Dual-impeller spreader with dual shut-off controls
11553641 · 2023-01-17
Assignee
Inventors
- Richard Sevrey (Bristol, IN, US)
- Justin B Parizek (Millersburg, IN, US)
- Casey Martin (South Bend, IN, US)
- John Marshall (Granger, IN, US)
- Tim Jones (Osceola, IN, US)
Cpc classification
B05B3/1057
PERFORMING OPERATIONS; TRANSPORTING
Y02P60/21
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
E01H10/007
FIXED CONSTRUCTIONS
B05B12/002
PERFORMING OPERATIONS; TRANSPORTING
A01C17/008
HUMAN NECESSITIES
A01C17/001
HUMAN NECESSITIES
International classification
E01H10/00
FIXED CONSTRUCTIONS
B05B12/00
PERFORMING OPERATIONS; TRANSPORTING
B05B3/10
PERFORMING OPERATIONS; TRANSPORTING
A01C7/08
HUMAN NECESSITIES
Abstract
A dual-impeller spreader capable of independently a flowrate of particulate material about two halves of the spreader's coverage area. The spreader includes a frame, a hopper, and wheels rotatably connected to the frame via an axle. A first impeller is fixed to a first impeller shaft rotatably coupled to the axle via a first gear train, and a second impeller is fixed to a second impeller shaft rotatably coupled to the axle via a second gear train. A first shut-off control selectively opens and closes a first set of hopper exit openings located above the first impeller, while a second shut-off control selectively opens and closes a second set of hopper exit openings located above the second impeller. The first shut-off control and the second shut-off control selectively open and close the respective openings independent of each other.
Claims
1. A broadcast spreader comprising: a frame; a push handle extending rearward from the frame and configured to be pushed by a user during operation of the spreader; a hopper connected to the frame and configured to hold particulate material to be spread about a surface; a plurality of wheels rotatably connected to the frame via an axle and configured to roll along the surface; a first impeller shaft rotatably coupled to the axle via a first gear train; a first impeller fixedly coupled to the first impeller shaft and configured to rotate with the first impeller shaft; a first shut-off adjustment plate positioned between said hopper and said first impeller and configured to adjust an amount of particulate material exiting from said hopper; a second impeller shaft rotatably coupled to the axle via a second gear train; a second impeller fixedly coupled to the second impeller shaft and configured to rotate with the second impeller shaft; a second shut-off adjustment plate positioned between said hopper and said second impeller and configured to adjust an amount of particulate material exiting from said hopper; a first shut-off control attached to a right side of the push handle; a second shut-off control attached to a left side of the push handle; a first, rigid control rod extending from said first shut-off control to said first shut-off adjustment plate and configured to operably connect said first shut-off control with said first shut-off adjustment plate; a second, rigid control rod extending from said second shut-off control to said second shut-off adjustment plate and configured to operably connect said second shut-off control with said second shut-off adjustment plate; wherein the first and second impellers are configured to rotate via power provided by the plurality of wheels as the wheels roll along the surface, wherein, when viewing the broadcast spreader from where a user pushes the spreader in a forward direction during operation, the first impeller is on a right side of the second impeller and, when viewed from above, the first impeller is configured to rotate in a clockwise direction as the broadcast spreader moves in the forward direction and the second impeller is configured to rotate in a counterclockwise direction as the broadcast spreader moves in the forward direction, wherein the forward direction is a direction of travel of said broadcast spreader during operation, and wherein the first and second impellers are configured to broadcast particulate material in the forward direction and in lateral directions during operation.
2. The broadcast spreader of claim 1, further comprising: a first gearbox proximate the first impeller shaft and including: a first axle gear fixedly coupled to the axle; and a first pinion gear fixedly coupled to the first impeller shaft and meshed to the first axle gear; and a second gearbox proximate the second impeller shaft and including: a second axle gear fixedly coupled to the axle; and a second pinion gear fixedly coupled to the second impeller shaft and meshed to the second axle gear, wherein the first pinion gear is located on a first side of the first axle gear and the second pinion gear is located on a second side of the second axle gear, and wherein the first side is opposite of the second side thereby causing the first impeller to rotate in the clockwise direction and the second impeller to rotate in the counterclockwise direction as the plurality of wheels roll along the surface.
3. The broadcast spreader of claim 1 further comprising: a first plurality of openings and a second plurality of openings, wherein the broadcast spreader is configured to have a full coverage area when both the first plurality of openings and the second plurality of openings are open, wherein the first impeller is configured to spread particulate material on a first half of the full coverage area when the first plurality of openings are open, and wherein the second impeller is configured to spread particulate material on a second half of the full coverage area when the second plurality of openings are open.
4. The broadcast spreader of claim 3, further comprising: wherein said first shut-off adjustment plate abuts the first plurality of openings; and wherein said second shut-off adjustment plate abuts the second plurality of openings.
5. The broadcast spreader of claim 4, further comprising: wherein said first shut-off control is configured to selectively open and close the first plurality of openings provided in the hopper above the first impeller; wherein said second shut-off control is configured to selectively open and close the second plurality of openings provided in the hopper above the second impeller; and wherein the first shut-off control and the second shut-off control are movable from a fully open position to a fully closed position, wherein, when the first shut-off control is rotated from the fully open position to the fully closed position, the first control rod assembly causes the first shut-off adjustment plate to rotate and thus open and close the first plurality of openings, and wherein, when the second shut-off control is rotated from the fully open position to the fully closed position, the second control rod assembly causes the second shut-off adjustment plate to rotate and thus open and close the second plurality of openings.
6. The broadcast spreader of claim 3 further comprising: wherein said first shut-off control is configured to selectively open and close the first plurality of openings provided in the hopper above the first impeller; and wherein said second shut-off control is configured to selectively open and close the second plurality of openings provided in the hopper above the second impeller, wherein the first shut-off control and the second shut-off control are configured to selectively open and close the first plurality of openings and the second plurality of openings, respectively, independent of each other.
7. The broadcast spreader of claim 6, wherein the first shut-off control and the second shut-off control are configured to be selectively moved to a plurality of intermediate positions between a fully open position and a fully closed position, and wherein, when the first shut-off control and the second shut-off control are in one of the plurality of intermediate positions, the first plurality of openings and the second plurality of openings, respectively, are partially obstructed.
8. The broadcast spreader of claim 6 further comprising: wherein the first shut-off control and the second shut-off control are mounted to the push handle proximate each other such that, when both the first shut-off control and the second shut-off control are either in the fully open position or the fully closed position, the first shut-off control and the second shut-off control abut each other and are configured to be moved together.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The present invention is described in detail below with reference to the attached drawing figures, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
(21) At a high level, the subject matter of this application generally relates to walk-behind and other spreaders used to distribute granules such as fertilizer, grass seed, and other grass treatments on lawns, golf courses, and other turf, or used to distribute granules such as salt, sand, ice melt, and others on a variety of surfaces. The spreader includes an innovative dual-impeller design with dual shut-off controls allowing a user to customize the spread pattern and material flowrates to tailor the particulate material application to the specific task at hand. These features will become more readily apparent in the following discussion.
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(23) The dual-impeller spreader 100 includes a frame 102, a vessel or hopper 104 mounted to the frame 102, and a push handle 106 mounted to and extending upright and rearward from the frame 102. Attached to the push handle 106 near a distal end thereof (i.e., an end of the push handle 106 farthest from the hopper 104, which is held by a user during operation) are a plurality of shut-off controls 108, 109. A first shut-off control 108 is attached to a right side of the push handle 106, and a second shut-off control 109 is attached to a left side of the push handle 106. As used herein, “right” and “left” refer to the right and left sides of the dual-impeller spreader 100 when the spreader 100 is viewed from behind; i.e., from the view shown in
(24) Attached to a lower portion of the frame 102 via an axle 116 is a pair of wheels 110, 111, with a first wheel 110 at the right end of the axle 116 and a second wheel at the left end of the axle 116. Operatively connected to the axle 116 between the wheels 110, 111 is a first gear box 114 and a second gear box 115. As will be explained in more detail below, the gear boxes 114, 115 include internal gear trains (
(25) As best seen in
(26) Pivotally mounted about each impeller shaft 118, 119 is a shut-off adjustment plate 122, 123. More particularly, a first shut-off adjustment plate 122 is pivotally mounted about the first impeller shaft 118, and is operatively connected to the first shut-off control 108 via a first control rod assembly 120, while a second shut-off adjustment plate 123 is pivotally mounted about the second impeller shaft 119, and is operatively connected to the second shut-off control 109 via a second control rod assembly 121.
(27) As best seen in
(28) Each shut-off adjustment plate 122, 123 is rotatable about the respective impeller shaft 118, 119 via a pivot opening 128, 129 (
(29) In some embodiments, the shut-off adjustment plates 122, 123 may include one or more elongated curved openings 132, 133, each of which receives a respective protrusion 137 formed on an underneath side of the hopper 104 (
(30) The control rod assemblies 120, 121 are attached to the shut-off adjustment plates via respective control rod attachment openings 134, 135 at one end and to the respective shut-off control 108, 109 at the opposite end. As best seen in
(31) As best seen in
(32) Again, the shut-off controls 108, 109 are independently movable with respect to one another so that a user can selectively and independently control the rate of particulate material dispersed from each side of the dual-impeller spreader 100. This will be more readily understood with reference to
(33) This opposing rotation of the impellers 112, 113 is achieved by placing pinion gears 178, 179 driving the respective impeller shafts 118, 119 on opposite sides of respective axle gears 176, 177 within the gear boxes 114, 115. This is best seen in
(34) Conversely, the second pinion gear 179 is located to the left of the second axle gear 177, and thus spins in an opposite direction of the first pinion gear 178. More particularly, the second axle gear 177 is meshed with the second pinion gear 179 at an upper end thereof, but on the left side of the first axle gear 177. The second pinion gear 179 is in turn fixedly mounted to the second impeller shaft 119, to which the second impeller 113 is also fixedly mounted. As the second axle gear 177 rotates in response to the dual-impeller spreader 100 moving along the ground and thus turning the axle 116, the second pinion gear 179 in turn rotates in a counterclockwise direction when viewed from above (due to its location on the left side of the second axle gear 177), which thus rotates the second impeller 113 in the counterclockwise direction.
(35) The novel rotational pattern of the dual spinning impellers 112, 113 results in each impeller contributing to approximately half of the dual-impeller spreader 100's coverage area, as will be understood with reference to
(36) However, in certain applications the user may not want to evenly distribute the particulate material, and thus can move the shut-off controls 108, 109 independent of each other to achieve a desired application pattern. For example, in
(37) It should be appreciated that the user could also use the shut off controls 108, 109 to completely turn off one side of the dual-impeller spreader 100 and thus only apply particulate material to one half of the full coverage area 180, as shown in
(38) According to some aspects, one or both of the shut-off adjustment plates 122, 123 can be equipped with a spread control mechanism such as the spread control mechanisms discussed extensively in U.S. Pat. No. 9,820,430, entitled “Spread Control Mechanism,” and U.S. Patent Application Publication No. 2018/0035604, entitled “Spread Control Mechanism,” which are hereby incorporated by reference in their entirely. Additionally, other spread adjustment mechanisms may be implemented on the dual-control spreader such as those described in U.S. Pat. No. 9,192,094, entitled “Adaptable Spreader,” U.S. Pat. No. 9,198,345, entitled “Adaptable Spreader,” or U.S. Pat. No. 10,225,976, entitled “Adaptable Spreader,” which are hereby incorporated by reference in their entirely.
(39) More particularly, in some embodiments each impeller shaft 118, 119 can include a spread control assembly 136, which is shown in
(40) In addition, activation of the spread control assembly 136 causes the material to be dispersed outward from one side of the impeller 112, 113 while impeding material from being dispersed out an opposite side of the impeller 112, 113. It is to be understood that the spread control assembly 136 can be configured to impede material dispersion from either side of the impeller 112, 113. Thus, in one example embodiment, the material may be dispersed from a first side (e.g., left or right) and impeded from being dispersed from a second side (e.g., right of left). Therefore, the example embodiment described herein and illustrated in the figures is for illustrative purposes only and is not intended to limit the scope of the innovation.
(41) The spread control assembly 136 includes a spread control mechanism 138, a shut-off adjustment plate 154 (which can be similar in construction to the shut-off adjustment plates 122, 123 discussed above, or which may be modified to include, for example more exit openings 156 as shown in
(42) The shut-off adjustment plate 154 includes the multiple exit openings 156 defined therein and multiple elongated curved openings 158 that serve as hopper attachments openings whereby the shut-off adjustment plate 154 attaches to an outside bottom of the hopper 104 in a similar manner as discussed above with respect to shut-off adjustment plates 122, 123. The shut-off adjustment plate 154 further includes a vertically projecting stop mechanism 160, a control rod attachment opening 162, and multiple hold down bosses 164 that receive fasteners 166 that serve to hold down the spread control mechanism 138.
(43) In the depicted embodiments there are three exit openings 156 defined in the shut-off adjustment plate 154, however in other embodiments the shut-off adjustment plate may have less than three (such as the two openings 130, 131 in each of the shut-off adjustment plates 122, 123 discussed above) or more than three openings. In that regard, there can be any number of exit openings 156 defined in the shut-off adjustment plate 154. In one example embodiment, the number of exit openings 156 is at least one greater than a number of paddles 142, 144. Thus, when the spread control mechanism 138 is activated all but one exit opening 156 will be covered thereby impeding any material from exiting the covered exit openings 156. Therefore, a reduced amount of material will exit the remaining exit openings 156, which directs the material to exit one side of the respective spread pattern 182, 184 of each impeller 112, 113.
(44) When the spread control mechanism 138 is in a non-activated position (as shown), the spread control mechanism 138 is positioned such that all of the exit openings 156 are uncovered. The spread control mechanism 138 is slidably attached through the curved slot 150 via a washer head screw or other suitable device. Thus, the handle 140 may be grasped and moved, thereby urging the spread control mechanism 138 to be moved or slid along the path defined by slot 150 so as to move the spread control mechanism 138 between the activated (closed) and deactivated (open) state. The vertically projecting stop mechanism 160 impedes the spread control mechanism 138 from pivoting past the associated exit openings 156 intended for selective closure.
(45) The pivot mechanism 168 is circular and is integrated into the shut-off adjustment plate 154. The curved pivot engagement portion 146 of the spread control mechanism 138 engages the pivot mechanism 168 to facilitate pivoting of the spread control mechanism 138 with respect to the shut-off adjustment plate 154. Thus, in order to pivot the spread control mechanism 138, the user pivots or rotates the user pivots or rotates the spread control mechanism 138 about the pivot mechanism 168 to the desired position. The pivot mechanism 168 includes a pivot opening 170 for receiving an impeller shaft such as the first impeller shaft 118 or the second impeller shaft 119.
(46) When the spreader described herein is further equipped with a spread control assembly such as the spread control assembly 136 described above or other spread control assembly, the respective spread patterns 182, 184 of each impeller 112, 113 is further customizable according to the particular application. This may be better understood with reference to
(47) For example, in the depicted embodiment, the user has activated the spread control mechanism at each respective shut-off adjustment plate resulting in a spread pattern that only distributes particulate material to the right of the dual-impeller spreader 100 at the spread coverage area 182a, and the left of the dual-impeller spreader 100 at the spread coverage area 184a. Notably, by activating the spread control mechanisms the user was able to prevent particulate material from being dispersed in front on the spreader in areas 182b and 184b. And as should be appreciated given the discussion of
(48) The dual-impeller spreader 100 may be equipped with other features that enable a user to customize the spread area and rates and/or to track how much particulate has been applied using the chosen spread pattern such as the patterns discussed in connection with
(49) From the foregoing, it will be seen that this invention is one well adapted to attain all the ends and objects hereinabove set forth together with other advantages which are obvious and which are inherent to the structure. It will be understood that certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations. This is contemplated by and is within the scope of the claims. Since many possible embodiments may be made of the invention without departing from the scope thereof, it is to be understood that all matter herein set forth or shown in the accompanying drawings is to be interpreted as illustrative and not in a limiting sense. Additional objects, advantages, and novel features of the invention will be set forth in part in the description which follows, and in part will become apparent to those skilled in the art upon examination of the following or may be learned by practice of the invention.