IP Library › Granted Patent US 11,754,743
Granted Patent B2
US 11,754,743 · App. 17/210,145 · Granted Sep 12, 2023

Laser detection system

Inventor: John Petrachek (Etobicoke, CA)
Assignee: ATLAS-APEX ROOFING INC
G01V8/12G01W1/14G08C17/02
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Quick Facts
Patent No.
US 11,754,743
App. No.
17/210,145
Granted
Sep 12, 2023
Kind
B2
Abstract

A monitoring system comprising a transmitter and a receiver, the transmitter including a laser transmitter assembly selectively securable to a transmitter post between a transmitter proximate position adjacent a base end of the post and a transmitter distal position adjacent a distal end of the post, the laser transmitter assembly including a laser source arranged to project a laser beam from the transmitter, the receiver to be located a transmission distance from the transmitter and including a laser receiver assembly selectively securable to a receiver post between a receiver proximate position adjacent a base end of the post and a receiver distal position adjacent a distal end of the post to be aligned with the laser transmitter assembly to receive the laser beam, the laser receiver assembly including a detector to detect the laser beam and generate a signal in response to a laser beam interruption event.

Claims (47)

1. A method of monitoring snowfall accumulation on a roof, comprising:

a) mounting a transmitter of a monitoring system on the roof, the transmitter including:

i) a transmitter post having a base end for attaching to the roof and a distal end spaced from the base end by a transmitter post length,

ii) a laser transmitter assembly selectively securable to the transmitter post between a transmitter proximate position adjacent the base end and a transmitter distal position adjacent the distal end, the laser transmitter assembly including a laser source to generate a laser beam and a plurality of laser transmitters positioned to receive the laser beam from the laser source and split the laser beam into a plurality of spatially discrete laser subbeams and project the plurality of spatially discrete laser subbeams from the transmitter; and

b) mounting a receiver of the monitoring system on the roof, the receiver separated from the transmitter across the roof by a transmission distance, the receiver including:

i) a receiver post having a base end for attaching to the roof and a distal end spaced from the base end by a receiver post length,

ii) a laser receiver assembly selectively securable to the receiver post between a receiver proximate position adjacent the base end and a receiver distal position adjacent the distal end to be aligned with the laser transmitter assembly to receive the plurality of laser subbeams, the laser receiver assembly including a detector to detect the plurality of laser subbeams and generate a signal in response to a laser beam interruption event, wherein the laser beam interruption event is a coincident interruption of each of the plurality of laser subbeams, and

c) transmitting the plurality of laser subbeams between the laser transmitter assembly and the laser receiver assembly; and

d) detecting the laser beam interruption event.

2. The method of claim 1 , further comprising:

a) securing the laser transmitter assembly to the transmitter post at a first location;

b) securing the laser receiver assembly to the receiver post at a second location, and

c) wherein the first and second locations are selected such that a snow accumulation on the roof of sufficient height and density to require service will interrupt the plurality of laser subbeams.

3. The method of claim 1 , wherein the laser beam interruption event is an interruption lasting at least five seconds.

4. The method of claim 1 , wherein the plurality of laser subbeams are generally parallel and spaced apart by a transmission spacing of at least 1 mm.

5. The method of claim 4 , wherein the plurality of laser subbeams includes a first beam and a second beam spaced further from the roof than the first beam.

6. The method of claim 4 , wherein the transmission spacing is at least 10 mm.

7. The method of claim 4 , wherein the laser beam interruption event is an interruption lasting at least five seconds.

8. The method of claim 1 , wherein the transmitter includes a first solar panel coupled to the laser transmitter assembly to power the laser source and the receiver includes a second solar panel coupled to the detector to power the detector.

9. The method of claim 1 , further comprising receiving the signal at a communication system coupled to the detector; and transmitting the signal to a user communication device using the communication system.

10. The method of claim 9 , wherein the communication system includes a communications box and a communications box cover for providing a weather tight compartment for housing a set of electronics of the communication system.

11. The method of claim 10 , wherein the set of electronics includes a transceiver.

12. A method of monitoring snowfall accumulation on a roof, comprising:

a) mounting a transmitter of a monitoring system on the roof, the transmitter including:

i) a transmitter post having a base end for attaching to the roof and a distal end spaced from the base end by a transmitter post length,

ii) a laser transmitter assembly selectively securable to the transmitter post between a transmitter proximate position adjacent the base end and a transmitter distal position adjacent the distal end, the laser transmitter assembly including a laser source arranged to project a laser beam from the transmitter; and

b) mounting a receiver of the monitoring system on the roof, the receiver separated from the transmitter across the roof by a transmission distance, the receiver including:

i) a receiver post having a base end for attaching to the roof and a distal end spaced from the base end by a receiver post length,

ii) a laser receiver assembly selectively securable to the receiver post between a receiver proximate position adjacent the base end and a receiver distal position adjacent the distal end to be aligned with the laser transmitter assembly to receive the laser beam, the laser receiver assembly including a detector to detect the laser beam and generate a signal in response to a laser beam interruption event, and

c) receiving, at a communications system, weather data indicating an expected snowfall event, the communications system coupled to the transmitter; and

d) turning on in response to the communications system receiving the weather data indicating the expected snowfall event.

13. The method of claim 12 , further comprising receiving at the communications system weather data indicating that no snowfall is expected; and turning off the transmitter in response to the communications system receiving the weather data indicating that no snowfall is expected.

14. The method of claim 9 , wherein the communication system includes a system gateway and a system server, the system gateway configured to receive the signal and transmit the signal to the system server.

15. The method of claim 14 , wherein the system server is configured to receive the signal and send a snow accumulation warning to the user communication device.

16. The method of claim 15 , wherein the snow accumulation warning includes a satellite map showing a location for which the warning is provided.

17. A method of monitoring snowfall accumulation on a roof, comprising:

a) mounting a transmitter of a monitoring system on the roof, the transmitter including:

i) a transmitter post having a base end for attaching to the roof and a distal end spaced from the base end by a transmitter post length,

ii) a laser transmitter assembly selectively securable to the transmitter post between a transmitter proximate position adjacent the base end and a transmitter distal position adjacent the distal end, the laser transmitter assembly including a laser source arranged to project a laser beam from the transmitter; and

b) mounting a receiver of the monitoring system on the roof, the receiver separated from the transmitter across the roof by a transmission distance, the receiver including:

i) a receiver post having a base end for attaching to the roof and a distal end spaced from the base end by a receiver post length,

ii) a laser receiver assembly selectively securable to the receiver post between a receiver proximate position adjacent the base end and a receiver distal position adjacent the distal end to be aligned with the laser transmitter assembly to receive the laser beam, the laser receiver assembly including a detector to detect the laser beam and generate a signal in response to a laser beam interruption event, and

c) detecting a snowfall event by way of a sensor; and

d) in response to detecting the snowfall event by way of the sensor, turning on the laser source to monitor snow accumulation.

18. The method of claim 1 , further comprising heating a transmission window of the transmitter to reduce ice build up.

19. The method of claim 18 , further comprising receiving a melting criteria prior to heating the transmission window, the melting criteria including a signal indicating that a strength of the plurality of laser subbeams has dropped, a signal indicating that a detected ambient temperature is below a threshold temperature, or a signal indicative of a precipitation event coincident with freezing temperatures.

20. The method of claim 1 , further comprising detecting a motion via a motion detector; and, in response to detecting a motion coincident with the laser beam interruption event, disregarding the laser beam interruption event.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 17, 2021
From: PETRACHEK, JOHN
To: ATLAS-APEX ROOFING INC
Reel/Frame 057199/0849 →
Continuity (2)
Provisional Application 62993271 · Mar 23, 2020
Related Publication 20210302616A1 · Sep 30, 2021