IP Library Granted Patent US 12680939
Granted Patent B2
US 12680939 · App. 18/467,376 · Granted Jul 14, 2026

Integrated flow sampling apparatus for a flow cytometry system

Inventors: Kuna Venkat Satya Rama Kishore (Charlotte, NC); Kaligaselvi Lenin (Charlotte, NC); Debendra Utkarsh (Charlotte, NC)
Assignee: HONEYWELL INTERNATIONAL INC.
G01N15/1404G01N15/01G01N2015/1006
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Quick Facts
Patent No.
US 12680939
App. No.
18/467,376
Granted
Jul 14, 2026
Kind
B2
Abstract

An apparatus and system for integrating flow cytometry measurements into a medical procedure. An example integrated flow sampling apparatus may include a discharge tube, fluidly connecting a catheter within a patient to a drainage bag. In addition, the apparatus may include an integrated flow sampling cassette. The integrated flow sampling cassette may include a bypass tube having two ends, each fluidly connected to the discharge tube. The bypass tube may further include a flow detection region enabling detection of a flow of discharge fluid through the bypass tube; an imaging region enabling detection of cells within the flow of discharge fluid; and a flow control valve enabling impedance of the flow of discharge fluid through the bypass tube. The apparatus may additionally include protrusions extending into the discharge tube and facilitating the entry of the discharge fluid into the bypass tube and subsequently back into the discharge tube.

Claims (53)

1 . An integrated flow sampling apparatus for obtaining cytometry measurements, comprising:

a discharge tube, fluidly connecting a catheter to a drainage bag, wherein a discharge fluid flows from the catheter to the drainage bag;

an integrated flow sampling cassette, comprising:

a bypass tube comprising a first end and a second end, wherein the first end and the second end are each fluidly connected to the discharge tube, the bypass tube further comprising:

a flow detection region enabling detection of a flow of discharge fluid through the bypass tube;

an imaging region enabling detection of structures within the flow of discharge fluid; and

a flow control valve enabling impedance of the flow of discharge fluid through the bypass tube;

a first protrusion extending from the first end of the bypass tube into the discharge tube at a first pre-determined angle such that the first protrusion directs a portion of the discharge fluid into the bypass tube, wherein the first protrusion extends from the first end of the bypass tube in an upstream direction along the flow of discharge fluid in the discharge tube; and

a second protrusion extending from the second end of the bypass tube into the discharge tube at a second pre-determined angle such that the second protrusion facilitates a re-entry of the discharge fluid into the discharge tube, wherein the second protrusion extends from the second end of the bypass tube in a downstream direction along the flow of the discharge fluid in the discharge tube.

2 . The integrated flow sampling apparatus of claim 1 , wherein the flow detection region comprises a thin membrane, wherein the thin membrane deforms in response to a change in pressure.

3 . The integrated flow sampling apparatus of claim 1 , wherein the flow detection region comprises a transparent membrane, enabling detection of flow through optical means.

4 . The integrated flow sampling apparatus of claim 1 , wherein the imaging region controls the flow of discharge fluid such that an external device may detect cells within the discharge fluid.

5 . The integrated flow sampling apparatus of claim 1 , wherein the imaging region is less than one square centimeter.

6 . The integrated flow sampling apparatus of claim 1 , wherein the imaging region is between 5.5 millimeters and 6.5 millimeters long, between 5.5 millimeters and 6.5 millimeters tall, and between 0.35 millimeters and 0.45 millimeters deep.

7 . The integrated flow sampling apparatus of claim 1 , wherein the flow control valve is a ball valve.

8 . The integrated flow sampling apparatus of claim 1 , wherein the flow control valve is controlled by an external device.

9 . The integrated flow sampling apparatus of claim 8 , wherein the external device is a flow cytometry device.

10 . The integrated flow sampling apparatus of claim 8 , wherein the integrated flow sampling cassette is defined to fit within a measurement slot on the external device.

11 . The integrated flow sampling apparatus of claim 1 , wherein the integrated flow sampling cassette comprises molded components.

12 . The integrated flow sampling apparatus of claim 11 , wherein the integrated flow sampling cassette comprises a plurality of molded components attached to form the bypass tube.

13 . The integrated flow sampling apparatus of claim 1 , further comprising a second flow detection region, wherein the flow detection region is positioned upstream from the imaging region and the second flow detection region is positioned downstream from the imaging region.

14 . The integrated flow sampling apparatus of claim 13 , wherein the external device measures a first pressure at the flow detection region and a second pressure at the second flow detection region and determines a flow rate based on the first pressure, the second pressure, and one or more dimensions of the bypass tube.

15 . The integrated flow sampling apparatus of claim 1 , wherein the first pre-determined angle is between 20 and 30 degrees.

16 . The integrated flow sampling apparatus of claim 1 , wherein the second pre-determined angle is between 20 and 30 degrees.

17 . An integrated flow cytometry measurement system, comprising:

a catheter inserted into a body of a patient;

a discharge tube, fluidly connecting the catheter to a drainage bag, wherein a discharge fluid flows from the catheter to the drainage bag;

an integrated flow sampling cassette, comprising:

a bypass tube comprising a first end and a second end, wherein the first end and the second end are each fluidly connected to the discharge tube, the bypass tube further comprising:

a flow detection region enabling detection of a flow of discharge fluid through the bypass tube;

an imaging region enabling detection of cells within the flow of discharge fluid; and

a flow control valve enabling impedance of the flow of discharge fluid through the bypass tube;

a first protrusion extending from the first end of the bypass tube into the discharge tube at a first pre-determined angle such that the first protrusion directs a portion of the discharge fluid into the bypass tube, wherein the first protrusion extends from the first end of the bypass tube in an upstream direction along the flow of discharge fluid in the discharge tube;

a second protrusion extending from the second end of the bypass tube into the discharge tube at a second pre-determined angle such that the second protrusion facilitates a re-entry of the discharge fluid into the discharge tube, wherein the second protrusion extends from the second end of the bypass tube in a downstream direction along the flow of the discharge fluid in the discharge tube; and

a flow cytometry device,

wherein the integrated flow sampling cassette is inserted into a measurement slot on the flow cytometry device, and

wherein the flow cytometry device determines a count of at least one cell type within the flow of discharge fluid.

18 . An integrated flow cassette for obtaining cytometry measurements, comprising:

a first molded component; and

a second molded component;

wherein at least one surface of the first molded component and/or the second molded component are etched to form a bypass tube, the bypass tube comprising:

a first end;

a second end; and

an imaging region,

wherein the first end and the second end are each fluidly connected to a primary flow tube, the primary flow tube facilitating a flow of a fluid comprising at least a portion of bodily fluid from a catheter to a discharge bag,

wherein the bypass tube defines a first protrusion that extends out from the first end of the bypass tube into the primary flow tube at a first pre-determined angle such that the first protrusion directs a subportion of the portion of bodily fluid into the bypass tube, wherein the first protrusion extends from the first end of the bypass tube in an upstream direction along the flow of the fluid in the primary flow tube,

wherein the bypass tube defines a second protrusion that extends out from the second end of the bypass tube into the primary flow tube at a second pre-determined angle such that the second protrusion facilitates a re-entry of the subportion of the portion of bodily fluid into the primary flow tube, wherein the second protrusion extends from the second end of the bypass tube in a downstream direction along the flow of the fluid in the primary flow tube,

wherein the imaging region enables detection of structures within the flow of the fluid by an external device, and

wherein the first molded component and the second molded component are attached, such that the bypass tube is formed in a space between the first molded component and the second molded component.

19 . The integrated flow cassette of claim 18 , wherein the external device is a flow cytometry device and the integrated flow cassette is designed to fit into a measurement slot on the flow cytometry device.

20 . The integrated flow cassette of claim 18 , wherein the bypass tube further comprises:

a flow detection region enabling detection of the flow of the fluid comprising at least the portion of bodily fluid through the bypass tube; and

a flow control valve enabling an impedance of the flow of the fluid comprising at least the portion of bodily fluid through the bypass tube.