This application claims priority to Italian Application No. IT102019000008385, filed on Jun. 7, 2019, which application is hereby incorporated herein by reference.
The description relates to power supply in electronic devices.
One or more embodiments may be applied, for instance, to supplying processing devices such as general-purpose micro-controllers (MCUs).
One or more embodiments may be applied in low-power devices.
In various application contexts, facilitating power-effective co-existence of circuitry with different (minimum) operating voltages may represent a desirable feature. For instance, this may facilitate a user in defining in a flexible manner actions taken when low-voltage conditions are detected.
An approach to address that issue may involve limiting the operating voltage to a “worst case” condition. Such an approach may be far from providing an ideal solution: indeed, retaining the capability of operating a device, even with limited functionality/performance, may be desirable in various circumstances.
Another approach may involve using dedicated voltage monitors. While satisfactory under various respects, such an approach may be exposed to certain limitations related to the capability for various parts of a system to operate autonomously with different voltage specifications.
An object of one or more embodiments is to contribute in further addressing the issues discussed above.
According to one or more embodiments, that object can be achieved by means of a device having the features set forth in the claims that follow.
A device including a microcontroller unit (MCU) and IP core circuitry (briefly, IP circuitry) may be exemplary of such a device.
The claims are an integral part of the technical disclosure of embodiments as provided herein.
One or more embodiments may involve using a general-purpose voltage monitor which, in conjunction with a specific hardware approach, facilitates managing low-power system operation even when different parts of the system operate autonomously.
One or more embodiments may offer advantages under various respects such as, for instance:
One or more embodiments retain the possibility of configuring operating features by software with software-defined actions facilitating a final user in deciding what to do in case of voltage drops. This facilitates taking actions (such as output power reduction, switch-off and so on) related to the specific application context while retaining a substantial flexibility in selecting such actions.
One or more embodiments may involve a general-purpose voltage monitor circuit which, in conjunction with a certain hardware approach, facilitates a management of low-power system operation even in those arrangements where different parts of a system are intended to operate autonomously.
One or more embodiments will now be described, by way of example only, with reference to the annexed figures, wherein:
In the ensuing description one or more specific details are illustrated, aimed at providing an in-depth understanding of examples of embodiments. The embodiments may be obtained without one or more of the specific details, or with other methods, components, materials, etc. In other cases, known structures, materials, or operations are not illustrated or described in detail so that certain aspects of embodiments will not be obscured.
Reference to “an embodiment” or “one embodiment” in the framework of the present description is intended to indicate that a particular configuration, structure, or characteristic described in relation to the embodiment is comprised in at least one embodiment. Hence, phrases such as “in an embodiment” or “in one embodiment” that may be present in one or more points of the present description do not necessarily refer to one and the same embodiment. Moreover, particular conformations, structures, or characteristics may be combined in any adequate way in one or more embodiments.
The references used herein are provided merely for convenience and hence do not define the extent of protection or the scope of the embodiments.
An electronic circuit comprising a processing unit (a microcontroller unit or MCU, for instance) with the capability of being coupled to IP circuitry, namely one or more intellectual property cores (briefly, IP cores or, simply, IPs) may be exemplary of such a device.
The designation IP core (or, briefly, IP) is a well-known designation adopted in electronic design to designate a reusable unit of logic, cell or integrated circuit design which can be used as building blocks of integrated circuits such as ASICs (Application-Specific Integrated Circuits) or FPGAs (Field-Programmable Gate Arrays).
In various circumstances and for different reasons known to those of skill in the art, such a supply voltage may decrease to a lowest value Vmin or below.
The representation in
on the one hand, able to operate reliably (“OK”, both of them) for values of VDD at V2 and above,
on the other hand, unable to operate reliably (“KO”, again both of them) for values of VDD at Vmin and below.
The representation in
The right-hand side of
The entity S denotes the spread, that is the maximum difference between different silicon parts and different operating conditions (PVT); POR may be indicative of a power-on reset condition in a voltage monitoring system voltages with a power-on reset (POR) to facilitate proper initialization at power-up. The hysteresis H facilitates ensuring monitor output stability against supply noise.
Reference 20 in
Reference 22 in
As exemplified in
As exemplified in
Reference 30 in
It will be appreciated that, throughout
As discussed previously (and as exemplified in
However, a desirable type of operation would involve keeping the IP circuitry 20 active (“ON”) while the rest of the system is turned off with the supply voltage provided to the IP circuitry 20 still monitored so that possible action may be taken in case of a supply voltage drop below a desired minimum level.
For instance, by way of reference to
Maintaining the supply level above Vmin may be facilitated (in a manner known to those of skill in the art) by the voltage monitor POR. This may not be enough, as the IP circuitry 20 cannot operate adequately between Vmin and V2, while the monitor 22 will facilitate checking that the supply voltage is above V2.
In one or more embodiments such monitoring (of the supply voltage to the IP circuitry 20, for instance) can be facilitated by keeping the monitor circuit 22 “alive” in such a way that—even with the low-voltage logic 10 switched to a low-power state—a threshold IPT corresponding to a desired operation condition of the IP circuitry 20 is selected and made available to the monitor circuit 22.
In an embodiment as exemplified in
For instance, such a signal LP (which can be generated in any manner known to those of skill in the art) can be applied to the multiplexer 100 according to the following principles:
The IP threshold IPT can be produced in any manner known to those of skill in the art (for instance by resorting to a hard-wired arrangement).
In one or more embodiments as exemplified in
For instance (as exemplified in
The diagram of
In an arrangement as exemplified in
In an arrangement as exemplified in
In that way, the enable input 22b to the voltage monitor circuit 22 will receive an enable signal (“high”, for instance) to keep the voltage monitor circuit 22 active either as a result of the signal on the line 20a indicating that the IP 20 is active—or—as a result of LP=0 (that is, during normal operation with the low-voltage domain 10 turned on). In such normal operation conditions, the enable signal from the registers 14 may be forwarded to the input 22b of the voltage monitor circuit 22 to keep it alive via the gate 102 and the gate 104.
Briefly, one or more embodiments as exemplified herein may facilitate achieving the conditions considered in the following.
When in a low-power (LP) mode (that is 10 is OFF and LP=1):
When in a normal mode (that is, 10 is ON and LP=0), the fact that monitor 22 is active or not may depend (exclusively) on the selection made by the user by programming a specific register bit (and not on the IP activation state).
In embodiments as exemplified in
Such an arrangement as exemplified in
The wake-up logic circuit 32 may operate as exemplified in
One or more embodiments may thus provide the capability of monitoring a supply voltage VDD in case of IP autonomous operation by making it unnecessary to keep the full system active, by possibly providing both automatic monitor switch-off when the IP section moves to a non-active state and system wake-up capability.
A device as exemplified herein may comprise:
In that way, the monitor circuit can be kept “alive” and monitor supply of the IP circuitry insofar as this latter is active.
In a device as exemplified herein, the threshold setting circuit may comprise a multiplexer (for instance, 100) having an input configured to receive said IP circuitry supply threshold and an output coupled to the threshold setting node of the supply monitor circuit, the multiplexer controlled by a low-power mode signal (for instance, LP) indicative of the processing circuit being switched to said low-power mode.
In a device as exemplified herein:
In a device as exemplified herein, the enablement maintaining circuitry may comprise:
A device as exemplified herein may comprise:
In a device as exemplified herein, said enablement maintaining circuitry may be sensitive to a low-power mode signal (for instance, LP) indicative of the processing circuit being switched to said low-power mode and configured to deactivate the supply monitor circuit as a result of both said IP activation signal being indicative of the IP circuitry being inactive and said low-power mode signal being indicative of the processing circuit being switched to said low-power mode.
A device as exemplified herein may comprise wake-up circuitry (for instance, 32) coupled to the supply monitor circuit and configured to apply to the processing circuit a wake-up signal (for instance, WU) causing the processing circuit to exit said low-power mode as a result of the voltage on the power supply line dropping below said IP circuitry supply threshold (for instance, IPT).
Without prejudice to the underlying principles, the details and embodiments may vary, even significantly, with respect to what has been described by way of example only without departing from the scope of protection.
The extent of protection is determined by the annexed claims.
Number | Date | Country | Kind |
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102019000008385 | Jun 2019 | IT | national |
Number | Name | Date | Kind |
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9965025 | Yuasa | May 2018 | B2 |
10615779 | Butenhoff | Apr 2020 | B1 |
20020180497 | Kim | Dec 2002 | A1 |
Number | Date | Country |
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2017096776 | Jun 2017 | JP |
Number | Date | Country | |
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20200389153 A1 | Dec 2020 | US |