Autonomous Delivery Platform
20190031075 ยท 2019-01-31
Assignee
Inventors
Cpc classification
G05D1/0225
PHYSICS
B25J11/00
PERFORMING OPERATIONS; TRANSPORTING
B60R9/065
PERFORMING OPERATIONS; TRANSPORTING
G06Q10/08
PHYSICS
B60P1/6481
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60P1/64
PERFORMING OPERATIONS; TRANSPORTING
G05B19/418
PHYSICS
Abstract
A package delivery platform which attaches to an autonomous vehicle comprising, a module containing controls and a manipulator arm with a hand capable of grasping a package and placing it in an enclosure at a delivery location, detachable container with a securable lid in which packages are carried, and a receptacle with an automated, securable lid which mounts near the roadway at a delivery location for receiving packages.
Claims
1: A package delivery platform which attaches to an autonomous vehicle comprising: a. A module containing controls and a manipulator arm with a hand capable of grasping a package and placing it in an enclosure at a delivery location. b. A detachable container with a securable lid in which packages are carried. c. A receptacle with an automated, securable lid which mounts near the roadway at a delivery location for receiving packages.
2: Platform of claim 1 wherein packages are carried in an container with a securable self opening lid.
3: The container of claim 1 wherein retractable legs are provided to allow the enclosure to stand at an appropriate level to be autonomously retrieved at a location without assistance.
4: The module of claim 1 wherein a mechanism is provided to allow autonomous attachment to the container of claim 1.
5: The module of claim 1 wherein a mechanism is provided to allow autonomous attachment a to a self driving vehicle.
6: The module of claim 1 wherein a computer contained within the module is programmed to: a. communicate with a central network to receive delivery location information and optimize delivery routing. b. control a manipulator arm to retrieve packages from the container of claim 1 and deposit them at the delivery location.
7: Receptacle of claim 1 wherein a securable lid is mechanically opened when it receives a radio or infrared signal from the approaching delivery vehicle.
8: Receptacle of claim 1 wherein the interior of the enclosure is fitted with grooves to store packages such that they can be retrieved by a robotic arm and transported to another delivery location.
9: The receptacle of claim 1 wherein one or more receptacles are mounted at a public location and shared by a group of users.
10: receptacle of claim 1 wherein an individual recipient is given temporary access to the enclosure either by alpha-numeric pin to be entered manually by keypad or by electronic code sent to a device carried by the recipient.
11: Method for arranging packages in a container so that they can be retrieved by a manipulator arm.
12: Method of claim 11 wherein items are placed in a disposable carton or reuseable container fitted with flanges or flat panels sized to fit in corresponding slots in the container of claim 1.
13: Method of claim 11 wherein container is divided into compartments of varying widths to accommodate packages of different sizes.
14: Method of claim 11 wherein a manipulator arm is fitted with a hand capable of grasping the flat panels to which the packages are mounted.
15: Method of claim 11 wherein reusable containers are identified with an optical or magnetic tag that can be assigned to a unique delivery location.
16: Method of claim 11 wherein tag of claim 15 can be read by an optical or magnetic scanner attached to the grasping hand of claim 1.
17: A method of delivering packages comprising the steps of: a. Directing a self driving vehicle to a location where arm modules of claim 1 are stored and attaching them autonomously to the vehicle. b. Directing the vehicle with attached arm module to a location where package carrying containers have been pre-loaded with goods for delivery. c. Autonomously connecting a loaded container to the vehicle. d. Directing the vehicle with loaded container to a plurality of delivery locations.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0013] Having thus described the invention in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
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[0026]
DETAILED DESCRIPTION OF INVENTION
[0027] Our invention contemplates the use of autonomous road vehicles coupled with a manipulator arm and package container to make deliveries of packages and other items to a plurality receptacles mounted at delivery locations.
[0028]
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[0030]
[0031]
[0032] Where the present supply chain sources inventory from distribution centers beyond the city center, the present invention could cultivate a more evenly dispersed distribution network. The role of brick and mortar stores could be augmented to act as distribution nodes serviced by delivery enabled self driving vehicles. These locations are already linked to a supply chain that brings bulk goods into population centers. Brick and mortar stores also have a labor force in place that could be tasked with loading containers for delivery.
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[0035] The autonomous storage of arm modules allows a fleet of vehicles to respond to varying demand for passenger transport and supplement the revenue generated by passenger service. A given vehicle could divide its time between passenger service and package delivery without significant hardware investment. The only modification needed to enable package delivery would be the attachment of the socket at the rear of the vehicle to accept tongue 15.
[0036] The ability of a vehicle fleet to switch between passenger service and package delivery also has the added benefit of decreasing the overall number of vehicles required to accomplish the two tasks combined. This smaller fleet would minimize fixed costs associated with the operation, maintenance and storage of a fleet. Also, by allowing the fleet to share a smaller number of arm modules rather than have a dedicated arm on each vehicle, the capital costs associated with deploying delivery hardware would be minimized.
[0037] Additionally, since the dual purpose passenger/package fleet would naturally shift from one task to the other with changes in demand, it would have the benefit of ameliorating traffic congestion. Delivery tasks would tend to be carried out at times when passenger demand was lower and not during rush hour times. Packages with a lower priority could be delivered at night or early morning when congestion is low. This would make delivery faster and correspondingly less expensive. A delivery enabled fleet using the streets during the night could travel much faster and thus make more deliveries.
[0038]
[0039]
[0040] Retractable legs 12 are operative to extend and retract mechanically to support package carrying enclosure 2 at an appropriate height to be coupled with arm module 3.
[0041] Referring again to
[0042] As shown in figures the autonomous road vehicle could be a small passenger vehicle modified to carry an arm module 3 and enclosure module 2. The vehicle could be equipped with a socket to accept the tongue 15. In another embodiment of the invention a larger self driving truck could be used in place of the passenger vehicle.
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[0044]
SUMMARY OF THE INVENTION
[0045] In one embodiment of the invention a package delivery platform which attaches to an autonomous vehicle is provided, comprising a module containing controls and a manipulator arm with a hand capable of grasping a package and placing it in an enclosure at a delivery location, a detachable enclosure with a securable lid in which packages are carried, and a securable enclosure placed permanently at a plurality of delivery locations.
[0046] Also in one embodiment the packages are carried in an enclosure with a securable self opening lid. Also in one embodiment retractable legs are provided to allow the enclosure to stand at an appropriate level to be autonomously retrieved at a location without assistance. Also in one embodiment a mechanism is provided to allow autonomous attachment to the enclosure. Also in one embodiment the manipulator arm can be fitted with attachments that allow it to perform maintenance tasks along the roadway. Also in one embodiment a mechanism is provided to allow autonomous attachment to the module.
[0047] Also in one embodiment, a mechanism is provided to allow autonomous attachment a to a self driving vehicle. Also in one embodiment a computer contained within the module is programmed to, a. communicate with a central network to receive delivery location information and optimize delivery routing, and b. control a manipulator arm to retrieve packages from the enclosure of claim 1 and deposit them at the delivery location. Also in one embodiment a securable lid is mechanically opened when it receives a radio or infrared signal from the approaching delivery vehicle. Also in one embodiment, the interior of the enclosure is fitted with grooves to store packages such that they can be retrieved by a robotic arm and transported to another delivery location. Also in one embodiment, one or more enclosures are mounted at a public location and shared by a group of users. Also in one embodiment, an individual recipient is given temporary access to the enclosure either by alpha-numeric pin to be entered manually by keypad or by electronic code sent to a device carried by the recipient.
[0048] In another aspect of the invention, a method for arranging packages in an enclosure is provided wherein they can be retrieved by a manipulator arm. In one embodiment of the method, items to be shipped are placed in a disposable carton or reuseable container fitted with flanges or flat panels sized to fit in corresponding slots in the enclosure. Also in one embodiment of the method, an enclosure is divided into compartments of varying widths to accommodate packages of different sizes. In another embodiment of the method, a manipulator arm is fitted with a hand capable of grasping the flat panels to which the packages are mounted.
PATENT CITATIONS
[0049]
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PATENT CLASSIFICATIONS
[0050] B65G1/0435
[0051] Storage devices mechanical using stacker cranes with pulling or pushing means on either stacking crane or stacking area
[0052] G06Q10/08
[0053] Logistics, e.g. warehousing, loading, distribution or shipping; Inventory or stock management, e.g. order filling, procurement or balancing against orders
[0054] G05D 1/02
[0055] Control of position or course in two dimensions