Method of Producing an Asphalt Pavement and Supply Arrangement for Supplying Asphalt Pavement
20200002901 ยท 2020-01-02
Assignee
Inventors
Cpc classification
E01C19/16
FIXED CONSTRUCTIONS
B01F2101/38
PERFORMING OPERATIONS; TRANSPORTING
B01F29/40221
PERFORMING OPERATIONS; TRANSPORTING
E01C19/08
FIXED CONSTRUCTIONS
B01F33/5021
PERFORMING OPERATIONS; TRANSPORTING
E01C19/48
FIXED CONSTRUCTIONS
International classification
E01C19/48
FIXED CONSTRUCTIONS
E01C19/08
FIXED CONSTRUCTIONS
Abstract
In a method of and an apparatus for improving the quality of an asphalt pavement, the asphalt is charged in a supply arrangement (2) adapted to be fitted in an inlet space (11) of a road finishing machine (1). The supply arrangement comprises a rotary vessel (3) in the shape of a truncated cone with a top inlet (30) and a smaller bottom outlet (31). The rotary vessel (3) has internal irregularities (32) for homogenizing the asphalt as to particle size and temperature. Preferably a distributing device (9) including at least one dividing member (93) and a rearrangement device (95) is also used, having the at least one dividing member (93) extending transversely over the belt conveyor (12) under the bottom outlet (31) to divide the flow of asphalt into layers, on top of one another, and the rearrangement device (95) to optimize form and feeding.
Claims
1. A method of producing an asphalt pavement, wherein asphalt is fed to a road finishing machine (1) having an inlet space (11), a screed (13), and a belt conveyor (12) forming a bottom of the inlet space (11) and conveying the asphalt to the screed (13) for leveling the layer of asphalt and partially compacting it to a desired shape, said method comprising: a) providing a supply arrangement (2) for supplying asphalt to the belt conveyor (12), said supply arrangement (2) being adapted to be fitted in the inlet space (11) and including: a rotary vessel (3) having a top inlet (30) for receiving the asphalt and a bottom outlet (31) for discharging the asphalt, the bottom outlet (31) being smaller than the top inlet (30); a frame (4) supporting the rotary vessel (3); a bearing arrangement (7) carried by the frame (4) and carrying the vessel (3) rotatably; a motor (6) carried by the frame (4) for enabling rotation of the rotary vessel (3); and a transmission (5) for transmitting a rotation provided by the motor (6) to the rotary vessel (3); b) positioning the supply arrangement (2) in the inlet space (11); c) charging asphalt in the rotary vessel (3), d) rotating the rotary vessel (3) to homogenize the asphalt as to particle size and temperature; and e) continuously letting asphalt flow from the bottom outlet (31) of the rotary vessel (3) down onto the belt conveyor (12).
2. A method as claimed in claim 1, wherein the rotary vessel (3) generally has the shape of a truncated cone converging downward and having a substantially vertical symmetry axis (C), and the rotary vessel (3) is rotated around the symmetry axis (C).
3. A method as claimed in claim 2, further comprising improving the homogenization by providing irregularities (32) on an inside wall of the rotary vessel (3), wherein preferably the irregularities (32) are formed by folded subplate members (33) that constitute the inside wall.
4. A method as claimed in any one of claims 1-3, further comprising rigidly attaching a skirt (34) to the frame (4) to protect and insulate an upper outer side of the rotary vessel (3).
5. A method as claimed in any one of claims 1-4, further comprising positioning a distributing device (9) under the bottom outlet (31) and above the belt conveyor (12).
6. A method as claimed in claim 5, wherein the distributing device (9) has a width (W) that substantially corresponds to a diameter (D) of the outlet (31) of the rotary vessel (3), and a length that is adapted to fit within the inlet space (11) of the paving machine (1).
7. A method as claimed in claim 5 or 6, wherein the distributing device (9) comprises: two parallel outer frame members (90, 91) extending in the feed direction of the belt conveyor (12); and at least one, preferably a plurality of, parallel dividing member/s (93) extending transversely from one outer frame member (90) to the other (91), the dividing members (93) being adapted to be spaced from the belt conveyor (12) by a gap (g), or gaps (g) of different size, wherein the size of the gaps (g) increasing in the feed direction of the belt conveyor (12); and the method further comprising: dividing the flow of asphalt from the bottom outlet (31) into a plurality of layers by making the asphalt pass through passages on each side of the at least one dividing member (93) to the belt conveyor (12); and feeding the plurality of homogenized asphalt layers on top of one another by the belt conveyor (12).
8. A method as claimed in any one of claims 6-7, further comprising: providing a rearrangement device (95) for redistributing the asphalt carried as a layer on the belt conveyor (12); positioning the rearrangement device (95) at a downstream end (94) of the distributing device (9); and using the rearrangement device (95) to camber the asphalt layer on leaving the distributing device (9).
9. A method as claimed in claim 8, wherein the rearrangement device (95) has a concave surface (95A) directed against the flow of asphalt that is supplied by means of the belt conveyor (12).
10. A supply arrangement for supplying asphalt pavement, said supply arrangement adapted to be included in an arrangement for supplying asphalt to a road finishing machine (1), said road finishing machine (1) having an inlet space (11), a screed (13), and a belt conveyor (12) forming a bottom of the inlet space (11) and conveying the asphalt to the screed (13), said supply arrangement being adapted to be fitted in the inlet space (11) and comprising: a rotary vessel (3) having a top inlet (30) for receiving the asphalt and a bottom outlet (31) for discharging the asphalt, the bottom outlet (31) being smaller than the top inlet (30); a frame (4) supporting the rotary vessel (3); a bearing arrangement (7) carried by the frame (4) and carrying the vessel (3) rotatably; a motor (6) carried by the frame (4) for enabling rotation of the rotary vessel (3); and a transmission (5) for transmitting a rotation provided by of the motor (6) to the rotary vessel (3).
11. A supply arrangement as claimed in claim 10, wherein the rotary vessel (3) generally has the shape of a truncated cone converging downward and having a substantially vertical rotation axis (C).
12. A supply arrangement as claimed in claim 10 or 11, wherein the rotary vessel (3) has an inside wall having irregularities (32), wherein preferably the irregularities (32) are formed by folded subplate members (33) that constitute the inside wall or wherein the irregularities (32) are formed by engagement members.
13. A supply arrangement as claimed in any one of claims 10-12, further comprising a skirt (34) that is rigidly attached to the frame (4) and that provides protection and insulation to an upper outer side of the rotary vessel (3).
14. A supply arrangement as claimed in any one of claims 10-13, further comprising a distributing device (9) located under the bottom outlet (31) of the rotary vessel (3).
15. A supply arrangement as claimed in claim 14, wherein the distributing device (9) has a width (W) that substantially corresponds to a diameter (D) of the outlet (31) of the rotary vessel (3), and a length that is adapted to within the inlet space (11) of the paving machine (1).
16. A supply arrangement as claimed in claim 14 or 15, wherein the distributing device (9) comprises: two parallel outer frame members (90, 91); and, at least one, preferably a plurality of parallel, dividing member/s (93) extending transversely from one outer frame member (90) to the other (91), the at least one dividing member (93) being spaced from the belt conveyor (12) to form a gap (g) between it and the belt conveyor (12), preferably a plurality of dividing member (93) of different size, wherein the size of the gaps (g) increase in a feed direction.
17. A supply arrangement as claimed in any one of claims 14-16, wherein the distributing device (9) has a downstream end (94), and that a rearrangement device (95) for redistributing the asphalt is positioned adjacent said end or between said end and the position for said outlet (31).
18. A supply arrangement as claimed in claim 17, wherein the rearrangement device (95) has a concave surface (95A) directed against a flow of asphalt that is moved within distributing device (9) towards the downstream end (94).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In the following, the invention will be described in more detail with reference to preferred embodiments and the appended drawings wherein
[0020]
[0021]
[0022]
[0023]
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[0027]
MODE(S) FOR CARRYING OUT THE INVENTION
[0028] In
[0029] Further the pavement machine has an inlet space 11 for supply of asphalt, e.g. from a truck (not shown). In the bottom of the inlet space 11 there is a belt conveyor 12 or two parallel belt conveyors 12 that feed the asphalt to the screed 13 of the pavement machine, whereby asphalt is distributed to form a pavement P. The screed 13 distributes the asphalt widthwise and levels and shapes it, and it usually includes leveling arms, moldboard, end plates, burners, vibrators, and slope sensors and controls.
[0030] In
[0031] The supply arrangement 2 comprises a conical rotary vessel 3, a frame 4, rotatably supporting the rotary vessel 3, and as shown in
[0032] As shown in
[0033] At the upper outer side of the vessel 3 there is a skirt 34 that is rigidly attached to the frame 4 and that provides protection and insulation.
[0034] The transmission 5 includes an annular gear 50 that is rigidly connected to the rotary vessel 3 and in meshing engagement with a drive gear 51 driven by the motor 6.
[0035] The frame 4 includes three connected base beams, i.e. two parallel side beams 40 and one transversal beam 41 at the front. Extending upwardly from the base beams 40, 41 there are a plurality of support beams 43, supporting a fixed part 73 of a bearing and also a support platform 44 for the motor 6 and drive gear 51. A forwardly extending frame part 47 carries lifting eyelets 45 or similar devices (also preferably provided at the top of the rotary vessel 3), a load exchanging member 46 and wall members 49A, 49B. Preferably the side beams 40 are length adjustable by arranging telescopically adjustable beam members 48, which may be adjusted to extend the length of the sides.
[0036] In
[0037] At the bottom of the vessel, and in close proximity to the outlet 31, there is provided a distributing device 9. As indicated in
[0038] The distributing device 9 has a width W that substantially corresponds to the diameter D of the outlet 31 of the vessel 3. The length thereof is adapted to be a good fit within the paving machine 1. The distributing device 9 has two parallel outer frame members 90, 91 extending longitudinally in relation to the paving machine 1, i.e. the feed direction of the belt conveyor 12. A plurality of dividing members 93 are arranged transversely from one side to the other within the distributing device 9, i.e. from one longitudinal frame member 90 to the other 91. Each dividing member 93A-93E has a different height h. At a most upstream position (with reference to the feed direction of the belt conveyor 12) there is a first dividing member 93A having the largest height, h.sub.1. In parallel therewith there are positioned a plurality of further such dividing walls 93B-93E, wherein each dividing wall in the direction towards the discharge end of the conveyor the height h decreases for each dividing wall. In the shown example, there are positioned five such dividing walls 93A-93E, wherein each of said dividing walls is positioned such that it crosses at least a subsection of the circle defined by the outlet 31 from the vessel 3. Accordingly, the total distance between the five dividing walls in the longitudinal direction is substantially the same as or less than the diameter D of the outlet 31. Further, as is shown there is a substantially proportional decrease of the height h in the direction of feeding, such that the first dividing wall 93A has a height h.sub.1 that is 5 times the height h.sub.5 of the final dividing wall 93E. The height h.sub.1 of the first dividing wall 93A will be smaller than height H of the frame members 90, 91, such that there is created a gap g between the lower end thereof and the belt conveyor 12, which gap will get larger and larger in the feeding direction.
[0039] Furthermore, at the far end, downstream, of the distributing device 9 there is arranged a rearrangement device 95. The rearrangement device 95 has a concave surface 95A directed obliquely against the flow of asphalt that is supplied by means of the belt conveyor 12, forming a kind of roof that is higher at the center than near the sides, so that the asphalt layer on leaving the distributing device 9 is cambered. The rearrangement device 95 will create a form of the bed of asphalt leaving it, such that it minimizes, preferably eliminates, slipping of parts of the bed of asphalt, e.g. by creating sides that do not slope more than 45. Further the rearrangement device 95 will create a counter pressure that is also beneficial.
[0040] The function of the invention is as follows. The supply arrangement 2 is fitted into a paving machine 1, preferably by lifting it into the supply space 11 by use of the lifting eyelets 45. The distributing device 9 may be positioned on top of the conveyor members 12 of the paving machine 1 before or afterward. In any case the rotary vessel 3 and its frame 4 are positioned on top of the distributing device 9 to be positioned as indicated in
[0041] In operation, asphalt will be supplied into the rotary vessel 3 from above, e.g. by means of an intermediate feeder that is supplied from a truck tipping asphalt from its flatbed (not shown), i.e. in a conventional manner for supplying asphalt to the paving machine 1. Thanks to the rotation of the rotary vessel 3, the asphalt supplied will be thoroughly intermixed, whereby temperature differences that have appeared due to the transport and/or storage will be leveled-out. The belt conveyor 12 of the paving machine 1 continuously moves during operation and accordingly will bring along the asphalt A that is supplied on to it via the outlet 31 of the rotary vessel 3. The distributing device 9 will provide for a further leveling out of the asphalt mixture by means of the dividing walls 93. A first volume A.sub.1 will be supplied near the bottom of the distributing device 9 in connection with a first dividing wall 93A adjacent the upstream end of the belt conveyor 12. Thereafter, a second volume A.sub.2 will be added (on top of the first volume A1) that is supplied down between the first dividing wall 93A and the second dividing wall 93B, etc., and moved by the belt conveyor 12 towards the outlet end 94 of the distributing device 9. At the outlet end 94 of the distributing device 9, a final rearrangement device 95 is provided, the rearrangement device 95 will create a form of the bed of asphalt leaving it, such that it minimizes, preferably eliminates, slipping of parts of the bed of asphalt, e.g. by creating sides that do not slope more than 45. Further the rearrangement device 95 will create a counter pressure that is also beneficial. Thanks to the invention very much more evenly distributed asphalt will be supplied to the paving machine 1, which will improve the quality of the asphalt.
[0042] Tests have indicated that an improvement of about 20% is well within reach by means of the invention, which implies enormous savings, due to the fact that the life time of the pavement will be prolonged proportionally.
[0043] The invention is not limited to what is defined above but may be varied within the scope of the claims. For instance, it is evident that a pavement machine 1 without sensor 10 and without a distributing device 9 may be used to achieve the basic advantages of the invention. Moreover, the skilled person realizes that in some applications in may be sufficient to use merely one dividing member 93 arranged transversely from one side to the other within the distributing device 9, and in others two or three or perhaps more than five. Further it is to be understood that the rearrangement device 95 may be positioned adjacent the outlet end 94 or anywhere between the outlet end 94 and the position for the outlet. Moreover, it is evident that many of the expression used are in no way limiting, e.g. that the relationship value may take other formats than the one exemplified above.