CA2920577A1 - Vibratory floor with controlled atmosphere, for cohesive products - Google Patents

Vibratory floor with controlled atmosphere, for cohesive products Download PDF

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Publication number
CA2920577A1
CA2920577A1 CA2920577A CA2920577A CA2920577A1 CA 2920577 A1 CA2920577 A1 CA 2920577A1 CA 2920577 A CA2920577 A CA 2920577A CA 2920577 A CA2920577 A CA 2920577A CA 2920577 A1 CA2920577 A1 CA 2920577A1
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CA
Canada
Prior art keywords
vibratory floor
floor according
vibratory
module
flanges
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Granted
Application number
CA2920577A
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French (fr)
Other versions
CA2920577C (en
Inventor
Jean-Claude Poncet
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Vibrafloor Sas
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Vibrafloor Sas
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Publication date
Application filed by Vibrafloor Sas filed Critical Vibrafloor Sas
Priority to CA2920577A priority Critical patent/CA2920577C/en
Publication of CA2920577A1 publication Critical patent/CA2920577A1/en
Application granted granted Critical
Publication of CA2920577C publication Critical patent/CA2920577C/en
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Classifications

    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04BGENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
    • E04B5/00Floors; Floor construction with regard to insulation; Connections specially adapted therefor
    • E04B5/43Floor structures of extraordinary design; Features relating to the elastic stability; Floor structures specially designed for resting on columns only, e.g. mushroom floors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65GTRANSPORT OR STORAGE DEVICES, e.g. CONVEYORS FOR LOADING OR TIPPING, SHOP CONVEYOR SYSTEMS OR PNEUMATIC TUBE CONVEYORS
    • B65G65/00Loading or unloading
    • B65G65/30Methods or devices for filling or emptying bunkers, hoppers, tanks, or like containers, of interest apart from their use in particular chemical or physical processes or their application in particular machines, e.g. not covered by a single other subclass
    • B65G65/34Emptying devices
    • B65G65/40Devices for emptying otherwise than from the top
    • B65G65/44Devices for emptying otherwise than from the top using reciprocating conveyors, e.g. jigging conveyors

Abstract

A vibratory floor is made up of shaker modules protected against the entry of dust, and capable of emptying cohesive products. The inner volume of each module is connected by means of a pipe to an air or clean gas volume. Each module past the first row is provided with an anti-pressure device made up of an anti-pressure plate situated above the motor cover, supported by two flanges resting on stationary parts on either side of the module. The modules thus formed are protected against the entry of dust, and effectively emptying any cohesive product from silos, vessels, railroad cars or any other containers, without human or mechanized intervention.

Description

VIBRATORY FLOOR WITH CONTROLLED ATMOSPHERE, FOR COHESIVE
PRODUCTS
Technical Field The present disclosure relates to a vibratory floor designed to empty all grainy and powdery products, including cohesive products, from all types of containers, silos, vessels, receptacles, trucks and hoppers. It also ensures that dust does not penetrate inside the modules.
Background A vibratory floor is made up of one or more shaker modules, arranged on the slightly inclined bottom of a grainy or powdery material container. The function of the vibratory floor is to empty the residual piles, i.e., material that does not flow by gravity.
A shaker module is made up of a steel frame including crosspieces between which a filler material is arranged. Compression springs fixed on the crosspieces bear a metal sheet subject to at least one motor-driven vibrator and a peripheral sealing membrane. When the container is filled with material, the springs bearing the metal sheet are compressed, and the metal sheet bears on the filler material.
During emptying, the springs are gradually depressed until final cleaning, and the metal sheet is raised and bears on the depressed springs. This process creates a vacuum inside the module, this vacuum being offset by a volume of air or gas gradually penetrating between the metal sheet, the filler material and the bottom of the frame.
The air thus absorbed at the bottom of the silo is filled with dust. The dust gradually fills the space between the metal sheet, filler material and bottom of the frame, until it prevents compression of the springs and thus blocks the operation of the shaker modules. The vibratory floor then becomes completely ineffective.
The accumulation of dust between the metal sheet and the filler material can cause the sealing membrane to break, which makes the shaker modules unusable.
Furthermore, some very cohesive products, such as soybean meals, highly hydrophilic materials such as potassium, may harden in their containers. The
2 pressure exerted by a cohesive mass, in particular near the cover of the motor-driven vibrator, generally prevents the vibrating floors that are currently commercially available from emptying these types of products.
Summary The present disclosure relates to a vibratory floor that aims to offset the drawbacks of the prior vibratory floors, in particular by ensuring that the shaker modules only fill with clean air during the loading and unloading cycles while connecting the volume comprised inside the shaker module with a source of clean air or another gas, for example nitrogen.
It also aims to allow the emptying of all types of grainy and powdery products, including highly cohesive products.
To that end, the shaker module in question includes a pipe placed near the module, and an outer pipe arranged in a cable raceway, these pipes allowing the conveyance of the electrical power cable to the motor-driven vibrator. The junction between the two pipes is done inside the shaker module using a connecting piece including at least one hole. Furthermore, the outer pipe and the electric cable emerge outside the container, either through the floor of the container, or through a wall of the container, and penetrate a sealed box, or in the space outside the container.
The sealed box may be equipped with an air filter, or alternatively with a pipe opening to the outside atmosphere. The inner volume of the shaker module is thus placed in communication with a volume of clean air, through the hole of the connecting piece between pipes, then through the outer pipe and the sealed box, or the space outside the container.
According to another feature of the disclosure, an outer pipe in which an electric cable does not travel connects the inner volume of the module with a box connected to a clean air volume, or with the space outside the container.
According to one particular feature of the disclosure, the box is connected to a partial or complete supply volume of another gas.
According to still another feature of the disclosure, the box is connected to a volume of air or a supply source of another gas, the air or the gas being introduced
3 into the box at a pressure higher than the pressure inside the modules.
In the case of a vibratory floor made up of a plurality of modules, the modules are arranged in one or more rows along a slope, forming one or more bays of modules perpendicular to the slope. Spaces of variable width can be arranged between the bays of modules, in which, for example, the cable raceways for the electric power cables of the motor-driven vibrators can be installed.
In one particular embodiment, the modules are arranged in one or more circles around a central opening. In this case, spaces can be arranged along radial lines between the modules.
The modules constitute vibrating surfaces, while the spaces between modules constitute stationary, non-vibrating parts.
When a vibratory floor is designed to empty non-cohesive fluid products, the shape of the residual pile after gravitational emptying is triangular, and the vibratory floor can initiate cleaning of the residual slope in all scenarios.
When the product to be emptied is cohesive, in the case of soybean meals, wood particles, potassium, or any other cohesive products, the vibratory floor alone cannot initiate cleaning of the residual pile.
In the configurations with a single module, a single row or a single circle, one or more deflectors positioned near the discharge opening(s) make it possible to limit the pressure exerted by the content on the cover of the motor-driven vibrator, positioned in the lower part of the module(s). The cleaning of the residual pile can thus be done.
A problem arises in configurations with several rows or several circles of modules, when it becomes time to clean the second module or the second row or the second circle of modules. A cohesive product can indeed form a cliff, and the weight applied on the cover of the motor-driven vibrator may be too great to make it possible to continue cleaning the residual pile. The emptying process is stopped, and is then necessary to use alternative means, using handling vehicles or manually, which presents high risks for the operating personnel.
According to another feature of the disclosure, two flanges resting on stationary parts of the vibratory floor support an anti-pressure plate.
4 The anti-pressure plate may be situated above the cover of the motor-driven vibrator, lightening it of the load of product that would otherwise bear directly on the cover.
According to still another feature of the disclosure, the flanges supporting the anti-pressure plate can be provided with triangular shapes, vertically and horizontally, in order to break the blocks of cohesive material that may slow the stream of product on the vibrating metal sheet. The profile of the flanges may also assume any shape, formed by two inclined straight half-lines, a chain profile in a vertical plane, or any other profile.
Brief Description of Drawings Other features of a vibratory floor, established according to the disclosure, will also appear in the following description of example embodiments, provided for information and non-limitingly, in reference to the appended drawings, in which:
- Figure 1 shows a longitudinal sectional view of a shaker module under a load - Figure 2 shows the same shaker module, unloaded - Figure 3 is an exploded perspective view of a shaker module - Figure 4 is a detailed view of figure 3 - Figure 5 shows a perspective view of a vibratory floor - Figure 6 shows a perspective view of another vibratory floor - Figure 7 is a sectional view of the interval between modules along line I-1 of figure 6 - Figure 8 is a longitudinal sectional view along line II-II of figure 6 of a vibratory floor loaded with a cohesive product - Figure 9 is a longitudinal section along line II-II of figure 6 of a vibratory floor under the load of a cohesive product after cleaning the lower modules - Figure 10 is a perspective view of the anti-pressure device - Figure 11 is a sectional view of the downstream and upstream flanges of the anti-pressure device along line 111-11I of figure 9.
- Figure 12 is another sectional view of the downstream and upstream flanges along line 111-11I of figure 9 - Figure 13 shows a specific flange profile - Figure 14 shows a perspective view of a silo with a single bay of modules - Figure 15 illustrates a specific support embodiment for the anti-pressure device.
5 Detailed Description In reference to figure 1, we will consider a shaker module 1 made up of a frame 2, including transverse flanges 3 on which springs 4 are fastened, and filled with a filler material 5 between the flanges 3. A metal sheet 6 subjected to a stiffener 7 and a motor-driven vibrator 8 rests on the frame 2 by means of springs 4. A
peripheral membrane 9 of the metal sheet 6 provides the connection between the metal sheet 6 and the frame 2. Figure 1 shows this module in the loaded position.
Figure 2 shows the same module unloaded, and the volume of air 10 having penetrated inside the module during the unloading operation.
Figure 3 shows a module 1 installed in a container 11, for example a silo, the bottom of which is made up of a slope 12. An inner pipe 13 inside the module and an outer pipe 14 allow the passage of the cable 15 of the motor-driven vibrator 8, not shown. Figure 4 more particularly shows that the inner pipe 13 is fastened to a connecting part 16. The outer pipe 14 is fastened to the same connecting part 16 by a cable gland 17. The connecting part 16 includes at least one free hole 18, placing the inner volume 10 of the module 1 in communication with the inner volume of the outer pipe 14, which in turn opens on a clean air volume 19, as indicated in figure 3.
The pipe 14 is oversized relative to the cable 15 in order to ensure sufficient air passage inside the pipe 14. In reference to figure 3, in a space outside the container 11, for example in a tunnel 20 situated below the container 11, the clean air volume 19 is contained in a box 21, in which the pipe 14 and the cable 15 penetrate via a cable gland 22. The cable 15 leaves the box 21 by means of the cable gland 23, and enters a second electrical connection box 24.
In another embodiment also shown in figure 3, the outer pipe 14 is fastened on the side of the module 1 via a cable gland 25, and is connected in the same way to a clean air volume 19 contained in a box 21 without allowing passage of
6 the cable 15.
The box 21 includes an air filter 26 of a known model that is cylindrical, rectangular or otherwise shaped, or alternatively a pipe 27 connecting the inside of the box 21 to another clean air volume 19, most often the atmosphere outside the container 11. Alternatively, the pipe 27 can be connected to a partial or full supply source of another gas. Several boxes 21 can also be connected to one another by a pipe 28.
Figure 5 illustrates one particular embodiment in which the sheaths 14 and the cables 15 are passed through a wall 29. The wall 29 separates the inside of the container 11 from a clean air volume 19, in this case the atmosphere, the pipes 14 opening directly in the space 19. The cables 15 next directly penetrate an electrical cabinet 30.
The inside of the shaker modules 1 is thus placed in communication with a volume of clean air, filtered air or another gas.
Figure 6 shows 3 shaker modules 31, 32 and 33 forming a bay 34 of three modules 1, adjacent to a bay 35, the bays 34 and 35 being arranged along the slope 12 of the silo 11, also made up of walls 29. Of course, a bay can be made up of any number of shaker modules without the scope of the present disclosure been altered.
An interval 36 arranged between the bays 34 and 35 and more particularly shown in figure 7 can shelter a cable raceway 37 provided with a cover 38 made up of two inclined wings 39. The cable raceway 37 and its cover 38 make up stationary non-vibrating parts, inside which sheaths 14 and cables 15 can travel. The surface made up of shaker modules 1 and intervals 36 constitutes a vibrating floor 40.
Figure 8 shows that at the bottom of the slope 12, there is an opening 41.
The silo 11 is filled with a cohesive product 42 not flowing by gravity. A
counter-slope 43 positioned above the cover 44 of the motor-driven vibrator 8 of the lower module 31 creates a non-compressed space 45 near the motor-driven vibrator 8, thus allowing the motor-driven vibrator 8 of the module 31 to destabilize the product 42.
Figure 9 shows one possible loading scenario of the modules 32 and 33 after cleaning of the module 31, in the case where the content is a cohesive material 42. Without any particular precaution, the motor-driven vibrator 8 of the module 32,
7 directly subjected to a very high pressure, alone cannot destabilize the cliff thus formed. Figure 9 also shows the anti-pressure devices 46 of the modules 32 and 33.
Figure 10 shows the anti-pressure device 46 in more detail, made up of an anti-pressure plate 47 maintained above the cover 44 of the motor-driven vibrator 8, not shown, by two flanges, a downstream flange 48 and an upstream flange 49.
The minimum distance between the anti-pressure plate 47 and the top of the cover 44 is approximately 5 cm, value provided for information only and in no way limiting the scope of the present disclosure. The anti-pressure plate 47 prevents the product from bearing directly on the cover 44 of the motor-driven vibrator 8. The motor-driven vibrator 8 thus freed from the pressure of the product 42 of figure 9 is made able to oscillate and cause the destabilization of the product 42.
The downstream flange 48 is made up of a bar 50 with any section, preferably circular, on which a triangular profile 51 can be fastened over its entire length, or only one or several length sections, the axis of symmetry of the profile 51 being found on the vertical, the tip pointing upward. The profile 51 is used to break blocks of material that may fall on the anti-pressure device 46.
The upstream flange 49 is made up of a bar 50 and optionally the same vertical triangular profile 51, to which triangular profile sections 52 can be added positioned with axis parallel to the slope 12, tip toward the top of the slope, as shown in figure 11. The sections 52 are used to break the blocks of material that may descend along the slope, such that these blocks do not hinder the flow of the product.
The anti-pressure plate 47 is fastened in the upper part and at the apex of the two flanges 48 and 49.
The anti-pressure plate 47 can indifferently be positioned horizontally, as shown in figure 11, or parallel to the line of the slope 12, as indicated in figure 12.
As indicated in figure 10, a deflector 53 can be positioned above the anti-pressure plate 47 to reduce the pressure on the anti-pressure plate 47 and consequently on the anti-pressure device 46. A support plate 54 is secured to each of the ends of the bar 50, and includes a vertical part 55 and an oblique indented part 56. The oblique part 56 is fastened by screwing or bolting or by any other method on
8 an inclined wing 39 of the cover 38 of the cable raceway 37. The vertical part 55 of the support plate 54 is fastened by bolting or by any other method to the same vertical part 55 of the adjacent anti-pressure device.
Figure 13 shows flanges 48 and 49 whereof the bars 50 have a chain profile in a vertical plane, particularly strong with respect to vertical loads.
Figure 14 shows a vibratory floor with a single bay. In this case, the support plate can be reduced to a vertical plate 55 fastened on a wall 29 of the silo 11.
In the case of a configuration with multiple bays, all of the adjacent vertical parts 55 of the support plates 54 are connected to one another by bolting or by any other fastening method. The vertical parts 55 of the bank support plates are fastened =
on walls 29 of the silo 11.
In another embodiment shown in figure 15, when a smaller interval 36 is arranged between the bays, the support plate 54 is reduced to one vertical plate 55, bearing on the slope 12 of the container 11, the adjacent plates 55 being connected to one another by bolting or by any other fastening method. In this case, the plates 55 include an eye plate 57 allowing the anchoring of the plates 55 in the slope 12 by using anchors 58.
Of course, the disclosure is not limited solely to the embodiments more specifically described and shown; on the contrary, it encompasses all alternatives. In particular, it is clear that any container of grainy and powdery material can be considered: silo, vessel, railroad car, container, hopper, etc., and that the rectangular or round shape of the storage silo is not exclusive, any other configuration being able to be considered, for example polygonal, hemispherical dome, with one or more tunnels, with one or more openings, etc.
Owing to the anti-pressure system according to the present disclosure, a vibratory floor is thus produced capable of removing all cohesive products in all possible configurations of vibratory floors, without manual or mechanized intervention, completely safely for the operating personnel. This new type of vibratory floor is further made up of modules that do not become dusty over time, which is a mark of reliability and durability for operators.

Claims (17)

9
1. A vibratory floor installed in a container, and made up of at least one shaker module, each shaker module including at least one motor-driven vibrator secured to a metal sheet, the metal sheet bearing on a filler material when the vibratory floor bears a load, and on compression springs when the vibratory floor is not loaded, wherein the increase in the inner volume of each shaker module during an emptying cycle is offset using an outer pipe relative to a clean air contribution outside the container.
2. The vibratory floor according to claim 1, wherein the outer pipe serves as a passage sheath for an electrical power cable of a motor-driven vibrator.
3. The vibratory floor according to claim 1 or claim 2, wherein the clean air volume is contained in a box.
4. The vibratory floor according to claim 1 or 2, wherein the clean air volume is contained in several boxes that are connected to one another by a pipe.
5. The vibratory floor according to any one of claim 3 or claim 4, wherein each box is supplied with pressurized air.
6. The vibratory floor according to any one of claims 1 to 5, wherein the air is completely or partially replaced by another gas.
7. The vibratory floor according to claim 1 or claim 2, wherein the clean air volume is the air outside the container.
8. The vibratory floor according to claim 3 or claim 4, wherein the box is equipped with an air filter.
9. The vibratory floor according to claim 1, wherein at least one module is provided with an anti-pressure device made up of an anti-pressure plate resting on two flanges and, positioned such that the anti-pressure plate is positioned above the cover of the motor-driven vibrator.
10. The vibratory floor according to claim 9, wherein support plates secured to the ends of the flanges rest on stationary spaces on either side of the module.
11. The vibratory floor according to claim 9 or claim 10, wherein at least two support plates situated on the same side of the flanges only include vertical parts, anchored on the slope of the container using eye plates fastened on the vertical parts of the support plates, and anchors.
12. The vibratory floor according to claim 9 or claim 10, wherein the support plates include a vertical part and an indented oblique part, the oblique part being fastened on a wing of the cover of a cable raceway, the vertical part of the support plate being bolted to the vertical part of the support plate of the adjacent anti-pressure device.
13. The vibratory floor according to claim 9 or claim 10, wherein at least two support plates situated on the same side of the flanges include a vertical part fastened on a wall of the container.
14. The vibratory floor according to any one of claims 9 to 13, wherein the bars making up the flanges have a circular section, and can include triangular profiles oriented vertically with the tip pointing upward.
15. The vibratory floor according to any one of claims 9 to 14, wherein triangular sections can be fastened on the upstream flange, their axis parallel to the slope and the tip being oriented toward the top of the slope.
16. The vibratory floor according to any one of claims 9 to 15, wherein a deflector is secured to the anti-pressure plate.
17. The vibratory floor according to any one of claims 9 to 16, wherein the bars making up the flanges have a chain profile in a vertical plane.
CA2920577A 2016-02-11 2016-02-11 Vibratory floor with controlled atmosphere, for cohesive products Active CA2920577C (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CA2920577A CA2920577C (en) 2016-02-11 2016-02-11 Vibratory floor with controlled atmosphere, for cohesive products

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CA2920577A CA2920577C (en) 2016-02-11 2016-02-11 Vibratory floor with controlled atmosphere, for cohesive products

Publications (2)

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CA2920577A1 true CA2920577A1 (en) 2017-08-11
CA2920577C CA2920577C (en) 2023-06-13

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112298964A (en) * 2020-10-15 2021-02-02 黄地粮 Even discharging equipment of PVC plastic particle for chemical industry packing

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112298964A (en) * 2020-10-15 2021-02-02 黄地粮 Even discharging equipment of PVC plastic particle for chemical industry packing

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Publication number Publication date
CA2920577C (en) 2023-06-13

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