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Patent Searching and Data


Title:
SYSTEM FOR VIBRATION SENSING
Document Type and Number:
WIPO Patent Application WO/2017/160334
Kind Code:
A1
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 0.0248g across frequencies up to 1kHz, especially between 1Hz and 315Hz.The high range accelerometer has a maximum acceleration equal to or greater than 50g across frequencies up to 1kHz, especially between 1Hz and 315Hz.

Inventors:
TURNBULL ROBERT C (CA)
BROWN TERANCE D (CA)
KUTTEN DAMON (CA)
Application Number:
PCT/US2016/040305
Publication Date:
September 21, 2017
Filing Date:
June 30, 2016
Export Citation:
Click for automatic bibliography generation   Help
Assignee:
STANLEY CONVERGENT SECURITY SOLUTIONS INC (US)
International Classes:
G01V1/28; G01P15/08; G01V1/30; G08B21/10
Foreign References:
US20050125197A12005-06-09
US4601206A1986-07-22
US20110196262A12011-08-11
US20150219777A12015-08-06
US8757003B12014-06-24
Other References:
See also references of EP 3430441A4
Attorney, Agent or Firm:
AYALA, Adan (US)
Download PDF:
Claims:
CLAIMS

What is Claimed is:

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

a water-proof housing;

a low range accelerometer disposed in the housing;

a high range accelerometer disposed in the housing; and an analog-to-digital conversion circuit connected to the low and high range accelerometers.

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

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

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

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

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

Claim 7: The vibration sensor of Claim 1 wherein the analog-to-digital conversion circuit provides acceleration data along x-, y- and z-axes.

Description:
SYSTEM FOR VIBRATION SENSING

CROSS-REFERENCE TO RELATED APPLICATION

[0001] The present application derives priority from US Patent

Application No. 62/310,260, filed on March 18, 2016, titled "SYSTEM FOR VIBRATION SENSING," now pending and is fully incorporated herein by reference.

FIELD OF THE INVENTION

[0002] The present invention relates to a vibration sensor, and in

particular, to a vibration sensor for construction projects and/or industrial activities.

BACKGROUND

[0003] Local, state and/or federal regulations may limit the generation of vibrations in construction projects and/or industrial activities. In particular, the regulations may require the monitoring for continuous and/or transient vibrations in such locales. Accordingly it is desirable to use vibration sensors for such monitoring.

[0004] Typically a geophone is used as the vibration sensor. The

geophone is buried in the ground. However, the geophone must be precisely disposed in the ground. If the geophone is inclined beyond a certain tolerance, the geophone will not sense vibrations properly and would have to be dug out from the ground, re-disposed and re-buried. BRIEF DESCRIPTION OF THE DRAWINGS

[0005] Fig. 1 shows a vibration sensor.

[0006] Fig. 2 is a block diagram of the main components of the

vibration sensor of Fig. 1.

[0007] Fig. 3 is a schematic diagram of a low range accelerometer circuit.

[0008] Fig. 4 is a schematic diagram of a high range accelerometer circuit.

[0009] Fig. 5 is a schematic diagram of an analog-to-digital conversion circuit.

[0010] Fig. 6 is a flowchart for a data selection process.

DESCRIPTION

[0011] Referring to FIGS. 1-2, a vibration sensor 100 may include a

housing 101 , a sensor circuit 102, a terminal 103 on housing 101 for connecting the sensor circuit 102 to a computer or server 105 via a cable 104. Preferably housing 101 is water-proof.

[0012] Sensor circuit 102 may include a low range accelerometer 102AL, a high range accelerometer 102AH, an analog-to-digital conversion circuit 102ADC, and an interface circuit 1021. Persons skilled in the art will recognize that low range accelerometer 102AL, high range accelerometer 102AH, analog-to-digital conversion circuit 102ADC and/or interface circuit 1021 may be disposed on separate housings within housing 101 or outside of housing 101. [0013] Low range accelerometer 102AL preferably has a noise floor below 0.0248g (or 0.13mm/s) across the frequencies up to 1 kHz, and preferably between 1 Hz and 315Hz. A schematic diagram for a circuit used with low range accelerometer 102AL is shown in FIG, 3.

[0014] High range accelerometer 102AH preferably has a noise floor

below the maximum detectable acceleration of low range accelerometer 102AL In addition, high range accelerometer 102AH may have a maximum acceleration equal to or greater than 50g (or 254mm/s) across the frequencies up to 1 kHz, and preferably between 1 Hz and 315Hz. A schematic diagram for a circuit used with high range accelerometer 102AH is shown in FIG. 4.

[0015] The outputs of low and high range accelerometers 102AL, 102AH are inputted into an analog-to-digital conversion circuit 102ADC, A schematic diagram for a circuit used with analog-to-digital conversion circuit 102ADC is shown in FIG. 5. Persons skilled in the art will recognize that using both low and high range accelerometers 102AL, 102AH will provide a better dynamic range than using a single accelerometer due to the wide range of frequencies required to be detected (i.e., up to 1 kHz, and preferably between 1 Hz and 315Hz) as well as the output resolution necessary to properly report across the wide range of frequencies.

[0016] The components shown in FIGS. 3-5 have the following values:

[0017] A battery 102B may be provided for powering low range

accelerometer 102AL, high range accelerometer 102AH, analog-to-digital conversion circuit 102ADC and/or interface circuit 1021.

[0018] Persons skilled in the art will recognize that using accelerometers instead of traditional geophones can result in a smaller sensor 100, being at least 40% (and preferably 60%) smaller than a sensor using traditional geophones.

[0019] Another advantage of using accelerometers over traditional

geophones is that accelerometers are less sensitive to misalignment with the x-, y- and z-axes. A person may be required to re-install the geophone in order to obtain better positional alignment due to the angular range and positional limitations inherent to geophones. On the other hand, an accelerometer-based sensor would not have to be dug out from the ground, re-disposed, re-buried, etc.

[0020] That is because any misalignment can be calibrated via software by applying a correction factor for each axis. In other words, if the initial output of the accelerometer is (3, 5, -2) respectively for the x-, y- and z- axes, the software can apply a correction factor (-3, -5, 2) to any future measurements, for example. Persons skilled in the art will recognize that geophones cannot always be corrected in such manner due to the angular range and positional limitations inherent to geophones.

[0021] In order to be analyzed, the output from analog-to-digital

conversion circuit 102ADC is sent to the interface circuit 1021. Before such analysis is conducted, interface circuit 1021 must select which accelerometer data to analyze. Persons skilled in the art shall recognize that interface circuit 1021 has a microprocessor and a memory with a program for selecting the accelerometer data. Interface circuit 1021 will then provide the accelerometer data for computer or server 105 to utilize in further calculations, etc. Persons skilled in the art will recognize that it is possible to provide the raw accelerometer data to computer 105 without requiring interface circuit 1021. In such case, a communication circuit (not shown) is preferably provided in sensor 102 in order to relay the data to computer 105.

[0022] FIG. 6 is a flowchart for such process. The process begins at the start (ST201), where the data stream is provided to interface circuit 1021 (or computer 105). [0023] Interface circuit 1021 (or computer 105) examines the measured acceleration data from high range accelerometer 102AH. In particular, interface circuit 1021 (or computer 105) checks whether the measured acceleration data from high range accelerometer 102AH is greater than a first threshold, e.g., 0.75g (ST202). If so, the data from high range accelerometer 102AH is used (ST203A) to calculate velocity information (ST206) and the data from low range accelerometer 102AL is discarded (ST203B).

[0024] On the other hand, if the measured acceleration data from high range accelerometer 102AH is equal to or lower than the first threshold, then interface circuit 1021 (or computer 105) examines the measured acceleration data from low range accelerometer 102AL. In particular, interface circuit 1021 (or computer 105) checks whether the measured acceleration data from low range accelerometer 102AL is smaller than a second threshold, e.g., 0.25g (ST204). If so, the data from low range accelerometer 102AL is used (ST205A) to calculate velocity information (ST206) and the data from high range accelerometer 102AH is discarded (ST205B).

[0025] On the other hand, if the measured acceleration data from low range accelerometer 102AL is equal to or higher than the second threshold, then interface circuit 1021 (or computer 105) checks which accelerometer data was selected previously to use in the velocity calculation, and uses the current data from the previously selected accelerometer (ST207). For example, if the data from low range accelerometer 102AL was selected for use in the previous cycle, then interface circuit 1021 (or computer 105) would select the current data from low range accelerometer 102AL for use in the velocity calculation.

Persons skilled in the art will recognize that such algorithm provides hysteresis to the process and prevents the system from "bouncing" between the low and high range accelerometers 102AL, 102AH.

[0026] Persons skilled in the art will recognize that it is preferable to

provide some mechanism to supplement step ST207 if the process has not gone through a previous cycle and thus has no data as to which accelerometer data was selected previously to use in the velocity calculation. Accordingly, interface circuit 1021 (or computer 105) may be programmed to select the data from one of the accelerometers 102AL, 102AH. Persons skilled in the art may recognize that such programming may select one accelerometer, e.g., low range accelerometer 102AL, every time when there is no previous selected accelerometer.

[0027] Alternatively interface circuit 1021 (or computer 105) may be

programmed to select one accelerometer, e.g., low range accelerometer 102AL, the first time when there is no previous selected accelerometer, and then select the other accelerometer, e.g., high range accelerometer 102AHL, the next time when there is no previous selected accelerometer, thus alternating between accelerometers. One other possible

arrangement would be where interface circuit 1021 (or computer 105) randomly selects one accelerometer, e.g., low range accelerometer 102AL, the first time when there is no previous selected accelerometer.

[0028] The description of the invention is merely exemplary in nature and, thus, variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the scope of the invention.