MULTIFUNCTIONAL MOTORIZED BOX AND LANDING PAD FOR AUTOMATIC DRONE PACKAGE DELIVERY
20190367184 ยท 2019-12-05
Inventors
Cpc classification
B64F1/125
PERFORMING OPERATIONS; TRANSPORTING
A47G29/141
HUMAN NECESSITIES
B64U2101/60
PERFORMING OPERATIONS; TRANSPORTING
B65D81/18
PERFORMING OPERATIONS; TRANSPORTING
B64U70/90
PERFORMING OPERATIONS; TRANSPORTING
B64F1/362
PERFORMING OPERATIONS; TRANSPORTING
B64U2101/64
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
B64F1/007
PERFORMING OPERATIONS; TRANSPORTING
B64C39/024
PERFORMING OPERATIONS; TRANSPORTING
B64F1/222
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
B65D81/18
PERFORMING OPERATIONS; TRANSPORTING
A47G29/14
HUMAN NECESSITIES
G08G5/02
PHYSICS
B64F1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention consists of an actuated box and navigation aid for automatic delivery by unmanned vehicles (UAV) or drones. It also incorporates delivery information via the web linking orders, enclosure status, package specific drone homing signals, delivery confirmations and more. This system incorporates a novel and effective means for providing a standardized and predicable area for safe landing during delivery by functionalized drones. It also secures the package from theft, vandalism, animals and the weather and provides features necessary for air-traffic management.
Claims
1. A multifunctional box and landing pad network for monitoring an extended airspace, the multifunctional box and landing pad network comprising: a plurality of multifunctional box and landing pad configured for automatic package delivery using an unmanned aircraft vehicle, each one of the plurality of multifunctional box and landing pad being positioned in a specific spatial location and monitoring a corresponding local airspace, the sum of the local airspace of each one of the plurality of multifunctional box and landing pad defining the extended airspace, each one of the plurality of multifunctional box and landing pad comprising: a RF spectrum analyzer scanning a surrounding of the corresponding multifunctional box and landing pad to monitor a corresponding airspace thereof, the RF spectrum analyzer acquiring RF identifiers of identified unmanned aircraft vehicle and defining a RF power spectrum of the corresponding local airspace, the RF identifiers of identified unmanned aircraft vehicle and the RF power spectrum of the corresponding airspace defining RF spectrum data; and a data communication system at least periodically transmitting the RF spectrum data to a remote central processing unit over a network; wherein the remote central processing unit is configured to process the RF spectrum data from the plurality of multifunctional box and landing pad and to generate extended RF spectrum data of the extended airspace to perform air traffic regulation of the extended airspace in a centralized manner, based on the extended RF spectrum data.
2. The multifunctional box and landing pad network of claim 1, wherein the RF spectrum analyzer of each one of the plurality of multifunctional box and landing pad comprises a wide band RF spectrum scanner.
3. The multifunctional box and landing pad network of claim 1, wherein the RF spectrum analyzer of each one of the plurality of multifunctional box and landing pad is configured to acquire at least one of a standard ID of each identified unmanned aircraft vehicle and a RF power usage of each unidentified unmanned aircraft in the corresponding local airspace to define the RF spectrum data.
4. The multifunctional box and landing pad network of claim 3, wherein the data communication system of each one of the plurality of multifunctional box and landing pad is configured to continuously transmit the RF spectrum data to the remote central processing unit over the network.
5. The multifunctional box and landing pad network of claim 4, wherein the remote central processing unit is configured to acquire a signature of each identified unmanned aircraft vehicle and unidentified unmanned aircraft vehicle located in the extended airspace and determine the position of each unmanned aircraft vehicle by triangulation based on the extended RF spectrum data.
6. An air traffic regulation system of an extended airspace for unmanned aircraft vehicle, the air traffic regulation system comprising: a central processing unit; and a plurality of remote multifunctional box and landing pad configured for automatic package delivery using an unmanned aircraft vehicle each positioned in a specific spatial location associated to a local airspace, each multifunctional box and landing pad being in data communication with the central processing unit over a network and comprising; a RF spectrum analyzer scanning the local airspace to acquire RF spectrum data including RF identifiers of identified unmanned aircraft vehicle and defining a RF power spectrum of the local airspace; and a data communication system at least periodically transmitting the RF spectrum data to the central processing unit over the network; wherein the remote central processing unit is configured to process the RF spectrum data from the plurality of remote multifunctional box and landing pad and to generate extended RF spectrum data of the extended airspace to perform air traffic regulation of the extended airspace in a centralized manner, based on the extended RF spectrum data.
7. The air traffic regulation system of claim 6, wherein the RF spectrum analyzer of each one of the plurality of remote multifunctional box and landing pad comprises a wide band RF spectrum scanner.
8. The air traffic regulation system of claim 6, wherein the RF spectrum analyzer of each one of the plurality of remote multifunctional box and landing pad is configured to acquire at least one of a standard ID of each identified unmanned aircraft vehicle and a RF power usage of each unidentified unmanned aircraft in the corresponding local airspace to define the RF spectrum data.
9. The air traffic regulation system of claim 8, wherein the data communication system of each one of the plurality of remote multifunctional box and landing pad is configured to continuously transmit the RF spectrum data to the remote central processing unit over the network.
10. The air traffic regulation system of claim 9, wherein the remote central processing unit is configured to acquire a signature of each identified unmanned aircraft vehicle and unidentified unmanned aircraft vehicle located in the extended airspace and determine the position of each unmanned aircraft vehicle by triangulation based on the extended RF spectrum data.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Other objects, advantages and features will become more apparent upon reading the following non-restrictive description of embodiments thereof, given for the purpose of exemplification only, with reference to the accompanying drawings in which:
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION
[0028] In the following description, the same numerical references refer to similar elements. The embodiments, geometrical configurations, materials mentioned and/or dimensions shown in the figures or described in the present description are embodiments only, given solely for exemplification purposes.
[0029] Moreover, although the embodiments of the multifunctional motorized box and landing pad and corresponding parts thereof consist of certain geometrical configurations as explained and illustrated herein, not all of these components and geometries are essential and thus should not be taken in their restrictive sense. It is to be understood, as also apparent to a person skilled in the art, that other suitable components and cooperation thereinbetween, as well as other suitable geometrical configurations, may be used for the multifunctional motorized box and landing pad, as will be briefly explained herein and as can be easily inferred herefrom by a person skilled in the art. Moreover, it will be appreciated that positional descriptions such as above, below, left, right and the like should, unless otherwise indicated, be taken in the context of the figures and should not be considered limiting.
[0030] Referring to
[0031] Each one of the retractable flaps (110) has a landing pad surface (110a) and is pivotally connected to the box housing (12) at the top edge (16) thereof. In the closed configuration, the retractable flaps (110) define a protective cover (18) closing the enclosure (14) of the box housing (12), with the landing pad surface (110a) of each one of the retractable flaps (110) facing inwardly towards the enclosure (14). In the open configuration, the retractable flaps (110) define a landing pad (20) for the unmanned aircraft vehicle (or drone) (107), with the landing pad surface (110a) of each one of the retractable flaps (110) facing outwardly for receiving the drone (107) thereon. In an embodiment, the box (10) includes a weatherproof gasket (26) extending along the edges of the retractable flaps (110).
[0032] Prior to usage, the customer (100) first registers his system with delivery companies (104). The customer (100) can register his landing box (10) with its ID along and its GPS coordinates acquired via a cellular phone, a tablet or a computer (101) or via the embedded GPS receiver if equipped (106 & 122). The customer (100) can then connect the box (10) to a standard power source. The box (10) has posts for yard installation (see
[0033] The box (10) has retractable flaps (110) that serve a dual function of protective cover when closed (see
[0034] A motorized mechanism (111 & 118) is responsible of moving the flaps (110) from open to close state (or configuration) and is commanded by an embedded electronics or computer (to move the flaps (110) from the closed state of
[0035] In an embodiment, each flap (110), on the landing pad surface (110a), has one or many non-corrosive electrodes (116) that link safely to an in-drone battery charger. The drone (107) could use non-corrosive conductive landing gear to make contact. The spacing and placement between electrode groups is constructed in a manner that allows at least two different polarity/phase contacts for any drone landing position for a standardized landing pad distance. Electrodes can have many forms, dots, line mesh or continuous surfaces and may be spring loaded. Charge can be enabled upon drone request (CHARGES). Alternately charging may be via an inductive link.
[0036] The current limited source (128) can be DC or AC with two or more electrical phases for allowing in-drone charging. This allows charging even if only two electrodes make contact (116). If more than two make contact, the greater the current may be delivered by unit of time. The current limiter (128) may also incorporate a ground fault detector to prevent electric shock to users or bystanders.
[0037] Optionally, each landing gear of the drone (107) may have a coil, a magnet or a ferromagnetic material. In an embodiment, a coil or magnet is placed in various locations in the flap for allowing firm contact while charging and magnetically ties (117) the drone to the landing pad to prevent a fall from high winds or an impact. The magnetic tie down system can also be used by the drone upon landing and started upon its command by a drone message (TIE). Alternately mechanically actuated anchoring may be used.
[0038] In an embodiment, lights (109) are placed on the edges of the flaps (110) and/or in the box (10) and serve as an optical guide for the drone (107) to make the final landing approach, thus providing a final destination honing system allowing efficient night time operation with the drone camera. The final destination honing system is in communication with the drone (107) and is configured to assist in the landing and approach of the drone 107 towards the box (10). In an embodiment, the luminous indicators (109) are positioned on the landing pad surface of the retractable flaps (110). Optionally, some of these luminous indicators (109) may be placed inside the box (10) and their covering parts on the flaps (110) shall then be made transparent allowing light to flow out.
[0039] In an embodiment, the lights (109) may be pulsed by the controller (121) in a binary manner which allows for the drone (107) via simple optical sensor or camera use to capture the box's ID and status. Color changes may also be utilized as to enhance guidance or as communications. Non-visible light (infrared or UV) may also be used instead or in addition to visible light.
[0040] In an embodiment, depending on the system communication and availability, the box is able to exchange communication messages either directly by a RF transceiver (119 & 124) or by a wireless communication & internet (105, 126 & 127).
[0041] Complimentarily, in an embodiment, the box may have a RF transceiver (119) that can transmit a message stack (124) continuously in addition to a periodical ID and status. The status is used to assist the drone's (107) navigation while searching for the box (10) and making a landing approach. The said transceiver (119) may be composed of directional antennas to further enhance navigation.
[0042] In an embodiment, the box may also be fitted with a multiplicity of wireless transceivers (127) (RF, WiFi, cellular or other) that can exchange messages with the drone using internet, cellular or another common global network.
[0043] Referring to
[0044] In the case that the wrong key has been given to the box, a message is broadcasted along with visual light indications informing the drone (107) that the wrong box has been selected. This allows the drone (107) to move on to a different target.
[0045] Once the drone (107) has landed, the package (17) is deposited and the drone (107) clears the pad, the drone (107) sends a Done message to the box (10). The controller (121) then changes its status to CLOSING. When the flaps (110) close, the package (17) falls to the bottom or onto the previous package inside the box (10) (i.e. in the enclosure (14)). When completed, it broadcasts the delivery status in the NOTIFY state, then returns to the IDLE state.
[0046] Optionally and if authorized in user settings, the box (10) may accept an opening request and provide a recharge service to an in-transit drone that needs power, using the previous stated procedure but using a RF universal Emergency or Charge message pass key. Box ID & Drone ID & status are updated via the drone's communication link. Depending of the delivery system software configuration, the user may be credited for this event. Also, the user may deny this. In that situation, the box will reply a denied message following such a drone request.
[0047] The drone relays information to delivery company's central computing system (104) which informs both parties on the delivery status.
[0048] A level sensor detects (115) the current package level inside the box.
[0049] As previously mentioned, the box (10) can be linked to the internet via WiFi or other wireless means (105, 126 & 127). Access to the cloud allows real-time delivery tracking, system ID, status, box fill level and delivery tracking information. The system operates independently despite network connection being unavailable.
[0050] In an embodiment, a temperature sensor and optionally a humidity sensor (113) detects frost conditions and starts a periodic or programmed defrost heating cycle to prevent mechanical failure of the box opening system. In other words, the box includes a defrost mechanism performing a defrost cycle of at least a section of the box (10) upon detection of frost conditions by the temperature sensor and/or a humidity sensor (113).
[0051] In an embodiment, a temperature sensor (113) with a heating or cooling element (112) is also used to keep the interior of the box (10) (or the box enclosure 14) at a required temperature until the box is emptied.
[0052] In an embodiment, the required temperature and the control duration limit are sent by the delivery companies (104) via the drone (107) or the wireless communication (105) when delivering the package (17).
[0053] In an embodiment, the box has an electronic and/or mechanical key (114 & 123) allowing opening of the box (10) for package retrieval. All accesses made are logged by the device (125); more than one user may have access.
[0054] In an embodiment, mechanisms for the removal or melting of snow and dust (or snow/dust removal mechanism) (108) may be optionally integrated in the form of compressed air jet or heating elements integrated into the surface (i.e. into the retractable flaps to clean a surface thereof).
[0055] In an embodiment, the box may have a display for showing the user current package level and status.
[0056] In an embodiment, the RF drone's ID and RF power spectrum may serve to regulate air traffic in a centralized manner. The box could be equipped with wide band RF spectrum analyzer/scanner (119 & 120) that can report to aviation regulation agency (103) the RF power spectrum surrounding the box and also all standard drone ID and RF power data through a local WiFi or wireless connection (105, 126 & 127). The agency then has access to all boxes data from different spatial locations, thus allowing triangulations of both identified (by ID) and unidentified (by RF spectrum usage) drone signature and positions. This allows real-time monitoring and possible signature requests from an agency's command center. Also, real-time and historical positioning data that can be used by law enforcement in the case of an illegal usage of drones.
[0057] A more complete box behavior is depicted using the state diagrams in