Device for purifying a process fluid and dehumidifying plant including such a device
12194406 ยท 2025-01-14
Assignee
Inventors
Cpc classification
F26B25/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29B2009/168
PERFORMING OPERATIONS; TRANSPORTING
B01D2259/40084
PERFORMING OPERATIONS; TRANSPORTING
B29B9/16
PERFORMING OPERATIONS; TRANSPORTING
F26B2200/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2253/25
PERFORMING OPERATIONS; TRANSPORTING
F26B25/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D53/0446
PERFORMING OPERATIONS; TRANSPORTING
B01D2257/708
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29B9/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A purifying device for purifying a process fluid that flows in a dehumidifying plant for dehumidifying plastics includes a first layer configured for filtering the process fluid, and a second layer configured for reducing, by adsorption, substances that are harmful for health, in particular COV/SOV, which are present in the process fluid.
Claims
1. A device for purifying a process fluid that flows in a dehumidifying plant for dehumidifying plastics in granular and/or microgranular and/or powder and/or flake or similar form intended to supply one or more user machines and subsequently injection and/or blow and/or compression moulding, such plastics, wherein the device comprises: a first layer configured for filtering said process fluid, a second layer configured for reducing, by adsorption, substances that are harmful for health, which are present in said process fluid, wherein said second layer is made of at least one absorbent material having absorption and affinity features in relation to said substances that are harmful for health, wherein said at least one absorbent material consists of active carbons in the form of an extruded element, wherein said second layer is formed by a plurality of extruded elements, each extruded element having a cube or parallelpipedon shape, that are composable in a modular manner and each extruded element comprising through channels, said through channels being configured for channeling a flow of process fluid from an outer zone of the device to an inner zone of the device with respect to an advancement direction of said flow of process fluid.
2. The device according to claim 1, wherein the device is configured in such a manner that a flow of process fluid to be purified enters the device radially and exits axially, purified, from the device.
3. The device according to claim 2, wherein the device has a symmetric axial shape, with a dimension that is predominant with respect to the others.
4. The device according to claim 2, wherein said first layer and said second layer are parts of a body of the device, said first layer being positioned more externally with respect to said second layer with respect to an advancement direction of said flow of process fluid.
5. The device according to claim 2, wherein said first layer is made of a filtering material configured for retaining solid particles having dimensions greater than a porosity thereof.
6. The device according to claim 1, wherein the device has a symmetric axial shape, with a dimension that is predominant with respect to the others.
7. The device according to claim 6, wherein the device has a cylindrical shape.
8. The device according to claim 1, wherein said first layer and said second layer are parts of a body of the device, said first layer being positioned more externally with respect to said second layer with respect to an advancement direction of said flow of process fluid.
9. The device according to claim 8, wherein said body includes a seal arrangement configured for reducing losses of the purification capacity of the device.
10. The device according to claim 1, wherein said first layer is made of a filtering material configured for retaining solid particles having dimensions greater than a porosity thereof.
11. The device according to claim 10, wherein said first layer is made of paper and/or polyester and/or microfibres.
12. The device according to claim 1, wherein said through channels have a square section.
13. The device according to claim 12, wherein said second layer is made of at least two adsorbent materials, arranged radially in relation to one another, i.e. the one is further inside the device than the other with respect to an advancement direction of said flow of process fluid, each of said at least two adsorbent materials being specialized in adsorbing a particular harmful substance, respectively, benzene and limonene.
14. The device according to claim 1, including a saturation sensor for each adsorbent material, each saturation sensor being positioned downstream, with reference to an advancement direction of said flow of process fluid, with respect to said body of the device, and being configured for detecting a degree of saturation of an adsorbent material and reporting to a control and management unit of said dehumidifying plant, when an adsorbent material is saturated and has to be replaced.
15. The device according to claim 1, and comprising a vacuum sensor, positioned astride said body of the device, and configured for detecting a pressure difference of said flow of process fluid between an entry point to the device and an outlet point from the device so as to report to a control and management unit of said dehumidifying plant, in function of a pressure difference detected between said inlet point and said outlet point, if the device is clogged and/or damaged.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention can be better understood and implemented with reference to the attached drawings that illustrate some embodiments thereof by way of non-limiting example, in which:
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DETAILED DESCRIPTION
(13) With reference to
(14) The dehumidifying plant 1 comprises a process fluid, for example air, generator 2, configured for generating a flow of process fluid. The process fluid generator 2 comprises, for example, a side channel blower or a fan.
(15) The dehumidifying plant 1 further comprises a dehumidifier 3, for example of the dehumidifier tower type, or of the continuous regeneration type, or of the dehumidifier wheel type, or of the refrigerator cycle type, configured for thermally conditioning, in particular dehumidifying, the process fluid flow exiting the process fluid generator 2.
(16) Also, the dehumidifying plant 1 includes a process fluid user 4 using process fluid thermally conditioned by the dehumidifier 3, the user 4 comprising, for example, a dehumidifying hopper intended to supply one or more user machines that is/are not shown.
(17) The process fluid generator 2, the dehumidifier 3 and the user 4 are in fluid communication with one another by a first conduit 5a and a second conduit 5b that are included in the dehumidifying plant 1. In particular, the first conduit 5a conveys the process fluid entering the user 4, whilst the second conduit 5b conveys the process fluid exiting the user 4.
(18) Also, the dehumidifying plant 1 comprises a purifying device 6 for purifying the process fluid exiting the process fluid user 4.
(19) The purifying device 6, illustrated in
(20) The purifying device 6, as illustrated in
(21) The first layer 7 is made of filtering material 7a, for example paper (
(22) The second layer 8 is on the other hand made of an adsorbent material 8a, for example active carbon based, to eliminate by adsorption the substances that are harmful for health, in particular the COVs/SOVs. In other words, the adsorbent material 8a of which the second layer 8 is made has high adsorption and affinity characteristics in relation to the COVs/SOVs that are specific and present in the treatment of the plastics (resins).
(23) In particular, the adsorbent material 8a, can have active carbons in loose form (
(24) In this last case, i.e., adsorbent material 8a having active carbons in the form of extruded elements 10, it is possible to form the second layer 8 by composing together, in a modular manner, a plurality of extruded elements 10, for example by gluing, this enabling the configuration flexibility of the constructional geometry of the second layer 8 to be increased.
(25) An example of an extruded element 10 is shown in
(26) In one embodiment that is not illustrated the second layer 8 consists of at least two adsorbent materials, arranged radially in relation to one another, i.e., the one further inside the purifying device 6 than the other with respect to the advancement direction of the flow of the process fluid, each of which specialized in adsorbing a particular COV/SOV. In this embodiment, for example, the adsorbent materials are configured for adsorbing, respectively, benzene and limonene.
(27) Also, the purifying device 6 comprises, as illustrated in
(28) In particular, each saturation sensor 13 is positioned at a conduit 13a that connects the purifying device 6 and the process fluid generator 2 and is configured for detecting a degree of saturation of the (respective) adsorbent material and reporting to a control and management unit, which is not shown, of the dehumidifying plant 1, when an adsorbent material is saturated and has to be replaced.
(29) Also, in one embodiment of the invention, the purifying device 6 comprises a vacuum sensor 14, positioned astride the body 12, configured for detecting a pressure difference of the process fluid flow between an entry point to the purifying device 6 and an outlet point from the purifying device 6. Depending on the detected pressure difference, the vacuum sensor 14 can report to the management unit of the dehumidifying plant 1 whether the purifying device 6 is clogged and/or damaged.
(30) Also, in another embodiment of the invention, which is not shown, the purifying device has a substantially flat shape, for example like a parallelpipedon with a rectangular or square base. In this embodiment, in use, the process fluid flow traverses substantially perpendicularly the faces of greater extent of the body of the purifying device so as to first pass through the first layer and then the second layer.
(31) An advantage of the purifying device 6 disclosed above is that it has overall dimensions that are compatible with the filtering devices that are today present in dehumidifying plants for plastics, this making the purifying device 6 retrofittable also in is existing dehumidifying plants.
(32) Also, the possibility of being able to provide different adsorbent materials in order to each have greater adsorption affinity in relation to a given COV/SOV, enables the purification efficiency of the purifying device 6 to be improved in function of the COV/SOV to be reduced.
(33) It should be noted that purification efficiency is particularly noted in the extrusion industry where there may be greater need to obtain an odourless granule made of plastics compared with the non-contamination needs of the food industry.
(34) Still another object of the invention is the ease of ordinary and/or extraordinary maintenance that enables action to be taken promptly without the need for plant shutdowns.
(35) A further advantage of the invention is the ability to detect, by the saturation sensor/s 13 and/or vacuum sensor 15, when the purifying device 6 has to be maintained or replaced. Until today in fact, filtering devices have been replaced on the basis of the time of use in function of presumed deterioration of the device and not on the basis of the actual loss of efficiency of the device. Nevertheless, in the case of treatment of plastics there is no certainty of the quantities of/COV/SOV powder released by the plastics because this quantity is conditioned by many factors such as, amongst others: method of production, for example injection, extrusion, etc, resin percentage composition, between recycled and/or virgin resin, used in the production of plastic granules, dehumidifying treatment temperature, initial humidity present in the plastic granules, pressure present in the dehumidifying hopper, presence of condensing exchangers in the closed circuit of the dehumidifying plant 1, etc.
(36) The thus conceived invention is capable of numerous modifications and variations, all falling within the protective scope of the inventive concept. Further, all the details can be replaced by technically equivalent elements.