Method and device for monitoring ophthalmic lens manufacturing conditions
A method and communication system for ophthalmic device manufacturing line is disclosed. More specifically, the communication device may be incorporated in early stages of manufacturing of the ophthalmic device to monitor process controls without delay. In some embodiments, a unique pedigree profile can be stored for an ophthalmic device during manufacturing and correlated with one or more of: design profiles, controlled process parameters, performance, and distribution channels.
1. A method of monitoring ophthalmic lens manufacturing controlled conditions comprising:
placing a communication system comprising at least one or more sensors on a lens forming surface of a mold;
energizing the communication system during manufacturing of the ophthalmic lens;
storing a unique identifier in the communication system for said ophthalmic lens manufactured in said mold;
continuously measuring a controlled condition during manufacturing of the ophthalmic lens using the at least one or more sensors of the communication system;
transmitting sensor data relating to the measured condition to a processor; and
identifying a deficiency in the controlled condition using the sensor data and the unique identifier;
wherein said communication system becomes incorporated into the ophthalmic lens.
2. The method of claim 1 , additionally comprising:
storing thresholds according to an ophthalmic lens design for the controlled condition.
3. The method of claim 2 , additionally comprising:
modifying a manufacturing process step when the measured controlled condition is outside the stored thresholds for the lens design.
4. The method of claim 3 , additionally comprising:
sending an alert of the deficient controlled condition measured.
5. The method of claim 1 , wherein:
the one or more sensors include a physical nano-sensor capable of measuring one or more of mass, pressure, force, and displacement of the one or more sensors surroundings.
6. The method of claim 1 , wherein:
the one or more sensors include a chemical nano-sensor capable of measuring one or both chemical composition and molecular concentration.
7. The method of claim 1 , wherein:
the one or more sensors include a biological nano-sensor capable of measuring one or more of DNA interaction, antibody interaction, and enzymatic interaction.
8. The method of claim 1 , wherein:
energizing the communication system comprises placing the communication system in a heavy radial frequency field after the communication system is deposited on the lens forming surface.
9. The method of claim 1 , wherein:
energizing the communication system comprises using a battery located in a media insert.
10. The method of claim 1 , wherein:
the sensor data forms part of a lens pedigree profile.
11. An ophthalmic lens comprising:
a communication system comprising one or more sensors and a processor in logical communication with the one or more sensors, wherein the one more sensors are configured to continuously measure a controlled condition during manufacturing of the ophthalmic lens;
a hydrogel portion supporting the communication system of said ophthalmic lens;
a nano-antenna capable of receiving energy to energize the processor and the one or more sensors and transmitting sensor data relating to the measured controlled condition; and
wherein the processor is capable of storing a unique identifier.
12. The ophthalmic lens of claim 11 , wherein:
the one or more sensors include a physical nano-sensor capable of measuring one or more of mass, pressure, force, and displacement of the one or more sensor(s) surroundings.
13. The ophthalmic lens of claim 11 , wherein:
the one or more sensors include a chemical nano-sensor capable of measuring one or both chemical composition and molecular concentration.
14. The ophthalmic lens of claim 11 , wherein:
the one or more sensors include a biological nano-sensor capable of measuring one or more of DNA interaction, antibody interaction, and enzymatic interaction.
15. The ophthalmic lens of claim 11 , wherein:
the sensor data forms part of a lens pedigree profile.
16. The ophthalmic lens of claim 11 , wherein:
the nano-antenna is a fractal nano-antenna.
17. The ophthalmic lens of claim 16 , wherein:
the fractal nano-antenna includes a gold based composition.
18. The ophthalmic lens of claim 16 , wherein:
the fractal nano-antenna includes a graphene based composition.
19. The ophthalmic lens of claim 11 , wherein:
the nano-antenna is a Yagi-Uda nano-antenna.
20. The ophthalmic lens of claim 11 , wherein:
the hydrogel portion of the ophthalmic lens includes a 20-70 percent silicon hydrogel composition.
21. The ophthalmic lens of claim 11 , wherein:
at least a part of the communication system is located within an optical zone of the ophthalmic lens.