WO2020185700A1 - Sensor assemblies and methods for emulating interaction of entities within water systems - Google Patents
Sensor assemblies and methods for emulating interaction of entities within water systems Download PDFInfo
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- WO2020185700A1 WO2020185700A1 PCT/US2020/021744 US2020021744W WO2020185700A1 WO 2020185700 A1 WO2020185700 A1 WO 2020185700A1 US 2020021744 W US2020021744 W US 2020021744W WO 2020185700 A1 WO2020185700 A1 WO 2020185700A1
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- Prior art keywords
- assembly
- circuit board
- sensor
- housing
- component
- Prior art date
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Classifications
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- H—ELECTRICITY
- H05—ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
- H05K—PRINTED CIRCUITS; CASINGS OR CONSTRUCTIONAL DETAILS OF ELECTRIC APPARATUS; MANUFACTURE OF ASSEMBLAGES OF ELECTRICAL COMPONENTS
- H05K7/00—Constructional details common to different types of electric apparatus
- H05K7/14—Mounting supporting structure in casing or on frame or rack
- H05K7/1422—Printed circuit boards receptacles, e.g. stacked structures, electronic circuit modules or box like frames
- H05K7/1427—Housings
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D21/00—Measuring or testing not otherwise provided for
- G01D21/02—Measuring two or more variables by means not covered by a single other subclass
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L19/00—Details of, or accessories for, apparatus for measuring steady or quasi-steady pressure of a fluent medium insofar as such details or accessories are not special to particular types of pressure gauges
- G01L19/14—Housings
- G01L19/148—Details about the circuit board integration, e.g. integrated with the diaphragm surface or encapsulation
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01L—MEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
- G01L19/00—Details of, or accessories for, apparatus for measuring steady or quasi-steady pressure of a fluent medium insofar as such details or accessories are not special to particular types of pressure gauges
- G01L19/14—Housings
- G01L19/149—Housings of immersion sensor, e.g. where the sensor is immersed in the measuring medium or for in vivo measurements, e.g. by using catheter tips
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01D—MEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
- G01D11/00—Component parts of measuring arrangements not specially adapted for a specific variable
- G01D11/24—Housings ; Casings for instruments
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01P—MEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
- G01P15/00—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration
- G01P15/18—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration in two or more dimensions
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/0047—Housings or packaging of magnetic sensors ; Holders
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/02—Measuring direction or magnitude of magnetic fields or magnetic flux
- G01R33/0206—Three-component magnetometers
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/02—Measuring direction or magnitude of magnetic fields or magnetic flux
- G01R33/06—Measuring direction or magnitude of magnetic fields or magnetic flux using galvano-magnetic devices
- G01R33/07—Hall effect devices
- G01R33/072—Constructional adaptation of the sensor to specific applications
Definitions
- the present disclosure relates to sensor assemblies and methods for emulating interaction of entities within water systems.
- Water systems in relation to hydropower facilities is just one method of emulation.
- Desirable devices overcome some of these limitations; they can be more robust, cost accessible, capable of providing rapid data acquisition, widely deployable, and operable in more severe hydraulic conditions, including but not limited to high-head dams with Francis turbines and pu mp storage facilities.
- the present disclosure provides assemblies and methods with more capabilities and applications that can facilitate the modeling of animal interaction with water systems, which provide for the development of environmentally advanced water systems such as dams and aqueducts.
- the present disclosure allows attachment of the system to the turbine blades, which provides understanding of machine dynamics to improve turbine design and operations.
- Sensor assemblies are provided for use in modeling water systems. These assemblies can include a circuit board supporting processing circuitry components on either or both opposing component support surfaces, along with a housing above the circuit board and the components, with the housing being circular about the circuit board in at least one cross section, and wherein the supporting surfaces of the circuit board are substantially parallel with the plane of the housing in the one cross section.
- the methods can include introducing a sensor assembly into a water system.
- the sensor assembly can include: a circuit board supporting processing circuitry components on either or both of opposing component support surfaces of the circuit board ; a housing about the circuit board and the components, the housing being circular about the circuit board in at least one cross section; and wherein the support surfaces of the circuit board are substantially parallel with the plane of the housing in the one cross section.
- Assemblies and methods of the present disclosure can provide improved robustness of design and enhanced measu rement capabilities using innovative sensors and circuitry; reduced future costs and a model that is capable of deployment in nu merous areas and/or water systems wherein such items were not previously deployable.
- the assemblies of the present disclosure can contain sensors for acceleration, rotation, magnetic field intensity, pressure, and temperature.
- a low-power microcontroller can collect data from the sensors and store the data in memory.
- a rechargeable battery can supply power to the assemblies.
- the assemblies can be nearly neutrally buoyant and thus mimic the behavior of water inhabiting species such as actual fish, thus in some applications, the sensor assemblies of the present disclosure can be considered sensor fish.
- the user can activate the microcontroller using a magnet, and then drop the device in the water system (typically, on the upstream side of a dam in hydropower applications).
- the microcontroller can wait for a preselected and preprogrammed period of time and then sample data from each sensor at up to 81 92 samples per second. Data collection can continue for a preselected programmable period of time, or until the memory is full.
- the assembly can be configured for placement into a docking station wherein the data collected du ring the event can be downloaded into a larger system for analysis.
- the docking station can plug into the circuit board to recharge the battery and download the sensor data. After the data is downloaded the memory can be erased.
- Figs. 1 A and 1 B are representations of a portion of sensor assemblies according to an embodiment of the disclosure.
- Figs. 2A and 2B are additional representations of sensor assemblies according to embodiments of the disclosure.
- Fig. 3A and 3B are even more additional representations of sensor assemblies according to embodiments of the disclosure.
- Fig. 4 is at least one view of a sensor assembly according to an embodiment of the disclosure.
- Fig. 5 is an exploded view of the sensor assembly of Fig. 4 according to an embodiment of the disclosure.
- Fig. 6 is an alternative view of an exploded view of sensor assemblies of Figs. 4 and 5 according to an embodiment of the disclosure.
- Fig. 7 is a view of a sensor assembly according to an embodiment of the disclosure.
- Fig. 8 is an exploded view of the sensor assembly of Fig. 7 according to an embodiment of the disclosure.
- Fig. 9 is an alternative exploded view of the sensor assemblies of Figs. 7 and 8 according to an embodiment of the disclosure.
- Fig. 1 0 is a is a block diagram of electrically connected components of at least one assembly of the present disclosure.
- sensor assembly 10 can include a circuit board 1 2 that is aligned in relation to housing 14.
- housing 14 can be substantially cylindrical in this view, and circuit board 12 may likewise be substantially cylindrical.
- the perimeter of circuit board 1 2 may compliment the cylindrical housing 14.
- housing 14 is shown in one cross section in relation to circuit board 1 2.
- perimeter plane 16 of circuit board 12 can be substantially parallel with perimeter plane 17 of housing 14.
- opposing surfaces 18 of circuit board 1 2 can extend along a plane that is substantially normal to perimeter plane 1 7.
- pressure sensor component 20 is shown in relation to circuit board 1 2 and housing 14. As shown, pressu re sensor component 20 can reside within a recess 22 of housing 14. Referring next to Figs. 3A and 3B, power source or battery 30 can be operatively aligned in relation to circuit board 12, on the opposing side of pressure sensor component 20, for example.
- FIG. 4 an isometric view of at least one sensor assembly 40 is shown that includes housing 14 about circuit board 1 2, with circuit board 12 supporting processing circuitry components including pressure sensor component 20 within recess 22. Additionally, pins 41 can extend through recesses 42. Pins 41 can be configured as an interface with processing circuitry components of sensor assembly 40. Fu rther, power supply 30 such as a battery can be provided within housing 14 below circuit board 1 2 and opposing pressure sensor component 20. In this particular embodiment, sensor assembly 40 can include a base 44.
- sensor assembly 40 includes circuit board 1 2 supporting pressu re sensor component 20 above power sou rce 30.
- Sensor assembly 40 can include light indicators 52 such as a green LED indicator. This indicator can be utilized to provide visual confirmation of the sensor assembly status, for example.
- sensor assembly 40 can include an amplifier 54 as well as a nine-axis inertial measu rement component 56 and an accelerometer component 58.
- Amplifier 54 can be a pressure sensor amplifier component.
- the pressu re sensor amplifier circuitry component can be a single component, and may occupy less than 3 mm X 3 mm in area in all cross sections. Additional light indicators can be provided as well. Accordingly, light indicator 60 can be provided as a blue LED, for example.
- housing 14 can be transparent or at least sufficiently translucent to allow for the viewing of the light indicators within sensor assembly 40.
- assembly 40 can be within a substantially tubular housing having substantially planar ends. However, u nlike the prior art sensor assemblies, the opposing su rfaces of the circuit board are placed normal to the circular edges of the housing in at least one cross section.
- assembly 40 may have a height of 13.5 mm and a diameter of 18 mm in at least one cross section. Assembly 40 can occupy a volu me of less than 3.76 cm3, and have a weight of less than 6.2 grams. Fu rther, base 44 can be configu red to be coupled to a flat rigid surface, e.g., a hydro turbine.
- sensor assembly 80 is shown that includes housing 14 about circuit board 1 2.
- housing 14 is substantially spherical and includes openings 42 and 22 to receive pins 41 and pressu re sensor components 20.
- assembly 80 can include a recess 82 configu red to receive a self- inflating balloon.
- assembly 80 is shown in an exploded view with housing 14 in two components that can be considered a bottom half and an upper half of the substantially spherical housing 14.
- at least one of the halves can have an extension 84 that is configured to be received by a recess or complimentary portion 86, allowing for a relatively sealed joining of the both top and bottom halves of housing 14.
- assembly 80 can include an amplifier 92 as well as a nine-axis inertial measurement unit 94 and an accelerometer component 96 as well as status indicating components 1 00 and 98 that may be represented as green and blue LEDs, respectively.
- circuit board 12 on the opposing face of circuit board 12 can be a oscillator component 11 0 as well as a microcontroller 11 2, a magnetic sensor component 114 as well as a battery charger component 116 and a memory component such as a 64-megabit flash memory component 11 8.
- assembly 80 may have a maximu m cross sectional diameter of 23.2 mm. Assembly 80 can occupy a volume of less than 6.38 cm3, and have a weight of less than 6.4 grams.
- the electronics design of at least one of the sensor assemblies is shown in an overall block diagram.
- the design may contain one main circuit board that includes a microcontroller. This board is aligned as described above within housing 14 with the battery mounted within housing 14.
- the board and components of the assembly can be operably coupled to communication tool that includes serial download interface, and input to the battery charger. This commu nication tool can facilitate connection with or be a part of a docking station, not shown.
- Power to the device can be provided by the battery which can be a lithiu m polymer battery.
- Example battery specifications can be, but are not limited to that of a Coin Power® CP 1 254 A2 battery having a diameter: 12.1 mm, height: 5.4mm, weight: 1 .6g, and capacity: 50 mAh.
- An integrated protection circuit cuts off the battery on an over-discharge condition.
- a 3-axis accelerometer analog component with a typical full-scale range of ⁇ 200 g can be operationally coupled between the battery and the microcontroller.
- An example ADXL377 can be used; this particular component has approximate dimensions of 3 X 3 X 1 .45 mm.
- a nine--axis inertial measu rement u nit can also be operationally coupled between the battery and the microcontroller.
- This component may contain a 3-axis accelerometer, 3-axis gyroscope, and 3-axis magnetometer.
- An example InvenSense MPU-9250; this particular component has approximate dimensions of 3 X 3 X 1 mm, has a shock tolerance of 10,000 g, consu mes a supply current of 3.5 mA during operation, and includes an internal temperature sensor.
- acceleration 16g in operational range each axis can be achieved with 16 bits of precision.
- operational range in each axis can be achieved with 16 bits of precision.
- For magnetic sensing 4800 uT operational range in each axis can be achieved with 14 bits of precision.
- a sampling rate of 2048 samples per second can be achieved.
- the pressure sensor can be an analog component with an operational range of 1 2 bar (174 psia).
- the positive and negative outputs may connect to the amplifier component before operationally coupling with the microcontroller.
- Example pressure sensors can include Measurement Specialties : MS541 2BM with approximate dimensions of 6.2 x 6.4 x 2.88 mm.
- Example amplifiers include the LT1 991 with approximate dimensions of 3 x 3 mm.
- the microcontroller component may be a Microchip: PIC24FJ64GA702 that includes : 2 l 2 C modules; 2 SPI modules; 2 UART modules; 12-bit and 200 ksps ADC; 64 kB Flash Program Memory; and 1 2 kB RAM. This component has approximate dimensions of 4 X 4 X 0.6 mm.
- the memory component can be a Cypress : S25FL064LABN FI043 with capacity of 64 megabits and approximate dimensions of 4 X 4 mm.
- a magnetic sensor component can be operationally coupled to the microcontroller.
- the magnetic sensor can be a Flail effect sensor.
- the magnetic sensor component can occupy 1 .1 X 1 .4 mm in all cross sections.
- the user may activate the sensor assembly by holding a magnet near the magnetic sensor.
- the output of the magnetic sensor may drive an interrupt pin of the microcontroller. LED lights may blink to indicate the system status.
- the microcontroller can also activate an integrated RF beacon which generates a carrier signal, and drives an antenna. While the present embodiment is shown, it is to be understood that various other alternative embodiments are contemplated within the scope of the claims of the present application.
- a docking station can be used to charge the battery via power and ground connections on the download board, and downloads data from the microcontroller component.
- the data transfer may use RS-232 at 921 .6 kHz baud rate, but with 3.0 V logic levels.
- the docking station may use a commercial TTL-to-USB converter cable or similar circuitry to pass the data to a personal computer.
- the RS-232 signals may be pulled high to wake the microcontroller component from sleep mode.
- the microcontroller component may contain firmware which provides the logic for operating the sensor assembly, whereas the other modules define the interfaces to various components with the necessary initialization routines.
- firmware which provides the logic for operating the sensor assembly
- the other modules define the interfaces to various components with the necessary initialization routines.
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- Microelectronics & Electronic Packaging (AREA)
- Condensed Matter Physics & Semiconductors (AREA)
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Abstract
Sensor assemblies are provided for use in modeling or emulating water or interactions of entities within water systems that can be used as sensor fish and can include a circuit board supporting processing circuitry components on either or both opposing component support surfaces of the circuit board and a housing above the circuit board and the components, with the housing being circular about the circuit board in at least one cross section, and wherein the supporting surfaces of the circuit board are substantially parallel with the plane of the housing in the one cross section.
Description
SENSOR ASS EMBLI ES AN D METHODS FOR EMULATING INTERACTION OF ENTITI ES WITH IN WATER SYSTEMS
RELATED PATENT DATA
This application claims priority to U.S. Patent Application Serial No. 16/351 ,373 filed March 1 2, 2019, entitled“Sensor Assemblies and Methods for Emulating Interaction of Entities Within Water Systems”, the entirety of which is incorporated by reference herein. This application is related to U.S. Patent Application Serial No. 14/871 ,761 filed September 30, 2015, entitled“Autonomous Sensor Fish to Support Advanced Hydropower Development”, now U.S. Patent No. 10,067, 11 2 issued September 4, 201 8; the entirely of which is incorporated by reference herein.
RIGHTS TO INVENTIONS MADE UN D ER FED ERALLY-SPONSORED RESEARCH AN D DEVELOPM ENT
This invention was made with Government support under Contract DE-AC0576RL01 830 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.
TECHN ICAL FI ELD
The present disclosure relates to sensor assemblies and methods for emulating interaction of entities within water systems. Water systems in relation to hydropower facilities is just one method of emulation.
BACKG ROUN D
Animals interact within water systems differently depending on the animal and the system. Modeling interactions of animal within water systems is important for many reasons, but recently, and significantly, it is important to determine the impact of water barriers such as dams, including hydropower dams, on animals such as fish. However, other systems, such as aqueducts, refurbished drainage, and/or aqueduct systems may be modeled as well.
In one particular example, it is important for many reasons to track or forecast fish passing through hydro-turbines or other hydraulic structures. Fish may be injured or killed when they are exposed to the severe hydraulic conditions found therein. Such conditions could include rapid and extreme pressure changes, shear stress and turbulence, strikes by ru nner blades and cavitation. In building new dams, and as existing turbines near the end of their operational life are set to be replaced, new designs for ru nners and other portions of the turbine system are being considered.
Studies using live fish are useful for the evaluation of dams’ biological performance, but are limited in that they cannot determine the specific hydraulic conditions or physical stresses experienced by the fish, the locations where deleterious conditions occur, or the specific causes of the biological response. To overcome this deficiency, various other sensor devices have been developed. These devices can be released independently or concu rrently with live fish directly into operating turbines or other passage routes as a means of measuring hydraulic conditions such as pressure, acceleration, and rotation acting on a body in situ du ring downstream passage.
While useful in their time, these types of devices have tended to lack the sufficient robustness required to su rvive the rapidly changing and extreme conditions within the testing sites. I n addition, the speed at which conditions change made most of these sensors less useful because they were not able to acquire information in rapid fashion so as to give the true account of the significant changes that took place in the bodies of these fish as they passed through these environments. The size, fu nctional limitations and problems with deployment and recovery, availability, and cost of these prior art devices have limited their use.
Desirable devices overcome some of these limitations; they can be more robust, cost accessible, capable of providing rapid data acquisition, widely deployable, and operable in more severe hydraulic
conditions, including but not limited to high-head dams with Francis turbines and pu mp storage facilities.
The present disclosure provides assemblies and methods with more capabilities and applications that can facilitate the modeling of animal interaction with water systems, which provide for the development of environmentally advanced water systems such as dams and aqueducts. In addition, the present disclosure allows attachment of the system to the turbine blades, which provides understanding of machine dynamics to improve turbine design and operations.
Additional advantages and novel features of the assemblies and methods will be set forth as follows and will be readily apparent from the descriptions and demonstrations set forth herein. Accordingly, the following descriptions of the present assemblies and methods should be seen as illustrative of the assemblies and methods and not as limiting in any way.
SUMMARY OF TH E DISCLOSU RE
Sensor assemblies are provided for use in modeling water systems. These assemblies can include a circuit board supporting processing circuitry components on either or both opposing component support surfaces, along with a housing above the circuit board and the components, with the housing being circular about the circuit board in at least one cross section, and wherein the supporting surfaces of the circuit board are substantially parallel with the plane of the housing in the one cross section.
Methods for emulating interaction of entities within water systems are provided. The methods can include introducing a sensor assembly into a water system. The sensor assembly can include: a circuit board supporting processing circuitry components on either or both of opposing component support surfaces of the circuit board ; a housing about the circuit board and the components, the housing being circular about the circuit board in at least one cross section; and wherein the
support surfaces of the circuit board are substantially parallel with the plane of the housing in the one cross section.
Assemblies and methods of the present disclosure can provide improved robustness of design and enhanced measu rement capabilities using innovative sensors and circuitry; reduced future costs and a model that is capable of deployment in nu merous areas and/or water systems wherein such items were not previously deployable. The assemblies of the present disclosure can contain sensors for acceleration, rotation, magnetic field intensity, pressure, and temperature. A low-power microcontroller can collect data from the sensors and store the data in memory. A rechargeable battery can supply power to the assemblies. The assemblies can be nearly neutrally buoyant and thus mimic the behavior of water inhabiting species such as actual fish, thus in some applications, the sensor assemblies of the present disclosure can be considered sensor fish.
To operate the assembly, the user can activate the microcontroller using a magnet, and then drop the device in the water system (typically, on the upstream side of a dam in hydropower applications). The microcontroller can wait for a preselected and preprogrammed period of time and then sample data from each sensor at up to 81 92 samples per second. Data collection can continue for a preselected programmable period of time, or until the memory is full. After collection from the water, the assembly can be configured for placement into a docking station wherein the data collected du ring the event can be downloaded into a larger system for analysis. The docking station can plug into the circuit board to recharge the battery and download the sensor data. After the data is downloaded the memory can be erased.
DRAWINGS
Embodiments of the disclosure are described below with reference to the following accompanying drawings.
Figs. 1 A and 1 B are representations of a portion of sensor assemblies according to an embodiment of the disclosure.
Figs. 2A and 2B are additional representations of sensor assemblies according to embodiments of the disclosure.
Fig. 3A and 3B are even more additional representations of sensor assemblies according to embodiments of the disclosure.
Fig. 4 is at least one view of a sensor assembly according to an embodiment of the disclosure.
Fig. 5 is an exploded view of the sensor assembly of Fig. 4 according to an embodiment of the disclosure.
Fig. 6 is an alternative view of an exploded view of sensor assemblies of Figs. 4 and 5 according to an embodiment of the disclosure.
Fig. 7 is a view of a sensor assembly according to an embodiment of the disclosure.
Fig. 8 is an exploded view of the sensor assembly of Fig. 7 according to an embodiment of the disclosure.
Fig. 9 is an alternative exploded view of the sensor assemblies of Figs. 7 and 8 according to an embodiment of the disclosure.
Fig. 1 0 is a is a block diagram of electrically connected components of at least one assembly of the present disclosure.
DESCRI PTION
Referring first to Fig. 1 A, at least one perspective view of a portion of a sensor assembly 10 is shown. In accordance with example implementations, sensor assembly 10 can include a circuit board 1 2 that is aligned in relation to housing 14. As shown, housing 14 can be substantially cylindrical in this view, and circuit board 12 may likewise be substantially cylindrical. In accordance with example implementations, the perimeter of circuit board 1 2 may compliment the cylindrical housing 14.
Referring next to Fig. 1 B, housing 14 is shown in one cross section in relation to circuit board 1 2. As can be seen in this one cross
section, perimeter plane 16 of circuit board 12 can be substantially parallel with perimeter plane 17 of housing 14. Fu rther, opposing surfaces 18 of circuit board 1 2 can extend along a plane that is substantially normal to perimeter plane 1 7.
Referring next to Figs. 2A and 2B, pressure sensor component 20 is shown in relation to circuit board 1 2 and housing 14. As shown, pressu re sensor component 20 can reside within a recess 22 of housing 14. Referring next to Figs. 3A and 3B, power source or battery 30 can be operatively aligned in relation to circuit board 12, on the opposing side of pressure sensor component 20, for example.
Referring next to Fig. 4, an isometric view of at least one sensor assembly 40 is shown that includes housing 14 about circuit board 1 2, with circuit board 12 supporting processing circuitry components including pressure sensor component 20 within recess 22. Additionally, pins 41 can extend through recesses 42. Pins 41 can be configured as an interface with processing circuitry components of sensor assembly 40. Fu rther, power supply 30 such as a battery can be provided within housing 14 below circuit board 1 2 and opposing pressure sensor component 20. In this particular embodiment, sensor assembly 40 can include a base 44.
Referring next to Figs. 5 and 6, alternative exploded views of sensor assembly 40 are shown that include circuit board 1 2 supporting pressu re sensor component 20 above power sou rce 30. Sensor assembly 40 can include light indicators 52 such as a green LED indicator. This indicator can be utilized to provide visual confirmation of the sensor assembly status, for example.
Additionally, sensor assembly 40 can include an amplifier 54 as well as a nine-axis inertial measu rement component 56 and an accelerometer component 58. Amplifier 54 can be a pressure sensor amplifier component. The pressu re sensor amplifier circuitry component can be a single component, and may occupy less than 3 mm X 3 mm in area in all cross sections.
Additional light indicators can be provided as well. Accordingly, light indicator 60 can be provided as a blue LED, for example. In accordance with example implementations, housing 14 can be transparent or at least sufficiently translucent to allow for the viewing of the light indicators within sensor assembly 40.
Referring next to Fig. 6, on an alternate su rface of circuit board 1 2 can be battery charger component 70, a memory component 62 such as a 64-megabit flash memory component, an oscillator component 64, a microcontroller 66, and a magnetic sensor component 68. As can be seen, assembly 40 can be within a substantially tubular housing having substantially planar ends. However, u nlike the prior art sensor assemblies, the opposing su rfaces of the circuit board are placed normal to the circular edges of the housing in at least one cross section.
According to example implementations, assembly 40 may have a height of 13.5 mm and a diameter of 18 mm in at least one cross section. Assembly 40 can occupy a volu me of less than 3.76 cm3, and have a weight of less than 6.2 grams. Fu rther, base 44 can be configu red to be coupled to a flat rigid surface, e.g., a hydro turbine.
Referring next to Fig. 7, in accordance with another example implementation, sensor assembly 80 is shown that includes housing 14 about circuit board 1 2. In accordance with example implementations, housing 14 is substantially spherical and includes openings 42 and 22 to receive pins 41 and pressu re sensor components 20. Additionally, assembly 80 can include a recess 82 configu red to receive a self- inflating balloon.
Referring next to Figs. 8 and 9, and first with respect to Fig. 8, assembly 80 is shown in an exploded view with housing 14 in two components that can be considered a bottom half and an upper half of the substantially spherical housing 14. In accordance with example implementations, at least one of the halves can have an extension 84 that is configured to be received by a recess or complimentary portion 86, allowing for a relatively sealed joining of the both top and bottom
halves of housing 14. In accordance with example implementations, assembly 80 can include an amplifier 92 as well as a nine-axis inertial measurement unit 94 and an accelerometer component 96 as well as status indicating components 1 00 and 98 that may be represented as green and blue LEDs, respectively. Referring next to Fig. 9, on the opposing face of circuit board 12 can be a oscillator component 11 0 as well as a microcontroller 11 2, a magnetic sensor component 114 as well as a battery charger component 116 and a memory component such as a 64-megabit flash memory component 11 8.
According to example implementations, assembly 80 may have a maximu m cross sectional diameter of 23.2 mm. Assembly 80 can occupy a volume of less than 6.38 cm3, and have a weight of less than 6.4 grams.
Referring lastly to Fig. 10, the electronics design of at least one of the sensor assemblies is shown in an overall block diagram. The design may contain one main circuit board that includes a microcontroller. This board is aligned as described above within housing 14 with the battery mounted within housing 14. The board and components of the assembly can be operably coupled to communication tool that includes serial download interface, and input to the battery charger. This commu nication tool can facilitate connection with or be a part of a docking station, not shown.
Power to the device can be provided by the battery which can be a lithiu m polymer battery. Example battery specifications can be, but are not limited to that of a Coin Power® CP 1 254 A2 battery having a diameter: 12.1 mm, height: 5.4mm, weight: 1 .6g, and capacity: 50 mAh. An integrated protection circuit cuts off the battery on an over-discharge condition.
A 3-axis accelerometer analog component with a typical full-scale range of ±200 g can be operationally coupled between the battery and the microcontroller. An example ADXL377 can be used; this particular component has approximate dimensions of 3 X 3 X 1 .45 mm.
A nine--axis inertial measu rement u nit can also be operationally coupled between the battery and the microcontroller. This component may contain a 3-axis accelerometer, 3-axis gyroscope, and 3-axis magnetometer. An example InvenSense : MPU-9250; this particular component has approximate dimensions of 3 X 3 X 1 mm, has a shock tolerance of 10,000 g, consu mes a supply current of 3.5 mA during operation, and includes an internal temperature sensor. For acceleration 16g in operational range each axis can be achieved with 16 bits of precision. For rotation 2000 s operational range in each axis can be achieved with 16 bits of precision. For magnetic sensing 4800 uT operational range in each axis can be achieved with 14 bits of precision. A sampling rate of 2048 samples per second can be achieved.
The pressure sensor can be an analog component with an operational range of 1 2 bar (174 psia). The positive and negative outputs may connect to the amplifier component before operationally coupling with the microcontroller. Example pressure sensors can include Measurement Specialties : MS541 2BM with approximate dimensions of 6.2 x 6.4 x 2.88 mm. Example amplifiers include the LT1 991 with approximate dimensions of 3 x 3 mm.
The microcontroller component may be a Microchip: PIC24FJ64GA702 that includes : 2 l2C modules; 2 SPI modules; 2 UART modules; 12-bit and 200 ksps ADC; 64 kB Flash Program Memory; and 1 2 kB RAM. This component has approximate dimensions of 4 X 4 X 0.6 mm.
The memory component can be a Cypress : S25FL064LABN FI043 with capacity of 64 megabits and approximate dimensions of 4 X 4 mm.
To activate the device a magnetic sensor component can be operationally coupled to the microcontroller. In one embodiment, the magnetic sensor can be a Flail effect sensor. The magnetic sensor component can occupy 1 .1 X 1 .4 mm in all cross sections. The user may activate the sensor assembly by holding a magnet near the
magnetic sensor. The output of the magnetic sensor may drive an interrupt pin of the microcontroller. LED lights may blink to indicate the system status.
The microcontroller can also activate an integrated RF beacon which generates a carrier signal, and drives an antenna. While the present embodiment is shown, it is to be understood that various other alternative embodiments are contemplated within the scope of the claims of the present application.
A docking station, not shown, can be used to charge the battery via power and ground connections on the download board, and downloads data from the microcontroller component. The data transfer may use RS-232 at 921 .6 kHz baud rate, but with 3.0 V logic levels. The docking station may use a commercial TTL-to-USB converter cable or similar circuitry to pass the data to a personal computer. When the sensor assembly is placed in the docking station, the RS-232 signals may be pulled high to wake the microcontroller component from sleep mode.
The microcontroller component may contain firmware which provides the logic for operating the sensor assembly, whereas the other modules define the interfaces to various components with the necessary initialization routines. As stated above, the U.S. Patent Application Serial No. 14/871 ,761 filed September 30, 2015, entitled “Autonomous Sensor Fish to Support Advanced Hydropower Development”, now U.S. Patent No. 10,067, 11 2 issued September 4, 2018, is incorporated by reference herein, and can be relied upon for additional processing circuitry and execution detail.
Claims
1 . A sensor assembly for use in modeling water systems, the assembly comprising :
a circuit board supporting processing circuitry components on either or both of opposing component support surfaces of the circuit board;
a housing about the circuit board and the components, the housing being circular about the circuit board in at least one cross section; and
wherein the support surfaces of the circuit board define a perimeter plane substantially parallel with the plane of the housing in the one cross section.
2. The assembly of claim 1 wherein at least a portion of the housing defines a tube.
3. The assembly of claim 2 wherein the housing defines opposing ends of the tube.
4. The assembly of claim 3 wherein at least one of the opposing ends of the tube is configured to facilitate coupling to another object.
5. The assembly of claim 1 wherein the housing defines a sphere.
6. The assembly of claim 5 wherein the sphere defines opposing ends.
7. The assembly of claim 6 wherein at least one of the opposing ends of the sphere is configured to facilitate coupling to another object.
8. The assembly of claim 1 wherein the housing defines an internal volu me of less than 3.76cm3.
9. The assembly of claim 1 wherein the housing defines opposing ends having distance there between of less than 23 mm in at least one cross section.
10. The assembly of claim 1 further comprising a single component magnetometer.
11 . The assembly of claim 1 fu rther comprising pressu re sensor amplifier circuitry.
12. The assembly of claim 11 wherein the pressure sensor amplifier circuitry is a single component.
13. The assembly of claim 11 wherein the pressure sensor amplifier circuitry is less than 3 mm X 3 mm in area in all cross sections.
14. The assembly of claim 1 further comprising a magnetic sensor component.
15. The assembly of claim 14 wherein the magnetic sensor component is less than 1 .1 mm X 1 .4 mm in area in at least one cross section.
16. The assembly of claim 1 fu rther comprising a base configu red to attach to hydroelectric turbine blades.
17. A method for emulating interaction of entities within water systems, the method comprising introducing a sensor assembly into a water system, the sensor assembly comprising :
a circuit board supporting processing circuitry components on either or both of opposing component support surfaces of the circuit board;
a housing about the circuit board and the components, the housing being circular about the circuit board in at least one cross section ; and
wherein the support surfaces of the circuit board are substantially parallel with the plane of the housing in the one cross section.
18. The method of claim 1 7 wherein the sensor assembly amplifies pressure sensing input from a single component.
19. The method of claim 1 7 wherein the sensor assembly determines magnetic field from a single component.
20. The method of claim 1 7 wherein the sensor assembly charges a battery and regulates voltages from a single component.
21 . The method of claim 1 7 wherein the sensor assembly is less than 6.4 grams.
22. The method of claim 17 wherein the water system includes hydropower dam.
23. The method of claim 17 further comprising coupling the sensor assembly to a turbine blade of the hydroelectric generator to determine machine dynamics.
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|---|---|---|---|
| US16/351,373 | 2019-03-12 | ||
| US16/351,373 US11533818B2 (en) | 2019-03-12 | 2019-03-12 | Sensor assemblies and methods for emulating interaction of entities within water systems |
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| WO2020185700A1 true WO2020185700A1 (en) | 2020-09-17 |
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| WO (1) | WO2020185700A1 (en) |
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| US10236920B2 (en) | 2015-12-15 | 2019-03-19 | Battelle Memorial Institute | Signal transmitter and methods for transmitting signals from animals |
| US10531639B2 (en) | 2016-08-25 | 2020-01-14 | Battelle Memorial Institute | Systems and methods for monitoring organisms within an aquatic environment |
| US11533818B2 (en) * | 2019-03-12 | 2022-12-20 | Battelle Memorial Institute | Sensor assemblies and methods for emulating interaction of entities within water systems |
| US11355005B2 (en) | 2019-07-22 | 2022-06-07 | Battelle Memorial Institute | Aquatic organism tracking devices, systems and associated methods |
| EP4061120A1 (en) | 2019-11-19 | 2022-09-28 | Battelle Memorial Institute | Aquatic organism monitoring devices and associated monitoring methods |
| US12096747B2 (en) | 2021-03-01 | 2024-09-24 | Battelle Memorial Institute | Organism monitoring devices and organism monitoring methods |
| CN119667099B (en) * | 2024-12-13 | 2025-07-11 | 河南省新乡水文水资源测报分中心 | A device for intelligent surveying of hydrology and water resources |
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| US12144139B2 (en) | 2024-11-12 |
| US11533818B2 (en) | 2022-12-20 |
| US20200296854A1 (en) | 2020-09-17 |
| US20230131728A1 (en) | 2023-04-27 |
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