Claims
- 1. Apparatus for determining the filling level of a product in a container with a transmission unit, which generates high-frequency signals and emits them at a predetermined pulse repetition frequency in the direction of the surface of the filled product, the high-frequency signals being reflected at the surface of the product, with a receiving unit, which receives the reflected signals, with a delay circuit, which transforms the high-frequency signals/reflected signals into low-frequency signals in accordance with a predetermined translation factor, and with an evaluation unit, which determines the filling level of the product in the container on the basis of the delay time of the signals,
wherein the delay circuit (9) has the following elements:
a transmission oscillator (14), which generates transmission pulses at a transmission frequency (f2); a sampling oscillator (15), which generates sampling pulses at a sampling frequency (fl), the sampling frequency (fl) being less than the transmission frequency (f2); a digital sampling circuit (17), which samples the transmission pulses with the sampling pulses; a closed-loop/open-loop control unit (16), which sets the difference in frequency (f2-f1) between the transmission oscillator (14) and the sampling oscillator (15) in such a way that the predetermined translation factor is achieved.
- 2. The apparatus as claimed in claim 1, wherein the transmission oscillator (14) has a fixed transmission frequency (f2) and wherein the sampling frequency (f1) of the sampling oscillator (15) is adjustable.
- 3. The apparatus as claimed in claim 1 or 2, wherein the digital sampling circuit (17) is a phase detector.
- 4. The apparatus as claimed in claim 1, 2 or 3, wherein the digital sampling circuit (17) defines a measuring cycle, or determines the difference in frequency, by determining two successive points in time at which the rising or falling edge of the sampling pulses coincides with the falling or rising edge of the transmission pulses, that is when the transmission frequency (f2) and the sampling frequency (f1) are in phase.
- 5. The apparatus as claimed in one or more of the preceding claims, wherein the digital sampling circuit (17) stores the point in time at which the transmission oscillator (14) and the sampling oscillator (15) are in phase in a memory unit (20) as the starting time for the measurement and the ascertainment of the difference in frequency (f2-f1).
- 6. The apparatus as claimed in claim 5, wherein the memory unit (20) is a D flipflop (23).
- 7. The apparatus as claimed in claim 5, wherein the memory unit (20) is a logical gate, preferably an AND gate (21), and an SR flipflop (22).
- 8. The apparatus as claimed in claim 1, 2, 3, 4 or 6, wherein, to determine the difference in frequency (f2-f1), the closed-loop/open-loop control unit (16) performs an averaging over a number of measuring cycles.
- 9. The apparatus as claimed in one or more of the preceding claims, wherein the closed-loop/open-loop control unit (16) activates the digital sampling circuit (17) only shortly before, during or after the times at which the transmission frequency (f2) and sampling frequency (f1) are in phase.
- 10. The apparatus as claimed in one or more of the preceding claims, wherein the digital sampling circuit (17) is followed by two monopulse generators (18, 19), which generate measuring pulses from the transmitted or received signals.
- 11. The apparatus as claimed in one or more of the preceding claims, wherein frequency dividers (24, 25; 26, 27) are provided, which divide the transmission frequency (f2) and/or the sampling frequency (fl) before and/or after the digital sampling circuit (17) by a predetermined divider factor 2n, where n=1, 2, 3, . . . .
- 12. The apparatus as claimed in claim 11, wherein a resetting unit (26) is provided, which starts the following measuring cycle as soon as the difference in phase between the transmission frequency (f2) and the sampling frequency (f1) is equal to the quotient of 360° and the divider factor 2n, where n=1, 2, 3, . . . .
- 13. The apparatus as claimed in claim 1, wherein the transmission oscillator (14) and the sampling oscillator (15) are quartz oscillators.
- 14. A method for determining and/or monitoring the distance from an object, in particular for determining and/or monitoring the filling level of a product in a container, in which method high-frequency signals are generated and emitted at a predetermined pulse repetition frequency in the direction of the object, in particular in the direction of the surface of the filled product, the high-frequency signals are reflected at the surface of the product and the reflected signals are received, the high-frequency signals/reflected signals are transformed into low-frequency signals in accordance with a predetermined translation factor, and the distance or the filling level of the product in the container is determined on the basis of the delay time of the signals, wherein transmission pulses are generated at a transmission frequency (f2) and sampling pulses are generated at a sampling frequency (f1), wherein the transmission pulses are sampled digitally with the sampling pulses, and wherein the difference in frequency (f2-f1) between the transmission pulses and the sampling pulses is controlled in such a way that the predetermined translation factor is achieved.
Priority Claims (1)
Number |
Date |
Country |
Kind |
10106681.3 |
Feb 2001 |
DE |
|
Parent Case Info
[0001] This application relies for priority on a prior filed provisional application, filed Mar. 21, 2001, and assigned Appln. No. 60/277,256.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60277256 |
Mar 2001 |
US |