IP Library Granted Patent US 12,488,973
Granted Patent B2
US 12,488,973 · App. 18/297,303 · Granted Dec 2, 2025

Flow control device

Inventors: David Sultana (Port Melbourne, AU); Danny Brezni (Port Melbourne, AU); Terrance Hettipathirana (Port Melbourne, AU); Bill Farrell (Port Melbourne, AU); Anthony Le Breton (Port Melbourne, AU)
Assignee: GLASS EXPANSION PTY. LIMITED
H01J49/045H01J49/105
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Quick Facts
Patent No.
US 12,488,973
App. No.
18/297,303
Granted
Dec 2, 2025
Kind
B2
Abstract

A flow control device for aerosolised sample delivery in an inductively coupled plasma (ICP) analytical system is provided. The device includes a body that at least in part defines a sample flow separating region, the sample flow separating region having a longitudinal flow direction and having an upstream end through which the aerosolised sample enters and a downstream end through which a modified aerosolised sample exits. The body further includes an injection duct having an opening adjacent to the sample flow separating region, the injection duct configured to direct a stream of gas in an injection direction to the sample flow separating region. The injection direction is angled relative to the longitudinal flow direction such that, upon introduction of the stream of gas through the opening, a vortex flow is generated in the sample flow separating region, the vortex flow having a direction counter to the direction of flow of the aerosolised sample to provide control of droplet size in the modified aerosolised sample.

Claims (22)

1 . A flow control device for aerosolised sample delivery in an inductively coupled plasma (ICP) analytical system, the device including:

a body that at least in part defines a sample flow separating region, the sample flow separating region having a longitudinal flow direction and having an upstream end through which the aerosolised sample enters and a downstream end through which a modified aerosolised sample exits,

the body including an injection duct having an opening adjacent to the sample flow separating region, the injection duct configured to direct a stream of gas in an injection direction to the sample flow separating region, the injection direction angled relative to the longitudinal flow direction such that, upon introduction of the stream of gas through the opening, a vortex flow is generated in the sample flow separating region, the vortex flow having a direction counter to the direction of flow of the aerosolised sample to provide control of droplet size in the modified aerosolised sample.

2 . The flow control device of claim 1 , configured to be disposed between a spray chamber and plasma in the ICP analytical system.

3 . The flow control device of claim 1 , further configured to receive a primary aerosolised sample flow from the spray chamber and to produce a secondary aerosolised sample flow.

4 . The flow control device of claim 1 , wherein the injection direction is substantially offset from a radial direction of the sample flow separating region, the degree of offset determining the characteristics of the vortex flow.

5 . The flow control device of claim 1 , wherein the injection direction is substantially tangential to the sample flow separating region.

6 . The flow control device of claim 1 , wherein a component of the injection direction is in the upstream direction of the sample flow, thereby resulting in the generated vortex flow having a direction counter to the direction of flow of the aerosolised sample.

7 . The flow control device of claim 1 , wherein the injection duct generates a gas jet flow into the sample flow separating region.

8 . The flow control device of claim 7 , wherein the injection duct has a reduced diameter portion adjacent the opening, thereby speeding up the stream of gas into said gas jet flow, wherein the generated gas jet flow is configured to further nebulise larger droplets contained in the aerosolised sample flow into smaller droplets and to retard the progress or prevent the passage of larger droplets in the aerosolised sample flow.

9 . The flow control device of claim 1 , wherein the injection duct is angled at between about 70° and about 88° relative to the longitudinal flow direction.

10 . The flow control device of claim 1 , wherein the flow control device is a unitary body adapted for attachment between the spray chamber and plasma in the ICP analytical system.

11 . The flow control device of claim 1 , wherein the flow control device includes a downstream portion, an upstream portion and an intermediate portion therebetween, wherein the intermediate portion provides, at least in part, the sample flow separating region.

12 . The flow control device of claim 11 , wherein the upstream portion is adapted to be connected to a spray chamber of the ICP analytical system, and the downstream portion is adapted to be connected to an inlet of a torch of the ICP analytical system.

13 . The flow control device of claim 11 , wherein the intermediate portion includes a collar portion projecting radially outwardly, wherein the injection duct extends through the collar portion.

14 . The flow control device of claim 13 , wherein the injection duct extends through a side wall of the collar portion.

15 . The flow control device of claim 14 , wherein the collar portion is of generally annular form with a truncated side, said truncated side forming said side wall through which the injection duct extends.

16 . The flow control device of claim 15 , wherein the truncated side has an angled planar facet, with the injection duct extending substantially perpendicular to the planar facet.

17 . The flow control device of claim 1 , wherein the flow control device is configured to be oriented substantially vertically, with an upward sample flow direction, during use in ICP analytical system, whereby larger droplets retarded or removed by the generated vortex flow are directed back upstream with the assistance of gravity towards a drain.

18 . The flow control device of claim 1 , wherein a flow rate of the stream of gas and/or the dimensions of the injection duct or the opening is selectable based on a sample to be analysed by the ICP analytical system.

19 . The flow control device of claim 1 , wherein the modified aerosolised sample flow substantially comprises droplets of less than about 5-6 μm.

20 . An inductively coupled plasma (ICP) analytical system, the ICP system including the flow control device of claim 1 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 10, 2023
From: SULTANA, DAVID; BREZNI, DANNY; HETTIPATHIRANA, TERRANCE; FARRELL, BILL; LE BRETON, ANTHONY
To: GLASS EXPANSION PTY. LIMITED
Reel/Frame 064204/0184 →
Priority Claims (1)
AU 2022900927 · Apr 8, 2022 · national
Continuity (1)
Related Publication 20230335385A1 · Oct 19, 2023
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