Centrifugal separator with cones divided into angular sectors separated by annular gaps
10092909 · 2018-10-09
Assignee
- Commissariat A L'energie Atomique Et Aux Energies Alternatives (Paris, FR)
- FLOWERSEP (La Farlede, FR)
Inventors
- David Chezaud (Lacepede, FR)
- Jean-Pierre Feraud (Orange, FR)
- Joël Robin (La Farlede, FR)
- Tojonirinia Randriamanantena (Bagnols sur Ceze, FR)
Cpc classification
B04B11/08
PERFORMING OPERATIONS; TRANSPORTING
B04B11/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B04B11/02
PERFORMING OPERATIONS; TRANSPORTING
B04B11/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The rotary bowl (1) of this centrifugal separator is lined with conical structures divided into sectors (7) separated by angularly offset gaps (9) so as to promote a regular spiral fluid flow therein, which is laminar and enhances separation efficiency significantly: in the case of two-phase or three-phase suspensions, a cake is obtained on the side wall (8). A scraper (15) rotating at a slightly different speed may be added to enable simultaneously routing of the solid cake to the outlet and continuous processing.
Claims
1. Centrifugal separator comprising a rotary bowl (1) having a peripheral wall (8), a separation structure situated in the bowl and rotating synchronously with the bowl, a mixture inlet conduit (5) situated on a rotational axis (2) of the bowl and opening (6) in the bowl, the bowl comprising at least one outlet orifice (10) for at least one light fraction of the mixture to a first axial side of the bowl, the separation structure comprising a stack of cones divided into angular sectors (7) separated by angular gaps (9), the angular gaps being covered by the sectors (7) of the immediately adjacent cones, and the sectors having peripheral ends at an identical distance from the peripheral wall, wherein the peripheral wall (8) and the separation structure rotate at a same rotary speed, and wherein the cones are separated by calibrated spacers (33).
2. Centrifugal separator according to claim 1, wherein the peripheral wall (8) is defined by a rectilinear generating line in front of the sectors (7).
3. Centrifugal separator according to claim 2, wherein the bowl is cylindrical and the cones are identical or the result of assemblies of different geometries.
4. Centrifugal separator according to claim 3, wherein the cones are successively angularly offset.
5. Centrifugal separator according to claim 1, characterised by a spring (34) between an end cone and a manifold for collecting the light fraction upstream of the outlet orifice.
6. Centrifugal separator according to claim 1, wherein the rotary bowl and the separation structure are separable.
7. Centrifugal separator comprising a rotary bowl (1) having a peripheral wall (8), a separation structure situated in the bowl and rotating synchronously with the bowl, a mixture inlet conduit (5) situated on a rotational axis (2) of the bowl and opening (6) in the bowl, the bowl comprising at least one outlet orifice (10) for at least one light fraction of the mixture to a first axial side of the bowl, the separation structure comprising a stack of cones divided into angular sectors (7) separated by angular gaps (9), the angular gaps being covered by the sectors (7) of the immediately adjacent cones, and the sectors having peripheral ends at an identical distance from the peripheral wall, wherein the peripheral wall (8) and the separation structure rotate at a same rotary speed, and wherein the sectors comprise extensions (31, 32) extending axially and radially in the rotary bowl (1) and each joining another sector belonging to an adjacent cone.
8. Centrifugal separator comprising a rotary bowl (1) having a peripheral wall (8), a separation structure situated in the bowl and rotating synchronously with the bowl, a mixture inlet conduit (5) situated on a rotational axis (2) of the bowl and opening (6) in the bowl, the bowl comprising at least one outlet orifice (10) for at least one light fraction of the mixture to a first axial side of the bowl, the separation structure comprising a stack of cones divided into angular sectors (7) separated by angular gaps (9), the angular gaps being covered by the sectors (7) of the immediately adjacent cones, and the sectors having peripheral ends at an identical distance from the peripheral wall, wherein the peripheral wall (8) and the separation structure rotate at a same rotary speed, and wherein the bowl comprises an opening (23) for retrieving a heavy fraction of the mixture, and said opening is situated via a second axial side of the bowl opposite the first axial side.
9. Centrifugal separator according to claim 8, wherein the opening (23) extends along a circumference of the bowl and is adjacent to an edge of the peripheral wall of the bowl.
10. Centrifugal separator according to claim 9, further comprising a scraper (19) comprising an inclined blade (17) through the opening (23) and extending in front of an inner face of the peripheral wall of the bowl, and transmissions (13, 14) providing a differential rotational speed between the bowl and the scraper using a single drive motor (12) equipped with a differential (26) or two separate motors (29, 30).
11. Centrifugal separator according to claim 8, further comprising a screw (19) for conveying solid fraction, situated under the opening (23) for retrieving the heavy fraction of the mixture.
12. Centrifugal separator according to claim 11, wherein the screw (19) for conveying the solid fraction is narrower at a bottom of the bowl.
13. Centrifugal separator according to claim 11, wherein the scraper (15) and the screw (19) for conveying the solid fraction have a portion (36) fitted on the rotational axis of the bowl.
14. Centrifugal separator comprising a rotary bowl (1) having a peripheral wall (8), a member (21) for supporting the rotary bowl (1), a separation structure situated in the bowl and rotating synchronously with the bowl, a mixture inlet conduit (5) situated on a rotational axis (2) of the bowl and opening (6) in the bowl, the bowl comprising at least one outlet orifice (10) for at least one light fraction of the mixture to a first axial side of the bowl, the separation structure comprising a stack of cones divided into angular sectors (7) separated by angular gaps (9), the angular gaps being covered by the sectors (7) of the immediately adjacent cones, and the sectors having peripheral ends at an identical distance from the peripheral wall, wherein the peripheral wall (8) and the separation structure rotate at a same rotary speed.
15. Centrifugal separator comprising a rotary bowl (1) having a peripheral wall (8), a separation structure situated in the bowl and rotating synchronously with the bowl, a mixture inlet conduit (5) situated on a rotational axis (2) of the bowl and opening (6) in the bowl, the bowl comprising at least one outlet orifice (10) for at least one light fraction of the mixture to a first axial side of the bowl, the separation structure comprising a stack of cones divided into angular sectors (7) separated by angular gaps (9), the angular gaps being covered by the sectors (7) of the immediately adjacent cones, and the sectors having peripheral ends at an identical distance from the peripheral wall, wherein the peripheral wall (8) and the separation structure rotate at a same rotary speed, and wherein the outlet orifice (10) has an adjustable opening.
16. Method for separating a heavy fraction and a light fraction of a mixture using a centrifugal separator comprising a rotary bowl (1) having a peripheral wall (8), a separation structure situated in the bowl and rotating synchronously with the bowl, a mixture inlet conduit (5) situated on a rotational axis (2) of the bowl and opening (6) in the bowl, the bowl comprising at least one outlet orifice (10) for at least one light fraction of the mixture to a first axial side of the bowl, the separation structure comprising a stack of cones divided into angular sectors (7) separated by angular gaps (9), the angular gaps being covered by the sectors (7) of the immediately adjacent cones, and the sectors having peripheral ends at an identical distance from the peripheral wall, the method comprising the following steps: introducing the mixture into the rotary bowl, the bowl being rotating, via the inlet conduit; letting the mixture flow through the gaps of the stack of cones in a spiral flow comprising a regular progressive axial motion, the flow being laminar; discharging the light fraction of the mixture out of the bowl at the outlet orifice; and depositing the heavy fraction on the peripheral wall.
17. Separation method according to claim 16, wherein the heavy fraction progressively exits the bowl by a helical scraper rotating at a rotary speed different from a rotary speed of the bowl, the scraper being adjacent to the peripheral wall, the heavy fraction passing through the bowl at an opening provided through a bottom of the bowl.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) One particular and merely illustrative embodiment of the invention will now be described with reference to the following figures, disclosing the various aspects thereof:
(2)
(3)
(4)
(5)
(6)
(7) and
DETAILED DESCRIPTION
(8) The separator comprises a rotary bowl 1, consisting of a cylindrical barrel forming a side wall 8, and a central axis 2. The central axis 2 and the rotary bowl 1 are held between an upper static head 3 and a lower frame 4, which are kept at invariable distances. The mixture is introduced via a conduit 5 contained in the central axis 2, in this case from the top and the static head 3, and reaches the rotary bowl 1 via openings 6 which may be situated at the bottom of the conduit 5 or distributed along the height thereof. The central axis 2 bears conical structures consisting of separate sectors 7 comparable to flowers, superimposed on all or part of the height of the barrel to the liquid recovery manifold 20, and inclined towards the side wall 8 of the rotary bowl 1 and downwards. The sectors 7 are offset at an angle from one stage to another, such that the gaps 9 thereof are covered by an upper sector 7 and that a merely axial flow via the stack of structures is impossible. The liquid fraction of the mixture, obtained by separation and comprising clarified liquid with a low solid content, is discharged from the rotary bowl 1 by a rotating manifold 20 housed in the static head 3 followed by an upper orifice 10. The solid fraction is deposited on the inner face of the side wall 8 before leaving the rotary bowl 1 and emerging from the separator via a lower orifice 11, in the manner described hereinafter.
(9) For example, in the embodiment in
(10) In the slightly different embodiment in
(11) Apart from the blades 17 of the scraper 15 and the extraction screw 19 which may rotate at a different speed, the entire contents of the rotary bowl 1 rotate at the same speed and are thus subject to regular conditions, favouring laminar flow. Furthermore, the simple geometric shapes of the side wall 8 and the stacked and angularly offset sectors 7 produce a regular angular flow component. As the flow is regular, the separation of the solid fraction and the fluid fraction is disturbed much less, and the result thereof is thus considerably superior.
(12) The invention makes it possible to obtain high dry content values greater than 65% of the solid fraction according to the nature of the suspensions processed. It may be applied to solids subject to difficult filtration, particularly in crystals in irregular and elongated shapes, examples whereof are actinide oxalate co-precipitates, used in the nuclear industry. It may find applications in other processes in this industry, or, to mention completely different examples, in the food industry, pharmaceuticals, cosmetology, biofuels, the environment, etc. where the solid products are frequently irregularly shaped organic products.
(13) It should be noted that the invention is not limited to the separation of solid-liquid two-phase mixtures where the solid is heavier: it is on the contrary applicable to fluid mixtures of all types and can be used to envisage three-phase separations by adding a third extraction point; the solid fraction mentioned in this description according to the application essentially envisaged is more generally a heavy fraction, and the fluid fraction a light fraction.
(14) The removal of the solid fraction simultaneously with separation is not necessary for the satisfactory operation of the separator, although it enables continuous operation which is very often appreciated; the favourable separation features remain even with significant deposition of the solid fraction.
(15) The invention is equally suitable for repulping solid scrubbing methods, where the solid fraction is resuspended with a solvent and subjected to a second separation to enhance the quality thereof.
(16) The embodiment described herein is suitable for modularity by replacing parts, the rotary bowl 1 and the central axis 2 bearing the sectors 7 particularly being suitable for being replaced readily by other internal linings, of different sizes, different geometries according to requirements.
(17) The angular offset of the sectors from one stack to another may depend on the shape thereof and the sought flow features. Further features of the sectors 7 may also be modified: as such, they can be provided with extensions connecting same.
(18) The sectors 7 may be made of metal or reinforced plastic for example. The deformation thereof under centrifugal forces is frequently acceptable, and it may be reduced by shims or spacers.
(19) Of the various enhancements and modifications that can be made to the separator, the following may be noted.
(20) The sectors 7 of adjacent cones may be successively angularly offset, producing a satisfactory helical flow component for routine cone gap values.
(21) Calibrated spacers 33 may separate the cones, by being for example fitted in alternation therewith on the central axis 2, with the ability to vary the cone distance. A spring 34 may be arranged in the stack of cones, for example between the upper cone and the manifold 20. This spring 34 may be a lock washer or any other device with the same purpose.
(22) In order to keep constant distances between the stacked sectors 7, spikes or protuberances arranged thereon in addition to the spacers 33 may be advantageously arranged.
(23) The separator may be provided with a plurality of outlet orifices 10, in the event of the fluid fraction being composite and formed from a plurality of constituents of different densities.
(24) The outlet orifice(s) may be equipped with a movable ring 35 providing same with an adjustable opening, so as to adjust the flow characteristics via the separator and particularly the flow rate thereof.
(25) The conveying screw may become increasingly narrow in the downward direction, which is clearly represented in
(26) The scraper 15 and the conveying screw 19 may have a portion 36 fitted on the central axis 2 so as to maintain the coaxiality thereof and promote satisfactory cohesion of the separator.
(27) It is finally advantageous that the peripheral wall 8 of the rotary bowl 1 is transparent to help monitor the completion of the method.