The multi-well filtration device according to the invention is described in more detail hereinbelow by way of an exemplary embodiment and with reference to the attached drawings, in which:
In the following description certain terms are used for reasons of convenience and are not to be interpreted as limiting. The terms “right”, “left”, “under” and “above” refer to directions in the figures. The terminology comprises the explicitly mentioned terms as well as their derivations and terms with a similar meaning.
In general, standardized microplate compliant structures allow the use of the multi-well filtration device in a standardized infrastructure. In particular, standardized liquid handling and analysis devices can be used.
The following applies to the rest of this description. If, in order to clarify the drawings, a figure contains reference signs which are not explained in the directly associated part of the description, then it is referred to previous description parts.
The upper funnel plate 3 has alternatingly arranged through holes for supply 33 and bridging channels 31 being interconnected by pressure equalization channels 34. Each through hole for supply 33 of the upper funnel plate 3 is connected to one of the needle funnels for supply 11 of the top plate 1 via a septum opening 21 of the septum 2. Accordingly each bridging channel 31 of the upper funnel plate 3 is connected to one of the needle funnels for extraction 13 of the top plate 1 via a septum opening 21 of the septum 2. In order to provide a tight connection between the top plate 1, the septum 2 and the upper funnel plate 3, the top plate 1 has recesses 12 around the needle funnels for supply 11 and around the needle funnels for extraction 13 on its under side and the upper funnel plate 3 has ridges 32 around the through holes for supply 33 and the bridging channels 31 on its upper side. When being connected, the septum 2 is pressed into the recesses 12 by the ridges 32.
The filtration plate 4 has alternatingly arranged through holes for extraction 42 and filtration chambers 41, wherein each filtration chamber 41 is connected to one of the through holes for supply 33 of the upper funnel plate 3. Each bridging channel 31 extends through one of the through holes for extraction 42 of the filtration plate 4 projecting below the filtration plate 4.
The filtration plate 4 is connected to the transparent separation layer 5, being again connected to the lower funnel plate 7, wherein a sealing mat 6 is arranged between the transparent separation layer 5 and the lower funnel plate 7. The lower funnel plate 7 has alternatingly arranged through holes for extraction 72 and filtrate funnels 71, wherein each filtrate funnel 71 is connected to one of the filtration chambers 41. Each bridging channel 31 of the upper funnel plate 3 extends again through one of the through holes for extraction 72.
The top of each filtrate funnel 71 is equipped with a filter element 73 having passages of a certain diameter. In the area being adjacent to the filter elements 73 the transparent separation layer 5 has holes (not shown in the figures) having a diameter larger than the diameter of the passages of the filter elements 73. Preferably, each of the filter elements 73 is arranged as a round metal mesh being inserted into a widened top part of the corresponding filtrate funnel 71 and being compressed with the widened top part of the corresponding filtrate funnel 71. Also, each metal mesh is preferably reversed around the filtrate funnel 71 at its lateral end section such that the metal mesh is press fitted with the lower funnel plate 7. Preferably, the pore size of the filter element is about 1 μm to about 2 μm.
The lower funnel plate 7 is connected to the collecting plate 8, wherein a sealing mat 6 is arranged in-between. The collecting plate 8 has collecting wells 81 with elongated cross-sections having the form of rounded rectangles. Each of said collecting wells 81 is connected to one filtrate funnel 71 of the lower funnel plate 7 and to one bridging channel 31 of the upper funnel plate 3. The bottoms of the collecting wells 81 are slightly slanted and well rounded, wherein each collecting well 81 has a deepest point 811 lying essentially straight below the bridging channel 31 being connected to said collecting well 81.
In use, one of the septum openings 21 being connected to one of the filtration chambers 41 is penetrated by a supply needle 91, such that the supply needle 91 extends into said filtration chamber 41. As best seen in
Again to be able to have a high concentration of solute in the suspension, parts of the multi-well filtration device being possibly in contact with the suspension are preferably made of an isolating material, such that the cooling of the suspension being filtered at an elevated temperature is as low as possible.
For preventing an elevated pressure inside the collecting well 81 which can obstruct the supply of suspension into the filtration chamber 41, the supply needle 91 has a longitudinal groove being connected to the according pressure equalization channel 92. Thus, the pressure can be equalized between the collecting well 81 and the air pressure outside the multi-well filtration device.
The filter element 73 retains solids of the supplied suspension, which are not able to pass the passages. Thereby a filter cake is built on top of the transparent separation layer 5. The diameter of the holes of the transparent separation layer 5 is large enough not to essentially effect the filtration and in the meantime it is small enough to be able to hold back the filter cake.
For extracting the filtrate out of the collecting well 81, the septum opening 21 being connected to the according bridging channel 31 is penetrated by an extraction needle 92, such that it extends near the deepest point 811 of the bottom of the collecting well 81. Since the bottom of the collecting well 81 is slightly slanted and well rounded, the filtrate can then efficiently be extracted preventing a comparably high dead volume of filtrate in the collecting well 81.
After filtration, the filtration plate 4 can easily be separated from the lower funnel plate 7 by means of the transparent separation layer 5. The filter cake containing crystals and other solids to be analyzed is still held inside the filtration chambers 41 by the transparent separation layer 5. Without any laborious preparation steps the filter cake can be transferred into an analysis device and it can be analyzed through the transparent separation layer 5 by an appropriate analysis method, such as X-ray powder diffraction or infrared and Raman spectroscopy.
In
After filtration, the filtration layer 4 together with the two adjacent sealing mats 6 and the separation layer 5 can easily be separated from rest of the multi-well filtration device as described above. The filtration plate 4 can then be closed as well as at its upper surface as at its bottom surface by closing layers 5A and 5B followed by a top plate 1A or a bottom plate, respectively. In this state, the top plate 1A can be firmly connected to the bottom plate 1B in order to form a compact transfer unit. For the firm connection the top plate 1A is provided with screw holes 12A, the filtration plate 4 is provided with screw holes 43 and the bottom plate 1B is provided with screw holes 12B, such that the top plate 1A can be firmly connected to the bottom plate 1B by means of screws extending through said screw holes 12A, 43 and 12B.
The transfer unit, still comprising the filter cakes inside the filtration chambers 41 of the filtration plate 4, can then be comfortably moved, stored or transferred to the according analysis device. Preferably, the upper plate 1A and the bottom plate 1B are provided with through holes 11A and 11B being arranged adjacent to the filtration chambers 41 as well as the closing layers 5A and 5B are made of a transparent material, such that the filter cakes can be analyzed through the through holes 11A and 11B and the closing layers 5A and 5B by an appropriate analysis method, such as X-ray powder diffraction or infrared and Raman spectroscopy.
Other alternative embodiments of the multi-well filtration device according to the invention are conceivable. Explicitly mentioned in this context are:
Number | Date | Country | Kind |
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06405198.0 | May 2006 | EP | regional |