IP Library Granted Patent US 12,313,645
Granted Patent B2
US 12,313,645 · App. 17/997,067 · Granted May 27, 2025

Measurement cell and centrifugal sedimentation-type particle-size distribution measuring device using said measurement cell

Inventor: Tetsuji Yamaguchi (Kyoto, JP)
Assignee: HORIBA, LTD.
G01N9/30B04B1/08G01N35/04G01N35/1009G01N2035/0405
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Quick Facts
Patent No.
US 12,313,645
App. No.
17/997,067
Granted
May 27, 2025
Kind
B2
Abstract

A measurement accuracy of a particle size distribution measuring device that performs a particle size distribution measurement in a line start mode is improved by a measurement cell used in a line start mode of a centrifugal sedimentation type particle size distribution measuring device that includes a cell main body and a cell cap. The cell main body has an opening provided on one end and stores therein a density gradient liquid WDGS. The cell cap closes the opening of the cell main body and has an internal passage R provided therein for holding a sample liquid WSS. When an application of a centrifugal force is received, the sample liquid WSS is introduced from the internal passage R into the density gradient liquid WDGS.

Claims (36)

1. A measurement cell used in a line start mode of a centrifugal sedimentation type particle size distribution measuring device, the measurement cell comprising:

a cell main body that has an opening on one end and that stores therein a density gradient liquid that is a solution having a density gradient;

a cell cap that closes the opening of the cell main body and that is provided with an internal passage for holding a sample liquid, wherein

the sample liquid held in the internal passage of the cell cap is introduced into the density gradient liquid in the cell body through the internal passage by receiving an application of a centrifugal force.

2. The measurement cell according to claim 1 , wherein

the internal passage has a sample inlet provided on one end and a sample outlet provided on another end, and

with the cell cap attached to the cell main body, the sample inlet is positioned external of the cell main body and the sample output is positioned internal of the cell main body.

3. The measurement cell according to claim 2 , wherein

the internal passage includes a liquid reservoir that holds the sample liquid introduced from the sample inlet, and a main passage communicating with the liquid reservoir and communicating with the sample outlet, and

when an application of a centrifugal force is received, the sample liquid held in the liquid reservoir flows into the main passage, passes through the main passage, and is introduced into the density gradient liquid.

4. The measurement cell according to claim 3 , wherein the main passage includes a small diameter passage portion communicating with the liquid reservoir, and a large diameter passage portion provided downstream of the small diameter passage portion and communicating with the sample outlet.

5. The measurement cell according to claim 3 , wherein

the internal passage further includes an inlet passage portion that communicates with the sample inlet and the liquid reservoir, and

the inlet passage portion is provided along a direction of a rotating shaft of the measurement cell, and

the main passage is provided along a direction of a centrifugal force applied to the measurement cell.

6. The measurement cell according to claim 3 , wherein

the main passage is connected to an upper part of the liquid reservoir, and

the liquid reservoir has an inclined surface inclined upward toward the main passage on a side connected with the main passage.

7. The measurement cell according to claim 6 , wherein the liquid reservoir has a conical shape or a partial conical shape tapered toward a bottom.

8. The measurement cell according to claim 1 , wherein, when the cell cap is attached to the cell main body, a space is ensured between the cell cap and the density gradient liquid.

9. The measurement cell according to claim 1 , wherein the cell main body and the cell cap are provided with a restricting mechanism that restricts an orientation in which the cell cap is attached to the cell main body.

10. A centrifugal sedimentation type particle size distribution measuring device comprising:

the measurement cell according to claim 1 ; and

a cell rotating mechanism that rotates the measurement cell in such a manner that a centrifugal force in a direction from a low density side toward a high density side of the density gradient is exerted on the measurement cell.

11. The centrifugal sedimentation type particle size distribution measuring device according to claim 10 , wherein

the cell rotating mechanism includes a cell holder to which the measurement cell is attached,

the measurement cell is configured to be removable from the cell holder, and

the measurement cell and the cell holder are provided with a restricting mechanism that restricts an orientation in which the measurement cell is attached to the cell holder.

12. The measurement cell according to claim 3 , wherein

the internal passage further includes an inlet passage portion that communicates with the sample inlet and the liquid reservoir,

the main passage is provided along a longitudinal direction of the measurement cell, and

the inlet passage portion is provided along a direction inclined with respect to the main passage.

13. The measurement cell according to claim 3 , wherein

the internal passage further includes an inlet passage portion that communicates with the sample inlet and the liquid reservoir,

the main passage is provided along a longitudinal direction of the measurement cell, and

the inlet passage portion is provided along a direction orthogonal with respect to the main passage.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 25, 2022
From: YAMAGUCHI, TETSUJI
To: HORIBA, LTD.
Reel/Frame 061530/0392 →
Priority Claims (1)
JP 2020-079762 · Apr 28, 2020 · national
Continuity (1)
Related Publication 20230160801A1 · May 25, 2023
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