IP Library Granted Patent US 12,484,998
Granted Patent B2
US 12,484,998 · App. 16/619,690 · Granted Dec 2, 2025

Cleaning, healing and regeneration of tissue and wounds

Inventors: Timothy Leighton (Southampton, GB); David Voegeli (Southampton, GB); Christopher Harling (Southampton, GB); Thomas Secker (Southampton, GB); Craig Dolder (Southampton, GB); Mengyang Zhu (Southampton, GB)
Assignee: SLOAN WATER TECHNOLOGY LIMITED
A61C17/20A61C17/024A61D5/00A61M3/0204A61M3/022A61M3/0233A61M3/0279A61M37/0092A61M1/77A61M1/85A61M1/92A61M1/94A61M35/00A61M2209/04A61M2250/00
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Quick Facts
Patent No.
US 12,484,998
App. No.
16/619,690
Granted
Dec 2, 2025
Kind
B2
Abstract

A method of treating human or animal tissue, the method comprising the step of: i. directing a stream of an aqueous liquid comprising gas bubbles excited by acoustic energy towards a wound or anatomical pocket in human or animal tissue, or towards an anatomical space or potential space in human or animal tissue, or towards soft or hard tissue in an oral cavity or elsewhere in the human or animal body, or towards tissue in a nasal cavity, or towards tissue associated with sinuses, eye, ear, digestive and genito-urinary systems, thereby to treat the human or animal tissue with the stream. The output stream can clean a wound in human or animal tissue, and can treat the wound by healing the wound, for example by stimulating fibroblasts in the wound tissue and causing, promoting or enhancing re-epithelialisation of epidermal tissue in the wound.

Claims (30)

1 . A system for treating human or animal tissue, comprising:

a conical body defining a chamber, the conical body extending between a base of the conical body and an outlet nozzle of the conical body, wherein the base has an inlet for flow of a liquid into the chamber and the outlet nozzle is at a conical tip of the conical body and is adapted to generate an output stream of liquid flow from the chamber for treating human or animal tissue;

an acoustic transducer associated with the conical body and adapted to introduce acoustic energy into the liquid within the chamber whereby the acoustic energy is present in the output stream;

a gas bubble generator adapted for providing gas bubbles in the output stream that are adapted to be excited by the acoustic energy, wherein the conical body and the outlet nozzle are adapted to have pressure amplitude reflection coefficients with respect to the acoustic energy in liquid within the chamber of −0.95 to −1.0; and

a liquid supply system adapted to supply the flow of the liquid through the inlet at a flow rate of 0.1 to 7 liters/minute,

wherein the outlet nozzle is adapted to generate an output stream of liquid flow having an average width of 0.25 to 20 mm, wherein the acoustic transducer is adapted to generate acoustic energy having a frequency of 0.1 to 5 MHz, and wherein the gas bubble generator is adapted to provide, in the output stream, bubbles having a radius of 0.5 to 40 μm.

2 . The system of claim 1 , wherein the liquid supply system is adapted to supply the liquid flow through the inlet at a flow rate of 0.1 to 0.75 liters/minute.

3 . The system of claim 1 , wherein the outlet nozzle is adapted to generate the output stream of liquid flow having an average width of 0.25 to 10 mm.

4 . The system of claim 1 , wherein the acoustic transducer is adapted to generate acoustic energy having a frequency of 0.5 to 5 MHz.

5 . The system of claim 1 , wherein the gas bubble generator is adapted to provide, in the output stream, gas bubbles having a radius of 0.6 to 20 μm.

6 . The system of claim 1 , wherein the conical body and the outlet nozzle are adapted to have pressure amplitude reflection coefficients with respect to acoustic energy in liquid within the chamber of −0.99 to −1.0.

7 . The system of claim 1 , further comprising a cup member having a closed end fitted to the outlet nozzle of the conical body, the cup member defining a second chamber and is adapted to receive the output stream into the second chamber from the closed end, the cup member having an open end with an annular rim that is adapted to form an annular contact against human tissue.

8 . The system of claim 7 , wherein the cup member and the outlet nozzle are configured so that an orientation of the outlet nozzle relative to the cup member is modifiable to adjust a direction of the output stream within the second chamber.

9 . The system of claim 7 , wherein the cup member is composed of a flexible material.

10 . The system of claim 7 , wherein the annular rim is adapted to form an annular seal against human tissue.

11 . The system of claim 10 , wherein the annular rim includes an annular groove or chamber therein adapted to provide suction for sealing against tissue.

12 . The system of claim 1 , further comprising a controller for the acoustic transducer, wherein the controller is adapted to provide a plurality of sequential operating phases for the acoustic transducer, the phases comprising a bubble generating phase in which the acoustic transducer is activated to generate bubbles in liquid within the chamber, a rest phase in which the acoustic transducer is inactive to allow the generated bubbles to flow together with the output stream out of the output nozzle, and an acoustic excitation phase in which the acoustic transducer is activated to acoustically excite the bubbles which have flowed out of the output nozzle, that activation occurring at a moment when the bubbles reach a surface to be cleaned, healed or regenerated.

13 . The system of claim 1 , wherein the acoustic transducer is adapted to provide the gas bubble generator.

14 . The system of claim 1 , wherein at least one of the acoustic transducer and the gas bubble generator is configured to be controlled such that the frequency of the acoustic energy generated by the acoustic transducer is sufficient to produce non-inertial cavitation on bubble walls of the gas bubbles generated by the gas bubble generator.

15 . The system of claim 14 , further comprising a controller connected to the at least one of the acoustic transducer and the gas bubble generator, wherein the controller is adapted to control the at least one of the acoustic transducer and the gas bubble generator such that the frequency of the acoustic energy generated by the acoustic transducer is sufficient to produce non-inertial cavitation on bubble walls of the gas bubbles generated by the gas bubble generator.

16 . The system of claim 1 , further comprising a Venturi or an outgasser configured to remove gas bubbles having radii more than 10% greater than a bubble radius configured to be in pulsation resonance with the frequency of the acoustic energy.

17 . A method of generating a liquid stream for treating human or animal tissue, comprising:

providing a conical body defining a chamber, the conical body extending between a base of the conical body and an outlet nozzle at a conical tip of the conical body;

inputting a flow of aqueous liquid into the chamber through an inlet at the base and generating an output stream of liquid flow from the chamber through the outlet nozzle, the output stream having a liquid flow rate of 0.1 to 7 liters/minute, and the output stream having an average width of 0.25 to 20 mm;

providing gas bubbles in the output stream, the gas bubbles having a radius of 0.5 to 40 μm;

introducing acoustic energy having a frequency of 0.1 to 5 MHz into the liquid within the chamber whereby the acoustic energy is present in the output stream and excites the gas bubbles, wherein the conical body and the outlet nozzle have pressure amplitude reflection coefficients with respect to the acoustic energy in the liquid within the chamber of −0.95 to −1.0; and

directing the output stream comprising the acoustically excited gas bubbles and acoustic energy towards a surface to be treated.

18 . The method of claim 17 , further comprising controlling at least one of an acoustic transducer generating the acoustic energy and a gas bubble generator generating the gas bubbles such that the frequency of the acoustic energy generated by the acoustic transducer is sufficient to produce non-inertial cavitation on bubble walls of the gas bubbles generated by the gas bubble generator.

19 . The method of claim 17 , wherein the acoustic energy is introduced into the liquid using an acoustic transducer, further comprising controlling the acoustic transducer to generate the gas bubbles and to provide the gas bubbles in the output stream.

20 . The method of claim 17 , further comprising removing, from the liquid, gas bubbles having radii more than 10% greater than a bubble radius configured to be in pulsation resonance with the frequency of the acoustic energy.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 10, 2020
From: LEIGHTON, TIMOTHY; VOEGELI, DAVID; HARLING, CHRISTOPHER; SECKER, THOMAS; DOLDER, CRAIG; ZHU, MENGYANG
To: SLOAN WATER TECHNOLOGY LIMITED
Reel/Frame 052895/0397 →
Priority Claims (1)
GB 1708901 · Jun 5, 2017 · national
Continuity (1)
Related Publication 20200164194A1 · May 28, 2020
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