SELF-POWERED MEASURING APPARATUS AND MEASUREMENT METHOD
20180299492 ยท 2018-10-18
Inventors
Cpc classification
G01R19/257
PHYSICS
International classification
Abstract
The present embodiments relate to a measuring apparatus and an associated measurement method. The measuring apparatus is installed on a line and includes a sensing unit having a first and a second voltage divider for producing a first and a second measurement signal with a measurement transducer. The first and second measurement signals are each forwardable via a measurement line directly to a signal transducer. The signal transducer is supplied with power via a supply line by being switchably connected to the measurement transducer.
Claims
1. A measuring device for determining a current intensity on a line, the measuring device comprising: a determining unit having a first and a second voltage divider for generating a first and a second measurement signal with a measuring transformer, wherein the first and the second measurement signal are configured to be passed directly, over a measurement line, to a signal converter, wherein, for supplying current to the signal converter, the signal converter is switchably connected to the measuring transformer by way of a supply line.
2. The measuring device of claim 1, wherein the signal converter is configured as an analog-to-digital converter.
3. The measuring device of claim 1, wherein a switch element for actuating the switchable power supply to the signal converter is connected to a switch element for providing a reference voltage by way of an adjustable coupling.
4. The measuring device of claim 3, wherein at least one of the switch elements is configured to be actuated by a clock generator.
5. The measuring device of claim 3, wherein, with the coupling, the duration of a delay between a switch signal of the clock generator and the actuation of the switch element of the supply line is adjustable.
6. The measuring device of claim 1, wherein the first voltage divider is configured for determining a first value range of the current intensity on the line, and the second voltage divider is configured for determining a second value range of the current intensity on the line.
7. The measuring device of claim 1, wherein the determining unit also includes at least one third voltage divider for generating a third measurement signal.
8. The measuring device of claim 1, wherein at least one of the voltage dividers includes two resistors connected in series.
9. A method for measuring a current intensity on a line, the method comprising: generating a primary measurement signal using a measuring transformer; processing the primary measurement signal by a first and a second voltage divider to generate a first and a second measurement signal; and determining and evaluating the first measurement signal, the second measurement signal, or the first and the second measurement signals to generate a measured value using a signal converter, wherein power is switchably supplied to the signal converter through the measuring transformer.
10. The method of claim 9, wherein the signal converter is an analog-to-digital converter.
11. The method of claim 9, wherein a switch element in a supply line to the signal converter is opened and closed by a clock generator having an adjustable clock signal.
12. The method of claim 11, wherein the switch signal is output substantially at the same time as actuation of a switch element configured to supply at least one of the voltage dividers with a reference voltage.
13. The method of claim 11, wherein the higher the current intensity on the line, the shorter the duration of inactive phases between active phases of the power supply to the signal converter.
14. The method of claim 13, wherein, within an operating interval, the ratio of the duration of inactive phases to the duration of active phases is between zero and ten.
15. The method of claim 9, wherein during determining and evaluating the first measurement signal, the second measurement signal, or the first and the second measurement signals, only the first measurement signal is evaluated if the current intensity is below a first threshold value, and the first and the second measurement signals are evaluated if the current intensity is between the first and a second threshold value, and only the second measurement signal is evaluated if the current intensity is above the second threshold value.
16. The measuring device of claim 1, wherein the signal converter is immediately and directly switchably connected to the measuring transformer.
17. The measuring device of claim 5, wherein the duration of the delay is adjustable to a value between 0 ms and 20 ms.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
DETAILED DESCRIPTION
[0027]
[0028] Depending on the level of the current intensity 52 on the line 12, evaluation of the first and/or second measurement signal 26, 28 is performed to give a measured value 42. Continuous evaluation of the measured signals 26, 28 is performed in the measuring device 10 in a clocked manner. The processing unit 16 of the measuring device 10 additionally includes a control unit 18 provided with a clock generator 44. Furthermore, a conductor 45 provides the voltage dividers 36, 38 with a reference voltage 40 to which the first and second measurement signals 26, 28 are related. The conductor 45 is provided with a switch element 49 by which the conductor 45 may be interrupted. Actuation of the switch element 49 on the conductor 45 is performed by switch signals 46 that are output by the clock generator 44. The switch element 49 on the conductor 45 is connected by a coupling 48 to the further switch element 49 arranged on the supply line 32. As a result of the coupling 48, the switch element 49 on the supply line 32 follows actuation of the switch element 49 on the conductor 45. The coupling 48 converts the actuation of the switch element 49 on the conductor 45 into actuation of the switch element 49 on the supply line 49 with substantially no delay. When the switch elements 49 are closed, the reference voltage 40 (e.g. the reference potential for the first and the second measurement signal 26, 28) is applied across the voltage dividers 36, 38, resulting in that the measurement signals 26, 28 represent the current intensity 52 existing on the line 12. At the same time, the signal converter 22 is supplied with current and is able to evaluate the measurement signals 26, 28 individually or in combination to give the measured value 42.
[0029]
[0030] Further, if the measured value 42 (e.g., not illustrated in more detail) is determined below a first threshold value 64, the measured value 42 is only determined based on the first measurement signal 26. Succeeding the measurement range 61 below the first threshold value 64 is a second measurement range 62 that lies between the first and the second threshold value 64, 65. In the second measurement range 62, the measured value 42 is determined by the first and the second measurement signal 26, 28 in combination. Succeeding the second measurement range 62 is a third measurement range 63 in which the current intensity 52 in the conductor 12 is above the second threshold value 65. In the third measurement range 63, the measured value 42 is determined only based on the second measurement signal 28. As the current intensity 52 increases, the duration 57 of the inactive phases 51 falls. The increasing current intensity 52 improves the power supply to the signal converter, but precise measurement of the current intensity 52 requires a greater number of measurement iterations. This is achieved by the reduction in the duration 57 of the inactive phases 51.
[0031] The elements and features recited in the appended claims may be combined in different ways to produce new claims that likewise fall within the scope of the present invention. Thus, whereas the dependent claims appended below depend from only a single independent or dependent claim, it is to be understood that these dependent claims may, alternatively, be made to depend in the alternative from any preceding or following claim, whether independent or dependent. Such new combinations are to be understood as forming a part of the present specification.
[0032] While the present invention has been described above by reference to various embodiments, it should be understood that many changes and modifications can be made to the described embodiments. It is therefore intended that the foregoing description be regarded as illustrative rather than limiting, and that it be understood that all equivalents and/or combinations of embodiments are intended to be included in this description.