System and method of managing power for recharging electric vehicles
11518259 ยท 2022-12-06
Inventors
Cpc classification
Y02T90/16
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
B60L53/67
PERFORMING OPERATIONS; TRANSPORTING
Y02E10/56
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
B60L53/50
PERFORMING OPERATIONS; TRANSPORTING
B60L53/68
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/00
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
Y04S10/126
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
H02J3/32
ELECTRICITY
Y02T10/70
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
H02J7/0013
ELECTRICITY
B60L53/63
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/12
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
Y02T10/7072
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
International classification
Abstract
A method of managing power for recharging electric vehicles efficiently stores, delivers, and distributes energy. The method includes a plurality of user accounts managed by at least one remote server. The system includes a plurality of mobile computerized recharging stations, wherein each mobile computerized recharging station tracks a location and a current amount of available power within a power storage system. The method begins by prompting each user account to search for at least one best-match station. A search request is relayed for the best-match station from a corresponding user PC device to the remote server. The current location is compared to the station location for each mobile computerized recharging station. The minimum threshold of available power is compared to the current amount of available power for each proximal station. The sufficiently-powered station is displayed as the best-match station through the user PC device.
Claims
1. A method of managing power for recharging electric vehicles, the method comprises the steps of: (A) providing a plurality of user accounts managed by at least one remote server, wherein each user account is associated with a corresponding user personal computing (PC) device, and wherein a minimum threshold of available power is stored on the remote server; (B) providing a plurality of mobile computerized recharging stations, wherein each mobile computerized recharging station tracks a station location and a current amount of available power within a power storage system, and wherein each mobile computerized recharging station is housed within a transportable enclosure; (C) prompting each user account to search for at least one best-match station from the plurality of mobile computerized recharging stations with the corresponding user PC device; (D) relaying a search request for the best-match station from the corresponding user PC device of an arbitrary account to the remote server, wherein the arbitrary account is any user account from the plurality of user accounts, and wherein the search request includes a current location of the arbitrary account; (E) comparing the current location of the arbitrary account to the station location for each mobile computerized recharging station with the remote server in order to identify a plurality of proximal stations from the plurality of mobile computerized recharging stations; (F) comparing the minimum threshold of available power to the current amount of available power for each proximal station with the remote server in order to identify at least one sufficiently-powered station from the plurality of proximal stations; (G) displaying the sufficiently-powered station as the best-match station through the corresponding user PC device of the arbitrary user account; and, (H) metering an amount of exchanged power between the arbitrary user account and the best-match station with the remote server; sequentially executing steps (C) through (G); providing each mobile computerized recharging station with a solar energy device, wherein the solar energy device is electrically connected to the power storage system, and wherein the solar energy device is a solar sail, and wherein the solar sail is expanded across a roof of each mobile computerized recharging station; continuously capturing a quantity of solar energy with the solar energy device; storing the quantity of solar energy with the power storage system; receiving location-based weather data with the remote server; tracking a solar-energy generation rate for each mobile computerized recharging station with the remote server; comparing the solar-energy generation rate for each mobile computerized recharging station amongst each other with the remote server in order to identify at least one low solar-energy generation station with a low solar-energy generation rate, wherein the low solar-energy generation station is from the plurality of mobile computerized recharging stations; comparing the location-based weather data to the station location of the low solar-energy generation station with the remote server in order to identify an ideal location for generating solar energy with the low solar-energy generation station; and, physically moving the low solar-energy generation station to the ideal location for generating solar energy.
2. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing at least one vehicle registration for each user account; providing each mobile computerized recharging station with a scanning device; retrieving an identification reading from the scanning device of the best-match station before step (H); and, executing step (H), if the identification reading matches the vehicle registration of the arbitrary account.
3. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing each mobile computerized recharging station with a wireless broadband radio transceiver; and, communicably coupling the wireless broadband radio transceiver of each mobile computerized recharging station with the remote server.
4. The method of managing power for recharging electric vehicles, the method as claimed in claim 1, wherein the power storage system is a modular lithium-ion based battery system.
5. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing each mobile computerized recharging station with an onboard charger, wherein the power storage system is electrically connected to the onboard charger, and wherein the onboard charger for at least one specific station is electrically coupled to an external power grid, and wherein the specific station is from the plurality of mobile computerized recharging stations; retrieving an amount of replenishing power in a single-phase alternating current (AC) form from the external power grid with the onboard charger of the specific station; converting the amount of replenishing power from the single-phase AC form to a direct current (DC) form with the onboard charger of the specific station; and, storing the amount of replenishing power in the DC form with the power storage system of the specific station.
6. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing each mobile computerized recharging station with an inverter, wherein the inverter is electrically connected to the power storage system, and wherein the inverter of at least one specific station is electrically coupled to an external power grid, and wherein the specific station is from the plurality of mobile computerized recharging stations; retrieving an amount of output power in a DC form from the power storage system of the specific station with the inverter of the specific station; converting the amount of output power from the DC form into a three-phase AC form with the inverter of the specific station; sending the amount of output power in the three-phase AC form from the inverter of the specific station to the external power grid; and, managing a financial transaction between the external power grid and the remote server, wherein the financial transaction is a compensation for selling the amount of output power back to external power grid.
7. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing each mobile computerized recharging station with an inverter, wherein the inverter is electrically connected to the power storage system; retrieving an amount of output power in a DC form from the power storage system of the best-match station with the inverter of the best-match station; converting the amount of output power from the DC form into a three-phase AC form with the inverter of the best-match station; and, sending the amount of output power in the three-phase AC form from the inverter of the best-match station to an off-grid device during step (H), wherein the off-grid device is associated to the arbitrary account.
8. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing each mobile computerized recharging station with a converter, wherein the converter is electrically connected to the power storage system; retrieving an amount of output power at a higher DC voltage from the power storage system of the best-match station with the converter of the best-match station; converting the amount of output power from the higher DC voltage into a lower DC voltage with the converter of the best-match station; and, sending the amount of output power at the lower DC voltage from the converter of the best-match station to an off-grid device during step (H), wherein the off-grid device is associated to the arbitrary account.
9. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: executing a plurality of iterations for steps (C) through (H), wherein the remote server tracks power demand data for each mobile computerized recharging station through the plurality of iterations; comparing the power demand data for each mobile computerized recharging station amongst each other with the remote server in order to identify at least one high-demand station and at least one low-demand station, wherein the high-demand station and the low-demand station are from the plurality of mobile computerized recharging stations; and, physically moving the low-demand station within a proximal location radius of the high-demand station, wherein the proximal location radius of the high-demand station is centered around the station location of the high-demand station.
10. The method of managing power for recharging electric vehicles, the method as claimed in claim 9, wherein the low-demand station is physically moved within the proximal location radius of the high-demand station by a user-driven vehicle or an autonomous vehicle.
11. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing at least one administrator account managed by the remote server, wherein the administrator account is associated with an administrator PC device; executing a plurality of iterations for steps (C) through (H), wherein the remote server tracks power demand data for each mobile computerized recharging station through the plurality of iterations; displaying the power demand data for each mobile computerized recharging station through the administrator PC device; prompting the administrator account to select a new location for at least one specific station with the administrator PC device, wherein the specific station is from the plurality of mobile computerized recharging stations; and, physically moving the specific station to the new location, if the new location for the specific station is selected by the administrator account.
12. The method of managing power for recharging electric vehicles, the method as claimed in claim 11, wherein the specific station is physically moved to the new location by a user-driven vehicle or an autonomous vehicle.
13. The method of managing power for recharging electric vehicles, the method as claimed in claim 1, wherein the low solar-energy generation station is physically moved to the ideal location for generating solar energy by a user-driven vehicle or an autonomous vehicle.
14. The method of managing power for recharging electric vehicles, the method as claimed in claim 1 comprises the steps of: providing at least one administrator account managed by the remote server, wherein the administrator account is associated with an administrator PC device; executing a plurality of iterations for steps (C) through (H), wherein the remote server tracks power demand data, revenue generation data, and solar-energy generation data for each mobile computerized recharging station through the plurality of iterations; compiling the station location, the power demand data, the revenue generation data, and the solar-energy generation data for each mobile computerized recharging station into a graphical summarization interface with the remote server; prompting the administrator account to view the graphical summarization interface with the administrator PC device; and, displaying the graphical summarization interface with the administrator PC device, if the graphical summarization interface is selected to be viewed by the administrator account.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAIL DESCRIPTIONS OF THE INVENTION
(18) All illustrations of the drawings are for the purpose of describing selected versions of the present invention and are not intended to limit the scope of the present invention.
(19) The present invention is a system and method of managing power for recharging electric vehicles. The present invention produces renewable electrical energy, stores electrical energy, and efficiently distributes electrical energy. The present invention allows facilitates the identification of the nearest charging station and ensures each station has a sufficient amount of electrical energy for an electric vehicle to be fully charged. Thus, the physical system used to implement the method for the present invention includes at least one remote server, a plurality of user personal computing (PC) devices, and a plurality of mobile computerized recharging stations, seen in
(20) The overall process for the method of the present invention, seen in
(21) In order to access the plurality of mobile computerized recharging stations of the present invention, at least one vehicle registration is provided for each user account, and each mobile computerized recharging station is provided with a scanning device, seen in
(22) As shown in
(23) Furthermore, for the preferred embodiment of the present invention, each mobile computerized recharging station is housed within a transportable enclosure, which is sized to fit inside a cargo van and/or is sized to fit inside a tractor trailer. The transportable enclosure protects the mobile computerized recharging station from conditions of the surrounding environment. The transportable enclosure also allows each mobile computerized recharging station to be easily and quickly transported from a less-frequented area to a high-demand area. The transportable enclosure may be transported with a van or truck that is able to securely and safely mobilize the mobile computerized recharging station.
(24) Each mobile computerized recharging station includes a power storage system that is preferably a modular lithium-ion based battery system. The power storage system as a modular lithium-ion based battery system is able to store and distribute sufficient power. The modular lithium-ion based battery storage system outputs approximately 350 volts-1000 volts in DC form.
(25) In order to harness power directly from the power grid, each mobile computerized recharging station is provided with an onboard charger, wherein the power storage system is electrically connected to the onboard charger, seen in
(26) As each mobile computerized recharging station is meant to be easily accessible by a plurality of user accounts for each of their vehicles, each mobile computerized recharging station is safely positioned outdoors. In order to utilize the direct exposure to the Sun, each mobile computerized recharging station is provided with a solar energy device, as seen in
(27) In order for the plurality of mobile computerized recharging stations to deliver excess power not harnessed by an off-grid device associated with a user account back to the external power grid, each mobile computerized recharging station is provided with an inverter, seen in
(28) Also, in order for off-grid devices that require power in AC form to receive power from the plurality of mobile computerized recharging stations, an amount of output power in DC form is retrieved from the power storage system of the best match station with the inverter of the best-match station. The output power is power stored within the power storage device that is harnessed by off-grid devices that receives power only in AC form. As seen in
(29) In order for the present invention to output a lower voltage, each mobile computerized recharging station is provided with a converter, seen in
(30) In order to accurately analyze the frequency of usage and amount of power harnessed by devices of the plurality of user accounts, a plurality of iterations is executed for Steps C through H, wherein the remote server tracks the power demand data for each mobile computerized recharging station through the plurality of iterations. This plurality of iterations executed for Steps C through H is seen in
(31) In order to manually determine an optimal location for each of the plurality of mobile computerized recharging stations, at least one administrator account that is managed by the remote server is provided for the present invention. The at least one administrator account manages and monitors the plurality of mobile computerized recharging stations and monitors for high-demand stations and low-demand stations. Similar to the plurality of user accounts, the administrator account is associated with an administrator PC device. As seen in
(32) As the preferred embodiment of the present invention includes a solar energy device which provides a supplemental energy source for each mobile computerized recharging station, location-based weather data is received with the remote server. Location-based weather data includes cloud cover, precipitation, wind speed, and a variety of other weather factors that may inhibit the solar energy device from receiving direct sunlight. As seen in
(33) As seen in
(34) Although the invention has been explained in relation to its preferred embodiment, it is to be understood that many other possible modifications and variations can be made without departing from the spirit and scope of the invention as hereinafter claimed.