PROSTHETIC KNEE JOINT

20190231560 ยท 2019-08-01

Assignee

Inventors

Cpc classification

International classification

Abstract

A prosthetic knee joint includes an upper part, a lower part which is arranged pivotably to the upper part, a fastening device arranged on the upper part for a proximal prosthetic element, a fastening device arranged on the lower part for a distal prosthetic element, a four-limbed joint system with four linkages articulatedly fastened to each other, which are each pivotable to each other around a pivot axis, wherein the upper part is arranged on the joint system. The joint system may be mounted pivotably on the lower part from a starting position counter to a spring force during a stance phase flexion, and the action line of the spring force may be aligned such that a moment acting against an inflexion of the joint system is present.

Claims

1-10. (canceled)

11. A prosthetic knee joint comprising: an upper part; a lower part, which is arranged on the upper part in a manner pivotable thereto; a fastening device arranged on the upper part and provided for a proximal prosthetic element; a fastening device arranged on the lower part and provided for a distal prosthetic element; a four-member joint system with four joint members, which are fastened to one another in an articulated manner and are pivotable with respect to one another about a respective pivot axes; a multi-link system to which the joint system is mounted, the multi-link system having pivot axes that are noncoincident with the pivot axes of the joint system; wherein the upper part is arranged on the joint system, the joint system is mounted on the lower part so as to be pivotable from a starting position counter to a spring force during a stance phase flexion, and an action line of the spring force is oriented such that a moment acting against a buckling of the joint system is present.

12. The prosthetic knee joint as claimed in claim 11, wherein the momentum acting counter to the buckling is increased as the angle of pivoting of the joint system with respect to the lower part increases.

13. The prosthetic knee joint as claimed in claim 11, wherein the joint members each have a fixed length.

14. The prosthetic knee joint as claimed in claim 11, wherein the joint system has a mechanical extension stop.

15. The prosthetic knee joint as claimed in claim 13, wherein the joint system has a distal joint member which is mounted on the lower part about an anterior pivot axis, which is arranged distally in relation to an anterior pivot axis of the joint system.

16. The prosthetic knee joint as claimed in claim 13, wherein the joint system has a posterior joint member which is continued beyond a distal pivot axis and, in the continuation, has a proximal pivot axis for a spring element.

17. The prosthetic knee joint as claimed in claim 16, wherein the spring element has a distal bearing point, and a connecting line between the distal bearing point and the proximal pivot axis extends anteriorly with respect to the distal pivot axis of the posterior joint member.

18. The prosthetic knee joint as claimed in claim 11, wherein a spring element is arranged on a distal joint member of the joint system and is supported on a proximal joint member of the joint system.

19. The prosthetic knee joint claim 16, wherein the joint system is supported on the lower part via the spring element, and the fastening points of the spring element do not coincide with the pivot axes of the joint system.

20. The prosthetic knee joint as claimed in claim 18, wherein the spring element is designed as a compressible elastomer element.

21. A prosthetic knee joint, comprising: an upper part; a fastening device on a top side of the upper part; a multi-member joint system comprising: a first joint member proximate a lower portion of the upper part; an anterior joint member pivotably coupled to an anterior of the first joint member; a posterior joint member pivotably coupled to a posterior of the first joint member; a distal joint member pivotably coupled to the anterior joint member at a distal end of the anterior joint member and the distal joint member pivotably coupled to the posterior joint member at a distal end of the posterior joint member; a lower part positioned distal the upper part and pivotably coupled to the multi-member joint system; and a distal fastening device coupled to the lower part at a distal end of the lower part; a multi-link system comprising pivot axes that are separate from pivot axes of the multi-member joint system.

22. The prosthetic knee joint of claim 21, the multi-member joint system further comprising: an anterior pivot axis coupling the first joint member and the anterior joint member; a posterior pivot axis coupling the first joint member and the posterior joint member; a distal pivot axis coupling the anterior joint member and the distal joint member; a fourth pivot axis coupling the posterior joint member and the distal joint member; wherein the distances between the pivot axis are fixed and the joint members are able to rotate with respect to one another.

23. The prosthetic knee joint of claim 21, further comprising: a proximal pivot axis located on the lower part, the proximal pivot axis coupling the distal joint member to the lower part; a spring element pivotally coupled to the posterior joint member at a proximal end of the spring element, the spring element further coupled to the lower part at a lower pivot axis on a distal end of the spring element.

24. The prosthetic knee joint of claim 23, wherein the proximal pivot axis is spaced distally apart from the distal pivot axis such that the multi-member joint system is pivotally coupled to the lower part.

25. The prosthetic knee joint of claim 23, wherein the spring element comprises an elastomer element and is positioned to hold the multi-member joint system in a starting position, wherein the starting position is prior to simulating a bending position.

26. The prosthetic knee joint of claim 22, further comprising: a medial spring element arranged inside the multi-member joint system, the medial spring element coupled to a proximal end of the upper part and a distal end of the distal joint member; a distal bearing point located on the distal joint member between the distal pivot axis and the fourth pivot axis, the distal bearing point coupling the medial spring element to the distal joint member.

27. The prosthetic knee joint of claim 21, further comprising: a mechanical extension stop, the mechanical extension stop positioned to limit joint member displacement in an extension direction.

28. The prosthetic knee joint of claim 21, wherein the joint members each have a fixed length.

29. The prosthetic knee joint of claim 21, wherein the first joint member is formed on the upper part and is substantially horizontally oriented.

30. The prosthetic knee joint of claim 21, wherein displacement of the multi-member joint system enables the upper part to the lower during a swing phase of the prosthetic knee joint.

Description

[0018] An illustrative embodiment of the invention is explained in more detail below with reference to the attached figures, in which:

[0019] FIG. 1 shows a schematic view of a prosthetic knee joint in a fully extended position; and

[0020] FIG. 2 shows a prosthetic knee joint with a joint system displaced relative to the lower part.

[0021] The illustrative embodiment of a prosthetic knee joint shown in FIG. 1 has an upper part 10, on which a fastening device 11 is provided in the form of an attachment pylon for a distal prosthetic component 5, for example for fastening the prosthetic knee joint on a thigh tube or on a thigh socket. The fastening device 11 can be screwed into the upper part 10 or can be formed in one piece with the latter. A first joint member 30 of a four-member joint system 100 can be arranged or formed on the upper part 10. The proximal, substantially horizontally oriented first joint member 30 has an anterior pivot axis 1 and a posterior pivot axis 2. An anterior joint member 40 is mounted pivotably on the anterior pivot axis 1, and a posterior joint member 50 is mounted pivotably on the posterior pivot axis 2. Thus, the proximal end of the anterior joint member 40 is pivotably connected to the upper part 10 or the proximal joint member 30 via the pivot axis 1, and the proximal end of the posterior joint member 50 is pivotably connected to the upper part 10 or the proximal joint member 30 via the pivot axis 2.

[0022] The distal end of the anterior joint member 40 is mounted pivotably on a distal joint member 60 at a pivot axis 3. The pivot axis 3 is arranged on the anterior end of the distal joint member 60. A fourth pivot axis 4 is arranged on the posterior end of the distal joint member 60, where the proximal bearing point of the posterior joint member 50 of the four-member joint system 100 is mounted. The joint system 100 is thus formed by the four pivot axes 1, 2, 3 and 4 of the four joint members 30, 40, 50 and 60. The joint members 30, 40, 50, 60 are of a rigid configuration, such that the distance between the pivot axes 1, 2, 3, 4 within the joint members 30, 40, 50, 60 remains unchangeable; by means of a rotation of the joint members with respect to one another, it is possible for the upper part 10 to be buckled for the buckling of the prosthetic knee joint, for example during a swing phase. The buckling can amount to almost 180. The upper part 10 is buckled relative to a lower part 20 by the displacement of the joint members 30, 40, 50, 60 of the four-member joint system 100. Analogously to the upper part 10, the lower part 20 has a fastening device 21, which serves to fasten a distal prosthetic element 25, for example a prosthetic foot or, as shown, a below-knee tube.

[0023] The distal joint member 60 has, in addition to the distal pivot axis 3, a further pivot axis 5, which is spaced apart distally from the pivot axis 3, such that the whole joint system 100 can be pivoted about the pivot axis 5 relative to the lower part 20, even when there is no buckling of the upper part 10 by displacement of the joint members 30, 40, 50, 60 of the joint system 100 with respect to one another. For this purpose, provision is made that, in the distal direction from the distal, posterior pivot axis 4, a continuation of the posterior joint member 50 is formed on which a distal, posterior pivot axis 6 is arranged, where a spring element A is fastened which is supported on the lower part 20 at a lower pivot axis 7. By means of the pivot axes 5, 6, 7, a multi-link system is thus formed which, by the spring element A, forms the connection between joint axes 5, 7 arranged on the lower part 20 and the connection between the proximal pivot axis 5 on the lower part 20 and the distal continuation of the posterior joint member 50 of the pivot axis 6 there. The length of the posterior joint member 50, lying between the pivot axes 6 and 7, of the multi-link system 200 is modifiable.

[0024] The spring element A is preferably designed as an elastomer element and allows the joint system 100 to be held in a starting position counter to a spring force. The prosthetic knee joint is shown in this starting position, in which both the spring element A presses the joint system 100 into its starting position and in which the joint system 100 is displaced to the maximum extent in the anterior direction.

[0025] In the starting position shown, the prosthetic knee joint is located in a position of maximum extension; buckling is afforded neither by a compression of the spring element A nor by a displacement of the joint members 30, 40, 50, 60 with respect to one another. The prosthetic knee joint is extended to the maximum extent and bears on an extension stop B which, in the illustrative embodiment shown, is formed by a projection on the distal continuation of the posterior joint member 50, which projection bears on the underside of the distal joint member 60. In principle, it is also possible for the extension stop B to be differently positioned.

[0026] A further spring element 70 composed of compressible elastomer elements is arranged inside the joint system 100, which spring element 70 is mounted at the proximal end on the upper part 10 and at the distal end on the distal joint member 60. The distal bearing point 76 is located on the distal joint member 60 between the pivot axes 3 and 4. The proximal end of the spring element 70 is arranged between the proximal pivot axes 1, 2. In the illustrative embodiment shown, the fastening points of the spring element do not coincide with one of the pivot axes 1, 2, 3, 4; it is also possible in principle that one or both bearing points of the spring element coincide with one or two of the pivot axes, respectively. By way of the spring element 70, it is possible to influence the buckling of the prosthetic knee joint during the swing phase or the terminal stance phase.

[0027] The operating mode of the prosthetic knee joint is such that, e.g. at the end of the swing phase, when there is a maximally extended prosthetic knee joint, the so-called heel strike takes place, in which the heel strikes the ground with the prosthetic knee joint extended. In order to absorb this heel strike, the upper part of the prosthetic knee joint with the four-member joint system 100 in the fully extended position, in which the extension stop B bears on the distal joint member 60, pivots about the pivot axis 5 and compresses the spring element A. A pivoting about the anterior pivot axis 5 of the multi-link system 200 results in only a slight displacement of the upper part 10 with respect to the lower part 20, a flexion angle of 5 is common. Already in the starting position, as is shown in FIG. 1, the force action line F, i.e. the connecting line between the bearing points 6, 7 of the spring element A, lies to the front or anterior of the distal, posterior pivot axis 4 of the four-member joint system 100, such that, upon a pivoting movement about the pivot axis 5, a force is exerted which presses the posterior joint member 50 against the distal joint member 60. In this way, a moment arises about the distal, posterior pivot axis, such that an increase of the effective moment takes place counter to a buckling of the joint system 100. As the stance phase flexion increases, i.e. with an increasing angle of pivoting about the pivot axis 5 of the multi-link system 200, the action line F of the spring force migrates in the anterior direction, as a result of which the lever about the distal, posterior pivot axis 4 increases, such that an increasing moment arises as the angle of pivoting of the joint system 100 about the pivot axis 5 increases. This increases the safety of the prosthetic knee joint against unintentional buckling by a relative movement of the joint members 30, 40, 50, 60 with respect to one another, by the pivoting about the pivot axis 1, 2, 3, 4. However, this increased safety as the stance phase flexion increases, in particular when a load is placed on the heel, does not lead to a geometric locking of the prosthetic knee joint; instead, the latter can be further buckled, by application of a hip flexion moment by changing the geometry of the joint system 100, such that it is possible to effectively prevent stumbling over an extended leg.

[0028] The prosthetic knee joint according to the invention avoids the bearing points of the individual components coinciding, such that a stable and simple construction of the prosthetic knee joint can be achieved. By virtue of the anterior course of the force action line F of the multi-link system, it is possible to provide increased safety during the stance phase flexion, in particular during the heel strike. Buckling by application of a hip flexion moment, which also takes place at the end of the stance phase for example, is readily possible.

[0029] As upper attachment means, a prosthetic socket 5 for receiving an amputation stump is indicated as proximal prosthetic element on the fastening device 11 of the upper part 10, and, as distal prosthetic element 25, a below-knee tube is arranged on the lower part 20 at the distal fastening device 21.

[0030] In FIG. 2, the prosthetic knee joint depicted in FIG. 1 is shown in a state in which the joint system 100, itself unmodified, is pivoted about the pivot axis 5 arranged distally in relation to the anterior, distal pivot axis 3 on the distal joint member 60. The joint system 100 with the pivot axes 1, 2, 3, 4, and with the joint members 30, 40, 50, 60 unmodified in relation to one another compared to FIG. 1, was pivoted clockwise about the pivot axis 5. The pivoting took place as a result of a change of length of the spring element A of the multi-link system 200, for example on account of the heel strike, or while standing with a load applied to the heel. Two action lines F of the spring force are indicated in FIG. 2, namely the original action line F1 as per FIG. 1, and the currently effective action line F2, which represents the continuation of the connecting line between the distal and proximal posterior pivot axes 6 and 7 of the multi-link system 200. It will be seen in FIG. 2 that the effective action line F2, compared to the original action line F1, is shifted in the anterior direction with respect to the posterior, distal pivot axis 4 of the joint system 100. In this way, the lever arm about the pivot axis 4 increases, likewise the spring force as such, as a result of which a moment arises which counteracts a buckling of the prosthetic knee joint by a change of assignment of the joint members 30, 40, 50, 60 of the joint system 100. The greater the shift of the joint system 100 about the pivot axis 5 in the clockwise direction, the greater the spring force acting on the joint system 100 via the distal continuation of the proximal joint member 50, and, due to the geometric assignment, the greater the effective lever arm of the action line F of the spring force about the posterior, distal pivot axis 4, and the greater the moment acting against buckling of the joint system.