IP Library › Granted Patent US 11,185,719
Granted Patent B2
US 11,185,719 · App. 14/600,782 · Granted Nov 30, 2021

Methods and systems for controlling and acoustic energy deposition in various media

Inventors: Michael H. Slayton (Mesa, AZ); Paul Jaeger (Mesa, AZ)
Assignee: Guided Therapy Systems LLC
A61N7/02A61B17/225A61B17/50A61H23/008A61N7/00A61N2007/0008A61N2007/0013A61N2007/0017A61N2007/0034A61N2007/0073
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Quick Facts
Patent No.
US 11,185,719
App. No.
14/600,782
Granted
Nov 30, 2021
Kind
B2
Abstract

A system and method for controlling acoustic energy deposition in various media or objects are disclosed. The system and method can generate an acousto-mechanical or acousto-elastic effect in the various media or objects. The acousto-mechanical or acousto-elastic effect can induce a fragmentation of the media or objects.

Claims (44)

1. A method of inducing an acousto-mechanical effect in a target zone of a medium, the method comprising:

a) coupling an ultrasound energy source to the target zone of the medium, the ultrasound energy source configured to produce a pulsed first ultrasound energy having a frequency of between 100 kHz and 200 MHz and a pulse duration of between 1 nanosecond and 1 millisecond;

b) initiating an acousto-mechanical effect in the target zone by directing from 500 nJ to 5 J of the pulsed first ultrasound energy from the ultrasound energy source into the target zone of the medium.

2. The method of claim 1 , wherein the pulse duration is between 1 nanosecond and 10 microseconds.

3. The method of claim 1 , wherein the ultrasound frequency is between 1 MHz and 30 MHz.

4. The method of claim 1 , the method further comprising:

c) subsequent to step b), directing a second ultrasound energy from the ultrasound energy source or a second ultrasound energy source having an ultrasound pulse duration of at least 100 μs into the target zone, thereby initiating a second effect in the target zone.

5. The method of claim 4 , wherein the second effect is a cavitational effect or a thermal effect.

6. The method of claim 4 , the method further comprising repeating step b) and step c) in an alternating fashion.

7. The method of claim 1 , the method further comprising:

d) prior to step b), directing a third ultrasound energy from the ultrasound energy source or a second ultrasound energy source having an ultrasound pulse duration of at least 100 μs into the target zone, thereby initiating a third effect in the target zone.

8. The method of claim 7 , wherein the third effect is altering an acoustic impedance of the target zone, thereby creating an acoustic impedance mismatch between the target zone and a portion of the medium outside the target zone.

9. The method of claim 1 , wherein the acousto-mechanical effect exceeds a fragmentation threshold of the medium.

10. The method of claim 1 , wherein the 500 nJ to 5 J of the pulsed first ultrasound energy directed into the target zone of the medium in step b) is a single ultrasound pulse.

11. A method of inducing an acousto-mechanical effect in an object embedded in a medium, the method comprising:

a) coupling an ultrasound energy source to the object, the ultrasound energy source configured to produce a pulsed first ultrasound energy having a frequency of between 100 kHz and 200 MHz and a pulse duration of between 1 nanosecond and 1 millisecond;

b) initiating an acousto-mechanical effect in the object that exceeds a fragmentation threshold of the object by directing from 500 nJ to 5 J of the pulsed first ultrasound energy from the ultrasound energy source into the object.

12. The method of claim 11 , wherein the pulse duration is between 1 ns and 10 μs.

13. The method of claim 11 , wherein the ultrasound frequency is between 1 MHz and 30 MHz.

14. The method of claim 11 , the method further comprising:

c) subsequent to step b), directing a second ultrasound energy from the ultrasound energy source or a second ultrasound energy source having an ultrasound pulse duration of at least 100 μs into the medium, thereby initiating a second effect in the medium.

15. The method of claim 14 , wherein the second effect is a cavitational effect or a thermal effect.

16. The method of claim 11 , wherein the pulsed first ultrasound energy is a single ultrasound pulse.

17. The method of claim 11 , wherein the object is selected from the group consisting of a bone fragment, a kidney stone, a gallstone, a tear-duct stone, a urinary bladder stone, a rhinolith, an enterolith, a salivary duct calculus, a tonsillith, shrapnel, a plastic particle, a sliver of wood, a metal particle, a metal oxide particle, a portion of a medical device, a pencil lead, a pigment particle, scar tissue, a melanocyte, a sebaceous gland, a hair, a piece of cartilage, a cancerous tumor, a benign tumor, a fat cell, a muscle cell, and combinations thereof.

18. The method of claim 11 , wherein the medium is subcutaneous tissue.

19. An ultrasound treatment system comprising:

an ultrasound source configured to emit a propagating ultrasound energy having a propagating ultrasound pulse duration between 1 nanosecond and 1 millisecond, a propagating ultrasound pulse power ranging from 1 kW to 50 kW, and a propagating ultrasound frequency between 100 kHz and 200 MHz;

a control system configured to initiate an acousto-mechanical effect within a target zone within a medium by directing the ultrasound energy source to emit the propagating ultrasound energy to the target zone at an intensity gain between 500 and 25,000.

20. A method of treating a target zone of a medium, the method comprising:

a) coupling an ultrasound energy source to the target zone of the medium; and

b) initiating, using a single ultrasound energy pulse from the ultrasound energy source, an acousto-mechanical effect in the target zone that exceeds a fragmentation threshold of the medium.

21. A method of treating an object embedded in a medium, the method comprising:

a) coupling an ultrasound energy source to the object embedded in the medium; and

b) initiating, using a single ultrasound energy pulse from the ultrasound energy source, an acousto-mechanical effect in the object that exceeds a fragmentation threshold of the object.

22. A method of inducing an acousto-mechanical effect in a target zone of a medium, the method comprising:

a) coupling an ultrasound energy source to the target zone of the medium, the ultrasound energy source configured to produce a pulsed first ultrasound energy having a frequency of between 100 kHz and 200 MHz, a pulse duration of between 1 nanosecond and 1 millisecond, and a power of between 1 kW and 50 kW;

b) initiating an acousto-mechanical effect in the target zone of the medium by directing the pulsed first ultrasound energy from the ultrasound energy source into the target zone.

23. A method of inducing an acousto-mechanical effect in an object embedded in a medium, the method comprising:

a) coupling an ultrasound energy source to the object, the ultrasound energy source configured to produce a pulsed first ultrasound energy having a frequency of between 100 kHz and 200 MHz, a pulse duration of between 1 nanosecond and 1 millisecond, and a power of between 1 kW and 50 kW;

b) initiating an acousto-mechanical in the object by directing the pulsed first ultrasound energy from the ultrasound energy source into the object.

24. The method of claim 1 , the pulsed first ultrasound energy having a frequency of between 1 MHz and 5 MHz, a pulse duration of between 500 ns and 500 μs, and a power of between 1 kW and 10 kW.

25. The method of claim 1 , the pulsed first ultrasound energy having a frequency of between 1 MHz and 10 MHz, a pulse duration of between 1 μs and 50 μs, and a power of between 1 kW and 5 kW, the initiating of step b) including directing from 1 mJ to 250 mJ of the pulsed first ultrasound energy from the ultrasound energy source into the target zone of the medium.

26. The method of claim 1 , the pulsed first ultrasound energy having a frequency of between 2 MHz and 200 MHz, a pulse duration of between 1 ns and 500 ns, and a power of between 1 kW and 5 kW, the initiating of step b) including directing from 500 nJ to 2.5 mJ of the pulsed first ultrasound energy from the ultrasound energy source into the target zone of the medium.

27. The method of claim 1 , the pulsed first ultrasound energy having a pulse duration of between 1 ns and 750 ns and a power of between 1 kW and 50 kW, the initiating of step b) including directing from 500 nJ to 37.5 mJ of the pulsed first ultrasound energy from the ultrasound energy source into the target zone of the medium.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2015
From: SLAYTON, MICHAEL H.; JAEGER, PAUL
To: GUIDED THERAPY SYSTEMS LLC
Reel/Frame 036140/0402 →
Continuity (3)
Provisional Application 61929147 · Jan 20, 2014
Provisional Application 61991388 · May 9, 2014
Related Publication 20150202468A1 · Jul 23, 2015