The present invention claims the priority of European Patent Application EP20180182738, filed on Jul. 10, 2018, the content of which is incorporated here by reference.
The present invention concerns autonomous data logger for acquiring and storing sensor data from a sensor and comprising a harvesting device and a sensing device.
Data loggers are electronic devices that records data over time or in relation to location either with a built in instrument or sensor or via external instruments and sensors. Existing data loggers make use of a digital processor (or computer) which provide sensor data acquisition and store acquired data. In the case the data loggers comprises an imaging sensor (such as a camera), the acquired data can be based on activity, or motion, detection.
Existing data loggers, however, suffer either from limited operations autonomy or from high bulkiness and cost.
The present disclosure concerns an autonomous data logger for acquiring and storing sensor data from a sensor, said data logger comprising: a harvesting device comprising a power source module, the harvesting device being embedded in a encapsulating layer and comprising a receiving area; a sensing device comprising a sensor module for acquiring sensor data and configured to be received in the receiving area of the harvesting device; the receiving area comprising a first coupling element and the sensing device comprising a second coupling element; said first and second coupling elements being configured to provide attachment means and electrical connection means between the sensing device and the harvesting device such that, when the sensing device is received in the receiving area, the sensing device is fixed to the harvesting device and is powered by the power source module.
The present disclosure further concerns system comprising a host computer docking station configured to receive the sensing device, the host computer docking station providing communication between the sensing device and the docking station when the data logger is received in the host computer docking station, and between the host computer docking station and an external computing means when the data logger.
The docking station can be configured to allow a user to perform various actions on the sensing device including configuration operations, download a memory content, erase the memory, charge a battery and update a firmware.
The data logger has the capability to integrate an autonomous sensor logger in the form factor of a palm-sized, or smaller, sticker. The sensor device can comprise one or a plurality of sensors powered by the harvesting device. The data logger has a very small form factor and allows for various shape designs. The data logger can be low-power and fully autonomous, requiring no battery.
The invention will be better understood with the aid of the description of an embodiment given by way of example and illustrated by the figures, in which:
The photovoltaic solar cell 21 can be made of a crystalline or a hydrogenated amorphous silicon solar cell (a-Si:H) layer 27 coated with a transparent conductive oxide (TCO) layer 26 on both faces. Preferably, the photovoltaic solar cell 21 is supported on a flexible substrate 25 such that the harvesting device 20 is also flexible. To that end, the flexible substrate 25 can comprise a polyethylene naphthalate (PEN) layer. The PEN layer can have a rigidity that can be less than 12×10−4 Nm. The flexible substrate 25 can have a bending radius of 5 cm or smaller. Thus, the flexible substrate 25 is flexible enough to be conformable to non-planar surface. The thickness of the harvesting device 20 comprising the photovoltaic solar cell 21, the TCO layers 26 and the flexible PEN substrate layer 25 and the encapsulating layer 22 can be between 500 μm and 650 μm. The harvesting device 20 has a bending radius of 5 cm or smaller. The photovoltaic solar cell 21 can be configured to deliver 2 mW at 1 kLux, or more.
In other embodiments, the power source module 21 can comprise any other type of power generating device. For example, the power source module 21 can comprise a thermoelectric energy harvesting (TEG) device, a piezoelectric device for vibration energy harvesting, a primary cell, magnetic induction harvesting device, or a USB docking station.
In the embodiment of
In the case the sensor device 11 is a imaging device, the data logger 1 can be advantageously used for surveillance by image capture. The combination of the thin imaging device 110, collimating optical module 111 and the photovoltaic solar cell 21 allows for the data logger 1 to have a form factor such as a palm-sized or smaller sticker. The imaging sensor 11 can further use an ultra-low power pixel circuit such as described in patent application EP18182685.0 by the present applicant, enabling the data logger 1 to have an extended autonomy.
Referring to
In other embodiments, the sensing module 11 can comprise any other type of sensor or device. For example, the sensing module 11 can comprise sensors for temperature, humidity, air quality, light level, vibrations, sound pressure, etc. The sensing module 11 can comprise a plurality of sensors powered by the harvesting device.
The harvesting device 20 comprises a receiving area 23 configured to receive the sensing device 10 when the latter is assembled with the harvesting device 20. The receiving area 23 comprises a first coupling element 30 destined to cooperate with a second coupling element 31 comprised on the sensing device 10. When cooperating, the first and second coupling elements 30, 31 provide a removable attachment between the harvesting device 20 and the sensing device 10. The cooperating first and second coupling elements 30, 31 also an electrical connection, allowing the sensing device 10 to be powered by the harvesting device 20.
In the example illustrated in
In the exemplary configuration of
The first and second coupling element 30, 31 can comprise an electrically conductive and magnetic element. When the first coupling element 30 cooperates with a second coupling element, the electrically conductive and magnetic element provides magnetic attraction between the first and second coupling element 30, 31, achieving magnetic attachment therebetween. The electrically conductive and magnetic element further provides a good electrical contact between the first and second coupling element 30, 31 when in contact.
The electrically conductive and magnetic element can comprise a composite structure including a mixture of a magnetic material and an electrically conductive material. The electrically conductive and magnetic element can comprise a magnetic material embedded in an electrically conductive material, such that the electrically conductive material of the first coupling element 30 contacts the electrically conductive material of the second coupling element 31 when the harvesting device 20 is assembled to the sensing device 10.
The magnetic material can comprise any metal with good magnetic permeability, such as iron (pure iron), carbon steel (not stainless), nickel, permalloy, cobalt-iron alloy, nickel-iron soft ferromagnetic alloy (such as Mu-metal®), cobalt-based alloy (such as Metglas® 2714A).
The electrically conductive material can comprise any metal providing high electrical conductivity and good resistance to corrosion, such as Ni, Cr, Pd, Pt, Au or an alloy of these metals.
In other embodiments, one the first and second coupling element 30, 31 can comprise a magnetic material and the other coupling element 30, 31 comprises a ferromagnetic material. Preferably, the first coupling element 31 comprises a ferromagnetic material and the second coupling element 31 comprises a magnetic material.
In yet other embodiments, each of the first and second coupling element 30, 31 can comprises a portion that provides magnetic attraction and another portion that provides electrical contact. Referring to
Other arrangements of the first and second coupling elements 30, 31 are also possible. For example, the sensing device 10 can comprise less or more than three peripheral disk-shaped second coupling elements 31. The peripheral disk-shaped second coupling elements 31 can be merged in an annular segment destined to cooperate with the annular segment 30′.
More generally, the receiving area 23 can comprise a plurality of the first coupling element 30 and the sensing device 10 comprises a plurality of the second coupling element 31, wherein each of the first coupling elements 30 cooperates with one of the second coupling elements 31 when the harvesting device 20 is assembled to the sensing device 10.
The first coupling element 30 can be disposed either side 13, 14 PCB element 40 (as shown in
The encapsulating layer 22 can be configured mechanical attachment of the harvesting device 20 on a surface. This can be achieved by making the encapsulating layer 22 adhesive. For example, the encapsulating layer 22 can comprise a pressure sensitive adhesive layer. The pressure sensitive adhesive layer is not visible in the figures because it is part of the encapsulating layer 22. In other words, the sensitive adhesive layer is integrated to the encapsulating layer 22 when the latter is manufactured. The pressure sensitive adhesive layer could also be a separate layer on top of the encapsulating layer 22. The pressure sensitive adhesive layer can have a thickness between 20 and 30 μm or about 25 μm. The encapsulating layer 22 can also be made adhesive by using a non-permanent adhesive.
Referring to
The data logger 1 comprising the sensing device 10 assembled on the harvesting device 20 can thus be attached to any surface such as a wall or a window.
The harvesting device 20 can be less than 100 mm in diameter and less than 1 mm in thickness. The sensing module 11 comprising the imaging device 110 and the image sensor 111 configured as the innovative micro-optical component described above, the data logger 1 can be as thin as 2 mm.
In such configuration, the data logger 1 that take the form of a flexible palm-sized adhesive sticker combining the solar cell 21 and the solar cell powered image sensor 100, 111 (camera).
In an embodiment, the receiving area 23 comprises a recess 24 (see
The receiving area 23 can further comprise a recess 24 configured to fit the sensing device 10. This configuration of the receiving area 23 can be significantly thinner than the configuration suing the PCB element 40, and the total thickness of the data logger 1 can be further decreased.
For example, the data logger 1 can have a thickness that is less than 1 mm. Such a data logger 1 having a diameter of between 60 and 80 mm and 0.6 mm in thickness has been produced (without adhesive layer). The harvesting device 20 can deliver a power of up to 2.55 mW at 1 kLux. The production of a data logger 1 having a thickness as low as 0.2 mm and a diameter being less than 80 mm is currently under way.
In an embodiment, the ratio of the diameter (or lateral dimension) of the harvesting device 20 over the thickness of the data logger 1 (combined thickness of the harvesting device 20 and the sensing device) can be between 30 and 100.
The sensor device 10 is capable to communicate with external devices, for example through BLE and/or wired serial data connection (UART).
In an possible configuration of the data logger 1, the sensing device 10 is formed integral with the harvesting device 20.
The docking station 50 can be configured to provide wired connection via a wiring port 51 between the sensing device 10 external computing means (not shown) when the data logger 1 is received in the docking station 50.
The docking station 50 can be configured to allow a user to perform various actions on the sensing device 10 such as configuration operations (including: various settings, identification, etc.), downloading of the memory 12 content, erasing the memory 12 content, charging the battery 114 and updating firmware.
It is understood that the present invention is not limited to the exemplary embodiments described above and other examples of implementations are also possible within the scope of the patent claims.
The configuration of the harvesting device 20 is not limited to the circular and square shape but can have any other shapes as illustrated in
Number | Date | Country | Kind |
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18182738.7 | Jul 2018 | EP | regional |