FIELD OF INVENTION
[0001] The present invention relates to a cyclone separator for separating substances from
a fibre-liquid-suspension, particularly paper pulp suspensions, of the kind defined
in the preamble of the following Claim 1.
BACKGROUND OF THE INVENTION
[0002] Cyclones of the kind used in the paper industry to cleanse a paper pulp suspension
from contaminants and impurities in the form of sand grains, metal particles, chips,
splinters and larger métal objects, such as paper clips and paper staples that are
liable to be contained by paper pulp produced from wastepaper will typicelly comprise
an elongated cyclone chamber which tapers in a direction towards one end thereof and
which is provided at its wider end with a tangentially directed inlet for the suspension
to be cleaned and an axially directed outlet for cleaned suspension, the accept, and
which further includes an axially directed second outlet for the contaminants or impurities,
i.e. the reject.
[0003] A cyclone separator of this kind operates in the following manner:
[0004] The suspension to be cleaned is fed at high speed into the chamber, through the tangentially
directed inlet provided in the upper, wider part of the chamber. The input suspension
thereby moves helically or spirally on the inner surface of the wall of the separator,
in a direction towards the opposite, narrower end of the chamber, i.e. towards the
axially directed second outlet. The heavier particles in the suspension, i.e. the
contaminants, endeavour to collect against the wall of the cyclone, while the lighter
particles, i.e. the fibres, collect in the centre of the cyclone. The contaminants
are moved down into the tapering or narrowing part of the cyclone and exit therefrom
through the axially directed second outlet. The inner part of the vortex, on the other
hand, turns at the lower end of the tapering part of the cyclone and moves axially
in an opposite direction, forming a helical or spiralling vortex, and leaves the cyclone
through the upper end thereof in the form of a light, clean fraction called the accept.
Thus, when cleansing paper pulp suspensions, the accept will essentially contain fibres
of the desired nature.
[0005] The cyclone chamber of those cyclone separators known hitherto for cleansing paper
pulp suspensions have an inner wall which is either smooth or is provided with helically
extending screw grooves which facilitate movement of the coarser and heavier contaminants
down towards the bottom outlet of the cyclone, as illustrated for instance in Prior
Publications US-A 3,399,770, DE-C 2,285,233 and SE-C 187,435.
[0006] During the coarse of cleaning and separating contaminants from the fibre suspension,
an individual particle will move in a circular path around the inner wall of the conical
chamber without shifting axially. The particle is held in suspension by buoyancy and
entraining forces. The buoyancy forces acting on the particle tend to counteract the
entraining forces that endeavour to move the particle axially and thus hold the particle
in suspension. The particle thus continuously moves on the same level. The particle
is also subjected to a centrifugal force, such that the particle will be held against
the inner chamber wall and move around the wall in a closed circular path. Thus, the
particle will cut into the surface of the inner wall as it moves therearound. The
effect of these particles on the inner chamber wall will gradually wear the wall to
a state in which it must be repaired or replaced.
[0007] The various cyclone separators described in the aforesaid patents specifications
are intended to eliminate this drawback.
[0008] However, these earlier known constructions are intended to remove contaminants that
are found in typical paper pulp suspensions, such as sand, bark and the like.
[0009] The present invention, on the other hand, is intended to remove effectively primarily
the kind of contaminants that are found in paper pulp which is produced, e.g., from
recycled paper, such as paper clips, staples and other heavier particles. The extraction,
of such contaminants places completely different requirements on cyclone construction.
DISCLOSURE OF THE INVENTION
[0010] The main object of the present invention is to provide a cyclone separator which
will effectively extract heavy particles from a fibre suspension.
[0011] Another object of the invention is to provide a cyclone separator which will have
a long useful life.
[0012] A further object of the invention is to provide a cyclone separator which will have
few operational breakdowns.
[0013] Still another object of the invention is to provide a cyclone separator which will
achieve a fully satisfactory cleansing result.
[0014] Yet another object of the invention is to provide a cyclone separator which will
enable both heavy reject and light reject to be separated more effectively, i.e. a
separator which can be readily constructed for the extraction of heavy contaminants
and for the extraction of light contaminants in manufacture.
[0015] These objects are achieved in accordance with the invention with a cyclone separator
having the characteristic features set forth in the characterizing clause of claim
1 and also in the characterizing clauses of respective subordinate claims.
[0016] Another positive effect achieved with the invention is that by increasing the angle
α and the pitch S, the liquid flow inwardly of the inclined plane can be urged closer
to the gas core that is generated in the centre of the chamber. This is highly beneficial
when wishing to separate light particles, so-called light reject. These particles
are influenced by centripetal forces and are drawn into the centre of the cyclone.
The flank of the helical screw groove assists in 〈〈 pushing 〉〉 these light particles
in towards the centre, where they are separated.
[0017] The invention will now be described in more detail with reference to the accompanying
drawings, in which.
Figure 1 is a vertical sectioned view of an inventive cyclone separator; and
Figure 2 illustrates the different force components of forces generated in an inventive
cyclone separator.
DETAILED DESCRIPTION OF A PREFERRED EMBODIMENT OF THE INVENTION
[0018] Figure 1 illustrates a vertically mounted inventive cyclone separator and is a sectioned
view of the separator taken in a vertical plane. The cyclone separator includes a
main part 3 which has an inner, conical chamber 4 which includes an essentially tangential
inlet at the wider end 5 of the chamber. The chamber 4 tapers downwardly and its inner
wall has a screw-like configuration including series of contiqous helical threads.
Each of these threads includes a first upper surface or flank 1 and a second lower
surface or flank 2. The upper surface 1 faces towards the wide end 5 of the chamber
4, and defines an angle α with a line that extends parallel with the centre line of
the main cyclone part. The reference sign β identifies the angle between a line that
extends parallel with the centre line of the main cyclone part and a conical, inner
imaginary surface A containing the intersections of the upper and lower surfaces 1,
2 of the extending helical threads.
[0019] The second surface or flank 2 faces away from the wide end 5, towards the narrower
end 6 of the cyclone chamber and intersects with the upper surface or flank 1 of the
next underlying thread at an angle α.
[0020] The angle γ lies within the range (90°-α)-90° so that the lower thread surface 2
acts as an inclined plane to advance downwardly particles moved against the inner
surface of the chamber 4 and under this lower thread surface.
[0021] The reference S identifies the pitch of the helical thread. The pitch may vary according
to requirements and the area of use.
[0022] The second flank 2 and its extension form a triangle together with the first flank
1 of the nearest underlying screw-thread and an inner imaginary surface containing
the intersections of the upper and lower flanks or surfaces of the extending helical
threads.
[0023] Figure 2 illustrates the different forces that are generated in an inventive cyclone
separator. CF represents the centrifugal force acting on a particle adjacent the inner
chamber wall at the first flanck. This force can be divided into two components, CFn
and CFu, wherein

. CFN acts perpendicularly to the flank and CFu acts in a direction in which the particle
is pressed up to the 〈〈 ceiling 〉〉 of the helical screw-thread or helix, i.e. said
second flank 2. HF represents the downwardly acting force of the liquid flow, this
force acting from the wider end of the chamber in a direction opposite to CFu. The
particle is also subjected to the force of gravity G. The force of gravity, however,
is negligible in this connection.
[0024] If

, the particle will travel in a horizontal orbit and will sooner or later strike 〈〈
the ceiling 〉〉 of the helical screw-thread and accompany the screw-thread downwards,
since the screw-thread has a downwardly extending helical form.
[0025] If CFu is greater than HF, the particle will reach the 〈〈 ceiling 〉〉 earlier, as
the particle will then slide upwards along the first flank. If CFu is smaller than
HF, the particle will slide downwards on the inclined plane 1 and eventually reach
the apex of the flank 2, whereafter the particle is pressed-in beneath the 〈〈 ceiling
〉〉. This means that heavy particles that lie against the 〈〈 ceiling 〉〉 of the screw-thread
are more protected against the back suction effect of the gas core, since the pressure
is lowest in the centre of the cyclone and greatest at the cyclone wall. If the particule
rotates at a slower speed, this pressure distribution would cause the particle to
be sucked in towards the centre and accompany the upwardly flowing accept.
[0026] As a result of this configuration of the inner cyclone wall, the heavy particules
will be moved up towards the screw flank extending helically along the inner cyclone
wall and slide down along the inclined surface of the helical screw-thread or helix,
so as to reach ultimately the lower outlet end 7 of the cyclone, at the same time
as the accept outlet 8 is located in the centre of the wider end 5 of the chamber
4.
[0027] This novel configuration of the cyclone wall thus functions as a latch hook which
while permitting movement in one direction will block movement in the opposite direction.
This is particularly important in the vicinity of the lower outlet 7, where the dimensions
are small and the gas core lies close to the chamber wall.
[0028] When the angle α and the pitch S are increased, the liquid flow inwardly of the inclined
plane or surface will be pressed closer towards the centre of the gas core. This is
advantageous when wishing to extract light particles, so-called light reject. These
particles are influenced by the centripetal force and drawn towards the centre of
the apparatus. The conical wall causes these light particles to be moved towards the
centre, where they are separated.
[0029] It will be understood that the invention is not restricted to the described and illustrated
embodiment thereof and that modifications are conceivable within the scope of the
following Claims.
1. A cyclone separator for separating substances from a fibre-liquid-suspension particularly
a paper pulp suspension wherein the separator comprises a main part including an inner
conical chamber having a centre line, an inner surface with a wide end, and a generally
tangentially directed inlet at the wide end, the chamber tapering conically downward
from the wide end and having a screw-like configuration to provide helical threads
on the inner surface thereof, wherein each of the threads of the screw-like inner
surface includes an upper surface 1 and a lower surface 2, the upper surface 1 facing
towards the wide end 5 of the chamber 4 and defining an angle α with the chamber centre
line, the lower surface 2 facing away from the wide end 5 and intersecting with the
upper surface 1, of the next underlying thread at an angle γ, characterized by the
angle γ lying within the range (90° - α) -90° so that the lower thread surface 2 acts
as an inclined plane to advance downwardly particles moved against the inner surface
of the chamber 4 and under this lower thread surface.
2. A cyclone separator according to claim 1, characterized in that an angle β is defined
between a line that extends parallel with the chamber centre line and and inner imaginary
surface A containing the intersections of the upper and lower surfaces 1, 2 of the
extending helical threads.
3. A cyclone separator according to claim 2, characterized in that the angle α is greater
than the angle β.
4. A cyclone separator according to claim 1, characterized in that the screw-like inner
surface has one or more inputs at the wide end 5 of the chamber 4.
5. A cyclone separator according to claim 1, characterized in that the lower thread surface
2 has a constant width over the whole of its length.
1. Zyklonseparator zum Separieren von Substanzen aus einer Faser-Flüssigkeits-Suspension,
insbesondere einer Papierbrei-Suspension, wobei der Separator ein Hauptteil aufweist,
welches einen konischen Innenraum besitzt, der eine Mittellinie, eine Innenfläche
mit einem erweiterten Ende und einen im wesentlichen tangential ausgerichteten Einlass
an dem erweiterten Ende aufweist, wobei sich der Raum konisch nach unten von dem erweiterten
Ende verjüngt und eine schraubenähnliche Ausgestaltung aufweist, um schraubenförmige
Gewindegänge auf der Innenfläche davon zu erhalten, wobei jeder Gewindegang der schraubenähnlichen
Innenfläche eine obere Fläche (1) und eine untere Fläche (2) aufweist, wobei die obere
Fläche (1) zum erweiterten Ende (5) des Raumes (4) hin ausgerichtet ist und einen
Winkel (α) mit der Mittellinie des Raumes einschliesst, wobei die untere Fläche (2)
weg von dem erweiterten Ende (5) ausgerichtet ist und die obere Fläche (1) des nächsten,
darunterliegenden Gewindeganges mit einem Winkel (γ) schneidet,
dadurch gekennzeichnet,
dass der Winkel (γ) innerhalb von dem Bereich (90° - α) - 90° liegt, so dass die untere
Fläche (2) des Gewindeganges als eine schräge Ebene wirkt, um Partikel, welche sich
gegen die Innenfläche des Raumes (4) und unter diese untere Fläche des Gewindeganges
bewegen, und unten voranzutreiben.
2. Zyklonseparator nach Anspruch 1, dadurch gekennzeichnet, dass ein Winkel (β) zwischen
einer Linie, die sich parallel zu der Raummittellinie erstreckt, und einer inneren,
imaginären Fläche (A) definiert ist, auf der sich die Schnittpunkte der oberen und
unteren Flächen (1, 2) der sich erweiternden schraubenförmigen Gewindegänge befinden.
3. Zyklonseparator nach Anspruch 2, dadurch gekennzeichnet, dass der Winkel (α) grösser
als der Winkel (β) ist.
4. Zyklonseparator nach Anspruch 1, dadurch gekennzeichnet, dass die schraubenähnliche
Innenfläche ein oder mehrere Eingänge an dem sich erweiternden Ende (5) des Raumes
(4) hat.
5. Zyklonseparator nach Anspruch 1, dadurch gekennzeichnet, dass die untere Gewindefläche
(2) eine konstante Breite über ihre gesamte Länge aufweist.
1. Séparateur à cyclone pour séparer des substances d'une suspension fibres-liquide,
en particulier une suspension de pulpe de papier, dans lequel le séparateur comprend
une partie principale incluant une chambre conique intérieure munie d'un axe central,
une surface intérieure munie d'une extrémité large, et une entrée dirigée généralement
tangentiellement à l'extrémité large, la chambre allant en s'amincissant coniquement
vers le bas à partir de l'extrémité large, et présentant une configuration en forme
de pas de vis pour former des filets hélicoïdaux sur sa surface intérieure, chacun
des filets de la surface intérieure en forme de pas de vis comprenant une surface
supérieure (1) et une surface inférieure (2), la surface supérieure (1) étant tournée
vers l'extrémité large (5) de la chambre (4) et formant un angle (α) avec l'axe central
de la chambre, la surface inférieure (2) étant tournée du côté opposé à l'extrémité
large (5) et coupant sous un angle (γ) la surface supérieure (1) du filet suivant
placé au-dessous,
caractérisé en ce que
l'angle (γ) se situe dans la plage (90°-α)-90°, de façon que la surface de filet inférieure
(2) agisse comme un plan incliné pour faire avancer vers le bas les particules entraînées
contre la surface intérieure de la chambre (4) et sous cette surface de filet inférieure.
2. Séparateur à cyclone selon la revendication 1,
caractérisé en ce qu'
un angle (β) est formé entre une droite s'étendant parallèlement à l'axe central de
la chambre, et une surface imaginaire intérieure A contenant les intersections des
surfaces supérieures et inférieures (1, 2) des filets hélicoïdaux.
3. Séparateur à cyclone selon la revendication 2,
caractérisé en ce que
l'angle (α) est supérieur à l'angle (β).
4. Séparateur à cyclone selon la revendication 1,
caractérisé en ce que
la surface intérieure en forme de vis comporte une ou plusieurs entrées à l'extrémité
large (5) de la chambre (4).
5. Séparateur à cyclone selon la revendication 1,
caractérisé en ce que
la surface de filet inférieure (2) a une largeur constante sur toute sa longueur.