CARBON DIOXIDE BASED CHROMATOGRAPHY SYSTEMS INCLUDING MULTIPLE PRESSURE CONTROL DEVICES
20180252683 ยท 2018-09-06
Inventors
Cpc classification
B01D15/163
PERFORMING OPERATIONS; TRANSPORTING
B01D15/40
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present disclosure relates to methodologies, systems and devices for controlling pressure of a mobile phase in a CO.sub.2-based chromatography system. A pump is used to pump a mobile phase containing CO.sub.2 and is located upstream of a chromatography column. A primary pressure control element is located downstream of the chromatography column and controls the pressure of the mobile phase within the column. A secondary pressure control element is located downstream of the primary pressure control element and maintains the pressure of the mobile phase above a threshold value between an outlet of the primary pressure control element and the point of detection within a detector. The detector is located downstream of both the primary pressure control element and the secondary pressure control element.
Claims
1. A system of controlling pressure of a mobile phase, the system comprising: a pump for pumping a mobile phase including CO.sub.2, the pump located upstream of a chromatography column; a primary pressure control element located downstream of the column and disposed to control pressure of the mobile phase within the column; a detector located downstream of the primary pressure control element; and a secondary pressure control element located downstream of the primary pressure control element and disposed to maintain a pressure of the mobile phase above a threshold value between an outlet of the primary pressure control element and the point of detection within the detector.
2. The system of claim 1, wherein the primary pressure control element is an active back pressure regulator.
3. The system of claim 1, wherein the secondary pressure control element maintains the pressure of the analyte between about 6.55 to 10.3 MPa (950 to 1500 psi).
4. The system of claim 1, wherein an outlet of the secondary pressure control element is located within 5.0 cm from the point of detection.
5. The system of claim 1, wherein the detector is a flame ionization detector, a mass spectrometer, or an aerosol-based detector.
6. The system of claim 1, wherein the secondary pressure control element prevents phase separation between CO.sub.2 and a liquid co-solvent while transporting the analyte from the primary pressure control element to the detector.
7. The system of claim 1, wherein the secondary pressure control element is incorporated into a section of tubing disposed between the outlet of the primary pressure control element and the point of detection within the detector.
8. The system of claim 7, wherein the secondary pressure control element has a diameter between 0.1 microns and 100 microns, and a length between 0.1 microns and 100 centimeters.
9. The system of claim 1, wherein the secondary pressure control element is a restrictor, a back pressure regulator, or a variable restrictor.
10. A method of controlling pressure of a mobile phase in a CO.sub.2-based chromatography system, the method comprising: controlling pressure of the mobile phase within a column of a CO.sub.2-based chromatography system using a primary pressure control element located downstream of the column; and maintaining a pressure of the mobile phase above a threshold value between an outlet of the primary pressure control element and the point of detection within a detector using a secondary pressure control element located downstream of the primary pressure control element.
11. The method of claim 10, wherein the primary pressure control element is a back pressure regulator.
12. The method of claim 10, wherein the secondary pressure control element maintains the pressure of the analyte between about 6.55 to 10.3 MPa (950 to 1500 psi).
13. The method of claim 10, wherein an outlet of the secondary pressure control element is located within 5.0 cm from the point of detection.
14. The method of claim 10, wherein the secondary pressure control element prevents phase separation between CO.sub.2 and a liquid co-solvent while transporting the analyte from the primary pressure control element to the detector.
15. The method of claim 10, wherein the secondary pressure control element is incorporated into a section of tubing disposed between the outlet of the primary pressure control element and the point of detection within the detector.
16. The method of claim 15, wherein the secondary pressure control element has a diameter between 0.1 microns to 100 microns, and a length between 0.1 microns and 100 centimeters.
17. The method of claim 10, wherein the secondary pressure control element is a BPR, restrictor, or variable restrictor.
18. A device for managing pressure within a CO.sub.2-based chromatography system, the device comprising: a pressure control element having a diameter between 0.1 microns and 100 microns, and a length between 0.1 microns and 100 centimeters; a first end of the pressure control element disposed to receive a fluid from a back pressure regulator; and a second end of the pressure control element disposed to transmit the fluid to a detector; wherein the pressure control element is disposed to maintain a pressure of the fluid above a threshold value.
19. The device of claim 18, wherein the diameter of the pressure control element is greater at the first end than at the second end.
20. The device of claim 18, wherein the pressure control element prevents phase separation between CO.sub.2 and a liquid co-solvent while transporting the fluid from the back pressure regulator to the detector.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The foregoing and other features and advantages provided by the present disclosure will be more fully understood from the following description of exemplary embodiments when read together with the accompanying drawings presented below.
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION OF THE TECHNOLOGY
[0022] Provided herein are methodologies, systems, and apparatus for controlling pressure of a mobile phase in a CO.sub.2-based chromatography system utilizing multiple pressure control devices. Interfacing analytical-scale CO.sub.2-based chromatography systems to low pressure detection (e.g., flame ionization detection or mass spectrometry) poses a unique challenge due to the intricacies of managing analyte and co-solvent solubility in carbon dioxide as the mobile phase transitions from a pressurized state to a gas or ambient pressure state. Mobile phase decompression often results in analyte precipitation, or analyte loss, which prevents accurate and repeatable detection. Also, when operating with a liquid co-solvent, the depressurized carbon dioxide no longer has the ability to dissolve the modifier. Therefore, after depressurizing, the mobile phase stream consists of pockets of gaseous CO.sub.2 pushing pockets of liquid modifier. This heterogeneous flow results in very inconsistent electrospray ionization (ESI) mass spectrometry (MS) spray and therefore inconsistent peak profile.
[0023] In one embodiment, employing an additional pressure regulation device or pressure control element in a CO.sub.2-based chromatography system allows for efficient full-flow introduction of the mobile phase stream to a low-pressure detector when employing a conventional back pressure regulator. The secondary pressure control device ensures mobile phase density all the way into the detector, thereby preventing phase separation and analyte precipitation, which may occur without a secondary pressure control device.
[0024]
[0025]
[0026]
[0027] The system also includes a secondary pressure control device 327 downstream of the primary pressure control device, or BPR 321. In some embodiments, the secondary pressure control device 327 is located as close as possible to the point of decompression inside the detector 323. In one embodiment, the outlet of the secondary pressure control element 327 can be located within 5.0 cm from the point of detection within the detector 323. In another embodiment, the secondary pressure control element 327 is incorporated into the section of tubing 325 disposed between the outlet of the primary pressure control element 321 and the point of detection within the detector 323. The secondary pressure control element 327 can be, for example, a restrictor, a back pressure regulator, or a variable restrictor. This particular example shows a secondary pressure control device 327 incorporated into a full-flow CO.sub.2-based chromatography system. The addition of a secondary pressure control device 327 maintains the CO.sub.2/co-solvent miscibility and improves analyte transport from the BPR 321 to the detector 323. The secondary pressure control device 327 addresses the limitations encountered with interfacing CO.sub.2-based chromatography to detection and helps prevent phase separation while transporting the analyte from the primary pressure control device or BPR 321 to the detector 323.
[0028] In one exemplary embodiment, the secondary pressure control device 327 maintains the pressure of the mobile phase above a threshold value between the outlet of the primary pressure control device 321 to the point of detection within the detector 323. In some embodiments, the secondary pressure control element maintains the pressure of the mobile phase between about 6.55 to 10.3 MPa (950 to 1,500 psi). The secondary pressure control device can include, for example, a BPR, a fixed restrictor, or a variable restrictor such as a thermally modulated variable restrictor. In some embodiments, the secondary pressure control element 327 prevents phase separation between CO.sub.2 and a liquid co-solvent while transporting the analyte from the primary pressure control element 321 to the detector 323. In some embodiments, the secondary pressure control element has a diameter between 0.1 microns and 100 microns, and a length between 0.1 microns and 100 centimeters.
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035] In step 903, the pressure downstream of the column maintained above a threshold value using a secondary pressure control element. The secondary pressure control element is located downstream of the primary pressure control element, and is configured to maintain the pressure of the mobile phase above a threshold value between an outlet of the primary pressure control element and an inlet of a detector. In some embodiments, the secondary pressure control element maintains the pressure of the mobile phase between about 6.55 to 10.3 MPa (or between about 950 to about 1500 psi). The outlet of the secondary pressure control element can be located within about 5.0 cm from the point of detection within the detector. The detector can be a flame ionization detector or a mass spectrometer. In other non-limiting examples, the detector can include an aerosol-based detector such as an evaporative light scattering detector, a condensation nucleation detector, or a charged aerosol detector. In some embodiments, the secondary pressure control element prevents phase separation between CO.sub.2 and a liquid co-solvent while transporting an analyte from the primary pressure control element to the detector. The secondary pressure control element can be incorporated into a section of tubing between the outlet of the primary pressure control element and the point of detection within the detector. In some embodiments, the secondary pressure control element is a restrictor and can have a diameter between 0.1 microns to 100 microns, and a length between 0.1 microns and 100 centimeters.
[0036] Exemplary flowcharts are provided herein for illustrative purposes and are non-limiting examples of methods. One of ordinary skill in the art will recognize that exemplary methods may include more or fewer steps than those illustrated in the exemplary flowcharts, and that the steps in the exemplary flowcharts may be performed in a different order than the order shown in the illustrative flowcharts.
[0037] In alternative embodiments, the techniques described above with respect to pressure control elements used in CO.sub.2-based chromatography systems may be applicable to pressure control elements used in other types of chromatography systems that include mobile phases that vary greatly in density with minor changes in temperature. For example, a mobile phase including methanol at extremely high pressures may in some instances benefit from added temperature control. In describing exemplary embodiments, specific terminology is used for the sake of clarity. For purposes of description, each specific term is intended to at least include all technical and functional equivalents that operate in a similar manner to accomplish a similar purpose. Additionally, in some instances where a particular exemplary embodiment includes a plurality of system elements, device components or method steps, those elements, components or steps may be replaced with a single element, component or step. Likewise, a single element, component or step may be replaced with a plurality of elements, components or steps that serve the same purpose. Moreover, while exemplary embodiments have been shown and described with references to particular embodiments thereof, those of ordinary skill in the art will understand that various substitutions and alterations in form and detail may be made therein without departing from the scope of the invention. Further still, other aspects, functions and advantages are also within the scope of the invention.