Tracking device for satellite communication

The energetically autonomous tracking device addresses signal and precision issues in satellite communication by using solar and vibration power, offering dual-mode communication and a reusable, low-impact design for efficient tracking and data collection.

WO2026104889A1PCT designated stage Publication Date: 2026-05-21LINXENS HOLDING SAS
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
LINXENS HOLDING SAS
Filing Date
2025-11-12
Publication Date
2026-05-21

AI Technical Summary

Technical Problem

Existing satellite communication devices suffer from suboptimal signal coverage and precision, and their design is not energy-efficient, relying on external batteries which complicates reuse and environmental impact.

Method used

A flexible, energetically autonomous tracking device utilizing solar energy and mechanical vibration to power low-power components, enabling dual-mode communication via satellite and terrestrial networks, with a layered structure for reusability and minimal environmental footprint.

Benefits of technology

The device provides long-term tracking and data collection with high precision, supports dual-mode communication, and is environmentally friendly with a thin, reusable design.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a tracking device for satellite communication comprising a flexible Printed Circuit Board (PCB) configured to communicate with a satellite, and a power control module configured to supply power to the flexible PCB. The flexible PCB comprises a microcontroller, a communication module, a satellite antenna, and an RFID antenna. The power control module comprises an energy-storage module and an energy-harvesting module, wherein the energy-harvesting module is configured to generate energy and provide it to the energy- storage module.
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Description

[0001] TRACKING DEVICE FOR SATELLITE COMMUNICATION

[0002] Technical field

[0003] The present invention relates to the field of tracking devices for satellite communication. In particular, the present invention relates to the field of energetically autonomous tracking devices for satellite communication.

[0004] State of the art

[0005] Satellite devices are used to send and receive signals via satellites orbiting the Earth. These devices enable long-distance communication by transmitting data to satellites, which then relay the signals back to other satellite devices, ground stations, or even directly to other user devices in remote areas. These devices are commonly used as trackers for tracking, monitoring, and locating objects by using GPS and simplex satellite devices.

[0006] However, the signal coverage and the precision of the satellite devices known at the state of the art are not optimal, and their design is not adapted to the usage.

[0007] Summary

[0008] According to an aspect of the present invention, a tracking device for satellite communication is provided, as set out in claim 1.

[0009] The advantage of this configuration is that it enables tracking a position of an object, such as a package or a container, around the world by using satellite communication. The device also enables collecting sensitive external environment data and inventorying a number of objects in a predefined area. Moreover, the device for satellite communication is completely autonomous regarding energy-harvesting because it relies on solar energy, without the need of external batteries, such as lithium batteries. Finally, the device is re-usable.

[0010] The device according to the invention comprises a flexible Printed Circuit Board (PCB) and a power control module configured to supply energy to the flexible PCB.

[0011] The PCB is configured to communicate with a pre-existing satellite constellation. Preferably, the pre-existing satellite constellation is a geostationary constellation. The satellite constellation may then transmit a communication signal to the internet cloud and send it to local applications areas to display the position of the device and also parameters of travel. The PCB comprises a microcontroller, a communication module, a satellite antenna, and an RFID antenna, which may be produced according to technologies known at the state of the art. Preferably, the microcontroller and / or the communication module are low power consumption components, for example, the power is equal to or less than 30mA in Serial Line Internet Protocol (SLIP) mode, more preferably equal to or less than 25 mA in SLIP mode, even more preferably equal to or less than 20 mA in SLIP mode. Preferably, the microcontroller and / or the communication module are low power consumption components, for example, the power is equal to or less than 350 mA in Programmable Interface Controller (PIC) mode. Due to optimization of power consumption in the power control module, the features of the microcontroller and / or the communication module can be optimized.

[0012] Preferably, the communication module may rely on existing network adapted to satellites and may be based on Long-Range communication technology. In this way, the communication module can send messages with short intervals, for example under 15 minutes, to transfer data from the device to the satellite. It is hence possible to ensure a duration life of the device of more than three months.

[0013] According to preferred embodiments, the communication module may also include a radiofrequency chip and a chip-controller, wherein the radiofrequency chip is configured to operate using either satellite communication or Sub-GHz terrestrial communication technologies and the chip-controller is programmed to control the switching between the two communication technologies.

[0014] This configuration is advantageous as it enables the tracking device to support dual-use applications (hybrid network communication), allowing both outdoor tracking via satellite communication and indoor tracking via Sub-GHz terrestrial communication technologies.

[0015] For example, the radiofrequency chip may be operated at 400 MHz by using the communication protocol Kineis. For example, the radiofrequency chip may be operated at frequencies between 800 MHz and 1 GHz by using the communication protocols LoRa or NB-loT.

[0016] The chip-controller is advantageously programmed to control the switching between the two communication technologies. In other words, the switching between these communication protocols is controlled directly by a software embedded in the chip-controller, as the software can induce the chip-controller to select a predefined communication frequency. Preferably, the switching can be performed automatically during operation.

[0017] Preferably, the chip-controller is configured to control parameters of the satellite antenna, such as the frequency or the level of power amplification. The power control module is based on solar panels technology and / or mechanical-vibration sensors and is configured to capture and use energy. In other words, the power control module is configured to exploit the solar energy and / or the mechanical energy generated by movement or vibration to power the PCB components, such as small electronics or sensors, autonomously. Since the PCB components are low-power consumption components, the tracking device has a long lifetime and is energetically autonomous. For example, the mechanical-vibration sensors may be piezo-electric sensors, accelerometers and / or gyroscopes.

[0018] In the present disclosure, it is to be understood that vibration technology refers to any technology that converts vibrational and / or mechanical energy into electrical energy.

[0019] The power control module comprises at least one of the following combination of components: a battery and an energy-harvesting module; a battery and a solar panel; and / or a harvesting module and a storage capacitor.

[0020] Preferably, the tracking device is configured as a layered-structure, wherein the layers of the power control module and of the flexible PCB are stacked on each other. Preferably, the tracking device may further comprise an adhesive layer, a cover layer, and / or compensation layers attached to the stacked structure of the flexible PCB and the power control module.

[0021] Preferably, the tracking device is flexible, for instance it may be configured to be bent up to 60°.

[0022] Preferably, the device has a thickness of less than 20 mm, preferably less than 10 mm, even more preferably equal to or less than 5 mm. This configuration is advantageous because the device is thin and can be easily applied on an object to be tracked

[0023] Preferably, the device has standard dimensions, for example 10x15 cm.

[0024] Preferably, the device comprises an external adhesive layer and can be used as a sticker. The advantage of this configuration is that the device can be re-used in different situations, thus reducing the disposal of components and minimizing impact on the environment. The user can, in fact, remove the device from an object by detaching the adhesive layer and can keep and reuse the device for tracking a new object.

[0025] Preferably, the cover layer and the adhesive layer are made of paper, resin, PET, and / or biosourced plastic material, in order to be biodegradable. Moreover, the flexible PCB is preferably configured to be recycled.

[0026] According to another aspect of the present invention, a method for producing a tracking device for satellite communication is provided, as set out in claim 14. The method can be advantageously used to produce a tracking device as the ones described above.

[0027] Preferably, the method is carried out by a reel-to-reel process.

[0028] According to another aspect of the present invention, a method for operating a tracking device for satellite communication as the ones describes above is provided, as set out in claim 18.

[0029] Brief description of the drawings

[0030] Illustrative embodiments of the present invention will be described in more detail in the following specification, while also referring to the accompanying drawings, in which

[0031] Fig. 1 schematically illustrates the operation of a device for satellite communication according to an embodiment of the present invention;

[0032] Fig. 2 schematically illustrates an exploded view of a device for satellite communication according to an embodiment of the present invention.

[0033] Detailed description

[0034] In the following, the present invention is described with reference to particular embodiments, as illustrated in the enclosed figures. However, the present invention is not limited to the particular embodiments described in the following detailed description and shown in the figures. Instead, the described embodiments simply exemplify the different features of the present invention, the scope of which is defined in the claims. Further modifications and variations of the present invention will be clear to the skilled person.

[0035] Fig. 1 schematically illustrates the operation of a tracking device for satellite communication 100 according to an embodiment of the present invention.

[0036] The tracking device for satellite communication 100 is attached to an object 300 to be tracked, such as a package, or a container. The tracking device for satellite communication 100 enables tracking the position of the object 300 and measuring environmental parameters in correspondence with the object 300, such as temperature, vibration, humidity, or the like. When a plurality of tracking devices for satellite communication 100 is applied to different objects 300, an inventory process is also possible.

[0037] After measuring the position and / or the environmental parameters of the object 300, a signal containing these data is transmitted to the satellite 200 via a simple network 210. The satellite 200 then transmits a communication signal to the internet cloud 220 and / or to local applications areas to display the position of the device 230 and travel parameters 240.

[0038] Fig. 2 schematically illustrates an exploded view of a tracking device for satellite communication 100 according to an embodiment of the present invention.

[0039] The tracking device for satellite communication 100 is a multi-layered structure and comprises, from top to bottom in the figure, a cover layer 140, a layer with the power control module 120, a flexible PCB layer 110, and an adhesive layer 130.

[0040] The flexible PCB layer 110 comprises a microcontroller, a communication module, a satellite antenna, and an RFID antenna for enabling communication with a satellite. Preferably, the flexible PCB layer 110 further comprises one or more sensors (not visible in Fig. 2) for measuring environment parameters, such as temperature, vibration, humidity, or the like.

[0041] The power control module 120 comprises an energy-storage module and an energy-harvesting module, the energy-harvesting module being configured to generate energy and provide it to the energy-storage module. In the illustrative configuration of Fig. 1, the power control module 120 comprises the battery 122 and the solar panel 124. However, the power control module 120 may comprise additional and / or alternative energy-harvesting modules based on vibration technology. Moreover, the power control module 120 may comprise additional and / or alternative energystorage modules.

[0042] Preferably, the power control module 120 is attached to the flexible PCB layer 110 by means of flex connectors (not shown).

[0043] With reference to the configuration of Fig. 1, the cover layer 140 is attached to and protects the side of the power control module 120 opposite to the flexible PCB 110. The cover layer 140 may be advantageously provided with a window of transparent material (not shown) to enable the sunlight to reach the power control module 120, in order to provide energy to the energyharvesting module, such as the solar panel 124. The cover layer 140 may be made of a paper or plastic material, such as a bio-based plastic material, so that it can be recycled. The cover layer 140 comprises a printed area with information directly linked to the end customer. The information can be personalized.

[0044] With continued reference to the configuration of Fig. 1 , the adhesive layer 130 is attached to the side of the PCB layer 110 opposite to the power control module layer 120. The adhesive layer 130 comprises a sub-layer of paper or plastic material, and a sub-layer of glue and enables attachment of the device for satellite communication 100 to the object 300 to track. Due to the adhesive layer 130, the tracking device 100 can be reversibly attached to the object 300 to be tracked and can be re-used for different objects.

[0045] The tracking device 100 may further comprise additional compensation layers (not shown) between the flexible PCB 110, the power control module 120, the adhesive layer 130, and / or the cover layer 140, in order to compensate for different thicknesses of the layers due to the presence of the electronic components.

[0046] Even if the present invention has been described with reference to the embodiments described above, it is clear to the skilled person that it is possible to apply different modifications, variations and improvements of the present invention in light of the teachings described above and the field, and within the scope of the enclosed claims, without departing from the scope and purpose of the present invention.

[0047] Finally, those fields considered known to the skilled person have not been described to avoid covering in a useless way the described invention.

[0048] REFERENCE NUMBERS

[0049] 100: tracking device for satellite communication

[0050] 110: flexible PCB

[0051] 120: power control module

[0052] 122: energy-storage module

[0053] 124: energy-harvesting module

[0054] 130: adhesive layer

[0055] 140: cover layer

[0056] 200: satellite

[0057] 210: satellite network

[0058] 220: cloud

[0059] 230, 240: displayed data

[0060] 300: object

Claims

Claims1. A tracking device for satellite communication (100) comprising:a flexible Printed Circuit Board “PCB” (110) configured to communicate with a satellite, the flexible PCB (110) comprising a microcontroller, a communication module, a satellite antenna, and an RFID antenna; anda power control module (120) configured to supply power to the flexible PCB (110),wherein the power control module (120) comprises an energy-storage module (122) and an energy-harvesting module (124), the energy-harvesting module (124) being configured to generate energy and provide it to the energy-storage module (122).

2. The tracking device of claim 1 , wherein the energy-storage module (122) comprises a battery and / or a storage capacitor.

3. The tracking device (100) of claim 1 or 2, wherein the energy-harvesting module (124) comprises a solar panel and / or a harvesting module based on vibration technology.

4. The tracking device (100) of any of previous claims, wherein the flexible PCB (110) further comprises one or more sensors for measuring temperature, vibration, and / or humidity.

5. The tracking device (100) of any of previous claims, wherein the microcontroller and / or the communication module are low power consumption components, preferably having a working current in Serial Line Internet Protocol (SLIP) mode equal to or less than 30 mA, even more preferably equal to or less than 25 mA, even more preferably equal to or less than 20 mA.

6. The tracking device (100) of any of previous claims, wherein the microcontroller and / or the communication module are low power consumption components, preferably having a working current in Programmable Interface Controller (PIC) mode equal to or less than 350 mA.

7. The tracking device (100) of any of previous claims, further comprising an adhesive layer (130) suitable for reversibly attaching the tracking device (100) to an object, for example an object to be tracked.

8. The tracking device (100) of claim 7, wherein the adhesive layer (130) comprises a sub-layer of paper or plastic material, such as bio-based plastic, and a sub-layer of glue.

9. The tracking device (100) of any of previous claims, further comprising a cover layer (140) attached to a side of the PCB (110).

10. The tracking device (100) of claim 9, wherein the energy-harvesting module (124) comprises a solar panel and the cover layer (140) is provided with a window of transparent material for enabling sunlight to reach the solar panel.

11. The tracking device (100) of any of previous claims having a thickness of less than 20 mm, preferably less than 10 mm, even more preferably less than 5 mm.

12. The tracking device (100) of any of previous claims, wherein the tracking device (100) is a layered-structure.

13. The tracking device (100) of any of previous claims, wherein the tracking device (100) is flexible, for example it is configured to be bent up to 60°.

14. The tracking device (100) of any of previous claims, wherein the communication module comprises a radiofrequency chip and a chip-controller, and wherein the radiofrequency chip is configured to operate using either satellite communication or Sub-GHz terrestrial communication technologies and the chip-controller is programmed to control the switching between said communication technologies.

15. A method for producing a tracking device for satellite communication, the method comprising the following steps:a) Providing a flexible PCB (110) with a microcontroller, a communication module, a satellite antenna, and an RFID antenna;b) Attaching a layer with a power control module (120) to a side of the flexible PCB (110), the power control module (120) being configured to supply power to the flexible PCB (110),wherein the power control module (120) comprises an energy-storage module (122) and an energy-harvesting module (124), the energy-harvesting module (124) being configured to generate energy and provide it to the energy-storage module (122).

16. The method of claim 15, further comprising the following step:c) Attaching an adhesive layer (130) to the side of the flexible PCB (110) opposite to the layer with the power control module (120) to enable attachment of the tracking device (100) to an object (300).

17. The method of claim 15 or 16, further comprising the following step:d) Attaching a cover layer (140) to the side of the power control module (120) opposite to the flexible PCB (110).

18. The method of any of claims 15 to 17, wherein the method is carried out by a reel-to-reel process.

19. A method for operating the tracking device for satellite communication (100) of any of claims 1 to 14, the method comprising the following steps:i) Attaching the tracking device for satellite communication (100) to an object (300) to be tracked, such as a package, or a container;ii) Measuring the position of the object (300) and, optionally, the environmental parameters of the object (300);iii) Transmitting a signal containing the data of the object position and, optionally, of the environmental parameters to a satellite (200) via a network (210);iv) Transmitting a communication signal from the satellite (200) to the internet cloud (220) and / or to local applications areas to display said data.