EN 60835-2-9-1995 en Methods of Measurement for Equipement Used in Digital Microwave Radio Transmission Systems Part 2 Measurements on Terrestrial Radio-Relay Systems Section 9 Ser.pdf
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1、- STD-BSI BS EN b0835-2-9-ENGL 1997 1b2LibbS 0584831 351 BRITISH STANDARD t Methods of measurement for equipment used in digital microwave radio transmission systems Part 2. Measurements on terrestrial radio-relay systems Section 2.9 Service channels The European Standard EN 60835-2-9 : 1995 has the
2、 status of a British Standard 1CS 33.060.30 NO COPPING WITHOUT BSI PERMISSION EXCEPT AS PERMITTED BY COPYRIGHT LAW BS EN tiU b) permitted deviation sensitivity range. 2.3 Output deviation sensitivity 2.3.1 Definition The output deviation sensitivity, Sd, of a frequency demodulator for a sinusoidal s
3、ignal with a given frequency is expressed as the ratio of the baseband voltage, vbl at the service channel output to the frequency deviation Af, .e.: vb and Af are both expressed as either peak or r.m.s. values. The deviation sensitivity of the demodulator is a function of the baseband frequency if
4、a de-emphasis network is applied. STD.BSI BS EN b835-2-7-ENGL 1977 Lb24bbS 0584840 364 Page 6 EN 60835-2-9 : 1995 2.3.2 Method of measurement The demodulator i.f. input pori is disconnected from the receiver and driven by a signal generator, tuned to the nominal intermediate frequency, and supplying
5、 an f.m. signal of known deviation and modulation frequency. The service channel output port is connected to a low frequency level meter presenting the correct load impedance, and the output level is then measured. The deviation sensitivity is calculated as the ratio of the measured out- put level t
6、o the applied signal generator deviation. 2.3.3 Presentation of results The applied signal generator deviation, together with the measured output level and the calculated deviation sensitivity, are tabulated. 2.3.4 Details to be specified The following items should be included, as required, in the d
7、etailed equipment specifi- cation: a) .f. input signal level, deviation and modulation frequency to be applied; b) permitted deviation sensitivity range. 2.4 Transmit-receive section parameters The following parameters are measured on a transmit-receive section under specified input level conditions
8、, with transmitter and receiver connected by an adjustable r.f. attenuator (see also IEC 835-2-4). 2.4.1 Insertion gain or loss See IEC 835-1-2. 2.4.2 Amplitude-frequency characteristic See IEC 835-1-3. The amplitude-frequency characteristic is measured in the specified service channel frequency ran
9、ge at the nominal seivice channel input level. 2.4.3 Signal-to-noise ratio 2.4.3.1 Definition Signal-to-noise ratio is expressed as the decibel difference of a specified test tone level to the total level of noise at the output of the service channel. A weighting filter is normally used for the meas
10、urement and the filter characteristic should be stated. STD-BSI BS EN b0835-2-9-ENGL 1997 m Lb24bb9 0584843 2TO m Page 7 EN 60836-2-9 : 1996 2.4.3.2 Method of measurement The signal-to-noise ratio is measured by driving the service channel input port at nominal level at the reference frequency, and
11、noting the r.m.s. signal level from the reading of a level meter connected to the service channel output port. The driving signal is then removed, and the weighted noise is measured via a weighting filter as specified in annex A, ref. i. The measurement is carried out at several specified receiver i
12、nput levels. The effect of simultaneous digitai transmission of the main bit stream on the service channel signal-to-noise ratio should also be ascertained. 2.4.3.3 Presentation of results Results are presented by tabulating the weighted signal-to-noise ratios at different receiver input levels, wit
13、h and without simultaneous main digital signal transmission. 2.4.3.4 Details to be specified The following items should be included. as required, in the detailed equipment specifi- cati0 n : a) minimum required weighted signal-to-noise ratio; b) service channel nominal input level and reference freq
14、uency; c) receiver input level range (for example, O dB to -20 dB with respect to nominal in- put level); d) loading conditions of main channel and of not measured service channels. NOTE - In the case of mon thin OM anilogue service channel Iranrmitted with FDM multiplexing, dl other service channel
15、s should bo individually loaded by voice band noise loads. 2.4.4 NOn-linear distortion 2.4.4.1 Definition Non-linear distortion is the ratio of the total level of harmonics and/or intermodulation products within a channel to a specified test tone level at the output of the service channel, and is ex
16、pressed in percent. 2.4.4.2 Method of measurement The non-linear distortion is measured by driving the service channel input port at nominal level at several specified frequencies, and measuring the total non-linear distortion percentage with a distortion meter connected to the service channel outpu
17、t port. The measurement is carried out at a nominal receiver input level. The effect of simultaneous digital transmission of the main bit stream on the service channel non-linear distortion should also be ascertained. 2.4.4.3 Presentation of results Results are presented by tabulating the total harm
18、onic distortion percentages and measuring frequencies, with and without digital signal transmission. STD-BSI BS EN b0835-2-9-ENGL 1997 m 1b24bb9 0584842 137 m Page 8 EN 60835-2-9 : 1995 2.4.4.4 Details to be specified The following items should be included, as required, in the detailed equipment spe
19、ci- f icat ion: a) maximum permitted harmonic distortion percentage; b) measurement frequencies; c) nominal service channel input level: d) nominal receiver input level. 3 Analogue Interface of service channels transmitted by digital techniques The following parameters are measured using back-to-bac
20、k connected transmit and receive side digital multiplex equipment as shown in figure 3. The measurement para- meters conform with those given in annex A, ref. 2. 3.1 Return loss See IEC 835-1-2. 3.2 Amplitude-frequency characteristic See clause 2 of IEC 835-1 -3. 3.3 PCM coder overload point 3.3.1 D
21、efinition The overload point of the PCM coder is that level of the input signal which results in the first appearance of the highest positive or negative PCM output code, 1.8. 1111 1111 or O1 11 11 11 (positive and negative peak values, A-law). 3.3.2 Method of measurement A test signal from a low-fr
22、equency generator is connected to the PCM coder input terminal at the reference frequency, and its level is increased until the highest PCM output code first appears. This can be observed by displaying the PCM coder output pulses on an oscilloscope synchronized by the PCM clock signal or, if availab
23、le, by noting the overload indicator lamp of the coder. 3.3.3 Presentation of results The input level resulting in overload should be given in dBmO, together with the measuring frequency . 3.3.4 Details to be specified The following items should be included, as required, in the detailed equipment sp
24、ecifi- cat ion : a) measuring frequency; b) permitted range of input levels resulting in overload; c) relative level at input terminal, dBr. * * m STD-BSI BS EN b0835-2-7-ENGL 3777 m 3b2qbbS 0585073 b78 = Page 9 EN 60835-2-9 : 1995 3.4 Idle channel noise 3.4.1 DefnitOn The idle channel noise level i
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