IP Library Granted Patent US 10,271,884
Granted Patent B2
US 10,271,884 · App. 16/001,388 · Granted Apr 30, 2019

Device for producing an anchorage in human or animal tissue

Inventors: Jörg Mayer (Niederlenz, CH); Mario Lehmann (Les Pommerats, CH)
Assignees: WOODWELDING AG; STRYKER EUROPEAN HOLDINGS I, LLC
A61B17/8822A61B17/0401A61B17/68A61B17/7098A61B17/7233A61B17/7258A61B17/7291A61B17/742A61B17/744A61B17/88A61B17/8811A61B17/8833A61C1/07A61C8/0033A61F2/30721A61F2/30723A61F2/34A61F2/3601A61F2/4603A61B17/7225A61B2017/00831A61B2017/00955A61B2017/042A61B2017/0409A61B2017/0414A61B2017/0417A61B2017/0419A61B2017/564A61F2002/30065A61F2002/30457A61F2002/30579A61F2002/30878A61F2002/4683A61F2210/0071A61F2220/0058A61N7/02
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Quick Facts
Patent No.
US 10,271,884
App. No.
16/001,388
Granted
Apr 30, 2019
Kind
B2
Abstract

An anchorage in tissue is produced by holding a vibrating element and a counter element against each other such that their contact faces are in contact with each other, wherein at least one of the contact faces includes a thermoplastic material which is liquefiable by mechanical vibration. While holding and then moving the two elements against each other, the vibrating element is vibrated and due to the vibration the thermoplastic material is liquefied between the contact faces, and due to the relative movement is made to flow from between the contact faces and to penetrate tissue located adjacent to outer edges of the contact faces. For liquefaction of the thermoplastic material and for displacing it from between the contact faces, no force needs to act on the tissue surface which is to be penetrated by the liquefied material.

Claims (41)

1. A device for producing an anchorage in a load bearing tissue, the anchorage having a load bearing capability and being created with the aid of mechanical vibration and thermoplastic material which is liquefiable by the mechanical vibration, the device comprising:

a vibrating element with a distal end and a proximal end, wherein the proximal end is configured to be coupled to a vibration source and the vibrating element is capable of transmitting vibration of the vibration source to the distal end and wherein the distal end comprises a first contact face;

a counter element with a contact end and an opposite end, wherein the contact end comprises a second contact face being adapted to the first contact face to be able to be positioned against the first contact face;

wherein at least the first and second contact face comprises a first liquefiable thermoplastic portion;

wherein the vibrating element comprises a first axis extending between the distal end and the proximal end and the first contact face extending around the first axis and non-parallel thereto, wherein the counter element comprises a second axis extending between the contact end and the opposite end, and the second contact face extending around the second axis and non-parallel thereto;

wherein the vibrating element and the counter element are configured to be positioned relative to said tissue, while opposite holding forces are applied, the holding forces directed parallel to the first and second axes or at a non-rectangular angle thereto for holding the vibrating element and the counter element against each other with first and second contact faces in contact with each other, such that a tissue surface extends across outer edges of the contact faces,

and wherein the vibrating element and the counter element are further configured for the vibrating element to be vibrated while the holding forces are applied, for thereby liquefying the liquefiable thermoplastic material between the contact faces, and for maintaining the vibration and the holding forces and thereby moving the elements against each other and letting the liquefied material flow out from between the contact faces for a period of time sufficient for the liquefied material to contact the tissue surface and, on re-solidification, to form a positive fit connection between at least one of the elements and said tissue surface

wherein the contact face of the vibrating element faces towards the proximal end of the vibrating element and the counter element is positioned between the proximal and the distal end of the vibrating element, the vibrating element reaching past or through the counter element;

wherein the vibrating element comprises a stem of a smaller cross section and an end piece of a larger cross section and being located at a distal end of the stem and the counter element comprises a through opening or groove adapted to the stem,

wherein the end piece comprises a second liquefiable thermoplastic portion at least in a region in which the distal end of the stem is fixed to the end piece, and wherein the stem is capable of being pulled out of the bore and of being removed from the anchored counter element for the end piece to remain in the tissue and to constitute at least a part of an implant remaining in the tissue; and

wherein the first and second liquefiable thermoplastic portions may, but do not have to be the same.

2. A device for producing an anchorage in a load-bearing tissue with the aid of mechanical vibration and a thermoplastic material which is liquefiable by the mechanical vibration, the device comprising:

a vibrating element with a distal end and a proximal end, the vibrating element being capable of transmitting vibration from its proximal end to its distal end, wherein the distal end comprises a first contact face facing away from the proximal end,

a counter element with a contact end and an opposite end, wherein the contact end comprises a second contact face being adapted to the first contact face to be able to be positioned against the first contact face,

wherein the liquefiable thermoplastic material is located on at least one of the first contact face and of the second contact face,

wherein the one of the vibrating element and of the counter element comprises a foot piece of a material not liquefiable by the mechanical vibration,

wherein the foot piece constitutes a distal end of the device,

and wherein the foot piece comprises at least one of a distal tip, and of a retention structure,

wherein the vibrating element comprises a first axis extending between the distal end and the proximal end and the first contact face extending around the first axis and non-parallel thereto, wherein the counter element comprises a second axis extending between the contact end and the opposite end, and the second contact face extending around the second axis and non-parallel thereto;

wherein the vibrating element and the counter element are configured to be positioned relative to said tissue, while opposite holding forces are applied, the holding forces directed parallel to the first and second axes or at a non-rectangular angle thereto for holding the vibrating element and the counter element against each other with first and second contact faces in contact with each other, such that a tissue surface extends across outer edges of the contact faces,

and wherein the vibrating element and the counter element are further configured for the vibrating element to be vibrated while the holding forces are applied, for thereby liquefying the liquefiable thermoplastic material between the contact faces, and for maintaining the vibration and the holding forces and thereby moving the elements against each other and letting the liquefied material flow out from between the contact faces for a period of time sufficient for the liquefied material to contact the tissue surface and, on re-solidification, to form a positive fit connection between at least one of the elements and said tissue surface.

3. The device according to claim 2 , wherein the retention structure comprises at least one of a barb, a thread, a part thread or ring-like structures.

4. A device for producing an anchorage in a load-bearing tissue with the aid of mechanical vibration and a thermoplastic material which is liquefiable by the mechanical vibration, the device comprising:

a vibrating element with a distal end and a proximal end, the vibrating element being capable of transmitting vibration from its proximal end to its distal end, wherein the distal end comprises a first contact face facing away from the proximal end,

a counter element with a contact end and an opposite end, wherein the contact end comprises a second contact face being adapted to the first contact face to be able to be positioned against the first contact face,

wherein the liquefiable thermoplastic material is located on at least one of the first contact face and of the second contact face,

wherein the one of the vibrating element and of the counter element comprises a foot piece of a material not liquefiable by the mechanical vibration,

wherein the foot piece constitutes a distal end of the device,

wherein the thermoplastic material comprises at least one lateral outer energy director,

wherein the vibrating element comprises a first axis extending between the distal end and the proximal end and the first contact face extending around the first axis and non-parallel thereto, wherein the counter element comprises a second axis extending between the contact end and the opposite end, and the second contact face extending around the second axis and non-parallel thereto;

wherein the vibrating element and the counter element are configured to be positioned relative to said tissue, while opposite holding forces are applied, the holding forces directed parallel to the first and second axes or at a non-rectangular angle thereto for holding the vibrating element and the counter element against each other with first and second contact faces in contact with each other, such that a tissue surface extends across outer edges of the contact faces,

and wherein the vibrating element and the counter element are further configured for the vibrating element to be vibrated while the holding forces are applied, for thereby liquefying the liquefiable thermoplastic material between the contact faces, and for maintaining the vibration and the holding forces and thereby moving the elements against each other and letting the liquefied material flow out from between the contact faces for a period of time sufficient for the liquefied material to contact the tissue surface and, on re-solidification, to form a positive fit connection between at least one of the elements and said tissue surface.

5. The device according to claim 1 , wherein one of the first and second contact faces is equipped with energy directors.

6. The device according to claim 2 , further comprising a suture, wherein the foot piece comprises a cooperating structure for cooperating with the suture for the suture to apply one of the holding forces onto the foot piece, whereby the foot piece forms the counter element or a portion thereof.

7. The device according to claim 6 , wherein the cooperating structure comprises a through bore.

8. The device according to claim 2 , wherein the vibrating element is rigid and connected rigidly to a vibration source.

9. The device according to claim 2 , wherein the vibrating element comprises a stem of a smaller cross section and an end piece of a larger cross section and being located at a distal end of the stem and the counter element comprises a through opening or grove adapted to the stem such that the counter element is able to sit loosely on the stem or the stem is able to sit loosely in the groove.

10. The device according to claim 2 , wherein the counter element comprises a body comprising the foot piece and a flexible force transmitting member reaching past or through at least the distal end of the vibrating element.

11. The device according to claim 10 , wherein the flexible force transmitting member comprises at least one of a suture, a wire, a cable and a ribbon.

12. The device according to claim 10 wherein the body comprises a proximal portion which comprises the first liquefiable material and a distal portion comprising the foot piece which comprises a non-liquefiable material and a structure for holding the force transmitting member.

13. The device according to claim 2 , and further comprising a vibration generator coupled to the vibrating element.

Assignments (4)
CHANGE OF ADDRESS Recorded Dec 18, 2024
From: STRYKER EUROPEAN OPERATIONS HOLDINGS LLC
To: STRYKER EUROPEAN OPERATIONS HOLDINGS LLC
Reel/Frame 069730/0754 →
NUNC PRO TUNC ASSIGNMENT Recorded Jul 23, 2021
From: STRYKER EUROPEAN HOLDINGS I, LLC
To: STRYKER EUROPEAN HOLDINGS III, LLC
Reel/Frame 056969/0771 →
CHANGE OF NAME Recorded Jul 23, 2021
From: STRYKER EUROPEAN HOLDINGS III, LLC
To: STRYKER EUROPEAN OPERATIONS HOLDINGS LLC
Reel/Frame 056969/0893 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 6, 2018
From: MAYER, JÖRG; LEHMANN, MARIO
To: WOODWELDING AG; STRYKER EUROPEAN HOLDINGS I, LLC
Reel/Frame 046003/0960 →
Continuity (6)
Division 15408743 · Jan 18, 2017
Division 14444167 · Jul 28, 2014
Division 13754232 · Jan 30, 2013
Division 12260698 · Oct 29, 2008
Provisional Application 60983791 · Oct 30, 2007
Related Publication 20180280068A1 · Oct 4, 2018