Hopper insert for an asphalt paving machine
09702095 ยท 2017-07-11
Assignee
Inventors
- Laikram Narsingh (Chambersburg, PA, US)
- James E. Meridieth (South Gallatin, TN, US)
- Jay Scott Johnson (Orlando, FL, US)
Cpc classification
International classification
Abstract
A hopper insert is provided for an asphalt paving machine. The hopper insert provides for passive mixing of asphalt material, and also provides a dual capacity loading option. Two upper baffles extend across an open upper end of the hopper insert. A grate extends between the upper baffles. Asphalt material is received on top of the grate between the upper baffles.
Claims
1. A hopper insert apparatus for an asphalt paving machine, the apparatus comprising: a perimeter wall defining a hopper insert interior, the interior having an open upper end for receiving incoming asphalt material, and an open lower end for discharging the asphalt material, an upper end cross-sectional area of the open upper end being greater than a lower end cross-sectional area of the open lower end; first and second upper baffles extending across the hopper insert interior and supported from the perimeter wall at an elevation closer to the open upper end than to the open lower end, the upper baffles being laterally spaced apart from each other; and a grate supported within the interior, the upper baffles extending upwardly higher than the grate for retaining asphalt material on the grate.
2. The apparatus of claim 1, wherein: the upper baffles each include at least a central portion extending higher than the perimeter wall.
3. The apparatus of claim 2, wherein: the upper baffles each include end portions attached to the perimeter wall, the central portion of each of the upper baffles extending higher than the end portions of each of the upper baffles.
4. The apparatus of claim 1, wherein: the grate includes a plurality of parallel grate bars spaced apart from each other by a spacing in a range of from about 3 inches to about 8 inches.
5. The apparatus of claim 4, wherein: the grate bars extend between the first and second upper baffles.
6. The apparatus of claim 1, wherein: the grate defines an upper grate surface located at least 12 inches lower than an uppermost extent of the upper baffles.
7. The apparatus of claim 1, wherein: the grate is laterally spaced from the perimeter wall around at least a majority of a periphery of the perimeter wall so that at least one grate bypass is defined between the grate, the perimeter wall and the upper baffles.
8. The apparatus of claim 1, wherein: each of the upper baffles each have a lower edge located lower than the open upper end.
9. The apparatus of claim 1, wherein: the first and second upper baffles flare downwardly away from each other.
10. The apparatus of claim 1, wherein: the lateral spacing between the first and second upper baffles varies along a length of the upper baffles.
11. The apparatus of claim 1, wherein: the perimeter wall includes a front wall portion and a rear wall portion; and the upper baffles have front and rear ends supported from the front and rear wall portions, respectively.
12. The apparatus of claim 1, wherein the perimeter wall includes: four major walls joined together at their lower ends to define a four sided opening having four lower corners, the four major walls sloping away from each other along at least part of a wall height from their lower ends toward their upper ends; and four lower baffles located above the four lower corners, respectively, each lower baffle covering one of the lower corners and extending laterally inward and downward from the peripheral wall, so as to divert material travelling downward toward the lower corners laterally inward.
13. The apparatus of claim 12, wherein the perimeter wall further includes: at least one corner wall joining each two adjacent major walls so that the open upper end is polygonal having at least eight sides.
14. The apparatus of claim 1, wherein: the grate is superimposed over at least a majority of the lower end cross-sectional area of the open lower end.
15. A hopper insert apparatus for an asphalt paving machine, the apparatus comprising: a perimeter wall defining a hopper insert interior, the interior having a larger open upper end for receiving incoming asphalt material and a smaller open lower end for discharging the asphalt material; a grate, the grate being located closer to the open upper end than to the open lower end, the grate being laterally spaced from the perimeter wall around at least a majority of a periphery of the perimeter wall; and first and second grate boundary walls extending along opposite sides of the grate and attached to opposite sides of the peripheral wall, the grate boundary walls extending higher than the grate.
16. The apparatus of claim 15, wherein: the grate is laterally spaced from the perimeter wall around the entire periphery of the perimeter wall so as to form an island grate.
17. The apparatus of claim 15, wherein: the perimeter wall includes a front wall portion and a back wall portion; the open lower end has a lower end length from the front wall portion to the back wall portion, and a lower end width perpendicular to the lower end length; and the grate has a grate length greater than the lower end length, and a grate width having a maximum grate width greater than the lower end width.
18. The apparatus of claim 17, wherein: the grate width varies along the grate length.
19. The apparatus of claim 15, wherein: the grate has a grate upper surface located lower than an upper edge of the perimeter wall.
20. The apparatus of claim 15, wherein: the first and second grate boundary walls define an interior portion of the open upper end having an interior portion cross-sectional area less than a cross-sectional area of the open upper end; and at least a portion of the interior portion cross-sectional area adjacent a portion of the peripheral wall is ungrated so as to define a bypass zone between the boundary walls.
21. The apparatus of claim 15, wherein: the grate includes a plurality of parallel grate bars spaced apart from each other by a spacing in a range of from about 3 inches to about 8 inches.
22. The apparatus of claim 21, wherein: the plurality of grate bars includes at least six grate bars.
23. The apparatus of claim 22, wherein: the grate bars are equally spaced from each other.
24. The apparatus of claim 15, wherein: the grate is superimposed over at least a majority of the open lower end.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(14)
(15) The material transfer vehicle 14 conveys the asphalt material up a first conveyor 16 to a second conveyor 18. Material exits the upper end 20 of the second conveyor 18 into a hopper insert 22 constructed in accordance with the present invention. The hopper insert 22 is received within an integral hopper 24 on the front of an asphalt paving machine 26. The asphalt paving machine 26 has a horizontally extending conveyor schematically indicated at 28 which runs under the bottom of the integral hopper 24 and carries the asphalt material to the rear of the paving machine 26 where the asphalt material is laid down to form a newly laid asphalt layer 30.
(16) As schematically illustrated in
(17) Details of construction of one embodiment of the hopper insert 22 are shown in
(18) The hopper insert 22 includes a perimeter wall 32 defining a hopper insert interior 33 having an open upper end 34 and an open lower end 36. The perimeter wall 32 includes a front wall portion 38, a rear wall portion 40, a left side (from the perspective of the operator of the paving machine 26) wall portion 42, a right side wall portion 44, a left front corner wall portion 46, a right front corner wall portion 48, a right rear corner wall portion 50, and a left rear corner wall portion 52.
(19) The front wall portion 38, rear wall portion 40, left side wall portion 42, and right side wall portion 44 may be generally referred to as four major wall portions. By the term major wall portion it is meant that these four wall portions have a longer perimeter on their upper edges than do the other wall portions. In one embodiment, the four major wall portions may be rectangular plates. In another embodiment they may be trapezoidal in shape. In another embodiment each of the side wall portions such as 44 may be made of two triangular plates such as 44A and 44B seen in
(20) In an embodiment, the four corner wall portions 46, 48, 50 and 52 may be triangular shaped plates as shown.
(21) The open upper end 34 may be polygonal in shape having eight sides. The lower open end 36 may be four sided. With the use of the lower baffles 56 described below, the lower open end 36 may be considered to be eight sided.
(22) As seen in
(23) A generally horizontal extending lower flange 54 may extend outward from near the lower end of the perimeter wall 32 to provide a base for supporting the hopper insert on the floor 62 of the integral hopper 24 of the paving machine 26. The lower edge of the perimeter wall 32 may extend slightly below the flange 54 to aid in centering the hopper insert 22 in the opening 64 of the paving machine conveyor 28 seen in
(24) The four major walls 38, 40, 42 and 44 may be joined together at their lower ends to define the open lower end 36 of the hopper insert 22 as a four sided opening having four lower corners 55A, 55B, 55C and 55D, as seen in dashed lines in
(25) In the embodiment of
(26) As best seen in
(27) Each of the lower baffles 56 may be formed from a generally trapezoidal shaped steel plate welded to the inner surfaces of three converging walls. For example, the lower baffle 56C as seen in
(28) It is noted that depending upon the size of the lower baffles 56A-D and their proximity to the lower end of the perimeter wall 32, the lower baffles 56A-D may also be considered to partially define the shape of the open lower end 36 in which case the open lower end 36 may be considered to be eight sided.
(29) As best seen in
(30) In one embodiment, the four sided lower opening 36 of hopper insert 22 may be dimensioned to substantially correspond to typical dimensions of the floor opening 64 above the conveyor 28 of the paving machine 26.
(31) The hopper insert 22 may include first and second upper baffles 76 and 78 extending across the open upper end 34 of the hopper insert 22 and supported from the front and rear wall portions 38 and 40 of perimeter wall 32. As is best appreciated in the side elevation view of
(32) As is best seen in the plan views of
(33) As also seen in
(34) As seen in
(35) Although the grate bars 88 are shown in the illustrated embodiments as extending transversely between the generally lengthwise arranged upper baffles 76 and 78, other patterns and arrangements of the grate bars 88 may be used. For example, the grate bars 88 could run lengthwise substantially parallel to the central portions of the baffles 76 and 78 with the forward and rearward ends of the grate bars being supported by a suitable cross member extending between the baffles 76 and 78. Optionally, the grate bars could be oriented obliquely relative to the length or width of the hopper insert 22. Optionally, the grate 86 does not have to be constructed simply with parallel grate bars, but the grate could be arranged in a grid or other pattern. The controlling factor is to provide an arrangement with appropriate spacing and shapes of spacing between the grate bars so that any clumps in the asphalt material will break and pass through the grate bars.
(36) The baffles 76 and 78 may also be referred to as first and second grate boundary walls 76 and 78 or as opposed lateral retaining walls 76 and 78, extending along opposite sides of the grate 86 and attached to opposite sides 38 and 40 of the peripheral wall 32. The baffles 76 and 78 retain the asphalt material piled on top of the grate 86.
(37) As best seen in
(38) As is best seen in
(39) Preferably, the grate 86 is spaced from the perimeter wall around at least a majority of the perimeter wall 32. In the embodiment of
(40) Optionally, the grate 86, as shown in
(41) The bypass zones 97, 98 and 100 will allow asphalt material to bypass the grate 86 if the grate 86 were to become plugged or bridged over with asphalt material. This ensures that a paving job can continue, even if under less than ideal conditions, if a bridging or plugging problem occurs.
(42) As best seen in
(43) As is also shown in
(44) As best seen in
(45) In the embodiments illustrated, each of the upper baffles 76 and 78 may be formed from a bent plate of steel, wherein central portions 76B and 78B of the baffles run substantially front to rear and are parallel to each other. Forward portions 76A and 78A, and rearward portions 76C and 78C of each baffle are bent laterally inward toward the opposed baffle such that starting from front to rear, the transverse spacing 108 between baffles 76 and 78 increases from the front wall portion 38 toward the rear, until the central portions 76B and 78B of the baffles are reached, at which point the spacing 108 becomes constant across the central portion of the hopper insert 22, and then the spacing 108 becomes smaller as the rear wall 40 is approached. This arrangement aids in preventing aggregate material from gathering in a straight line adjacent the lower lengthwise sides of the bottom opening 36 and in general spreads any segregated aggregate over the width of the hopper insert 22 as the aggregate flows downward through the hopper insert 22. The upper baffles may also be formed of multiple sheets of material joined together.
(46) In the embodiments illustrated in
(47) An alternative lower mounting position for the grate 86 and upper baffles 76 and 78 is shown in
(48) Passive Remixing
(49) As will be understood by those skilled in the art, asphalt material is comprised of an asphaltic binder mixed with sand and aggregate materials of various sizes. When the asphalt material is mixed in the asphalt production plant from which it is obtained by the trucks 10 shown in
(50) The hot uniform asphalt mixture is then deposited in the trucks 10 which must carry it as quickly as possible to the job site. Two things happen during transport of the asphalt material and during handling of the asphalt material as it is transferred into the truck 10, then from the truck 10 to the material transfer vehicle 14, then from the material transfer vehicle 14 to the asphalt paving machine 26. The material will be subject to non-uniform cooling, particularly while it is sitting in the bed of the truck 10. This problem is exacerbated if the truck 10 must travel a long distance to the job site or if traffic delays are encountered. This non-uniform cooling of the asphalt mixture will allow relatively cool crusts or clumps to form on the surface and the sides of the piled up asphalt material.
(51) Additionally, as the asphalt material is handled, it tends to segregate, and particularly the larger aggregate material at the top of the pile will tend to roll down sloped surfaces of the pile and tend to gather along the edges of any container or conveying device.
(52) Thus it is desirable to avoid such physical and thermal segregation of the asphalt material as it is handled. Through appropriate design the segregation process can even be reversed so that the asphalt material is remixed as it is handled.
(53) Numerous features of the hopper insert 22 contribute to passive remixing of the asphalt material as it flows downward through the hopper insert 22.
(54) First, by depositing the asphalt material on top of the grate 86 and then piling additional asphalt material on top of the grate to increase the pressure on the material resting on the immediate top surface 92 of the grate 86, any larger clumps of material which have formed during the transport procedure will tend to be broken apart by the grate 86 thereby reducing the average size of any clumps of asphalt material as the material flows through the grate 86. To that end, the upper edges of the grate bars 88 are preferably relatively sharp edges to aid in breaking apart the clumps of asphalt material.
(55) Also, as any clumped asphalt material is broken into smaller clumps, this will reduce thermal segregation of the material as the smaller clumps can more easily absorb heat from surrounding hotter asphalt mixture as the material flows downward through the hopper insert 22. Thus clump size reduction and remixing are achieved passively, and the expense of active remixing equipment may often be avoided.
(56) Additionally, the variable width 108 between the upper baffles 76 and 78 prevents any collection of larger aggregates against the upper baffles from being aligned with the length of the hopper insert 22 and thus with the left and right edges of the lower opening 36 thereof. This distributes any such collected aggregate material over a portion of the width of the hopper insert.
(57) Additionally, if the hopper insert 22 is loaded in a first lower capacity mode as further described below with regard to
(58) Also, the eight sided construction of the upper portions of the perimeter wall 32 reduces material from collecting or stagnating in the typical square corners of typical prior art four sided hopper inserts.
(59) Additionally, any aggregate material that does tend to collect as it flows downward toward the lower corners 55A-55D of the four sided opening 36 is deflected laterally inward by the lower baffles 56A-56D as that material nears the lower outlet opening 36.
(60) All of these features working together contribute to the elimination or reduction of the collection of segregated aggregate material along the left and right edges of the conveyor opening 64 into which the material flows when it flows out of the lower opening 36 of the hopper insert 22.
(61) Additionally, the hopper insert 22 is designed to prevent or reduce the possibility of asphalt material plugging the grate 86 or bridging the grate 86. First, the downward outward flare of the opposed upper baffles 76 and 78 as seen in
(62) The upper baffles 76 and 78 will cause most of the asphalt material loaded into the hopper insert 22 to flow between the baffles 76 and 78, even when filling the hopper insert to the optional larger fill level of
(63) Dual Capacity Modes
(64) Another feature provided by the upper baffles 76 and 78 is the ability to load the hopper insert to either one of two optional loading capacities.
(65) The dual capacity feature of the hopper insert 22 is best understood in comparing
(66) In the smaller fill level schematically illustrated in
(67) The optional second greater fill level is achieved by allowing the asphalt material to overflow the upper baffles 76 and 78 so that the asphalt material is also received within the lateral volumes 80 and 82 as seen in
(68) Thus, by the presence of the upper baffles 76 and 78, the operator of the material transfer vehicle 14 can readily visually observe and control the maximum fill level of the hopper insert 22 to achieve a selected one of the two optional fill levels. As will be understood by those skilled in the art, in some situations, it may be undesirable for the paving machine 26 to carry the full weight of the hopper insert 22 filled to the optional greater fill level, and thus a controllable known lower fill level is easily achieved by simply observing the asphalt material and terminating the load before the asphalt material is allowed to overflow the upper baffles 76 and 78.
Example
(69) In one embodiment of the hopper insert 22 the open lower end 36 may have a width 72 of approximately 48 inches and a length 74 of approximately 54 inches which substantially corresponds to the dimensions of a typical conveyor opening 64 as seen in
(70) Then, at the forward and rearward walls 38 and 40 the upper baffle spacing 108B may taper down to a minimum value 108B with a corresponding tapered reduction in the lower spacing 108A.
(71) The open upper end 34 of hopper insert 22 may have a width 116 of approximately 118 inches, and a length 118 of approximately 100 inches.
(72) The hopper insert 22 may have a height 54 above the elevation of lower end opening 36 of approximately 53 inches at the rear wall portion 40 and approximately 63 inches at the forward wall portion 38.
(73) The baffles 76 and 78 may extend a distance 94 of approximately 18 inches above the grate 86, and the lower edges 102 and 104 of the baffles 76 and 78 may be located a distance 106 of approximately 6 inches below the upper edge of the adjacent side walls of the peripheral wall 32. The grate upper surface 92 may be arranged substantially parallel to the top edge 60 of the perimeter wall 32, thus providing a slight rearward tilt of the grate upper surface 92.
(74) With the hopper insert 22 dimensioned as just described in this example, when the hopper insert 22 is filled to the first lower fill level schematically illustrated in
(75) When the hopper insert 22 is filled to the optional second larger fill level schematically illustrated in
(76) Thus the use of the upper baffles 76 and 78 provides a dual loading capacity without the use of an add-on extension as is typically used in the prior art. This avoids the problem of having to bolt on the add-on extension or of the unavailability of the add-on extension when it is needed, and it avoids the time delay involved in adding a bolt-on extension to a hopper insert. And by appropriate design, passive remixing is provided as the material flows through the hopper insert without any additional operating cost.
(77) Optional Features of
(78) If even greater capacity is required for the hopper insert 22 a vertical extension module 120 may be bolted onto the upper end of hopper insert 22 as schematically illustrated in
(79) Additionally, in some job applications where severe problems of aggregate segregation occur during the transport of the aggregate material to the job site, it may be desired to add an active remixing module 122 to the lower end of the hopper insert 22 as schematically illustrated in
(80)
(81) The auger 126 is schematically illustrated in dashed lines in
(82) The active remixing module 122 may include an upper flange 134 that connects to the flange 54 of hopper insert 22. The module 122 may have a lower flange 136, similar in shape to flange 54 of hopper insert 22, for resting on the floor 62 of paving machine 26, with the open bottom end of the module 122 opening into the conveyor opening 64.
(83) For those extreme job situations requiring the additional remixing function of the active remixing module 122, the module 122 may be used only when needed and in these extreme situations the active remixing is providing at the last point of handling of the asphalt material before it is actually received on the conveyor 28 of the asphalt paving machine 26, thus providing the active remixing at the most effective point in the flow path of the material. This is contrasted to various prior art systems which use active remixing at earlier stages of the material handling.
(84) Thus it is seen that the apparatus and methods of the present invention readily achieve the ends and advantages mentioned as well as those inherent therein. While certain preferred embodiments of the invention have been illustrated and described for purposes of the present disclosure, numerous changes in the arrangement and construction of parts and steps may be made by those skilled in the art, which changes are encompassed within the scope and spirit of the present invention as defined by the appended claims.