IP Library Granted Patent US 10,794,929
Granted Patent B2
US 10,794,929 · App. 16/067,333 · Granted Oct 6, 2020

System for vibration sensing

Inventors: Robert C. Turnbull (Ottawa, CA); Terance D. Brown (White Lake, CA); Damon Kutten (Ottawa, CA)
Assignee: Stanley Convergent Security Solutions, Inc.
G01P15/097G01H17/00G01P1/023G01P15/0802G01V1/184G01H1/00G01H1/14G01P15/00G01V1/164
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Quick Facts
Patent No.
US 10,794,929
App. No.
16/067,333
Granted
Oct 6, 2020
Kind
B2
Abstract

A vibration sensor for construction projects has a housing, a low range accelerometer and a high range accelerometer disposed in the housing, and an analog-to-digital conversion circuit connected to the low and high range accelerometers. The low range accelerometer may have a noise floor below 0.0248 g across frequencies up to 1 kHz, especially between 1 Hz and 315 Hz. The high range accelerometer has a maximum acceleration equal to or greater than 50 g across frequencies up to 1 kHz, especially between 1 Hz and 315 Hz.

Claims (27)

1. A vibration sensor system for construction and industrial projects, comprising:

a water-proof housing;

a low acceleration range accelerometer disposed in the housing for measuring acceleration data below a first threshold;

a high acceleration range accelerometer disposed in the housing for measuring acceleration data above a second threshold; and

an analog-to-digital conversion circuit connected to the low and high acceleration range accelerometers, wherein the analog-to-digital conversion circuit provides acceleration data along x-, y- and z-axes; and

a data processing circuit receiving the acceleration data from the analog-to-digital conversion circuit, wherein the data processing circuit determines the directional orientation of the vibration sensor assembly, and determines a correction factor to be applied to the acceleration data to compensate for the directional orientation of the vibration sensor assembly.

2. The vibration sensor system of claim 1 , wherein the low acceleration range accelerometer has a noise floor below 0.0248 g across frequencies up to 1 kHz.

3. The vibration sensor system of claim 1 , wherein the low acceleration range accelerometer has a noise floor below 0.0248 g across frequencies between 1 Hz and 315 Hz.

4. The vibration sensor system of claim 1 , wherein the high acceleration range accelerometer has a maximum acceleration equal to or greater than 50 g across frequencies up to 1 kHz.

5. The vibration sensor system of claim 1 , wherein the high acceleration range accelerometer has a maximum acceleration equal to or greater than 50 g across frequencies between 1 Hz and 315 Hz.

6. The vibration sensor system of claim 1 further comprising a battery for powering at least one of the low acceleration range accelerometer, the high acceleration range accelerometer, and the analog-to-digital conversion circuit.

7. The vibration sensor system of claim 1 , wherein the data processing system applies the correction factor to the acceleration data for correcting any misalignment between a desired directional orientation of the vibration sensor assembly and the actual directional orientation of the vibration sensor assembly.

8. A vibration sensor system for construction and industrial projects, comprising:

a water-proof housing;

a low acceleration range accelerometer disposed in the housing for measuring acceleration data below a first threshold;

a high acceleration range accelerometer disposed in the housing for measuring acceleration data above a second threshold;

an analog-to-digital conversion circuit connected to the low and high acceleration range accelerometers, wherein the analog-to-digital conversion circuit provides acceleration data along x-, y- and z-axes, and

a data processing circuit receiving the acceleration data from the analog-to-digital conversion circuit, wherein the data processing circuit uses the acceleration data originating from the low acceleration range accelerometer to calculate velocity.

9. The vibration sensor system of claim 8 , wherein the data processing circuit determines whether the acceleration data originating from the high acceleration range accelerometer is larger than a predetermined third threshold.

10. The vibration sensor system of claim 9 , wherein, when the acceleration data originating from the high acceleration range accelerometer is larger than the predetermined third threshold, the data processing circuit uses the acceleration data originating from high acceleration range accelerometer to calculate velocity.

11. The vibration sensor system of claim 8 , wherein the low acceleration range accelerometer has a noise floor below 0.0248 g across frequencies up to 1 kHz.

12. The vibration sensor system of claim 8 , wherein the low acceleration range accelerometer has a noise floor below 0.0248 g across frequencies between 1 Hz and 315 Hz.

13. The vibration sensor system of claim 8 wherein the high acceleration range accelerometer has a maximum acceleration equal to or greater than 50 g across frequencies up to 1 kHz.

14. The vibration sensor system of claim 8 , wherein the high acceleration range accelerometer has a maximum acceleration equal to or greater than 50 g across frequencies between 1 Hz and 315 Hz.

15. The vibration sensor system of claim 8 further comprising a battery for powering at least one of the low acceleration range accelerometer, the high acceleration range accelerometer, and the analog-to-digital conversion circuit.

16. The vibration sensor system of claim 8 , wherein the data processing circuit determines the directional orientation of the vibration sensor assembly, and determines a correction factor to be applied to the acceleration data to compensate for the directional orientation of the vibration sensor assembly.

17. The vibration sensor system of claim 16 , wherein the data processing system applies the correction factor to the acceleration data for correcting any misalignment between a desired directional orientation of the vibration sensor assembly and the actual directional orientation of the vibration sensor assembly.

Assignments (2)
CHANGE OF NAME Recorded Jun 28, 2023
From: STANLEY CONVERGENT SECURITY SOLUTIONS, INC.
To: SECURITAS TECHNOLOGY CORPORATION
Reel/Frame 064149/0854 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2023
From: SECURITAS TECHNOLOGY CORPORATION
To: XMARK CORPORATION
Reel/Frame 064044/0509 →