Method of Mixing Crosslinking Blends in Totes for Use to Crosslink Polymer Modified Asphalts
20190329194 ยท 2019-10-31
Inventors
Cpc classification
C08L95/00
CHEMISTRY; METALLURGY
C08J2395/00
CHEMISTRY; METALLURGY
B01F2101/38
PERFORMING OPERATIONS; TRANSPORTING
B01F31/65
PERFORMING OPERATIONS; TRANSPORTING
B01F33/4062
PERFORMING OPERATIONS; TRANSPORTING
B01F33/5013
PERFORMING OPERATIONS; TRANSPORTING
B01F35/2209
PERFORMING OPERATIONS; TRANSPORTING
E01C19/1013
FIXED CONSTRUCTIONS
C08J3/24
CHEMISTRY; METALLURGY
International classification
C08J3/24
CHEMISTRY; METALLURGY
C08L95/00
CHEMISTRY; METALLURGY
E01C19/10
FIXED CONSTRUCTIONS
Abstract
A method of mixing a crosslinking blend in a portable tote for use to crosslink polymer modified asphalts. The method includes providing a portable tote, where the tote includes a tank having a sidewall, a top and a bottom portion. Fixedly positioned partially within the tank interior is an air mixing system that includes a hollow wand that has a distal and a proximal end. The proximal end of the wand exits the tank. The distal end of the tote is connected to at least one accumulator plate, where the accumulator plate is adjacent to the interior bottom portion of the tank. Stored in the interior of the tank is a crosslinking blend suitable for use to crosslink polymer modified asphalts. The method includes the steps of attaching a pulsed gas controller to the proximal end of the wand and coupling a source of compressed gas to the controller, then activating the controller to cause mixing of the crosslinking blend by pulsing gases into the crosslinking blend for a sufficient period of time. After, or during mixing, the crosslinking blend is discharged from the interior of the tank, and the controller is removed from the wand, leaving said wand attached to the tank.
Claims
1. A portable tote for use to crosslink polymer modified asphalts, said portable tote comprising a rigid tank having a top portion, a bottom portion and a sidewall, defining a tank interior, and having a gas mixing system fixedly attached to the tank, said gas mixing system containing a hollow wand partially disposed in the interior of the tank, said wand having a proximal end and a distal end, said proximal end exiting the tank and fixedly attached to said tank, said portable tote further comprising a bottom frame supporting said tank, said bottom frame configured to be lifted by a fork lift, said distal end of said wand having at least one accumulator plate positioned thereon, said accumulator plate positioned adjacent the bottom portion of the tank.
2. The portable tote of claim 1 further comprising a pulsed gas controller attached to the said proximal end of said wand.
3. The portable tote of claim 1 wherein said distal end of said wand has at least two accumulator plates connected by a distribution manifold.
4. The portable tote of claim 1 wherein the tote further comprises an external frame, said tank being positioned substantially in the interior of the external frame.
5. The portable tote of claim 1 wherein the position of the accumulator plate is substantially fixed in position in the interior of the tank.
6. The portable tote of claim 1 wherein the tank forms an inverted frustum.
7. The portable tote of claim 1 wherein the tank forms a cylindrical drum.
8. The portable tote of claim 1 wherein the tank sidewall comprises four connected sidewalls, forming, in cross section, a rectangle or a square.
Description
DESCRIPTION OF THE FIGURES
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DESCRIPTION OF THE PREFERRED EMBODIMENT
[0014] One embodiment of the invention includes a portable storage tank or tote that has a pre-installed pulsed air wand in the tank. Shown in
[0015] Positioned in the interior of the tank is an air dispersion system that includes a hollow wand having a distal end 4 and proximal end 5. The proximal end 5 is fixedly attached to the tank, such as coupled to a tank opening 40 with a coupling member. As shown, the proximal end 5 of the wand is coupled to the top of the tank 1, such as at the bung opening 40 or at a drilled hole, using a bulk head fitting to secure the wand. The proximal end of the wand 5 protrudes above the top surface of the tank 1, and preferably, terminates in a connector 9, such as a quick connector. A removable cap (such as a threaded cap, or quick connect cap) can cover the protruding terminating proximal end 5 of the wand.
[0016] The distal end 4 of the wand terminates in a distribution manifold 60. The manifold 60 is generally one or more hollow pipes, attached or connected to the distal end 4 of the wand (such as by tubing connectors). The distribution manifold 60 terminates in one or more generally planar accumulator plates 3. The accumulator plates 3 may threadably attach to the distribution manifold 60. Preferably, the accumulator plates 3 will be located adjacent to the bottom of the tank (about -2 inches off the bottom of the tank) and the planar accumulators 3 will preferably be installed substantially parallel to the tank floor section to which the accumulator is adjacent. As shown in
[0017] The wand and distribution manifold are intended to be semi-permanently installed in the tank, but removable for repairs when needed. In use, a tank can be retrofitted with the wand distribution manifold accumulator system. Crosslinking product is then added to the now wanded tank/tote, and shipped to the desired location for combination with the modified asphalt product. At the desired location, when mixing of the crosslinking product is desired, an air or gas controller, such as a Pulsair controller, is attached to the proximal end of the wand, such as with a quick connector. A source of compressed air or inert gas is then coupled to the air controller (such as by coupling to an air compressor) and mixing of the crosslinking product is then performed. When mixing is complete, the air controller may be removed, leaving the wand installed in the tank (alternatively, mixing can be continued as product is discharged from the tote). As the wand remains in the tote, the oil based blended material does not spill or drip on the operator or work area. Clean up is eliminated or reduced, and unsafe working conditions resulting from slippery oil on work surfaces is avoided. This is a significant operational advantage as manpower requirements are pressing and critical during the asphalt crosslink operation. This operational advantage translates into a competitive advantage for Alberty Additives, LLC in the Modified Asphalt market place.
[0018] The pulsing air mixing system has shown significant improvement in allowing the crosslink material to be pumped from the tote. Typical heels (material that remains in the tote after application) can be as high as 600 pounds of crosslink material. The internally mounted Pulsair system results in heels as low as 30 pounds and averages less than 100 pounds. The pulses assist in scouring action, lifting deposited materials into suspension.
[0019] The mixed crosslinking product or blend is then pumped from the bottom or near the bottom of the tank to be combined with the asphalt. In one sequence, the polymer may have been added and thoroughly mixed into the asphalt prior to addition of the crosslinking product. Alternatively, after suitable mixing, the crosslinking product may be discharged while mixing of the polymer occurs within the asphalt tank. Once the crosslinking product tank is drained, it may be desirable to operate the air system to purge any product within the distribution system/wand. The pulsed gas mixing allows for even distribution of the sulfur in the crosslinking blend (providing for better results when mixing with the modified asphalt) and also allows for removal of substantially all of the crosslinking blend from the tote tank.
[0020] Shown in
[0021] For small tanks, two accumulator plates are deployed. For larger tanks, or for tanks with vertical walls, such as a barrel shaped tank, more accumulators may be needed to provide sufficient mixing and scouring of the bottom portion of the tank. With additional accumulators, higher gas pressures may be needed to provide sufficient gas flow to the accumulators.