IP Library Granted Patent US 8,232,909
Granted Patent B2
US 8,232,909 · App. 12/570,914 · Granted Jul 31, 2012

Doppler radar motion detector for an outdoor light fixture

Assignee: Cooper Technologies Company
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Quick Facts
Patent No.
US 8,232,909
App. No.
12/570,914
Granted
Jul 31, 2012
Kind
B2
Abstract

A motion detector system includes the ability to detect motion through the use of a Doppler radar sensor or a combination of PIR sensors and a Doppler radar sensor. The system includes an outdoor light fixture having one or more lamps and a housing coupled to the outdoor light fixture. The housing includes a Doppler radar sensor and a microprocessor for analyzing the signals received by the Doppler radar sensor. Alternatively, the housing includes a combination of PIR sensors and a Doppler radar sensor and a microprocessor for analyzing the signals received from these sensors. The lamps in the light fixture are activated when either the PIR sensor or the Doppler radar sensor generates a signal indicating motion within the monitored area. Alternatively, the lamps can be activated when either the PIR sensor or the Doppler radar sensor senses predetermined number of motion activities over a limited time period.

Claims (69)

1. A motion detector system for monitoring motion within a monitored area, comprising:

an outdoor light fixture;

a Doppler radar sensor electrically coupled to the light fixture, wherein the sensor emits a first signal at a first frequency to a monitored area and receives a second signal at a second frequency from the monitored area, wherein the first and second frequencies are different; and

a microprocessor electrically coupled to the Doppler radar sensor, the microprocessor receiving and analyzing the second signal to determine whether a Doppler trigger event occurs.

2. The motion detector system of claim 1 , further comprising a housing coupled to the outdoor light fixture, wherein the sensor and the microprocessor are disposed within the housing.

3. The motion detector system of claim 2 , wherein the housing further comprises a clear lens positioned on the surface of the housing and a photocell disposed adjacent to the clear lens, wherein the photocell determines ambient light levels.

4. The motion detector system of claim 1 , further comprising one or more light sources, wherein the light sources are selected from a group consisting of incandescent lamp, HID lamp, light emitting diode, halogen lamp, and fluorescent lamp.

5. The motion detector system of claim 1 , further comprising at least one PIR sensor electrically coupled to the microprocessor.

6. The motion detector system of claim 5 , wherein the microprocessor receives and analyzes data obtained from the PIR sensor to determine whether a PIR trigger event occurs.

7. The motion detector system of claim 6 , wherein the microprocessor activates a light source at the fixture based on a determination that the Doppler trigger event occurs and a PIR trigger event occurs.

8. The motion detector system of claim 6 , wherein based on a positive determination that a PIR trigger event occurs, the microprocessor outputs a control signal to activate a light source at the fixture, and wherein the control signal is outputted pursuant to a Doppler trigger event or a PIR trigger event.

9. The motion detector system of claim 5 , wherein the microprocessor includes motion detector variables comprising: a radar sensitivity variable, a radar count threshold variable, a PIR sensitivity variable, a PIR count threshold variable, a time window variable, an ambient light control variable, and a lamp “on” time variable.

10. The motion detector system of claim 9 , wherein at least one of the motion detector variables is adjustable using a wireless device.

11. An outdoor motion detector system for monitoring motion within a monitored area, comprising:

an outdoor light fixture; and

a Doppler radar sensor electrically coupled to the outdoor lighting fixture, wherein the Doppler sensor emits a first signal to a monitored area and receives a second signal from the monitored area;

at least one passive infrared (PIR) sensor electrically coupled to the outdoor light fixture, wherein the PIR sensor receives infrared signals from the monitored area; and

a microprocessor electrically coupled to the Doppler radar sensor and the PIR sensor, the microprocessor receiving and analyzing the second signal to determine if a Doppler trigger event occurs and receiving and analyzing the infrared signals to determine if a PIR trigger event occurs.

12. The system of claim 11 , wherein the microprocessor outputs a control signal to activate the lamps based upon a positive determination that one of the Doppler trigger event or the PIR trigger event occurs.

13. The system of claim 11 , further comprising a housing coupled to the outdoor light fixture, wherein the Doppler radar sensor, the PIR sensor and the microprocessor are disposed within the housing.

14. The motion detector system of claim 13 , wherein the housing is rotatably coupled to the outdoor light fixture.

15. The motion detector system of claim 13 , wherein the housing further comprises a sensitivity setting control knob for adjusting the sensitivity of the motion detector system, the sensitivity being adjusted by modifying one or more parameters of a radar count threshold variable, a PIR count threshold variable, and a time window variable, the radar count threshold variable, the PIR count threshold variable, and the time window variable being stored within the microprocessor.

16. The motion detector system of claim 15 , wherein the sensitivity of the motion detector system is adjustable using a wireless device.

17. The system of claim 11 , further comprising a housing, wherein the outdoor light fixture, Doppler radar sensor, the PIR sensor and the microprocessor are each at least partially disposed within the housing.

18. The motion detector system of claim 11 , wherein the Doppler radar sensor is positioned at a ten degree downward angle from a horizontal plane.

19. A method for detecting motion within a monitored area with an outdoor light fixture having a Doppler radar sensor and a microprocessor, the method comprising the steps of:

emitting a first signal at a first frequency from the Doppler radar sensor into the monitored area;

receiving a second signal at a second frequency at the Doppler radar sensor from the monitored area, wherein the first and second frequencies are different;

comparing the first signal to the second signal; and

determining if a Doppler trigger event occurs.

20. The method of claim 19 further comprising:

outputting an activation signal from the microprocessor to activate a light source at the fixture based on a positive determination that the Doppler trigger event occurs; and

activating the light source in response to the activation signal.

21. The method of claim 19 , wherein the outdoor light fixture further comprises at least one passive infrared (PIR) sensor electrically coupled to the microprocessor, the method further comprising:

receiving at least one infrared signal from the monitored area;

analyzing the infrared signal to determine whether a PIR trigger event occurs;

outputting an activation signal to activate a light source at the fixture based on a positive determination that either the PIR trigger event or the Doppler trigger event occurs; and

activating the light source in response to the activation signal.

22. The method of claim 21 , wherein determining if the PIR trigger event occurs comprises the steps of:

receiving a PIR count variable;

receiving a PIR time window variable;

initiating an analysis period, wherein the analysis period is derived from the PIR time window variable;

determining if a PIR motion event has occurred based on an analysis of the infrared signal by the microprocessor;

based on a positive determination that the PIR motion event has occurred, incrementing a PIR motion count by one;

determining if the PIR motion count equals the PIR counter variable; and

determining that the PIR trigger event occurs based on a positive determination that the PIR motion count equals the PIR counter variable.

23. The method of claim 19 , wherein determining if a Doppler trigger event occurs comprises the steps of:

receiving a count variable;

receiving a time window variable;

initiating an analysis period, wherein the analysis period is derived from the time window variable;

determining if a motion event has occurred based on a comparison of the first signal to the second signal;

based on a positive determination that the motion event has occurred, incrementing a motion count by one;

determining if the motion count equals the counter variable; and

determining that the Doppler trigger event occurs based on a positive determination that the motion count equals the counter variable.

24. A motion detector system for monitoring motion within a monitored area, comprising:

an outdoor light fixture;

a housing coupled to the outdoor light fixture;

a Doppler radar sensor disposed within the housing and electrically coupled to the light fixture, wherein the Doppler radar sensor emits a first signal to a monitored area and receives a second signal from the monitored area; and

a microprocessor disposed within the housing and electrically coupled to the Doppler radar sensor, the microprocessor receiving and analyzing the second signal to determine whether a Doppler trigger event occurs.

25. The motion detector system of claim 24 , wherein the outdoor light fixture comprises at least one light emitting diode.

26. The motion detector system of claim 24 , further comprising at least one passive infrared (PIR) sensor electrically coupled to the microprocessor.

27. The motion detector system of claim 26 , wherein the microprocessor receives and analyzes data obtained from the PIR sensor to determine whether a PIR trigger event occurs.

28. A motion detector system for monitoring motion within a monitored area, comprising:

an outdoor light fixture;

a Doppler radar sensor electrically coupled to the light fixture, wherein the sensor emits a first signal to a monitored area and receives a second signal from the monitored area;

a microprocessor electrically coupled to the Doppler radar sensor, the microprocessor receiving and analyzing the second signal to determine whether a Doppler trigger event occurs; and

at least one passive infrared (PIR) sensor electrically coupled to the microprocessor.

29. The motion detector system of claim 28 , wherein the microprocessor receives and analyzes data obtained from the PIR sensor to determine whether a PIR trigger event occurs.

30. The motion detector system of claim 28 , wherein the outdoor light fixture comprises at least one light emitting diode.

Assignments (6)
CORRECTIVE ASSIGNMENT TO CORRECT THE APPLICATION NUMBERS 12183490, 12183499, 12494944, 12961315, 13528561, 13600790, 13826197, 14605880, 15186648, RECORDED IN ERROR PREVIOUSLY RECORDED ON REEL 052681 FRAME 0475. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Nov 12, 2020
From: EATON INTELLIGENT POWER LIMITED
To: SIGNIFY HOLDING B.V.
Reel/Frame 055965/0721 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 18, 2020
From: EATON INTELLIGENT POWER LIMITED
To: SIGNIFY HOLDING B.V.
Reel/Frame 052681/0475 →
CORRECTIVE ASSIGNMENT TO CORRECT THE COVER SHEET TO REMOVE APPLICATION NO. 15567271 PREVIOUSLY RECORDED ON REEL 048207 FRAME 0819. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 11, 2019
From: COOPER TECHNOLOGIES COMPANY
To: EATON INTELLIGENT POWER LIMITED
Reel/Frame 048655/0114 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2019
From: COOPER TECHNOLOGIES COMPANY
To: EATON INTELLIGENT POWER LIMITED
Reel/Frame 048207/0819 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2013
From: KROEGER, SCOTT
To: COOPER TECHNOLOGIES COMPANY
Reel/Frame 030846/0660 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 15, 2010
From: DRAKE, GEORGE MICHAEL; CRIST, RYAN; FLEIG, TYLER; DALLAS, MILTON; SIEGEL, NORM; KETELHOHN, CHARLIE
To: COOPER TECHNOLOGIES COMPANY
Reel/Frame 023798/0965 →
Continuity (2)
Provisional Application 61101396 · Sep 30, 2008
Related Publication 20100109934A1 · May 6, 2010