Airborne material spreading assembly and method for spreading material
11027294 · 2021-06-08
Assignee
Inventors
Cpc classification
B05B12/08
PERFORMING OPERATIONS; TRANSPORTING
B64D1/16
PERFORMING OPERATIONS; TRANSPORTING
B05B3/16
PERFORMING OPERATIONS; TRANSPORTING
B64U2101/00
PERFORMING OPERATIONS; TRANSPORTING
B64C39/024
PERFORMING OPERATIONS; TRANSPORTING
B05B12/087
PERFORMING OPERATIONS; TRANSPORTING
B05B7/1404
PERFORMING OPERATIONS; TRANSPORTING
B05B13/005
PERFORMING OPERATIONS; TRANSPORTING
B64U2101/60
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B7/14
PERFORMING OPERATIONS; TRANSPORTING
B05B3/16
PERFORMING OPERATIONS; TRANSPORTING
B05B12/08
PERFORMING OPERATIONS; TRANSPORTING
B05B3/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A spreading assembly is provided. The spreading assembly comprises a spreadable material container, a spreading mechanism, and a motor. The spreading mechanism is rotatably mounted to a bottom section of the material container and can disperse the spreadable material 360° around the spreading assembly. The motor is operatively connected to the spreading mechanism to engage same in rotation. The spreading assembly comprises a coupling assembly to engage the spreading assembly with an unmanned aerial vehicle (UAV) configured to transport the spreading assembly while it operates.
Claims
1. A spreading assembly for dispersing spreadable material, the spreading assembly comprising: a spreadable material container defining a container interior volume and having at least one material outlet opening in material communication with the container interior volume and through which the spreadable material contained in the container interior volume can exit; a spreading mechanism rotatably mounted to the spreading container and including a dispersion tube having at least a section extending outwardly of the spreadable material container, the dispersion tube having at least one inlet aperture being in material communication with the container interior volume to allow a flow of the spreadable material between the container interior volume and the dispersion tube, the dispersion tube having at least one outlet aperture through which the spreadable material can exit the dispersion tube and be dispersed in an area surrounding the spreading assembly and an inner channel in material communication with the at least one material outlet opening; and a motor operatively connected to the dispersion tube of the spreading mechanism to engage the dispersion tube in rotation; and wherein the inner channel of the dispersion tube is configured to retain the spreadable material therein when the spreading mechanism is not engaged in rotation.
2. The spreading assembly according to claim 1, wherein the spreadable material container comprises a coupling assembly engageable with an unmanned aerial vehicle (“UAV”).
3. The spreading assembly according to claim 2, wherein the coupling assembly comprises a spreader attachment secured to the spreading assembly, a UAV attachment secured to the UAV and an attachment coupler connecting the UAV attachment and the spreader attachment together and defining at least one pivot axis between the UAV attachment and the spreader attachment in order to maintain the spreading assembly in a substantially upright position.
4. The spreading assembly according to claim 2, wherein the spreadable material container comprises a lid having at least one inlet opening through which the spreadable material can be fed into the container interior volume, and wherein the coupling assembly is connected to the lid.
5. The spreading assembly according to claim 1, wherein the at least one material outlet opening is defined in a bottom portion of the spreadable material container.
6. The spreading assembly according to claim 5, wherein the bottom portion of the spreadable material container is tapered inwardly to direct the spreadable material towards the at least one material outlet opening.
7. The spreading assembly according to claim 1, wherein the spreading mechanism is rotatable about 360 degrees to spread the spreadable material in an area surrounding the spreading assembly.
8. The spreading assembly according to claim 1, wherein the at least one outlet aperture comprises two outlet apertures disposed at opposite ends of the dispersion tube.
9. The spreading assembly according to claim 8, wherein a distance between a nadir of the dispersion tube and one of the outlet apertures is between about 3 cm and about 100 cm.
10. The spreading assembly according to claim 1, wherein the dispersion tube is V-shaped.
11. The spreading assembly according to claim 10, wherein the V-shaped dispersion tube defines an inner angle between about 60 degrees and about 179 degrees.
12. The spreading assembly according to claim 11, further comprising a shaft operatively connected to the motor, the shaft extending within the container interior volume and being operatively connected to the dispersion tube at a nadir thereof.
13. The spreading assembly according to claim 12, wherein a lower section of the shaft extends through the material outlet opening with a diameter of a section of the shaft extending through the material outlet opening being smaller than a diameter of the material outlet opening to allow the spreadable material contained in the container interior volume to exit through the material outlet opening and flow into the dispersion tube.
14. The spreading assembly according to claim 13, further comprising a flow adjustment mechanism adapted to control the rate at which the spreadable material exits the container interior volume and flows into the dispersion tube.
15. The spreading assembly according to claim 14, wherein the lower section of the shaft is threaded, and wherein the flow adjustment mechanism comprises a set screw operatively engaged with the dispersion tube and extending within the lower section of the shaft to selectively displace the dispersion tube with respect to the spreadable material container by rotation thereof.
16. The spreading assembly according to claim 12, wherein the motor and shaft comprise a protective shell secured to the spreadable material container and extending through the container interior volume, the protective shell surrounding and isolating a bottom portion of the motor and a section of the shaft from the spreadable material contained in the container interior volume.
17. The spreading assembly according to claim 16, wherein the protective shell comprises at least one shell opening defined in a lower section thereof to allow the spreadable material contained in the container interior volume to flow therethrough and into the material outlet opening of the spreadable material container.
18. The spreading assembly according to claim 16, wherein the shaft comprises at least one shaft stabilizer mounted within the protective shell, along the shaft, to stabilize movements of the shaft, the at least one shaft stabilizer comprising at least one bearing surrounding the shaft and contacting the protective shell.
19. The spreading assembly according to claim 1, wherein the inner channel of the dispersion tube has a diameter between about 1 cm and about 20 cm.
20. The spreading assembly according to claim 1, further comprising a control assembly operatively connected to the motor to control same and the control assembly comprises an electronic speed controller (ESC) operatively connected to the motor for controlling same, and a power source operatively connected to the ESC to supply power thereto and being in data communication with a command transceiver to receive a control signal therefrom.
21. An unmanned aerial vehicle (“UAV”) for dispersing a spreadable material over a field, the UAV comprising the spreading assembly according to claim 1, and wherein the UAV comprises a UAV controller operatively connected thereto to control same.
22. A method for spreading spreadable material in an area, the method comprising the steps of: providing a spreading assembly according to claim 1; coupling the spreading assembly to an unmanned aerial vehicle (“UAV”); and remotely controlling the UAV and the spreading assembly via remote control to spread the spreadable material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(14) It should be understood that the elements of the drawings are not necessarily depicted to scale, since emphasis is placed upon clearly illustrating the elements and structures of the present embodiments. In the following description, the same numerical references refer to similar elements. Furthermore, for the sake of simplicity and clarity, namely so as to not unduly burden the figures with several references numbers, not all figures contain references to all the components and features, and references to some components and features may be found in only one figure, and components and features of the present disclosure which are illustrated in other figures can be easily inferred therefrom. The embodiments, geometrical configurations, materials mentioned and/or dimensions shown in the figures are optional, and are given for exemplification purposes only.
(15) As will be explained below in relation to various embodiments, a spreading assembly for dispersing spreadable material, such as and without being limitative particulate material, is provided. The spreading assembly includes a spreadable material container engageable to an unmanned aerial vehicle, or “UAV”, so as to allow the spreading assembly to be operated remotely and in the air. Furthermore, the spreading assembly also includes a spreading mechanism rotatably mounted to the spreadable material container to effectively spread spreadable material (e.g., particulate material) in an area surrounding the spreading assembly using centrifugal forces. Finally, the spreading assembly includes a motor operatively connected to the spreading mechanism in order to engage the spreading mechanism in rotation.
(16) In the embodiments described below, the spreading assembly is adapted to contain and spread a particulate material in a surrounding area. However, it is appreciated that it can be used to spread other spreadable material including, and without being limited to, liquids and/or slurries. It should be understood that the expression “particulate” refers to the characteristic of something being substantially small in size and is intended to include any material in the form of, or including, discrete particles. As such, in this context, “particulate material” can refer to material in the form of minute separable particles.
(17) Referring broadly to
(18) Referring more specifically to
(19) Now referring to
(20) In some embodiments, the container 200 can be generally cylindrical in shape and can have a diameter ranging between about 10 cm and about 50 cm. However, it is appreciated that, in other embodiments, the container 200 can have any suitable shape and size adapted to cooperate with the UAV model that the spreading assembly 100 is to be coupled with.
(21) Moreover, the main body 210, the lid 220 and/or the bottom portion 230 can be made from any suitable material. More particularly, the container components can be made from non-corrosive material, such as and without being limitative, plastics or carbon fiber, which can be molded into the required shape and size. Alternatively, the container components can be made from non-corrosive metals, such as stainless steel, or light metals such as aluminium. However, a person skilled in the art will appreciate that any other suitable material and/or method can be used to shape the different components of the container 200. In the present embodiment, the peripheral wall of the main body 210 is made from a clear material to allow the content of the interior volume 240 to be visible from the outside. The clear material allows the user to notice or anticipate when additional spreadable material will need to be added. However, the main body 210 can alternatively be made from non-clear material, such as the aforementioned carbon fiber, as it can be suitable when combining the spreading assembly 100 with certain types of UAVs.
(22) Still referring to
(23) In some embodiments, the container 200 can be provided with inlet openings 260 to allow spreadable material to be fed into the interior volume 240 without having to disassemble the lid 220 from the main body 210. In this embodiment, the inlet openings 260 can be provided on the lid 220, but can be provided at any suitable location on the container 200, such as on the main body 210 for example. It should be understood that any suitable amount of inlet openings 260 can be provided on the container 200 (e.g., on the lid 220) to allow spreadable material to be fed/added within the container interior volume 240. However, it should be apparent that the container 200 can be free of inlet openings 260, thus requiring that the lid 220 be removed to add spreadable material within the container interior volume 240. In some embodiments, the inlet openings 260 can include inlet opening caps (not shown) adapted to prevent other substances, such as debris picked up by the wind or rain for example, from involuntarily entering the interior volume 240.
(24) Referring to
(25) Now referring to
(26) It should be noted that the dispersion tube arms 320 define an inner angle therebetween which can range between about 60 degrees and about 179 degrees. Additionally, the dispersion tube arms 320 can have a length ranging between about 3 cm and about 60 cm measured from the nadir 318 of the dispersion tube 310 to one of the outlet apertures 316. Moreover, the inner channel 314 can have a diameter ranging between about 1 cm and about 20 cm to accommodate different sizes and amount of spreadable material. However, it is appreciated that the dispersion tube arms 320 can have any suitable length or position, and that the inner channel 314 can have any suitable diameter to allow a flow of spreadable material therethrough.
(27) It should be understood that rotatably connecting the spreading mechanism 300 to the bottom portion 230 of the container 200 allows the dispersion tube 310 to rotate 360° about the outlet 250, therefore dispersing spreadable material in the area surrounding the spreading assembly 100. Furthermore, the V-shaped configuration of the dispersion tube 310 enables the spreading mechanism 300 to retain the spreadable material within the inner channel 314 while not engaged in rotation. More specifically, when the spreading mechanism 300 is not operated, the spreadable material can still exit the container interior volume 240, but accumulates around the nadir 318 within the inner channel 314 instead of being spread.
(28) Still referring to
(29) In some embodiments, the shaft 420 is operatively connected to the motor 400 at a top end thereof, and is connected to the dispersion tube 310 at a bottom end, as described above. More specifically, the dispersion tube 310 can include a shaft receiving sleeve 322 extending within the inner channel 314 opposite the nadir 318, and the bottom end of the shaft 420 can be connected to the shaft receiving sleeve 322, protruding inwardly into the inner channel 314, as illustrated in
(30) In some embodiments, the motor 400 and shaft 420 can be provided with a protective shell 430 extending through the container interior volume 240, and being adapted to surround, support, isolate and thus protect the motor 400 and shaft 420 from the spreadable material contained within the container interior volume 240. In this embodiment, the protective shell 430 has two opposite ends respectively secured to the lid 220 and outlet 250. The protective shell 430 is provided with at least one material flow opening 432 defined in a lower section thereof to allow the spreadable material to exit the interior volume 240. In this embodiment, the shaft 420 can be further provided with bushings 440 disposed along a length thereof to minimize vibrations and unwanted movements, and to prevent buckling. In the illustrated embodiment, the shaft 420 is provided with two bushings 440 spaced-apart along the section of the shaft 420 extending through the container interior volume 240. It should be understood that each bushing 440 is positioned between the shaft and protective shell to substantially form a seal within the protective shell 430, effectively protecting the shaft 420. The bushings 440 can be further adapted to protect the motor 400 by preventing any spreadable material that would have entered the protective shell 430 from contacting a bottom portion of the motor 400. Moreover, the bushings 440 can be provided with at least one bearing assembly 442 so as to not impede the rotation of the shaft 420 within the protective shell 430. In this embodiment, each bushing is provided with a pair of bearing assemblies 442 extending between the shaft 420 and protective shell 430. However, it is appreciated that the spreading assembly 100 can be operated without the bushings 440, or that the spreading assembly 100 can be provided with any suitable number of bushings 440, such as one or more than two.
(31) Now referring to
(32) In an alternative embodiment (not shown), the protective shell 430 can also be displaced vertically with respect to the dispersion tube 310 to modify the size of the transitional section 330 and thereby control the spreadable material flow into the inner channel 314.
(33) In some embodiments, the flow adjustment mechanism 350 includes a set screw 352, operatively connected to the dispersion tube 310, and cooperating with the lower section of the shaft 422. More specifically, the bottom end of the shaft 420 can be threaded to allow the set screw 352 to effectively be screwed therein, thus adjusting the transitional section 330. As seen in
(34) In an alternative embodiment, the flow adjustment can vary from the embodiment described above in reference to the accompanying figures.
(35) With reference to
(36) Referring more specifically to
(37) Now referring to
(38) In addition, the UAV can also be provided with a mean to allow the user to remotely control said UAV such as a UAV controller. In a possible embodiment, the control assembly 450 and the UAV controller can share the same command transceiver 454 or “receiver” and can therefore be operated by a single remote control. Alternatively, the control assembly 450 can be operated by a first remote control and the UAV controller can be operated by a second remote control.
(39) Referring back to
(40) While the invention has been described in conjunction with the exemplary embodiment described above, many equivalent modifications and variations will be apparent to those skilled in the art when given this disclosure. Accordingly, the exemplary embodiment set forth above is considered to be illustrative and not limiting. The scope of the claims should not be limited by the embodiment set forth in this disclosure, but should be given the broadest interpretation consistent with the description as a whole.