[0001] The present invention relates to mixing and circulating liquids having fibers suspended
therein.
[0002] The present invention is especially suitable for use in mixing systems designed to
treat waste water by the circulation of the water in tanks with an axial flow impeller
in a draft tube. The invention is also suitable for use in other mixing applications
liquid is circulated with an axial flow impeller.
[0003] When waste water is mixed in tanks, as in the course of waste water treatments such
as aeration, the power necessary to drive the impeller has been found to increase.
After a period of time, which may be from one hour to four days, the required power
to circulate the waste water sufficiently to mix and aerate it may increase up to
50%. The problem may be overcome by utilizing drive motors of higher power rating
and bearing the cost of the increased power.
[0004] The cause of this problem escaped appreciation until the time of this invention.
In accordance with this invention, it was discovered that the drag on the impeller
increased with time as a consequence of the accumulation of fibers on the leading
edge of the impeller. In waste water, which arrives from a sewage system for treatment,
the fibers are hair, rags (such as diapers and feminine products) and plastic bags.
Other fiberous materials suspended in the liquid, which is circulated and mixed, also
accumulates on the leading edge of the impeller with the same adverse effect.
[0005] The problem has been found, in accordance with the invention, to be exacerbated when
the liquid containing the fibers in suspension is circulated and mixed with an axial
flow impeller in a draft tube arrangement. Then the velocity of the impeller blades
through the liquid is several times the velocity of the liquid in the direction axially
of the impeller and draft tube. There are components of drag on each of the ends of
the fiber which are disposed on opposite sides of the leading edge of the blades of
the impeller; thereby leaving no net force tending to pull the fiber off the impeller.
The result of these drags is a force having a component normal to the leading edges
of the impeller blades which holds the fibers on the leading edges, the fibers therefore
cling tenaciously to the leading edges. In time the fibers accumulate and present
a rough surface on the leading edge and around the leading portion of the blades which
progressively increases the drag, decreases the lift and flow (pumping) and requires
more and more driving power to maintain the velocity of the impeller necessary to
obtain sufficient axial flow and circulation of the liquid. The efficiency and performance
of the mixing system is therefore derrogated.
[0006] Accordingly, it is the principal object of the present invention to provide an approved
mixing system whereby mixing can be carried out with low drag on the impeller which
circulates and mixes a liquid in spite of the presence of fibers, in suspension, in
the liquid.
[0007] It is a further object of the present invention to provide an apparatus for mixing
liquids, the performance and efficiency of which is not reduced when fibers are suspended
in the liquid being mixed.
[0008] It is a still further object of the present invention to provide improved mixing
apparatus wherein axial flow is produced within a draft tube with an impeller having
low drag characteristics even in the presence of fibers in the liquid being mixed.
[0009] The apparatus used in the invention is of the general type disclosed in our U.S.
Patent 4,378,165, namely apparatus for circulating liquids having fibers suspended
therein in a tank which comprises a draft tube disposed in said tank, a shaft an axial
flow impeller on said shaft having a plurality of blades, said impeller being disposed
in the draft tube and the shaft and impeller being coaxial with the draft tube, said
blades having opposite edges one of which leads the other as the impeller rotates.
[0010] The method of the present invention is characterized by the fact that the adhesion
of said fibers along the leading edges of the blades is decreased by effecting the
circulation by blades which have their leading edges (38) inclined with respect to
radial lines the leading edges from the axis of the impeller in planes perpendicular
to said axis at angles greater than the angle of repose of the fibers on the impeller
as the impeller rotates through the liquids.
[0011] Briefly described, a system for mixing liquids in a tank in accordance with the invention
utilizes an impeller which has opposite edges which respectively lead and trail each
other as the impeller rotates. This system is operative to circulate the liquids through
the tank along a flow path which extends axially of the impeller. The adhesion of
fibers suspended in the liquid along the leading edge of the impeller is decreased,
thereby preventing increased drag on the impeller due to the accumulation of the fibers
on the leading edge as the impeller rotates. The adhesion is decreased by inclining
the leading edge with respect to a radial line from the axis of the impeller sufficiently
to be greater than the angle of repose of the fibers on the impeller. The angle of
repose is that angle where the forces normal to the leading edge are sufficient to
hold the fibers against the leading edge, considering the coefficient of friction
of the surface of the impeller at the leading edge with respect to the fibers. Mechanically,
the leading edge presents an inclined plane with an inclination larger than the angle
of repose. Accordingly, the fibers are not held with sufficient force to maintain
them on the leading edge, and they continue to circulate with the liquid. This is
in spite of the absence of any significant radial component of flow; the flow being
essentially axial, particularly where the impeller is an axial flow impeller in a
draft tube. The adhesion of the fibers along the leading edge may also be further
decreased by providing the portion of the impeller adjacent the leading edge with
a surface of low coefficient of friction material, such a low coefficient of friction
may be provided by polishing. Low coefficient of friction material is preferably provided
by utilizing a plastic material presenting a low coefficient of friction to the fibers.
[0012] The invention will become more apparent from reading the following description in
connection with the accompanying drawings in which:
FIG. 1 is a sectional view, in elevation, of a mixing system embodying the invention;
FIG. 2 is a sectional view taken along the line 2-2 in FIG. 1, illustrating the low
drag impeller provided in accordance with an embodiment of the invention in greater
detail;
FIG. 3 is an enlarged view, in elevation, illustrating one of the blades of the impeller
shown in FIGS. 1 and 2;
FIG. 4 is a sectional view of one of the blades of the impeller illustrating its airfoil
shape and designating the chord, camber and thickness of the blade, the section being
taken along the line 4-4 in FIG. 2; and
FIG. 5 is a view similar to FIG. 2 illustrating a low drag impeller in accordance
with another embodiment of the invention.
[0013] Referring more particularly to FIG. 1, there is shown a tank 10 which may be used
for the mixing of liquids, such as waste water, having fibers in suspension. A draft
tube 12, having a conical upper section 14 and a cylindrical lower section 16, is
suspended from a beam 18 by posts 20. The lower section may also be diverging. The
beam 18 also carries a drive assembly 22 including an electric motor 24 and gearing
26. Suitable bearings in the gearing section 26 rotatably support a drive shaft 28.
An impeller 30 having a plurality of blade 32 is connected to a hub 34 which is connected
to and driven by the drive shaft 28. The draft tube sections 14 and 16 define an impeller
way 36. When the system is used for mixing and aerating, a sparge ring may be mounted
below the impeller 30 in the lower section 16. Alternatively, air may be inducted
through holes in the blades for sparging purposes as described in U.S. Patent No.
4,231,974. The operation and advantages of the impeller way 36 are described in U.S.
Patent No. 3,477,382. Further information respecting the design of draft tube mixing
systems may also be obtained from U.S. Patent No. 4,385,206.
[0014] The impeller 34 is an axial flow impeller. Each of the blades have an airfoil shape
and cause the liquid in the tank to be circulated through the draft tube, preferably
downwardly when the system is used for mixing and aerating, although upward circulation
may also be used. Vanes (not shown), for example as described in U.S. Patent No. 4,231,974,
may be used to further direct the flow axially of the impeller. The impeller has a
plurality of blades, three blades 32 being used as shown in FIG. 2. Each of the blades
is identical to the others. They are mounted 120° apart on the hub 34 and may be welded
at their bases 35 to the hub 34.
[0015] As shown in FIGS. 3 and 4, each blade 32 has an airfoil profile. The chord of the
blade (CL) is measured beween its leading edge 38 and its trailing edge 40. The blade
has camber as measured between its midline 42 and chord. The blade also has twist,
as shown in FIG. 3, in that the angle between the chord and the lower surface of the
blade is greater at the base 35 of the blade than at the tip 44 thereof, and may be
10-18
0 greater. In order to provide for axial flow, the camber may have a maximum length
or value of from about 4 to 8 percent of the chord length. The location of the maximum
camber length may be from about 20% to about 60% of the chord length away from the
leading edge 38 towards the trailing edge 40. The blade also has thickness between
its upper and lower surfaces preferably from about 6 to 14 percent of the chord length.
The width of the blade at the hub may be 22-28% of the chord length. The width of
the blade at the tip may be 14-20% of the chord length. The tip chord angle between
the chord at the tip and the horizontal may be 5-25°. The blade may be constructed
from a pair of plates 46 and 48, as shown in FIG. 4 which may be welded together near
the leading and trailing edges. An insert 50 is provided in a portion extending approximately
10 percent of the length of each of the upper and lower surfaces from the leading
to the trailing edge 38 and 40 of each blade 32. This insert is preferably a body
of plastic materials which presents a surface having a low coefficient of friction.
A suitable material is ultra high molecular weight polyethylene ("UHMW"). The molecular
weight of-this material is approximately 5 million. Suitable material is available
from Poly-Hi/Menasha Corp. Under the trade name TIVAR
O. Other material presenting a low coefficient of friction is suitable, for example
a flouropolymer (such as known by the trade name Teflon°). Ultra high molecular weight
polyethylene is preferred.
[0016] It will also be observed that the tips 44 .of the blades 32 have the shape of a sector
of a circle and conform to the cylindrical inner periphery of the draft tube; extending
to the inner periphery of the lower section 16, and separated therefrom only the necessary
clearance to maintain manufacturing tolerances. The leading edge 38 is also longer
than the trailing edge 40. The leading edge has an arcuate section 52 near the base
end 35 and extends to a straight section 54. The trailing edge 40 is entirely straight.
The arcuate section 52 is provided in order that the inclination of the leading edge
can be sufficient so that the angle of repose of fibers which tend to accumulate on
the leading edge is not reached. This angle of repose may be measured between the
leading edge and radial lines extending from the axis 56 of the impeller (the center
line of the shaft 28 and hub 34). In a preferred embodiment, the angle indicated as,
8, in FIG. 2 between a radial line 60 in a plane perpendicular to the axis 56 which
intersects the leading edge 38 at a point 62, where the radial line has a length RL,
equal to 70 percent of the radius of the blade from the ti
p 44 to the axis 56, is 40°. This angle of inclination, 6, may be in a range from 20°
to 60° depending upon the nature of the fibers which are suspended in the liquid being
mixed and the coefficient of friction of the surface provided by the insert 50.
[0017] In some cases, in lieu of such an insert with low coefficient of friction, a sufficient
inclination angle 8 will suffice. Also, instead of providing an insertto present the
portion of the surface at the leading edge with a low coefficient of friction, the
portion may be polished. In lieu of an insert 50 the low coefficient of friction material
may be coated or otherwise bonded onto the surface. For further information on coating
techniques reference may be had to D. P. Willis, Jr., Increasing Lifetime with Flouropolymer
Coatings, Appliance Engr. Vol. 7, No. 1 (1973 and D. P. Willis, Jr., Machine Design,
April 10, 1980, pp. 123-127.
[0018] In the event that increased angles of inclination are desired, for example 50° or
more the impeller 30 may be provided with blades 64 of a design shown in FIG. 5. These
blades may be of airfoil profile their leading edges 66 are sectors of a circle. The
angle of inclination, θ, as in FIG. 2, is measured at the intersection 62 of the radial
line 60 of length 70% of the radius to the top 70 of the blade with the leading edge
66. The angle included between the radial line 60 and a line 72 tangent to the leading
edge 66 at the point 68. The center of the sector is shown at 68 along a line perpendicular
to tangent line 72.
[0019] The trailing edge 74 of the blade is made up of two arcs, one of which 76 is a sector
of a circle having its center at 68 and the other of which 78 is also a sector of
a circle having its center 80 within the blade 64.
[0020] The portion 81 of the blade adjacent the leading edge 66 may be provided by an insert
of low coefficient of friction material, similar to the insert 50. The other techniques
mentioned above, for providing low coefficient of friction in the surfaces of the
portion 81, may alternatively be used.
[0021] From the foregoing description it will be apparent that there has been provided an
improved mixing system in which axial flow for circulation and mixing of liquids is
provided without the derrogation of efficiency and performance which results from
fibers suspended in the liquid being circulated and mixed.
1. Method for circulating liquids having fibers suspended therein a tank (10) using
an apparatus which comprises a shaft (28) disposed in said tank, an axial flow impeller
(30) on said shaft having a plurality of blades (32) having opposite edges one of
which leads the other as the impeller rotates, characterized by the fact that the
adhesion of said fibers along the leading edges of the blades is decreased by effecting
the circulation by blades which have their leading edges (38) inclined with respect
to radial lines (60) from the axis (56) of the impeller (30) in planes perpendicular
to said axis (56) at angles greater than the angle of repose of the fibers on the
impeller (30) as the impeller (30) rotates through the liquids.
2. Apparatus for carrying outthe method according to claim 1, characterized by the
fact that the angles betweenthe one of the radial lines (6) which intersects the leading
edges (38), where said one radial line (60) is 70% of the radius from the axis (56)
of the impeller (30) tothetips of the blades (32) are from 20° to 60°.
3. Apparatus for carrying out the method according to claim 1 or apparatus according
to claim 2, characterized by the fact that the trailing edges (40) of the blades (32)
define angles with radial lines from the axis (56) of the impeller in planes pependicular
thereto which intersect said trailing edges (40) which angles are smaller than the
angles between the leading edges (38) and the radial lines which intersect said leading
edges (38).
4. Apparatus according to any one of the preceding claims characterized by the fact
that the blades (32) have camber of a length from about 4% to 8% of the length of
the chord of the blades (32) between the leading (38) and trailing (40) edges thereof,
that the maximum thickness of the blades is from 6% to 12% of the chord length, and
that angle between the chord and planes perpendicular to the axis (56) is greater
adjacent to the hub than adjacent to the tips of the blades (32) and varies therebetween.
5. Apparatus according to any one of the preceding claims, characterized by the fact
that the blades (32) have opposite surfaces, portions of which extending from the
leading edges (38) to the trailing edges (40) are of material (50) having a lower
coefficient of friction than the remainder of the blade surfaces.
6. Apparatus according to claim 5, characterized by the fact that the surface portions
are provided by inserts (50) which define the leading edges (38) of the blades.
7. Apparatus according to claim 6, characterized by the fact that the material of
the inserts (50) is plastics.
1. Verfahren zum Umwälzen von suspendierte Fasern enthaltenden Flüssigkeiten in einem
Behälter(10) mit Hilfe einer Vorrichtung mit einer in dem Behälter angeordneten Welle
(28), einem auf der Welle vorgesehenen Axialflügelrad (30) mit einer Mehrzahl von
Flügeln (32), die einander entgegengesetzte Kanten haben, von denen die eine der anderen
voreilt, wenn sich das Flügelrad dreht, dadurch gekennzeichnet, daß das Haften der
Fasern längs der Vorderkanten der Flügel dadurch vermindert wird, daß das Umwälzen
mit Flügeln bewirkt wird, deren Vorderkanten (38) gegenüber sich von der Achse (56)
des Flügelrades (30) radial in zu der genannten Achse (56) rechtwinkligen Ebenen radial
erstreckenden Linien (60) unter Winkeln geneigt sind, die größer sind als der Reibungswinkel
de bei durch die Flüssigkeiten rotierendem Flügelrad (30) auf dem Flügelrad (30) befindlichen
Fasern.
2. Vorrichtung zum Durchführen des Verfahrens nach Anspruch 1, dadurch gekennzeichnet,
daß die Winkel zwischen den Vorderkanten (38) und jener der radialen Linien (6), die
die Vordekanten (38) an einer Stelle schneidet, die längs der einen radialen Linie
(60) von der Achse (56) des Flügelrades (30) um 70% des Radius von der Achse (56)
des Flügelrades (30) zu den Enden der Flügel (32) entfernt ist, zwischen 20 und 60
Grad betragen.
3. Vorrichtung zum Durchführen des Verfahrens nach Anspruch 1 oder Vorrichtung nach
Anspruch 2, dadurch gekennzeichnet, daß die Hinterkanten (40) der Flügel (32) die
die Hinterkanten (40) der Flügel (32) schneidenden radialen Linien, die sich in zu
der Achse (56) des Flügelrades rechtwinkligen Ebenen von de Achse (56) des Flügelrades
erstrecken, unter Winkeln schneiden, die kleiner sind als die Winkel zwischen den
Vorderkanten (38) und den die Vorderkanten (38) schneidenden radialen Linien.
4. Vorrichtung nach einem de vorhergehenden Ansprüche, dadurch gekennzeichnet, daß
die Flügel (32) eine Wölbung in einer Länge von etwa 4 bis 8% de Länge der Sehne der
Flügel (32) zwischen der Vorderkante (38) und der Hinterkante (40) des Flügels haben,
daß die grüßte Dicke der Flügel 6 bis 12% der Sehnenlänge beträgt, und daß der Winkel
zwischen der Sehne und zu der Achse (56) rechtwinkligen Ebenen im Bereich der Nabe
größer ist als im Bereich der Enden der Flügel (32) und dazwischen variiert.
5. Vorrichtung nach einem de vorhergehenden Ansprüche, dadurch gekennzeichnet, daß
die Flügel (32) einander entgegengesetzte Uberflächen besitzen und daß von den Vorderkanten
(38) zu den Hinterkanten (40) erstreckende Teile dieser Oberflächen aus einem Werkstoff
(50) bestehen, der einen niedrigeren Reibungkoeffizienten hat als der Rest der Flügeloberflächen.
6. Vorrichtung nach Anspruch 5, dadurch gekennzeichnet, daß die Uberflächenteils von
Einsätzen (50) gebildet werden, die die Vorderkanten (38) de Flügel bilden.
7. Vorrichtung nach Anspruch 5, dadurch gekennzeichnet, daß der Werkstoff der Einsätze
(50) Kunststoff ist.
1. Procédé pour une circulation de liquides contenant des fibres en suspension dans
une cuve (10) en utilisant un appareillage qui comprend un arbre (28) disposé dans
ladite cuve, une hélice (30) à écoulement axial montée sur ledit arbre et comportant
une pluralité de pales (32) pourvues de bords opposés dont l'un est en avance sur
l'autre quand l'hélice tourne, caractérisé par le fai que l'adhérence desdites fibres
le long des bords avant des pales est réduite en assurant la circulation par des pales
qui ont leurs bords avant (38) inclinés par rapport à des lignes radiales (60) partant
de l'axe (56) de l'hélice (30) dans des plans perpendiculaires audit axe (56) selon
des angles plus grands que l'angle de repos des fibres sur l'helice (30) à mesure
que l'hélice (30) tourne au travers des liquides.
2. Appareillage pour la mise en oeuvre du procédé selon la revendication 1, caractérisé
par le fait que les angles entre les bords avant (38) et une des lignes radiales (6)
qui coupe les bords avant (38) où ladite ligne radiale (60) correspond à 70% du rayon
s'étendant de l'axe (56) de l'hélice (30) jusqu'aux bouts des pales (32), sont compris
entre 20° et 60°.
3. Appareillage pour la mise en oeuvre du procédé selon la revendication 1, ou bien
appareillage selon la revendication 2, caractérisé par le fait que les bords arrière
(40) des pales (32) définissent des angles avec des lignes radiales partant de l'axe
(56) de l'hélice dans des plans perpendiculaires à celui-ci qui coupent lesdits bords
arrière (40), lesdits angles étant plus petits que les angles formés entre les bords
avant (38) et les lignes radiales qui coupent lesdits bords avant (38).
4. Appareillage selon une quelconque des revendications précédentes, caractérisé par
le fait que les pales (32) comportent une cambrure d'une longueur comprise entre environ
4% et 8% de la longueur de la corde des pales (32) entrer leurs bords avant (38) et
arrière (40), que l'épaisseur maximale des pales est comprise entre 6% et 12% de la
longueur de corde et que l'angle formé entre la corde et les plans perpendiculaires
à l'axe (56) est plus grand dans une zone adjacente au moyeu que dans une zone adjacente
aux bouts des pales (32) et varie dans l'intervalle.
5. Appareillage selon une quelconque des revendications précédentes, caractérisé par
le fait que les pales (32) comportent des surfaces opposées dont des parties s'étendant
des bords avant (38) jusqu'aux bords arrière (40) sont formées d'un matériau (50)
ayant un coefficient de frottement inférieure au reste des surfaces de pales.
6. Appareillage selon la revendication 5, caractérisé par le fait que les parties
de surfaces sont formées par des inserts (50) qui définissnt les bords avant (38)
des pales.
7. Appareillage selon la revendication 6, caractérisé par le fait que la matière des
inserts (50) est une matière plastique.