AUTOMATION ENGINEERING TWO-WIRE FIELD DEVICE
20210311097 · 2021-10-07
Inventors
Cpc classification
G01D18/00
PHYSICS
G05B23/0232
PHYSICS
International classification
G01R19/165
PHYSICS
G01D18/00
PHYSICS
Abstract
An automation engineering two-wire field device, having: a sensor element for capturing a process variable; a connection terminal for connecting a two-wire line; field device electronics supplied with an operating power by a terminal voltage and a loop current from the two-wire line and configured to communicate the captured process variable by setting the loop current to a value between 4 mA and 20 mA; and a diagnosis unit configured so as, at least in the measurement mode, to capture at least one applicable value for the terminal voltage for each of at least two different values of the loop current set to between 4 mA and 20 mA, and to take exclusively the values captured in the measurement mode as a basis for making a statement about a minimum value of the terminal voltage for a maximum value of the loop current greater than 21 mA.
Claims
1-9. (canceled)
10. An automation engineering two-wire field device, comprising: a sensor element for capturing a process variable; a connection terminal for connecting a two-wire line; a field-device electronics unit, which is supplied with an operating power by a terminal voltage applied to the connection terminal and a loop current flowing through the connection terminal from the two-wire line, wherein the field-device electronics unit is configured to operate in a measurement mode, including communicating the captured process variable by setting the loop current to a value between 4 mA and 20 mA representing the captured process variable; a diagnosis unit configured to operate in the measurement mode, including capturing a value for the terminal voltage for each of at least two different values of the loop current set to between 4 mA and 20 mA, and to take exclusively the values captured in the measurement mode as a basis for making a statement about a minimum value of the terminal voltage for a maximum value of the loop current greater than 21 mA.
11. The automation engineering two-wire field device according to claim 10, wherein the diagnosis unit, to take the captured values for the terminal voltage and the corresponding values for the loop current as a basis for making the statement, predicts the minimum value of the terminal voltage at the maximum value of the loop current and compares it to a minimum setpoint value for the terminal voltage.
12. The automation engineering two-wire field device according to claim 11, wherein the diagnosis unit is configured so as, in the event that the predicted minimum value of the terminal voltage is less than the minimum setpoint value for the terminal voltage, to take an undervoltage, which is not sufficient for supplying power to the field-device electronics unit, as a basis for making the statement.
13. The automation engineering two-wire field device according to claim 12, wherein the minimum setpoint value for the terminal voltage is in the range from 9.5 to 11.5 V.
14. The automation engineering two-wire field device according to claim 12, wherein the maximum value of the loop current is in the range of 21-23 mA.
15. The automation engineering two-wire field device according to claim 10, wherein the diagnosis unit is configured to dynamically execute the at least two different values of the loop current and the respective at least one corresponding value for the terminal voltage and make the statement about the minimum value of the terminal voltage at the maximum value of the loop current.
16. The automation engineering two-wire field device according to claim 15, wherein for dynamic performance the diagnosis unit is further configured to capture the at least two different values of the loop current and the respective at least one corresponding value for the terminal voltage whenever two values of the loop current representing the captured process variable exceed a predetermined loop current differential value in the measurement mode.
17. The automation engineering two-wire field device according to claim 16, wherein the predetermined loop current differential value is at least 1 mA.
18. The automation engineering two-wire field device according to claim 10, wherein the diagnosis unit determines a linear function on the basis of the at least two different values of the loop current and the respective at least one corresponding value for the terminal voltage and predicts or specifies the minimum value of the terminal voltage at the maximum value of the loop current on the basis of the linear function.
Description
[0022] The invention is explained in more detail based upon the following drawings. The following is shown:
[0023]
[0024]
[0025]
[0026] Via the two-wire line 12, the field-device electronics unit 4 and thus the field device 1 are connected to a higher-level unit or a control system, in order to communicate data by hard-wired connection with the higher-level unit. The measured values as a main process variable are thereby communicated analogously via the two-wire line 12 in the form of a 4-20 mA loop current signal by a corresponding current value of the 4-20 mA loop current being set by the field-device electronics unit 4 or a current regulator. In other words, the field-device electronics unit is configured to transmit the captured process variable to the higher-level unit by setting the loop current to a corresponding value in measurement mode.
[0027] Other data, which may include, for example, parameters of the field device, are transmitted in the form of a digital two-wire signal, for example, for example in accordance with the HART standard mentioned at the outset.
[0028] Furthermore, the field-device electronics unit 4 is supplied with power via the two-wire line or the 4-20 mA loop current. For this purpose, operating power is made available to the field-device electronics unit as a function of a terminal voltage UK, which is applied to the connection terminal, and the 4-20 mA loop current, which flows through the connection terminal. The terminal voltage UK preferably comprises a minimum voltage value of about 10 V and a minimum value for the loop current of about 3.6 mA, so that a minimum operating power results for the field-device electronics unit of Lmin=10 V*3.6 mA=36 mW. In principle, however, the values can also deviate therefrom, especially the terminal voltage UK can have a minimum value from the range of 10-30 V.
[0029] In order to ensure safe operation of the field device 1, a diagnosis unit 5 is also provided. As shown in
[0030] The diagnosis unit 5 is configured to carry out a voltage monitoring of the terminal voltage UK, in order to promptly detect whether a minimum setpoint value of the terminal voltage UK is undershot at a maximum value of the loop current, which is greater than 21 mA and preferably less than 23 mA, especially preferably approximately 22 mA. For this purpose, at least two different values Ix, Iy of the loop current I set between 4 to 20 mA, as well as the values corresponding thereto for the terminal voltage Ux, Uy, are captured by the diagnosis unit 5 in measurement mode, so that at least two value pairs Ix, Ux and Iy, Uy result. Preferably, the diagnosis unit 5 dynamically captures the values of the loop current Ix, Iy and the values of the corresponding terminal voltage Ux, Uy. This can be done, for example, by predetermining a loop current differential value ΔI for the diagnosis unit 5, and by the diagnosis unit 5 capturing the at least two different values of the loop current Ix, Iy whenever in measurement mode the two different values of the loop current Ix, Iy exceed the loop current differential value ΔI. This means that the two different values for the loop current Ix, Iy captured by the diagnosis unit 5 and the associated values for the terminal voltage Ux, Uy differ at least by the predefined differential value of the loop current ΔI. Preferably, the loop current differential value may be at least 1 mA. Furthermore, the loop current differential value ΔI may be set, for example, as a parameter by an operator of the field device 1 and stored in a memory of the field-device electronics unit 4. The diagnosis unit 5 is also configured to determine a linear function on the basis of the two different values for the loop current Ix, Iy and the associated values for the terminal voltage Ux, Uy and to predict or specify on the basis of the linear function the minimum value of the terminal voltage Umin, which would be present if the loop current I were set to a maximum (possible) value.
[0031] The two cases a) and b) are illustrated by way of example in
[0032] The diagnosis unit 5 is further configured to compare the predicted or specified minimum value of the terminal voltage Umin to a minimum setpoint value for the terminal voltage Umin,soll, and, in the event that the minimum value of the terminal voltage Umin falls below the minimum setpoint value for the terminal voltage Umin, to ascertain an undervoltage which is not sufficient for fault-free operation of the field-device electronics unit 4. The ascertainment of the possible undershooting of the terminal voltage UK can furthermore be output by the diagnosis unit 5, for example in the form of an error message.
LIST OF REFERENCE SIGNS
[0033] 1 Field device [0034] 2 Field device housing [0035] 3 Sensor element [0036] 4 Field-device electronics unit [0037] 5 Diagnosis unit [0038] 6 Higher-level unit [0039] 12 Two-wire line or two-wire [0040] 13 Terminal [0041] UK Terminal voltage [0042] I Loop current [0043] Ix, Iy Values of the loop current at specific points in time in the measurement mode of the field device [0044] Ux, Uy Values of the terminal voltage at the values of the loop current Ix or Iy captured at specific points in time in the measurement mode of the field device [0045] Umin Minimum value of terminal voltage that would be present if the loop current is set to a maximum value [0046] Umin,soll Minimum necessary value of the terminal voltage which has to be applied to the connection terminal in order for the field-device electronics unit to be safely operated [0047] Imax Maximum value to which the loop current is set, especially in the event of an error [0048] ΔI Loop current differential value