IP Library Granted Patent US 12,429,464
Granted Patent B2
US 12,429,464 · App. 18/109,824 · Granted Sep 30, 2025

Differential refractometer for gradient chromatography

Inventor: Daniel I. Some (Atlit, IL)
Assignee: Wyatt Technology, LLC
G01N30/74G01N30/32G01N2030/027G01N2030/324G01N2030/326
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Quick Facts
Patent No.
US 12,429,464
App. No.
18/109,824
Granted
Sep 30, 2025
Kind
B2
Abstract

The present disclosure describes a differential refractometer for gradient chromatography. In an exemplary embodiment, the differential refractometer includes a solvent delay volume, an eluent flow meter coupled to an eluent inlet of a sample cell, a solvent flow regulator coupled to an outlet of the solvent delay volume and coupled to a solvent inlet of a reference cell, an instrument controller configured to receive the eluent flow rate from the eluent flow meter, configured to receive the solvent flow rate from the solvent flow regulator, configured to receive a flow rate ratio from a flow rate ratio data source, wherein the flow rate ratio indicates a ratio of the eluent flow rate to the solvent flow rate, and an optical bench configured to measure a difference between a refractive index of the eluent present in the sample cell and a refractive index of the solvent present in the reference cell.

Claims (38)

1. A differential refractometer comprising:

a solvent delay volume configured to be coupled to an outlet of a chromatography pump;

an eluent flow meter configured to be coupled to an outlet of a chromatography column and coupled to an eluent inlet of a sample cell,

wherein the eluent flow meter is configured to measure an eluent flow rate of an eluent flowing through the sample cell;

a solvent flow regulator coupled to an outlet of the solvent delay volume and coupled to a solvent inlet of a reference cell,

wherein the solvent flow regulator is configured to measure and to regulate a solvent flow rate of a solvent flowing through the reference cell;

an instrument controller

configured to receive the eluent flow rate from the eluent flow meter,

configured to receive the solvent flow rate from the solvent flow regulator,

configured to receive a flow rate ratio from a flow rate ratio data source,

wherein the flow rate ratio indicates a ratio of the eluent flow rate to the solvent flow rate, and

configured to transmit a flow command to the solvent flow regulator to achieve the flow rate ratio; and

an optical bench configured to measure, in response to receiving from the instrument controller a signal indicating that the flow rate ratio has been achieved, a difference between a refractive index of the eluent present in the sample cell and a refractive index of the solvent present in the reference cell, wherein the flow rate ratio is a ratio of a total inclusion volume in the chromatography column to a total inclusion volume in the solvent delay column.

2. The differential refractometer of claim 1

wherein the flow rate ratio is a ratio of a void volume in the chromatography column to a void volume in the solvent delay column.

3. The differential refractometer of claim 1

wherein the flow rate ratio is a ratio of

a sum of a void volume in the chromatography column, a volume of tubing coupled to the chromatography column, and a volume of the eluent flow meter, to

a sum of a void volume in the solvent delay column, a volume of tubing coupled to the solvent delay column, and a volume of the solvent flow regulator.

4. The differential refractometer of claim 1

wherein the flow rate ratio is a ratio of

a sum of a total inclusion volume in the chromatography column, a volume of tubing coupled to the chromatography column, and a volume of the eluent flow meter, to

a sum of a total inclusion volume in the solvent delay column, a volume of tubing coupled to the solvent delay column, and a volume of the solvent flow regulator.

5. A differential refractometer comprising:

a solvent delay volume configured to be coupled to an outlet of a chromatography pump;

an eluent flow meter configured to be coupled to an outlet of a chromatography column and coupled to an eluent inlet of a sample cell,

wherein the eluent flow meter is configured to measure an eluent flow rate of an eluent flowing through the sample cell;

a solvent flow regulator coupled to an outlet of the solvent delay volume and coupled to a solvent inlet of a reference cell,

wherein the solvent flow regulator is configured to measure and to regulate a solvent flow rate of a solvent flowing through the reference cell;

an instrument controller

configured to receive the eluent flow rate from the eluent flow meter,

configured to receive the solvent flow rate from the solvent flow regulator,

configured to receive a flow rate ratio from a flow rate ratio data source,

wherein the flow rate ratio indicates a ratio of the eluent flow rate to the solvent flow rate, and

configured to transmit a flow command to the solvent flow regulator to achieve the flow rate ratio; and

an optical bench configured to measure, in response to receiving from the instrument controller a signal indicating that the flow rate ratio has been achieved, a difference between a refractive index of the eluent present in the sample cell and a refractive index of the solvent present in the reference cell, wherein the flow rate ratio is a ratio of

a sum of a total inclusion volume in the chromatography column, a volume of tubing coupled to the chromatography column, and a volume of the eluent flow meter, to

a sum of a total inclusion volume in the solvent delay column, a volume of tubing coupled to the solvent delay column, and a volume of the solvent flow regulator.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 17, 2023
From: SOME, DANIEL I.
To: WYATT TECHNOLOGY, LLC
Reel/Frame 064623/0306 →
Continuity (3)
Continuation In Part 17383426 · Jul 22, 2021
Provisional Application 63055263 · Jul 22, 2020
Related Publication 20230194483A1 · Jun 22, 2023
References Cited (2)
US 20160018326A1 · Jeanotte · 2016 [cited by examiner]
US 20160077065A1 · Okura · 2016 [cited by examiner]