IP Library › Granted Patent US 12,605,476
Granted Patent B2
US 12,605,476 · App. 18/136,111 · Granted Apr 21, 2026

Ultrasound gel-treating stations, systems, and methods

Inventor: Matthew J. Prince (Herriman, UT)
Assignee: Bard Access Systems, Inc.
A61L2/10A61L2/24A61L2/26A61B8/4281A61L2202/11A61L2202/23
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Quick Facts
Patent No.
US 12,605,476
App. No.
18/136,111
Granted
Apr 21, 2026
Kind
B2
Abstract

Ultrasound gel-treating stations, systems, and methods enable at least germicidal ultraviolet (“UV”)-light treatment of ultrasound gel. For example, an ultrasound gel-treating station can include a housing, a cavity within the housing, and one or more UV-light sources disposed in the cavity or the housing about the cavity. The cavity within the housing can be configured to hold one or more bottles of ultrasound gel. The one-or-more UV-light sources can be configured for irradiating the one-or-more bottles of ultrasound gel with germicidal radiation when the one-or-more bottles of ultrasound gel are disposed in the cavity. Heat dissipated by the one-or-more UV-light sources can warm the one-or-more bottles of ultrasound gel. Additionally or alternatively, the ultrasound gel-treating station can further include one or more heating elements disposed in the cavity or the housing about the cavity for warming the one-or-more bottles of ultrasound gel.

Claims (37)

1 . An ultrasound gel-treating station, comprising:

a housing;

a cavity within the housing configured to hold one or more bottles of ultrasound gel;

one or more heating elements disposed in the cavity or the housing about the cavity for warming one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity;

and one or more ultraviolet (“UV”)-light sources disposed in the cavity or the housing about the cavity for irradiating the one or more bottles of ultrasound gel with germicidal radiation configured to disinfect without causing damage to the one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity.

2 . The ultrasound gel-treating station of claim 1 , further comprising a cover for covering the cavity when at least the one or more bottles of ultrasound gel are disposed in the cavity and being warmed, irradiated, or both warmed and irradiated.

3 . The ultrasound gel-treating station of claim 2 , wherein the ultrasound gel-treating station is configured to stop irradiating the one or more bottles of ultrasound gel when the cavity is uncovered.

4 . The ultrasound gel-treating station of claim 1 , further comprising a microcontroller configured for operating the ultrasound gel-treating station, the microcontroller disposed within the housing with a sensor module including one or more sensors configured to sense conditions in the cavity for starting, stopping, or adjusting the one or more heating elements or the one or more UV-light sources.

5 . The ultrasound gel-treating station of claim 4 , wherein the microcontroller is further coupled to one or more visual indicators disposed in the housing for indicating when the one or more bottles of ultrasound gel are being warmed, irradiated, both warmed and irradiated, or subsequent thereto.

6 . The ultrasound gel-treating station of claim 4 , wherein the microcontroller is further coupled to a timer disposed in the housing for indicating when the one or more bottles of ultrasound gel will be warm, disinfected, or both warmed and disinfected.

7 . The ultrasound gel-treating station of claim 1 , further comprising an actuator disposed in the housing for lifting the one or more bottles of ultrasound gel at least partially out of the ultrasound gel-treating station.

8 . The ultrasound gel-treating station of claim 1 , wherein the ultrasound gel-treating station is integrated into a roll stand or cart.

9 . An ultrasound gel-treating station, comprising:

a housing;

a cavity within the housing configured to hold the one or more bottles of ultrasound gel;

one or more ultraviolet (“UV”)-light sources disposed in the cavity or the housing about the cavity for irradiating the one or more bottles of ultrasound gel with germicidal radiation configured to disinfect without causing damage to the one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity.

10 . The ultrasound gel-treating station of claim 9 , wherein heat dissipated by the one or more UV-light sources warms the one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity.

11 . The ultrasound gel-treating station of claim 9 , further comprising a cover for covering the cavity when at least the one or more bottles of ultrasound gel are disposed in the cavity and being irradiated.

12 . The ultrasound gel-treating station of claim 11 , wherein the ultrasound gel-treating station is configured to stop irradiating the one or more bottles of ultrasound gel when the cavity is uncovered.

13 . The ultrasound gel-treating station of claim 9 , further comprising a microcontroller configured for operating the ultrasound gel-treating station, the microcontroller disposed within the housing with a sensor module including one or more sensors configured to sense conditions in the cavity for starting, stopping, or adjusting the one or more UV-light sources.

14 . The ultrasound gel-treating station of claim 13 , wherein the microcontroller is further coupled to one or more visual indicators disposed in the housing for indicating when the one or more bottles of ultrasound gel are being irradiated.

15 . The ultrasound gel-treating station of claim 13 , wherein the microcontroller is further coupled to a timer disposed in the housing for indicating when the one or more bottles of ultrasound gel will be disinfected.

16 . The ultrasound gel-treating station of claim 9 , further comprising an actuator disposed in the housing for lifting the one or more bottles of ultrasound gel at least partially out of the ultrasound gel-treating station.

17 . An ultrasound gel-treating system, comprising:

one or more bottles of ultrasound gel, each bottle of the one or more bottles formed of a pliable polymeric material sufficiently transparent to transmit ultraviolet (“UV”) light therethrough; and

an ultrasound gel-treating station including:

a housing;

a cavity within the housing configured to hold the one or more bottles of ultrasound gel; and

one or more ultraviolet (“UV”)-light sources disposed in the cavity or the housing about the cavity for irradiating the one or more bottles of ultrasound gel with germicidal radiation configured to disinfect without causing damage to the one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity.

18 . The ultrasound gel-treating system of claim 17 , the ultrasound gel-treating station further comprising one or more heating elements disposed in the cavity or the housing about the cavity for warming the one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity.

19 . The ultrasound gel-treating system of claim 17 , wherein heat dissipated by the one or more UV-light sources warms the one or more bottles of ultrasound gel when the one or more bottles of ultrasound gel are disposed in the cavity.

20 . The ultrasound gel-treating system of claim 17 , the ultrasound gel-treating station further comprising a cover for covering the cavity when at least the one or more bottles of ultrasound gel are disposed in the cavity and being irradiated.

21 . The ultrasound gel-treating system of claim 17 , wherein the ultrasound gel-treating station is configured to stop irradiating the one or more bottles of ultrasound gel when the cavity is uncovered.

22 . The ultrasound gel-treating system of claim 17 , the ultrasound gel-treating station further comprising a microcontroller configured for operating the ultrasound gel-treating station, the microcontroller disposed within the housing with a sensor module including one or more sensors configured to sense conditions in the cavity for starting, stopping, or adjusting the one or more UV-light sources.

23 . The ultrasound gel-treating system of claim 17 , the ultrasound gel-treating station further comprising an actuator disposed in the housing for lifting the one or more bottles of ultrasound gel at least partially out of the ultrasound gel-treating station.

24 . The ultrasound gel-treating system of claim 17 , wherein the germicidal radiation is selected from broad spectrum UV-visible light, broad spectrum UV light, UVA light, UVB light, UVC light, blue light, and modulated light thereof, wherein the modulated light is modulated with respect to frequency, power, duration, or a combination thereof.

25 . The ultrasound gel-treating system of claim 17 , wherein the pliable polymeric material of which the one or more bottles are formed is selected from a polycarbonate, a polyethylene terephthalate, a polyvinyl chloride, a polyurethane, a poly (methyl methacrylate), a polyimide, a polyetherimide, and a cyclic olefin polymer, the pliable polymeric material optionally including one or more comonomer residues, one or more plasticizers, or a combination thereof.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 23, 2024
From: PRINCE, MATTHEW J.
To: BARD ACCESS SYSTEMS, INC.
Reel/Frame 066548/0620 →
Continuity (1)
Related Publication 20240350688A1 · Oct 24, 2024
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