IP Library Granted Patent US 8,462,323
Granted Patent B2
US 8,462,323 · App. 12/057,254 · Granted Jun 11, 2013

Integrated multi-sensor surveilance and tracking system

Inventors: Vladimir B. Markov (Irvine, CA); Anatoliy I. Khizhnyak (Irvine, CA)
Assignee: MetroLaser, Inc.
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Quick Facts
Patent No.
US 8,462,323
App. No.
12/057,254
Granted
Jun 11, 2013
Kind
B2
Abstract

A sensor system for remote object detection, tracking, characterization, and discrimination can have a plurality of sensors. A shared optical train that can facilitate blending of information from the sensors, so as to provide a single view for the plurality of sensors. Small and/or dim objects can be more readily detected. High-resolution 3 dimensional space object imagery and on-demand target information gathering can be provided with reduced data latency. The undesirable effects of atmospheric turbulence along the aiming direction can be mitigated even when there is a high relative velocity between the surveillance platform and remote target.

Claims (43)

1. A sensor system for characterizing a satellite, the sensor system comprising:

a ground based laser source configured to illuminate the satellite while the satellite is in orbit around the Earth;

a coherent detector configured to detect reflected laser light from the satellite as illuminated by the laser source;

a plurality of different sensors including an infrared sensor configured to sense infrared light emitted by the satellite;

a shared optical train including a telescope, the shared optical train being configured to facilitate fusion of data from the sensors and the coherent detector;

an amplifier for amplifying coherent radiation received through the shared optical train from the satellite to provide amplified coherent radiation; and

an optical heterodyne position sensitive detector configured to receive amplified coherent radiation from the amplifier.

2. The sensor system as recited in claim 1 , further comprising:

a local oscillator; and

wherein the optical heterodyne position sensitive detector is configured to mix radiation from the local oscillator with the amplified coherent radiation.

3. The sensor system as recited in claim 1 , further comprising:

a local oscillator;

wherein the optical heterodyne position sensitive detector is configured to mix the amplified coherent radiation with radiation from the local oscillator; and

further comprising a processor configured to receive information from the optical heterodyne position sensitive detector and to determine spatial, angular, motional and vibration characteristics of the satellite.

4. The sensor system as recited in claim 1 , further comprising:

at least one imaging sensor;

at least one spectral sensor;

a processor; and

wherein data from the imaging sensor(s) and the spectral sensor(s) is processed by the processor and used along with data from the optical heterodyne position sensitive detector to identify the satellite.

5. The sensor system as recited in claim 1 , further comprising:

a visual sensor;

an infrared sensor;

a multispectral sensor;

a polarimetric sensor;

a photogrammetry sensor;

a processor;

a computer;

a database; and

wherein data from the visual sensor, the infrared sensor, the multispectral sensor, the polarimetric sensor, and the photogrammetry sensor is blended and deconvolved by the processor and along with data from the optical heterodyne position sensitive detector is compared to information in the database by the computer to identify the satellite.

6. A sensor system for characterizing a satellite, the sensor system comprising:

a ground based laser source configured to illuminate the satellite while the satellite is in orbit around the Earth;

a coherent detector configured to detect reflected laser light from the satellite as illuminated by the laser source;

a plurality of different sensors including an infrared sensor configured to sense infrared light emitted by the satellite;

a shared optical train including a telescope, the shared optical train being configured to facilitate fusion of data from the sensors and the coherent detector; and

a processing unit configured to determine a nine dimensional state vector of the satellite using information from the sensors.

7. The sensor system as recited in claim 6 , wherein the processing unit is configured to determine a nine dimensional state vector of the satellite using information from the sensors and a spectrum of mechanical vibrations of the satellite.

8. The sensor system as recited in claim 6 wherein the spectrum of the mechanical vibrations is determined by measuring a Doppler shift of a return signal from the satellite.

9. A sensor system for characterizing a satellite, the sensor system comprising:

a ground based laser source configured to illuminate the satellite while the satellite is in orbit around the Earth;

a coherent detector configured to detect reflected laser light from the satellite as illuminated by the laser source;

a plurality of different sensors including an infrared sensor configured to sense infrared light emitted by the satellite;

a shared optical train including optical train being configured to facilitate fusion of data from the sensors and the coherent detector; and

a processing unit and a radar configured to provide an initial state vector and cuing information and wherein the laser source is configured to facilitate active laser tracking such that dark pass tracking of the satellite is provided when the satellite passes through a shadow of the Earth.

Assignments (2)
CONFIRMATORY LICENSE Recorded Feb 14, 2011
From: METROLASER INC, PRIME CONTRACTOR
To: AIR FORCE, UNITED STATES
Reel/Frame 025783/0281 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 13, 2008
From: MARKOV, VLADIMIR B.; KHIZHNYAK, ANATOLIY I.
To: METROLASER, INC.
Reel/Frame 021095/0130 →
Continuity (2)
Provisional Application 60908326 · Mar 27, 2007
Related Publication 20090147238A1 · Jun 11, 2009