METHOD AND APPARATUS FOR AIRBORNE DISSEMINATION AND IMPLANTATION OF SEEDS
20190021236 ยท 2019-01-24
Inventors
Cpc classification
G05D1/0204
PHYSICS
B64U2201/10
PERFORMING OPERATIONS; TRANSPORTING
B64U2101/40
PERFORMING OPERATIONS; TRANSPORTING
A01G9/0291
HUMAN NECESSITIES
International classification
Abstract
This invention relates to a method and apparatus for the airborne dissemination and implantation of seeds utilizing an aerodynamic seed delivery apparatus with built-in nutrients, anti-pest, and anti-fungal properties that can be disseminated rapidly from an airborne platform. The velocity of impact and depth of penetration into specific soil types by the delivery apparatus can be controlled up to a terminal velocity kinetic energy by exploiting a specified drag coefficient, mass, and altitude of release. The seeds are delivered and imbedded into the soil at the optimal depth and orientation to maximize germination rates, since seed orientation has a pronounced effect on germination and sprout mortality rates. Flight paths for Unmanned Aerial Vehicles (UAVs) utilized for dissemination can be automated to adjust coordinates based on wind vectors, terrain elevation data, and soil permeability data to efficiently achieve a desired penetration depth across a specified geographic area.
Claims
1. A method to deliver and implant a seed comprising: a. a body of a predetermined material with a specified geometry, a specified diameter and a specified length, b. a head of said material with a specified geometry, a specified diameter, and a specified length, connected to said body, c. a tail of said material with a specified geometry, a specified diameter, and a specified length, connected to said body opposite of said head, d. a seed with a predetermined orientation relative to the central axis of the apparatus and orientation of said head, whereby said components together have a predetermined weight due to the volume and density of said seed and predetermined material, a predetermined cross-section due to said body predetermined geometry and specified diameter, and a predetermined drag coefficient due to the predetermined geometry and specified parameters of these components, in order to have a specified terminal velocity and soil penetration depth.
2. A method according to claim 1 further comprising: a. said head is comprised of a plurality of consecutive segments each connected to the next with a specified geometry, a specified diameter, and a specified length, with a terminal head segment being connected to said body, whereby said components together have a predetermined weight due to the volume and density of said seed and said material, and a predetermined drag coefficient due to the specified geometry and specified parameters of these components, in order to have a specified terminal velocity and soil penetration depth.
3. A method according to claim 1 further comprising: a. said tail is comprised of a plurality of consecutive segments each connected to the next with a specified geometry, a specified diameter, and a specified length, with a terminal tail segment being connected to said body, whereby said components together have a predetermined weight due to the volume and density of said seed and said material, and a predetermined drag coefficient due to the specified geometry and specified parameters of these components, in order to have a specified terminal velocity and soil penetration depth.
4. A method according to claim 1 further comprising: a. said material includes specified nutrient supplementation, whereby said components together improve agricultural yield by improved said seed germination survival rates.
5. A method according to claim 1 further comprising: a. external surface of said head, said body, and said tail is coated with a specified nutrient supplementation, whereby said components together improve agricultural yield by improved said seed germination survival rates.
6. A method according to claim 1 further comprising: a. said material includes specified antifungal supplementation, whereby said components together improve agricultural yield by improved said seed germination survival rates.
7. A method according to claim 1 further comprising: a. external surface of said head, said body, and said tail is coated with a specified antifungal supplementation, whereby said components together improve agricultural yield by improved said seed germination survival rates.
8. A method according to claim 1 further comprising: a. said material includes specified anti-pest supplementation, whereby said components together improve agricultural yield by improved said seed germination survival rates.
9. A method according to claim 1 further comprising: a. external surface of said head, said body, and said tail is coated with a specified anti-pest supplementation, whereby said components together improve agricultural yield by improved said seed germination survival rates.
10. A method to calculate a flight path of an Unmanned Aerial Vehicle (UAV) comprising: a. a delineated geographic area for the desired dissemination of seeds, b. a dissemination apparatus is on the UAV, c. said dissemination apparatus is configured to release a plurality of aerodynamic seed delivery apparatus, d. a predetermined rate of release of said dissemination apparatus is specified, e. a predetermined area of coverage for said dissemination apparatus is specified from a coordinate above said delineated geographic area, f. a means to enable and disable release of aerodynamic seed delivery apparatus from said dissemination apparatus, g. a specified depth of implantation desired for said aerodynamic seed delivery apparatus on said delineated geographic area, h. a specified penetrability of the target soil within said delineated geographic area, i. a specified density of seed distribution desired on said delineated geographic area, j. a specified drag coefficient of said aerodynamic seed delivery apparatus, k. a specified mass of said aerodynamic seed delivery apparatus, l. a specified cross-section of said aerodynamic seed delivery apparatus, whereby said flight path will span said delineated geographic area such that said aerodynamic seed delivery apparatus are released from an elevation above said target soil such that sufficient velocity is achieved to ensure said specified depth of implantation is achieved throughout the said geographic area at said density of seed distribution by utilizing said means to enable and disable release.
11. A method according to claim 10 further comprising: a. controlling, by at least one computing device of the UAV, a flight path of the UAV, b. a wind velocity, c. and adjusting, by the at least one computing device, the flight path of the UAV based on wind velocity, whereby said flight path will be adjusted to ensure said aerodynamic seed delivery apparatus are released at the correct coordinates within said delineated geographic area to achieve implantation throughout the said geographic area at said density of seed distribution.
12. A method according to claim 10 further comprising: a. controlling, by at least one computing device of the UAV, a flight path of the UAV, b. a digital terrain elevation data for said delineated geographic area, c. and adjusting, by the at least one computing device, the flight path of the UAV based on ground elevation data, whereby said flight path elevation will be adjusted to ensure said aerodynamic seed delivery apparatus are released at the correct elevations within said delineated geographic area to achieve implantation throughout the said geographic area at said density of seed distribution.
13. A method according to claim 10 further comprising: a. controlling, by at least one computing device of the UAV, a flight path of the UAV, b. a ground elevation sensor on the UAV, c. and adjusting, by the at least one computing device, the flight path of the UAV based on detected elevation data, whereby said flight path elevation will be adjusted to ensure said aerodynamic seed delivery apparatus are released at the correct elevations within said delineated geographic area to achieve implantation throughout the said geographic area at said density of seed distribution.
14. A method according to claim 10 further comprising: a. controlling, by at least one computing device of the UAV, a flight path of the UAV, b. a digital terrain penetrability data for said delineated geographic area, c. and adjusting, by the at least one computing device, the flight path of the UAV based on ground penetrability data, whereby said flight path elevation will be adjusted to ensure said aerodynamic seed delivery apparatus are released at the correct elevations within said delineated geographic area to achieve implantation throughout the said geographic area at said density of seed distribution.
Description
DRAWINGSFIGURES
[0041]
[0042]
[0043]
[0044]
[0045]
DETAILED DESCRIPTION
[0046]
[0047] Alternatively, the nutrients, fungicidal compounds, and/or pest repellants may be applied as a coating to the apparatus. The volume of the apparatus can be calculated using simple volumetric formulas for each of 1, 2, and 3, to include segments if compound.
[0048]
[0049]
[0050]
[0051]
DRAWINGSREFERENCE NUMERALS
[0052] 1 head [0053] 2 body [0054] 3 tail [0055] 4 first segment of head [0056] 5 second segment of head [0057] 6 first segment of tail [0058] 7 second segment of tail [0059] 8 seed [0060] 9 seedcoat [0061] 10 radicle [0062] 11 target area for dissemination and implantation [0063] 12 start of flight path [0064] 13 end of flight path [0065] 14 long track on flight path [0066] 15 short track on flight path
Operation
[0067] The operation for the airborne dissemination and implantation of seeds utilizing aerodynamic seed delivery apparatus includes the development and production of said apparatus configurations for the delivery of seeds of different genus and species, identifying specifications for the release of said apparatus for various soil penetrability in order to achieve optimal implantation depths, and the automation of efficient UAV flight paths for the efficient and effective dissemination of said apparatus across specified areas.
1. Once a genus and species is selected for dissemination, the specified seed width, length, mass, optimal germination orientation, and recommended implantation depth are utilized to identify an optimal simple or compound apparatus targeted for implantation to a soil of specified penetrability;
2. Media for the apparatus is identified, including a composition of materials that may include inert, nutrients, anti-fungal, and/or anti-pest components, and the density for this media is specified;
3. The dimensions and geometry for the head, body, and tail, utilizing the specified media density is determined providing a predetermined gross mass (m), drag coefficient (C), nose performance coefficient (N), cross-section (A), terminal velocity (v), and a minimum elevation above the ground required for said terminal velocity of the apparatus;
4. A form for the specified apparatus can be produced utilizing the apparatus dimensions;
5. Automated production of delivery apparatus utilizing said form, media, and seeds;
6. Apparatus may optionally be coated with nutrients, anti-fungal, and/or anti-pest components;
7. Said apparatus may be disseminated by any aerial vehicle including UAVs from specified altitudes as required for specified ground elevation and soil penetrability;
8. Flight paths for UAV may be optimized by identifying a series of parallel or contoured tracks of continuous elevation as required by terrain elevation and/or soil penetrability and completing segments of minimal altitude first to preclude unnecessary lifting of mass.
REFERENCES CITED
[0068]
TABLE-US-00001 U.S. PATENT DOCUMENTS 4,333,265 June 1982 Arnold, R. L. 47/74 4,620,871 November 1986 Toth, et al. 504/137 6,510,805 January 2003 Fima, et al. 111/100 6,516,565 February 2003 Fima, R. G. 47/74 6,832,604 December 2004 Thompson, P. 124/75 8,449,898 May 2013 Gregory, et al. 424/405 9,382,003 July 2016 Burema, et al. 1/1 9,504,250 November 2016 Ogawa, et al. 1/1 9,650,136 May 2017 Haskin, et. al. 1/1 9,676,481 June 2017 Buchmueller, D. 1/1 9,703,295 July 2017 Neal, et al. 1/1
Other Publications
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