Patent classifications
B01D15/24
Preparative separation-purification system for capturing target components
In a preparative separation-purification system for passing a solution containing a target component through a trap column to capture the target component in the column, and for subsequently passing an eluting solvent through the column to elute the captured component and collect it in a container, a dilution passage is merged with a collection passage for sending an eluate from the outlet end of the trap column to the collection container, and a diluting liquid is intermittently introduced through the dilution passage into the collection passage. The diluting liquid lowers the concentration of the target component in the eluate and impedes the deposition of the target component. Thus, clogging of the passage due to the deposition of the target component eluted from the trap column is effectively prevented.
METHODS FOR CHARACTERIZING HOST-CELL PROTEINS
Methods for characterizing host-cell proteins in a sample matrix are provided.
METHODS FOR CHARACTERIZING HOST-CELL PROTEINS
Methods for characterizing host-cell proteins in a sample matrix are provided.
BUFFERED VINEGAR PRODUCTS WITH REDUCED COLOR, ODOR, AND FLAVOR AND METHODS OF PRODUCING THE SAME
Embodiments of the present disclosure provide improved buffered vinegar products having substantially reduced color, odor, and flavor, and methods to produce the same. The methods include combining a buffered vinegar product with an activated carbon in a batch or continuous process. The methods can be configured to maintain a total acetate content of the buffered vinegar product.
BUFFERED VINEGAR PRODUCTS WITH REDUCED COLOR, ODOR, AND FLAVOR AND METHODS OF PRODUCING THE SAME
Embodiments of the present disclosure provide improved buffered vinegar products having substantially reduced color, odor, and flavor, and methods to produce the same. The methods include combining a buffered vinegar product with an activated carbon in a batch or continuous process. The methods can be configured to maintain a total acetate content of the buffered vinegar product.
NON-CONTIGUOUS SAMPLE FRACTIONATING AND CONCATENATING DEVICE AND DUAL ONLINE MULTIDIMENSIONAL LIQUID CHROMATOGRAPHY SYSTEM HAVING THE SAME
Disclosed are non-contiguous sample fractionating and concatenating device and a dual online multidimensional liquid chromatography system having the same. The non-contiguous sample fractionating and concatenating device according to an embodiment of the present disclosure includes a sample supply module which supplies a sample to be analyzed, and a sample fractionation module connected to the sample supply module, and which is continuously supplied with the sample, sets a plurality of unit sample supply times obtained by equally dividing a total sample supply time during which the sample is supplied from the sample supply module, sets a plurality of unit fractionation intervals obtained by equally dividing each of the plurality of unit sample supply times, and concatenates and stores the sample supplied during corresponding unit fractionation intervals within each unit sample supply time to acquire a plurality of fractions.
Methods and devices for open-bed atmospheric collection for supercritical fluid chromatography
A supercritical fluid chromatography system comprises a first pump for pumping a first flow stream comprising a compressible fluid and a second pump for pumping a second flow stream comprising a modifier fluid. The second pump is in parallel with the first pump. A column is located in a combined flow stream. The column is located downstream of the first and second pumps. The combined flow stream comprises the first flow stream, the second flow stream, and a sample. A detector is located downstream of the column. A gas-liquid separator is located downstream of the detector. The gas-liquid separator is configured to vent a majority of the compressible fluid while maintaining a majority of the sample, thus preventing aerosolization of the flow stream and minimizing sample loss as well as cross contamination. An open bed collector is located after the gas-liquid separator.
Methods and devices for open-bed atmospheric collection for supercritical fluid chromatography
A supercritical fluid chromatography system comprises a first pump for pumping a first flow stream comprising a compressible fluid and a second pump for pumping a second flow stream comprising a modifier fluid. The second pump is in parallel with the first pump. A column is located in a combined flow stream. The column is located downstream of the first and second pumps. The combined flow stream comprises the first flow stream, the second flow stream, and a sample. A detector is located downstream of the column. A gas-liquid separator is located downstream of the detector. The gas-liquid separator is configured to vent a majority of the compressible fluid while maintaining a majority of the sample, thus preventing aerosolization of the flow stream and minimizing sample loss as well as cross contamination. An open bed collector is located after the gas-liquid separator.
Autosampler
An autosampler includes: a sample cooling unit that is brought into thermally contact with a bottom surface of a sample rack so as to cool a sample accommodated in the sample rack; a condensed water receiver that has at least one hole on a bottom surface thereof, and is provided below the sample rack for receiving water condensed around the sample rack; a discharging passage configured in such a manner that a droplet falling from the at least one hole flows therein.
Autosampler
An autosampler includes: a sample cooling unit that is brought into thermally contact with a bottom surface of a sample rack so as to cool a sample accommodated in the sample rack; a condensed water receiver that has at least one hole on a bottom surface thereof, and is provided below the sample rack for receiving water condensed around the sample rack; a discharging passage configured in such a manner that a droplet falling from the at least one hole flows therein.