IE53708B1 - Apparatus for the separation of a liquid into two fractions - Google Patents

Apparatus for the separation of a liquid into two fractions

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Publication number
IE53708B1
IE53708B1 IE76288A IE76288A IE53708B1 IE 53708 B1 IE53708 B1 IE 53708B1 IE 76288 A IE76288 A IE 76288A IE 76288 A IE76288 A IE 76288A IE 53708 B1 IE53708 B1 IE 53708B1
Authority
IE
Ireland
Prior art keywords
membrane support
holes
membranes
support plates
liquid
Prior art date
Application number
IE76288A
Original Assignee
Danske Sukkerfab
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 Danske Sukkerfab filed Critical Danske Sukkerfab
Priority claimed from IE1113/82A external-priority patent/IE53707B1/en
Publication of IE53708B1 publication Critical patent/IE53708B1/en

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  • Separation Using Semi-Permeable Membranes (AREA)

Description

This invention relates to an apparatus for the separation of a liquid into two fractions (in the following referred to as a permeate fraction and a concentrate fraction, respectively) by filtration through semi-permeable membranes, said apparatus comprising a stack of semipermeable membranes and elongated membrane support plates having ribs projecting from the surfaces of said plates and forming a plurality of curved separate flow passages extending along the surfaces of the membranes, each membrane support plate comprising at least two spaced holes extending therethrough so as to form two main flow passages extending longitudinally of said stack, means for supplying liquid to be fractionated to one of said main flow passages, means for discharging a permeate fraction and means for discharging a concentrate fraction from said stack.
The prior art apparatuses of the above mentioned type may be designed in a manner such that the liquid to be fractionated flows through the flow passages extending parallel to the membrane surfaces in a series flow pattern, a parallel flow pattern or a combination of a series flow and a parallel flow pattern.
A prior art apparatus (FR-A-2 170 147) comprises elliptical membrane support plates and the centres of the holes provided in said membrane support plates are located in or adjacent to the focal points to the ellipses, Such a. prior art apparatus suffers from the drawback that the liquid flowing along the membrane surfaces from one main flow passage towards the other is not uniformly distributed over said membrance surface and consequently an optimum filtration efficiency cannot be achieved.
S 3 7 Ο 8 It has been attempted to obtain an improved distribution of the liquid to be fractionated over the membrane surfaces by using membrane -support plates having continuous ribs projecting from the surfaces of said plates. When assembled in a stack of membranes and membrane support plates, the ribs cause the membranes located between two membrane support plates to be pressed together within narrow zones thus forming several separate flow passages extending from one main flow passage to the other one. Similar flow passages may be formed in case only one membrane is located in the space between two adjacent membrane support plates.
These measures have not provided a fully satisfactory solution to the problem discussed above, i.a. because of the fact that the flow resistance of the relatively long flow passages is considerably higher than that of the relatively short flow passages.
The object of the invention is to obtain a uniform distribution of the liquid to be fractionated over the membrane surfaces during the flow of said liquid from one main flow passage towards the other.
Another object is to improve the filtration efficiency of the membranes in an apparatus of the above mentioned type.
Accordingly, the present invention provides an apparatus for the separation of a liquid into at least one permeate fraction and at least one concentrate fraction by filtration through semi-permeable membranes, said apparatus comprising a stack of semi-permeable membranes and elongated membrane support plates having ribs projecting from the surfaces of said plates and forming a plurality of separate curved flow passages extending along the surfaces of the membranes, each membrane support plate comprising at least two spaced holes extending therethrough so as to from two main flow passages extending longitudinally of said stack, means for supplying liquid to be fractionated to one of said main flow passages, means for discharging a permeate fraction and means for discharging a concentrate fraction from said stack, the heights of the ribs on each membrane support plate increasing with increasing distances from the central 3 7 0 8 part of said plate.
The increasing heights of the ribs viewed in a direction from the central part of the membrane support plates towards their periphery and the resultant increasing cross-sectional area of the flow passages extending along the membrane surfaces compensate for the increasing flow resistance due to the increasing lengths of said flow passages. This manner of obtaining a more uniform distribution of the liquid to be fractionated over the membrane surfaces is particularly suitable when fractionating dairy products and other liquids which are governed by the following equation t = K x yn wherein r is the shear force, y is the shear tension, n is an integer which is determined empirically and K is an empirically determined constant.
When fractionating such liquids, the ratio of the height (bp of one flow passage to the height (b2) of another flow passage should preferably be: n wherein and L2 are the lengths of two flow passages.
In practice n is less than 1 but higher than 0.05 and if n = 0.2, the relationship between the length (L) of the flow passages and the height (b) of said passages is as follows: L1 L2 - L3 192.8 mm 220.8 mmb1 = b2 = b3 = 1.30 mm 1.44 mm 1.64 mm 264.7 mmL4 = 326.0 mmb4 = 1.90 mmL5 = 411.2 mmbs = 2.24 mm. The membrane support plates should preferably same total thickness all over the plates and, therefore, the thickness of the plates per se preferably increase seen in a direction from their periphery towards their central part and more preferably in the same manner as the heights of the ribs increase in the opposite direction.
It should be understood that ribs having varying heights as described above may also be provided in an apparatus of the type first described, i.e. an apparatus in which the membrane support plates have a central blocked zone, and in which these plates optionally are of a super-elliptical shape.
The invention will now be described in further detail with reference to the drawings in which Fig. 1 is a plan view of a membrane support plate for use in an embodiment of the apparatus of the invention, 3 7 0 8 Fig. 2 is a cross-sectional view taken along the line ll-ll of the membrane support plate of Fig. 4 Fig. 3 is an exploded view of a preferred embodiment of the apparatus of the invention, Fig. 4 is an exploded view of another preferred embodiment of the apparatus of the invention, and Fig. 5 is a cross-sectional view taken through the edge of a hole in a membrane support plate and the adjacent membranes as well as the sealing rings cooperating therewith.
The membrane support plate illustrated in Fig. 1 and -2 comprises two circular holes 1 and 2 and an elliptical central hole 3. An outer annular sealing flange 4 is provided along the periphery of said membrane support plate. Membrane sealing means 5 and 6, respectively, a>'e provided al the edges of the circular holes 1 and 2. The surfaces of the membrane support plates comprise upstanding ribs 7 of a“*curved shape and an inner annular sealing flange 8 extending along the periphery of the central elliptical hole 3.
The contour of the membrane support plate is determined by the fact that the inner sealing flange 8 has a shape governed by the equation: 2.3 2?3 Λ3 .2.3 a— b The height of the ribs 7 increases when viewed in a direction from the central hole 3 towards the periphery of the plate. The variation in height causes that the height of the flow passages formed be25 tween two adjacent membranes and two adjacent sets of ribs increases viewed in the above mentioned direction and thus compensates for the varying length of the flow passages in relation to the total flow resistance.
The apparatuses shown in Fig. 3 and Fig. 4 comprise a stack of membrane support plates 9 which are constructed essentially as the plate shown in Fig.l and. Fig.2 and membranes 10 with two membranes 10 being located between two adjacent membrane support plates 9. This stack is maintained in a compressed state between two end plates 11 and 12 by means of clamp bolts 13 and 14. The holes 1 and 2 in the membrane support plates 9 form together with corresponding holes in the membranes 10 two main flow passages extending longitudinally of said stack. The membranes 10 are sealed to the nentorane support plates 9 at the edges of the holes 1,2 in said plates by means of the above mentioned sealing means 5,6. One of these sealing means which comprises a lower part 15 and a lop part 16 is illustrated in further detail in Fig- 5, The underside of said lower part 15 comprises projections 17 with intervening passages allowing liquid to flow out of or into the adjacent main flow passage. The upperside of said lower part 15 comprises two diametrically located pins 18 and two diametrically located holes 19.
The underside of the top part 16 comprises· two diametrically located holes 20 adapted to receive the pins 18 and two diametrically located pins 21 adapted to be inserted into the holes 19.
The zones of the membrane support plates located adjacent to the holes 5 and 6 comprise holes 22 having such dimensions and locations that the ends of the pins 18 and 21 can be inserted into said holes when it is desired to seal the membranes to the membrane support plates in the zone adjacent to the holes 5 and 6.
The stacks illustrated also comprise barrier plates 23 mounted at different levels in the two main flow passages so as· to close the main flow passages at these points and thus force a liquid flowing through such a main flow passage to move in a parallel flow pattern towards the other main flow passage in separate parallel flow passages extending parallel to the membrane surfaces.
The membrane support plates of the apparatus shown in Fig.3 comprise ducts 24 extending·· from the top and bottom surfaces of each plate to a central flow passage formed, by the central holes in the membrane support plates. This central flow passage is connected with a central discharge opening 25 in the upper end plate 17.
The liquid to be fractionated in the apparatus shown in Fig.3 is Introduced through an inlet 26 in the upper end plate 17 and is passed into a longitudinally extending main flow passage. Due to the presence of the barrier plates 23 in said main flow passage the liquid is forced to flow towards the other main flow passage in the form of parallel streams moving parallel and in intimate contact with the membrane surfaces. After having reached the other main flow passage these streams are combined and the liquid moves down through said main flow passage. A barrier plate 23 mounted therein forces the liquid to flow towards the first main flow passage in the form of further parallel streams. Subsequently, these streams are combined and the liquid flows further down the stack within said first main 3708 flow passage until it is forced towards the second main flow passage as described above. Finally, the liquid is discharged from the apparatus through an outlet 27 in the lower end plate as a concentrate fraction.
During the movement of the partial streams of liquid to be fractionated along the surfaces of the membranes 10 the relatively low molecular compounds pass through said membranes in the form of a permeate which subsequently flows through the ducts 24 into the central flow passage and is discharged through the discharge opening as a permeate fraction.
In the apparatus shown in Fig. 4 the edge of each membrane support plate 9 comprises a permeate discharge pipe 28 which is connected with an annular internal channel 29 which in turn is connected with both the top and bottom surfaces of each membrane support plate.
The apparatus shown in Fig. 4 also comprises a connecting channel 3d connecting a main flow passage with an inlet opening 31 in the lower end plate 12. The inlet opening 31 is connected with the central flow passage and the latter is connected with a central outlet ' 32 in the upper* end plate 11.
The liquid to be fractionated in the apparatus shown in Fig. 4 is introduced through the hole 2G in the upper end plate 11 and flows through the apparatus in the same manner as explained in connection with the description of the operation of the apparatus shown in Fig. 3 with the exception that the concentrate fraction discharged through the outlet 27 via the connecting channel 30 is introduced into the central flow passage and flows up through the stack and out of the outlet 32.
The liquid fractions passing through the membranes sup30 ported by the membrane support plates 9 are collected in the annular channels 29 and the collected permeate is discharged through the permeate discharge pipes 28. The liquid being discharged through the pipes 28 forms the permeate fraction.
The drawings show vertically mounted stacks of membranes and membrane support plates. However, it should be understood that in many cases it is advantageous to use a horizontally mounted stack because such a mounting facilitates the replacement of defect membranes and/or membrane support plates.

Claims (5)

Claims
1 . An apparatus for the separation of a liquid into at least one permeate fraction and at least one concentrate fraction by filtration through semi-permeable membranes, said apparatus comprising a stack of semi-permeable membranes and elongated membrane support plates having ribs projecting from the surfaces of said plates and forming a plurality of separate curved flow passages extending along the surfaces of the membranes , each membrane support plate comprising at least two spaced holes extending therethrough so as to form two main flow passages extending longitudinally of said stack, means for supplying liquid to be fractionated to one of said main flow passages, means for discharging a permeate fraction and means for discharging a concentrate fraction from said stack, the heights of the ribs on each membrane support plate increasing with increasing distances from the central part of said plate .
2. An apparatus wherein the thickness per se increases when periphery towards its as claimed in claim 1, of each membrane support plate viewed m a direction from its central part.
3. An apparatus as claimed in claim 1 or claim 2, wherein the membranes are pressed against tne membrane· support plates in annular zones adjacent to the holes in said membrane support plates by sealing means comprising two annular members which are interconnected by pins provided on one member and inserted into holes in the other member.
4. An apparatus as claimed in claim 3, wherein holes for the insertion of the pins provided on the annular sealing members are provided in the zones of the membrane support plates adjacent to the holes therein. 5. 3708
5. An apparatus as claimed in claim 1, substantially as hereinbefore described with particular reference to and as illustrated in the accompanying drawings.
IE76288A 1982-05-10 1982-05-10 Apparatus for the separation of a liquid into two fractions IE53708B1 (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
IE1113/82A IE53707B1 (en) 1981-05-20 1982-05-10 Apparatus for the separation of a liquid into two fractions

Publications (1)

Publication Number Publication Date
IE53708B1 true IE53708B1 (en) 1989-01-18

Family

ID=11022118

Family Applications (1)

Application Number Title Priority Date Filing Date
IE76288A IE53708B1 (en) 1982-05-10 1982-05-10 Apparatus for the separation of a liquid into two fractions

Country Status (1)

Country Link
IE (1) IE53708B1 (en)

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