Background of the Invention
The present invention relates to circuitry for measuring the volume flowrate of a fluid in a pipe which has two magnet coils positioned on opposite sides of the pipe and at least one pair of electrodes mounted on the inner surface of the pipe symmetrical to a plane defined by the pipe axis and the common axis of the coils. Also included are an excitation circuit for the coils which produces aiding and opposing magnetic fields and an evaluation circuit connected to the electrodes which produces a measurement signal proportional to the volumetric flowrate.
Circuitry of this type is known from German Patent 2 743 954. The use of opposing magnetic fields serves to recognize the presence of a non-symmetrical flow profile and is used to correct the flow signal. According to the European Patent Application 90 106 783 (not yet published), this method also serves to determine whether the pipe is full or not.
In the known circuits, it is possible that saturation may occur, which produces unstable signals due to electrochemical potential variations between the fluid and the electrodes.
Summary of the Invention
The purpose of the present invention is to provide a circuit, of the type mentioned above, which leads to stable measurement signals.
The solution of this task is a circuit characterized by a timing and phase shifting circuit connected to the coils to control a similar but 90.degree. phase shifted periodic bipolar excitation of both coils, separate holding circuits connected to the electrodes which will hold in a first holding circuit the electrode signals generated during the time both magnet coils produce fields in one direction and in a second holding circuit electrode signals generated during the time the magnet coils produce fields in the other direction, and holding the electrode signals generated during the time the magnet coils produce fields directed toward each other in a third holding circuit, and holding the electrode signals generated during the time the magnet coils produce fields directed away from each other in a fourth holding circuit. A first summing circuit is provided to sum the signals in the first holding circuit and the second holding circuit to produce the first summed signal, and a second summing circuit is provided to sum the signals in the third holding circuit and the fourth holding circuit to produce the second summed signal. A compensation circuit is provided in which the first summed signal and the second summed signal are used to produce the corrected output signal.
The invention will be described by use of an example illustrated by the accompanying figures.
Brief Description of the Drawings
FIG. 1 is a block diagram of a circuit constructed in accordance with the present invention.
FIG. 2 shows the signal waveforms at different points in the circuit of FIG. 1.
Detailed Description of the Invention
The circuit shown in FIG. 1 measures the volumetric flowrate of a fluid flowing in a pipe 2. On each opposite side of the pipe is mounted a magnet coil 4,6. A pair of electrodes 8,10 (more pairs can be provided as described in the unpublished European Patent Application 90 106 783.5) is mounted on the inner surface of the pipe 2 symmetrical to a plane defined by the pipe axis and the common axis of the coils 4,6. By means of the magnet coils 4,6 and an excitation circuit, to be described in more detail, there are produced in the pipe 2 magnetic fields aiding in both directions and opposing toward and away from each other as indicated by the four sets of arrows in the pipe 2. Another circuit, to be described in more detail, is connected to an amplifier 12 across the electrodes 8,10 for the generation of the flow proportional measurement signal U.sub.Q.
A timing and phase shifting circuit is connected to the coils 4,6 which together with driver 16 produces an excitation current I.sub.1 in coil 4 and over a 90.degree. phase shifter 18 and driver 20 produces an excitation current I.sub.2 in coil 6 as shown by waveforms I.sub.1 and I.sub.2 of FIG. 2. Because of the 90.degree. phase shift, there occurs in the identically long periods I, II, III, IV a repetitious changing of the magnetic field direction in the coils 4,6, namely, the fields from each of the coils first are the same in one direction, then are in opposite directions away from each other, then are the same in the opposite direction to the first, and lastly are in opposite directions toward each other. The amplified electrodes signals are stored in holding circuit 22 during period I, in holding circuit 24 during period II, in holding circuit 26 during period III, and in holding circuit 28 during period IV. The periods are controlled by the timing signals T.sub.1 and T.sub.2 which are generated in timing circuit 14 and which open and close the holding circuits 22,24,26,28. The voltages U.sub.D+ and U.sub.D-, corresponding to the two aiding magnetic field periods stored in holding circuits 22 and 26, are summed in circuit 30. The voltages U.sub.S+ and U.sub.S-, corresponding to the two opposing magnetic field periods stored in holding circuits 24 and 28, are summed in circuit 32. The summed signals U.sub.D and U.sub.S are shown in FIG. 2. The summed signal U.sub.D and the summed signal U.sub.S are compared in a compensation circuit 34, so that the correct flow proportional measurement signal U.sub.Q is produced.
Because the excitation currents I.sub.1 and I.sub.2 have the same frequency and the same timing, no permanent polarization occurs at the electrodes 8,10. Therefore, the measurement signal can be evaluated continuously.
The circuit not only takes into account non-symmetrical profiles of the flow stream in the pipe 2 but also takes into account the flow in partially full pipes 2, especially when more than one pair of electrodes are installed, which requires modification of the circuit.