanted
transmitter with the standardized coloured noise signal using
a frequency deviation of 32 KHz. Therefore, the results
obtained with this method and this deviation are only valid
for sound broadcasting programmes without compression.
The not considering the pre-emphasis leads to a difference of 1dB about, whereas the audio
compressors installed now in every broadcast networks increase the modulation power of 2dB
further on.
If a stereophonic signal is being examined the Rec.ITU-R BS.412-7 is very clear and it makes no
distinction between the modulation power within monophonic and stereophonic signal:
Rec. ITU-R BS.412-7
2.3
The radio-frequency protection ratios assume that
the
maximum peak deviation of 75 KHz is not exceeded. Moreover, it is
assumed that the power of the complete multiplex signal
including pilot-tone and additional signals , integrated over any
interval of 60 s is not higher than the power of a MPX signal
containing a single sinusoidal tone which causes a peak dev.
of 19 KHz (see Note 4 )
.............................................................................................
Note 4 – The power of a sinusoidal tone causing a peak dev. of
19 KHz is equal to the power of the coloured noise
modulation
signal
according to ITU-R BS.641
i.e. a coloured noise signal
causing
a quasi-peak deviation of 32 KHz
.
Whereas the IEC 244-13 makes a difference between monophonic signal (reference of 32KHz) and
stereophonic one (40KHz):
IEC 244-13
9.4
For monophonic operation
Check that the pre and de-emphasis filters are in circuit
Adjust output of the LF generator at <1KHz to a level witch
corresponds to a frequency dev. 7.4 dB below maximum rated
deviation (
32 KHz for 75 KHz dev
.)
Measure the peak value by means of the noise meter at the out
of the demodulator ( without weighting network).
Switch the LF generator out of circuit and the noise generator
Summary of Contents for A07B500S
Page 15: ...A07B500S manual Pag 15 A07B500S TRANSMITTER BLOC DIAGRAM...
Page 16: ...A07B500S manual Pag 16 A07B500S POWER SUPPLY BLOC DIAGRAM...
Page 27: ...A07B500S manual Pag 27...
Page 34: ...A07B500S manual Pag 34...
Page 42: ...A07B500S manual Pag 42 ADJUSTMENT4 6 1 Module PWN PW500 power supply...
Page 46: ...A07B500S manual Pag 46...
Page 68: ...A07B500S manual Pag 68 fig 9a...
Page 69: ...A07B500S manual Pag 69 fig 9b...
Page 70: ...A07B500S manual Pag 70 fig 9c...
Page 73: ...A07B500S manual Pag 73 fig 9c...
Page 74: ...A07B500S manual Pag 74 DIAGRAMS AND LAYOUTS...
Page 75: ...A07B500S manual Pag 75 PWN BOARD POWER SUPPLY...
Page 76: ...A07B500S manual Pag 76 PWN BOARD POWER SUPPLY...
Page 79: ...A07B500S manual Pag 79 AUDIOIN BOARD AUDIO INPUTS...
Page 80: ...A07B500S manual Pag 80 AUDIOIN BOARD AUDIO INPUTS...
Page 81: ...A07B500S manual Pag 81 AUDIOIN BOARD AUDIO INPUTS...
Page 85: ...A07B500S manual Pag 85 LCDP BOARD DISPLAY DRIVER...
Page 86: ...A07B500S manual Pag 86 LCDP BOARD DISPLAY DRIVER...
Page 90: ...A07B500S manual Pag 90 MBP BOARD MOTHER BOARD...
Page 91: ...A07B500S manual Pag 91 MBP BOARD MOTHER BOARD...
Page 92: ...A07B500S manual Pag 92 MBP BOARD MOTHER BOARD...
Page 93: ...A07B500S manual Pag 93 MBP BOARD MOTHER BOARD...
Page 97: ...A07B500S manual Pag 97 258 1 74HC00N Gate 2 Input NAND U23 KEY BOARD KEY...
Page 98: ...A07B500S manual Pag 98 KEY BOARD KEY...
Page 100: ...A07B500S manual Pag 100 SINTD BOARD VCO OSCILLATOR...
Page 101: ...A07B500S manual Pag 101 SINTD BOARD VCO OSCILLATOR...
Page 104: ...A07B500S manual Pag 104 Total DMPX BOARD STEREOCODER...
Page 105: ...A07B500S manual Pag 105 DMPX BOARD STEREOCODER...
Page 108: ...A07B500S manual Pag 108 AGC BOARD AUDIO AUTOMATIC GAIN CONTROL...
Page 109: ...A07B500S manual Pag 109 AGC BOARD AUDIO AUTOMATIC GAIN CONTROL...
Page 112: ...A07B500S manual Pag 112 MBP500 BOARD MBP A500 CONNECTION...
Page 113: ...A07B500S manual Pag 113 MBP500 BOARD MBP A500 CONNECTION...
Page 115: ...A07B500S manual Pag 115 A15 BOARD RF DRIVER AMPLIFIER...
Page 116: ...A07B500S manual Pag 116 A15 BOARD RF DRIVER AMPLIFIER...
Page 118: ...A07B500S manual Pag 118 DC250 BOARD DIRECTIONAL COUPLER...
Page 119: ...A07B500S manual Pag 119 DC250 BOARD DIRECTIONAL COUPLER...
Page 122: ...A07B500S manual Pag 122 A500 BOARD POWER AMPLIFIER A500 BOARD POWER AMPLIFIER...
Page 123: ...A07B500S manual Pag 123 A500 BOARD POWER AMPLIFIER...
Page 124: ...A07B500S manual Pag 124 PW500 BOARD AUXILIARY POWER SUPPLY...
Page 125: ...A07B500S manual Pag 125 PW500X BOARD AUXILIARY POWER SUPPLY...
Page 126: ...A07B500S manual Pag 126 PW500 BOARD AUXILIARY POWER SUPPLY...
Page 127: ...A07B500S manual Pag 127 PW500X BOARD AUXILIARY POWER SUPPLY...
Page 130: ...A07B500S manual Pag 130 LPF500 BOARD RF LOW PASS FILTER...