This is a non-provisional application based upon U.S. provisional patent application Ser. No. 62/267,467 entitled “Air Assist System for Spinner Spreaders,” filed Dec. 15, 2015, which is incorporated herein by reference.
The present invention relates generally to spinner spreaders, and in particular, to air assist systems for spinner spreaders in which an air current is generated to engage particles after they have left the spinner spreader.
Spinner spreaders for particulate material (particles) are well known in the art, including for agricultural application, lawn care and road maintenance application. Typically, such spreaders are mounted onto areas of machines, such as a truck body, truck chassis, trailer, or slid into a truck's dump body. The system typically includes a particulate material storage bin(s), a conveyor system(s) and rotating spinner disk(s). The conveyor transfers material from the storage bin(s) to the spinner(s). The spinner(s) broadcast the material across a field, lawn or road (broadcast area). Oftentimes a single spinner, or a pair of laterally spaced spinners, are provided, with a material divider plate positioned above the spinner(s) to direct the material from the discharge end of the conveyor(s) onto the spinner(s). A wide range of spinner diameters are in use with a general understanding that the amount of material to be spread and the size of the broadcast area are proportional to the diameter of the spinners.
In operation, the spinner spreader distributes particles by accelerating them with a centrifugal force imparted by the rotating spinning disk(s). However, as particles leave the disk, they are subjected to gravity and drag forces that typically effect their trajectory and ultimate deposition point. Particles with differing sizes, shapes, masses and/or densities will typically travel different distances before coming to rest on the ground. As a result, a disproportionate distribution of particles may occur, which may cause, for example, an undesirable stratification or layering of deposited material at outer edges of the broadcast area.
Disproportionate distribution is not typically of too much concern behind the machine as forward motion of the machine will generally equalize the overall distribution. However, disproportionate distribution on the swath edges, or sides of the distribution area, will oftentimes remain. As a result, an undesirable streaking effect may occur after the machine passes. Consequently, what is needed is an improved system in which particulate material may be evenly distributed without one or more of the foregoing disadvantages.
The present inventors have recognized that a spinner spreader system may be augmented with an air assist system in which an air current is generated to engage particles after they have left the spinner spreader system to thereby enhance the trajectory of the particles. In one aspect, one or more fans with appropriate ductwork may be added below one or more spinning disks to direct jets or curtains of air in the direction of the broadcast pattern of particles leaving the one or more disks. The directed air stream should preferably be faster than the particles leaving the one or more disks, thereby adding additional acceleration to the particles compensating opposing forces.
Accordingly, drag forces which cause some particles to slow down more quickly at the outer edges of the distribution pattern may be reversed at the beginning of the trajectory, meaning such particles may be accelerated more than others. This may result in equalizing particle distribution by the time the particles reach the edge of the swath pattern.
Aside from reducing particle stratification, the air assist system may also increase the travel distance of all particles, thereby making the overall spread pattern wider. Active control of the air stream could also be used to compensate for wind/environmental effects on the pattern distribution.
Specifically then, one aspect of the present invention provides a particulate material distribution system including: a rotating spinner disk configured to impart a centrifugal force for distributing particles in a broadcast direction; and an air assist system including a fan. The air assist system is configured to direct an air current in the broadcast direction to engage the particles after they have left the rotating spinner disk.
Other aspects, objects, features, and advantages of the invention will become apparent to those skilled in the art from the following detailed description and accompanying drawings. It should be understood, however, that the detailed description and specific examples, while indicating preferred embodiments of the present invention, are given by way of illustration and not of limitation. Many changes and modifications may be made within the scope of the present invention without departing from the spirit thereof, and the invention includes all such modifications.
Preferred exemplary embodiments of the invention are illustrated in the accompanying drawings in which like reference numerals represent like parts throughout.
Referring now to
Referring now to
However, due to various factors, such as particle shape, particle size distribution, particle density, particle motion, friction coefficients, environment/wind and the like, particles may travel non-uniformly, thereby causing disproportionate distributions of particles. Disproportionate distribution of particles is not typically of too much concern in regions behind the machine, such as regions 24a, as forward motion of the machine (such as on the order of 10 miles per hour) will generally equalize the overall distribution. However, disproportionate distribution on the swath edges, or sides of the distribution area, such as regions 24b, will oftentimes remain. As a result, if left unaddressed, undesirable streaking effects could occur after the truck 2 or other machine passes.
In accordance with an aspect of the invention, the spinner disk 14 may be augmented with an air assist system in which an air current is generated to engage the particles after they have left the disk to thereby enhance the trajectory of the particles. Accordingly, drag forces which cause some particles to slow down more quickly at the first and second outer edges 26 and 28, respectively, of the broadcast area 20 may be reversed at the beginning of the trajectory, meaning such particles may be accelerated more than others. This may result in equalizing particle distribution by the time the particles reach the edges of the broadcast area 20.
Referring now to
Referring now to
Particles held in the storage bin 42 may be metered onto the spinner disk 44 in which a centrifugal force is imparted to distribute the particles in a broadcast direction. The air assist system 46 may include a blower or fan 48, such as a ducted centrifugal or squirrel cage fan, drawing ambient air in order to generate an air current. The fan 48 could be, for example, a Fasco Centrifugal Blower, B75, 115 Volts, 3000 RPM, capable of a maximum flow rate (magnitude) of about 75 cubic feet per minute. The fan may be supported by a mounting bracket 49 positioned below a frame work 61 or support braces of the spinner spreader apparatus 40. The air current may be directed through ductwork 50, such as a bendable PVC duet hose, to an inlet 51 of an air box 52. The air box 52, in turn, may direct the air current outward in the broadcast direction, preferably at a flow rate (magnitude) of about 60 cubic feet per minute, in order to engage the particles after they have left the spinner disk 44. See also
Preferably, the air box 52 may be positioned directly under the spinner disk 44. Referring also to
In addition, the air box 52 may be configured to change an air current angle in all planes (X-Y, X-Z and Y-Z) for improving accuracy as, may be desired. One approach to accomplish this could be, for example, attaching the air box 52 to multi joint pivot arms 60, which may be attached, in turn, to the frame work 61 or support braces of the spinner spreader apparatus 40. A first pivot arm 62 on the air box 52 may allow for a tilt motion. The first pivot arm 62 may then connect to a second pivot arm 64 which may allow for upward movement of the system. A final section may allow for maneuverability and may provide an anchor point for the air assist system 46. Accordingly, the air box 52 may be adjustable with respect to direction of the air current.
The air assist system 46 could also include an air filter 66. The air filter 66 may be configured to filter the air current of environmental contaminants before directing the air current in the broadcast direction.
In another aspect, a control system 70 (see
The air assist system 46 could also be made out of a molded plastic that could be maneuvered into different positions easily. Accordingly, it could be configured to be light weight, capable of resisting dynamic stresses applied to it, and/or weather/corrosion resistant. The air assist system 46 could also be implemented as an add-on feature to existing spreader machines.
By forcing more air on to granular particles passing through a spinner spreader, the granular particles may be accelerated after exiting the disk. This may help disperse the granular particles more evenly via forced air and create a more uniform distribution pattern. It will be appreciated that numerous alternative mechanisms may be provided for forcing air and uniformly distributing granular particles within the scope of the invention.
Although the best mode contemplated by the inventors of carrying out the present invention is disclosed above, practice of the above invention is not limited thereto. It will be manifest that various additions, modifications and rearrangements of the features of the present invention may be made without, deviating from the spirit and the scope of the underlying inventive concept.
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20170164551 A1 | Jun 2017 | US |
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62267467 | Dec 2015 | US |