THE WAY OF LOGICAL DATA TRANSMISSION ALONG A SINGLE-WIRE COMMUNICATION LINE ON THE BASIS OF MULTIZONE FREQUENCY-WIDTH-PULSE MODULATION

2015, vol. 15, no. 1, pp. 34–40 34 At reconstruction of technological objects in reliance on modern means of electronic regulation of parameters, as a rule, it is necessary to run additional cable communication lines on the board of the operator, for example, to input the information about a control system functional elements condition [1–5]. It inevitably results in significant economic and labour expenses, and frequently it appears to be difficult to perform task because of control object remoteness and originally incorporated design features of the cable communications. In these conditions it is absolutely essential to apply devices providing transmission of several messages along the single-wire communication line. One of the possible variants of such systems based on the principle of multizone frequency-pulsewidth modulation is considered below. Basic principle of the multizone scanning converter with zero conjugation of modulation zones (MSC) is illustrated with a block diagram in fig. 1 which is made on the basis of adders 1, 2, an integrator I with a transfer function ( ) 1 / I W p T р  , where TI is time constant, and group of relay elements RE1–REn. The following condition is satisfied: 3 n  is an odd number. The output signals of all RE1–REn change discretely within limits / A n  . Relay elements are symmetric with respect to zero non-inverting hysteresis loop, and the switching thresholds of relay elements RE1–REn satisfy condition 1 b   2 b   ...  n b  ,

At reconstruction of technological objects in reliance on modern means of electronic regulation of parameters, as a rule, it is necessary to run additional cable communication lines on the board of the operator, for example, to input the information about a control system functional elements condition [1][2][3][4][5].It inevitably results in significant economic and labour expenses, and frequently it appears to be difficult to perform task because of control object remoteness and originally incorporated design features of the cable communications.In these conditions it is absolutely essential to apply devices providing transmission of several messages along the single-wire communication line.
One of the possible variants of such systems based on the principle of multizone frequency-pulsewidth modulation is considered below.
Basic principle of the multizone scanning converter with zero conjugation of modulation zones (MSC) is illustrated with a block diagram in fig. 1 which is made on the basis of adders 1, 2, an integrator I with a transfer function ( ) 1 / I W p T р  , where T I is time constant, and group of relay elements RE1-REn.The following condition is satisfied: 3 n  is an odd number.
The output signals of all RE1-REn change discretely within limits / A n  . Relay elements are symmetric with respect to zero non-inverting hysteresis loop, and the switching thresholds of relay elements RE1-REn satisfy condition where the index at "b" corresponds to a serial number of RE in a fig. 1.
For consideration of the operating principle of MSC we restrict ourselves to the case n = 3.The following assumptions are accepted.The transfer coefficient of MSC from the information input is equal to unit.The change in the level of the input signal coincide with the start of the next cycle of the scanning conversion.The paper considers several logical variables transmission describing regular and emergency modes of operations of the inspected control object by means of a single-channel communication line.The method is based on multizone frequency-width-pulse modulation.The block diagram of receiving and transmitting channels and example of modulation zones allocation algorithm between logical variables are given.

THE WAY OF LOGICAL DATA TRANSMISSION ALONG A SINGLE-WIRE COMMUNICATION LINE ON THE BASIS OF MULTIZONE FREQUENCY-WIDTH-PULSE MODULATION
The authors present the block diagram, time diagrams of signals and main equations for static and dynamic modes of the multizone frequency-pulse-width scanning converter with zero conjugation of modulation zones.
The paper gives the results of analysis of the correlation between the number of relay elements and the number of modulation zones for the basic structure of the multizone integrating scanning converter.
The block diagram of single-wire transmission system of the logic data about control object condition is considered.The principle of single-wire logic messages transfer is discussed.Algorithm of the modulation zones distribution on a code condition of the inspected control object is shown.
The paper may be of interest for specialists in the field of power and information electronics, of the electric drive and automation of technological processes.

Однопроводная линия передачи логических данных на основе Тюгаев А.В. многозонной частотно-широтно-импульсной модуляции
If MSC is turned on and the input signal IN Х is equal to zero, then relay elements are established in an arbitrary way, for example in the state +А/3 (fig. 2 c-e).The sequential switching of RE1, RE2 is happening in position -A/3 (fig. 2 c, d; time moments 01 02 , t t ), under the influence of the scanning signal ( ) I Y t from the output of the integer (fig. 2 b).After that the direction of the scanning conversion changes, and the signal increases ( ) is true, then MSC is included in stable self-oscillation mode.In this case the amplitude of the scanning signal is limited to ambiguity zone of RE1, and the output signals of RE2, RE3 are located in static and opposite in sign We assume that at time 0 t  the signal IN Х is increased discretely to a value (А/3)  IN Х  А (fig. 2 а).This violates the stability of self-oscillation mode in the first modulation zone, and the MSC initiates the reorientation of states of RE2 and RE3.The reorientation ends at time 03 t , when RE3 is switched to position -А/3 (fig. 2 e).Output signal reaches the level -А (fig. 2 f) and the MSC switches in the second modulation zone.Where in the intervals 1 t , 2 t (fig. 2 c) formation rate of scanning function ( ) The transition of MSC from one modulation zone to another for small increments of coordinates IN Х is accompanied by transition of the system through characteristic points with zero frequency of selfoscillation.It is called the mode of zero frequency conjugation of modulation zones.
Modulation and amplitude characteristics of MSC for odd number case of RE are presented in the fig.3.

Fig. 2. Time diagrams of signals of multi-zone integrating frequency-pulse-width scanning converter with zero conjugation of modulation zones
They show that:  MSC in each modulation zone is a system with frequency-pulse-width modulation.With increasing the signal IN Х the frequency of the output pulses decreases and becomes equal to zero at the boundary between of the modulation zone;  throughout the range of variation of the input signal IN Х the amplitude characteristic of MSC is linear, due to the insular character of the MSC structure and the presence of an integrator in the direct channel of regulation.
The analysis shows that the relationship of the number of relay elements of MSC with the number of the modulation zones is determined by the ratio (1) on the fig.4.
So if the minimum allowable value is equal 3 n  , then a number of the modulation zones is 2.0 (fig.4 а).If 3 n  , then a number of the modulation zones is 3.0 (fig.4 b).And for bipolar modulation the first modulation zone "captures" the second and fourth quadrants of the amplitude characteristic of MSC.
The transmission method of the logic data along the single-wire communication line using MSC is considered through the example of thyristor control station for smooth start asynchronous electric drives (fig.5) [6,7].
The block diagram of single-wire transmission system of the logic data on control object condition includes the multizone integrating scanning converter (MSC) [6-9], key switchboard KS, decoder DC of an object condition including logic gauges i Q , and also data reception and division channels on the board of the operator.
The principle of single-wire logic messages transfer is based on the following.The digital, for example, binary code is given to each of logic sensor of control object (fig.5).Then the regular and emergency condition of the object is characterized by final number of the code conditions, e.g.five, as it is shown in the code table in a fig.6.Thus every logic variable transmitted on the board of the operator is allocated with its own modulation zone in the second or fourth quadrant of the "input -output" МSC characteristic (fig.6).The decoder DC forms on one of the target buses a signal "1", which is typical only for certain regular or emergency situation of control object.
The key switchboard KS contains normally opened keys and sources of basic signals i Х , the number of which is defined by quantity of used target buses DC.Amplitude and mark i Х are chosen so that at switching on of the appropriate key element the target coordinate ( ) out Y t would appear in required modulation zone of the second or fourth quadrants of the "input -output" МSC characteristic, and with relative duration of pulses equals 0,5 (fig.6).
As a result each situation arising on objects and formed on DC inputs as combinations of "0" and "1", is transferred to the board of the operator as a logic signal "1", representing a flow of pulses of the appropriate MSC modulation zone (fig.6).
Each channel of data division (fig.5) contains the comparator C with switching thresholds adjusted to the "middle" of the appropriate modulation zone, proportionally-differentiating part PD, demodulator DМ and target element of indication, for example, LED.The pulses frequency of each MSC modulation zone corresponds to a proportional section of the PD frequency characteristic.As a result the signal "1" will be formed on a DМ output only of that channel of data division where the comparator C is in a mode of switching with pulses frequency appropriate MSC modulation zone.
As the practice has shown, it is expedient to choose the frequency of MSC carrying fluctuations within the limits of 10-20 кHz.Thus the modern element base allows creation of МSC to transfer up to the 30-40 logic data on control object condition along a single-wire communication line.However, it is necessary to take into account that with growth of number of MSC modulation zones the permissible level of the outside handicaps is reduced, as a result of amplitude modulation of the basic information carrier by a handicap signal that the comparators of adjacent data division channels can periodically turn from dynamic into static condition and vice versa [10][11][12][13][14].

Fig. 1 .
Fig. 1.Block diagram of multi-zone frequency-pulse-width scanning converter with zero conjugation of modulation zones . 2 d, e).The output signal of MSC is formed by switching of RE1 (fig. 2 c) in the first modulation zone, which is limited within range / 3 А  (fig. 2 f).With no signal IN Х (fig. 2 a; t  0 t ) the mean value 0 Y of the output pulses ( ) OUT Y t is equal to zero.If the condition IN Х  (А/3) is true (fig. 2 а; 0 t  t  0 t  ), then frequency and duty cycle of ( ) OUT Y t change.As in the interval 1 t (fig. 2 c) the signal ( ) I Y t (fig. 2 b) changes due to the difference of signals are coming to an adder 1 (fig. 2 а, f) and in the interval 2 t the sig-nal depends on the sum of these actions.As a result 0 IN Y Х  (fig. 2 f).
. 2 b) is determined by the difference or the sum of signals are coming to an adder 1.In this case the signal 0 Y includes DC component -А/3 of the first modulation zone and the mean value of the pulse stream ( ) OUT Y t of the second modulation zone (fig. 2 f).

Fig. 6 .
Fig. 6.Algorithm of the modulation zones distribution on a code condition of the inspected control object