Method and valve in continuous chromatography system
10261056 ยท 2019-04-16
Assignee
Inventors
Cpc classification
F16K11/0743
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K11/074
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method and a rotary valve in a continuous chromatography system. The rotary valve comprises a stator with an inner stator face, and a rotor with an inner rotor face arranged in sealing contact with the inner stator face. The stator comprises at least a first and a second inlet orifices, at least two first outlet orifices, a second outlet orifice and a third outlet orifice, and the rotor interconnection paths are arranged to: in at least one rotary position connect the first inlet orifice to the second outlet orifice and the second inlet orifice to the third outlet orifice, and in at least two other rotary positions connect the first inlet orifice with any one of the first outlet orifices at the same time as the second inlet orifice is connected to the second outlet orifice.
Claims
1. A rotary valve comprising a stator with an inner stator face, and a rotor with an inner rotor face arranged in sealing contact with the inner stator face, the rotor is rotatably movable to a plurality of rotor positions about a rotational axis relative to the inner stator face, the stator comprises a plurality of connection ports each being in fluid communication with a corresponding valve orifice at the inner stator face and the rotor comprises two or more rotor interconnection paths for selective fluid interconnections of said valve orifices at preselected rotor positions, wherein the stator comprises a first inlet orifice and a second inlet orifice, at least two first outlet orifices, a second outlet orifice and a third outlet orifice, and wherein the rotor interconnection paths are arranged to: in at least one rotary position connect the first inlet orifice to the second outlet orifice and the second inlet orifice to the third outlet orifice, and in at least two other rotary positions, connect the first inlet orifice with any one of the at least two first outlet orifices at the same time as the second inlet orifice is connected to the second outlet orifice, the rotary valve being connected in a recirculation path to one or more outflows of a column outlet rotary valve of a chromatography system, wherein a first outflow of the column outlet rotary valve is connected to the second inlet orifice in the rotary valve and a third outflow from the column rotary valve is connected to the first inlet orifice of the rotary valve and a second inflow of the chromatography system is connected to the second outlet orifice of the rotary valve.
2. A rotary valve according to claim 1, wherein at least one of the rotor interconnection paths is a partly arcuate groove.
3. A rotary valve according to claim 2, wherein the first inlet orifice is provided in the centre of the rotary valve and the at least two first outlet orifices are provided in an arc about the first inlet orifice, and the second inlet orifice is provided at a radial distance R from the first inlet orifice that is different to the radial distance at which the first outlet orifices are provided, and a first interconnection path is provided such that it can connect the first inlet orifice with any one of the first outlet orifices and a second interconnection path is arcuate with an opening at the same radial distance from the first inlet orifice as the second inlet orifice.
4. A chromatography system comprising at least three chromatography columns and the rotary valve of claim 1 said system further comprising: the column inlet rotary valve being connected to the inlets of at least three columns in the system and to at least three inflows and the column outlet rotary valve being connected to the outlets of at least three columns in the system and to at least three outflows.
5. A chromatography system according to claim 1, wherein the feed recirculation flow path comprises a detector.
6. The rotary valve of claim 1, wherein: the second inlet orifice is an elongated orifice around a part of a circle around the first inlet orifice; the at least two first outlet orifices are positioned around the circle with the first inlet orifice in a center thereof; the second outlet orifice is provided on the stator in an elongated form at a distance from the first inlet orifice but separate from the second inlet orifice; and the third inlet orifice is adjacent to the second inlet orifice but a predetermined distance away from the first inlet orifice.
7. A method in a simulated moving bed chromatography system comprising a recirculation flow path in which recirculation fluid from the outlet of one column to an inlet of another column is transferred, the method comprising: connecting a column inlet rotary valve to inlets of each column; connecting a column outlet rotary valve to outlets of each column; selecting which one of two flows in the chromatography system to be recirculated in the recirculation flow path transferring recirculation fluid from the outlet of one column to the inlet of the other column wherein the recirculation flow path is connected to the inlets and the outlets through the column inlet rotary valve and the column outlet rotary valve, and wherein a recirculation valve is connected in the recirculation flow path and to one or more outflows of the column outlet rotary valve.
8. A method according to claim 7, wherein the chromatography system further comprises at least one column inlet valve connected to the inlets of at least three columns in the system and to at least three inflows and at least one column outlet valve connected to the outlets of at least three columns in the system and to at least three outflows, and wherein the recirculation fluid from the outlet of one column is transferred to the inlet of another column via the recirculation flow path, wherein said recirculation flow path is connected to the inlets and outlets of the columns through the column inlet and column outlet valves, wherein said method comprises directing two of the outflows from the at least one column outlet valve through the recirculation flow path one at the time.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
(8) The main parts of a typical rotary valve 1 are schematically shown in
(9) The stator 5, which is fixed with respect to the instrument into which it is built, is provided with ports for fluid communication with a fluid source/outlet and any component with which the valve is to co-operate. The ports may be positioned on any suitable part of the stator, and in any suitable direction. The ports are provided with means to connect capillaries or tubing. Such means may be of any suitable type, such as conventional Valco fittings well known to anyone skilled in the art. The ports are via channels in fluid communication with a corresponding set of valve orifices on an inner stator face 5a, i.e. the surface of the stator that during operation is in contact with the rotor 12.
(10) The rotor 12 is typically formed as a disc and has an inner rotor face 12a that is pressed against the flat inner stator face 5a during operation to achieve sealing contact there between. The inner rotor face 12a is provided with one or more interconnection paths which interconnect different valve orifices of the inner stator face 5a depending on the rotary position of the rotor with respect to the stator. The interconnection paths may be any type of path capable of providing fluidic contact between two valve orifices, and may be comprised of an internal channel with discrete orifices, grooves in the inner rotor face or the like.
(11) According to the invention a method is provided in a simulated moving bed chromatography system comprising a recirculation flow path in which recirculation fluid from the outlet of one column to the inlet of another column is transferred The method comprises choosing which one of two flows in the chromatography system that should be recirculated in the recirculation flow path. This could be accomplished by using the recirculation rotary valve as described below but also by using a set of less complex valves, for example rotary valves, solenoid valves or pneumatic valves.
(12) In one embodiment the chromatography system further comprises at least one column inlet valve connected to the inlets of at least three columns in the system and to at least three inflows and at least one column outlet valve connected to the outlets of at least three columns in the system and to at least three outflows, and a recirculation flow path in which recirculation fluid from the outlet of one column to the inlet of another column is transferred, wherein said recirculation flow path is connected to the inlets and outlets of the columns through the column inlet and column outlet valves. The method of the invention comprises directing two of the outflows from the at least one column outlet valve through the recirculation flow path one at the time. The outflows to be recirculated could be feed outflow and wash as described in relation to the embodiments described below.
(13) The at least one column inlet valve and the at least one column outlet valve could be one inlet rotary valve and one outlet rotary valve as described in the embodiments below or a set of less complex valves, for example less complex rotary valves, solenoid valves or pneumatic valves.
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(15) A detector 77 is provided in the recirculation flow path 75. In this embodiment one detector 77 is provided in the first outflow 34 between the outlet rotary valve 63 and the recirculation rotary valve 65 and one detector 77 is provided in the third outflow 29 between the outlet rotary valve 63 and the recirculation rotary valve 65. This detector 77 is adapted to detect an effluent signal being representative of the composition of the fluid flowing through the detector. In one embodiment the detector is a UV detector, i.e. measuring the UV absorbance of the sample. Other possible types of detectors are measuring pH, conductivity, light scattering, fluorescence, IR or visible light. This definition of detector will be the same throughout the description.
(16) A schedule for a simulated moving bed method (also called pcc) with feed and wash recirculation could in one embodiment of the invention be that if the feed is directed to the first column 11a then the outflow from the first column 11a should be directed to the inlet of the second column 11b. The second column 11b hereby serves as a secondary load column and the first column serves as a primary load column. When the first column is fully loaded, which could be measured by for example UV or time, the feed is instead directed directly to the second column 11b (hereby serving as primary load column). At the same time the first column 11a is washed and the outlet of the first column 11a is then recirculated to the inlet of the third column 11c while the outlet of the second column now serving as primary load column is directed to waste through the recirculation rotary valve 65. After the wash step the first column 11a is eluted. And the elution outlet from the first column 11a is then directed to any one of the outlets from the recirculation rotary valve 66a-k while at the same time the outlet from the second column 11b now is recirculated to the third column 11c. The last step in the continuous PCC process with three columns is when the third column serves as primary load column. First wash is recirculated from the second column 11b to the first column 11a and then when the wash is ready and the second column is eluted the first column 11a serves as secondary load column and receives feed recirculation from the third column 11c. The benefit with a feed and wash recirculation is that the risk of losing any possible unbound sample is decreased and therefore the amount of sample provided to the column in the feed can be much higher than in normal chromatography. If there is any unbound feed left in the feed liquid after having passed the primary load column it will have another chance to bind in the secondary load column. This process is recycled. The rotary valves are controlled from a control system such that these above described flows are provided.
(17) In
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(19) Hereby there is one rotor position (shown in
(20) Two more rotational positions of the rotary valve are shown in