ELECTRICAL POWER FROM PERIPHERAL DEVICES
20220018326 ยท 2022-01-20
Inventors
- Bruno Jean Michel Cheron (McKinney, TX, US)
- Xuan Song (McKinney, TX, US)
- Helene Jiaqi Amy Cheron (McKinney, TX, US)
Cpc classification
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2220/602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B17/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2250/82
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F05B2220/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2210/11
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03B17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid flow device has a body with a mechanism for altering state of a fluid flowing through the device, an inlet conduit providing inlet of the flowing fluid to the body of the device, an outlet conduit providing outlet of the flowing fluid from the body of the device, and a micro-generator assembly installed in either the inlet conduit or the outlet conduit, the micro-generator assembly having an impeller driven by the flowing fluid, the impeller turning a shaft driving a generator producing a voltage across two output conductors.
Claims
1. A flow regulation system, comprising: a flow regulator having a body, within a pipeline, having one or more mechanisms for altering state of a substance including fluid or gas flowing through the system, including at least a coil spring operating against a diaphragm; an inlet, providing inlet of the flowing substance to the body of the regulator; an outlet, within the pipeline, providing outlet of the flowing substance from the body of the regulator; a micro-generator assembly installed in either the inlet or the outlet, the micro-generator assembly having an impeller driven by the flowing substance, the impeller turning a shaft driving a generator producing a voltage across two output conductors; and a circuitry comprising a voltage regulator and sensing circuitry powered by the micro-generator assembly enabled to monitor substance pressure and temperature at one or more points within the system.
2. The flow regulation system of claim 1 further comprising an electrical pass-through through a wall of the inlet or the outlet conduit where the micro-generator is installed.
3. The flow regulation system of claim 1 wherein the micro-generator assembly produces a Direct Current (DC) voltage adequate for regulation to 12V DC.
4. (canceled)
5. The flow regulation system of claim 1 further comprising an electric motor driving one or more mechanisms of the fluid flow regulator, a circuitry external to the body comprising a voltage regulator, a micro-processor, and a data repository coupled to the micro-processor, the micro-processor executing software providing command outputs to operate the electric motor.
6. (canceled)
7. The flow regulation system of claim 1 further comprising a wireless communication circuitry in the circuitry external to the body, the wireless communication circuitry coupled to a micro-processor, wherein status reports are sent via the wireless communication circuitry to remote locations.
8. The flow regulation system of claim 1 wherein the regulator is a pressure regulator.
9. The flow regulation system of claim 1 wherein the regulator is a steam trap.
10. The flow regulation system of claim 1 wherein the regulator is a valve.
11. A method for generating electrical power with a flow regulation system, comprising: installing a flow regulator within a pipeline; installing a micro-generator assembly in either an inlet conduit or in an outlet conduit of a body of the flow regulator, the micro-generator assembly having an impeller driven by a flowing substance, the impeller turning a shaft driving a generator producing a voltage across two output conductors; passing the output conductors over a pass-through in a wall of the conduit of the inlet or the outlet conduit, thereby providing power to one or more mechanisms of the flow regulator, including at least a coil spring operating against a diaphragm; and monitoring one or both of temperature and pressure at one or more points within the body of the regulator, by a sensor circuitry powered by the output conductors.
12. The method of claim 11 wherein the micro-generator assembly produces a Direct Current (DC) voltage adequate for regulation by an on-board voltage regulator to 12V DC.
13. (canceled)
14. The method of claim 11 further comprising driving an electric motor powered by the voltage regulator.
15. The method of claim 13 further comprising commanding operation of electrical mechanisms of the regulator by a micro-processor powered by the voltage regulator executing software.
16. (canceled)
17. The method of claim 11 further comprising creating and sending status reports by a micro-processor through a wireless communication circuitry in a circuitry external to the body.
18. The method of claim 11, wherein the regulator is one of a pressure regulator, a steam trap or a valve.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF THE INVENTION
[0019]
[0020]
[0021] It is well known that a large number of devices like the pressure regulator of
[0022] The present inventor has envisioned devices of this sort capable of generating their own power, or generating power for other closely-related purposes. Devices for generating low-voltage electric power (typically, at 24V) using the energy provided by a source of air under pressure are currently known in the art. Such devices basically comprise an electric generator, a radial micro-turbine coupled for rotation with the rotor of the electric generator, and a nozzle through which air under pressure is directed against blades of the micro-turbine so as to drive the micro-turbine into rotation, along with the rotor of the electric generator, thereby producing electric power from the pressure and kinetic energy of the flow of air under pressure. Such devices further comprise an electronic control unit arranged to ensure a constant output voltage independently of changes in the electric load connected to the device and in the pressure of the air under pressure supplied to the device. A micro-generator is known to the inventor. One such device is subject of U.S. Pat. No. 8,957,540, to inventor Focchi on Feb. 17, 2015.
[0023] The Focchi micro-generator is relatively complicated and of a size too bulky for most applications in the present invention, but the inventor has developed versions of such a micro-turbine to fit different applications according to embodiments of the present invention.
[0024]
[0025] In this example an impeller 209 is engaged to shaft 207 and shaft 207 passes through a micro-generator 208. Micro-generator 208 has a stator having stator windings in a body joined to struts 213 such that the stator is held stationary. There is a rotor that turns relative to the stator and is connected to shaft 207 that may be turned by impeller 209. Fluid, either gaseous or liquid, passing through conduit 201 may turn impeller 209, hence shaft 207 and the rotor of the micro-generator, producing a voltage across output conductors 210 and 211 that proceed from the micro-generator. The voltage generated needs be sufficient to regulate to 12V DC or 24V DC. The regulation circuitry is not shown in
[0026] It is apparent in this embodiment that this apparatus may be provided in a variety of different forms, depending on several variables, such as what sort of medium is passing through conduit 201, and the nature of a device in which the micro-generator assembly is to be placed. The medium might by liquid and viscous, like oil, or liquid and less viscous, like water. The shape of the impeller may be altered accordingly. The medium might well be gaseous, like air, or vapor, like steam, and the impeller may be provided accordingly. Materials may need to be chosen with application in mind as well, but a micro-generator suitable for many different applications may be developed and provided.
[0027]
[0028] In the example the design is such that the output across conductors 210 and 211 is of a value that may be regulated outside of conduit 201 to a regulated voltage that may be used for electronic equipment, such as computers and computer peripheral devices.
[0029] In this example a circuitry assembly 307 is also integrated with regulator 300, and has a voltage regulator 308 connected to output lines 210 and 211 of the micro-generator. Circuitry 307 in this example comprises a micro-processor 309 coupled to a data repository 310, as well as, temperature sensing circuitry 311, and pressure sensing circuitry 312. The temperature and pressure sensing circuitry is connected to sensors (not shown) installed in the regulator, and may be connected to sensors elsewhere, near the regulator. Examples of additional sensors that are not shown may include accelerometers detecting vibrations and sensors having means to measure, directly or indirectly, displacement of the fluid, either gaseous or liquid, passing through conduit 201, for example, displacement based pressure sensors and/or sensors having means to measure, directly or indirectly, the displacement of the plug 305 and/or of the diaphragm 304.
[0030] In this example wireless communication circuitry 313 is coupled to the micro-processor, and may establish communication with a nearby base station or in some embodiments may connect to the internet network. Executing software on micro-processor 309 the system described may monitor status of regulator 300 and report status to remote stations.
[0031] In an alternative embodiment there may be a DC electric motor operating adjusting screw 301, and micro-processor 309 may switch power to the motor, and pressure regulation may be automated and be remotely adjustable by command signals from a remote station through micro-processor 309.
[0032] As was described above, there exist in many transmission and distribution systems a variety of peripheral devices like pressure regulator 100. Regulator 100 and regulator 300 integrated with micro-generator assembly 200 are examples of a broader variety of such devices that might benefit from application of embodiments of the present invention. A micro-generator assembly like that illustrated in
[0033] The skilled artisan will understand that the embodiments described above are entirely exemplary, and that many other embodiments may be developed that fall well within the scope of this invention. The scope of the invention is limited only by the claims.