Seeding system
Claim Score by NHIP
Abstract
A product distribution system includes a product on demand pick-up assembly including a hopper. The hopper is configured such that an air stream flowing into the pick-up assembly entrains product therein and conveys product downstream through a plurality of conduits. The product distribution system further includes a container for storing product prior to delivery of product to the pick-up assembly and a meter and conveyor assembly configured to move product from the container to the pick-up assembly hopper such that an amount of product greater than a predetermined quantity is maintained in the pick-up assembly hopper during operation of the system.

Term
9 yearsto projected expiry
Projected expiry 30 September 2035, counted from filing; an application has no term until it is granted.
- Priority
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21 claims: 3 independent, 18 dependent
- 1A product distribution system comprising:a product on demand pick-up assembly including a hopper, the hopper configured such that an air stream flowing into the product on demand pick-up assembly entrains product therein and conveys product downstream through a plurality of conduits;a container for storing of product prior to delivery of product to the pick-up assembly;a meter and conveyor assembly configured to move product from the container to the pick-up assembly hopper such that an amount of product greater than a predetermined quantity is maintained in the pick-up assembly hopper during operation of the system.
- 18Broadest claimClaim Score 87, broad(NHIP)A product on demand nozzle assembly comprising:an array of vertically spaced nozzles, each nozzle having an air inlet, an air and entrained product outlet and an entrainment zone there between which is open from above to receive product therein to be distributed.
- 20A distribution system comprising:a product on demand pick-up assembly including a hopper, the hopper configured such that an air stream flowing into the product on demand pick-up assembly entrains product therein and conveys product downstream through a plurality of conduits;a plurality of pneumatic distribution towers, each tower of the plurality of towers located downstream of an associated conduit of the plurality of conduits, and each pneumatic distribution tower including an inlet extending upwards to a plurality of radially spaced outlets.
Independent claims3
71 paragraphs in 5 sections, as filed
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 14/871,653 filed Sep. 30, 2015, the entire contents of which are incorporated by reference.
BACKGROUND
The present disclosure relates to a seeding and planting system and more particularly to a metering and distribution system of the seeding and planting system.
SUMMARY
Current seeding practices tend to involve one of two types of seeding systems: planters and air seeders. Planters generally singulate or individually meter seeds prior to planting and are typically used to disperse seeds where precise placement is required for maximum yield and the seeding rate permits use of singulating technologies. Air seeders generally meter seeds volumetrically and are typically used in high rate seeding applications and where precise seed placement is of less importance or not practical due to the high rates.
A product distribution system includes a product on demand pick-up assembly including a hopper. The hopper is configured such that an air stream flowing into the pick-up assembly entrains product therein and conveys product downstream through a plurality of conduits. The product distribution system further includes a container for storing product prior to delivery of product to the pick-up assembly and a meter and conveyor assembly configured to move product from the container to the pick-up assembly hopper such that an amount of product greater than a predetermined quantity is maintained in the pick-up assembly hopper during operation of the system.
A product on demand nozzle assembly includes an array of vertically spaced nozzles, each nozzle having an air inlet, an air and entrained product outlet, and an entrainment zone there between which is open from above to receive product therein to be distributed.
A distribution system comprises a product on demand pick-up assembly including a hopper, the hopper configured such that an air stream flowing into the product on demand pick-up assembly entrains product therein and conveys product downstream through a plurality of conduits. Each tower of a plurality of pneumatic distribution towers is located downstream of an associated conduit of the plurality of conduits, and each pneumatic distribution tower includes an inlet extending upwards to a plurality of radially spaced outlets.
Other features and aspects of the disclosure will become apparent by consideration of the following detailed description and accompanying drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
<figref idref="DRAWINGS">FIG. 1</figref> is a side view of a seeder.
<figref idref="DRAWINGS">FIG. 2</figref> is a schematic diagram illustrating a metering and distribution system.
<figref idref="DRAWINGS">FIG. 3A</figref> is an enlarged view of a distribution unit including a seed channel, as shown in <figref idref="DRAWINGS">FIG. 2</figref>.
<figref idref="DRAWINGS">FIG. 3B</figref> is a side view of the third distribution unit showing multiple seed conduit outlets.
<figref idref="DRAWINGS">FIG. 4A</figref> is a side view of a seed cart including a plurality of tanks.
<figref idref="DRAWINGS">FIG. 4B</figref> is a perspective view of a volumetric meter assembly.
<figref idref="DRAWINGS">FIG. 4C</figref> is a perspective view of an auger, associated with one of the plurality of tanks.
<figref idref="DRAWINGS">FIG. 5</figref> is a perspective view of a distribution unit, according to one embodiment.
<figref idref="DRAWINGS">FIG. 6A</figref> is a cross-sectional side view of the distribution unit of <figref idref="DRAWINGS">FIG. 5</figref>.
<figref idref="DRAWINGS">FIG. 6B</figref> is a partial perspective view of the internal chambers of the distribution unit of <figref idref="DRAWINGS">FIG. 5</figref>.
<figref idref="DRAWINGS">FIG. 7</figref> is a perspective view of a distribution unit, according to one embodiment.
<figref idref="DRAWINGS">FIG. 8</figref> is a cross-sectional side view of the distribution unit of <figref idref="DRAWINGS">FIG. 7</figref>.
<figref idref="DRAWINGS">FIG. 9A</figref> is an outlet tower located downstream of the distribution unit of <figref idref="DRAWINGS">FIG. 7</figref>.
<figref idref="DRAWINGS">FIG. 9B</figref> is a cross-sectional view of the outlet tower of <figref idref="DRAWINGS">FIG. 9A</figref>.
<figref idref="DRAWINGS">FIG. 10</figref> is a schematic side view of a distribution unit, according to one embodiment.
Before any embodiments of the disclosure are explained in detail, it is to be understood that the disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The disclosure is capable of supporting other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting.
DETAILED DESCRIPTION
As shown in <figref idref="DRAWINGS">FIG. 1</figref>, seeding machine <b>2</b> comprises a seed cart <b>13</b> and a tilling implement <b>17</b>. The seed cart <b>13</b> is typically towed by a tractor through a field to be seeded. The seed cart <b>13</b> has a frame supporting a number of storage tanks <b>18</b> with wheels <b>61</b> rotatably mounted to the frame. The product contained in the storage tanks <b>18</b> may include seed, fertilizer, or other agricultural particles. Each storage tank <b>18</b> is provided with a volumetric meter <b>14</b>. Each volumetric meter <b>14</b> is positioned below the respective storage tank <b>18</b> and receives product therefrom for controlled feeding of the product into a pneumatic distribution system <b>21</b>.
The tilling implement <b>17</b>, towed behind the seed cart <b>13</b>, comprises a frame to which ground openers <b>29</b>A, <b>29</b>B are mounted. The tilling implement <b>17</b> may also include seed row finishing equipment such as packers <b>33</b>. Located below each volumetric meter <b>14</b> is a primary air distribution manifold <b>25</b>, part of the pneumatic distribution system <b>21</b>. The pneumatic distribution system <b>21</b> distributes metered product from the storage tanks <b>18</b> to the ground openers <b>29</b>A, <b>29</b>B and comprises a blower <b>37</b> driven by a motor which directs a stream of pressurized air through an adjustable damper <b>41</b>, which thereafter directs the air stream into a top rank portion directed into an upper rank of first tubes <b>45</b> and a bottom rank portion directed into a bottom rank of first tubes <b>49</b>. <figref idref="DRAWINGS">FIG. 1</figref> illustrates a double shoot air seeder wherein a first product contained in one of the containers or storage tanks <b>18</b> is directed to the top rank portion <b>45</b> of the air stream and the second product contained in the other of the storage tanks <b>18</b> is directed to the bottom rank portion <b>49</b> of the air stream. Triple shot applications in which three products are added to three different rank portions of the air stream are also utilized in certain situations, as shown in <figref idref="DRAWINGS">FIG. 2</figref>. Alternatively, the distribution manifolds <b>25</b> may be configured to deliver product from both tanks <b>18</b> into the same rank portion of the pneumatic distribution system for delivery of the two products together to the same location in the soil. In the seeding machine <b>2</b>, each of the upper and bottom rank portions have eight primary tubes <b>24</b>. Each primary tube directs product to a dispersion unit or distribution tower <b>31</b> on the tool <b>17</b> where the product stream is divided into multiple conduits each directed to a ground opener <b>29</b>A-<b>29</b>B. The machine <b>2</b> employs a volumetric metering system using the volumetric meters <b>14</b> to meter product delivered to the soil.
<figref idref="DRAWINGS">FIG. 2</figref> schematically illustrates a product distribution or seed metering system <b>10</b> along three rank portions or main conduits <b>45</b>, <b>49</b>, <b>53</b> for use in a planting operation, such as seeding a field or dispersing agricultural particles (e.g., fertilizer, etc.). The seed metering system <b>10</b> can be used with or as a part of the seeding machine <b>2</b>.
Tank <b>18</b>A has a volumetric meter <b>20</b> at the lower end thereof for controlled feeding of the product into a pneumatic distribution system through a manifold, such as manifold <b>25</b> of <figref idref="DRAWINGS">FIG. 1</figref>. Product is delivered to the conduit <b>45</b> where an air stream from a fan <b>37</b>A pneumatically conveys the product. Product is directed to a distribution tower or dispersion unit <b>40</b>A, where the product air stream is divided into multiple secondary conduits <b>36</b>A to outlet conduits <b>46</b>A each leading to a ground opener, such as the openers <b>29</b>A, <b>29</b>B of <figref idref="DRAWINGS">FIG. 1</figref> for depositing the product into the ground. Similarly, tank <b>18</b>B has a meter <b>14</b>B at the lower end thereof controlling the flow of product to the conduit <b>49</b> where product is conveyed by air from a second fan <b>37</b>B. Alternatively, a single fan may be used if desired. Product is conveyed through conduit <b>49</b> to a dispersion unit <b>40</b>B or distribution tower where it is divided into secondary conduits <b>36</b>B and directed to the soil. The tanks <b>18</b>A, <b>18</b>B and associated distribution systems are similar to <figref idref="DRAWINGS">FIG. 1</figref> in that product is volumetrically metered and delivered to the ground. Tanks <b>18</b>A, <b>18</b>B are typically used for fertilizer or other chemicals. Each volumetric meter <b>14</b> is constructed of a plurality of meter roller segments <b>20</b> driven by a common drive shaft extending into the paper of <figref idref="DRAWINGS">FIG. 2</figref>. Gates <b>16</b> associated with each volumetric meter <b>14</b>A, <b>14</b>B, <b>14</b>C or each roller segment <b>20</b> are operable to open or close the meter outlet to start and stop the flow of product from the associated roller segment of the meter. This enables the operator to prevent overlapping in the application of product. Alternatively, each roller segment <b>20</b> of the volumetric meters <b>14</b>A, <b>14</b>B, <b>14</b>C may be individually driven, and may be driven at varying speeds (including stopping the roller segment) to vary the amount of product discharged by each roller segment.
The tank <b>18</b>C on the other hand is typically used for seed. Seed from the volumetric meter <b>14</b>C at the lower end of tank <b>18</b>C is directed by the control valve <b>28</b>B to the conduit <b>49</b> for distribution through the dispersion unit <b>40</b>B as described above for volumetrically metered seed. Alternatively, seed can be directed by the control valve <b>28</b>B to the conduit <b>53</b> and ultimately to the singulating meter <b>22</b> where the seed is further metered, to singulate the seed and deliver individual seeds, one at a time, to the soil as described below. Seed is conveyed in the conduit <b>53</b> pneumatically by air from fan <b>37</b>B to a dispersion unit <b>42</b>, known as a product-on-demand pick-up assembly and from there to a mini-hopper <b>38</b> associated with a singulating meter <b>22</b>. A meter and conveyor assembly <b>4</b> includes a mechanical conveyor system <b>6</b> and/or a pneumatic system <b>8</b>. The mechanical conveyor system <b>6</b> includes an augur as described below with respect to <figref idref="DRAWINGS">FIGS. 4A-4B</figref>. The pneumatic conveyor system includes one or more fans <b>37</b>A, <b>37</b>B, a conduit for air <b>45</b>, <b>49</b>, <b>53</b>, and a meter such as a volumetric meter <b>14</b>A, <b>14</b>B, <b>14</b>C. Each volumetric meter <b>14</b>A, <b>14</b>B, <b>14</b>C (e.g., one volumetric meter <b>14</b>A, <b>14</b>B, <b>14</b>C associated with each of the three containers or storage tanks <b>18</b>A, <b>18</b>B, <b>18</b>C, respectively) is configured to receive and meter the seeds or agricultural particles from the storage tanks <b>18</b>A, <b>18</b>B, <b>18</b>C. The storage tanks <b>18</b>A, <b>18</b>B, <b>18</b>C may be in the form of a tank, hopper, air cart, mobile seed storage device, or other bulk container as previously described and illustrated in <figref idref="DRAWINGS">FIG. 1</figref>. The volumetric meters <b>14</b>A, <b>14</b>B, <b>14</b>C or other mechanical conveyer system control the amount or volume of seeds or other agricultural particles permitted to exit the lower end of the storage tanks <b>18</b>A, <b>18</b>B, <b>18</b>C over a set period of time and may each include multiple roller segments or rotating members <b>20</b>, each capable of rotating at a constant rotational velocity along a common shaft. The volumetric meters <b>14</b>A, <b>14</b>B, <b>14</b>C are located upstream of and are operable to provide a known, constant volume of seeds or particles to the conduits <b>45</b>, <b>49</b>, <b>53</b>. Gates <b>16</b> associated with each volumetric meter <b>14</b>A, <b>14</b>B, <b>14</b>C or each roller segment <b>20</b> are operable to open or close to vary the amount of seeds or agricultural particles which reach the conduits <b>45</b>, <b>49</b>, <b>53</b>. Alternatively, each roller segment <b>20</b> of the volumetric meters <b>14</b>A, <b>14</b>B, <b>14</b>C may be individually driven, and therefore may be individually halted to vary the amount of seeds or agricultural particles which reach the conduits <b>45</b>, <b>49</b>, <b>53</b>.
A fan <b>37</b>A, <b>37</b>B is located at one end of the conduits <b>45</b>, <b>49</b>, <b>53</b> and is operable to provide an air current to the corresponding conduits <b>45</b>, <b>49</b>, <b>53</b> and throughout the remainder of the metering system <b>10</b>. As shown, the first conduit <b>45</b> utilizes a first fan <b>37</b>A and the second and third conduits <b>49</b>, <b>53</b> utilize a second fan <b>37</b>B. Alternatively, a single fan may provide three air currents; one to each of the conduits <b>45</b>, <b>49</b>, <b>53</b>, or individual fans may be associated with the respective conduits <b>45</b>, <b>49</b>, <b>53</b>.
The main conduits <b>45</b>, <b>49</b> terminate at distribution or dispersion units <b>40</b>A, <b>40</b>B, which are located between the volumetric meter <b>14</b>A, <b>14</b>B and the ground, where the seeds or particles are deposited. The dispersion units <b>40</b>A, <b>40</b>B as shown each have an inlet <b>30</b> coupled to the respective main conduit <b>45</b>, <b>49</b>, a collection volume, and a plurality of outlets <b>32</b>, which lead to secondary conduits <b>36</b>A, <b>36</b>B. Each secondary conduit <b>36</b>A, <b>36</b>B leads to an outlet conduit <b>46</b>A, <b>46</b>B. As the seeds or agricultural particles from a single conduit (i.e., the conduit <b>45</b>, <b>49</b>) are dispersed among multiple conduits (i.e., the secondary conduits <b>36</b>A, <b>36</b>B), the secondary conduits <b>36</b>A, <b>36</b>B may be of lesser size or area than the associated conduits <b>45</b>, <b>49</b>.
The third distribution or dispersion unit <b>42</b> is enlarged in <figref idref="DRAWINGS">FIG. 3A</figref> and is dissimilar in design and operation to the dispersion units <b>40</b>A, <b>40</b>B. The function of the dispersion unit <b>42</b> is to keep the mini-hoppers <b>38</b> supplied with seed for singulation without overfilling the mini-hoppers <b>38</b>. The dispersion unit <b>42</b> also serves to divide the single stream of product in the conduit <b>53</b> into multiple second conduits <b>36</b>C for supply to multiple meters <b>22</b>. The dispersion unit <b>42</b> includes sidewalls <b>51</b> including an upstream sidewall <b>42</b>A and a downstream sidewall <b>42</b>B, and further includes a bottom wall <b>42</b>C. Dispersion unit <b>42</b> includes a container defining a hopper or central chamber <b>44</b> with an inlet <b>48</b> located at or near an upper end and connected to the main conduit <b>53</b>. The inlet <b>48</b> accepts seeds from the volumetric meter <b>14</b>C and air from the fan <b>37</b>B. The lower portion <b>54</b> of the dispersion unit <b>42</b> is generally sloped or similarly oriented to direct the seeds within the central chamber <b>44</b> by gravity towards a nozzle assembly <b>56</b> located at the lowermost portion of the base <b>54</b>.
Two sensors, an upper level or limit sensor <b>44</b>A and a lower level or limit sensor <b>44</b>B are located within the central chamber <b>44</b>. The lower limit sensor <b>44</b>B is located nearer the base than the upper limit sensor <b>44</b>A. The sensors are configured to communicate an aspect of the seed level, such as the relative quantity of seed within the container or chamber <b>44</b>, to a control unit (not shown). The sensors <b>44</b>A, <b>44</b>B may be mechanical or electrical/electronic in nature and based on, for example, pressure, optics, ultrasound, etc. The control unit uses the signals from the sensors <b>44</b>A, <b>44</b>B to control gates <b>16</b> at the outlet of the meter <b>14</b>C to start and stop seed flow from the tank <b>18</b>C to maintain a desired level of seed in the chamber <b>44</b>.
The third dispersion unit <b>42</b> additionally includes an air outlet <b>62</b> in communication with the central chamber <b>44</b> and located at a height above the inlet <b>48</b> such that seeds do not block the air outlet <b>62</b>. The air outlet <b>62</b> directs air from the central chamber <b>44</b> to an inlet <b>66</b> of the nozzle assembly <b>56</b>. The nozzle assembly <b>56</b> includes an entrainment zone <b>60</b>A at the bottom of the dispersion unit <b>42</b>. Opposite the inlet <b>66</b>, an outlet <b>68</b> is provided coupled to the secondary conduits <b>36</b>C. A bridge <b>52</b> is placed over the inlet <b>66</b> and outlet <b>68</b> and bridges therebetween to force product in the chamber <b>44</b> to flow around the bridge to the entrainment zone <b>60</b>A. As air flows in the inlet <b>66</b> into the entrainment zone <b>60</b>A, seed is picked-up into the air stream and air entrained seed flows out the outlet <b>68</b> to the secondary conduit <b>36</b>C. As shown in <figref idref="DRAWINGS">FIG. 3B</figref>, the third dispersion unit <b>42</b> may have a substantial depth (i.e., extending into the page of <figref idref="DRAWINGS">FIG. 3A</figref>) such that the unit <b>42</b> includes multiple inlets <b>66</b>, entrainment zones <b>60</b>A and outlets <b>68</b> spaced apart from one another along the base <b>54</b>.
As mentioned above, the dispersion unit <b>42</b> may include multiple nozzle assemblies <b>56</b>, each corresponding to a different inlet <b>66</b> and outlet <b>68</b>. Therefore, multiple secondary conduits <b>36</b>C, each associated with one of the outlets <b>68</b>, may extend from the dispersion unit <b>42</b>. As shown, air from the chamber outlet <b>62</b> is directed to the inlets <b>66</b>. As an alternative, one or more additional fans may be provided to supply additional air flow. In this case, the air from the outlet <b>62</b> may be vented to the atmosphere.
Referring again to <figref idref="DRAWINGS">FIG. 2</figref>, the mini-hopper <b>38</b> selectively receives seeds from the third dispersion unit <b>42</b> via the secondary conduit <b>36</b>C. The mini-hopper <b>38</b> is located directly upstream of a singulating meter <b>22</b> and feeds the seeds from the secondary conduit <b>36</b>C into the meter <b>22</b>. The mini-hopper <b>38</b> is additionally capable of storing a supply of seeds, to be metered by the singulating meter <b>22</b>. This ensures that the singulating meter <b>22</b> is consistently stocked with seeds for singulating and subsequently planting. The mini-hopper <b>38</b> may be gravity-assisted, with an inlet <b>34</b>A from the secondary conduit <b>36</b>C located at a height above the outlet <b>34</b>B to the singulating meter <b>22</b>.
At the height of the inlet <b>34</b>A or at a height between the inlet <b>34</b>A and the outlet <b>34</b>B, the mini-hopper <b>38</b> is provided with one or more openings <b>70</b>. The openings <b>70</b> are sized smaller than the seeds such that seeds are not capable of traversing the openings <b>70</b>. When not blocked by seeds, the openings <b>70</b> serve as an outlet for the air through the conduit <b>36</b>C. When the mini-hopper <b>38</b> is sufficiently full to cover the openings <b>70</b>, air flow is blocked in the conduit <b>36</b>C such that seed is no longer picked-up into the air stream in the entrainment zone <b>60</b>A. When seed is consumed from the mini-hopper by the meter <b>22</b> to lower the level of seed in the mini-hopper <b>38</b> and expose the openings <b>70</b> again, air will begin to flow through the conduit <b>36</b> and deliver more seed to the mini-hopper <b>38</b>. Thus, the dispersion unit <b>42</b> is referred to as a “product on demand pick-up assembly.” The dispersion unit <b>42</b> maintains a sufficient supply of seed in the mini-hopper <b>38</b> while the level sensors <b>44</b>A, <b>44</b>B in the dispersion unit and the gates <b>16</b> at the meter <b>14</b>C maintain an adequate level of seed in the dispersion unit <b>42</b>.
The singulating meter <b>22</b> is operable to singulate or individually meter seeds and is in communication with the mini-hopper <b>38</b> via the mini-hopper outlet <b>34</b>B. The singulating meter <b>22</b> may include a rotating singulating disk (not shown) with multiple orifices, each sized to accept a single seed, and a doubles eliminator (not shown) provided to ensure a one-to-one ratio of seed to each aperture.
At an outlet end, the singulating meter <b>22</b> is connected to the conduit <b>46</b>B. A seed sensor <b>50</b> is positioned within a conduit downstream of the singulating meter <b>22</b> outlet as shown in <figref idref="DRAWINGS">FIG. 2</figref>. The seed sensor <b>50</b> measures the number of seeds or rate of seeding (i.e., number of seeds per time increment) from the singulating meter <b>22</b>. This information can be stored and relayed from a control unit to an operator for quality assurance and recorded for later analysis. The conduit <b>46</b>B provides a path for the singulated seeds to reach the ground and may be in the form of a tube, hollow shaft, channel, belt, or similar means of conveyance suitable to transfer seed, fertilizer, or other agricultural particles to the ground. More specifically, the conduit <b>46</b>B may deposit or plant the seeds in a furrow created by one of the ground openers <b>29</b>B (<figref idref="DRAWINGS">FIG. 1</figref>), such as a seed shank. In other constructions, the opener may include one or two opener disks. Seed from the meter <b>22</b> may be combined with fertilizer from the conduit <b>36</b>B and deposited together in the soil.
A number of control valves <b>28</b>A-<b>28</b>B are provided in the system <b>10</b>. The control valves <b>28</b>A-<b>28</b>B may be diverter valves or proportional valves and can vary in operation from a fully open position (i.e., providing no additional metering) to a fully closed position (i.e., allowing no seeds to pass) and may be held at various amounts between fully open and fully closed. Alternatively, one or more of the control valves <b>28</b>A-<b>28</b>B may switch only between the fully open position and the fully closed position with no intermediate positions. When in other than a fully closed position, the control valves <b>28</b>A-<b>28</b>B allow passage for at least some of the air and/or seeds. As shown, <figref idref="DRAWINGS">FIG. 2</figref> is a schematic and the system <b>10</b> need not include all valves <b>28</b>A-<b>28</b>B.
The second and third conduits <b>49</b>, <b>53</b> share a common origin at the second fan <b>37</b>B. Therefore, a Y-joint or branch <b>72</b> separates the airflow from the fan <b>37</b>B between each line <b>49</b>, <b>53</b>. The air control valve <b>28</b>A is operably located at the branch <b>72</b> upstream of the outlets of the volumetric meters <b>14</b>B, <b>14</b>C. The valve <b>28</b>A is operable to direct an amount or percentage of the total amount of air produced by the fan <b>37</b>B towards the lines <b>49</b>, <b>53</b>.
From the seed storage tank <b>18</b>C, the seeds may be dispersed via the second or the third dispersion unit <b>40</b>B, <b>42</b>. The dispersion valve <b>28</b>B is operable to change the path taken by the seeds between the second and third conduits <b>49</b>, <b>53</b>. When in a first position, the dispersion valve <b>28</b>B provides a path which connects the third volumetric meter <b>14</b>C to the second conduit <b>49</b>, allowing the seeds to mix with the fertilizer in the second conduit <b>49</b> upstream of the second dispersion unit <b>40</b>B. Alternatively, if seed only is to be planted, then tank <b>18</b>B is not used, resulting in seed only flowing through the dispersion unit <b>40</b>B and conduits <b>36</b>B. When in a second position, the dispersion valve <b>28</b>B provides a path from the third volumetric meter <b>14</b>C to the third dispersion unit <b>42</b> through the third conduit <b>53</b>. The dispersion valve <b>28</b>B may be embodied as a switching valve configured to open one path while simultaneously closing the other.
Referring to <figref idref="DRAWINGS">FIG. 2</figref>, the first storage tank <b>18</b>A holds fertilizer. In operation, when actuated, the first volumetric meter <b>14</b>A rotates to allow a known, but variable rate of fertilizer to exit the tank <b>18</b>A and deposits the fertilizer in the conduit <b>45</b>. The fertilizer enters the first conduit <b>45</b> which is concurrently supplied with airflow from the first fan <b>37</b>A. The airflow carries the fertilizer within the first conduit <b>45</b> to the first dispersion unit <b>40</b>A, which disperses the fertilizer amongst multiple secondary conduits <b>36</b>A. Each secondary conduit <b>36</b>A carries the fertilizer to the conduit <b>46</b>A and deposits the fertilizer in a furrow created by the ground opener <b>29</b>A such as a fertilizer shank (<figref idref="DRAWINGS">FIG. 1</figref>).
The second storage tank <b>18</b>B also holds fertilizer. In operation, when actuated, the second volumetric meter <b>14</b>B rotates to allow a known rate of fertilizer to exit the tank <b>18</b>B at a known rate which may be varied. The fertilizer enters the second conduit <b>49</b>, which is concurrently supplied with airflow from the second fan <b>37</b>B. The airflow carries the fertilizer within the second conduit <b>49</b> to the second dispersion unit <b>40</b>B, which disperses the fertilizer amongst multiple secondary conduits <b>36</b>B. Each secondary conduit <b>36</b>B carries the fertilizer to the conduit <b>46</b>B and deposits the fertilizer in a furrow created by the seed shank <b>29</b>B, separate from the fertilizer in the furrow created by the fertilizer shank <b>29</b>A. For example, the fertilizer from the first tank <b>18</b>A may be deposited between two adjacent seed furrows.
The third storage tank <b>18</b>C holds seeds. When the third volumetric meter <b>14</b>C is actuated, it rotates to allow a known amount of seeds to exit the tank <b>18</b>C at a known rate. The valve <b>28</b>B directs the seed in one mode to conduit <b>49</b> supplied with airflow from the second fan <b>37</b>B where the seed mixes with fertilizer from tank <b>18</b>B and is then conveyed pneumatically to the seed shank <b>29</b>B as described above. In a second mode, the valve <b>28</b>B directs seed into the third conduit <b>53</b> which is concurrently supplied with airflow from the second fan <b>37</b>B. The airflow carries the seeds within the third conduit <b>53</b> to the third dispersion unit <b>42</b>. The seeds enter the inlet <b>48</b> of the third dispersion unit where they pool in the central chamber <b>44</b> above the nozzle assemblies <b>56</b>. Concurrently, the air that previously carried the seeds through the inlet <b>48</b> continues through the air outlet <b>62</b> and to the inlet <b>66</b> to pick-up and carry the seeds through the outlet <b>68</b> to the secondary conduit <b>36</b>C in a controlled manner. Alternatively, a separate air source can be provided to the inlets <b>66</b>.
The volumetric meter <b>14</b>C and associated gate <b>16</b> permit seeds into the main conduit <b>53</b> and the central chamber <b>44</b> of the third dispersion unit <b>42</b> at a rate greater than the seeds exit the seed chamber <b>60</b>. Therefore, seeds may accumulate within the central chamber <b>44</b>. When the seeds accumulate to a level measured by the upper limit sensor <b>44</b>A, the sensor relays a signal to the control unit (not shown) which in response actuates the associated gate <b>16</b> into a closed position, thereby stopping flow of the seeds into main conduit <b>53</b>. As the seeds continue to pass through the nozzle assemblies <b>56</b> leading to the secondary conduits <b>36</b>C, the level of seeds within the central chamber <b>44</b> decreases until the lower limit sensor <b>44</b>B relays a signal that the number of seeds within the central chamber is at or below a lower limit. The signal is relayed to the control unit which actuates the gate <b>16</b> into an open position, thereby resuming the flow of the seeds from the third storage tank <b>18</b>C. The seed from the secondary conduit <b>36</b>C may be singulated via the singulating meter <b>22</b> before passing the seed sensor <b>50</b> and being deposited into the ground.
When the mini-hopper <b>38</b> reaches the maximum fill height, the openings <b>70</b> within the mini-hopper <b>38</b> are blocked by the seeds. In turn, the air within the associated secondary conduit <b>36</b>C is unable to vent through the openings <b>70</b>, thereby increasing the air pressure within the secondary conduit <b>36</b>C and preventing further passage of seeds into the mini-hopper <b>38</b>. When the seed level within the mini-hopper <b>38</b> drops below the maximum fill height, the openings <b>70</b> clear, permitting the free passage of air through the openings <b>70</b> and further carrying of additional seeds to the mini-hopper <b>38</b>.
In another embodiment, the dispersion unit <b>42</b>, as shown in <figref idref="DRAWINGS">FIGS. 2-3B</figref> may also be utilized as a seed storage tank for seeds that require a low seed rate, such as canola seeds. In such an embodiment, the dispersion unit <b>42</b> is directly filled with the seeds. Due to the low seeding rate, an operator is able to seed without necessitating refilling of the unit <b>42</b> prior to refilling the fertilizer tanks. The seeds within the dispersion unit are moved via air from the fan <b>37</b>B into the secondary conduit <b>36</b>C where they are singulated, as described above. Moving the storage of seed from the tank <b>18</b>C to the dispersion unit <b>42</b> provides the tank <b>18</b>C for other use. For example, the tank <b>18</b>C may be filled with additional fertilizer and the fertilizer directed from the tank <b>18</b>C to the main conduit <b>49</b> via the dispersion valve <b>28</b>B.
An alternative seed cart <b>113</b> is shown in <figref idref="DRAWINGS">FIG. 4A</figref>. The seed cart <b>113</b> includes four storage tanks <b>118</b>A, <b>118</b>B, <b>118</b>C, <b>118</b>D of varying sizes, the tanks <b>118</b>A-D supported on a frame <b>115</b> although the tanks <b>118</b>A-D need not all be carried on the same frame. Each tank <b>118</b>A-<b>118</b>D narrows at the base to form a channel extending in a widthwise direction (i.e., into the page of <figref idref="DRAWINGS">FIG. 4A</figref>). The tanks <b>118</b>A-D each have removable covers <b>119</b>A-D, respectively, located on upper surfaces of the tanks <b>118</b>A-D. The covers <b>119</b>A-D are removable such that the tanks <b>118</b>A-D can be filled with seed, fertilizer, or other agricultural particles. Tanks <b>118</b>B, <b>118</b>C, <b>118</b>D are provided at their lower ends with volumetric meters <b>127</b> like the meters <b>14</b>A-C in <figref idref="DRAWINGS">FIG. 2</figref>. The meters deliver product into manifolds, not shown, that direct product into one of upper and bottom rank portions <b>124</b> of primary conduits, similar to conduits <b>24</b> of <figref idref="DRAWINGS">FIG. 1</figref>. The product is directed to dispersion units like dispersion units <b>40</b>A, <b>40</b>B of <figref idref="DRAWINGS">FIG. 2</figref> or distribution towers like tower <b>31</b> of <figref idref="DRAWINGS">FIG. 1</figref>. There the product is further divided and delivered to openers as described above.
Tank <b>118</b>A, on the other hand, is a dispersion unit <b>142</b>, similar in construction as the dispersion unit <b>42</b>. An air supply system is not shown but is similar to that shown in <figref idref="DRAWINGS">FIG. 2</figref>. Air entrained seed exits the tank <b>118</b>A in conduits <b>36</b>C and is directed to singulating meters <b>22</b> as in <figref idref="DRAWINGS">FIG. 2</figref>. As described above with seeds applied at a low rate, the tank <b>118</b>A is directly filled with seed through the upper cover <b>119</b>A. Seed is supplied to the singulating meters <b>22</b> for deposit in the ground while fertilizer or other chemicals from the tanks <b>118</b>B-D are also deposited in the ground.
With reference to <figref idref="DRAWINGS">FIG. 4B</figref>, the volumetric meter <b>127</b> of tank <b>118</b>D is shown in greater detail. The meter <b>127</b> has a housing <b>160</b> with an upper inlet <b>161</b> for receiving product from the tank <b>118</b>D. A removable meter cartridge <b>162</b> has eight meter segments <b>164</b>, each directing product into one of the eight upper or lower rank portion primary conduits <b>124</b>. In operation, the meter <b>127</b> of tank <b>118</b>D is used for fertilizer while the tank <b>118</b>A is directly filled with seed used in a low rate such that both tanks <b>118</b>A and <b>118</b>D are emptied at approximately the same time and can be refilled in a single stop of the machine. Seed from the tank <b>118</b>A is singulated.
Alternatively, when a high rate seed is being distributed, such as wheat, seed is placed in the larger tank <b>118</b>D. From there, the seed is supplied to the tank <b>118</b>A for dispersion to the singulating meters <b>22</b>. In this manner, the tank <b>118</b>D is functioning like the tank <b>18</b>C of <figref idref="DRAWINGS">FIG. 2</figref> to supply seed to the dispersion unit <b>42</b>, now tank <b>118</b>A. To do this, the cartridge <b>162</b> of the meter <b>127</b> is removed and replaced by an auger cartridge <b>130</b>, as shown in <figref idref="DRAWINGS">FIG. 4C</figref>. The auger cartridge <b>130</b> fits into the metering housing <b>160</b> and has a housing <b>131</b> with an opening <b>132</b> that receives product from the tank <b>118</b>D. A helical or screw auger within the housing rotates to deliver product to the outlet pipe <b>143</b>. The auger is driven by a motor, not shown, which is operable at variable speeds to vary the rate at which product is discharged. Alternatively, the auger can be operated at a fixed speed and started and stopped periodically to vary the product discharge rate. From the auger outlet pipe <b>143</b>, the product is delivered into a pipe <b>145</b> supplied with an air stream from a fan <b>149</b> (<figref idref="DRAWINGS">FIG. 4A</figref>) for pneumatic conveyance to the tank <b>118</b>A in a similar manner of operation as the tank <b>18</b>C supplies seed to the dispersion unit <b>42</b> described above in connection with <figref idref="DRAWINGS">FIG. 2</figref>. Alternatively, a mechanical conveyor can be used to deliver the seed to the tank <b>118</b>A in place of the pneumatic conveyor. A second helical auger or a belt conveyor can be used for this purpose.
In operation, the seed in the tank <b>118</b>A is dispersed through individual conduits <b>36</b>A to singulating meters <b>22</b>. Because the seed is used at a high rate, the tank <b>118</b>A needs to be frequently replenished with seed. This is done by the auger cartridge <b>130</b> supplying seed from the larger tank <b>118</b>D as needed. Auger <b>130</b> can be operated continuously at a low rate to not over fill the tank <b>118</b>A. Alternatively, the auger <b>130</b> can be started and stopped periodically. As with the dispersion unit <b>42</b>, the tank <b>118</b>A is provided with upper and lower level sensors to monitor the seed level in the tank and ensure the seed level remains within a desirable range. The cart <b>113</b> is thus useful in the singulation of both high rate seeds and low rate seeds.
With reference to <figref idref="DRAWINGS">FIGS. 5-10</figref>, alternative dispersion units are shown that are operable with the auger cartridge <b>130</b>. In one embodiment, as shown in <figref idref="DRAWINGS">FIGS. 5-6B</figref>, the dispersion unit <b>242</b> consists of an inlet portion <b>210</b>, a body portion <b>212</b>, and a plurality of outlets <b>214</b> extending from the body portion <b>212</b>. The inlet portion <b>210</b> consists of a common inlet <b>216</b> extending from the main conduit <b>145</b>, and separating into two distinct inlets, a seed inlet <b>218</b> for seeds and agricultural particles, and an air inlet <b>220</b>. The seed inlet <b>218</b> extends from the common inlet <b>216</b> to an upper surface <b>222</b> of the body portion <b>212</b> and specifically to an opening <b>224</b> in the upper surface <b>222</b> of the body portion <b>212</b>. The opening <b>224</b> connects the seed inlet <b>218</b> with a first chamber <b>226</b> of the body portion <b>212</b>. The air inlet <b>220</b> branches from the remainder of the inlet portion <b>210</b> at a location between the common inlet <b>216</b> and the seed inlet <b>218</b>. The air inlet <b>220</b> connects to the body portion <b>212</b> such that the air inlet <b>220</b> is operable to provide air to a second chamber <b>228</b> of the body portion <b>212</b>, distinct from the first chamber <b>226</b> of the body portion <b>212</b>. A separator or screen <b>256</b> is provided across the branched end of the air inlet <b>220</b> to obstruct the entrance of seeds and agricultural particles from the air inlet <b>220</b> without inhibiting airflow therethrough. Alternatively, conveyance air may be provided to the second chamber <b>228</b> via a separate clean air line.
As shown in <figref idref="DRAWINGS">FIGS. 6A-6B</figref>, the body portion <b>212</b> includes the first and second chambers <b>226</b>, <b>228</b> described above, and further includes apertures <b>230</b> that connect the first chamber <b>226</b> to the second chamber <b>228</b>. The first chamber <b>226</b>, or the seed chamber, communicates with the seed inlet <b>218</b> via the opening <b>224</b> in the upper surface <b>222</b> and is defined by external walls <b>232</b> and internal walls <b>234</b> that collectively form an inverted-U shape (i.e., a peak <b>238</b> with two legs <b>240</b> branching off towards a base <b>244</b>). The seed inlet <b>218</b> is located at the peak <b>238</b> such that seeds from the seed inlet <b>218</b> are able to filter down from the peak <b>238</b> into either of the two legs <b>240</b>. The second channel <b>228</b>, or air plenum, is located between the two legs <b>240</b>, below the peak <b>238</b>, and is at least partially defined by the internal walls <b>234</b>. The inner walls <b>234</b> are provided with the apertures <b>230</b> to fluidly connect the first chamber <b>226</b> to the second chamber <b>228</b>. For example, the inner walls <b>234</b> are provided with ninety-six apertures <b>230</b>, each aperture <b>230</b> corresponding to and aligned with one of the plurality of outlets <b>214</b> extending from the body portion <b>212</b>. The apertures <b>230</b> in the inner wall are aligned with a corresponding outlet <b>214</b> such that the central axes <b>248</b>, <b>250</b> of the aperture <b>230</b> and the corresponding outlet <b>214</b> are coplanar (e.g., in the cross-sectional plane shown in <figref idref="DRAWINGS">FIG. 6A</figref>). As shown, the apertures <b>230</b> include downward facing tubular portions <b>246</b> that extend from the apertures and project into the seed chamber <b>226</b> such that seeds within the seed chamber <b>226</b> do not fall into the air chamber <b>228</b>.
The outlets <b>214</b> extend from the external walls <b>232</b> of the body portion <b>212</b> in an orthogonal array, though the outlets <b>214</b> may be otherwise diagonally staggered, radially arrayed, or randomly located along the outer walls of the body portion <b>212</b>. For example, the array shown in <figref idref="DRAWINGS">FIG. 5</figref> includes seven rows of six outlets <b>214</b>, followed by a row of four outlets <b>214</b>, and a row of two outlets <b>214</b>. Greater or fewer rows or columns may be otherwise used. This array is mirrored on the other side of the dispersion unit <b>242</b>. A bridge member <b>252</b> corresponding to each aperture/outlet pair bridges the gap between (i.e., connects) the corresponding portion <b>246</b> and outlet <b>214</b> and extends above the pair to reduce the influence of the seeds located above an entrainment region <b>254</b> (i.e., directly between the aperture/outlet pair) on the air flow which moves the product to and through the outlet <b>214</b>.
The ninety-six outlets <b>214</b> each feed a secondary conduit <b>236</b>, which in turn leads to a mini-hopper <b>38</b> and singulating meter <b>22</b> similarly to the arrangement shown downstream of the dispersion unit <b>42</b> in <figref idref="DRAWINGS">FIG. 2</figref> directing seed to mini-hopper <b>38</b>. The dispersion unit <b>242</b> may be provided with more or fewer outlets <b>214</b> to correspond with the total number of desired secondary conduits <b>236</b>, mini-hoppers <b>38</b>, and singulating meters <b>22</b>.
One or more fill sensors <b>258</b> may be located within the unit <b>242</b> to provide an indication of whether the unit <b>242</b> is full. For example, a signal may be sent to a control unit (not shown) if the unit is full, and in turn, the auger <b>131</b> may be slowed or stopped to limit or prevent additional product from entering the main conduit <b>145</b>, the inlet portion <b>210</b>, and the first chamber <b>226</b> of the unit <b>242</b>. Alternatively, unit <b>242</b> may be supplied with seed from tank <b>18</b>C via meter <b>14</b>C as shown in <figref idref="DRAWINGS">FIG. 2</figref>, the unit <b>242</b> being used in place of unit <b>42</b> of <figref idref="DRAWINGS">FIG. 2</figref>.
In operation, the tank <b>118</b>D provides seeds to the dispersion unit <b>242</b> via the auger <b>139</b> and main conduit <b>145</b>. The seeds, propelled by airflow from a fan (such as fan <b>37</b>B) enter the common inlet <b>216</b> of the inlet portion <b>210</b> of the dispersion unit <b>242</b> and continue into the body portion <b>212</b> of the unit <b>242</b> via the seed inlet <b>218</b>. The seeds gather within the seed chamber <b>226</b> of the body portion <b>212</b>. The seeds bypass the air inlet <b>220</b>, unable to pass through due to the screen <b>256</b> covering the passage. On the other hand, air is capable of passing through the screen <b>256</b>, and continues to the body portion <b>212</b> of the unit <b>242</b> via the air inlet <b>220</b>. The air enters into the air plenum <b>228</b> of the body portion <b>212</b>. From here, the air passes through the apertures <b>230</b> that connect the air chamber <b>228</b> and seed chamber <b>226</b>, moving the seeds within the seed chamber from the entrainment region <b>254</b> to and through an adjacent outlet <b>214</b>. From each respective outlet <b>214</b>, the seeds are directed to singulating meters, as discussed above with respect to the system <b>10</b> as shown downstream of the dispersion unit <b>42</b> in <figref idref="DRAWINGS">FIG. 2</figref>.
In another embodiment, as shown in <figref idref="DRAWINGS">FIGS. 7-8</figref>, the dispersion unit <b>342</b> consists of an inlet portion <b>310</b>, a body portion <b>312</b>, and a plurality of outlets <b>314</b> extending from the body portion <b>312</b>. The dispersion unit <b>342</b> is similar to the dispersion unit <b>242</b>, except as otherwise described. The body portion <b>312</b> of the dispersion unit <b>342</b> is smaller in size than that of the dispersion unit <b>242</b>. The inner walls <b>334</b> are provided with fewer apertures <b>330</b>, and the external walls <b>332</b> are provided with fewer corresponding outlets <b>314</b> than the dispersion unit <b>242</b> shown in <figref idref="DRAWINGS">FIGS. 5-6B</figref>. Further, the apertures <b>330</b> and outlets <b>314</b> have a larger diameter such that the volumetric flow rate of air through each aperture <b>330</b> is increased (relative to the apertures <b>230</b> shown in <figref idref="DRAWINGS">FIGS. 6A-6B</figref>) and the volume flow rate of air and entrained product through the outlets <b>314</b> is increased (relative to the outlets <b>214</b> shown in <figref idref="DRAWINGS">FIGS. 5-6B</figref>). As shown, the dispersion unit <b>342</b> includes eight outlets <b>314</b> (i.e., four on each side) in orthogonal or rectangular arrays, each outlet <b>330</b> aligned with one of the apertures <b>314</b>. In contrast to the dispersion unit <b>242</b>, which includes ninety-six outlets <b>214</b> configured to feed ninety-six secondary conduits <b>236</b>, the dispersion unit <b>342</b> only includes eight outlets <b>314</b> configured to feed eight intermediate conduits <b>360</b>. In order to further disperse the seeds or agricultural particles from the eight intermediate conduits <b>360</b> to the ninety-six singulating meters, each intermediate conduit <b>360</b> is provided with a secondary dispersion unit <b>362</b>.
As shown in <figref idref="DRAWINGS">FIG. 9A</figref>, the secondary dispersion unit <b>362</b> includes a J-tube <b>364</b> with a single inlet <b>366</b> from the intermediate conduit <b>360</b>, with twelve outlets <b>378</b>, though the number of outlets may vary based on the total number of singulating meters and outlets <b>314</b> in the unit <b>342</b>. The inlet <b>366</b> has a diameter sized similarly to the diameter of the mating intermediate conduit <b>360</b> and larger than the diameters of the secondary outlet conduits <b>336</b>. Each of the twelve outlets conduits <b>336</b> leads to a mini-hopper <b>38</b> and singulating meter <b>22</b>, similarly to the arrangement shown downstream of the dispersion unit <b>42</b> in <figref idref="DRAWINGS">FIG. 2</figref>.
The J-tube <b>364</b> is formed with an inlet <b>366</b> located at a lowermost point, a curve or elbow <b>368</b>, and a tube portion <b>370</b>, which leads to a base <b>372</b>. The base <b>372</b> defines a central dispersion point <b>374</b>. The J-tube <b>364</b> includes a number of dimples <b>376</b> impressed into the tube portion <b>370</b>. The dimples <b>376</b> are operable to tumble the seeds in various directions, thereby randomizing the flow of seeds to the central dispersion point <b>374</b>. The central dispersion point <b>374</b> extends from the tube portion <b>370</b> with an increasing diameter such that each of twelve outlets <b>378</b> is spaced about an upper periphery <b>382</b> of the base <b>372</b>. The base <b>372</b> includes couplings <b>380</b> for receiving the secondary conduits <b>336</b>, the couplings <b>380</b> extending from the upper periphery <b>382</b> of the base <b>372</b>. Though shown at approximately fifteen degrees relative to an axis of the tube portion <b>370</b>), the couplings <b>380</b> may be positioned from <b>0</b> degrees to <b>15</b> degrees relative to the axis .
As shown in <figref idref="DRAWINGS">FIG. 9B</figref>, the base <b>372</b> may include a chamber <b>388</b> in fluid communication with the inlet <b>366</b> (<figref idref="DRAWINGS">FIG. 9A</figref>) and outlets <b>336</b> via one or more apertures <b>390</b>. The apertures <b>390</b> are sized to prevent seeds from entering the chamber <b>388</b>, yet allow the chamber <b>388</b> to pressurize with the remainder of the base <b>372</b>. A pressure sensor <b>392</b> may be located within the chamber <b>388</b> or elsewhere within the base <b>372</b> of the J-tube <b>364</b> to determine how many downstream meters (e.g., such as singulating meters <b>22</b>) are demanding seed. A lower wall <b>394</b> of the chamber <b>388</b> is conical and is therefore operable to direct seeds towards the periphery of the base <b>372</b> and towards the outlets <b>378</b>.
An annular frame <b>384</b> is provided to support the secondary conduits <b>336</b> adjacent the couplings <b>380</b>. The annular frame <b>384</b> is attached to the vertical portion <b>370</b> of the J-tube <b>364</b> via support brackets <b>386</b>. When assembled, the secondary conduits <b>336</b> drape over the top of the annular frame <b>384</b>. This limits the stress on the couplings <b>380</b> and increases the vertical height of the secondary conduits <b>336</b>. The annular frame <b>384</b> may be adjustable to vary the vertical height of the secondary conduits <b>336</b>, or may otherwise be fixed (e.g., fastened) at a set height.
In operation, the tank <b>118</b>D provides seeds to the dispersion unit <b>342</b> via the auger <b>139</b> and main conduit <b>145</b>. The seeds, propelled by airflow from a fan (such as fan <b>37</b>B) enter the common inlet <b>316</b> of the inlet portion of the dispersion unit <b>342</b> and continue into the body portion <b>312</b> of the unit <b>342</b> via the seed inlet <b>318</b>. The seeds gather within the seed chamber <b>326</b> of the body portion <b>312</b>. The airflow continues to the body portion <b>312</b> of the unit <b>342</b> via the air inlet <b>320</b>. The air enters into the air chamber <b>328</b> of the body portion <b>312</b>. From here, the air passes through the apertures <b>330</b> that connect the air chamber <b>328</b> and seed chamber <b>326</b>, moving the seeds within the entrainment region <b>354</b> of the seed chamber <b>326</b> to and through an adjacent outlet <b>314</b>. From each respective outlet <b>314</b>, the seeds continue to the respective intermediate conduits <b>360</b> and secondary dispersion units <b>362</b>. At each secondary dispersion unit <b>362</b>, the seeds enter the J-tube <b>364</b> at the inlet <b>366</b>, and continue through the bend <b>368</b> and into the tube portion <b>370</b> of the tube <b>364</b>. Here, the dimples <b>376</b> disrupt the flow of the seeds such that they enter the central dispersion point <b>374</b> in various directions. The seeds are propelled by the airflow into one of the secondary conduits <b>336</b> via the outlets <b>378</b> located about the upper periphery <b>382</b> of the base <b>372</b>. Increasing the height of the secondary conduits <b>336</b> by draping them over the annular frame <b>384</b> increases the air pressure/flow threshold required to move seeds into the secondary conduits <b>336</b>. Once within the secondary conduits <b>336</b>, the seeds are further metered (e.g., singulated), as discussed above with respect to the system <b>10</b> downstream of the dispersion unit <b>42</b>, as shown in <figref idref="DRAWINGS">FIG. 2</figref>. When one of the secondary conduits <b>336</b> requires no additional seeds (i.e., the downstream mini-hopper <b>38</b> is full), airflow through the conduit <b>336</b> will be restricted, preventing further seeds from passing therethrough. The combination of the restricted air flow and the upward orientation of the couplings <b>380</b> and secondary conduits <b>336</b> prevents further seed flow though the secondary conduits to the singulating meters. Once seed from the mini-hopper has been consumed and the air outlet of the mini-hopper is no longer covered, air flow will begin again through the secondary conduit <b>336</b> carrying seed once again to the mini-hopper. Further, the pressure sensor recognizes the change in pressure and may provide a reading to a control unit (not shown) that corresponds with a decrease in the flow of seeds from the auger <b>139</b> and tank <b>118</b>D. The control unit may in turn relay such a change to the motor driving the auger <b>139</b>, thereby modifying the rotational velocity of the auger <b>139</b>.
In yet another embodiment, a tank assembly <b>410</b> consists of a tank <b>412</b> and a plurality of dispersion units <b>442</b> each similar to a dispersion units <b>42</b>, except as described below with respect to air and product inlets <b>414</b>, <b>416</b>. The tank <b>412</b> is a trough that narrows at a base <b>418</b> and is located around the plurality of dispersion units <b>442</b>. One or more of the walls <b>420</b> of the trough may be integral with or attached to walls <b>422</b> of the dispersion units <b>442</b>. As shown, the dispersion units <b>442</b> are staggered relative to one another along one of the walls <b>420</b>, with the lowermost dispersion unit <b>442</b> centered at the base <b>418</b> of the trough.
In contrast to the dispersion units <b>42</b>, which include a product and air inlet located along a sidewall of the unit and connected to a main conduit, the upper end <b>424</b> of the dispersion units <b>442</b> is open to the tank as a fill opening and product inlet <b>416</b>. Therefore, when the tank <b>412</b> is filled with seeds or other agricultural particles, hoppers <b>434</b> of the dispersion units <b>442</b> are likewise filled. As product leaves the dispersion units <b>442</b>, additional product within the tank <b>412</b> refills the units <b>442</b>.
Each dispersion unit <b>442</b> includes one or more air inlets <b>414</b> provided directly to each unit <b>442</b>. The air inlets <b>414</b> provide air to entrainment region <b>454</b> as described above with respect to <figref idref="DRAWINGS">FIG. 3A</figref>.
Referring back to <figref idref="DRAWINGS">FIG. 10</figref>, each dispersion unit <b>442</b> is provided with multiple outlets <b>430</b> (i.e., extending into the page; aligned with one another in the cross-section shown), each opposite an inlet <b>414</b>, for the air and entrained product from the entrainment region <b>454</b>. The air inlets <b>414</b> may begin as a single channel at a fan or alternative air source, and branch into the individual inlets <b>414</b>. With three dispersion units <b>442</b> each having thirty-two inlets <b>414</b> and outlets <b>430</b>, the tank assembly <b>410</b> includes ninety-six total outlets <b>430</b>, each outlet <b>430</b> feeding a secondary conduit <b>436</b>, which in turn leads to a mini-hopper <b>38</b> and singulating meter <b>22</b> as shown in <figref idref="DRAWINGS">FIG. 2</figref>. The dispersion units <b>442</b> may be provided with more or fewer outlets <b>430</b> to correspond with the total number of desired secondary conduits <b>436</b>. Further, the tank <b>412</b> or the units <b>442</b> may be provided with sensors <b>432</b> to inform an operator when the units <b>442</b> are empty or running out of seeds.
Each dispersion unit <b>442</b> includes an upstream sidewall <b>442</b>A, a downstream sidewall <b>442</b>B, a bottom wall <b>442</b>C, and an open upper end <b>424</b>, with the upstream sidewall <b>442</b>A including the plurality of air inlets <b>414</b> and the downstream sidewall <b>442</b>B including the plurality of air and entrained product outlets <b>430</b>. The apertures or openings (e.g., between adjacent bridges <b>452</b>) connecting the hopper <b>434</b> and the seed channels or nozzle assemblies <b>428</b> extend into the page of <figref idref="DRAWINGS">FIG. 10</figref> (i.e., one aperture and one seed channel <b>428</b> per outlet <b>430</b>) such that the tank assembly <b>410</b> includes a plurality of seed channels <b>428</b> vertically stacked relative to one another and horizontally offset so that each open upper end <b>424</b> is exposed to receive product. Seed channel <b>428</b> is formed similarly to the nozzle assembly <b>56</b> shown in <figref idref="DRAWINGS">FIG. 3A</figref>.
In operation, a user fills the tank <b>412</b> with seed such that the seeds fill each of the dispersion units <b>442</b>. The seeds fall into the seed channel <b>428</b> within each unit <b>442</b>. Air flows from the air inlets <b>414</b> entrains the seeds from the seed channel <b>428</b>, out the air and entrained product outlets <b>430</b>, and to the secondary conduits <b>436</b>. Once within the secondary conduits <b>436</b>, the seeds are further metered (e.g., singulated), as discussed above with respect to the system <b>10</b> downstream of the dispersion unit <b>42</b>, as shown in <figref idref="DRAWINGS">FIG. 2</figref>. Alternatively, the tank <b>412</b> may be replenished with seed from another tank on an ongoing basis as seed from the tank <b>412</b> is consumed.
Various features of the disclosure are set forth in the following claims.
Contents5
17 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14 Sheet 15 Sheet 16 Sheet 17
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92 transactions on the USPTO file
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Numbers
- Publication
- 20170086355
- Publication, DOCDB
- 2017086355
- Publication, EPODOC
- US2017086355
- Application
- 15290345
- Application, DOCDB
- 201615290345
- Application, EPODOC
- US201615290345
Titles
- English
- SEEDING SYSTEM
Patent term adjustment
- A delay
- +37 daysthe office missed an examination deadline
- Applicant delay
- −197 days
- Net adjustment
- 0 days
Classification
- CPC, 8
- A01C15/006
- A01C7/082
- A01C7/06
- A01C7/084
- A01C7/081
- A01C7/102
- A01C15/04
- B65G53/04
- IPC, 3
- A01C7 08
- A01C15 00
- A01C7 06
- USPC, 1
- 001001000