Patent · US10718442B1 · B1 · US
Retrofit automatic seismic wave detector and valve shutoff device
- (11) Publication number
- US10718442B1
- (21) Application number
- 16/420,156
- (22) Filing date
- 2019-05-22
- (30) Priority date
- 2019-01-04
- (43) Publication date
- 2020-07-21
- (45) Date of grant
- 2020-07-21
- (51) IPC
- F16K 17/36; G01V 1/00
- (52) CPC
- (72) Inventors
- Mohammad Taghi Fatehi; Parham Reza Fatehi; Keyvan Fatehi
- (54) Title
- Retrofit automatic seismic wave detector and valve shutoff device
- (57) Abstract
A retrofit valve shutoff device is provided that comprises a coupling key for coupling with an actuator of a shutoff valve on a fluid supply line, an inertial measurement unit for generating one or more signals in response to arrival of seismic waves, a motor for rotating the coupling key and the actuator of the shutoff valve, and a processing unit for receiving the one or more signals from the inertial measurement unit, analyzing the received signals to determine whether to close the shutoff valve, and sending a signal to the motor to rotate the coupling key and the actuator of the shutoff valve to close the shutoff valve based on the analysis of the received signals.
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Claims (25)
- A valve shutoff device, comprising: a coupling key for coupling with an actuator of a shutoff valve on a fluid supply line; an accelerometer for making acceleration measurements in three directions; a motor for rotating the coupling key and the actuator of the shutoff valve; a radio transceiver; and a processing unit for: receiving the acceleration measurements from the accelerometer; determining an arrival of a first set of seismic waves comprising primary seismic waves (P-waves) when a ratio of a power magnitude of the acceleration measurements in a vertical direction with respect to a vector sum of the power magnitude of the acceleration measurements in the three directions exceeds a first threshold; after determining the arrival of the P-waves, determining an arrival of a second set of seismic waves when the vector sum of the power magnitude of the acceleration measurements in the three directions exceeds a second threshold; after determining the arrival of the second set of seismic waves, sending one or more signals to the motor to rotate the coupling key and the actuator of the shutoff valve to close the shutoff valve; and sending one or more signals through the transceiver to one or more electronic devices external to the valve shutoff device indicating whether the shutoff valve is open or closed, wherein the processing unit is one of a microprocessor, a controller, a microcontroller, a single processor, and a multi-core processor.
- The valve shutoff device of claim 1, wherein the processing unit is for: receiving an internal health status from one or more of the accelerometer, the processing unit, the motor, and the radio transceiver; and sending, through the radio transceiver, the internal health status of said one or more of the processing unit, the motor, and the radio transceiver to the one or more electronic devices.
- The valve shutoff device of claim 1 further comprising: a battery; and one or more solar cells for recharging the battery; wherein the processing unit is for: receiving an internal health status from the solar cells; receiving a voltage level from the battery; and sending, through the radio transceiver, the internal health status of the solar cells and the voltage level of the battery to the one or more electronic devices.
- The valve shutoff device of claim 1, further comprising a radio frequency (RF) antenna, wherein the processing unit, the radio transceiver, and the RF antenna are on a system on a chip integrated circuit.
- The valve shutoff device of claim 1, wherein the processing unit is further for: comparing the power magnitude of the acceleration measurements received from the accelerometer with a predetermined magnitude; determining that an earthquake exceeding the predetermined magnitude has occurred when the power magnitude of the acceleration measurements exceeds the predetermined magnitude; and sending, through the radio transceiver, at least one of the acceleration measurements to the one or more electronic devices as parameters related to an earthquake.
- The valve shutoff device of claim 1, wherein the processing unit is further for: receiving a signal from an electronic device external to the valve shutoff device, through the radio transceiver, to close the shutoff valve; determining an authenticity of the received signal based on one or more criteria; and sending one or more signals to the motor to rotate the coupling key to close the shutoff valve when the received signal is authenticated.
- The valve shutoff device of claim 1, wherein the processing unit is further for: receiving a signal from an electronic device external to the valve shutoff device, through the radio transceiver, to open the shutoff valve; determining an authenticity of the received signal based on one or more criteria; and sending one or more signals to the motor to rotate the coupling key to open the shutoff valve when the received signal is authenticated.
- The valve shutoff device of claim 1, wherein the processing unit is for analyzing the measurements received from the accelerometer to determine at least one of an amplitude and an arrival time of one or more types of seismic waves.
- The valve shutoff device of claim 8, wherein the types of seismic waves comprise one or more of the P-waves, secondary waves (S-waves), and surface waves.
- The valve shutoff device of claim 1 further comprising a rotor shaft connected to the coupling key, wherein the motor rotates the coupling key by turning the rotor shaft.
- The valve shutoff device of claim 10 further comprising: a sensor for: measuring one or more parameters comprising a force excreted by the motor on the rotor shaft; and sending the measured parameters to the processing unit; wherein the processing unit is further for: receiving, after sending the signal to the motor to rotate the coupling key to close the shutoff valve, the measured parameters from the sensor; comparing the force excreted by the motor on the rotor shaft with a limit to determine whether the actuator of the shutoff valve has stopped rotating; and when the actuator of the shutoff valve is determined to have stopped rotating, sending a signal to the motor to stop rotating the rotor shaft.
- The valve shutoff device of claim 11, wherein the sensor is one of (i) a torsion load cell for measuring a strain that is proportional to one of a torque and a force applied by the motor to the rotor shaft and (ii) a transducer for creating an electrical signal with a magnitude proportional to one of the torque and the force applied by the motor to the rotating shaft.
- The valve shutoff device of claim 10 further comprising: a memory; the processing unit for: receiving, prior to sending the one or more signals to the motor to rotate the coupling key to close the shutoff valve, a first value corresponding to an angular position of the rotor shaft when the valve is at an open position and a second value corresponding to an angular position of the rotor shaft when the valve is at a shutoff position; storing the first and second values in the memory; after sending the one or more signals to the motor to rotate the coupling key to close the shutoff valve, receiving the angular value of the rotor shaft at one or more time intervals; comparing the angular value of the rotor shaft with the first and second values; and sending a signal to the motor to stop rotating the rotor shaft based on the comparison.
- The valve shutoff device of claim 13 further comprising: a rotary position encoder for: measuring an angular position of the rotor shaft; converting the angular position into a digital signal; and sending the digital signal to the processing unit; wherein the processing unit is for using the digital signal as the angular value of the rotor for comparing to the first and second values.
- The valve shutoff device of claim 1, wherein the processing unit is for: receiving, after sending the one or more signals to the motor to rotate the coupling key, a level of an electric current used by the motor; and sending a signal to the motor to stop rotating the coupling key when the level of the electric current used by the motor exceeds a threshold.
- The valve shutoff device of claim 1, wherein the motor comprises a rotor shaft, wherein the valve shutoff device further comprises a plurality of gears for transferring a rotational movement of the rotor shaft to the coupling key.
- The valve shutoff device of claim 1 further comprising: a rechargeable battery for providing power to the motor, the processing unit, and the accelerometer; and one or more solar cells for recharging the battery from one of solar light and ambient light.
- The valve shutoff device of claim 1, wherein the valve shutoff device is a retrofit device that is externally attachable to the actuator of the shutoff valve.
- The valve shutoff device of claim 1, wherein the fluid in the supply line is one of natural gas, steam, liquid water, and petroleum-derived liquid, and wherein the motor is one of a continuous rotation motor and a motor with position control.
- The valve shutoff device of claim 1, wherein the accelerometer is a three-dimensional (3D) accelerometer for making said acceleration measurements in response to the arrival of the seismic waves.
- The valve shutoff device of claim 1 further comprising a three-dimensional (3D) magnetometer for detecting a local magnetic north and measuring three components of a magnetic field vector for determining an amount of magnetic north rotation with respect to a geographical north.
- The valve shutoff device of claim 1, wherein the accelerometer is a micro electro-mechanical system (MEMS) sensor.
- The valve shutoff device of claim 1 further comprising: a rechargeable battery for providing power to the motor, the processing unit, and the accelerometer, wherein the rechargeable battery is rechargeable from a power outlet.
- The valve shutoff device of claim 1, wherein the second set of seismic waves comprises secondary waves (S-Waves).
- The valve shutoff device of claim 1, wherein the second set of seismic waves comprises surface waves.
Description
This application claims the benefit of U.S. Provisional Patent Application Ser. No. 62/788,723, filed on Jan. 4, 2019. The contents of U.S. Provisional Patent Application No. 62/788,723 are hereby incorporated by reference.
Automatic shut off valves have been used to shut off the gas supply to a structure during an earthquake. The shutoff of the flow of gas from pipes that may be ruptured during an earthquake prevents a fire or explosion due to a gas leak caused by the earthquake.
The automatic shut off valves are typically installed in a gas flow line. The existing automatic shut off valves use mechanical mechanisms to sense the shock and vibrations of an earthquake. Some of the automatic shut off valves use a metal ball which is displaced by the force of an earthquake from its normal rest position to cause the valve to close.
Other automatic shut off valves use a pivoted flapper arm that is held in open position (i.e., out of the line of the gas flow) by a holding magnet embedded in it. When the magnetic attractive force is reduced (e.g., an electromagnet may be activated after an earthquake, which opposes the field of the holding magnet), the pivoted flapper arm swings down by gravity into the closed position and a flapper seal element seals the valve seat. The flapper arm may also be released by a ball that normally rests in a cavity above the flapper's magnet to keep the flapper up and the valve open. The ball moves away from its resting position by the force of an earthquake causing the flapper to be released to close the valve.
Citations (21)
- US4841287A
- US5209454A
- US5489889A
- US5307699A
- US5787917A
- US6661346B1
- US6311714B1
- US6170509B1
- US6968852B1
- US6789560B1
- US6374850B1
- US6909375B2
- US7375646B1
- US7598884B2
- US7346432B2
- US7918239B1
- US8039988B2
- US9057453B2
- US20140264111A1
- US9645584B2
- US10520103B1
Record as JSON
{
"publication_number": "US10718442B1",
"country": "US",
"kind": "B1",
"title": "Retrofit automatic seismic wave detector and valve shutoff device",
"abstract": "A retrofit valve shutoff device is provided that comprises a coupling key for coupling with an actuator of a shutoff valve on a fluid supply line, an inertial measurement unit for generating one or more signals in response to arrival of seismic waves, a motor for rotating the coupling key and the actuator of the shutoff valve, and a processing unit for receiving the one or more signals from the inertial measurement unit, analyzing the received signals to determine whether to close the shutoff valve, and sending a signal to the motor to rotate the coupling key and the actuator of the shutoff valve to close the shutoff valve based on the analysis of the received signals.",
"claims": [
"1. A valve shutoff device, comprising: a coupling key for coupling with an actuator of a shutoff valve on a fluid supply line; an accelerometer for making acceleration measurements in three directions; a motor for rotating the coupling key and the actuator of the shutoff valve; a radio transceiver; and a processing unit for: receiving the acceleration measurements from the accelerometer; determining an arrival of a first set of seismic waves comprising primary seismic waves (P-waves) when a ratio of a power magnitude of the acceleration measurements in a vertical direction with respect to a vector sum of the power magnitude of the acceleration measurements in the three directions exceeds a first threshold; after determining the arrival of the P-waves, determining an arrival of a second set of seismic waves when the vector sum of the power magnitude of the acceleration measurements in the three directions exceeds a second threshold; after determining the arrival of the second set of seismic waves, sending one or more signals to the motor to rotate the coupling key and the actuator of the shutoff valve to close the shutoff valve; and sending one or more signals through the transceiver to one or more electronic devices external to the valve shutoff device indicating whether the shutoff valve is open or closed, wherein the processing unit is one of a microprocessor, a controller, a microcontroller, a single processor, and a multi-core processor.",
"2. The valve shutoff device of claim 1, wherein the processing unit is for: receiving an internal health status from one or more of the accelerometer, the processing unit, the motor, and the radio transceiver; and sending, through the radio transceiver, the internal health status of said one or more of the processing unit, the motor, and the radio transceiver to the one or more electronic devices.",
"3. The valve shutoff device of claim 1 further comprising: a battery; and one or more solar cells for recharging the battery; wherein the processing unit is for: receiving an internal health status from the solar cells; receiving a voltage level from the battery; and sending, through the radio transceiver, the internal health status of the solar cells and the voltage level of the battery to the one or more electronic devices.",
"4. The valve shutoff device of claim 1, further comprising a radio frequency (RF) antenna, wherein the processing unit, the radio transceiver, and the RF antenna are on a system on a chip integrated circuit.",
"5. The valve shutoff device of claim 1, wherein the processing unit is further for: comparing the power magnitude of the acceleration measurements received from the accelerometer with a predetermined magnitude; determining that an earthquake exceeding the predetermined magnitude has occurred when the power magnitude of the acceleration measurements exceeds the predetermined magnitude; and sending, through the radio transceiver, at least one of the acceleration measurements to the one or more electronic devices as parameters related to an earthquake.",
"6. The valve shutoff device of claim 1, wherein the processing unit is further for: receiving a signal from an electronic device external to the valve shutoff device, through the radio transceiver, to close the shutoff valve; determining an authenticity of the received signal based on one or more criteria; and sending one or more signals to the motor to rotate the coupling key to close the shutoff valve when the received signal is authenticated.",
"7. The valve shutoff device of claim 1, wherein the processing unit is further for: receiving a signal from an electronic device external to the valve shutoff device, through the radio transceiver, to open the shutoff valve; determining an authenticity of the received signal based on one or more criteria; and sending one or more signals to the motor to rotate the coupling key to open the shutoff valve when the received signal is authenticated.",
"8. The valve shutoff device of claim 1, wherein the processing unit is for analyzing the measurements received from the accelerometer to determine at least one of an amplitude and an arrival time of one or more types of seismic waves.",
"9. The valve shutoff device of claim 8, wherein the types of seismic waves comprise one or more of the P-waves, secondary waves (S-waves), and surface waves.",
"10. The valve shutoff device of claim 1 further comprising a rotor shaft connected to the coupling key, wherein the motor rotates the coupling key by turning the rotor shaft.",
"11. The valve shutoff device of claim 10 further comprising: a sensor for: measuring one or more parameters comprising a force excreted by the motor on the rotor shaft; and sending the measured parameters to the processing unit; wherein the processing unit is further for: receiving, after sending the signal to the motor to rotate the coupling key to close the shutoff valve, the measured parameters from the sensor; comparing the force excreted by the motor on the rotor shaft with a limit to determine whether the actuator of the shutoff valve has stopped rotating; and when the actuator of the shutoff valve is determined to have stopped rotating, sending a signal to the motor to stop rotating the rotor shaft.",
"12. The valve shutoff device of claim 11, wherein the sensor is one of (i) a torsion load cell for measuring a strain that is proportional to one of a torque and a force applied by the motor to the rotor shaft and (ii) a transducer for creating an electrical signal with a magnitude proportional to one of the torque and the force applied by the motor to the rotating shaft.",
"13. The valve shutoff device of claim 10 further comprising: a memory; the processing unit for: receiving, prior to sending the one or more signals to the motor to rotate the coupling key to close the shutoff valve, a first value corresponding to an angular position of the rotor shaft when the valve is at an open position and a second value corresponding to an angular position of the rotor shaft when the valve is at a shutoff position; storing the first and second values in the memory; after sending the one or more signals to the motor to rotate the coupling key to close the shutoff valve, receiving the angular value of the rotor shaft at one or more time intervals; comparing the angular value of the rotor shaft with the first and second values; and sending a signal to the motor to stop rotating the rotor shaft based on the comparison.",
"14. The valve shutoff device of claim 13 further comprising: a rotary position encoder for: measuring an angular position of the rotor shaft; converting the angular position into a digital signal; and sending the digital signal to the processing unit; wherein the processing unit is for using the digital signal as the angular value of the rotor for comparing to the first and second values.",
"15. The valve shutoff device of claim 1, wherein the processing unit is for: receiving, after sending the one or more signals to the motor to rotate the coupling key, a level of an electric current used by the motor; and sending a signal to the motor to stop rotating the coupling key when the level of the electric current used by the motor exceeds a threshold.",
"16. The valve shutoff device of claim 1, wherein the motor comprises a rotor shaft, wherein the valve shutoff device further comprises a plurality of gears for transferring a rotational movement of the rotor shaft to the coupling key.",
"17. The valve shutoff device of claim 1 further comprising: a rechargeable battery for providing power to the motor, the processing unit, and the accelerometer; and one or more solar cells for recharging the battery from one of solar light and ambient light.",
"18. The valve shutoff device of claim 1, wherein the valve shutoff device is a retrofit device that is externally attachable to the actuator of the shutoff valve.",
"19. The valve shutoff device of claim 1, wherein the fluid in the supply line is one of natural gas, steam, liquid water, and petroleum-derived liquid, and wherein the motor is one of a continuous rotation motor and a motor with position control.",
"20. The valve shutoff device of claim 1, wherein the accelerometer is a three-dimensional (3D) accelerometer for making said acceleration measurements in response to the arrival of the seismic waves.",
"21. The valve shutoff device of claim 1 further comprising a three-dimensional (3D) magnetometer for detecting a local magnetic north and measuring three components of a magnetic field vector for determining an amount of magnetic north rotation with respect to a geographical north.",
"22. The valve shutoff device of claim 1, wherein the accelerometer is a micro electro-mechanical system (MEMS) sensor.",
"23. The valve shutoff device of claim 1 further comprising: a rechargeable battery for providing power to the motor, the processing unit, and the accelerometer, wherein the rechargeable battery is rechargeable from a power outlet.",
"24. The valve shutoff device of claim 1, wherein the second set of seismic waves comprises secondary waves (S-Waves).",
"25. The valve shutoff device of claim 1, wherein the second set of seismic waves comprises surface waves."
],
"description_excerpt": "This application claims the benefit of U.S. Provisional Patent Application Ser. No. 62/788,723, filed on Jan. 4, 2019. The contents of U.S. Provisional Patent Application No. 62/788,723 are hereby incorporated by reference.\n\nAutomatic shut off valves have been used to shut off the gas supply to a structure during an earthquake. The shutoff of the flow of gas from pipes that may be ruptured during an earthquake prevents a fire or explosion due to a gas leak caused by the earthquake.\n\nThe automatic shut off valves are typically installed in a gas flow line. The existing automatic shut off valves use mechanical mechanisms to sense the shock and vibrations of an earthquake. Some of the automatic shut off valves use a metal ball which is displaced by the force of an earthquake from its normal rest position to cause the valve to close.\n\nOther automatic shut off valves use a pivoted flapper arm that is held in open position (i.e., out of the line of the gas flow) by a holding magnet embedded in it. When the magnetic attractive force is reduced (e.g., an electromagnet may be activated after an earthquake, which opposes the field of the holding magnet), the pivoted flapper arm swings down by gravity into the closed position and a flapper seal element seals the valve seat. The flapper arm may also be released by a ball that normally rests in a cavity above the flapper's magnet to keep the flapper up and the valve open. The ball moves away from its resting position by the force of an earthquake causing the flapper to be released to close the valve.",
"cpc": [
"F16K 17/36",
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"G01V 1/008",
"G01V 1/01",
"G01V 1/284",
"G01V 1/288",
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"G01V 1/305",
"G01V 2210/1232",
"G01V 2210/324",
"G01V 2210/3248",
"G01V 2210/43",
"G01V 2210/6222"
],
"ipc": [
"F16K 17/36",
"G01V 1/00"
],
"inventors": [
"Mohammad Taghi Fatehi",
"Parham Reza Fatehi",
"Keyvan Fatehi"
],
"filing_date": "2019-05-22",
"publication_date": "2020-07-21",
"grant_date": "2020-07-21",
"priority_date": "2019-01-04",
"application_number": "US-201916420156-A",
"family_id": "69057636",
"cited_by_count": 5,
"citations": [
"US4841287A",
"US5209454A",
"US5489889A",
"US5307699A",
"US5787917A",
"US6661346B1",
"US6311714B1",
"US6170509B1",
"US6968852B1",
"US6789560B1",
"US6374850B1",
"US6909375B2",
"US7375646B1",
"US7598884B2",
"US7346432B2",
"US7918239B1",
"US8039988B2",
"US9057453B2",
"US20140264111A1",
"US9645584B2",
"US10520103B1"
]
}
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