Further exemplary measures which improve the invention will be presented in more detail below together with the description of exemplary embodiments.
According to
In order to eliminate noise signals from the measurement voltage sen recorded via the oscillation sensor 3, this voltage is first processed by computational technology means 4 for forming a complex conjugate spectrum |sa1j| from the spectrum of the input excitation voltage seD as well as a vector product between |sa1j| and the measurement voltage sen for the purpose of filtering. Subsequent computational technology means 5 are used for inverse Fourier transformation of the signal relationship associated with the vector product between the input excitation voltage seD and the measurement voltage sen. The measurement voltage |sa1j| resulting therefrom and available as output for further signal processing then predominantly contains a useful signal component.
Desired measurement values can be obtained therefrom by further signal processing. For instance, the phase relation between the excitation voltage seD and the filtered measurement voltage sen is to be regarded in terms of signal processing technology as a measure of the noise signal-free flow value, which can accordingly be determined and output.
The computational technology means 4 and 5 for carrying out the signal processing are arranged inside an electronic computation unit 6 which, in this exemplary embodiment, is part of a personal computer having a microcontroller and memory units. The method, on which the signal processing is based, is configured as software and stored in the electronic computation unit 6.
In detail, the method on which the signal processing is based may be described as follows:
Referring to
According to
If an inverse Fourier transformation is subsequently carried out according to
The invention is not restricted to the exemplary embodiment described above. Variants thereof, which are covered by the protective scope of the appended claims, are furthermore conceivable. For instance, relationships with the flow rate and the density of the medium may be established noise-free by further signal processing steps. Furthermore, the excitation voltage seD is not restricted to a sinusoidal signal waveform, since the nature of the excitation is of secondary importance in respect of the solution according to the invention. Although a unequivocal signal processing result can be obtained with a frequency of 100 Hz for the excitation voltage, other frequency values in the low frequency range are nevertheless also suitable.
It will be appreciated by those skilled in the art that the present invention can be embodied in other specific forms without departing from the spirit or essential characteristics thereof. The presently disclosed embodiments are therefore considered in all respects to be illustrative and not restricted. The scope of the invention is indicated by the appended claims rather than the foregoing description and all changes that come within the meaning and range and equivalence thereof are intended to be embraced therein.
Number | Date | Country | Kind |
---|---|---|---|
10 2006 019 551.5 | Apr 2006 | DE | national |