INSULATED SERIAL COLUMN CHROMATOGRAPHY ARRANGEMENTS AND SYSTEMS
20250327779 ยท 2025-10-23
Inventors
- Michael O. Fogwill (Uxbridge, MA, US)
- Martin Gilar (Franklin, MA)
- Joseph D. Michienzi (Plainville, MA, US)
- Wade P. Leveille (Douglas, MA, US)
- Geoff C. Gerhardt (Woonsocket, RI, US)
- Jeffrey Musacchio (Sharon, MA, US)
- Jason F. Hill (Milford, MA, US)
- Sylvain G. Cormier (Mendon, MA)
Cpc classification
G01N2030/3038
PHYSICS
International classification
Abstract
Exemplary embodiments eliminate the need for column ovens in serial column chromatography arrangements and systems by using insulated sleeves. The insulated sleeves may encase individual chromatography columns or clusters of chromatography columns. The use of the insulated sleeves allows the chromatography columns to be positioned in close proximity to each other. This may decrease the overall size of a serial column chromatography arrangement and may reduce costs by not requiring the column ovens.
Claims
1-14. (canceled)
15. A multidimensional chromatography system, comprising: a first insulated chromatography column having an inlet and an outlet; a second insulated chromatography column having an inlet and an outlet; a first fluidic line fluidically coupled to the outlet of the first insulated chromatography column; a second fluidic line fluidically coupled to the outlet of the second insulated chromatography column; an analyte storage for storing fluid; an outlet valve having: a first position for directing output form the first insulated chromatography column to the analyte storage; a second position for directing flow from the analyte storage to the second insulated chromatography column.
16. The multidimensional chromatography system of claim 15, further comprising mobile phase heaters/coolers for the first insulated chromatography column and the second vacuum jacketed chromatography column.
17. The multidimensional chromatography system of claim 15, further comprising a pump for pumping the mobile phase out of the second fluidic line.
18. The multidimensional chromatography system of claim 15, further comprising an inlet fluidics cap having fluidics connections for the multidimensional chromatography system.
19. The multidimensional chromatography system of claim 18, further comprising a modulation cap to which the analyte storage is affixed or integrated.
20. The multidimensional chromatography system of claim 18, further comprising a modulation cap which contains the outlet valve.
21. A multidimensional chromatography column arrangement, comprising: multiple insulated liquid chromatography columns, each of the multiple insulated liquid chromatography columns having a respective inlet and a respective outlet; multiple fluidic lines, wherein each of the fluidic lines is fluidically coupled to an outlet of a respect one of the insulated liquid chromatography columns; a first cap fluidically coupled to the multiple insulated liquid chromatography columns on one end of the liquid chromatography columns; and a second cap fluidically coupled to the multiple insulated liquid chromatography columns on one end of the liquid chromatography columns.
22. The multidimensional chromatography column arrangement of claim 21, wherein the first cap is fluidically coupled to the inlets of the insulated liquid chromatography columns.
23. The multidimensional chromatography column arrangement 22, wherein the second cap is fluidically coupled to the outlets of the insulated liquid chromatography columns.
24. The multidimensional chromatography column arrangement of claim 22, wherein the first cap includes a valve for directing fluid flow.
25. The multidimensional chromatography column arrangement of claim 23, wherein the second cap includes a valve for directing fluid flow.
26. The multidimensional chromatography column arrangement of claim 21, further comprising one or more heaters for heating mobile phase.
27. The multidimensional chromatography column arrangement of claim 21, further comprising one or more coolers for cooling mobile phase.
28. The multidimensional chromatography column arrangement of claim 21, wherein the first cap includes a valve configured to direct mobile phase carrying a sample into a first of the insulated liquid chromatography columns.
29. The multidimensional chromatography column arrangement of claim 28, wherein the second caps includes a valve configured to direct output from the first of the insulated liquid chromatography columns to an analyte storage.
30. A multidimensional chromatography system, comprising: a first insulated chromatography column having an inlet and an outlet; a second insulated chromatography column having an inlet and an outlet; an analyte detector; an analyte storage for storing fluid; and valves configured for performing multidimensional chromatography.
31. The multidimensional chromatography system of claim 30, wherein the valves are configurable to direct a mobile phase containing a sample of analyte through the first insulated chromatography column and to direct at least a portion of the output from the first insulated chromatography column to the analyte storage.
32. The multidimensional chromatography system of claim 30, wherein the valves are configurable to direct a mobile phase containing a sample of analyte through the first insulated chromatography column and to direct at least a portion of the output from the first insulated chromatography column to the detector.
33. The multidimensional chromatography system of claim 32, wherein the valves are configurable to direct the mobile phase containing a sample of analyte stored in the analyte storage through the second insulated chromatography column.
34. The multidimensional chromatography system of claim 30, wherein the valves are configurable to direct the mobile phase to waste.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0019] One challenge with conventional serial column chromatography systems is their use of column ovens. The column ovens help to prevent thermal gradients from forming in the chromatography columns. Unfortunately, the column ovens are large and thus occupy a great deal of space, especially when each chromatography column requires its own column oven.
[0020] Exemplary embodiments eliminate the need for column ovens in serial column chromatography arrangements and systems by using insulating sleeves. The insulating sleeves may encase individual chromatography columns or clusters of chromatography columns. The use of the lower radial thickness insulating sleeves with sufficient insulating capability allows the chromatography columns to be positioned in close proximity to each other relative to conventional arrangements. This may decrease the overall size of a serial column chromatography arrangement or system and may reduce costs by not requiring the column ovens.
[0021] The chromatography columns of the exemplary embodiments may be liquid chromatography columns or supercritical fluid columns. The columns may be packed columns, open tubular columns, or packed capillary columns. Thermal radial gradients may be especially of interest to packed columns approximately 1 mm in internal diameter and above. The chromatography columns may be gas chromatography columns, but thermal gradients typically are less of an issue for gas chromatography columns.
[0022] The absence of the column ovens allows the chromatography columns to be arranged in close proximity, such as a longitudinally parallel cluster 100, as shown if
[0023] As will discussed below, in exemplary embodiments, the chromatography columns may have all of their inlets 110 arranged in a single direction with all of their outlets 112 arranged in the opposite direction in a given chromatography column cluster 100. Alternatively, the orientation of the inlets 120, 124 and 128 in the cluster 100 may vary (such as alternating among adjacent chromatography columns) as shown in
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[0025] The heaters/coolers 207 and 210, the column cluster 206 and the fluidic lines may be encased in a single insulating sleeve, or the chromatography columns in the column cluster may be individually encased in insulating sleeves to provide insulation. The insulating sleeves may be vacuum sleeves or may be sleeves of insulating material. Where the insulating sleeve is a vacuum sleeve, the vacuum area may be evacuated and in some cases, may then be filled with a gas of lower thermal conductivity than air, such as at least one of: helium, hydrogen, neon, nitrogen, oxygen, carbon dioxide, argon, sulfur hexafluoride, krypton, and xenon. The vacuum sleeve may be a tube having walls made of steel or titanium, and the vacuum area may be formed in an area between sealed walls of the tube. The insulating sleeve, instead of being a vacuum sleeve, may be made from an insulating material like polystyrene foam (Styrofoam), or more generally, any material exhibiting low thermal conductivity to act as an insulating member. Polymers such as polymethacrylate, silicone, urethane, polyolefins, polyamide, polysulfone, polyethyramide, polycarbonate, rubber, polyester, polyfluoroelastomers and polyethylene terephthalate, and the like, also may be used to form the insulating sleeve. Additionally, ceramics, such as aerogels, fibrous materials, such as methylcellulose, fiberglass and the like, may be used to form the insulating sleeve.
[0026] A controller 220 controls the inlet selection valve 202 and output selection valve as will be detailed below. The controller 220 may be, for example, a programmed microprocessor, electrical circuitry, a field programmable gate array (FPGA), an application specific integrated circuit (A SIC), a microcontroller, electrical circuitry or combinations thereof.
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[0029] The exemplary embodiments of
[0030] The inlet selection valve 502 of
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[0033] It should be appreciated the valve configuration of
[0034] The serial column arrangements need not be solely one where the flow passes in total from one column to the next in a serial sequence. The exemplary embodiments may also include embodiments for multidimensional chromatography.
[0035] During operation of the multidimensional chromatography system 600, mobile phase with a sample of analyte is pumped by pump 620 to the inlet fluidics cap 618 into chromatography column 602. The sample of analyte is separated by the chromatography column 602. The outlet of the chromatography column 602 is directed to waste or to the detector 624 via fluidic line 610. The pump 622 directs flow of a mobile phase through the second chromatography column 604 and then to the detector 624. When a portion of the separation from chromatography column 602 is to be subject to additional separation, the modulation cap 614 directs the output from chromatography column 602 to the analyte storage 616. The modulation cap 614 then directs flow from the pump 622 through the analyte storage 616 on to the second chromatography column 604, where the contents from the analyte storage are further separated. The output from chromatography column 604 may be passed to the detector 624.
[0036] While exemplary embodiments have been described herein, various changes in form and detail may be made without departing from the intended scope as defined in the appended claims.