Fertilizer Application System Using Multiple Longitudinal Distributors
20180343790 ยท 2018-12-06
Inventors
Cpc classification
A01C7/16
HUMAN NECESSITIES
International classification
Abstract
The present invention is directed to an applicator having an agricultural product mechanical conveying system which transfers particulate material metered into the mechanical conveying system from one or more source containers to the application equipment on demand, and meters the material at the application equipment. The mechanical conveying system employs longitudinal mechanical distributors that operate to move and mix the particulate material from one of the source containers or tanks along the mechanical distributor to a plenum. At the plenum the different types of particulate materials are further blended, such as within a particle injector, and delivered to the distribution nozzles for discharge from the applicator.
Claims
1. An agricultural product delivery system, comprising: at least one particulate material supply compartment; at least one particle delivery unit for applying particulate material from the at least one supply compartment; a mechanical conveying system providing a mixed and metered flow of particulate material from the at least one particulate material supply compartment to the at least one particle delivery unit; and a metering system connected between the at least one particulate supply compartment and the mechanical conveying system.
2. The agricultural product delivery system of claim 1 wherein the mechanical conveying system does not include a separate metering device.
3. The agricultural product delivery system of claim 1, wherein the mechanical conveying system includes one, or more augers,
4. The agricultural product delivery system of claim 3, wherein the mechanical conveying system includes at least two augers, the two augers flighted oppositely from one another.
5. The agricultural product delivery system of claim 4, wherein at least one of the augers includes a forward portion and a rearward portion, and wherein the forward portion and the rearward portion are flighted oppositely from one another.
6. The agricultural product delivery system of claim 3, wherein the at least one particulate material supply compartment is a plurality of supply compartments, and wherein the one or more augers are in communication with each of the plurality of supply compartments.
7. The agricultural product delivery system of claim 3, including a motor operably connected to the one or more augers to independently control the rotation of each of the one or more augers.
8. The agricultural product delivery system of claim 7, further comprising a gear mechanism interposed between the motor and the one or more augers.
9. The agricultural product delivery system, of claim 3, further comprising a housing disposed around each of the one or more augers and having an open end.
10. The agricultural product delivery system of claim 9, farther comprising a number of housings disposed around each of the one or more augers,
11. The agricultural product delivery system of claim 10, further comprising a number of delivery channels operably connected to the open end of each of the number of housings,
12. The agricultural product delivery system of claim 11, including at least one injector disposed between the open ends of the housings and the delivery channels.
13. A method of delivering a number of agricultural products from a number of compartment containing the number of products to a particle delivering unit applying the, particles in a field, comprising: supplying the number of agricultural products from the number of compartments to a mechanical conveying system; mixing the agricultural product in the mechanical conveying system to form a mixed product; conveying the mixed product to the particle delivering unit; metering the mixed product within the mechanical conveying system; and applying the mixed product in an agricultural field.
14. The method of claim 13, wherein the mechanical conveying system does not include a separate metering device.
15. The method of claim 13, wherein the step of metering the mixed product comprises altering the speed of rotation of the mechanical conveying system.
16. The method of claim 13 wherein the mechanical conveying system comprises a number of augers and wherein the step of metering the mixed product comprises altering the speed of one or more of the augers.
17. The method of claim 16 wherein the step of altering the speed of one or more of the augers comprises independently altering the speed of one or more of the augers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The drawings illustrate the best mode of practicing the present disclosure.
[0013] In the drawings:
[0014]
[0015]
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF THE DISCLOSURE
[0019] Referring now to the drawings, and more particularly to
[0020] Fertilizer applicator 10 is illustrative of the types of equipment for which, the mechanical conveying system 100 can be used; however, it should be understood that the mechanical conveying system 100 may, of course, be employed in conjunction with other agricultural equipment such as tillage, seeding or planting devices, and is useful in distributing particulate material other than fertilizer.
[0021] Looking now at
[0022] In the exemplary illustrated embodiment, the mechanical conveyors 102 take the form of one or more augers 104 that are disposed within one or more individual transport housing(s) 106 that encircle the auger(s) 104 along their length. The housing(s) 106 in exemplary embodiments can enclose one or multiple augers 104 and can generally conform to the shape of the augers 104 disposed for rotation therein. The housing(s) 106 are open at one end 107 in order to dispense the particulate material from the housings 106 for discharge through an adjacent portion of the booms 14, 16 or the rear nozzles 50-58. The housings 106 include apertures 108-114 located in alignment with each of the discharge mechanism(s) 101 for the compartments 64-70. The apertures 108414 enable particulate material from the compartments 64-70 to enter the housings 106 through the apertures 108-114 for movement by the augers 104 to the open ends 107 of each housing 106. In certain exemplary embodiments, the discharge mechanism(s) 101 for each auger 104 can extend the length of the tank 62, or can be formed of individual modules 103 (FIG, 5) disposed in alignment with the apertures 108-114 and operated by suitable operating mechanism such as electric motors 105 associated with each module 103 and controlled from the cab 60. In alternative embodiments the one or more conveyors 102 can be formed of other suitable mechanical conveyors 102, such as one Or more conveyor belts (not shown), among others, that are disposed within complementary shaped housings 106.
[0023] In the illustrated exemplary embodiment of
[0024] Looking now at the exemplary embodiment of
[0025] With reference now to
[0026] Further, the orientation of the augers 104 along with the particulate material A-D within the compartments 64-70, can block, any static pressure hum the fans 128 to avoid any product metering hesitation when using non-pressurized compartments 64-70 or tanks 62, further simplifying the construction of the system 100 while maintaining a constant feed of the particulate material A-D to the system 100.
[0027] Referring now to the exemplary embodiment illustrated in FIG, 5, the booms 14, 16 are disposed more centrally on the applicator 10, as opposed to at the front of the applicator 10, as in
[0028] However, the augers 104 disposed on opposite sides of the central auger 10 are formed with reverse fighting on a forward portion 138 to transport material from the front compartment(s) 64 in a rearward direction to the particle injector 126 and a rearward portion 140 having regular fighting to transport material from the rear compartments 66-70 in a forward direction to the particle injectors 126. As the fighting on the forward portion 138 and on the rearward portion 140 are opposed, as the motor 118 drives the gear mechanism 116 connected to the multiple augers 104, rotation of the forward portion 138 and the rearward portion 140 drives the particulate material from each of the compartments 64-70 towards the particle injector 126 for dispensing the particulate material via the booms 14, 16.
[0029] The configuration of the augers 104 enables the particulate material from each compartment 64-70 to be metered using one or both of the discharge mechanism on each compartment 64-70 and the rotational speed of the auger(s) 104. In this manner, the rate of dispensing the particulate material from the forward portions 134 and rear portions 136 of the booms 14, 16 can be varied simply by altering the rotational speed of the associated auger 104 to allow for sectional control and/or turning compensation without the need for any additional electrical and/or mechanical metering system or device. Further, the augers 104 effectively mix the particulate material from the various compartments prior to reaching the particle injector 126,127, which provides additional mixing to the particulate material prior to discharge from the nozzles 18-58.
[0030] Further, similarly to the embodiment of
[0031] While the mechanical conveying system 100 disclosed so far herein have been primarily with respect to mechanical fertilizer application equipment or applicator commonly referred to as a floater, it should be understood that the advantages from the mechanical conveying system 100 disclosed herein can be obtained on other types of equipment for applying particulate materials in a field. Planters of various types are known to include an applicator unit, such as a drill or seeder, and may, include an air cart having one or more bulk tanks carrying fertilizer and/or seeds to be planted. The mechanical conveying system 100 disclosed herein can be provided on the planter, and one or more inductor on the air cart. If the air cart is then used with a planter of a different type, or with another type of particle application equipment, adjustments to the mechanical conveying system 100 can be made without the need to adjust the inductor assembly on the air cart. Accordingly, switching from one crop to another crop or from one planter to another planter does not require major adjustment of the inductor assembly on the air cart.
[0032] In using a mechanical conveying system 100 as disclosed herein, a variety of materials can be applied by a variety of different implements. The particulate material to be applied is contained in one or more compartments. The particulate material or materials are supplied from the tanks to the mechanical conveying system 100 wherein the material or materials are conveyed to one or more particle injectors, while being intermixed with one another. At the particle injector the conveyed product or products are provided in a metered flow and transferred to one or more particle delivery unit, which can be a broadcast spreader, seeder for depositing seeds or other materials across the surface of soil, a row opener unit for depositing seeds or other material in rows, or the like.
[0033] Various other alternatives arc contemplated as being within the scope of the following claims particularly pointing out and distinctly claiming the subject matter regarded as the invention.