Screed plate apparatus and method for homogeneously applying paving material to a road surface
RE049588 · 2023-07-25
Assignee
Inventors
Cpc classification
E01C19/4853
FIXED CONSTRUCTIONS
E01C19/40
FIXED CONSTRUCTIONS
International classification
E01C19/40
FIXED CONSTRUCTIONS
Abstract
The screed plate apparatus and method has a road paver/finisher, screed plate, and material matting apparatus having a power source and structural/conductor plate. Paving material is loaded into the material matting apparatus and applied homogeneously as a paving mat to a road surface in a road paver/finisher travel direction. The structural/conductor plate is attached to the road paver/finisher and to the screed plate to provide indirect heat to the screed plate. The screed plate bottom side has differing forms of textured surface impacting the paving material, by differing corrugations of differing patterns, into a more homogeneous consistency. The corrugated pattern may be oriented parallel or perpendicular to the paver travel direction, and/or progressively flattening or set in a crisscross rhombic pattern. A vibrating and oscillating mechanism operates horizontally and vertically upon the screed plate providing a homogeneously sorting on the paving material.
Claims
1. A .[.screed plate.]. .Iadd.paving .Iaddend.apparatus, comprising: (a) a screed plate comprising: (i) a screed plate front side and an opposing screed plate back side; (ii) a screed plate top side and an opposing screed plate bottom side; (iii) a screed plate first side and an opposing screed plate second side; (iv) a coupling element incorporated into the screed plate front side; and (v) at least two screed plate attaching means located on the screed plate top side; (b) a road paver/finisher comprising: (i) a material matting apparatus having a plate bottom .[.and paving material.].; (ii) a structural/conductor plate, comprising: a conductor top side and an opposing conductor bottom side, 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; (iii) the plurality of conductor plate fastening means securely attaching the structural/conductor plate at the conductor top side directly to the plate bottom of the .[.road paver/finisher.]. .Iadd.material matting apparatus.Iaddend.; .[.(iii) a power source attaching to.]. .Iadd.(iv) .Iaddend.a heating element .Iadd.between the plate bottom and the conductor top side.Iaddend.; .[.(c).]. .Iadd.(v) a power source attached to the heating element, .Iaddend.the power source generating and providing at least one of electric, gas or hydraulic heat to the heating element causing the heating element to heat; .[.(d) the heating element is freely and securely 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;.]. .[.(e).]. .Iadd.(c) .Iaddend.the at least two screed plate retaining means .[.securely and receiving.]. .Iadd.each constructed to receive .Iaddend.the respective at least two screed plate attaching means, and the conductor front side .[.securely and freely receiving.]. .Iadd.constructed to receive .Iaddend.the coupling element; .[.(f) the structural/conductor plate securely and heat-conductively contacting and attaching at the opposing conductor bottom side to the screed plate at the screed plate top side; (g) the structural/conductor plate providing indirect heat to the screed plate; (h) the material matting apparatus applying the paving material to a road surface in a paver travel direction as traversed by the road paver/finisher;.]. .[.(i).]. .Iadd.(d) .Iaddend.the opposing screed plate bottom side, further comprising: a textured surface, the textured surface impacting .[.the.]. paving material applied .[.homogeneously.]. by the material matting apparatus into a paving mat on .[.the.]. .Iadd.a .Iaddend.road surface when the screed plate compacts the paving material to the road surface as the road paver/finisher traverses the road surface in .[.the.]. .Iadd.a .Iaddend.paver travel direction; and .[.(j).]. .Iadd.(e) .Iaddend.the textured surface comprising: a corrugated pattern comprising.[.:.]. a plurality of corrugations.
2. The .[.screed plate.]. .Iadd.paving .Iaddend.apparatus of claim 1, wherein .[.the corrugated pattern comprising:.]. the plurality of corrugations .[.orienting.]. .Iadd.are oriented .Iaddend.parallel to the paver travel direction.
3. The .[.screed plate.]. .Iadd.paving .Iaddend.apparatus of claim 1, wherein .[.the corrugated pattern comprising:.]. the plurality of corrugations .[.orienting.]. .Iadd.are oriented .Iaddend.perpendicularly to the paver travel direction.
4. The .[.screed plate.]. .Iadd.paving .Iaddend.apparatus of claim 1, wherein the corrugated pattern .[.comprising:.]. .Iadd.comprises .Iaddend.a crisscross rhombus pattern of the plurality of corrugations acutely .[.orienting.]. .Iadd.oriented .Iaddend.to the paver travel direction.
5. The .[.corrugated pattern.]. .Iadd.paving apparatus .Iaddend.of claim 2 .[.comprising:.]..Iadd., wherein .Iaddend.the plurality of corrugations progressively .[.flattening.]. .Iadd.flatten .Iaddend.in a dampening corrugated pattern from the screed plate first side toward the opposing screed plate second side.
6. The .[.screed plate.]. .Iadd.paving .Iaddend.apparatus of claim 1, wherein plurality of corrugations .[.comprising:.]. .Iadd.comprise .Iaddend.at least one of a repetitive wave form, a repetitive v-shaped pattern, .Iadd.or .Iaddend.a repetitive block shaped pattern.[., or a variably shaped wave pattern.]..
7. The .[.screed plate.]. .Iadd.paving .Iaddend.apparatus of claim 1, wherein the material matting apparatus further comprises: .[.(a).]. a vibrating and oscillating mechanism powered by the road paver/finisher.[.; and (b) the vibrating and oscillating mechanism causing.]. .Iadd.so as to cause .Iaddend.the material matting apparatus to forcibly operate horizontally and vertically upon the screed plate.[.; and (c) the vibrating and oscillating mechanism adding force to the screed plate to produce a more dense paving material.]..
8. A .[.screed plate.]. .Iadd.paving .Iaddend.apparatus, comprising: (a) a screed plate comprising: (i) a screed plate front side and an opposing screed plate back side; (ii) a screed plate top side and an opposing screed plate bottom side; (iii) a screed plate first side and an opposing screed plate second side; (iv) a coupling element incorporated into the screed plate front side; and (v) at least two screed plate attaching means located on the screed plate top side; (b) a road paver/finisher comprising: (i) a material matting apparatus .[.having a plate bottom and paving material.].; (ii) at least two screed plate retaining means .[.located on the plate bottom.].; and (iii) .[.a power source attaching to.]. a heating element .Iadd.between the material matting apparatus and the screed plate top side and arranged to provide direct heat to the screed plate.Iaddend.; .[.(c) the.]. .Iadd.(iv) a .Iaddend.power source generating and providing at least one of electric, gas or hydraulic heat to the heating element causing the heating element to heat the screed plate; .[.(d) the heating element is freely and securely located between the plate bottom and the screed plate top side and, immediately against the screed plate top side providing direct heat to the screed plate;.]. .[.(e).]. .Iadd.(c) .Iaddend.the at least two screed plate retaining means securely .[.and.]. receiving the respective at least two screed plate attaching means, and the .[.bottom plate securely and freely.]. .Iadd.material matting apparatus releasably .Iaddend.receiving the coupling element; .[.(f) the heating element providing direct heat to the screed plate; (g) the material matting apparatus applying the paving material to a road surface in a paver travel direction as traversed by the road paver/finisher;.]. .[.(h).]. .Iadd.(d) .Iaddend.the opposing screed plate bottom side, further comprising: a textured surface, the textured surface impacting .[.the.]. paving material applied .[.homogeneously.]. by the material matting apparatus into a paving mat on .[.the.]. .Iadd.a .Iaddend.road surface when the screed plate compacts the paving material to the road surface as the road paver/finisher traverses the road surface in .[.the.]. .Iadd.a .Iaddend.paver travel direction; and .[.(i).]. .Iadd.(e) .Iaddend.the textured surface comprising: a corrugated pattern comprising.[.:.]. a plurality of corrugations.
9. A method for homogeneously applying paving material to a road surface, the method comprising: .[.(a) providing a screed plate, (i) the screed plate comprising: a screed plate front side and an opposing screed plate back side, a screed plate top side and an opposing screed plate bottom side, and a screed plate first side an opposing screed plate second side and at least two screed plate attaching means located on the screed plate top side; and (ii) incorporating a coupling element into the screed plate front side; (b) providing a road paver/finisher, the road paver/finisher comprising: a material matting apparatus having paving material, a plate bottom and a structural/conductor plate; (c) providing the structural/conductor plate comprising: a conductor top side and an opposing conductor bottom side, 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; (d) securely.]. attaching .[.the.]. .Iadd.a .Iaddend.structural/conductor plate by .[.the.]. .Iadd.a .Iaddend.plurality of conductor plate fastening means at .[.the.]. .Iadd.a .Iaddend.conductor top side .[.directly to the plate bottom of.]. .Iadd.to .Iaddend.the road paver/finisher; .[.(e) providing a power source to the road paver/finisher.]. attaching .Iadd.a power source .Iaddend.to a heating element .Iadd.between a plate bottom of the road paver/finisher and the conductor top side of the structural/conductor plate to provide heat to the structural/conductor plate.Iaddend.; .[.(f).]. generating and providing electricity by the power source to the heating element causing the heating element to heat; .[.(g) locating the heating element freely and securely between the plate bottom and the conductor top side and immediately against the conductor top side to provide direct heat to the structural/conductor plate;.]. .[.(h).]. securely .[.and.]. receiving the .[.respective.]. at least two screed plate attaching means.Iadd., located on a screed plate top side of a screed plate, .Iaddend.to .[.the.]. .Iadd.a respective .Iaddend.at least two screed plate retaining means .Iadd.located on a conductor bottom side opposing the conductor top side .Iaddend.and .[.securely and freely.]. receiving .[.the.]. .Iadd.a .Iaddend.coupling element .Iadd.at a screed plate front side .Iaddend.against .[.the.]. .Iadd.a .Iaddend.conductor front side .Iadd.of the structural/conductor plate.Iaddend.; .Iadd.and .Iaddend. .[.(i) securely and heat-conductively contacting and attaching the structural/conductor plate at the opposing conductor bottom side to the screed plate at the screed plate top side: (j) providing indirect heat through the structural/conductor plate to the screed plate; (k).]. applying .[.the.]. .Iadd.a .Iaddend.paving material from .[.the.]. .Iadd.a .Iaddend.material matting apparatus .Iadd.of the road paver/finisher .Iaddend.to .[.a.]. .Iadd.the .Iaddend.road surface in a paver travel direction as traversed by the road paver/finisher; .Iadd.where .Iaddend. .[.(l) providing the opposing.]. .Iadd.a .Iaddend.screed plate bottom side.[., further comprising:.]. .Iadd.opposing the screed plate top side comprises .Iaddend.a textured surface impacting the paving material applied by the matting material apparatus on the road surface when the screed plate compacts the paving material into a paving mat to the road surface as the road paver/finisher traverses the road surface in the paver travel direction.[.; and (m) whereby the screed plate homogeneously applies paving material as the paving mat to the road surface.]..
10. The method for applying paving material homogeneously to a road surface of claim 9, wherein the textured surface .[.comprising:.]. .Iadd.comprises .Iaddend.a corrugated pattern comprising a plurality of corrugations.
11. The method for homogeneously applying paving material to a road surface of claim 9.Iadd., the method .Iaddend.further comprising: orienting the plurality of corrugations parallel to the paver travel direction.
12. The .[.corrugated pattern.]. .Iadd.method for homogeneously applying paving material to a road surface .Iaddend.of claim 10.Iadd., the method .Iaddend.further comprising: .[.the plurality of corrugations.]. orienting .Iadd.the plurality of corrugations .Iaddend.perpendicularly to the paver travel direction.
13. The .[.corrugated pattern.]. .Iadd.method for homogeneously applying paving material to a road surface .Iaddend.of claim 10 further comprising: .[.the plurality of corrugations.]. orienting .Iadd.the plurality of corrugations .Iaddend.in a crisscross rhombic pattern acutely to the paver travel direction.
14. The method for homogeneously applying paving material to a road surface of claim 9 .[.further comprising: progressively flattening.]..Iadd., wherein .Iaddend.the plurality of corrugations .Iadd.progressively flatten .Iaddend.in a dampening corrugated pattern from the screed plate first side toward the screed plate second side.
15. The .[.plurality of corrugations.]. .Iadd.method for homogeneously applying paving material to a road surface .Iaddend.of claim 10 .[.comprising:.]..Iadd., wherein the plurality of corrugations comprise .Iaddend.at least one of a repetitive wave form, a repetitive v-shaped pattern, .Iadd.or .Iaddend.a repetitive block shaped pattern.[., or a variably shaped wave pattern.]..
16. The method for homogeneously applying paving material to a road surface of claim 9, the method further comprising: .[.(a).]. providing the material matting apparatus .[.further comprising: (i).]. .Iadd.with .Iaddend.a vibrating and oscillating mechanism powered by the road paver/finisher.[.; and (ii) the vibrating and oscillating mechanism causing.]. .Iadd.which causes .Iaddend.the material matting apparatus to forcibly operate horizontally and vertically upon the screed plate.[.; and (b) adding force to the screed plate from the vibrating and oscillating mechanism, driving and moving the screed plate horizontally and vertically, providing homogeneous sorting and producing a more dense paving material.]..
.Iadd.17. A road paver comprising: a structural/conductor plate having: a conductor top side; a conductor bottom side opposing the conductor top side; a conductor front side extending from a first edge of the conductor top side to a first edge of the conductor bottom side; a conductor backside opposite the conductor front side, the conductor backside extending from a second edge of the conductor top side to a second edge of the conductor bottom side; and a screed plate selectively engageable with the structural/conductor plate proximal to the conductor bottom side of the structural/conductor plate, the screed plate having a paving surface side with a plurality of mounds, hummocks or topographical highs extending therefrom, wherein the plurality of mounds, hummocks or topographical highs form a crisscross rhombic pattern; wherein the screed plate further includes: a side opposite the paving surface side; a screed front side extending between the paving surface side and the side opposite the paving surface side; a screed backside opposing the screed front side and extending between the paving surface side and the side opposite the paving surface side; a coupling element positioned at the screed front side, the coupling element being coupleably engageable with the conductor front side; and two screed plate attaching means positioned at the screed backside, the two screed plate attaching means and the coupling element releaseably securing the screed plate with the conductor backside; wherein the two screed plate attaching means comprise a threaded bolt; and wherein the threaded bolt is arranged so that a longitudinal axis thereof is approximately parallel to the side opposite the paving surface side..Iaddend.
.Iadd.18. The road paver according to claim 17, wherein the crisscross rhombic pattern includes plurality of rhombic edges oriented acutely relative to a paver travel direction of the screed plate..Iaddend.
.Iadd.19. A screed plate comprising a base plate having a paving surface side with a plurality of mounds, hummocks or topographical highs extending therefrom, the plurality of mounds, hummocks or topographical highs arranged in a crisscross rhombic pattern; the screed plate further comprising: a screed front side extending between the paving surface side and a side opposite the paving surface side; a screed backside opposing the screed front side and extending between the paving surface side and the side opposite the paving surface side; a coupling element positioned proximal to the screed front side and constructed to coupleably engage the screed plate to a road paver; and two screed plate attaching means positioned proximal to the screed backside, and configured to cooperate with the coupling element to releaseably secure the screed plate to the road paver; wherein the two screed plate attaching means comprise a threaded bolt; and wherein the threaded bolt is arranged so that a longitudinal axis thereof is approximately parallel to the side opposite the paving surface side..Iaddend.
.Iadd.20. The screed plate according to claim 19, wherein the plurality of mounds, hummocks or topographical highs are configured to apply variable force vectors to a paving material when the screed plate is moved in a paver travel direction of the screed plate across the paving material..Iaddend.
.Iadd.21. A road paver comprising: a screed plate including: a paving surface side; and a plurality of mounds, hummocks or topographical highs extending from the paving surface side, the plurality of mounds, hummocks or topographical highs being arranged in a crisscross rhombic pattern, wherein the screed plate is configured to be releasably attached to a lower portion of the road paver; wherein the screed plate further includes: a side opposite the paving surface side; a screed front side extending between the paving surface side and the side opposite the paving surface side; a screed backside opposing the screed front side and extending between the paving surface side and the side opposite the paving surface side; a coupling element at the screed front side, the coupling element being coupleably engageable with a conductor front side; and two screed plate attaching means at the screed backside, the two screed plate attaching means and the coupling element releaseably securing the screed plate with a conductor backside; wherein the two screed plate attaching means comprise a threaded bolt; and wherein the threaded bolt is arranged so that a longitudinal axis thereof is approximately parallel to the side opposite the paving surface side..Iaddend.
.Iadd.22. The road paver according to claim 21, wherein the crisscross rhombic pattern includes plurality of rhombic edges oriented acutely relative to a paver travel direction of the screed plate..Iaddend.
.Iadd.23. A screed assembly comprising: a screed plate including: a paving surface side; and a plurality of mounds, hummocks or topographical highs extending from the paving surface side, the plurality of mounds, hummocks or topographical highs being arranged in a crisscross rhombic pattern, wherein the screed plate is configured to be releasably attached to the screed assembly; wherein the screed plate further includes: a side opposite the paving surface side; a screed front side extending between the paving surface side and the side opposite the paving surface side; a screed backside opposing the screed front side and extending between the paving surface side and the side opposite the paving surface side; a coupling element positioned proximal to the screed front side and constructed to coupleably engage the screed plate to a road paver; and two screed plate attaching means positioned proximal to the screed backside, the two screed plate attaching means and the coupling element releaseably securing the screed plate to the road paver; wherein the two screed plate attaching means comprise a threaded bolt; and wherein the threaded bolt is arranged so that a longitudinal axis thereof is approximately parallel to the side opposite the paving surface side..Iaddend.
.Iadd.24. The screed assembly according to claim 23, wherein the plurality of mounds, hummocks or topographical highs are configured to apply variable force vectors to a paving material when the screed plate is moved in a paver travel direction of the screed plate across the paving material..Iaddend.
.Iadd.25. The screed assembly according to claim 23, wherein the crisscross rhombic pattern includes plurality of rhombic edges oriented acutely relative to a paver travel direction of the screed plate..Iaddend.
.Iadd.26. A screed assembly comprising: a screed plate including: a paving surface side; and a plurality of mounds, hummocks or topographical highs extending from the paving surface side, wherein the screed plate is releaseably attachable to the screed assembly, and wherein the plurality of mounds, hummocks or topographical highs form a rhombic pattern; wherein the screed plate further includes: a screed front side extending between the paving surface side and a side opposite the paving surface side; a screed backside opposing the screed front side and extending between the paving surface side and the side opposite the paving surface side; a coupling element positioned proximal to the screed front side and constructed to coupleably engage the screed plate to a road paver; and two screed plate attaching means positioned proximal to the screed backside, the two screed plate attaching means and the coupling element releaseably securing the screed plate to the road paver; wherein the two screed plate attaching means comprise a threaded bolt; and wherein the threaded bolt is arranged so that a longitudinal axis thereof is approximately parallel to the side opposite the paving surface side..Iaddend.
.Iadd.27. The screed assembly according to claim 26, wherein the plurality of mounds, hummocks or topographical highs are configured to apply variable force vectors to a paving material when the screed plate is moved in a paver travel direction of the screed plate across the paving material..Iaddend.
.Iadd.28. The screed assembly according to claim 26, wherein the rhombic pattern includes plurality of rhombic edges oriented acutely relative to a paver travel direction of the screed plate..Iaddend.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
(1) The foregoing features and other aspects of the present invention are explained and other features and objects of the present invention will become apparent in the following detailed descriptions, taken in conjunction with the accompanying drawings. However, the drawings are provided for purposes of illustration only, and are not intended as a definition of the limits of the invention.
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
DETAILED DESCRIPTION OF THE INVENTION
(17) The present invention will now be described more fully hereinafter with references to the accompanying drawings, in which the preferred embodiment of the invention is shown. This invention, however, may be embodied in different forms, and should not be construed as limited to the embodiments set forth herein. Rather, the illustrative embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. It should be noted, and will be appreciated, that numerous variations may be made within the scope of this invention without departing from the principle of this invention and without sacrificing its chief advantages. Like numbers refer to like elements throughout. A representative number of certain repeated elements are labeled in the drawings.
(18) Turning now in detail to the drawings in accordance with the present invention, one embodiment of the present invention, the screed plate apparatus 100, is depicted in
(19) The road paver/finisher 120, shown in
(20) The structural/conductor plate 121, shown in
(21) The power source 150 provided by the road paver/finisher 120, depicted in
(22) The heating element 151, as depicted in
(23) The at least two screed plate retaining means 126, shown in
(24) The material matting apparatus 122, depicted by
(25) In other embodiments of the present invention to the screed plate apparatus 100 the textured surface 130 comprises a corrugated pattern 131 comprising a plurality of corrugations 132, as shown in
(26) In another embodiment of the present invention, the corrugated pattern 131 comprises a crisscross rhombic pattern 133, depicted in
(27) In another embodiment of the screed plate apparatus 100, shown in
(28) In another embodiment of the present invention, the power source 150, depicted in .[.
(29) Another embodiment of the present invention is a method for homogeneously applying paving material 110 to a road surface 123, as shown in
(30) This method, alternative embodiment of the present invention, also provides for a road paver/finisher 120, shown in
(31) 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
(32) The method also provides, in
(33) The method alternative embodiment to the present invention provides a textured surface 130 on the opposing screed bottom side 105, as depicted in
(34) Shown in
(35) 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
(36) 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
(37) Differing types of paving material 110 or textures of material, as noted above, 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
(38) The problem of having only once force vector, or one direction of force applied by the material matting apparatus 122 in
(39) 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
(40) 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
(41)
(42) The 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.]. .Iadd.therefore .Iaddend.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.
(43) 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.
(44) Having thus described in detail a preferred selection of embodiments of the present invention, it is to be appreciated, and will be apparent to those skilled in the art, that many physical changes could be made in the apparatus without altering the invention, or the concepts and principles embodied therein. Unless otherwise specifically stated, the terms and expressions have been used herein as terms of description and not terms of limitation, and are not intended to exclude any equivalents of features shown and described or portions thereof. Various changes can, of course, be made to the preferred embodiment without departing from the spirit and scope of the present invention. The present invention apparatus, therefore, should not be restricted, except in the following claims and their equivalents.
(45) Although specific advantages have been enumerated above, various embodiments may include some, none, or all of the enumerated advantages.
(46) Other technical advantages may become readily apparent to one of ordinary skill in the art after review of the following figures and description.
(47) It should be understood at the outset that, although exemplary embodiments are illustrated in the figures and described herein, the principles of the present disclosure may be implemented using any number of techniques, whether currently known or not. The present disclosure should in no way be limited to the exemplary implementations and techniques illustrated in the drawings and described herein.
(48) Unless otherwise specifically noted, articles depicted in the drawings are not necessarily drawn to scale.
(49) Modifications, additions, or omissions may be made to the systems, apparatuses, and methods described herein without departing from the scope of the disclosure. For example, the components of the systems and apparatuses may be integrated or separated. Moreover, the operations of the systems and apparatuses disclosed herein may be performed by more, fewer, or other components and the methods described may include more, fewer, or other steps. Additionally, steps may be performed in any suitable order. As used in this document, “each” refers to each member of a set or each member of a subset of a set.
(50) To aid the Patent Office and any readers of any patent issued on this application in interpreting the claims appended hereto, applicants wish to note that they do not intend any of the appended claims or claim elements to invoke 35 U.S.C. 112(f) unless the words “means for” or “step for” are explicitly used in the particular claim.