REFINER, INSTALLATION AND METHOD FOR TREATING COMPOSITE PRODUCTS
20230166308 · 2023-06-01
Inventors
Cpc classification
B29B17/02
PERFORMING OPERATIONS; TRANSPORTING
B29B2017/0424
PERFORMING OPERATIONS; TRANSPORTING
B01F27/94
PERFORMING OPERATIONS; TRANSPORTING
B09B5/00
PERFORMING OPERATIONS; TRANSPORTING
C08L2555/34
CHEMISTRY; METALLURGY
B07B1/26
PERFORMING OPERATIONS; TRANSPORTING
B29B2017/0217
PERFORMING OPERATIONS; TRANSPORTING
Y02W30/62
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01F27/95
PERFORMING OPERATIONS; TRANSPORTING
B09B3/40
PERFORMING OPERATIONS; TRANSPORTING
B07B1/24
PERFORMING OPERATIONS; TRANSPORTING
C08L95/00
CHEMISTRY; METALLURGY
B01F27/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
B09B3/40
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The invention relates to a refiner (1) for treating composite products made from thermoplastic material(s), comprising an enclosure (3) with a cylindrical wall, defining a treatment chamber provided with at least one feed opening (5) for products to be treated and at least one outlet opening (5′) for treated products, and a cylindrical drum (6), mounted so as to be able to move in the cylindrical enclosure (3) and having a diameter smaller than that of the latter, the longitudinal axes of symmetry of the outer enclosure (3) and the inner drum (6) respectively being parallel to each other,
the refiner (1) being characterized in that it comprises a means for heating the treatment chamber (4) and in that the drum (6) is mounted in the outer enclosure (3) so that it is able to move in rotation about its longitudinal axis (A2) and so that its longitudinal axis (A2) is able to move along a circular path around the longitudinal axis of said enclosure (3), the two types of possible movements mentioned above being controlled by separate drive and/or actuation means allowing them to be effected selectively or in combination.
Claims
1. A refiner for treating composite products made from thermoplastic material(s), in particular polymeric and/or bituminous material(s), these products being advantageously pretreated and in viscous form, and containing solid fragmentary and/or particulate elements, of mineral and/or organic nature(s), such as particles or fibers, said this-refiner comprising: an enclosure with a cylindrical wall, defining a treatment chamber provided with at least one feed opening for products to be treated and at least one outlet opening for treated products, and a cylindrical drum, mounted so as to be able to move in the cylindrical enclosure and having a diameter smaller than that of the latter, the longitudinal axes of symmetry of the outer enclosure and the inner drum respectively being parallel to each other, said refiner further comprising a means for heating the treatment chamber and in that the drum is mounted in the outer enclosure so that said drum is able to move in rotation about its longitudinal axis and so that its longitudinal axis is able to move along a circular path around the longitudinal axis of said enclosure, the two types of possible movements mentioned above being controlled by separate drive and/or actuation means, allowing them to be effected selectively or in combination.
2. The refiner as claimed in claim 1, wherein the longitudinal axes of the outer enclosure and the inner drum are oriented substantially vertically, the drive means, and possibly the actuation means, being advantageously installed on the enclosure, at the top of the latter.
3. The refiner as claimed in claim 1, wherein the feed opening is provided at the bottom of the enclosure and in that the outlet opening is provided at the top of the latter, these two openings being situated opposite each other with respect to the longitudinal axis of the enclosure and in a plane containing this axis.
4. The refiner as claimed in claim 1, wherein guide means, preferably present at the top and bottom of the enclosure, provide the movement of the longitudinal axis of drum along a circular path in the enclosure around the longitudinal axis de the latter, and are advantageously configured to allow the gap between the outer face of the drum and the inner face of the enclosure to be adjusted.
5. The refiner as claimed in claim 1, wherein said refiner comprises a control means for controlling the two separate actuation means, suitable and intended to implement the two types of movements of the drum, with a view to their separate or combined control, said control means configured to be able to from part of a means for overall control and management of a treatment installation incorporating said refiner.
6. The refiner as claimed in claim 1, wherein a circulation pump, adapted to the composite products to be treated, is connected to the feed opening situated at the bottom of the enclosure.
7. The refiner as claimed in claim 1, wherein said refiner is provided with sensors for measuring the force(s) applied in order to move the drum about its longitudinal axis and/or in the enclosure.
8. An installation for treating and upgrading composite products made from thermoplastic, for example waste incorporating mostly bituminous products, in particular bituminous membranes, said installation comprising: several successive treatment stations, the installation having, as a treatment station, at least one refiner as claimed in claim 1.
9. A method for reducing the components of composite products made from thermoplastic material(s), in particular polymeric material(s), containing solid fragmentary and/or particulate elements, of mineral and/or organic nature, such as particles or fibers, by using the refiner as claimed in claim 1, comprising the steps of: injecting, into the enclosure of the refiner, via its feed opening, composite products to be treated in a controlled manner, continuously or sequentially, treating these products in the enclosure by heating and by continuously or intermittently moving the drum in the enclosure, this movement being effected either in rotation about its longitudinal axis, or along a circular path around the longitudinal axis of the enclosure or indeed by combining the two abovementioned movements.
10. The method as claimed in claim 9, wherein said method further comprises the step of controlling the shearing by adjusting the gap between the drum and the enclosure and by determining the speed and the nature of the movement of the drum in the enclosure.
11. The method as claimed in claim 9, said method comprising, on a regular basis, or following the detection of a resistant force greater than a threshold value, at least temporarily inverting at least one of the two movements of the drum.
12. The method as claimed in claim 9, wherein said method further comprises moving the longitudinal axis of the drum around the longitudinal axis of the enclosure in an oscillating back-and-forth movement, centered on the feed opening.
13. The installation as claimed in claim 8, wherein said at least one refiner is either the last or penultimate treatment station.
14. The method as claimed in claim 12, wherein the moving of the longitudinal axis of the drum around the longitudinal axis of the enclosure in an oscillating back-and-forth movement, is centered on the feed opening by about 100° to either side of said opening.
Description
[0021] The invention will be more clearly understood from the description that follows, which relates to a preferred embodiment, provided as a non-limiting example, and explained with reference to the appended schematic drawings, in which:
[0022] [
[0023] [
[0024] [
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[0026] [
[0027]
[0028] This refiner 1 comprises an enclosure 3 with a cylindrical wall, defining a treatment chamber 4 provided with at least one feed opening 5 for products 2 to be treated and at least one outlet opening 5′ for treated products 2′, and a cylindrical drum 6, mounted so as to be able to move in the cylindrical enclosure 3 and having a diameter smaller than that of the latter, the longitudinal axes of symmetry A1, A2 of the outer enclosure 3 and the inner drum 6 respectively being parallel to each other.
[0029] According to the invention, said refiner 1 comprises a means for heating the treatment chamber 4 and the drum 6 (cylindrical) is mounted in the outer enclosure 3 (cylindrical) so that it is able to move in rotation about its longitudinal axis A2 and so that its longitudinal axis A2 is able to move along a circular path around the longitudinal axis A1 of said enclosure 3, the two types of possible movements mentioned above being controlled by separate drive and/or actuation means 7, 8, allowing them to be effected selectively or in combination.
[0030] The combination in the refiner 1 of the synergistic effects of the heat and the absolute and relative movements of the drum 6 and the enclosure 3 (mechanical actions of crushing, shearing and mixing) allows an efficient and complete treatment of composite products of a thermoplastic nature (in particular as inputs in viscous form, in particular made from bitumen containing polymers and solid particles (in particular granules and fibers). Therefore, and by virtue of the abovementioned technical arrangements:
[0031] 1) The macroscopic hard particles (>mm) are treated. They are sheared/ground between the wall of the cylinder (outer enclosure 3) and the wall of the drum 6. In the event of wear, the cost of replacing a cylinder/drum is relatively low (in particular less expensive than re-sharpening the blades of a colloidal mill). As a collateral effect, the hardest solid particles present in the composite product effect attrition on the softest particles.
[0032] 2) Complete fragmentation of the granules and/or the fibers present takes place.
[0033] Granules and/or fibers are stretched and reduced in the gap e by the shearing between the wall of the drum 6 and the wall of the cylinder 3. Since this cylinder 3 is heated, the stretching is carried out at a controlled temperature which may be different from that of the input product. The temperature setpoint may be set higher than temperature thresholds of the material to be fragmented (e.g.: glass transition temperature Tg). Operating at higher than the Tg greatly assists the fragmentation of the material and the performance of the refiner 1.
[0034] In view of the structure of the refiner 1, the variable gape defined between the drum 6 and the enclosure 3 has a minimum value (along a longitudinal axis Ae min parallel to the axes A1 and A2) and thus determines the maximum degree of dimensional reduction of the solid particles/fragments present in the treated input and the degree of avoidance of the materials constituting the thermoplastic material of the treated composite product 2. This minimum gap is, depending on the type of movement of the drum 6, either fixed, or movable (see
[0035] Advantageously, the longitudinal axes A1, A2 of the outer enclosure 3 and the inner drum 6 respectively are oriented substantially vertically, the drive means 7, and possibly the actuation means 8, being advantageously installed on the enclosure 3, at the top of the latter, for example on a cover opposite the bottom of the enclosure 3 and closing the latter at the top. Two separate reduction gear assemblies 8′, 8″ may form the actuation means 8, each associated with a specific movement transmitting/transforming means 7 (transmission, offsetting/movement of the axis of rotation, meshing, etc.).
[0036] Preferably, the feed opening 5 is provided at the bottom of the enclosure 3 and the outlet opening 5′ is provided at the top of the latter, these two openings 5 and 5′ being situated opposite each other with respect to the longitudinal axis A1 of the enclosure 3 and in a plane containing this axis (see
[0037] In accordance with one possible feature of the invention, allowing the refiner 1 to be calibrated and the properties of the treatment that it performs to be adjusted, said refiner 1 may comprise guide means, preferably present at the top and bottom of the enclosure 3 and providing the movement of the longitudinal axis A2 of the drum 6 along a circular path in the enclosure 3 around the longitudinal axis A1 of the latter, these means being advantageously configured to allow the gap e (in particular its minimum value) to be adjusted between the outer face of the drum 6 and the inner face of the enclosure 3.
[0038] According to another possible feature of the invention, the refiner may comprise a control means for controlling the two separate actuation means, suitable and intended to implement the two types of movements of the drum 6, with a view to their separate or combined control, said control means possibly forming part of a means for overall control and management of a treatment installation 11 incorporating said refiner 1.
[0039] The controlled injection of the products in viscous form is, for example, carried out by a circulation pump 12, adapted to the composite products to be treated, and connected to the feed opening 5 situated at the bottom of the enclosure 3. However, this injection may also be carried out by force of gravity from a heated temporary storage tank or from another upstream treatment station.
[0040] In order to be able to easily check the degree of treatment of the injected products and obtain practical and reliable information for controlling the injection of same, and the replenishing of the products in the chamber 4, the refiner 1 is advantageously provided with sensors for measuring the force(s) applied in order to move the drum 6 about its longitudinal axis A2 and/or in the enclosure 3. Temperature and possibly viscosity sensors may also be provided.
[0041] The refiner 1 has various adjustment possibilities, namely: [0042] two parameters for adjusting the intensity of the mechanical work (shearing), namely: the speed of movement/rotation of the drum 6 (for example: speed of rotation on itself: 200 rpm/eccentric movement speed: 60 rpm) and the minimum value of the gap e (for example: 0.5 to 0.1 mm). [0043] a parameter relating to the treatment time, i.e., the residence time of the products in the chamber 4 (for example 10 to 50 secs).
[0044] A certain number of practical structural arrangements that are possible in the context of the invention are described hereinafter with reference to the appended figures.
[0045] Therefore, the enclosure 3 advantageously consists of two shells or cylindrical tubular portions spaced apart by a gap to form a double casing in which a heat-transfer fluid circulates (thermal oil circulating between the two walls of the casing).
[0046] The materials which are used to produce said shells are special steels designed to withstand high temperatures, having good thermal conductivity, and being resistant to the abrasion of the material that is present and treated in the chamber 4. These choices give the heat exchange between the enclosure 3 and the material present in the working chamber 4 a high degree of efficiency. All the surfaces in contact with the material are re-machined after assembly by welding.
[0047] The drum 6 is, for example, constituted by a hollow cylinder machined from a pre-treated, abrasion-resistant steel. This drum 6 is assembled on a shaft defining the axis A2, this shaft being guided by two bearings and driven by a main reduction gear 8′.
[0048] A secondary reduction gear 8″ (forming, with 8′, the actuation means 8) drives the eccentricity unit that forms part of the movement transmitting/transforming means 7. This unit is, for example, essentially constituted by two ring gears 7′ and 7″ with balls or rollers for guiding and moving the drum 6, which are spaced apart and support plates with mechanisms for adjusting said eccentricity (see
[0049] A dynamic sealing device with double rotational movement is preferably provided in order to seal said material working chamber 4.
[0050] The invention also relates, as shown in
[0051] This installation 11 is characterized in that it comprises, as a treatment station, at least one refiner 1 as described above, preferably as the last or penultimate treatment station.
[0052] The installation 11 may, for example, comprise (as the first station) at least one heating mixer 13, fed with composite products (possibly pretreated), for example bituminous construction and factory waste, conveyed by a conveyor 13′, for example.
[0053] The hot and viscous output from the mixer 13 passes through at least one, and preferably two, roller mill(s) 14 associated with a separator for separating macroscopic pollutants 15 (ejector/extractor device) before being transferred directly or indirectly into the refiner 1 by a pump 12. The output (treated products 2′) from the refiner 1 may be stored in a tank 16.
[0054] An additional treatment station 17 (filter, macerator, etc.) may possibly be installed before the refiner 1.
[0055] Finally, the invention also relates to a method for reducing the components of composite products made from thermoplastic material(s), in particular polymeric material(s), containing solid fragmentary and/or particulate elements, of mineral and/or organic nature, such as particles or fibers, by using a refiner 1 as described above.
[0056] This method is characterized in that it consists in injecting, into the enclosure 3 of the refiner 1, via its feed opening 5, composite products 2 to be treated, preferably pretreated and viscous, in a controlled manner, continuously or sequentially, treating these products in the enclosure 3 by heating and by continuously or intermittently moving the drum 6 in the enclosure 3, this movement being effected either in rotation about its longitudinal axis A2, or along a circular path around the longitudinal axis A1 of the enclosure 3 or indeed by combining the two abovementioned movements.
[0057] As previously indicated, control of the shearing may be envisaged, by adjusting the gap e between the drum 6 and the enclosure 3 and by determining the speed and the nature of the movement of the drum 6 in the enclosure 3.
[0058] In order to optimize the operation of the refiner 1 and, if required, to prevent it from possibly becoming jammed due to clogging, the method may consist, on a regular basis or following the detection of a resistant force greater than a threshold value, in at least temporarily inverting at least one of the two movements of the drum 6.
[0059] As a variant, or alternatively to a unidirectional movement, the method may also consist in moving the longitudinal axis A1 of the drum 6 around the longitudinal axis of the enclosure in an oscillating back-and-forth movement, centered on the feed opening 5, for example by about 100° to either side of said opening 5.
[0060] Naturally, the invention is not limited to the embodiment described and shown in the appended drawings. Modifications remain possible, in particular in terms of the constitution of the various elements or by substituting technical equivalents, without departing from the scope of protection of the invention.