IP Library Granted Patent US 12,235,153
Granted Patent B2
US 12,235,153 · App. 18/281,218 · Granted Feb 25, 2025

Control system for an active shielding screen

Inventors: Quentin Tricas (Moissy-Cramayel, FR); Patrice Foutrel (Moissy-Cramayel, FR); Philippe Besnier (Paris, FR); Xavier Castel (Rennes, FR); Claire Le Paven (Rennes, FR)
Assignees: CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE; UNIVERSITE DE RENNES; SAFRAN ELECTRONICS & DEFENSE
G01J1/02H05K9/0058H05K9/0064H05K9/0071G01J2001/0276
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Quick Facts
Patent No.
US 12,235,153
App. No.
18/281,218
Granted
Feb 25, 2025
Kind
B2
Abstract

A system for controlling the activation/deactivation of an electromagnetic shielding screen of a porthole or a protective window of an optoelectronic equipment, which includes, a radiofrequency electromagnetic sensor, with a bandwidth adapted to a cut-off band of said shielding screen corresponding to a range of electromagnetic fields to be blocked, connected to a detector-rectifier with a sensitivity higher than a minimum value of the power of an electromagnetic field to be blocked by means of said shielding screen and a device for activating/deactivating said electromagnetic shielding screen, said detector-rectifier being configured, in the presence of the electromagnetic field with a power exceeding said minimum value, to activate said device for activating/deactivating the electromagnetic shielding screen by capturing the electromagnetic energy supplied by said electromagnetic fields with a power exceeding said minimum value.

Claims (29)

1. A system for controlling the activation/deactivation of an electromagnetic shielding screen provided with an activation/deactivation device for a porthole or a protective window of an optoelectronic equipment, comprising:

an electromagnetic sensor for receiving a radiofrequency electromagnetic field, with a bandwidth adapted to a cut-off band of said shielding screen corresponding to a range of electromagnetic fields to be blocked,

a detector-rectifier connected to the electromagnetic sensor, with a sensitivity higher than a minimum value of the power of an electromagnetic field to be blocked by means of said electromagnetic shielding screen,

said electromagnetic sensor and detector-rectifier being configured, in the presence of an electromagnetic field with a power exceeding said minimum value, for capturing the electromagnetic energy supplied by said electromagnetic field with a power exceeding said minimum value for powering and activating said activation/deactivation device for activating/deactivating the electromagnetic shielding screen using said electromagnetic energy supplied by said electromagnetic field with a power exceeding said minimum value.

2. The control system according to claim 1 , wherein, the activation/deactivation device being a PIN diode device, said detector-rectifier converts electromagnetic energy captured by said detector-rectifier, into a supply voltage or current of the pin diode device necessary to activate said electromagnetic shielding screen.

3. The control system according to claim 2 , wherein the radiofrequency electromagnetic sensor comprises an antenna sized to sense an electromagnetic energy adapted to enable said detector-rectifier device to directly produce a supply voltage or current of said activation/deactivation device necessary to activate said shielding for an electromagnetic field power value to be blocked higher than a setpoint value.

4. The control system according to claim 2 , wherein the electromagnetic shielding screen is connected to a collector structure throughout a network including a plurality of parallel links, each link including a capacitor and a PIN diode in series, the detector-rectifier making, in the presence of said electromagnetic field with a power exceeding said minimum value, a direct voltage source for electrically polarising said PIN diodes connected to anodes of said PIN diodes throughout resistors, cathodes of said PIN diodes being connected to the collector structure.

5. The control system according to claim 4 , wherein the collector structure is an electrically-conductive frame of the shield connected to a ground of said equipment.

6. The control system according to claim 1 , wherein the activation/deactivation device is a PIN diode device between the shielding screen and a frame of the shielding screen or an array with insulator/metal transition material tracks, for example VO 2 or a pump system for injecting a liquid with high dielectric permittivity and/or electrically conductive within a peripheral channel between the structure of the electromagnetic shielding screen and its frame connected to the ground, and includes an amplification stage interposed between the detector-rectifier device and the said PIN diode device, said array with insulator/metal transition material tracks or said pump system of said electromagnetic shielding screen.

7. The control system according to claim 6 , comprising a comparator at the output of the detector-rectifier drives said amplifier.

8. The control system according to claim 6 , wherein said amplification stage is powered by a voltage or current source external to said optoelectronic equipment.

9. The control system according to claim 6 , wherein said amplification stage is powered by a voltage or current source internal to said optoelectronic equipment.

10. The control system according to claim 1 , wherein, the incident electromagnetic field being a pulse-modulated signal, said detector-rectifier is configured to have a decay time constant of the output signal higher than the inverse of a repetition frequency of the incident electromagnetic field so as to keep the control signal active between the repetitions of said electromagnetic field.

11. The control system according to claim 1 , wherein said detector-rectifier comprises a Schottky diode RF detector.

12. An active shielding screen, for a porthole or a protective window of electronic equipment, including an electrically-conductive two-dimensional structure in the microwave frequency domain, being at least partially transparent to optical radiation and including an activation/deactivation device adapted to activate said shielding by connecting said structure to an electrical ground of a support, comprising a control system according to claim 1 .

13. A system for controlling the activation/deactivation of an electromagnetic shielding screen provided with an activation/deactivation device for a porthole or a protective window of an optoelectronic equipment, comprising:

an electromagnetic sensor for receiving a radiofrequency electromagnetic field, with a bandwidth adapted to a cut-off band of said shielding screen corresponding to a range of electromagnetic fields to be blocked,

a detector-rectifier connected to the electromagnetic sensor, with a sensitivity higher than a minimum value of the power of an electromagnetic field to be blocked by means of said electromagnetic shielding screen,

said electromagnetic sensor and detector-rectifier being configured, in the presence of the electromagnetic field with a power exceeding said minimum value, to activate said device (for activating/deactivating the electromagnetic shielding screen by capturing the electromagnetic energy supplied by said electromagnetic field with a power exceeding said minimum value and wherein, the activation/deactivation device being a PIN diode device, said detector-rectifier converts electromagnetic energy captured by said detector-rectifier into a supply voltage or current of the pin diode device necessary to activate said electromagnetic shielding screen.

14. The control system according to claim 13 , wherein the radiofrequency electromagnetic sensor comprises an antenna sized to sense an electromagnetic energy adapted to enable said detector-rectifier device to directly produce a supply voltage or current of said activation/deactivation device necessary to activate said shielding for an electromagnetic field power value to be blocked higher than a setpoint value.

15. The control system according to claim 13 , wherein the electromagnetic shielding screen is connected to a collector structure throughout a network including a plurality of parallel links, each link including a capacitor and a PIN diode in series, the detector-rectifier making, in the presence of said electromagnetic field with a power exceeding said minimum value, a direct voltage source for electrically polarising said PIN diodes connected to anodes of said PIN diodes throughout resistors, cathodes of said PIN diodes being connected to the collector structure.

16. The control system according to claim 15 , wherein the collector structure is an electrically conductive frame of the shield connected to a ground of said equipment.

17. A system for controlling the activation/deactivation of an electromagnetic shielding screen provided with an activation/deactivation device for a porthole or a protective window of an optoelectronic equipment, comprising:

an electromagnetic sensor for receiving a radiofrequency electromagnetic field, with a bandwidth adapted to a cut-off band of said shielding screen corresponding to a range of electromagnetic fields to be blocked,

a detector-rectifier connected to the electromagnetic sensor, with a sensitivity higher than a minimum value of the power of an electromagnetic field to be blocked by means of said electromagnetic shielding screen,

said electromagnetic sensor and detector-rectifier being configured, in the presence of the electromagnetic field with a power exceeding said minimum value, to activate said device for activating/deactivating the electromagnetic shielding screen by capturing the electromagnetic energy supplied by said electromagnetic field with a power exceeding said minimum value and wherein the activation/deactivation device is a PIN diode device between the shielding screen and a frame of the shielding screen or an array with insulator/metal transition material tracks, for example VO 2 or a pump system for injecting a liquid with high dielectric permittivity and/or electrically conductive within a peripheral channel between the structure of the electromagnetic shielding screen and its frame connected to the ground, and includes an amplification stage interposed between the detector-rectifier device and the said PIN diode device, said array with insulator/metal transition material tracks or said pump system of said electromagnetic shielding screen.

18. The control system according to claim 17 , comprising a comparator at the output of the detector-rectifier drives said amplifier.

19. The control system according to claim 17 , wherein said amplification stage is powered by a voltage or current source external to said optoelectronic equipment.

20. The control system according to claim 17 , wherein said amplification stage is powered by a voltage or current source internal to said optoelectronic equipment.

Assignments (2)
CHANGE OF NAME Recorded Sep 8, 2023
From: UNIVERSITE DE RENNES 1
To: UNIVERSITE DE RENNES
Reel/Frame 064845/0397 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 8, 2023
From: TRICAS, QUENTIN; FOUTREL, PATRICE; BESNIER, PHILIPPE; CASTEL, XAVIER; LE PAVEN, CLAIRE
To: CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE; UNIVERSITE DE RENNES 1; SAFRAN ELECTRONICS & DEFENSE
Reel/Frame 064849/0887 →
Priority Claims (1)
FR 2102339 · Mar 11, 2021 · national
Continuity (1)
Related Publication 20240151577A1 · May 9, 2024
References Cited (7)
US 20110115686A1 · Hauhe et al. · 2011 [cited by applicant]
US 20200173859A1 · Dupeyrat · 2020 [cited by examiner]
WO WO2018215243A1 · 2018 [cited by applicant]
International Patent Application No. PCT/FR2022/050284, International Search Report dated Jun. 15, 2022 with English translation, 7 pages. [cited by applicant]
Natural Resources Canada, Canada Centre for Remote Sensing “Fundamentals of Remote Sensing”, Aug. 3, 2007, 258 pages. [cited by applicant]
Mehmood et al., “RF and microwave power detection with Schottky diodes”, Infineon Technologies AG, Jul. 31, 2018, 15 pages. [cited by applicant]
Takacs et al., “Ultra-compact Ku band rectenna”, 2015 IEEE Mtt-S International Microwave Symposium, IEEE, May 17, 2015, 4 pages. [cited by applicant]