Recharging network for drones
10843819 ยท 2020-11-24
Assignee
Inventors
Cpc classification
B63B35/50
PERFORMING OPERATIONS; TRANSPORTING
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
Y02T10/72
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
B60L2240/72
PERFORMING OPERATIONS; TRANSPORTING
B64U50/19
PERFORMING OPERATIONS; TRANSPORTING
Y02T90/14
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
B60L50/60
PERFORMING OPERATIONS; TRANSPORTING
B64F1/362
PERFORMING OPERATIONS; TRANSPORTING
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
B64U2101/64
PERFORMING OPERATIONS; TRANSPORTING
B64C39/024
PERFORMING OPERATIONS; TRANSPORTING
B60L53/66
PERFORMING OPERATIONS; TRANSPORTING
B64U80/25
PERFORMING OPERATIONS; TRANSPORTING
B60L53/60
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
B64U50/30
PERFORMING OPERATIONS; TRANSPORTING
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
B63B35/50
PERFORMING OPERATIONS; TRANSPORTING
G05D1/00
PHYSICS
Abstract
A network is provided for recharging aerial drones during extended flight operations, without requiring a return to a centralized recharging station. Instead, autonomous recharging stations are provided which are self-sustained by using electricity from renewable energy sources located at the station. Operationally, a cone-shaped receptacle is mounted on the drone, and a cone-shaped probe is provided at the recharging station. The probe is connected with the renewable energy source. With this connection, an engagement for recharging the drone's battery is accomplished when the vertex of the probe is received through the open base of the receptacle to place an electrical connector on the probe in contact with the battery of the drone.
Claims
1. A network system for operating a battery-powered aerial drone in an operational area which comprises: an aerial drone having at least one rotor assembly and a battery for driving the rotor assembly; a hollow, cone-shaped receptacle having an open base and an open vertex, wherein the receptacle is mounted on the drone with its open vertex positioned to establish an access pathway to the battery through the open base of the cone-shaped receptacle; a cone-shaped probe having a vertex and a base, wherein the probe is located at a predetermined terrestrial site in the operational area and is vertically oriented at the site with its vertex above the base of the cone-shaped probe, and further wherein the probe includes an electrical connector positioned at the vertex of the probe; an electricity supply source linked with the electrical connector of the probe for recharging the battery of the drone when the probe is received into the receptacle on the drone to establish electrical contact between the supply source and the battery of the drone, wherein the probe and the electricity supply source are located together at the predetermined terrestrial site to establish an autonomous recharging station, and wherein the autonomous recharging station includes a transceiver for transmitting operational data to the base station; an anchor to stabilize the probe at the autonomous recharging station; a base station for controlling a flight operation of the drone; and a centralized Network Operating Center (NOC) for transmitting and receiving oversight information in real time, pertinent to drone operations within the network system, wherein the NOC is in communication with all recharging stations within the operational area, and is selectively connected with any drone and any base station inside/outside the operational area wherein the NOC maintains up-to-date/real time information on flight information from drones, to include operational state of health, weight, battery and flight endurance, and on the condition and availability of each autonomous recharging station in the operational area, together with operational data from the autonomous recharging station regarding the present recharging capacity of the electricity supply source and information concerning whether an aerial drone is currently being recharged.
2. The network system of claim 1 wherein the electricity supply source comprises: a solar panel including a plurality of photovoltaic cells; a wind turbine; and a storage battery for collecting excess electricity from the solar panel and the wind turbine.
3. The network system of claim 1, further comprising: a transceiver mounted on the aerial drone; a transceiver located at the base station for receiving flight information data from the aerial drone; and a controller located at the base station for using the flight information data to fly the aerial drone.
4. The network system of claim 1 wherein the NOC maintains a schedule for recharging stations in the operational area, wherein the schedule includes pre-planned charge and charging times together with available excess recharging capacity for each recharging station, wherein an elevation and a OPS location are established for each autonomous recharging station, and wherein the recharging station includes a plurality of probes mounted in an array for simultaneously accommodating a same plurality of aerial drones.
5. The network system of claim 1 wherein the operational area includes a body of water and the network system further comprises a platform positioned at a maritime site on the body of water, wherein the autonomous recharging station is established on the platform, and wherein the autonomous recharging station on the platform includes a transceiver for transmitting operational data to the base station.
6. The network system of claim 5 further comprising a means for stabilizing the platform at the maritime site, wherein the stabilizing means is selected from the group consisting of a tower, an anchor and a plurality of GPS controlled micro thrusters.
7. A network system for operating a battery-powered aerial drone which comprises: an aerial drone with a battery and a transceiver; a plurality of autonomous recharging stations wherein at least one autonomous recharging station is separately located at a predetermined terrestrial site and includes a probe installed at the site together with an electricity supply source and a transmitter, and with an anchor to stabilize the probe at the autonomous recharging, station, wherein the electricity supply source is linked with an electrical connector on the probe to establish electrical contact between the electricity supply source and the battery of the drone when the probe is engaged with the drone, to recharge the battery of the drone; a base station with a controller having a transceiver for receiving flight information from the aerial drone and operational information from the autonomous recharging station, wherein the flight information data is used for flying the aerial drone, and the operational data includes information regarding the present recharging capacity of the electricity supply source and information concerning whether another aerial drone is currently being recharged; and a Network Operating Center (NOC) for transmitting and receiving oversight information in real time, pertinent to drone operations within the network system, wherein the NOC is connected in communication with the aerial drone, wherein the NOC is also in communication with all recharging stations within the operational area, and is selectively connected with any drone and any base station inside/outside the operational area to provide overall control of the network system, and wherein the NOC maintains up-to-date/real time information on flight information from drones, to include operational state of health, weight, battery and flight endurance, and on the condition and availability of each autonomous recharging station in the operational area, together with operational data from the autonomous recharging station regarding the present recharging capacity of the electricity supply source and information concerning whether an aerial drone is currently being recharged.
8. The network system of claim 7 further comprising: a hollow, cone-shaped receptacle having an open base and an open vertex, wherein the receptacle is mounted on the drone with its open vertex positioned to establish an access pathway to the battery through the open base of the cone-shaped receptacle; and a cone-shaped probe wherein the vertex of the probe is above its base when the probe is vertically oriented at the site, and further wherein the probe includes an electrical connector positioned at its vertex to establish electrical contact between the electricity supply source and the battery of the drone when the probe is engaged with the receptacle of the drone.
9. The network system of claim 7 wherein the electricity supply source is selected from the group consisting of a solar panel and a wind turbine and wherein each autonomous recharging station is identified with an elevation and a GPS location.
10. The network system of claim 7 further comprising an array having a plurality of active probes and at least one dummy probe, wherein the active probes are positioned in the array for simultaneously recharging a same plurality of aerial drones, and the at least one dummy probe is positioned to provide a waiting point for a drone in queue for recharging.
11. The network system of claim 7 further comprising; a platform positioned at a maritime site; and an autonomous recharging station established on the platform, wherein the autonomous recharging station includes a transceiver for transmitting operational data to the base station.
12. A method for installing a network system to operate a battery-powered aerial drone which comprises the steps of: establishing a base station which includes a transceiver for receiving flight information data from the aerial drone, and a controller for using the flight information data to fly the aerial drone; locating at least one autonomous recharging station at a preselected terrestrial site, wherein the recharging station includes a probe, a self-sustaining electricity supply source and a transmitter, wherein the probe is linked with the electricity supply source to recharge the battery of the drone when the drone is engaged with the probe, and wherein the transmitter is used for transmitting operational data to the base station regarding the present recharging capacity of the electricity supply source at the recharging station and whether another drone is currently being recharged at the recharging station; and providing a Network Operating Center (NOC) for transmitting and receiving oversight information in real time, pertinent to drone operations within the network system, to include operational state of health, weight, battery and flight endurance, and wherein the NOC is in communication with all recharging stations within the operational area, and is selectively connected with any drone via a recharging station, and any base station inside/outside the operational area, and the NOC maintains up-to-date/real time information on the condition and availability of each autonomous recharging station in the operational area, together with operational data from the autonomous recharging station, regarding the present recharging capacity of the electricity supply source and information concerning whether an aerial drone is currently being recharged.
13. The method of claim 12 wherein the drone includes a hollow, cone-shaped receptacle to establish an access pathway to the battery, and wherein the probe is cone-shaped for engagement with the receptacle to recharge the battery of the drone when the cone-shaped receptacle on the drone is engaged with the cone-shaped probe.
14. The method of claim 12 wherein the electricity supply source is selected from the group consisting of a solar panel and a wind turbine.
15. The method of claim 12 further comprising the steps of: identifying each autonomous recharging station with an elevation and a GPS location; and providing an array having a plurality of probes mounted in the array for simultaneously accommodating a same plurality of aerial drones.
16. The method of claim 12 further comprising the steps of: positioning a platform at a maritime site on a body of water; and erecting an autonomous recharging station on the platform, wherein the autonomous recharging station includes a transceiver for transmitting operational data to the base station.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The novel features of this invention, as well as the invention itself, both as to its structure and its operation, will be best understood from the accompanying drawings, taken in conjunction with the accompanying description, in which similar reference characters refer to similar parts, and in which:
(2)
(3)
(4)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5) Referring initially to
(6) With reference to
(7) As shown in
(8) Still referring to
(9) Structurally, the probe 28 includes an electrical connector 30 which is positioned at the vertex of the probe 28. Further, the recharging station 14 includes an electricity supply source 34 which is linked with the electrical connector 30 of the probe 28 for recharging the battery 18 of the drone 12 when the probe 28 is received into the receptacle 26 on the drone 12. Preferably, the electricity supply source 34 will be a renewable source of energy, such as a solar array or a wind turbine. In any case, the electricity supply source 34 is envisioned as being self-sustaining so the recharging station 14 will be essentially autonomous.
(10) It is also shown in
(11) As mentioned above, the network 10 of the present invention includes at least one base station 16. For the present invention, the base station 16 will include a controller 36 and a transceiver 38. In particular, for an operation of the network 10, the transceiver 38 at the base station 16 will be in communication with the transceiver 20 on the aerial drone 12, and with the transmitter 32 at each recharging station 14. More specifically, the transceiver 36 which is located at the base station 16 will receive flight information data from the aerial drone 12 that includes the information and data necessary to fly the drone 12 (e.g. air speed, altitude, heading and remaining battery charge). The transceiver 38 will also receive operational information from each recharging station 14. In particular, this operational information will include information regarding the present recharging capacity of the electricity supply source 34, and information concerning whether another aerial drone 14 is currently being recharged at the recharging station 14. With this in mind, it is also to be appreciated that prior to an operational mission, the base station 16 will be provided with information regarding the elevation and GPS location for each autonomous recharging station 14 within the operational area 40 of the drone 12 (see
(12) In addition to the components for the network 10 disclosed above, the present invention also envisions other ancillary considerations. For one, an anchor (not shown) may be needed to stabilize the probe 28 at the autonomous recharging station 14. For another, it is also envisioned that the recharging station 14 can include a plurality of probes 28, which will be mounted in an array for simultaneously accommodating a same plurality of aerial drones 12 during a recharging operation. Additionally, the recharging station 14 will be protected by appropriate security measures that provide electronic/audio warnings when equipment at the recharging station 14 is being vandalized or tampered with.
(13) In an operation of the network 10, a base station 16 is established at any convenient location where it will be able to control the flight mission of a drone 12. As envisioned for the present invention, the mission will be pre-planned and it will be confined within a predetermined operational area 40. Specifically, the operational area 40 will be determined by the locations of various drop-off points 42a-c where cargo deliveries are scheduled. For example,
(14) For the exemplary mission mentioned above, an aerial drone 12 is loaded with cargo. Preferably, this will be done at the base station 16 but loading could be conducted elsewhere. In any event, the drone 12 then departs base station 16 and flies to the first drop-off point 42a where cargo can be removed from the drone 12 and/or it can be loaded with previously-approved, additional cargo. The drone 12 then flies on to a second drop-off point 42b where it again delivers and/or takes on cargo. In this example, after leaving drop-off point 42b the controller 36 at base station 16 is notified that the charge on battery 18 of drone 12 is low and requires recharging. Accordingly, drone 12 is landed at the recharging station 14c.
(15) At the recharging station 14c, using guidance and control techniques well known in the pertinent art, the drone 12 is brought to a hover over the probe 28 at recharging station 14c. The drone 12 is then lowered onto the probe 28 as the cone-shaped probe 28 is received into the cone-shaped receptacle 26 of the drone 12. When the drone 12 has settled onto the probe 28, the electrical connector 30 on the probe 28 makes contact with the battery 18 of drone 12. Once the battery 18 has been recharged, drone 12 rises to a hover over the probe 28 and takes off to complete its mission along the flight path 44. As shown for the exemplary mission, drone 12 makes an additional stop at the drop-off point 42c before returning to the base station 16. The drone 12 can then be reloaded and sent on another mission.
(16) An added feature for the present invention is the incorporation of a Network Operating Center (NOC) 46. In overview, the NOC 46 is incorporated to establish communication with all of the recharging stations 14 (a-d), with the base station 16 and with any drone 12 within the operational area 40. Also, the NOC 46 can be selectively connected with a drone 12 from outside the operational area 40. The NOC 46 can also be connected with other base stations 16 in other operational areas (not shown).
(17) In its operation, the NOC 46 maintains up-to-date/real time information on the condition and availability of each autonomous recharging station 14 in the operational area 40. It also maintains operational data from the autonomous recharging stations 14 regarding the present recharging capacity of its electricity supply source 34, and information concerning whether an aerial drone(s) 12 is (are) currently being recharged at a particular recharging station 14. Further, the NOC 46 maintains a schedule for each recharging station 14 in the operational area 40. Specifically, the schedule will include pre-planned charge and charging times at the respective recharging station 14, together with its available, excess recharging capacity.
(18) The schematic presentation of the communication connections used in an operation of the network 10 for the present invention, shown in
(19) Still referring to
(20) On the other hand, a drone 12 that is being operated by a separate base station 16, but which is riot in direct communication with the recharging station 14c, will also be able to obtain this same information. In particular, the drone 12 can receive information about the recharging station 14c from its base station 16, if the base station 16 is in contact with the NOC 46, Otherwise, if it is not in contact with its base station 16, the drone 12 can receive the information directly from the NOC 46.
(21) In any event, the purpose of the NOC 46 is to serve as a point of information for the operation of recharging stations 14 within one or more areas of operation 40. For this purpose, the NOC 46 maintains information about the availability and capacity of each recharging station 14. On the other hand, the NOC 46 also maintains contact with each drone 12 or 12 regarding its whereabouts, operational state of health, temperature, weight, battery condition and flight endurance. Stated differently, the NOC 46 is provided to consolidate this information in order to simultaneously monitor the overall operation of drones 12 and recharging stations 14 in one or more areas of operation 40.
(22) As shown in
(23) While the particular Recharging Network for Drones as herein shown and disclosed in detail is fully capable of obtaining the objects and providing the advantages herein before stated, it is to be understood that it is merely illustrative of the presently preferred embodiments of the invention and that no limitations are intended to the details of construction or design herein shown other than as described in the appended claims.