WO1999051353A1 - Rotor for centrifugal separator - Google Patents

Rotor for centrifugal separator Download PDF

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Publication number
WO1999051353A1
WO1999051353A1 PCT/SE1999/000515 SE9900515W WO9951353A1 WO 1999051353 A1 WO1999051353 A1 WO 1999051353A1 SE 9900515 W SE9900515 W SE 9900515W WO 9951353 A1 WO9951353 A1 WO 9951353A1
Authority
WO
WIPO (PCT)
Prior art keywords
rotor
separation
casing
separation discs
chamber
Prior art date
Application number
PCT/SE1999/000515
Other languages
French (fr)
Inventor
Ingvar HÄLLGREN
Thomas Davidsson
Leif Larsson
Hans Moberg
Original Assignee
Alfa Laval Ab
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Alfa Laval Ab filed Critical Alfa Laval Ab
Priority to EP99918411A priority Critical patent/EP1068016B1/en
Priority to AT99918411T priority patent/ATE439913T1/en
Priority to BR9909347-2A priority patent/BR9909347A/en
Priority to AU36341/99A priority patent/AU3634199A/en
Priority to JP2000542112A priority patent/JP3431598B2/en
Priority to DE69941290T priority patent/DE69941290D1/en
Priority to US09/322,686 priority patent/US6183407B1/en
Publication of WO1999051353A1 publication Critical patent/WO1999051353A1/en
Priority to NO20004894A priority patent/NO20004894L/en

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B04CENTRIFUGAL APPARATUS OR MACHINES FOR CARRYING-OUT PHYSICAL OR CHEMICAL PROCESSES
    • B04BCENTRIFUGES
    • B04B9/00Drives specially designed for centrifuges; Arrangement or disposition of transmission gearing; Suspending or balancing rotary bowls
    • B04B9/06Fluid drive
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B04CENTRIFUGAL APPARATUS OR MACHINES FOR CARRYING-OUT PHYSICAL OR CHEMICAL PROCESSES
    • B04BCENTRIFUGES
    • B04B5/00Other centrifuges
    • B04B5/005Centrifugal separators or filters for fluid circulation systems, e.g. for lubricant oil circulation systems
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B04CENTRIFUGAL APPARATUS OR MACHINES FOR CARRYING-OUT PHYSICAL OR CHEMICAL PROCESSES
    • B04BCENTRIFUGES
    • B04B1/00Centrifuges with rotary bowls provided with solid jackets for separating predominantly liquid mixtures with or without solid particles
    • B04B1/04Centrifuges with rotary bowls provided with solid jackets for separating predominantly liquid mixtures with or without solid particles with inserted separating walls
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B04CENTRIFUGAL APPARATUS OR MACHINES FOR CARRYING-OUT PHYSICAL OR CHEMICAL PROCESSES
    • B04BCENTRIFUGES
    • B04B7/00Elements of centrifuges
    • B04B7/08Rotary bowls
    • B04B7/12Inserts, e.g. armouring plates

Definitions

  • the present invention relates to centrifugal separators intended for freeing a liquid from particles suspended therein and having a larger density than the liquid. More precisely the invention concerns a rotor for a centrifugal separator of this kind, which is rotatable around its centre axis and includes a casing having two axially separated end walls and a surrounding wall situated therebetween and surrounding the centre axis; an inlet member delimiting an inlet channel centrally in the casing; a separation means mounted in the casing; and at least one outlet member situated in the area of one of the end walls, spaced from the centre axis and delimiting an outlet channel, which is directed in a way such that liquid flowing out therethrough accomplishes a reaction force on the rotor in its circumferential direction.
  • Rotors of this kind formed for reaction drive by means of an overpressure of the liquid to be cleaned, are known since long. As a rule they have been used for cleaning of relative small liquid flows and have been relatively small and light.
  • inserts have been suggested in the form of filters of different kinds.
  • GB 1 089 355 and GB 1 595 816 show examples of such filter inserts.
  • different kinds of separation inserts have been suggested which are formed such that they shorten the sedimentation distance for particles, which are to be separated within the rotor from liquid supplied 2
  • GB 729 169 shows a separation insert in the form of a helical wall, which delimits a helical flow path within the rotor for the liquid to be cleaned.
  • US 5,637,217 shows a separation insert having conical separation discs.
  • US 2,067,273 shows a further construction of a centrifugal rotor of the initially defined kind.
  • a separation means including a lot of separation discs, which are arranged within the casing between the centre axis and the surrounding wall of the casing and distributed around the centre axis, so that they form a lot of axially extending separation channels.
  • Each separation disc extends both axially and in a direction from the centre axis towards the surrounding wall of the casing from a radially inner edge to a radially outer edge, forming an angle with imaginary radii extending from the centre axis to the surroun- ding wall.
  • the object of the present invention is to provide a rotor of the initially defined kind, intended for reaction drive and provided with a particular separation means in the separation space of the rotor, which rotor can be given a better separation efficiency than previously known rotors of this kind.
  • a rotor of the initially defined kind is provided with a separation means of the kind included in a centrifugal rotor according to US 2,067,273 and, further, is provided with an inlet member delimiting an inlet channel centrally in the casing, which inlet channel communicates with the separation channels through a distribution chamber situated between a first one of the casing end walls and said separation means, said separation channels extending 3
  • a rotor of this kind is further characterized in
  • a partition is arranged between the separation discs and said other end wall of the casing in a way such that it delimits on its one side a collection chamber, in which the separation channels open, and on its other side delimits an outlet chamber,
  • the afore-mentioned outlet channel communicates with the outlet chamber and extends to the outside of the rotor, where it opens in a liquid free space at a radial level outside said level, at which the collection chamber and the outlet chamber communicate with each other.
  • a rotor according to the invention it is possible to accomplish a relatively small through-flow resistance for the liquid to be cleaned, when this liquid passes through the rotor separation means, i.e. through said separation channels delimited between the separation discs.
  • a separation means of the kind suggested according to the invention and, per se, previously known in other kinds of centrifugal separators creates a surprisingly small through-flow resistance for the liquid to be cleaned, particularly if the liquid has a low viscosity.
  • the centrifugal rotor according to the invention may be given a better separation efficiency. This depends on the circumstance that the known centrifugal rotor has a less effective driving means than the centrifugal rotor according to the invention.
  • the outlet nozzles for the reaction drive of the known centrifugal rotor are situated at a very small radius. Furthermore, the outlet channels of these nozzles open into liquid which is subjected to a certain overpressure.
  • FIG. 1 shows a section through the centrifugal rotor, taken along a line l-l in figure 2, and figure 2 shows the centrifugal rotor in figure 1 seen from above, only half of a casing surrounding the centrifugal rotor being shown.
  • the figures 3-5 show a second embodiment of the centrifugal rotor according to the invention.
  • figure 3 shows a section similar to that of figure 1.
  • Figure 4 is a mixture of a view and a section along the line A-A in figure 3 and shows the radial extension of certain wings in the upper part of the centrifugal rotor.
  • Figure 5 illustrates parts of the centrifugal rotor, part of its surrounding casing being removed.
  • the rotor in figures 1 and 2 includes a circular base plate 1 , which has a central opening 2 and centrally supports a tubular column 3.
  • the interior of the column 3 forms a channel 4, which communicates with the central opening 2 of the base plate.
  • An annular cap 5 is placed around the column 3 and is kept fastened thereto and to the base plate 1 by means of a nut 6.
  • base plate 1 form a casing around a separation chamber 7 in the rotor.
  • the base plate 1 forms a first end wall
  • the cap 5 forms a second end wall 8 and a surrounding wall 9.
  • the surrounding wall 9 extends between the end walls 1 and 8 concentrically around the tubular column 3.
  • the rotor is rotatable around a centre axis 10 and for this purpose the central column 3 supports bearing members 3a and 3b at its respective ends.
  • the rotor has a separation means comprising a large number of separation discs 11 evenly distributed around the rotor centre axis 10.
  • Each one of the separation discs extends both arcuately in a direction from the centre axis 10 towards the surroun- ding wall 9, as can be seen from figure 2, and axially between flow distributing and liquid entraining upper radial wings 12 and lower arcuately extending wings 13, as can be seen from figure 1.
  • the separation discs 11 form between themselves thin separation channels, which have the same extension as the separation discs. In figure 2 part of the separa- tion discs have been left out so that some of the lower arcuately extending wings 13 can be seen.
  • the separation discs 11 are supported, like the wings 12 and 13, by a central supporter comprising a sleeve 14, which surrounds and is guided by the central column 3.
  • the sleeve 14 is formed in one piece with a lower annular supporting member 15, which extends by an axially upwardly directed annular fastening flange into recesses intended therefor in the lower edge portions of the separation discs 11.
  • Correspondingly formed recesses in the upper edge portions of the separation discs form 7
  • annular upwardly open groove for an axially downwardly directed annular fastening flange of an upper annular supporting member 16.
  • the supporting members 15 and 16 can be axially separated from each other and from the separation discs 11 by the sleeve 4 being divided at 17 (fig. 1 ).
  • the radially outer parts of the separation discs 11 are kept in place relative to each other by means of three rings 18, which at different axial levels surround all of the separation discs. For reasons evident from the following the uppermost of these rings 18 fills the whole interspace between the separation discs 11 and the surrounding wall 9 of the casing.
  • the separation discs 11 are kept at a certain distance from each other by means of spacing members 19 formed in one piece with the separation discs and distributed across their surfaces in some suitable manner.
  • annular partition is adapted to extend from the surrounding wall 9 of the casing radially inwardly to the area of the radially innermost parts of the separation discs 11.
  • the partition has a central plane portion 20 situated axially opposite to the separation discs 11 ; a short cylindrical intermediate portion 21 surrounding the wings 13; and radially outermost a further plane portion 22, which fills the interspace between the surrounding wall 9 of the casing and the radially outer lowermost parts of the separa- tion discs 11.
  • a liquid to be cleaned in the rotor is to enter by an overpressure into the channel 4 through the opening 2 in the base plate 1.
  • the liquid may enter the channel 4 from the opposite direction. From the channel 4 liquid is to be conducted through openings 23 in the column 3 8
  • a distribution chamber 24 which is formed in the upper part of the casing 5 and in which the upper radial wings 12 are situated.
  • the liquid shall flow axially through the separation channels formed between the separation discs 11.
  • particles suspended in the liquid and being heavier than the liquid are to be separated, and liquid is to flow furtheron downwards to a collecting chamber 25, in which the arcuately extending lower wings 13 are situated.
  • the wings 13 have an arcuate extension opposite to that of the separation discs 11.
  • the wings 13 may give axial support to a larger number of separation discs than if they extended only radially and, still, function as members for rotational entrainment of liquid situated in the collecting chamber 25.
  • the uppermost ring 18 prevents an axial liquid flow radially outside the separation discs 11.
  • the base plate 1 is provided with two depressions, which form two outlet chambers 26 below the partition portion 20. These outlet chambers 26 communicate with the afore-mentioned collecting chamber 25 at the radially inner edge of the partition portion 20.
  • the base plate 1 is provided with a nozzle having an outlet channel 27.
  • the outlet channel 27 opens in a liquid free space, which is at atmospheric pressure, outside the rotor at a level radially outside the inner edge of the partition portion 20.
  • the separation discs 11 as well as the members 14-16 keeping them in place in the rotor may, preferably, be made of plastics. If desired, the separation discs may be formed in a way such that they extend through substantially the whole of the separation chamber of the rotor.
  • An advantage with separation discs of the kind described here, in compari- son with conical separation discs, is that all of the discs may be formed identically alike and, in spite of this, be given a form such that they extend in all desired parts of the separation chamber.
  • a package of such separation discs thus, is not bound to a certain geometrical shape in the same way as is a stack of identically formed conical separation discs, but may be adapted to a desired shape of the rotor. Therefore, an available space within the rotor may be utilized to its maximum for the centrifugal separation in question.
  • An insert of this kind could comprise the above described partition 20-22 and a cylindrical container formed in one piece therewith and adapted to form a removable liner within the described cap 5.
  • a liner of this kind could extend from the partition 20-22 up to the uppermost ring 18 surrounding the separation discs.
  • FIGS 3-5 show a somewhat modified centrifugal rotor according to the invention.
  • the same reference numerals have been used in the figures 3-5 as in figures 1 and 2 for corresponding details.
  • the separation discs 11 are mounted in a supporter comprising a lower supporting member 15a and an upper supporting member 16a.
  • the supporting members 15a and 16a are removably connected with each other by means of a snap lock device 17a and are guided by the central column 3.
  • the snap lock device 17a is placed radially inside the separation discs 11 about half-way between their axial ends, whereby it is relatively difficult to reach and, thus, cannot be opened unintentionally. Thereby, the separation discs cannot be freed unintentionally from the supporting members 15 and 16a.
  • the lower supporting member 15a is formed in one piece with the partition 20 and with the wings 13 in the collecting chamber 25.
  • the upper supporting member 16a is formed in one piece with the wings 12 in the distribution chamber 24.
  • the wings 12 are of two different kinds. Two wings 12a, which are situated diametrically on opposite sides of the column 3, extend substantially all the way into the column 3 in the plane wherein the inlet openings 23 of the column 3 are situated. The other wings 12b do not extend, in this plane, into the column 3 but leaves between themselves and the column 3 free spaces 28.
  • the column 3 has two inlet openings 23 for liquid to be treated in the rotor. Each one of these openings opens in an area situated imme- diately in front of one of the wings 12a extending all the way into the column 3, seen in the rotational direction of the rotor. This rotational direction is shown by an arrow w in figure 4.
  • liquid entering the rotor through an opening 23 will be entrained in the rotor rotation by the adjacent wing 12a and, thus, be prevented from sliding relative to the rotor in a direction opposite to its rotational direction.
  • the wings is an advantageous alternative to having a large number of relatively small inlet openings in the column 3, e.g. one inlet opening in each interspace between adjacent wings, for accomplishment of an even distribution of liquid in the rotor separation chamber.
  • the above described arrangement may be used as soon as the number of wings 12 exceeds the number of inlet openings 23.
  • the uppermost ring 18a which surrounds the separation discs, does not extend all the way out to the casing 5 but leaves a small space 29 between itself and the casing.
  • This space is dimensioned such that it allows passage of solids, which are separated from the incoming liquid already in the distribution chamber 24 and, thus, deposit on the inside of the casing 5 already in the area of the ring 18a. After a short time of rotor operation a layer of particles having deposited on the inside of the casing will at least partly fill the space 29.
  • the casing 5 is also slightly conical, so that its diameter increases in the axial direction away from the distribution chamber 24, which contributes to avoiding complete clogging of the space 29.

Abstract

In a rotor for a centrifugal separator there is delimited at one rotor end a distribution chamber (24) for a pressurised liquid supplied to the rotor for being cleaned from particles, and at the opposite rotor end there are liquid outlets arranged for reaction drive of the rotor. The liquid outlets open on the rotor outside in a liquid free space radially spaced from the rotational axis of the rotor. The separation chamber (7) of the rotor, which is situated between the distribution chamber (24) and the outlets (27), contains arcuate separation discs (11), which are distributed around the rotational axis (10) of the rotor and formed such that a lot of axially extending separation channels are delimited, which have a relatively small through-flow resistance to liquid to be cleaned. The separation channels extend axially from the distribution chamber (24) to a collecting chamber (25). The collecting chamber (25) communicates with an outlet chamber (26) at a radial level in the rotor corresponding to that of the radially innermost parts of the separation discs. By the invention efficient separation can be accomplished and the largest possible part of the pressure of the supplied liquid can be used for the rotation of the rotor.

Description

Rotor for centrifugal separator
The present invention relates to centrifugal separators intended for freeing a liquid from particles suspended therein and having a larger density than the liquid. More precisely the invention concerns a rotor for a centrifugal separator of this kind, which is rotatable around its centre axis and includes a casing having two axially separated end walls and a surrounding wall situated therebetween and surrounding the centre axis; an inlet member delimiting an inlet channel centrally in the casing; a separation means mounted in the casing; and at least one outlet member situated in the area of one of the end walls, spaced from the centre axis and delimiting an outlet channel, which is directed in a way such that liquid flowing out therethrough accomplishes a reaction force on the rotor in its circumferential direction.
Rotors of this kind, formed for reaction drive by means of an overpressure of the liquid to be cleaned, are known since long. As a rule they have been used for cleaning of relative small liquid flows and have been relatively small and light.
In connections where rotors of this kind have been used the demands on separation efficiency have not been extremely large, but still certain means in the form of rotor inserts of different kinds have been suggested for improvement thereof.
Thus, inserts have been suggested in the form of filters of different kinds. GB 1 089 355 and GB 1 595 816 show examples of such filter inserts. Furthermore, different kinds of separation inserts have been suggested which are formed such that they shorten the sedimentation distance for particles, which are to be separated within the rotor from liquid supplied 2
thereto. For instance, GB 729 169 shows a separation insert in the form of a helical wall, which delimits a helical flow path within the rotor for the liquid to be cleaned. US 5,637,217 shows a separation insert having conical separation discs.
US 2,067,273 shows a further construction of a centrifugal rotor of the initially defined kind. In this centrifugal rotor there is mounted a separation means including a lot of separation discs, which are arranged within the casing between the centre axis and the surrounding wall of the casing and distributed around the centre axis, so that they form a lot of axially extending separation channels. Each separation disc extends both axially and in a direction from the centre axis towards the surrounding wall of the casing from a radially inner edge to a radially outer edge, forming an angle with imaginary radii extending from the centre axis to the surroun- ding wall.
The object of the present invention is to provide a rotor of the initially defined kind, intended for reaction drive and provided with a particular separation means in the separation space of the rotor, which rotor can be given a better separation efficiency than previously known rotors of this kind.
This object can be achieved according to the invention if a rotor of the initially defined kind is provided with a separation means of the kind included in a centrifugal rotor according to US 2,067,273 and, further, is provided with an inlet member delimiting an inlet channel centrally in the casing, which inlet channel communicates with the separation channels through a distribution chamber situated between a first one of the casing end walls and said separation means, said separation channels extending 3
from the distribution chamber to an area close to the other end wall of the casing. A rotor of this kind is further characterized in
- that the separation discs leave a sludge space for accumulation of separated particles between their radially outer edges and the surrounding wall of the casing,
- that a partition is arranged between the separation discs and said other end wall of the casing in a way such that it delimits on its one side a collection chamber, in which the separation channels open, and on its other side delimits an outlet chamber,
- that the collection chamber communicates with the outlet chamber at a radial level in the rotor substantially corresponding to the radial level of the radially inner edges of the separation discs, and
- that the afore-mentioned outlet channel communicates with the outlet chamber and extends to the outside of the rotor, where it opens in a liquid free space at a radial level outside said level, at which the collection chamber and the outlet chamber communicate with each other.
In a rotor according to the invention it is possible to accomplish a relatively small through-flow resistance for the liquid to be cleaned, when this liquid passes through the rotor separation means, i.e. through said separation channels delimited between the separation discs. Compared with an ordinary filter or a set of conical separation discs a separation means of the kind suggested according to the invention and, per se, previously known in other kinds of centrifugal separators creates a surprisingly small through-flow resistance for the liquid to be cleaned, particularly if the liquid has a low viscosity. Despite a small through-flow 4
resistance there can be achieved in the afore-mentioned separation channels a separation efficiency, which is as good as the one obtained in the spaces between conical separation discs. In connection with centrifugal separators of the kind here in question it is important that a part as large as possible of the overpressure of the liquid supplied to the rotor for being cleaned is utilized for the driving of the centrifugal rotor. By use of a separation means in the rotor of the kind suggested according to the invention a larger part of the overpressure of the liquid to be cleaned can be used for the driving of the centrifugal separator than by use of technique according to, for instance, the afore-mentioned US 5,637,217. This means that the centrifugal rotor according to the invention may be given a higher rotational speed and, thereby, a better separation efficiency than said previously known centrifugal rotor according to US 5,637,217.
Also in comparison with a centrifugal rotor according to the aforementioned US 2,067,273, which contains a separation means similar to that of the centrifugal rotor according to the invention, the centrifugal rotor according to the invention may be given a better separation efficiency. This depends on the circumstance that the known centrifugal rotor has a less effective driving means than the centrifugal rotor according to the invention. Thus, the outlet nozzles for the reaction drive of the known centrifugal rotor are situated at a very small radius. Furthermore, the outlet channels of these nozzles open into liquid which is subjected to a certain overpressure.
That the overpressure, by which a liquid to be cleaned is supplied to a reaction driven centrifugal rotor, may be critical for the drive of the centrifugal rotor has been noticed for instance WO 96/23589. In this case the liquid in question is constituted by liquid flashed back from an auto- 5
matically cleanable filter. In this connection it may be difficult sometimes to obtain a sufficiently high pressure of the returned liquid for achievement of a good operation of the reaction driven centrifugal rotor. In WO 96/23589 the problem has been resolved in a way such that the centrifugal rotor is continuously supplied not only with the returned liquid but also with a separate driving liquid. An arrangement of this kind is complicated and expensive and can often be avoided by use of the present invention, a good separation efficiency of the rotor being simultaneously maintained.
The invention will be described more in detail in the following with reference to the accompanying drawing, in which figures 1 and 2 show a first embodiment of the centrifugal rotor according to the invention. Thus, figure 1 shows a section through the centrifugal rotor, taken along a line l-l in figure 2, and figure 2 shows the centrifugal rotor in figure 1 seen from above, only half of a casing surrounding the centrifugal rotor being shown. The figures 3-5 show a second embodiment of the centrifugal rotor according to the invention. Thus, figure 3 shows a section similar to that of figure 1. Figure 4 is a mixture of a view and a section along the line A-A in figure 3 and shows the radial extension of certain wings in the upper part of the centrifugal rotor. Figure 5 illustrates parts of the centrifugal rotor, part of its surrounding casing being removed.
The rotor in figures 1 and 2 includes a circular base plate 1 , which has a central opening 2 and centrally supports a tubular column 3. The interior of the column 3 forms a channel 4, which communicates with the central opening 2 of the base plate.
An annular cap 5 is placed around the column 3 and is kept fastened thereto and to the base plate 1 by means of a nut 6. The cap 5 and the 6
base plate 1 form a casing around a separation chamber 7 in the rotor. In this casing the base plate 1 forms a first end wall, whereas the cap 5 forms a second end wall 8 and a surrounding wall 9. The surrounding wall 9 extends between the end walls 1 and 8 concentrically around the tubular column 3.
The rotor is rotatable around a centre axis 10 and for this purpose the central column 3 supports bearing members 3a and 3b at its respective ends.
Within the separation chamber 7 the rotor has a separation means comprising a large number of separation discs 11 evenly distributed around the rotor centre axis 10. Each one of the separation discs extends both arcuately in a direction from the centre axis 10 towards the surroun- ding wall 9, as can be seen from figure 2, and axially between flow distributing and liquid entraining upper radial wings 12 and lower arcuately extending wings 13, as can be seen from figure 1. The separation discs 11 form between themselves thin separation channels, which have the same extension as the separation discs. In figure 2 part of the separa- tion discs have been left out so that some of the lower arcuately extending wings 13 can be seen.
The separation discs 11 are supported, like the wings 12 and 13, by a central supporter comprising a sleeve 14, which surrounds and is guided by the central column 3. The sleeve 14 is formed in one piece with a lower annular supporting member 15, which extends by an axially upwardly directed annular fastening flange into recesses intended therefor in the lower edge portions of the separation discs 11. Correspondingly formed recesses in the upper edge portions of the separation discs form 7
an annular upwardly open groove for an axially downwardly directed annular fastening flange of an upper annular supporting member 16.
The supporting members 15 and 16 can be axially separated from each other and from the separation discs 11 by the sleeve 4 being divided at 17 (fig. 1 ).
The radially outer parts of the separation discs 11 are kept in place relative to each other by means of three rings 18, which at different axial levels surround all of the separation discs. For reasons evident from the following the uppermost of these rings 18 fills the whole interspace between the separation discs 11 and the surrounding wall 9 of the casing. The separation discs 11 are kept at a certain distance from each other by means of spacing members 19 formed in one piece with the separation discs and distributed across their surfaces in some suitable manner.
Between the lower wings 13 and the base plate 1 an annular partition is adapted to extend from the surrounding wall 9 of the casing radially inwardly to the area of the radially innermost parts of the separation discs 11. The partition has a central plane portion 20 situated axially opposite to the separation discs 11 ; a short cylindrical intermediate portion 21 surrounding the wings 13; and radially outermost a further plane portion 22, which fills the interspace between the surrounding wall 9 of the casing and the radially outer lowermost parts of the separa- tion discs 11.
A liquid to be cleaned in the rotor is to enter by an overpressure into the channel 4 through the opening 2 in the base plate 1. Alternatively, the liquid may enter the channel 4 from the opposite direction. From the channel 4 liquid is to be conducted through openings 23 in the column 3 8
into a distribution chamber 24, which is formed in the upper part of the casing 5 and in which the upper radial wings 12 are situated.
Then the liquid shall flow axially through the separation channels formed between the separation discs 11. Therein particles suspended in the liquid and being heavier than the liquid are to be separated, and liquid is to flow furtheron downwards to a collecting chamber 25, in which the arcuately extending lower wings 13 are situated. As can be seen from figure 2, the wings 13 have an arcuate extension opposite to that of the separation discs 11. Thereby, the wings 13 may give axial support to a larger number of separation discs than if they extended only radially and, still, function as members for rotational entrainment of liquid situated in the collecting chamber 25. The uppermost ring 18 prevents an axial liquid flow radially outside the separation discs 11.
The base plate 1 is provided with two depressions, which form two outlet chambers 26 below the partition portion 20. These outlet chambers 26 communicate with the afore-mentioned collecting chamber 25 at the radially inner edge of the partition portion 20.
At a limiting wall in each of the outlet chambers 26, facing in the circumferential direction of the rotor, the base plate 1 is provided with a nozzle having an outlet channel 27. The outlet channel 27 opens in a liquid free space, which is at atmospheric pressure, outside the rotor at a level radially outside the inner edge of the partition portion 20. When the pressurised liquid leaves the outlet chambers 26 through the outlet channels 27 the rotor is actuated by a reaction force bringing the rotor into rotation around the centre axis 10. 9
How the rotor is supported and is joumalled and how liquid to be cleaned is introduced into the channel 4 has not been shown or described since this is well known to the skilled person of the relevant art.
The separation discs 11 as well as the members 14-16 keeping them in place in the rotor may, preferably, be made of plastics. If desired, the separation discs may be formed in a way such that they extend through substantially the whole of the separation chamber of the rotor. An advantage with separation discs of the kind described here, in compari- son with conical separation discs, is that all of the discs may be formed identically alike and, in spite of this, be given a form such that they extend in all desired parts of the separation chamber. A package of such separation discs, thus, is not bound to a certain geometrical shape in the same way as is a stack of identically formed conical separation discs, but may be adapted to a desired shape of the rotor. Therefore, an available space within the rotor may be utilized to its maximum for the centrifugal separation in question.
In a centrifugal rotor formed in accordance with figures 1 and 2 particles heavier than the liquid are to be separated therefrom in the separation channels and will then slide along the separation discs towards and be collected in a sludge space at the surrounding wall 9 of the rotor. After a certain time of operation or when a certain amount of particles have been collected in the rotor, the operation is to be interrupted and the cap 5 dismounted for removal of the particles.
Within the scope of the invention it is possible to provide a rotor of the kind here described with an insert, which collects separated particles and which can be removed from the rotor during an interruption of the opera- 10
tion and be disposed of together with the particles, whereafter a new insert of this kind can be mounted in the rotor.
An insert of this kind could comprise the above described partition 20-22 and a cylindrical container formed in one piece therewith and adapted to form a removable liner within the described cap 5. A liner of this kind could extend from the partition 20-22 up to the uppermost ring 18 surrounding the separation discs.
Alternatively, if the separation discs 11 and their supporting members 14-16 could be made sufficiently inexpensive, even these members together with the partition 20-22 and a liner of the just described kind could form an exchangeable insert. An exchangeable insert of this kind would not necessarily have to be thrown away but could, instead, be cleaned and reused.
Figures 3-5 show a somewhat modified centrifugal rotor according to the invention. The same reference numerals have been used in the figures 3-5 as in figures 1 and 2 for corresponding details.
In the rotor shown in figures 3-5 the separation discs 11 are mounted in a supporter comprising a lower supporting member 15a and an upper supporting member 16a. The supporting members 15a and 16a are removably connected with each other by means of a snap lock device 17a and are guided by the central column 3. The snap lock device 17a is placed radially inside the separation discs 11 about half-way between their axial ends, whereby it is relatively difficult to reach and, thus, cannot be opened unintentionally. Thereby, the separation discs cannot be freed unintentionally from the supporting members 15 and 16a. 11
The lower supporting member 15a is formed in one piece with the partition 20 and with the wings 13 in the collecting chamber 25. The upper supporting member 16a is formed in one piece with the wings 12 in the distribution chamber 24.
As can be seen from the figures 4 and 5, the wings 12 are of two different kinds. Two wings 12a, which are situated diametrically on opposite sides of the column 3, extend substantially all the way into the column 3 in the plane wherein the inlet openings 23 of the column 3 are situated. The other wings 12b do not extend, in this plane, into the column 3 but leaves between themselves and the column 3 free spaces 28.
The column 3 has two inlet openings 23 for liquid to be treated in the rotor. Each one of these openings opens in an area situated imme- diately in front of one of the wings 12a extending all the way into the column 3, seen in the rotational direction of the rotor. This rotational direction is shown by an arrow w in figure 4. Thus, liquid entering the rotor through an opening 23 will be entrained in the rotor rotation by the adjacent wing 12a and, thus, be prevented from sliding relative to the rotor in a direction opposite to its rotational direction. The main part of the liquid supplied by an overpressure through an inlet opening 23 will be forced in the rotational direction of the rotor through a passage that is formed closest to the column 3 by inter alia said spaces 28, up to the other wing 12a extending all the way in to the column 3. Hereby, an even distribution is achieved of incoming liquid into all the interspaces between the wings 12a and 12b and, thereby, in all of the separation channels between the separation discs 11.
The described arrangement of different kinds of wings 12a and 12b, respectively, and the particular location of the inlet openings 23 in relation 12
to the wings is an advantageous alternative to having a large number of relatively small inlet openings in the column 3, e.g. one inlet opening in each interspace between adjacent wings, for accomplishment of an even distribution of liquid in the rotor separation chamber. The above described arrangement may be used as soon as the number of wings 12 exceeds the number of inlet openings 23.
In the rotor according to the figures 3-5 the uppermost ring 18a, which surrounds the separation discs, does not extend all the way out to the casing 5 but leaves a small space 29 between itself and the casing. This space is dimensioned such that it allows passage of solids, which are separated from the incoming liquid already in the distribution chamber 24 and, thus, deposit on the inside of the casing 5 already in the area of the ring 18a. After a short time of rotor operation a layer of particles having deposited on the inside of the casing will at least partly fill the space 29. As long as no layer of particles of the same thickness has been formed on the inside of the casing 5 below the ring 18a, separated particles will move slowly downwardly, however, along the casing 5 passing the ring 18a, whereby accumulation of particles in the distribution chamber 24 is avoided.
As can be seen, the casing 5 is also slightly conical, so that its diameter increases in the axial direction away from the distribution chamber 24, which contributes to avoiding complete clogging of the space 29.

Claims

13Claims
1. A rotor for a centrifugal separator for freeing a liquid from particles suspended therein and having a density larger than that of the liquid, the rotor being rotatable around its centre axis (10) and comprising
- a casing including two axially separated end walls (1 , 8) and a surrounding wall (9) situated therebetween and surrounding the centre axis (10),
- a separation means mounted in the casing and comprising a lot of separation discs (11 ), which are arranged in the casing between the centre axis (10) and the surrounding wall (9) of the casing and distributed around the centre axis (10), so that they form a lot of axially extending separation channels, each separation disc (11 ) extending both axially and in a direction from the centre axis (10) towards the surrounding wall (9) of the casing from a radially innermost part to a radially outermost part of the separation disc, forming an angle with imaginary radii extending from the centre axis (10) to the surrounding wall (9),
- an inlet member (3) delimiting an inlet channel (4) centrally in the casing, which inlet channel (4) communicates with the separation channels through a distribution chamber (24) situated between a first (8) of the end walls of the casing and said separation means, the separation channels extending from the distribution chamber (24) to an area in the vicinity of the other end wall (1 ) of the casing, and
- at least one outlet member delimiting an outlet channel (27), which is directed in a way such that liquid flowing out therethrough accomplishes 14
a reaction force on the rotor in its circumferential direction and causes the rotor to rotate in a predetermined rotational direction,
c h a r a c t e r i z e d i n
- that the separation discs (11 ) leave a sludge space for accumulation of separated particles between their radially outer edges and the surrounding wall (9) of the casing,
- that a partition (20-22) is arranged between the separation discs (11 ) and said other end wall (1 ) of the casing such that on its one side it delimits a collecting chamber (25), in which the separation channels open, and on its other side it delimits an outlet chamber (26),
- that the collecting chamber (25) communicates with the outlet chamber (26) at a radial level in the rotor substantially corresponding to the radial level of the radially innermost parts of the separation discs, and
- that the outlet channel (27) communicates with the outlet chamber (26) and extends to the outside of the rotor, where it opens in a liquid free space at a radial level outside said level, at which the collecting chamber (25) and the outlet chamber (26) communicate with each other.
2. A rotor according to claim 1 , in which every separation disc (11 ) extends arcuately in a direction from the centre axis (10) towards the surrounding wall (9).
3. A rotor according to claim 1 or 2, in which the partition (20-22) carries entrainment members (13) on its side facing the collecting chamber (25). 15
4. A rotor according to claim 3, in which the entrainment members (13) are elongated, e.g. have the form of wings or the like, and form an angle with the separation discs (11 ) seen in a plane perpendicular to the rotor centre axis (10).
5. A rotor according to claim 3 or 4, in which the entrainment members (13) support the separation discs (11 ).
6. A rotor according to claim 1 , in which the distribution chamber (24) contains distribution members, which are adapted for entrainment in the rotor rotation of liquid flowing from the inlet channel (4) to the separation channels, and which are elongated, e.g. are in the form of wings (12) or the like, and form an angle with the separation discs (11 ), seen in a plane perpendicular to the rotor centre axis (10).
7. A rotor according to claim 6, in which said distribution members are situated partly radially inside the separation discs (11 ).
8. A rotor according to any one of claims 6 and 7, in which the inlet channel (4) opens into the rotor radially inside the separation discs (11 ) between their axially separated ends.
9. A rotor according to any one of the preceding claims, in which the separation discs (11 ) are surrounded by one or more retaining rings.
10. A rotor according to any one of the preceding claims, in which a flow impeding or preventing member (18) is arranged between the separation discs (11 ) and the surrounding wall (9) of the casing in an area between the distribution chamber (24) and said sludge space. 16
11. A rotor according to any one of the preceding claims, in which the separation discs (11 ) are mounted between two supporting members (15, 16; 15a, 16a), which engage releasingly with the separation discs (11 ) at their axially separated ends and are connected with each other radially inside the separation discs.
12. A rotor according to claim 11 , in which the supporting members (15a, 16a) are connected with each other by means of a snap lock device (17a).
13. A rotor according to claim 11 or 12, in which the separation discs (11 ) have edges directed towards the respective end walls (1 , 8) of the casing and these edges have recesses, which together form annular grooves extending around the rotor centre axis (10), said supporting members (15, 16; 15a, 16a) extending into said grooves for retainment of the separation discs (11 ).
14. A rotor according to any one of the claims 11-13, in which said supporting members (15, 16; 15a, 16a) surround and are guided by a column (3) extending axially centrally in the casing (5).
15. A rotor according to any one of the preceding claims, in which
- said central inlet channel (4) communicates with the distribution chamber (24) through a number of inlet openings (23) in the inlet member (3),
- the distribution chamber (24) contains a number of wings (12) evenly distributed around the inlet member (3) and extending in a direction I /
therefrom through the distribution chamber towards said casing, the number of wings being larger than the number of inlet openings (23),
- some wings (12a), corresponding to the number of inlet openings (23), extend substantially all the way in to the inlet member (3) in the area of the inlet openings (23), whereas the other wings (12b) leave a space (28) between themselves and the inlet member (3) in the same area, and
- each inlet opening (23), seen in the rotational direction of the rotor, is situated in front of a wing (12a) of the kind extending all the way in to the inlet member (3) and behind at least one wing (12b) of the kind leaving a space (28) between itself and the inlet member (3).
PCT/SE1999/000515 1998-04-02 1999-03-30 Rotor for centrifugal separator WO1999051353A1 (en)

Priority Applications (8)

Application Number Priority Date Filing Date Title
EP99918411A EP1068016B1 (en) 1998-04-02 1999-03-30 Rotor for centrifugal separator
AT99918411T ATE439913T1 (en) 1998-04-02 1999-03-30 ROTOR FOR SEPARATION CENTRIFUGE
BR9909347-2A BR9909347A (en) 1998-04-02 1999-03-30 Rotor for centrifugal separator
AU36341/99A AU3634199A (en) 1998-04-02 1999-03-30 Rotor for centrifugal separator
JP2000542112A JP3431598B2 (en) 1998-04-02 1999-03-30 Centrifuge rotor
DE69941290T DE69941290D1 (en) 1998-04-02 1999-03-30 ROTOR FOR DISTRICT
US09/322,686 US6183407B1 (en) 1998-04-02 1999-05-28 Centrifugal separator having axially-extending, angled separation discs
NO20004894A NO20004894L (en) 1998-04-02 2000-09-29 Rotor for a centrifugal separator

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
SE9801183A SE9801183D0 (en) 1998-04-02 1998-04-02 Centrifugal separator rotor
SE9801183-6 1998-04-02

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US24191499A Continuation-In-Part 1998-04-02 1999-02-02

Related Child Applications (1)

Application Number Title Priority Date Filing Date
US09/322,686 Continuation US6183407B1 (en) 1998-04-02 1999-05-28 Centrifugal separator having axially-extending, angled separation discs

Publications (1)

Publication Number Publication Date
WO1999051353A1 true WO1999051353A1 (en) 1999-10-14

Family

ID=20410858

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/SE1999/000515 WO1999051353A1 (en) 1998-04-02 1999-03-30 Rotor for centrifugal separator

Country Status (11)

Country Link
EP (1) EP1068016B1 (en)
JP (1) JP3431598B2 (en)
KR (1) KR100577663B1 (en)
CN (1) CN1104959C (en)
AT (1) ATE439913T1 (en)
AU (1) AU3634199A (en)
BR (1) BR9909347A (en)
DE (1) DE69941290D1 (en)
NO (1) NO20004894L (en)
SE (1) SE9801183D0 (en)
WO (1) WO1999051353A1 (en)

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EP1142644A2 (en) * 2000-04-04 2001-10-10 Fleetguard, Inc. Self-driven centrifuge with separation vane module
WO2001074492A2 (en) * 2000-04-03 2001-10-11 Filterwerk Mann+Hummel Gmbh Centrifuge having axially oriented separator surfaces
JP2002224589A (en) * 2001-02-02 2002-08-13 Fleetguard Inc Centrifugal separator module equipped with spiral blade
EP1277514A1 (en) * 2001-07-20 2003-01-22 Fleetguard, Inc. Spiral vane and liner component for a centrifuge and centrifuge comprising such spiral vane and liner component
EP1277515A2 (en) * 2001-07-20 2003-01-22 Fleetguard, Inc. Disposable rotor shell with integral molded spiral vanes
US6572523B2 (en) 2001-04-05 2003-06-03 Fleetguard, Inc. Centrifuge rotation indicator
JP2003190837A (en) * 2001-12-20 2003-07-08 Fleetguard Inc Self-driven centrifuge having vane module
WO2015128925A1 (en) * 2014-02-25 2015-09-03 東京濾器株式会社 Oil separator
US20160288140A1 (en) * 2014-04-18 2016-10-06 Shin Heung Precision Co., Ltd Hybrid centrifugal filter
NL2033073B1 (en) * 2022-09-19 2024-03-25 Biorganics Uft B V Combined separator

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SE520453C2 (en) * 2001-11-01 2003-07-15 Alfa Laval Corp Ab An apparatus for simultaneously purifying a liquid and a gas
SE520952C2 (en) * 2002-01-25 2003-09-16 Alfa Laval Corp Ab An apparatus for simultaneously purifying a liquid and a gas
CN100360244C (en) * 2004-07-27 2008-01-09 潘雨力 Centrifugal separator
US7566294B2 (en) * 2005-03-11 2009-07-28 Cummins Filtration Ip Inc. Spiral vane insert for a centrifuge
DE202005007162U1 (en) * 2005-05-02 2006-09-21 Hengst Gmbh & Co.Kg Rotor for a centrifuge
KR101430151B1 (en) 2012-05-30 2014-08-18 (주)한영기공 Rotor cover of centrifugal separator for liquid filtration
KR101522540B1 (en) * 2013-04-17 2015-05-27 (주)크린피아 Apparatus for automatic discharge of sludge using centrifugal separator
RU2538165C1 (en) * 2013-08-27 2015-01-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Азово-Черноморская государственная агроинженерная академия" (ФГБОУ ВПО АЧГАА) Milk separator-cleaner
KR101519058B1 (en) * 2014-11-18 2015-05-13 신흥정공(주) Cover for Centrifugal filter

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US5637217A (en) * 1995-01-25 1997-06-10 Fleetguard, Inc. Self-driven, cone-stack type centrifuge

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US2755992A (en) * 1953-10-19 1956-07-24 Glacier Co Ltd Centrifugal separators
US5637217A (en) * 1995-01-25 1997-06-10 Fleetguard, Inc. Self-driven, cone-stack type centrifuge

Cited By (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2001074492A3 (en) * 2000-04-03 2002-04-04 Mann & Hummel Filter Centrifuge having axially oriented separator surfaces
WO2001074492A2 (en) * 2000-04-03 2001-10-11 Filterwerk Mann+Hummel Gmbh Centrifuge having axially oriented separator surfaces
US6652439B2 (en) 2000-04-04 2003-11-25 Fleetguard, Inc. Disposable rotor shell with integral molded spiral vanes
US6540653B2 (en) 2000-04-04 2003-04-01 Fleetguard, Inc. Unitary spiral vane centrifuge module
EP1142644A2 (en) * 2000-04-04 2001-10-10 Fleetguard, Inc. Self-driven centrifuge with separation vane module
US6602180B2 (en) 2000-04-04 2003-08-05 Fleetguard, Inc. Self-driven centrifuge with vane module
EP1142644A3 (en) * 2000-04-04 2002-01-16 Fleetguard, Inc. Self-driven centrifuge with separation vane module
US6551230B2 (en) 2000-04-04 2003-04-22 Fleetguard, Inc. Molded spiral vane and linear component for a centrifuge
EP1236515A3 (en) * 2001-02-02 2002-10-02 Fleetguard, Inc. Improved unitary spiral vane centrifuge module
JP4516260B2 (en) * 2001-02-02 2010-08-04 カミンズ・フィルトレーション・アイピー,インコーポレーテッド Centrifuge module with spiral wing
EP1236515A2 (en) * 2001-02-02 2002-09-04 Fleetguard, Inc. Improved unitary spiral vane centrifuge module
JP2002224589A (en) * 2001-02-02 2002-08-13 Fleetguard Inc Centrifugal separator module equipped with spiral blade
US6572523B2 (en) 2001-04-05 2003-06-03 Fleetguard, Inc. Centrifuge rotation indicator
EP1277515A2 (en) * 2001-07-20 2003-01-22 Fleetguard, Inc. Disposable rotor shell with integral molded spiral vanes
EP1277514A1 (en) * 2001-07-20 2003-01-22 Fleetguard, Inc. Spiral vane and liner component for a centrifuge and centrifuge comprising such spiral vane and liner component
EP1277515A3 (en) * 2001-07-20 2003-06-04 Fleetguard, Inc. Disposable rotor shell with integral molded spiral vanes
JP2003190837A (en) * 2001-12-20 2003-07-08 Fleetguard Inc Self-driven centrifuge having vane module
JP4716640B2 (en) * 2001-12-20 2011-07-06 カミンズ・フィルトレーション・アイピー,インコーポレーテッド Self-driven centrifuge with vane module
WO2015128925A1 (en) * 2014-02-25 2015-09-03 東京濾器株式会社 Oil separator
JPWO2015128925A1 (en) * 2014-02-25 2017-03-30 東京濾器株式会社 Oil separator
US20160288140A1 (en) * 2014-04-18 2016-10-06 Shin Heung Precision Co., Ltd Hybrid centrifugal filter
NL2033073B1 (en) * 2022-09-19 2024-03-25 Biorganics Uft B V Combined separator
WO2024063644A1 (en) * 2022-09-19 2024-03-28 Biorganics Uft B.V. Combined separator

Also Published As

Publication number Publication date
EP1068016B1 (en) 2009-08-19
JP2002510547A (en) 2002-04-09
CN1304337A (en) 2001-07-18
CN1104959C (en) 2003-04-09
DE69941290D1 (en) 2009-10-01
ATE439913T1 (en) 2009-09-15
AU3634199A (en) 1999-10-25
EP1068016A1 (en) 2001-01-17
NO20004894D0 (en) 2000-09-29
NO20004894L (en) 2000-11-16
KR20010052233A (en) 2001-06-25
SE9801183D0 (en) 1998-04-02
JP3431598B2 (en) 2003-07-28
KR100577663B1 (en) 2006-05-23
BR9909347A (en) 2000-12-12

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