Horizontal Product Distribution System Using Static Baffles In A Distributor
20190022608 ยท 2019-01-24
Inventors
Cpc classification
A01C21/002
HUMAN NECESSITIES
A01C7/082
HUMAN NECESSITIES
B01F25/43197
PERFORMING OPERATIONS; TRANSPORTING
B01F25/4311
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention is directed to an applicator having an agricultural product mechanical and/or pneumatic conveying system which transfers particulate material from one or more source containers to application equipment on demand, and meters the material at the application equipment. The conveying system includes a static distributor interconnecting the supply lines of the conveying system with the distribution lines connected to the individual nozzles. The static distributor includes internal structures that effectively divert the incoming particulate material evenly across the interior of the static distributor such that the particulate material is evenly distributed into each of the distribution lines. The static distributor accomplishes this without the need for any moving parts or control systems/devices. In addition, damage done to the particulate material flowing through the distributor is not high, and the operation of the distributor creates a lower pressure drop across the distributor than prior art vertical distributors.
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 supply compartment; a conveying system providing a flow of particulate material from the at least one particulate material supply compartment along at least one supply line to the at least one particle delivery unit; and at least one static distributor connected between the at least one supply line and the at least one particulate delivery unit, wherein the static distributor does not include any moving parts.
2. The agricultural product delivery system of claim 1, wherein the at least one static distributor comprises: a housing having an inlet and a number of outlets spaced from the inlet and defining a flow channel therebetween with a central axis through the housing; and a number of baffles disposed within the housing at angles with respect to the central axis of the housing.
3. The agricultural product delivery system of claim 2, wherein the baffles are adjustable with respect to the housing.
4. The agricultural product delivery system of claim 2, wherein the baffles extend across an interior of the housing.
5. The agricultural product delivery system of claim 2, wherein the baffles comprise: a first pair of baffles disposed within the housing at a first angle with respect to the central axis; and a second pair of baffles spaced from the first pair of baffles and disposed at a second angle with respect to the central axis.
6. The agricultural product delivery system of claim 5, wherein each of the first pair of baffles and the second pair of baffles extend into the housing from between adjacent outlets.
7. The agricultural product delivery system of claim 6, further comprising a separating baffle spaced from the first pair of baffles and the second pair of baffles.
8. The agricultural product delivery system of claim 7, wherein the separating baffle extends inwardly from the inlet of the housing.
9. The agricultural product delivery system of claim 8, wherein the discharge channel includes one or more baffles therein.
10. The agricultural product delivery system of claim 2, further comprising pair of baffles disposed within the interior of the housing.
11. The agricultural product delivery system of claim 2, wherein the number of outlets extend outward from the housing at angles with regard to the central axis of the housing.
12. The agricultural product delivery system of claim 11, wherein the number of outlets extend outward from the housing at angles with regard to one another.
13. The agricultural product delivery system of claim 2 further comprising a dimple tube connected to the inlet of the housing.
14. A static distributor for an agricultural product delivery system, the distributor comprising: a housing having an inlet and a number of outlets spaced from the inlet and defining a flow channel therebetween with a central axis through the housing; and a number of baffles disposed within the housing at angles with respect to the central axis of the housing.
15. The static distributor of claim 14, wherein the baffles are adjustable with respect to the housing.
16. The static distributor of claim 14, wherein the static distributor does not include any moving parts.
17. The static distributor of claim 16, further comprising: a first pair of baffles disposed within the housing at a first angle with respect to the central axis; a second pair of baffles spaced from the first pair of baffles and disposed at a second angle with respect to the central axis; and a separating baffle spaced from the first pair of baffles and the second pair of baffles.
18. The static distributor of claim 16, further comprising a pair of baffles disposed within the housing at an angle with respect to the central axis.
19. A method of delivering a number of agricultural products from a number of compartments containing the number of products to a delivering unit to apply the products in a field, the method comprising the steps of: supplying the number of agricultural products from the number of particulate material supply compartments to a conveying system; mixing the agricultural product in a static distributor in the conveying system to form a mixed product, wherein the static distributor has no moving parts; conveying the mixed product to the delivering unit; and applying the mixed product from the delivering unit onto an agricultural field.
20. The method of claim 19, wherein the static distributor includes a housing having an inlet and a number of outlets spaced from the inlet and defining a flow channel therebetween with a central axis through the housing and a number of baffles disposed within the housing at angles with respect to the central axis of the housing, and wherein the step of mixing the agricultural product comprises directing the agricultural product through the housing into contact with the number of baffles to separate the product between the number of outlets.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The drawings illustrate the best mode of practicing the present disclosure.
[0014] In the drawings:
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DETAILED DESCRIPTION OF THE DISCLOSURE
[0025] Referring now to the drawings, and more particularly to
[0026] Fertilizer applicator 10 is illustrative of the types of equipment for which the conveying system 100 can be used; however, it should be understood that the 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.
[0027] Looking now at
[0028] To collect and drive the particulate material along the lines 102, in the illustrated embodiment one or more fans 110 are operably connected to the plenum 104 opposite the lines 102. The air flow from the fans 110 is directed from the fans 110 through the plenum 104 and into the respective lines 102 as a result of the structure of the plenum 104. After the air flow passes through the one or more plenums 104 connected to the one or more fans 110 and collects/entrains the particulate material from the compartments 64-70 in a manner to be described, the air flow continues to flow along each of the four (4) large diameter lines 102 that make approximately a 90? turn to connect to the booms 14, 16.
[0029] In order to spread the particulate material/product over/onto the center section over which the machine 10 passes, a large line 102 must move product to the rear nozzles 50-58 where there is no interference by the machine 10 on the spread pattern. To accomplish this a line 102 carrying only air is added on the side of the machine 10 and has a forward section 105 that extends from the plenum 104 to the front of the machine 10. At the front of the machine 10, one particular line 102 turns 180? and has a rearward section 109 that passes beneath the compartments 64-70 where the line 102 collects the particulate material/product and transports the product to the nozzles 50-58 at the rear of the machine 10.
[0030] In an alternative exemplary embodiment, it is contemplated that the conveying system 100 can be formed, optionally in conjunction with the pneumatic conveying system, with one or more mechanical conveyors (not shown) take the form of one or more augers (not shown) that are disposed within the lines 102 and encircle the auger(s) along their length. The augers are each operably connected to a motor (not shown) that causes the augers to rotate within the respective lines 102, moving the particulate material in conjunction with the air flow through the lines 102. The operation of the motor can be controlled to control the speed of rotation of the augers, either collectively or independently from one another, such that the speed of the conveying system 100 can be varied as desired but not to meter the product(s).
[0031] Looking now at
[0032] The particulate material/product contained within each of the compartments 64-70 of the tank 62 is introduced into the airflow in the various lines 102 via an airtight inline product metering system 111, that is formed of a number of metering devices 112 driven by motors 114 that function to meter the product flowing from the compartments 64-70 into each line 102.
[0033] Referring now to
[0034] Looking in particular at the illustrated exemplary embodiments of
[0035] In an alternative exemplary embodiment of the housing 122 shown in
[0036] This design of the distributor 108 in
[0037] In addition, different particulate materials/products and different flow rates of those materials/products may change the distribution across the outlets 128 regardless of the configuration of the baffles 130, 136-140. For example, lighter particulate materials/products, and/or lower throughputs/flow rates tend to stay suspended in the airstream within the supply lines 102, whereas heavier particulate materials/products and higher throughputs/flow rates tend to remain on the bottom of the supply lines 102.
[0038] To address the issue with heavier materials and/or lower flow rates, as best shown in the exemplary illustrated embodiment of
[0039] In other exemplary embodiments, the pattern or configuration of the dimples 156 within the dimple tube 150 and/or the length of the tube 150 can be changed in order to accommodate space constraints and improve the randomization of the particulate material flow 142 through the tube 150.
[0040] In addition to the use of the dimple tube 150, within the distributor 108 the angles, spread, and length of the baffles 130, 136-140 can be changed in order to improve the distribution to each of the outlets 128. For example, increasing the angle of the baffles 130, 136-140 relative to the central axis 134 of the housing 122, the resulting direction of the particulate material flow 142 increases throughput to the outermost outlets 128. Conversely, increasing the spread or distance between baffles 130 of the exemplary embodiment of
[0041] Referring now to the exemplary embodiment illustrated in
[0042] While the conveying system 100 including the static distributor 108 disclosed so far herein have been primarily with respect to pneumatic and/or mechanical fertilizer application equipment or applicator commonly referred to as a floater, it should be understood that the advantages from the conveying system 100 including the static distributor 108 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 conveying system 100 including the static distributor 108 disclosed herein can be provided on the planter, and one or more air/seed inductors 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 conveying system 100 including the static distributor 108 can be made without the need to adjust the air/seed 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 air seed inductor assembly on the air cart.
[0043] In using a 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 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.
[0044] Various other alternatives are contemplated as being within the scope of the following claims particularly pointing out and distinctly claiming the subject matter regarded as the invention.