Claims
- 1. An applicator for delivering ultrasound energy comprising
an ultrasound transducer adapted and configured to be electrically coupled to an ultrasound generator, a housing that carries the ultrasound transducer for use, an element that supports the ultrasound transducer within the housing, the element including an elastic material having a hardness of about 30 Shore A to about 100 Shore A.
- 2. An applicator according to claim 1wherein the elastic material has a hardness of about 65 Shore A to about 75 Shore A.
- 3. An applicator according to claim 1wherein the elastic material comprises nitrile rubber (Buna-N).
- 4. An applicator according to claim 1wherein the element comprises an O-ring.
- 5. An applicator for transcutaneous delivery of ultrasound energy comprising
an ultrasound transducer adapted and configured to be electrically coupled to an ultrasound generator, the ultrasound transducer including an acoustic stack having a front mass radiating surface and a side surface, a housing that carries the acoustic stack for use, the housing also carrying a bladder that is spaced from the front mass radiating surface and adapted and configured for contact with a skin surface and forming a chamber between the bladder and the front mass radiating surface, the chamber being adapted and configured to contain an acoustic coupling media, and an element that supports the acoustic stack within the housing, being adapted and configured to expose the front mass radiating surface to the acoustic coupling media while preventing substantial contact between the acoustic media and the side surface, the element including an elastic material having a hardness of about 30 Shore A to about 100 Shore A.
- 6. An applicator according to claim 5wherein the elastic material has a hardness of about 65 Shore A to about 75 Shore A.
- 7. An applicator according to claim 5wherein the elastic material comprises nitrile rubber (Buna-N).
- 8. An applicator according to claim 5wherein the element comprises an O-ring.
- 9. An applicator according to claim 5wherein the front mass radiating surface is generally flat.
- 10. An applicator according to claim 5wherein the front mass radiating surface is generally convex.
- 11. An applicator according to claim 5wherein the front mass radiating surface includes a hydrophilic coating.
- 12. An applicator according to claim 5wherein the housing includes a well region surrounding the front mass radiating surface and being location at a higher plane than the front mass radiating surface to collect air bubbles forming in the acoustic coupling media.
- 13. An applicator according to claim 12wherein the front mass radiating surface is generally convex to direct air bubbles toward the well region.
- 14. An applicator according to claim 12wherein the front mass radiating surface includes a hydrophilic coating to shed air bubbles.
- 15. An applicator according to claim 5wherein the bladder presents a generally flat surface for contact with a skin surface.
- 16. An applicator according to claim 5wherein the bladder presents a generally convex surface for contact with a skin surface.
- 17. An applicator according to claim 5wherein the housing includes mounts accommodating attachment of a stabilization assembly to temporarily secure the applicator against a skin surface for use.
- 18. An applicator for transcutaneous delivery of ultrasound energy comprising
an ultrasound transducer adapted and configured to be electrically coupled to an ultrasound generator, the ultrasound transducer including an acoustic stack having a front mass radiating surface, a housing that carries the acoustic stack for use, the body also carrying a bladder that is spaced from the front mass radiating surface and adapted and configured for contact with a skin surface and forming a chamber between the bladder and the front mass radiating surface, the chamber being adapted and configured to contain an acoustic coupling media, and an element that supports the acoustic stack within the housing, being adapted and configured to expose the front mass radiating surface to the acoustic coupling media, and a hydrophilic material on the front mass radiating surface.
- 19. An applicator according to claim 18wherein the front mass radiating surface is generally flat.
- 20. An applicator according to claim 18wherein the front mass radiating surface is generally convex.
- 21. An applicator according to claim 18wherein the housing includes a well region surrounding the front mass radiating surface and being location at a higher plane than the front mass radiating surface to collect air bubbles.
- 22. An applicator according to claim 18wherein the housing includes mounts accommodating attachment of a stabilization assembly to temporarily secure the applicator against a skin surface for use.
RELATED APPLICATION
[0001] This application is a continuation-in-part of co-pending U.S. patent application Ser. No. 09/935,908, filed Aug. 23, 2001, which is a continuation-in-part of co-pending U.S. patent application Ser. No. 09/645,662, filed Aug. 24, 2000, and entitled “Systems and Methods for Enhancing Blood Perfusion Using Ultrasound Energy,” which are both incorporated herein by reference.
Continuation in Parts (2)
|
Number |
Date |
Country |
Parent |
09935908 |
Aug 2001 |
US |
Child |
10202494 |
Jul 2002 |
US |
Parent |
09645662 |
Aug 2000 |
US |
Child |
09935908 |
Aug 2001 |
US |