IP Library › Granted Patent US 10,530,476
Granted Patent B2
US 10,530,476 · App. 14/987,774 · Granted Jan 7, 2020

Broadband wireless communication system and method

Inventor: Mikko Kalervo Vaananen (Helsinki, FI)
Assignee: Mikko Kalervo Vaananen
H04B10/1123H04B10/1121
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Quick Facts
Patent No.
US 10,530,476
App. No.
14/987,774
Granted
Jan 7, 2020
Kind
B2
Abstract

Free space optical communication is plagued by interruptions in the connections caused by atmospheric phenomena, such as weather. A wireless beam transmission system includes at least one transmitter ( 110 ) and accommodates several wavelengths, and at least one transmission wavelength is arranged to be chosen based on spectral absorption measurements of the atmosphere in the carrier beam path of communication. The invention concerns also a transceiver for repeating wireless optical communication signals. The long range and high reliability of spectroscopically sensitive light beams at a penetrating frequency allow the affordable provisioning of high bandwidth optical or IR communication connections to devices and buildings that were previously either very expensively connected to the fiber optic backbone networks, expensive low bandwidth radio or microwave networks, or unreachable by traditional free space optics solutions.

Claims (20)

1. A wireless beam transmission system for the communication of information, comprising:

at least two transmitters of different types and having all or some parts of the communication system arranged to accommodate at least two wavelengths, characterised in that,

at least one transmitter is a semiconductor laser and at least one transmitter is a quantum cascade laser or a maser, and the lasers of different types emit simultaneously, wherein the wavelengths of both lasers of different types are arranged to be chosen based on spectral absorption measurements of the atmosphere in the optical carrier beam path of communication between said transmitter and said receiver.

2. The wireless beam communication system according to claim 1 further comprising:

at least one communication signal modulator; and

at least one spectrometer, wherein the at least one spectrometer is arranged to measure an atmospheric spectral absorption of radiation.

3. The wireless beam communication system according to claim 1 , further comprising:

at least one communication signal modulator; and

at least one spectrometer wherein the at least one communication signal modulator is arranged to modulate a signal into at least one carrier beam for the transfer of information in the carrier beam.

4. The wireless beam communication system according to claim 1 further comprising:

at least one beam expander; and

at least one spectrometer wherein

at least one light beam and/or a light beam with information modulated to it is passed through a beam expander, and

at least one expanded light beam and/or a light beam with information modulated to the light beam is arranged to be focused to a wireless broadband access receiver or transceiver.

5. The wireless beam communication system according to claim 1 , wherein an absorption spectrum of radiation and wavelength are used to optimize the attenuation and a divergence of at least one said radiation beam.

6. The wireless beam communication system according to claim 1 , wherein at least one reference beam or at least one carrier beam is arranged to be used to scan the spectrum for spectral absorption within the optical path of communication.

7. A wireless communication system, information comprising:

at least two transmitters of different types; and

at least one optical detector and having all or some parts of the reception system arranged to accommodate at least two wavelength, characterised in that,

the reception wavelengths of the at least one optical detector are applicable to wavelengths transmitted from a semiconductor laser and a quantum cascade laser or a maser simultaneously, wherein reception wavelengths of both lasers of different types are chosen based on spectral absorption measurements of the atmosphere within the optical path of communication between said transmitter and said receiver.

Priority Claims (2)
FI 20020350 · Feb 22, 2002 · national
FI 20020702 · Apr 11, 2002 · national
Continuity (2)
Division 10504418
Related Publication 20160127040A1 · May 5, 2016