USRE49588E1 - Screed plate apparatus and method for homogeneously applying paving material to a road surface - Google Patents
Screed plate apparatus and method for homogeneously applying paving material to a road surface Download PDFInfo
- Publication number
- USRE49588E1 USRE49588E1 US17/091,656 US202017091656A USRE49588E US RE49588 E1 USRE49588 E1 US RE49588E1 US 202017091656 A US202017091656 A US 202017091656A US RE49588 E USRE49588 E US RE49588E
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- Prior art keywords
- screed
- screed plate
- plate
- paving
- conductor
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- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C19/00—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving
- E01C19/48—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving for laying-down the materials and consolidating them, or finishing the surface, e.g. slip forms therefor, forming kerbs or gutters in a continuous operation in situ
- E01C19/4833—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving for laying-down the materials and consolidating them, or finishing the surface, e.g. slip forms therefor, forming kerbs or gutters in a continuous operation in situ with tamping or vibrating means for consolidating or finishing, e.g. immersed vibrators, with or without non-vibratory or non-percussive pressing or smoothing means
- E01C19/4853—Apparatus designed for railless operation, e.g. crawler-mounted, provided with portable trackway arrangements
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- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C19/00—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving
- E01C19/22—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving for consolidating or finishing laid-down unset materials
- E01C19/30—Tamping or vibrating apparatus other than rollers ; Devices for ramming individual paving elements
- E01C19/34—Power-driven rammers or tampers, e.g. air-hammer impacted shoes for ramming stone-sett paving; Hand-actuated ramming or tamping machines, e.g. tampers with manually hoisted dropping weight
- E01C19/40—Power-driven rammers or tampers, e.g. air-hammer impacted shoes for ramming stone-sett paving; Hand-actuated ramming or tamping machines, e.g. tampers with manually hoisted dropping weight adapted to impart a smooth finish to the paving, e.g. tamping or vibrating finishers
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- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C19/00—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving
- E01C19/48—Machines, tools or auxiliary devices for preparing or distributing paving materials, for working the placed materials, or for forming, consolidating, or finishing the paving for laying-down the materials and consolidating them, or finishing the surface, e.g. slip forms therefor, forming kerbs or gutters in a continuous operation in situ
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- E—FIXED CONSTRUCTIONS
- E01—CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
- E01C—CONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
- E01C2301/00—Machine characteristics, parts or accessories not otherwise provided for
- E01C2301/10—Heated screeds
Definitions
- This patent disclosure relates to road paving machines and, more particularly, to screed plates for a road paving machine.
- Paving materials such as concrete or hot mix asphalt (HMA)
- HMA hot mix asphalt
- a critical feature of a road paver is the self-leveling, or free floating, screed plate which will determine the profile of the material being paved or placed on the road bed, the mat and its correct smoothness and thickness.
- the screed plate is the flat bottom portion of the screed assembly that flattens and compresses the material into the mat.
- the free floating screed plate slides across the material.
- the conventional screed plate is constructed of a one piece metal alloy screed plate with a flat surface interacting with the paving materials.
- the paving machine provides an electrically heated screed assembly with heating elements attached to or adjacent to a screed plate.
- This conventional screed plate assembly provides for one screed plate underlying the paving machine.
- the road paver/finisher using the conventional screed plate has only one force vector applied on the material to the mat applied to the road surface. Only one force vector is applied on the material as it is paved on the road surface
- Jackson discloses a concrete paving machine having a screed provided with a means for generating, vibration, vibratory plates disposed on the front of the screed and a vertically fluted corrugated face portion having rearwardly curved lower edges.
- the corrugated piece in Jackson is a tamper bar that operates separately from and in front of the screed plate.
- the apparatus in Jackson does not disclose or suggest corrugations or other texture on the bottom of the screed plate as set forth in the present invention.
- the corrugations of Jackson are limited to the vertical face portion of the screed, and are uniform throughout. There is no suggestion in these references for providing such corrugations on the bottom of the screed plate.
- the present invention is a screed plate apparatus and method for homogeneously applying paving material to a road surface includes a road paver/finisher, a screed plate having a screed plate front side and an opposing screed plate back side, a screed plate top side and an opposing screed plate bottom side, a screed plate first side and an opposing screed plate second side, and a coupling element incorporated into the screed plate front side, as well as, at least two screed plate attaching means, located on the screed top side.
- the road paver/finisher includes a material matting apparatus having a plate bottom and paving material, a power source, a heating element, and a structural/conductor plate.
- the material matting apparatus is an integrated component in the road paver/finisher, and contains paving material loaded into the material matting apparatus to pave surfaces and distributes that material from the road paver/finisher during paving operation, as the road paver/finisher paves or traverses in a paver travel direction.
- the structural/conductor plate comprises a conductor top side and an opposing conductor bottom side, a conductor front side and an opposing conductor back side, a plurality of conductor plate fastening means, and at least two screed plate retaining means located on the opposing conductor bottom side.
- the plurality of conductor plate fastening means securely attach the structural/conductor plate directly to the plate bottom of the road paver/finisher.
- the coupling element enables a pressure connective coupling of the coupling element to the structural/conductor plate.
- the power source generates heat to the heating element to preheat the screed plate so that the paving material does not stick to the screed plate.
- the heating element is located between the plate bottom and the conductor top side and, immediately against the conductor top side providing direct heat to the structural/conductor plate.
- the at least two screed plate retaining means receive the appropriately matching and paired at least two screed plate attaching means, from the screed plate top side, and the conductor front side receives the appropriately matching and paired coupling element of the screed plate, whereby the structural/conductor plate heat-conductively attaches at the opposing conductor bottom side to the screed plate at the screed plate top side provides indirect heat to the screed plate.
- the material matting apparatus applies paving material homogeneously as a paving mat to a road surface in a paver travel direction traversed by the road paver/finisher.
- the opposing screed plate bottom side further comprises a textured surface impacting the paving material as the screed plate compacts the paving material to the road surface. Differing forms of textured surface are provided in alternative embodiments, by the differing patterns or corrugations, allows the screed plate apparatus to manipulate the particular paving material applied to the road surface as the paving mat in a more homogeneous manner.
- the textured surface comprises a corrugated pattern orienting parallel to the paver travel direction, or orienting perpendicularly to the paver travel direction, and/or progressively flattening in a dampening corrugated pattern from the screed plate first side toward the opposing screed plate second side, or in a crisscross rhombic pattern, orienting acutely to the paver travel direction.
- the plurality of corrugations comprise various forms, those being at least one of a repetitive wave form, a repetitive v-shaped pattern, a repetitive block shaped pattern, or a variably shaped wave pattern.
- the material matting apparatus comprises a vibrating and oscillating mechanism, causing the material matting apparatus to forcibly operate horizontally and vertically upon the screed plate providing a homogeneously sorting on the paving material.
- the power source causes the heating element to directly heat the screed plate.
- paving material may be employed to allow for differing products to be used to create a paving mat on the road surface.
- screed plate may be made of different materials.
- variable wave design allows the material matting apparatus to compact the paving material into a paving mat.
- the screed plate apparatus allows, therefore, the paving material to be compartmentalized under the screed plate by the addition of variable force vectors employed on the paving material at varying angles, producing a more homogeneous paving mat.
- the screed plate apparatus is driven in one alterative by the vibrating or oscillating mechanism which provides the varying force vectors to the paving material.
- variable corrugated or wave screed plate can be used for the laying of pavement, using differing paving materials, including bituminous plant mix concrete, Portland cement concrete or other surface or subsurface materials.
- the flexibility in sue therefore will improve the texture and density of the paving material directly behind the screed plate and make further compaction of the paving material where needed easier to achieve.
- the present invention may be used in any paving application where paving material is being laid into the paving mat, from particulate materials, as well, for road surface, including for highways, airpost runways, roads and parking lot pavings.
- variable force vectors will organize and apply added force to the paving material, improving paving mat texture and density, as desired, allowing an increased over-all density to the paving mat, and increased density in road surface, combating ruts and irregularities, providing a more stable road surface.
- FIG. 1 illustrates an elevated side view of one embodiment of the present invention, as attached to a road paver/finisher.
- FIGS. 2 A-B illustrate two bottom perspective views of embodiments of the present invention, depicting repetitive wave forms in a plurality of corrugations.
- FIG. 2 A illustrates a bottom perspective view of an embodiment of the present invention, depicting repetitive wave forms of the plurality of corrugations orienting parallel to the paver travel direction.
- FIG. 2 B illustrates a bottom perspective view of an embodiment of the present invention, depicting repetitive wave forms of the plurality of corrugations orienting perpendicular to the paver travel direction.
- FIG. 3 A C illustrate three elevated front side views of embodiments of the present invention.
- FIG. 3 A illustrates a front side view of an embodiment of the present invention depicting repetitive wave forms as a corrugated pattern in a plurality of corrugations.
- FIG. 3 B illustrates a front side view of an embodiment of the present invention depicting a repetitive v-shaped pattern as a corrugated pattern in a plurality of corrugations.
- FIG. 3 C illustrates a front side view of an embodiment of the present invention depicting a repetitive block pattern as a corrugated pattern in a plurality of corrugations.
- FIG. 4 A-B illustrate two elevated views an embodiment of the present invention depicting repetitive wave forms producing a dampened corrugated pattern from a plurality of corrugations.
- FIG. 4 A illustrates an elevated front side view of an embodiment of the present invention depicting a dampened corrugated pattern from a plurality of corrugations.
- FIG. 4 B illustrates an elevated side view of an embodiment of the present invention depicting a dampened corrugated pattern from a plurality of corrugations.
- FIG. 5 illustrates a bottom perspective view of the embodiment of the present invention depicted in FIGS. 4 A-B , depicting repetitive wave forms producing a dampened corrugated pattern from a plurality of corrugations.
- FIG. 6 illustrates a perspective view of one embodiment of the present invention, depicting a top conductor side of the structural/conductor plate of FIG. 3 , having at least one electrical heating strip as a heating element.
- the heating element is depicted in FIGS. 1 and 3 should be understood herein as receiving electricity or other form of heat from the power source, by a jagged line from the power source.
- FIG. 7 illustrates a bottom perspective view of one embodiment of the present invention, depicting a crisscross, or mogul, pattern in a plurality of corrugations.
- the mogul pattern resembles repeating diamond shapes as quadrilaterals, 2-dimensional flat figures that have four closed, generally straight sides, each categorized as a rounded rhombus, because of four equal sides and opposite equal angles, two acute and two obtuse, with the rhombus orienting acutely or obtusely.
- FIG. 7 it is understood that, when viewed from this FIG.
- the diagonal sets of lines represent shading to depict troughs, indentations or topographical lows in the corrugation surface
- the diamond shaped open spaces represent mounds, hummocks or topographical highs in the plurality of corrugations, which are acutely oriented in the direction of travel of the road paver/finisher depicted in FIG. 1 .
- FIG. 8 illustrates a blown up partial, elevated side view of FIG. 1 , of one embodiment of the present invention, depicting a screed plate apparatus, without a structural/conductor plate.
- the screed plate apparatus 100 is depicted in FIG. 1 , includes an elevated side view of a road paver/finisher 120 .
- the screed plate apparatus 100 further comprises, as more particularly depicted in FIGS.
- a screed plate 101 having a screed plate front side 102 and an opposing screed plate back side 103 , a screed plate top side 104 and an opposing screed plate bottom side 105 , a screed plate first side 106 and an opposing screed plate second side 107 , and a coupling element 108 incorporated into the screed plate front side 102 , as well as, at least two screed plate attaching means 109 , as depicted in FIG. 4 B , located on the screed top side 104 .
- the road paver/finisher 120 in this embodiment of the present invention, as well as in alternative embodiments, may be any one of a number of types and brands of surface or road paver/finishers well known and used in the surface paving industry.
- the at least two screed plate attaching means 109 as depicted in FIG. 4 B , located on the screed top side 104 , are not visible in FIGS. 2 A- 4 A, 5 and 7 , but are to be assumed hereby to be found on those alternative embodiments.
- the road paver/finisher 120 shown in FIGS. 1 and 6 comprises a material matting apparatus 122 having a plate bottom 125 127 and paving material 110 , a power source 150 , a heating element 151 , and a structural/conductor plate 121 .
- the material matting apparatus 122 is an integrated component in the road paver/finisher 120 well known in the industry.
- the material matting apparatus 122 contains paving material 110 loaded into the material matting apparatus 122 to pave surfaces, such as roads or other surfaces, and distributes that material from the road paver/finisher 120 during paving operation, as the road paver/finisher 120 paves or traverses in a paver travel direction 128 , as depicted in FIG. 1 .
- the material matting apparatus 122 is an apparatus integrated into the road paver/finisher 120 and is to be understood to be an apparatus well known and commonly found in road paver/finishers.
- the paving material 110 may be any number of materials as determined by a road surface 123 required for a particular project.
- the structural/conductor plate 121 shown in FIGS. 1 and 6 , comprises a conductor top side 124 and an opposing conductor bottom side 125 , a conductor front side 141 and an opposing conductor back side 142 , a plurality of conductor plate fastening means 143 , and at least two screed plate retaining means 126 located on the opposing conductor bottom side 125 .
- the plurality of conductor plate fastening means 143 securely attach the structural/conductor plate 121 at the conductor top side 124 directly to the plate bottom 127 of the road paver/finisher 120 material matting apparatus 122, as shown in FIG. 1 .
- the plurality of conductor plate fastening means 143 depicted in FIG.
- the coupling element 108 depicted in FIGS. 1 , 2 A -B, 4 B, 5 and 7 , may be any number of elements having a curving or angular configuration integrated into the screed plate 101 enabling a pressure connective, secure attachment or coupling of the coupling element 108 to the conductor front side 141 of the structural/conductor plate 121 .
- the power source 150 provided by the road paver/finisher 120 , depicted in FIG. 1 , and attached to the heating element 151 , generates and provides at least one of electric, gas or hydraulic heat to the heating element 151 causing the heating element 151 to heat, as depicted in FIG. 6 , the drawing to which is more particularly explained above.
- Screed heaters or heating elements 151 are used to preheat the screed plate 101 so that the paving material 110 does not stick to the screed plate 101 and cause mat, or applied paving material 110 , tearing during operation.
- the power source 150 attached to heat the heating element 151 in alternative embodiments of the present invention may comprise electrical, gas or hydraulic power, to produce electrical heat, gas heat or hydraulic heat in the heating element 151 .
- the heating element 151 is freely and securely located between the plate bottom 127 and the conductor top side 124 and, immediately against the conductor top side 124 providing direct heat to the structural/conductor plate 121 .
- the at least two screed plate retaining means 126 shown in FIG. 6 , to the structural/conductor plate 121 securely and respectively receive the appropriately matching, and paired with, the at least two screed plate attaching means 109 , shown in FIG. 4 B , from the screed plate top side 104 .
- the conductor front side 141 in FIG. 6 , securely and freely receives the appropriately matching and paired coupling element 108 of the screed plate 101 , show in FIGS. 4 B and 6 .
- the structural/conductor plate 121 securely and heat-conductively contacts and attaches at the opposing conductor bottom side 105 to the screed plate 101 at the screed plate top side 104 , whereby the structural/conductor plate 121 provides indirect heat to the screed plate 101 in the screed plate apparatus 100 .
- the material matting apparatus 122 depicted by FIG. 1 applies paving material 110 homogeneously as a paving mat 153 to a road surface 123 in a paver travel direction 128 as traversed by the road paver/finisher 120 .
- the opposing screed plate bottom side 105 further comprises a textured surface 130 , the textured surface 130 impacting the paving material 110 on the road surface 123 , as the screed plate 100 compacts the paving material 110 to the road surface 123 .
- the differing forms of textured surface 130 allows the screed plate apparatus 100 to impact or manipulate the particular paving material 110 as it is applied on the road surface 123 to cause the paving material 110 to be applied to the road surface as the paving mat 153 in a more homogeneous manner.
- the textured surface 130 comprises a corrugated pattern 131 comprising a plurality of corrugations 132 , as shown in FIGS. 2 A-B , 3 A-C, 4 A-B and 7 .
- the corrugated pattern 131 has the plurality of corrugations 132 orienting parallel to the paver travel direction 128 shown in FIG. 1 .
- FIG. 2 B the corrugated pattern 131 has the plurality of corrugations 132 orienting perpendicularly to the paver travel direction 128 shown in FIG. 1 .
- the plurality of corrugations 132 progressively flattening in a dampening corrugated pattern 139 from the screed plate first side 106 toward the opposing screed plate second side 107 , as shown in FIGS. 4 A-B , and 5 .
- the plurality of corrugations 132 comprise various forms, those being at least one of a repetitive wave form 135 , a repetitive v-shaped pattern 136 , a repetitive block shaped pattern 137 , as shown in FIG. 3 A-C , or a variably shaped wave pattern with any of the referenced patterns or other patterns.
- the corrugated pattern 131 comprises a crisscross rhombic pattern 133 , depicted in FIG. 7 , orienting acutely to the paver travel direction 128 shown in FIG. 1 .
- this embodiment depicts a crisscross, or mogul, rhombic pattern in a plurality of corrugations acutely oriented to the direction of travel 128 shown in FIG. 1 .
- FIG. 7 depicts a crisscross, or mogul, rhombic pattern in a plurality of corrugations acutely oriented to the direction of travel 128 shown in FIG. 1 .
- the diagonal sets of lines represent shading to depict troughs, indentations or topographical lows of the crisscross pattern 133 in the plurality of corrugations 133
- the diamond shaped open spaces represent mounds, moguls, hummocks or topographical highs of the crisscross pattern 133 in the plurality of corrugations 131 , which are acutely oriented in the direction of travel of the road paver/finisher depicted in FIG. 1 .
- the material matting apparatus 122 further comprises a vibrating and oscillating mechanism 129 powered by the road paver/finisher 120 .
- the vibrating and oscillating mechanism 129 contained within the road paver/finisher 120 causes the material matting apparatus 122 to forcibly operate horizontally and vertically upon the screed plate 101 , providing a homogeneously sorting, horizontal and vertical driving function on the paving material 110 .
- a homogeneous paving material 110 is produced, and that paving material 110 is homogeneously applied to the road surface 123 as the road paver/finisher 120 traverses in the paver travel direction 128 .
- the vibrating and oscillating mechanism 129 to the material matting apparatus 122 is an integrated component commonly found in the road paver/finisher 120 and well known in the industry; however, the vibrating and oscillating mechanism 129 in the present invention operates in a unique manner on the screed plate apparatus 100 , and particularly on the screed plate 101 proving added force to the screed plate 101 to produce a more dense paving material 110 .
- the power source 150 generates and provides at least one of electric, gas or hydraulic heat to the heating element 151 causing the heating element 151 to heat the screed plate 101 .
- the heating element 151 is freely and securely located between the plate bottom 127 and the screed plate top side 104 and, immediately against the screed plate top side 104 providing direct heat to the screed plate 101 .
- the at least two screed plate retaining means 126 securely receiving the respective at least two screed plate attaching means 109 , and the plate bottom 127 securely and freely receiving the coupling element 108 , as they are depicted in FIG. 4 B .
- the heating element 151 providing direct heat to the screed plate 101 .
- Another embodiment of the present invention is a method for homogeneously applying paving material 110 to a road surface 123 , as shown in FIG. 1 , the method providing for a screed plate 101 having a screed plate front side 102 and an opposing screed plate back side 103 , a screed plate top side 104 and an opposing screed bottom side 105 , a screed plate first side 106 and an opposing screed plate second side 107 , the screed plate 101 having at least two screed plate attaching means 109 located on the screed plate top side 104 .
- the method incorporated a coupling element 108 into the screed plate front side 102 , as depicted in FIGS. 2 A-B .
- This method also provides for a road paver/finisher 120 , shown in FIG. 1 , comprising a material matting apparatus 122 having paving material 110 , a plate bottom 127 and a structural/conductor plate 121 .
- the structural/conductor plate 121 shown in FIG. 6 , is comprised of a conductor top side 124 and an opposing conductor bottom side 125 , a conductor front side and an opposing conductor backside, a plurality of conductor plate fastening means, and at least two screed plate retaining means located on the opposing conductor bottom side.
- This method provides the structural/conductor plate 121 securely attached directly to the plate bottom 127 , in FIG. 1 , by the plurality of conductor plate fastening means at the conductor top side 124 , in FIG. 6 , directly to the plate bottom 127 of the road paver/finisher 120 material matting apparatus 122.
- the method provides for applying paving material 110 which is homogeneous to a road surface 123 in a paver travel direction 128 as traversed by the road paver/finisher 120 using the material matting apparatus 122 , as depicted in FIG. 1 , and providing heat to the structural/conductor plate 121 by the road paver/finisher 120 , by providing a power source to the road paver/finisher 120 attaching to a heating element 151 and generating and providing electricity by a power source 150 to the heating element 151 causing the heating element to heat.
- the method locates the heating element 151 freely and securely between the plate bottom 127 and the conductor top side 124 and immediately against the conductor top side 124 , to provide direct heat to the structural/conductor plate 121 , depicted in FIGS. 1 and 6 .
- the method also provides, in FIGS. 1 , 4 B and 6 , for securely and receiving or joining the respective at least two screed plate attaching means 109 to or with the at least two screed plate retaining means 126 , and freely and securely receiving the coupling element 108 against the conductor front side 141 while securely and heat-conductively contacting and attaching the opposing conductor bottom side 125 of the structural/conductor plate 121 to the screed plate 101 at the screed plate top side 104 for providing indirect heat to the screed plate 101 by and through the structural/conductor plate 121 .
- the method alternative embodiment to the present invention provides a textured surface 130 on the opposing screed bottom side 105 , as depicted in FIG. 1 .
- the textured surface 130 impacts the paving material 110 applied by the material matting apparatus on the road surface 123 as the screed plate 101 compacts and applies the paving material 110 homogeneously to the road surface 123 as the road paver/finisher 120 traverses the road surface 123 in the paver travel direction 128 .
- the textured surface 130 comprises a corrugated pattern 131 comprising a plurality of corrugations 132 .
- the differing forms of the textured surface 130 allows the screed plate apparatus 100 to impact or manipulate the particular paving material 110 as it is applied on the road surface 123 to cause the paving material 110 to be applied to the road surface in a more homogeneous manner or other desired manner, creating a more homogeneous paving material 110 .
- One alternative method provides for orienting the plurality of corrugations 132 parallel to the paver travel direction 128 .
- Another provides the corrugated pattern 131 comprising the plurality of corrugations 132 oriented perpendicularly to the paver travel direction 128 .
- a third alternative method provides the corrugated pattern 131 orienting a crisscross rhombus pattern 138 of the plurality of corrugations 132 acutely to the paver travel direction 128 , as further described above.
- a fourth alternative method provides the corrugated pattern 131 progressively flattening the plurality of corrugations 132 in a dampening corrugated pattern 139 from the screed plate first side 106 toward the screed plate second side 107 .
- the plurality of corrugations 131 in various embodiments of the present invention may have at least one of a repetitive wave form 135 , such as a repetitive v-shaped pattern 136 , a repetitive block shaped pattern 137 , or a variably shaped wave pattern, shown FIG. 3 A-C .
- a repetitive wave form 135 such as a repetitive v-shaped pattern 136 , a repetitive block shaped pattern 137 , or a variably shaped wave pattern, shown FIG. 3 A-C .
- Another alternative embodiment of the present invention is a method for homogeneously applying paving material to a road surface 123 where the material matting apparatus 122 further comprises a vibrating and oscillating mechanism 129 , generally depicted in FIG. 1 , powered by the road paver/finisher 120 .
- the vibrating and oscillating mechanism 129 causes the material matting apparatus 122 to forcibly operate horizontally and vertically upon the screed plate 101 , providing a homogeneously sorting, horizontal and vertical driving function, on the paving material 110 , concurrently adding force to the screed plate 101 providing homogeneous sorting and producing a more dense paving material 110 .
- the present invention may be used for various types of paving material 110 , such as asphalt, concrete, and other aggregate type pavers.
- the heating element 151 depicted generally in FIG. 1 , that would heat a conventional screed plate, now heats the structural/conductor plate 121 of the screed plate assembly 100 of the present invention.
- Differing types of paving material 110 or textures of material may be employed to allow for differing products to be used to create a paving mat 153 on the road surface 123 , as depicted in FIG. 1 , to suit the construction specifications of a particular job construction site.
- the screed plate 101 shown in FIGS. 2 A- 5 and 7 , may be made of different materials. Examples of the types of plate materials include: cast nickel hardened, or “ni-hard”, segments for superior wear life, or poly-plastics for paving concrete, or other uniquely textured materials for the plate materials in other construction applications.
- variable wave design or variable surface pattern 134 of the of the present invention shown in FIGS. 3 A-C , which variable surface pattern 134 encapsulates the paving material 110 and allows the material matting apparatus 122 to apply additional vectors of force to the paving material 110 .
- the purpose of the variable wave corrugation or variable wave pattern 134 is to add varying force vectors to help organize and compact the paving material 110 being paved into a paving mat 153 .
- the screed plate apparatus 100 of the present invention allows, therefore, the paving material 110 to be compartmentalize under the screed plate 101 by the addition of variable force vectors employed on the paving material 110 at varying angles, producing a more homogeneous paving mat 153 .
- the screed plate apparatus 100 of the present invention is driven in one alterative by the vibrating or oscillating mechanism 129 contained in the material matting apparatus 122 , integral parts of the road paver/finisher 120 , commonly used and recognized in the industry, and depicted in FIG. 1 , which provides the varying force vectors to the paving material 110 .
- the variable surface pattern 134 applied to a screed plate 101 depicted in FIGS.
- the screed plate apparatus 100 is most effective when coupled with the addition of a vibration component, the vibrating and oscillating mechanism 129 applied to the screed plate 101 by the road paver/finisher 120 to move or drive the screed plate 101 paving material 110 at “off angles” with respect to the corrugations or wave of the particular screed plate 101 , and/or with respect to the paver travel direction 128 of the road paver/finisher 120 .
- the screed plate apparatus 100 of the present invention allows for a variable corrugated or wave screed plate 101 opposing screed plate bottom side 105 with variable shapes or corrugations, corrugated pattern 131 , and wave amplitudes and frequency, as shown in FIGS. 3 A-C and 4 A-B and 7 , depending upon the required application of the paving material 110 to be paved into the paving mat 153 on the road surface 123 , and the nature of the paving material 110 , such as the aggregate size or constituent nature of the paving material 110 .
- the plurality of corrugations 132 may run from parallel, FIG. 2 A , or perpendicular, FIG. 2 B , to the paver travel direction 128 of the road paver/finisher 120 . As well, the corrugations may crisscross, FIG. 7 each other in certain other desired applications.
- FIGS. 4 A-B and 5 show the corrugated opposing screed plate bottom side 105 flattening or dampening toward the opposing screed plate back side 103 .
- the amplitude of the plurality of corrugations 132 of the corrugated waves is dampening, or goes to zero, toward the back of the screed plate 101 , in the direction opposite of the paver travel direction 128 as the paving material 110 is being applied to the road surface 123 .
- variable corrugated or wave screed plate 101 can be used in the road construction industry for the laying of pavement, using differing paving materials 110 , including bituminous plant mix concrete, Portland cement concrete or other surface or subsurface materials.
- the flexibility in sue therefore will improve the texture and density of the paving material 110 directly behind the screed plate and make further compaction of the paving material where needed easier to achieve.
- the present invention may be used in any paving application where paving material 110 is being laid into the paving mat 153 , from particulate materials, as well, for road surface 123 , including for highways, airpost runways, roads and parking lot pavings.
- the force applied by the road paver/finisher 120 may be characterized in terms of variable force vectors.
- the advantage of the present invention is that these variable force vectors will organize and apply added force to the paving material 110 , improving paving mat 153 texture and density, as desired.
- One benefit of this advantage is to allow an increased over-all density to the paving mat 153 , and increased density in road surface 123 , combating ruts and irregularities, or, alternatively, providing more consistent densities when desired.
- a more stable road surface 123 is created thereby, with the additional compaction and a more even texture to the paving mat 153 when desired by a denser and more organized paving material 110 or aggregate.
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- Engineering & Computer Science (AREA)
- Architecture (AREA)
- Civil Engineering (AREA)
- Structural Engineering (AREA)
- Road Paving Machines (AREA)
Abstract
Description
Claims (28)
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US17/091,656 USRE49588E1 (en) | 2018-09-01 | 2020-11-06 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/120,239 US10156050B1 (en) | 2018-09-01 | 2018-09-01 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
| US17/091,656 USRE49588E1 (en) | 2018-09-01 | 2020-11-06 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
Related Parent Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US16/120,239 Reissue US10156050B1 (en) | 2018-09-01 | 2018-09-01 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| USRE49588E1 true USRE49588E1 (en) | 2023-07-25 |
Family
ID=64604750
Family Applications (2)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US16/120,239 Ceased US10156050B1 (en) | 2018-09-01 | 2018-09-01 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
| US17/091,656 Active USRE49588E1 (en) | 2018-09-01 | 2020-11-06 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
Family Applications Before (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US16/120,239 Ceased US10156050B1 (en) | 2018-09-01 | 2018-09-01 | Screed plate apparatus and method for homogeneously applying paving material to a road surface |
Country Status (2)
| Country | Link |
|---|---|
| US (2) | US10156050B1 (en) |
| CA (1) | CA3035671C (en) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| AU2021236421A1 (en) * | 2020-03-09 | 2022-11-03 | Axenox, LLC | A heated screed raking device and method for raking asphalt on a paving surface |
| USD991288S1 (en) * | 2021-04-27 | 2023-07-04 | Axenox, Llc. | Screed plate |
| USD995571S1 (en) * | 2021-04-27 | 2023-08-15 | Axenox, Llc. | Screed plate |
| USD994712S1 (en) | 2021-04-27 | 2023-08-08 | Axenox, Llc. | Screed plate |
| CN121464262A (en) * | 2023-04-17 | 2026-02-03 | 艾克赛诺克斯有限责任公司 | Screed with non-linear profile |
| US20250075446A1 (en) * | 2023-08-28 | 2025-03-06 | Axenox, Llc. | Screed plate and tamper bar arrangement for paving apparatus or paving applications |
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Also Published As
| Publication number | Publication date |
|---|---|
| CA3035671A1 (en) | 2019-07-03 |
| US10156050B1 (en) | 2018-12-18 |
| CA3035671C (en) | 2020-03-10 |
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