Background of the Invention
The speed of any d.c. motor can be altered by a change in any of the variables in the fundamental speed equation: ##EQU1## WHERE S = the speed
k = a constant of proportionality
Va = the armature voltage
Ia = the armature current
Ra = the armature resistance
.phi. = the flux
In many applications such as in the operation of d.c. motors in rolling mills, it is the practice to control the armature voltage from standstill up to base speed, the field flux being held substantially constant, and then increasing the speed beyond base speed by field weakening, i.e. field flux control.
Prior art techniques for accomplishing these objectives are depicted in FIGS. 4A and 4B. In the FIG. 4A a tandem arrangement is utilized using cooperating reference and field rheostats. The reference rheostat has a portion shorted out (as indicated by the cross hatched section) as does a complementary section on the field rheostat. The displacements of the respective wipers are such that when one wiper is contacting a shorted section, the other wiper is actively changing the effective ohmic magnitude in the circuit in which it operates. Thus the reference signal to control the variable power source increases up to some magnitude, and then the field rheostat cuts in additional resistance to decrease the field current and hence the field flux for the motor.
In FIG. 4B separate reference limiter and shaping networks provide motor armature and field flux controls respectively.
Summary of the Invention
A d.c. motor control circuitry is provided for regulating the motor speed in response to a command signal E.sub.in. Means are arranged for receiving the command signal E.sub.in and for delivering a ramp signal E.sub.1 having a maximum absolute magnitude equal to E.sub.F, for controlling the motor armature voltage up to base speed. Attenuation means are connected to the output of the motor armature voltage control means to receive said signal E.sub.1 and deliver an attenuated signal - .alpha. E.sub.1, the factor .alpha. being selectable in the range (0 . . . n) including fractional numbers. Summation means are provided for summing -E.sub.F, E.sub.in and - .alpha. E.sub.1 to deliver an output E.sub.2 = E.sub.F -E.sub.in + .alpha.E.sub.1, the signal E.sub.2 being utilized to control the field flux beyond the base speed of the motor. The selection of the factor .alpha. determines the crossover point between armature voltage control and field flux control in speed regulation for the motor.
Brief Description of the Drawings
FIG. 1 is a block diagram of the d.c. motor speed control apparatus depicting the role of the motor control circuitry of the invention in the overall operation;
FIG. 2 is an electrical schematic showing the d.c. motor control circuitry in accordance with the invention;
FIG. 3 is a diagram showing the effect of the selection of the attenuation factor .alpha. on the crossover point between armature voltage control and field flux control; and
FIGS. 4A and 4B are schematics showing two prior art techniques for providing armature voltage control and field flux controls for d.c. motor speed regulation.
Description of the Preferred Embodiment
Referring now to the system block diagram shown in FIG. 1, a d.c. motor indicated generally at 10, comprises an armature 12 and a field 14. The armature voltage Va is supplied by means of a variable d.c. power source 16 under the control of a ramp signal E.sub.1. The current i.sub.f through the field 14 is supplied by a variable power source 18 which is under the control of field flux control signal E.sub.2. Since the variable power source 18 controls current rather than flux, the feedback path indicated generally at 20 includes a function generator 22 which relates to field flux .phi. to field current i.sub.f (This relationship is the saturation curve of the machine). The input command signal E.sub.in is processed by the d.c. motor control circuit indicated generally at 24 to provide E.sub.1 and E.sub.2.
The controller circuitry 24 is shown in greater detail in FIG. 2. The input command signal E.sub.in is applied to a first operational amplifier indicated generally at 26 and a second operational amplifier indicated generally at 28.
The first operational amplifier 26 comprises an input resistor 30, a feedback network indicated generally and symbolically at 32 to clamp the output at a fixed potential E.sub.F, i.e. - 10v. A potentiometer 34 and a fixed resistor 36 are connected at the output of amplifier 26. The position of the sliding contact of the potentiometer (which determines the attenuation factor .alpha.) is connected to the input of amplifier 26 through resistor 38. The resistor 38, the feedback resistor for amplifier 26, is connected to the wiper of potetiometer 34 such that the output input relationship F.sub.1 /E.sub.in is controllable by the factor .alpha.. Feedback network 32 provides the limiting means for the output E.sub.1, at the prescribed level for example -10v.
The second operational amplifier 28 comprises input resistors 40, 42 and 44 and feedback resistor 46. The input resistor 40 is connected to the sliding contact of potentiometer 34, to receive -.alpha.E.sub.1 as an input, resistor 42 is connected to E.sub.in, and the third resistor 44 is connected to a source of fixed potential E.sub.F which in this practical embodiment is -10v (In contemplation of this invention, the magnitude of the potential -E.sub.F is the same as the magnitude of the clamping potential for the first operational amplifier 26).
Referring now to the diagram of FIG. 3, the cross-over point occurs at .alpha. = 0.5.
In the practical embodiment: ##EQU2##
The mathematical relationships that describe the circuit of FIG. 2 are as follows: ##EQU3##
in the practical embodiment E.sub.F = .vertline.10v.vertline.
Thus with a single adjustment of the potentiometer 34, the attenuation factor .alpha. is selected and the crossover point between armature voltage control and field flux control is electrically defined.