HYBRID VOLTAGE SUPPLY FOR A MEASURING INSTRUMENT
20230020549 · 2023-01-19
Inventors
Cpc classification
G01F1/00
PHYSICS
H02J7/0063
ELECTRICITY
H02J7/342
ELECTRICITY
H02J7/0068
ELECTRICITY
International classification
H02J7/00
ELECTRICITY
G01F1/00
PHYSICS
Abstract
The electronics comprises a load circuit, a power supply circuit having a rechargeable electrical energy storer, and a protection circuit. An input of the power supply circuit is adapted to be electrically connected with an external energy supply. Both the power supply circuit and the protection circuit have at least two operating modes. Additionally, the protection circuit is adapted in the first operating mode to monitor the cell voltage applied on the circuit input to determine whether its voltage level has exceeded a predetermined maximum value and, in given cases, automatically to deactivate the operating mode.
Claims
1-23. (canceled)
24. An electronics for a measuring device, comprising: a load circuit having a circuit input, at least one microprocessor, and at least one linear voltage regulator; a power supply circuit formed by one or more direct voltage converters, the power supply circuit including a circuit input, a first circuit output, a second circuit output, and a rechargeable electrical energy storer having a nominal capacity, especially a nominal capacity of greater than 500 As (ampere seconds), and completely charged providing a cell voltage of voltage level of nominal value equals or greater than 3 V (volt), wherein the energy storer is electrically connected with the second circuit output of the power supply circuit in such a manner that the cell voltage of the energy storer or a voltage proportional thereto lies on the second circuit output; and a protection circuit including a first circuit input, a second circuit input, and a circuit output, wherein the circuit input of the load circuit is at least at times electrically connected with the first circuit output of the power supply circuit in such a manner that in the case of an output voltage on the first circuit output of the power supply circuit an electrical current flow is enabled, especially with an electrical current level of greater than 100 mA (milliampere), from the first circuit output to the circuit input and/or an energy flow from the power supply circuit to the load circuit is enabled, especially an energy flow amounting to greater than 2000 Ws/h (watt-second per hour), wherein the circuit output of the protection circuit is electrically connected with the circuit input of the power supply circuit, wherein the first circuit input of the protection circuit is adapted to be electrically connected with a circuit output of an external energy supply providing a supply voltage for the electronics, especially with a voltage level having a nominal value lying between 4 V and 60 V, and wherein the second circuit input of the protection circuit is electrically connected with the second circuit output of the power supply circuit, in such a manner that an input voltage applied to the second circuit input corresponds to the cell voltage provided by the energy storer, wherein both the power supply circuit as well as also the protection circuit have, in each case, at least two operating modes, wherein in a first operating mode of the power supply circuit its energy storer is switched to the first circuit output in such a manner that the cell voltage provided by the energy storer or a voltage proportional thereto is applied to the first circuit output as a first output voltage, wherein in a second operating mode of the power supply circuit, its circuit input is switched to its first circuit output, especially in such a manner that an input voltage applied to the circuit input is converted into a second output voltage applied to the first circuit output with a constant and/or predeterminable voltage level and/or that in the case of an input voltage applied to the circuit input an electrical current flow from the circuit input to the first circuit output is enabled, wherein in a first operating mode of the protection circuit, its first circuit input is switched to its circuit output, especially in such a manner that in the case of a voltage applied to the first circuit input an electrical current flow is enabled from the first circuit input to its circuit output, and an energy flow is enabled from the protection circuit to the power supply circuit, wherein in a second operating mode of the protection circuit its first circuit input and its circuit output are electrically isolated from one another, especially in such a manner that even in the case of voltage applied to the first circuit input with a voltage level of greater than 4 V and less than 60 V only an electrical current flow with an electrical current level of at most 100 μA (microampere) is enabled from the first circuit input to the circuit output and/or only an energy flow of at most 20 Ws/h (watt-second per hour) is enabled from the protection circuit to the power supply circuit, and wherein the protection circuit is adapted in the first operating mode to monitor the cell voltage applied to the second circuit input to determine whether its voltage level has exceeded a predetermined maximum value lying, especially, less than 0.2 V above its nominal value and, in given cases, automatically to deactivate its first operating mode, especially at the same time to activate its second operating mode, or automatically to switch from its first operating mode into its second operating mode.
25. The electronics as claimed in claim 24, wherein in the second operating mode of the power supply circuit its energy storer is not switched to the first circuit output, in such a manner that its energy storer and its first circuit output are electrically isolated from one another, and the cell voltage provided by the energy storer is not applied to the first circuit output; and/or wherein in the first operating mode of the protection circuit its first circuit input is switched to its circuit output, in such a manner that in the case of a voltage applied to the first circuit input, especially with a voltage level of greater than 4 V, an electrical current flow from the first circuit input to its circuit output is enabled, especially with an electrical current level of greater than 100 mA, and/or an energy flow from the protection circuit to the power supply circuit is enabled, especially an energy flow amounting to greater than 1000 Ws/h; and/or wherein in the second operating mode of the protection circuit its first circuit input and its circuit output are electrically isolated from one another, in such a manner that even in the case of voltage applied to the first circuit input with a voltage level of greater than 4 V and/or less than 60 V and/or first circuit input electrically connected to a circuit output of an external energy supply delivering a supply voltage with a voltage level lying between 4 V and 60 V only an electrical current flow with an electrical current level of at most 100 μA (microampere) is enabled from the first circuit input to the circuit output and/or only an energy flow of at most 20 Ws/h (watt-second per hour) is enabled from the protection circuit to the power supply circuit.
26. The electronics as claimed in claim 25, wherein the power supply circuit is adapted automatically to activate the first operating mode, especially automatically to start it up, when the cell voltage of the energy storer has a voltage level not subceeding a predetermined minimum value corresponding especially to greater than 105% of a discharge end voltage of the energy storer, especially in case no input voltage is applied to the circuit input, or an input voltage applied to the circuit input has a voltage level lying below a predetermined minimum value; and/or wherein the power supply circuit is adapted automatically to activate the second operating mode, especially automatically to start up or automatically to change from the first operating mode to the second operating mode, in case an input voltage applied to the circuit input has a voltage level not subceeding a predetermined minimum value, especially lying above 4 V; and/or wherein the power supply circuit is adapted automatically to deactivate the second operating mode, in case no input voltage is present on the circuit input, or an input voltage applied to the circuit input has a voltage level lying below a predetermined minimum value.
27. The electronics as claimed in claim 24, wherein, in the case of power supply circuit operating in the first operating mode, a load current circuit of the electronics involving an electrical current path leading from the energy storer of the power supply circuit is completed further through its circuit output and to the circuit input of the load circuit.
28. The electronics as claimed in claim 24, wherein in the case of power supply circuit operating in the second operating mode and at the same time protection circuit operating in the first operating mode a load current circuit of the electronics involving an electrical current path leading from the first circuit input of the protection circuit is completed further through its circuit output and to the first circuit input of the power supply circuit and further through its circuit output and to the circuit input of the load circuit.
29. The electronics as claimed in claim 24, wherein the protection circuit for monitoring the cell voltage includes a comparator, especially a comparator formed by means of at least one difference amplifier having, a first voltage input, a second voltage input, and a signal output, and wherein the first circuit input of the protection circuit is formed by means of the first voltage input of the comparator and the second circuit input of the protection circuit is formed by means of the second voltage input of the comparator.
30. The electronics as claimed in claim 29, wherein the protection circuit is adapted to activate its first operating mode or its second operating mode based on a signal level on the signal output of the comparator.
31. The electronics as claimed in claim 24, wherein the power supply circuit includes a first direct voltage converter formed as a boost converter or as a buck converter, and wherein an input of the first direct voltage converter is electrically connected with the at least one energy storer and the first circuit output of the power supply circuit is formed by an output of the first direct voltage converter.
32. The electronics as claimed in claim 31, wherein the power supply circuit includes a second direct voltage converter formed as a buck converter, and wherein the circuit input of the power supply circuit is formed by an input of the second direct voltage converter and the first circuit output of the power supply circuit is formed by means of an output of the second direct voltage converter.
33. The electronics as claimed in claim 32, wherein the output of the first direct voltage converter and the output of the second direct voltage converter are electrically connected with one another.
34. The electronics as claimed in claim 24, wherein the at least one rechargeable energy storer has first and second connection electrodes.
35. The electronics as claimed in claim 34, wherein the power supply circuit includes first and second contact elements for the at least one energy storer, and wherein the energy storer is connected, especially releasably, with the contact elements, in such a manner that the first connection electrode of the energy storer electrically conductively contacts the first contact element and the second connection electrode of the energy storer electrically conductively contacts the second contact element.
36. The electronics as claimed in claim 35, wherein the power supply circuit has at least one manually actuatable switch, including a DIP switch or a DIL switch, having first and second connection contacts and with a manually actuatable switch operator, and wherein the switch is electrically connected with its first connection contact with the first contact element and adapted, by means of the switch operator selectively to produce or to break an electrically conductively connection between the first contact element and the second connection contact.
37. The electronics as claimed in claim 36, wherein the switch is adapted to integrate the at least one rechargeable energy storer into the power supply circuit only when required, and/or during a start-up of the electronics, in such a manner that the power supply circuit can thereafter operate at least in the first operating mode, or automatically activates the first operating mode.
38. The electronics as claimed in claim 24, wherein the power supply circuit has at least one non-rechargeable energy storer electrically connected in parallel with the rechargeable energy storer for storing electrical energy.
39. The electronics as claimed in claim 38, wherein the at least one non-rechargeable energy storer has a nominal capacity of greater than 10 Ah (ampere hours); and/or wherein the at least one non-rechargeable energy storer provides a cell voltage with a voltage level having a nominal value of greater than 3 V and/or less than 4 V, and/or wherein the at least one non-rechargeable energy storer is embodied as a D cell (IEC R20); and/or wherein the at least one non-rechargeable energy storer is adapted to charge the rechargeable energy storer.
40. The electronics as claimed in claims 24, wherein the nominal value of the cell voltage of the at least one rechargeable energy storer is less than 4 V; and/or wherein the nominal capacity of the at least one rechargeable energy storer is greater than 400 As and/or less than 1000 As; and/or wherein the at least one rechargeable energy storer is embodied as an AA cell (IEC R6, AA cell).
41. The electronics as claimed in claim 24, wherein the power supply circuit has a third operating mode, and wherein the power supply circuit is adapted in the third operating mode to convert the cell voltage provided by the rechargeable energy storer into a third output voltage applied on the first circuit output in such a manner that the voltage level of the third output voltage is higher than the voltage level of the cell voltage and/or that the voltage level of the output voltage lies below the nominal value of the cell voltage and/or that the voltage level of the output voltage is less than the voltage level of the second output voltage in the case of power supply circuit operating in the second operating mode.
42. The electronics as claimed in claim 42, wherein the power supply circuit is adapted automatically to activate the third operating mode as soon as the cell voltage provided by the rechargeable energy storer has a voltage level lying below a predetermined minimum value amounting to less than 3.3 V and/or greater than 80% of the nominal value.
43. A measuring system, comprising: an electronics, comprising: a load circuit having a circuit input, at least one microprocessor, and at least one linear voltage regulator; a power supply circuit formed by one or more direct voltage converters, the power supply circuit including a circuit input, a first circuit output, a second circuit output, and a rechargeable electrical energy storer having a nominal capacity, especially a nominal capacity of greater than 500 As (ampere seconds), and completely charged providing a cell voltage of voltage level of nominal value equals or greater than 3 V (volt), wherein the energy storer is electrically connected with the second circuit output of the power supply circuit in such a manner that the cell voltage of the energy storer or a voltage proportional thereto lies on the second circuit output; and a protection circuit including a first circuit input, a second circuit input, and a circuit output, wherein the circuit input of the load circuit is at least at times electrically connected with the first circuit output of the power supply circuit in such a manner that in the case of an output voltage on the first circuit output of the power supply circuit an electrical current flow is enabled, especially with an electrical current level of greater than 100 mA (milliampere), from the first circuit output to the circuit input and/or an energy flow from the power supply circuit to the load circuit is enabled, especially an energy flow amounting to greater than 2000 Ws/h (watt-second per hour), wherein the circuit output of the protection circuit is electrically connected with the circuit input of the power supply circuit, wherein the first circuit input of the protection circuit is adapted to be electrically connected with a circuit output of an external energy supply providing a supply voltage for the electronics, especially with a voltage level having a nominal value lying between 4 V and 60 V, and wherein the second circuit input of the protection circuit is electrically connected with the second circuit output of the power supply circuit, in such a manner that an input voltage applied to the second circuit input corresponds to the cell voltage provided by the energy storer, wherein both the power supply circuit as well as also the protection circuit have, in each case, at least two operating modes, wherein in a first operating mode of the power supply circuit its energy storer is switched to the first circuit output in such a manner that the cell voltage provided by the energy storer or a voltage proportional thereto is applied to the first circuit output as a first output voltage, wherein in a second operating mode of the power supply circuit, its circuit input is switched to its first circuit output, especially in such a manner that an input voltage applied to the circuit input is converted into a second output voltage applied to the first circuit output with a constant and/or predeterminable voltage level and/or that in the case of an input voltage applied to the circuit input an electrical current flow from the circuit input to the first circuit output is enabled, wherein in a first operating mode of the protection circuit, its first circuit input is switched to its circuit output, especially in such a manner that in the case of a voltage applied to the first circuit input an electrical current flow is enabled from the first circuit input to its circuit output, and an energy flow is enabled from the protection circuit to the power supply circuit, wherein in a second operating mode of the protection circuit its first circuit input and its circuit output are electrically isolated from one another, especially in such a manner that even in the case of voltage applied to the first circuit input with a voltage level of greater than 4 V and less than 60 V only an electrical current flow with an electrical current level of at most 100 μA (microampere) is enabled from the first circuit input to the circuit output and/or only an energy flow of at most 20 Ws/h (watt-second per hour) is enabled from the protection circuit to the power supply circuit, and wherein the protection circuit is adapted in the first operating mode to monitor the cell voltage applied to the second circuit input to determine whether its voltage level has exceeded a predetermined maximum value lying, especially, less than 0.2 V above its nominal value and, in given cases, automatically to deactivate its first operating mode, especially at the same time to activate its second operating mode, or automatically to switch from its first operating mode into its second operating mode; and electrically coupled with the electronics, a measuring transducer, which is adapted to register at least one physical or chemical measured variable and to transduce the registered measured variable into at least one measurement signal representing the measured variable.
44. The measuring system as claimed in claim 43, wherein the electronics is adapted to receive and to evaluate the at least one measurement signal, especially to ascertain based on the measurement signal measured values quantifying the at least one measured variable.
45. The measuring system as claimed in claim 44, wherein the load circuit of the electronics includes an evaluator module adapted, based on the at least one measurement signal, to ascertain digital measured values quantifying the measured variable.
46. The measuring system as claimed in claim 45, wherein the load circuit of the electronics includes, coupled with the evaluator module, a radio module adapted by means of a radio signal to output measured values ascertained by the evaluator module.
Description
[0034] The figures of the drawing show as follows:
[0035]
[0036]
[0037]
[0038] Shown schematically in
[0039] The electronics of the invention includes a load circuit M1 with a circuit input, a power supply circuit M2 with a circuit input, a first circuit output, a second circuit output and at least one, especially chemical, or electrochemical, rechargeable, electrical energy storer HLC, for example, a super capacitor. The load circuit M1 can, as well as also shown in
[0040] The energy storer HLC of the power supply circuit M2 has a nominal capacity amounting, for example, to 400 As (ampere seconds), and is adapted, completely charged, consequently in the case of a charge status (SoC—state of charge) of 100%, to provide a cell voltage V_BAT with a voltage level having a nominal value of, for example, 3.6 V (volt). The energy storer HLC is electrically connected with the second circuit output of the power supply circuit M2, in such a manner that the cell voltage V_BAT of the energy storer HLC, or a voltage proportional thereto, lies on the second circuit output.
[0041] For incorporating the energy storer HLC into the power supply circuit M2, especially for electrical connecting of the energy storer HLC to the second circuit output of the power supply circuit M2, the energy storer HLC can, furthermore, have first and second connection electrodes and the power supply circuit M2 can have corresponding first and second contact elements for the at least one energy storer HLC, namely contact elements electrically connected to the second circuit output, or even at least partially forming it. In an embodiment of the invention, it is, furthermore, provided that the energy storer HLC is, for example, connected, even releasably, to the above described contact elements, in such a manner that the first connection electrode of the energy storer HLC electrically conductively contacts the first contact element and the second connection electrode of the energy storer HLC electrically conductively contacts the second contact element. In an additional embodiment of the invention, the power supply circuit M2 includes, additionally, at least one, especially manually actuatable, switch DIL. The switch DIL, embodied, for example, as a DIP-, or DIL, switch, includes first and second connection contacts as well as a, in given cases, manually actuatable, switch operator and is electrically connected with its first connection contact with the first contact element of the energy storer HLC. Additionally, the switch DIL is adapted by means of its switch operator selectively to produce or to break an electrically conductively connection between the first contact element and the second connection contact, for example, in order to integrate the energy storer HLC into the power supply circuit only when required and/or during a start-up of the electronics. The connection electrodes of the energy storer HLC and the contact elements of the power supply circuit M2 can, furthermore, for example, also be adapted to produce a secure, equally as well, releasable, mechanical connection between energy storer HLC and power supply circuit M2.
[0042] In the case of the electronics of the invention, it is, furthermore, provided that the circuit input of the load circuit M1 is at least at times, in given cases, also durably, electrically connected with the first circuit output of the power supply circuit M2, in such a manner that in the case of output voltage (V_SEK1; V_SEK2) present on the first circuit output of the power supply circuit M2 an electrical current flow from the first circuit output to the circuit input and/or an energy flow from the power supply circuit M2 to the load circuit M1 is enabled; this, especially, in such a manner that the above-mentioned electrical current flow in the case of an output voltage lying in the range between 2 V and 4 V has an electrical current level of greater than 100 mA (milliampere) and/or the above-mentioned energy flow amounts to greater than 2000 Ws/h (watt-second per hour).
[0043] For detecting a possible failure state within the electronics, particularly also within the power supply circuit M2, the electronics of the invention comprises, furthermore, a protection circuit Mx. The protection circuit Mx includes a first circuit input, a second circuit input as well as a circuit output. The circuit output of the protection circuit Mx is electrically connected with the circuit input of the power supply circuit M2. Additionally, the first circuit input of the protection circuit Mx is adapted to be electrically connected to a circuit output of an external energy supply ES providing a supply voltage V_EXT, for example, a DC supply voltage, for the electronics, and the second circuit input of the protection circuit Mx is electrically connected with the second circuit output of the power supply circuit M2, in such a manner that an input voltage applied to the second circuit input corresponds to the cell voltage V_BAT provided by the energy storer HLC. The power supply circuit M2, consequently the electronics formed therewith, is adapted in an additional embodiment to be operated with a supply voltage V_EXT, especially a supplied DC voltage, having a nominal value (nominal voltage) lying between 4 V and 60 V.
[0044] In the case of the electronics of the invention, additionally, both the power supply circuit as well as also the protection circuit have, in each case, at least two operating modes (M2.sub.I, M2.sub.II; Mx.sub.I, Mx.sub.II), namely a first operating mode, M2.sub.I and Mx.sub.I, respectively, and at least a second operating mode, M2.sub.II and Mx.sub.II, respectively.
[0045] In the first operating mode M2.sub.I of the power supply circuit, its energy storer HLC is switched to the first circuit output, in such a manner that the cell voltage provided by the energy storer or a voltage proportional thereto lies on the first circuit output as a first output voltage V_SEK1 (V_BAT=V_SEK1) and, in the second operating mode M2.sub.II of the power supply circuit M2, its circuit input is switched to its first circuit output; this, especially, in such a manner that an input voltage V_EXT applied to the circuit input, for example, a direct voltage, is converted into a second output voltage V_SEK2 of constant and/or predeterminable voltage level present on the first circuit output, and that in the case of an input voltage V_EXT applied to the circuit input an electrical current flow from the circuit input to the first circuit output is enabled and/or in such a manner that, as a result, a first load current circuit of the electronics is completed, which involves an electrical current path leading from the energy storer HLC, through the circuit output of the power supply circuit M2 and to the circuit input of the load circuit M1. In an additional embodiment of the invention, it is, additionally, provided that in the second operating mode M2.sub.II of the power supply circuit M2 its energy storer HLC is not switched to the first circuit output, in such a manner that the energy storer HLC and the first circuit output are electrically isolated from one another, and that the cell voltage provided by the energy storer is not present on the first circuit output.
[0046] In the case of the electronics of the invention, it is, furthermore, provided that in the first operating mode Mx, of the protection circuit Mx its first circuit input is switched to its circuit output; this, especially, in such a manner that in the case of a voltage applied to the first circuit input an electrical current flow is enabled from the first circuit input to its circuit output, and an energy flow is enabled from the protection circuit to the power supply circuit; this, especially, also in such a manner that in the first operating mode of operating protection circuit and at the same time in the second operating mode of operating power supply circuit M2 a second load current circuit of the electronics is completed, which involves an electrical current path leading from the first circuit input of the protection circuit Mx, further through its circuit output and to the first circuit input of the power supply circuit M2 and further through its circuit output and to the circuit input of the load circuit M1.
[0047] In the second operating mode Mx.sub.II of the protection circuit Mx, in turn, its first circuit input and its circuit output are electrically isolated from one another; this, especially, in such a manner that even in the case of voltage applied to the first circuit input with a voltage level of greater than 4 V and less than 60 V an electrical current flow with an electrical current level of only at most 100 μA (microampere) is enabled from the first circuit input to the circuit output and/or only an energy flow of at most 20 Ws/h (watt-second per hour) is enabled from the protection circuit to the power supply circuit. Moreover, the protection circuit Mx of the electronics of the invention is adapted in the first operating mode to monitor the cell voltage applied to the second circuit input as to whether its voltage level has exceeded a predetermined, maximum value .Math..sub.HLC, for example, lying less than 0.2 V above its nominal value. Additionally, protection circuit Mx is adapted automatically to deactivate its first operating mode, for example, at the same time to activate its second operating mode, or automatically to switch from its first operating mode into its second operating mode, in case it is detected in the case of the above described monitoring of the cell voltage of the energy storer HLC that the cell voltage has exceeded the above described maximum value .Math..sub.HLC. For monitoring the cell voltage, the protection circuit Mx includes in an additional embodiment of the invention, furthermore, a comparator, for example, formed by means of at least one difference amplifier, and having a first voltage input, a second voltage input and a signal output (nominally having only two states). For this case, the first circuit input of the protection circuit can be formed by means of the first voltage input of the comparator, in given cases, also with interposed voltage regulator and/or one or more Zener-diodes providing a reference voltage derived from the supply voltage V_EXT and/or further stabilized, and the second circuit input of the protection circuit can be formed by means of the second voltage input of the comparator, in given cases, also with an interposed voltage divider for the cell voltage V_BAT. Moreover, the protection circuit Mx can be adapted, based on a signal level on the signal output of the comparator, to activate its first operating mode or its second operating mode; this, especially, in such a manner that immediately after a change of a signal level on the signal output signaling an exceeding the maximum value .Math..sub.HLC by the cell voltage the second operating mode of the protection circuit is activated.
[0048] In an additional embodiment of the invention, it is provided that in the first operating mode of the protection circuit Mx in the case of a voltage applied to the first circuit input with a voltage level of greater than 4 V an electrical current flow is enabled from the first circuit input to its circuit output with an electrical current level of greater than 100 mA, or an energy flow is enabled amounting to greater than 1000 Ws/h from the protection circuit Mx to the power supply circuit M2, and/or it is provided that in the second operating mode of the protection circuit an electrical current flow with an electrical current level of only at most 100 μA (microampere) is enabled from the first circuit input to the circuit output and/or an energy flow of only at most 20 Ws/h (watt-second per hour) is enabled from the protection circuit to the power supply circuit; this particularly also for the case, in which a voltage with a voltage level of greater than 4 V and/or less than 60 V is present on the first circuit input and/or that the first circuit input of the protection circuit Mx is electrically connected to a circuit output of an external energy supply (ES) delivering a supply voltage having a voltage level lying between 4 V and 60 V.
[0049] In an additional embodiment of the invention, the power supply circuit M2 is, furthermore, also adapted to activate the first operating mode automatically, for example, even after a connecting of the energy storer HLC, or even after actuation of the above described switch DIL; this, especially, when the cell voltage of the energy storer HLC has a voltage level not subceeding a predetermined minimum value, for example, corresponding to greater than 105% of a discharge end voltage of the energy storer HLC, and/or in case there is no longer an input voltage on the circuit input, or an input voltage applied to the circuit input has a voltage level lying below a predetermined minimum value. Alternatively, or in supplementation, the power supply circuit M2 can, additionally, be adapted to activate the second operating mode automatically, for example, automatically to start up or automatically to change from the first operating mode to the second operating mode, in case an input voltage applied to the circuit input has a voltage level not subceeding a predetermined minimum value, for example, a minimum value lying above 4 V, and/or the power supply circuit can be adapted to deactivate the second operating mode automatically, in case there is no input voltage on the circuit input, or an input voltage applied to the circuit input has a voltage level lying below a predetermined minimum value. A detecting of the input voltage, or its correct voltage level and/or the above described (minimum-)voltage level of the cell voltage can, in turn, occur by means of one or more comparators, for example, in each case, formed by means of one or more difference amplifiers and correspondingly provided in the power supply circuit.
[0050] In an additional embodiment of the invention, it is, furthermore, provided that the power supply circuit M2 includes, besides the two previously indicated operating modes M2, and M2.sub.II, an additional, third operating mode M2.sub.III, in such a manner that the power supply circuit M2 is adapted in the third operating mode M2.sub.III to convert the cell voltage V_BAT provided by the energy storer HLC into a third output voltage V_SEK3 applied to the first circuit output of the power supply circuit M2; this, especially, also in such a manner that the voltage level of the output voltage V_SEK3 is higher than the voltage level of the cell voltage V_BAT of the energy storer HLC, or lies below the nominal value of the cell voltage V_BAT. Alternatively or supplementally, the voltage level of the output voltage V_SEK3 provided in the third operating mode by the power supply circuit can also differ from the particular voltage level of the output voltage V_SEK1, respectively V_SEK2, provided in each case in the first operating mode and/or in the second operating mode, especially in such a manner that the voltage level of the output voltage V_SEK3 is less than the voltage level of the output voltage V_SEK2 in the case of power supply circuit operating in the second operating mode. Moreover, the power supply circuit can, furthermore, be adapted to activate the third operating mode automatically, as soon as the cell voltage V_BAT provided by the energy storer HLC has a voltage level lying below a predetermined minimum value. The minimum value can be, for example, less than 3.3 V and/or greater than 80% of the nominal value.
[0051] For converting the cell voltage V_BAT provided by the energy storer HLC into a direct voltage derived therefrom, equally as well, stabilized and/or having a constant voltage level, for example, serving also as output voltage V_SEK3, the power supply circuit includes in an additional embodiment a (first) direct voltage converter BOOST, in such a manner that, such as shown schematically in
[0052] Particularly for the above described case, in which the voltage V_EXT on the circuit input of the power supply circuit M2 in its second operating mode is a direct voltage, the power supply circuit M2 can, furthermore, as well as also shown schematically in
[0053] In an additional embodiment of the invention, the energy storer HLC has a nominal capacity of greater than 400 As (ampere seconds), especially greater than 500 As, and the energy storer HLC provides, completely charged, consequently in the case of a charge status (SoC—state of charge) of 100%, a cell voltage V_BAT having a voltage level with a nominal value of greater than 2.4 V (volt). Particularly for the above described case, in which the electronics is connected to an external energy supply (ES), the nominal capacity of the at least one rechargeable energy storer HLC can, in given cases, also amount to less than 1000 As. Alternatively or supplementally, the nominal value of the cell voltage V_BAT of the energy storer HLC can amount to, for example, also less than 4 V. For increasing the electrical energy provided with the power supply circuit M2 by battery, consequently in the first operating mode M2.sub.I, or the electrical power thereby available within the electronics, the power supply circuit M2 can, such as shown schematically in