Tibial sample implant with gear mechanism

The cam gear mechanism in the tibial trial implant offers a compact and robust design for precise height adjustment of the sliding surface, addressing the limitations of existing implants by enabling easy and ergonomic alignment with the femoral component.

JP7734733B2Active Publication Date: 2025-09-05AESCULAP AG
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2023501245
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-07
Filing Date
2021-07-05
Publication Date
2025-09-05
Estimated Expiration
2041-07-05

AI Technical Summary

Technical Problem

Existing tibial trial implants for knee joint replacement surgery lack a compact, robust, and easily adjustable height mechanism that allows for precise alignment of the sliding surface with the femoral component.

Method used

A cam gear mechanism with a drive wheel and driven element, where the drive wheel is rotatably attached parallel to the height direction, enabling proportional or non-proportional transmission of rotational movement to the upper part, allowing for compact design and easy adjustment of the sliding surface height.

Benefits of technology

The mechanism provides a simple, space-saving, and robust construction with precise height adjustment, facilitating ergonomic operation and easy replacement of components, enhancing surgical precision and efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007734733000001
    Figure 0007734733000001
  • Figure 0007734733000002
    Figure 0007734733000002
  • Figure 0007734733000003
    Figure 0007734733000003
Patent Text Reader

Abstract

The present application relates to a tibial trial implant (1,100) for use in knee joint replacement surgery, comprising: a lower part (2,102) provided for tibial fixation; an upper part (3,103) arranged above the lower part in the height direction and having a sliding surface (5,105) arranged on its upper surface and designed to slidingly interact with a femoral component; and a height adjustment mechanism (E,E') that interacts with the upper and lower parts and is used to displace the upper part in a guided manner in the height direction (Z) relative to the lower part between a first adjustment position in which the sliding surface is located at a first height (H1) above the lower part and a second adjustment position in which the sliding surface is located at a second height (H2) above the lower part.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present application relates to a tibial trial implant for use in knee joint replacement surgery, comprising: a lower portion provided for tibial fixation; an upper portion positioned above the lower portion in the height direction, the upper portion having a sliding surface positioned on its upper surface and provided for sliding interaction with a femoral component; and a height adjustment mechanism actively connected to the upper and lower portions, the height adjustment mechanism allowing the upper portion to be displaced in the height direction relative to the lower portion between a first adjustment position in which the sliding surface is located at a first height above the lower portion and a second adjustment position in which the sliding surface is located at a second height above the lower portion. [Background technology]

[0002] Such a tibial trial implant is known from U.S. Patent Application Publication No. 2010 / 0063595 and includes a lower plate and an upper plate. The upper surface of the upper plate is provided with a sliding surface for sliding interaction with the femoral component. The lower surface of the lower plate is provided for tibial fixation. The tibial trial implant further includes a height adjustment mechanism disposed between the upper and lower plates and actively connected to the two plates. The height adjustment mechanism allows adjustment of the overall height of the trial implant. To this end, the upper and lower plates are displaced in height relative to each other by the height adjustment mechanism. In the known tibial trial implant, the height adjustment mechanism includes a shear joint arrangement rigidly connected to the lower plate at one end and rigidly connected to the upper plate at the other end. A tilt lever rotatably fixed on the lower plate is provided for manual movement of the height adjustment mechanism. Summary of the Invention [Problem to be solved by the invention]

[0003] The object of the present application is to provide a tibial trial implant of the type mentioned at the outset, which has an improved structure compared to the prior art and offers advantages during use. [Means for solving the problem]

[0004] This object is achieved by a height adjustment mechanism comprising a cam gear including at least one drive wheel rotatably attached to a lower part about a first rotation axis oriented parallel to the height direction and including a control cam rising in the height direction, and at least one driven element rigidly connected to an upper part and including a support section slidably supported on the control cam, such that the upper part can be displaced between a first adjustment position and a second adjustment position by rotational movement of the drive wheel. The cam gear provided by the present application enables particularly advantageous height adjustment of the slide surface and a particularly advantageous design of the tibial trial implant, since the rotational movement of the drive wheel is easily and robustly transmitted to the upper part of the driven side and the slide surface arranged thereon through the interaction of the control cam and the support section. A corresponding configuration of the control cam allows for very different proportional or non-proportional transmission ratios between the movement of the drive side and the movement of the driven side, while reducing design complexity. Furthermore, thanks in particular to the rotation axis of the drive wheel oriented parallel to the height direction, the tibial trial implant can be constructed very compactly. As a result, a simple, space-saving, and robust construction is achieved by the solution provided herein. The drive wheel is configured to be operated at least indirectly manually and / or tool-driven by a medical professional. For this purpose, for example, the drive wheel may include an operating section provided on its outer periphery. Alternatively or additionally, an operating element configured for manual and / or tool-driven operation may be provided, which is located in front of the drive wheel and interacts with the drive wheel, thereby transmitting the movement of the operating element to the drive wheel. The drive wheel is preferably slidably mounted on the lower part. The control cam slidably interacts with the support section of the driven element during rotation of the drive wheel. The support section is supported in the height direction by the control cam. During rotation of the drive wheel, a relative sliding movement occurs between the control cam and the support section. In other words, the control cam slides under the support section. This causes the support section to be pushed up in the height direction by the pitch of the control cam. The control cam and the support section may interact in a point-like manner, along a line, and / or across a surface. The control cam may have a constant pitch or a variable pitch. The driven element is rigidly connected to the upper part. The driven element is preferably formed integrally with the upper part. The driven element is preferably arranged on the lower surface of the upper part. The sliding surface is preferably formed on the upper part and constitutes the upper surface of the upper part. Alternatively, the sliding surface may be formed on a separate part connected to the upper surface of the upper part. The lower portion is provided for tibial fixation. During use, the lower surface of the lower portion may be directly fixed to the proximal end of the tibia. Alternatively, the lower portion may be fixed to a tibial trial plateau, or the like, that is fixed directly to the tibia. The lower portion and the upper portion may each be composed of one or more parts. The lower portion and the upper portion preferably have a plate-like basic shape, and therefore may be referred to as a lower plate and an upper plate. In the first adjustment position, the tibial trial implant has an overall height extending in the height direction that is smaller than the overall height in the second adjustment position. Therefore, compared to the second adjustment position, in the first adjustment position, the sliding surface is located closer to the lower portion in the height direction.

[0005] In one embodiment of the present application, the control cam is formed by a control surface that extends helically at a constant pitch coaxially around the first axis of rotation. The control cam thus forms a helical line that rises in height. The constant pitch allows for a simple design that achieves linear motion between the drive wheel and the driven element, and thus proportional motion and force transmission. This contrasts with the shear joint configurations for adjusting the height of the slideway known from the prior art. This embodiment of the present application therefore offers additional advantages in use and requires less installation space.

[0006] In another embodiment of the present application, the support section is formed by a support surface that extends helically at a constant pitch coaxially around the first rotation axis. The two-dimensional configuration of the support section reduces the surface pressure, particularly on the control cam, which allows the height adjustment mechanism to operate smoothly and with low wear.

[0007] In another embodiment of the present application, the upper and lower parts are detachably connected by a plug connection formed between at least one drive wheel and at least one driven element and are slidable relative to each other along a plug axis, which is oriented coaxially with the first rotation axis. This is a particularly advantageous embodiment of the present application. In this case, the cam gear has particularly advantageous multiple functions. This is because the height adjustment mechanism functions as a detachable interface between the upper and lower parts in addition to adjusting the height of the sliding surface. For this purpose, a plug connection is formed between the drive wheel and the driven element. The plug connection is configured so that the driven element, and therefore the upper part firmly connected to the driven element, can be pulled upwardly away from the lower part. For this purpose, the plug axis is oriented coaxially with the first rotation axis and thus parallel to the height direction. This embodiment of the present application allows the lower part and a component of the height adjustment mechanism attached to the height adjustment mechanism to be easily connected to another upper part, for example, with a sliding surface of a different configuration. This is in contrast to solutions known from the prior art, which provide a non-releasable connection, or at least a connection that cannot be manually released, between the lower and upper parts, which may differ, for example, in their anterior-posterior dimensions, their medial-lateral dimensions, their height, and / or, in the case of asymmetrical configurations of the sliding surfaces, by mirror-symmetrical variants for the left and right knee, respectively.

[0008] In another embodiment of the present application, at least one drive wheel has a cylindrical bore extending coaxially with the first rotation axis, and a complementary plug cylinder of at least one driven element is inserted into the cylindrical bore to form a removable plug connection. The plug cylinder is inserted into the cylindrical bore slidably along the plug axis and thus along the height direction. This allows, on the one hand, for easy release of the plug connection, and, on the other hand, allows for relative movement between the upper and lower parts, which is necessary for height adjustment of the slide surface.

[0009] In another embodiment of the present application, the height adjustment mechanism comprises a worm gear located in front of the cam gear. "In front" means that the worm gear is located in front of the cam gear in the drive direction. In other words, the cam gear is driven by the worm gear. A worm gear located in front allows for a particularly high transmission ratio with a simple design and space-saving design. In this way, the height of the slideway can be precisely adjusted. Furthermore, high expansion forces can be generated between the upper and lower parts, if necessary.

[0010] In another embodiment of the present application, the worm gear is self-retaining. "Self-retaining" means that the worm gear is driven only by its own gear input. Conversely, it is not possible to drive the worm gear starting from its gear output, for example due to friction and / or transmission. Therefore, there is no need to lock the upper part in different adjustment positions. This allows for a simpler design in this respect. Furthermore, the cam gear does not need to have a self-retaining configuration for this purpose. Therefore, the cam gear can be configured primarily taking into account the law of motion to be achieved between the lower part and the upper part.

[0011] In another embodiment of the present application, the worm gear includes a worm drive shaft mounted on the lower part to rotate about a second rotation axis oriented perpendicular to the height direction, the worm drive shaft interacting with a toothed circumferential section of at least one drive wheel or a worm wheel in front of at least one drive wheel. The corresponding orientation of the second rotation axis allows for a compact design of the tibial trial implant in the height direction. The worm drive shaft may act directly or indirectly on at least one drive wheel. For this purpose, at least one drive wheel may have a toothed section on its periphery, i.e., a toothed circumferential section. To drive the drive wheel, the teeth of the worm drive shaft engage with the teeth of the circumferential section. If only indirect drive is provided, the worm drive shaft acts on a worm wheel in front of the drive wheel. This worm wheel is preferably mounted on the lower part to rotate about a third rotation axis oriented parallel to the height direction.

[0012] In another embodiment of the present application, the worm drive shaft includes a rotary manipulation section at one end configured for manual and / or tool-driven rotation of the worm drive shaft about the second rotation axis. The rotary manipulation section may be configured, inter alia, as a rotary knob, crank, or the like for manual manipulation. Alternatively or additionally, a tool face for tool-driven rotation may be provided at one end of the rotary manipulation section. The rotary manipulation section is arranged on the lower side and is externally accessible.

[0013] In another embodiment of the present application, at least one drive wheel and / or worm drive shaft is slidably and rotatably mounted on a sliding bearing surface of the lower portion, the sliding bearing surface including a plurality of radial cleaning protrusions. The cleaning protrusions allow for easy cleaning of the sliding bearing formed between the drive wheel and / or worm drive shaft and the lower portion. This allows the tibial trial implant to be used in a particularly hygienic manner.

[0014] In another embodiment of the present application, a scale display is formed between the lower part and at least one drive wheel. The scale display includes a reading element and a scale, allowing the adjustment position of the upper part and / or the height of the slideway to be read. During the rotational movement of the drive wheel, the reading element and the scale are moved relative to each other. The reading element may be located on the lower part, and the scale may be located on the drive wheel, or vice versa. In another embodiment, multiple scale displays are formed to allow reading from different viewing angles. Alternatively, if there are two or more scale displays, the values ​​to be read may be arranged alternately on the individual scales to allow good readability despite the finely graduated values.

[0015] In another embodiment of the present application, the lower part is configured as two shells, comprising an upper shell and a lower shell, and the at least one drive wheel and / or worm drive shaft is held between the upper shell and the lower shell, and in the assembled state, the upper shell and the lower shell form a housing for mounting the at least one drive wheel and / or worm drive shaft.

[0016] In another embodiment of the present application, the height adjustment mechanism is configured with at least substantial, preferably complete, mirror symmetry with respect to the vertical median plane, and includes at least two drive wheels and at least two driven elements. The drive wheels and driven elements are therefore arranged laterally adjacent to each other. If a worm gear precedes the cam gear, the worm drive shaft preferably drives both drive wheels. For this purpose, the worm drive shaft extends longitudinally between the two drive wheels.

[0017] In another embodiment of the present application, there are at least two drive wheels and at least one control wheel, each having spur teeth, and the control wheel is in spur tooth meshing with the two drive wheels. The at least two drive wheels are preferably spaced apart laterally. The control wheel is laterally disposed between the at least two drive wheels and in front of them. The control wheel is used for force coupling and kinematic coupling of the two drive wheels. The coupling by the control wheel allows the two drive wheels to rotate synchronously with each other about their respective rotation axes. The control wheel is preferably rotatably mounted on the underside. In one embodiment, the control wheel is configured for direct manual rotation operation. In another embodiment, the control wheel may be configured to interact with an operating mechanism or the like. Each of the spur teeth is an external tooth. The rotation axes of the at least two drive wheels and the rotation axis of the control wheel are oriented parallel to each other.

[0018] In another embodiment of the present application, at least one control wheel comprises an additional control cam that interacts with an additional support section of an additional driven element. The control wheel thus functions, so to speak, as an additional drive wheel. In other words, in this embodiment, there are at least three drive wheels and three driven elements, and one of the drive wheels is, so to speak, formed by at least one control wheel. This provides the at least one control wheel with a particularly advantageous multi-function. This results in a particularly compact and particularly robust design.

[0019] In another embodiment of the present application, at least one drive wheel is coupled to at least one display wheel rotatably mounted on the lower part so as to transmit motion, the display wheel comprising a scale that allows reading of the adjustment position of the upper part and / or the height of the slide. The motion transmission between the drive wheel and the display wheel may be continuous or intermittent. For the motion transmission, the display wheel may be meshed with the drive wheel or may be coupled in another manner, for example, by a catch element. The display wheel is preferably arranged on the outer periphery of the lower part and / or offset radially outward relative to the at least one drive wheel. The scale preferably comprises a series of graduations and / or numbers. The scale is preferably arranged on the outer periphery of the display wheel.

[0020] In another embodiment of the present application, there is at least one catch element non-rotatably connected to the drive wheel, and the at least one catch element intermittently interacts with the display wheel such that continuous rotation of the drive wheel causes incremental rotation of the display wheel. The incremental rotation of the display wheel thus created results in incremental indication of each adjustment position reached by the upper part, while intermediate positions are not indicated. The catch element may be formed integrally with the drive wheel or may be configured as a separately manufactured part that is then connected to the drive wheel. The catch element intermittently interacts with a section of the display wheel that is intended for interaction with the catch element.

[0021] In another embodiment of the present application, there is a latch device comprising a latch element actively connected to at least one drive wheel so as not to rotate and a complementary latch mating element disposed on the lower part, the latch element and the latch mating element interacting to form a defeatable latch connection when the at least one drive wheel is in a predetermined rotational position. The predetermined rotational position of the at least one drive wheel corresponds to a predetermined and / or to-be-reached adjustment position of the upper part. This provides a user with direct tactile and / or acoustic feedback upon reaching the rotational and / or adjustment position. This feedback is provided by latching with the latch device. The defeatable latch connection between the latch element and the complementary latch mating element allows further rotational movement of the drive wheel after reaching the predetermined rotational position. In this case, defeat (i.e., release of a previously established latch connection) is associated with a new tactile and / or acoustic feedback to the user.

[0022] In another embodiment of the present application, a handle having an operating mechanism and removably connectable to the lower part is present, the operating mechanism including an operating wheel that is actively connected to at least one drive wheel when the handle is connected to the lower part. The handle enables ergonomic operation of the height adjustment mechanism. For this purpose, the operating mechanism of the handle is located in front of the height adjustment mechanism, more precisely, its at least one drive wheel. Manual operation of the operating mechanism causes a rotational movement of the at least one drive wheel, which accordingly changes the adjustment position of the upper part. Furthermore, the handle enables safe and ergonomic handling of the lower part. For this purpose, the handle may be removably connected to the lower part. For this purpose, a releasable latch connection, snap connection, clamp connection, and / or plug connection is preferably present between the handle and the lower part, the releasable latch connection, snap connection, clamp connection, and / or plug connection comprising at least one connecting element assigned to the handle and a mating connecting element provided on the lower part that is complementary to the connecting element. The operating wheel of the operating mechanism is removably and actively connected to at least one drive wheel when the handle is connected to the lower part. For this purpose, the operating wheel and the at least one drive wheel preferably mesh with each other at least indirectly. The transmission ratio between the rotational movement of the operating wheel and the rotational movement of the at least one drive wheel can be directly influenced by the corresponding configuration of the operating mechanism. Depending on the selected transmission ratio, the height adjustment mechanism can be adjusted particularly precisely and smoothly or particularly quickly.

[0023] In another embodiment of the present application, the handle comprises at least one connecting element arranged at its distal end, which is removably connected to a complementary connecting element on the lower part for connecting the handle to the lower part. This embodiment allows for a particularly simple and robust construction. The connecting elements are preferably configured as a latch element and a latching element. Alternatively, a plug or clamp connection with correspondingly configured connecting elements may be envisaged. When establishing and releasing the latch connection, the latch element and / or the complementary latching element undergo elastic deformation. Preferably, at least two latch elements and complementary latching elements are arranged laterally spaced apart from each other. The handle extends longitudinally between its distal and proximal ends. An operating wheel of the operating mechanism is preferably arranged distally.

[0024] Further advantages and features of the present application can be found from the claims and the following description of preferred exemplary embodiments of the present application, illustrated by the drawings. [Brief explanation of the drawings]

[0025] [Figure 1] 1 is a perspective view of an embodiment of a tibial trial implant according to the present application. FIG. [Figure 2] FIG. 2 is an exploded perspective view of the tibial trial implant of FIG. 1. [Figure 3] FIG. [Figure 4] 6 is a schematic cross-sectional view of the tibial trial implant of FIGS. 1 to 3 taken along section AA of FIG. 5. [Figure 5] FIG. 5 is a schematic front view of the tibial trial implant of FIGS. [Figure 6] 10 is a further perspective view of the tibial trial implant without illustrating the individual components and / or sections thereof; [Figure 7] FIG. 7 is a perspective detailed view of two drive wheels of the height adjustment mechanism of the tibial trial implant of FIGS. 1 to 6. [Figure 8]FIG. 7 is a further perspective view similar to FIG. 6, but from a perspective directed obliquely upwards. [Figure 9] 9 is a view corresponding to FIG. 8, in which the illustration of the drive wheels is further omitted. [Figure 10] 10 is a perspective view of a further embodiment of a tibial trial implant according to the present application in a first adjustment position and a tibial trial plateau. FIG. [Figure 11] 11 shows the tibial trial implant of FIG. 10 in a second adjustment position. [Figure 12] FIG. 12 is an exploded perspective view of the tibial trial implant of FIGS. 10 and 11 . [Figure 13] 13 is a perspective view from below of the upper side of the tibial trial implant of FIGS. 10 to 12 in which the driven element of the height adjustment mechanism is located. FIG. [Figure 14] FIG. 13 is a perspective view of the underside of the tibial trial implant of FIGS. 10 to 12. [Figure 15] FIG. 10 is a further perspective view of the partially exploded lower section. [Figure 16] FIG. 10 is a further view of the underside to show the individual parts and / or sections of the height adjustment mechanism. [Figure 17] FIG. 13 is a perspective view of a handle of the tibial trial implant of FIGS. 10 to 12, the handle being removably connectable to the underside of the tibial trial implant and including an operating mechanism for moving the height adjustment mechanism. [Figure 18] FIG. 18 is a perspective detail view of the distal end of the handle of FIG. 17. DETAILED DESCRIPTION OF THE INVENTION

[0026] 1 to 3, there is provided a tibial trial implant 1 for use in knee replacement surgery. In medical terms, the tibial trial implant 1 is often called a "trial slide."

[0027] The tibial trial implant 1 comprises a lower part 2, an upper part 3 and a height adjustment mechanism E.

[0028] The lower part 2 is provided for tibial fixation, which means that the lower part 2 is placed and fixed, either indirectly or directly, on the proximal end of the tibia during use of the tibial trial implant 1. In the illustrated embodiment, an indirect fixation of the lower part 2 is provided, in which the lower surface 4 of the lower part 2 interacts with a so-called tibial trial plateau, which can be screwed or glued to the proximal end of the tibia.

[0029] In the illustrated embodiment, the lower part 2 has a plate-like basic shape and therefore extends longer along the longitudinal direction X and the lateral direction Y than along the height direction Z.

[0030] In this embodiment, the lower part 2 has a two-shell configuration including an upper shell 2a and a lower shell 2b. This is advantageous, but not essential, as will be explained in more detail below. In the height direction Z, the lower shell 2b is disposed below the upper shell 2a. The lower shell 2b has a lower surface 4. In the assembled state, the upper shell 2a and the lower shell 2b form a receiving space (not shown in detail) for components and / or sections described in more detail below, in particular for components and / or sections of the height adjustment mechanism E. In the mounted state (FIG. 1) ready for use, the upper shell 2a and the lower shell 2b are joined to each other by force, form, and / or material fit, as known to those skilled in the art. For example, the upper shell 2a and the lower shell 2b may be screwed, glued, welded, and / or latched to each other.

[0031] The upper part 3 is disposed above the lower part 2 in the height direction Z and includes a sliding surface 5 disposed on its upper surface. In the illustrated embodiment, the sliding surface 5 is formed by two partial sliding surfaces 5a, 5b spaced apart from each other in the transverse direction Y by an upper opening (not shown in detail) in the upper part 3. The sliding surface 5 is provided for sliding interaction with a femoral component. This femoral component may be formed by the distal end of the femur or a femoral trial implant. The femoral component is fixed to the distal end of the femur or a femoral trial implant and has a correspondingly configured sliding surface. The shape of the sliding surface 5 visible in the drawings is created in a manner known to those skilled in the art for the tibial articular surface of a femoro-tibial joint.

[0032] In the embodiment shown, the sliding surface 5 is formed directly on the upper part 3, in this case constituting the upper surface of the upper part 3. Such an arrangement is advantageous but should not be considered essential in the context of the present application. In one embodiment (not shown), the sliding surface is located on a part manufactured separately from the upper part and is rigidly connected to the upper part in the ready-to-use state.

[0033] The height adjustment mechanism E is used to adjust the overall height of the tibial trial implant 1 in the height direction Z. In other words, the height adjustment mechanism E positions the upper part 3, and thus the sliding surface 5, at different heights above the lower part 2. Such height adjustment of the sliding surface 5 is required during knee replacement surgery for so-called trial repositioning. Trial repositioning is a surgical step prior to the actual knee replacement, during which the dimensions and shapes of the tibial and femoral implant components required for a precise and functional knee replacement are determined. The background to this use of the tibial trial implant 1 is known to those skilled in the art. Therefore, no further explanation is required in this regard.

[0034] The height adjustment mechanism E is operatively connected to the upper part 3 and the lower part 2 in a manner described in more detail below, allowing the upper part 3 to be displaced relative to the lower part 2 along the height direction Z. This allows the upper part 3 to be displaced between various adjustment positions in the height direction H, and by way of example, FIGS. 1 and 5 show a first adjustment position in which the sliding surface 5 is positioned at a first height H1 ( FIG. 5 ) above the lower part 2. In FIG. 5 , by way of example, the first height H1 is shown as being between the upper edge of the sliding surface 5 and the lower surface 4 of the lower part 2. In a second adjustment position (not shown), the upper part 3 is displaced upward in the height direction Z, and the sliding surface 5 is positioned at a second height H2. The second height H2 is shown schematically in FIG. 5 .

[0035] The height adjustment mechanism E comprises a drive wheel 6a and a driven element 7a (see Figures 6 to 9). The drive wheel 6a is attached to the lower part 2 so as to be rotatable about a first rotation axis 8a oriented parallel to the height direction Z. The drive wheel 6a further comprises a control cam 9a rising in the height direction Z. The driven element 7a is rigidly connected to the upper part 3 and comprises a support section 10a slidably supported on the control cam 9a. The drive wheel 6a, its control cam 9a, the driven element 7a and its support section 10a form a cam gear. The cam gear allows the rotational movement of the drive wheel 6a about the first rotation axis 8a to be converted into a translational movement of the upper part 3 along the height direction Z. In other words, during rotation of the drive wheel 6a, the support section 10a slidably supported on the control cam 9a is pushed up in the height direction Z. Thus, for the above-mentioned purposes, the upper part 3 is displaceable between a first and a second adjustment position, and thus the sliding surface 5 can be arranged between a first height H1 and a second height H2 (FIG. 5). Furthermore, according to conventional terminology in the gear technology field, the driving wheel 6a and the driven element 7a may also be referred to by the terms "cam carrier" and "rising member", respectively.

[0036] In the illustrated embodiment, further parts and / or sections of the height adjustment mechanism E, which are used for manual and / or tool-driven operation, are located in front of the drive wheel 6a, as will be explained in more detail below. However, such an arrangement is not required. In one embodiment (not shown), the drive wheel itself may be configured for manual operation and may be provided with a corresponding operating section for this purpose, for example on its outer periphery.

[0037] Furthermore, the illustrated embodiment provides a configuration of the tibial trial implant 1 that is at least substantially, preferably completely, mirror-symmetric with respect to the medial plane XZ. Accordingly, the height adjustment mechanism E is similarly configured with mirror symmetry with respect to the vertical medial plane XZ. As shown in the drawings, the height adjustment mechanism E includes two drive wheels 6a, 6b and two driven elements 7a, 7b. The additional drive wheel 6a and the additional driven element 7a are spaced apart from the drive wheel 6a and the driven element 7a in the lateral direction Y. The additional drive wheel 6b is attached to the lower part 2 so as to be rotatable about an additional first rotation axis 8b. The additional first rotation axis 8b is oriented parallel to the first rotation axis 8a. The shape and / or configuration of the additional drive wheel 6b and the additional driven element 7a are mirror-symmetric with respect to the drive wheel 6a and the driven element 7a with respect to the medial plane XZ.

[0038] It is expressly pointed out that the mirror symmetrical configuration of this embodiment is advantageous but should not be considered essential for the present application. Thus, in one embodiment (not shown), only one drive wheel is provided which interacts with the driven element.

[0039] To avoid repetition, the following description will primarily refer in detail to the drive wheel 6a and the driven element 7a, and the functional and physical features disclosed in this regard also apply mutatis mutandis to the additional drive wheel 6b and the additional driven element 7b, and vice versa.

[0040] In this embodiment, the control cam 9a is formed by a control surface 11a that extends spirally at a constant pitch coaxially with the first rotation shaft 8a as the center, and the control surface 11a is also called an oblique surface.

[0041] In this example, the control cam 9a, and thus the control surface 11a, comprises separate subsections, namely, first and second control cam sections 91a and 92a, and first and second control surface sections 1110 and 1120, respectively. However, such a configuration is not required. In one embodiment (not shown), the control cam may be formed by a continuous, integral control surface extending longitudinally.

[0042] Typically, the support section 10a may be supported by the support surface 11a in a point-like, linear, and / or over-the-surface manner. In this embodiment, support over-the-surface is provided, and the support section 11a is correspondingly formed by the support surface 12a. The support surface 12a is configured complementary to the control surface 11a. Thus, the support surface 12a extends helically at a constant pitch coaxially around the first rotation axis 8a. Furthermore, a separate configuration is provided having two support surface sections 1210, 1220.

[0043] The driven element 7a in this embodiment protrudes downwards from the underside 13 of the upper part 3 along the height direction Z. In this embodiment, the driven element 7a has a pin-like basic shape. The driven element 7a is formed integrally with the underside 13 of the upper part 3. In a further embodiment, the driving element may also be manufactured separately from the upper part and joined to it in a manner known per se.

[0044] To facilitate the easy replacement of the upper part 3 with a differently configured upper part, e.g., with an upper part including a differently configured sliding surface, a plug connection is provided between the upper part 3 and the lower part 2 in this embodiment. This plug connection can be manually released directly by moving the upper part 3 away from the lower part 2 upward in the height direction Z. In this embodiment, the plug connection is formed between the drive wheel 6a and the driven element 7a. For this purpose, the drive wheel 6a has a cylindrical bore 14a extending coaxially with the first rotation axis 8a. In this embodiment, the cylindrical bore 14a is configured as a through hole. The cylindrical bore 14a has a cylindrical side surface 15a. The driven element 7a has a plug cylinder complementary to the cylindrical bore 14a or functions as such a plug cylinder and likewise has a complementary cylindrical side surface 16a. The cylindrical side surface 16 of the driven element 7a interacts with the cylindrical side surface 15a of the cylindrical bore 14a during the circumferential rotational movement of the sliding drive wheel 6a along the height direction Z about the first rotation axis 8a.

[0045] In the illustrated embodiment, the control cam 9a is arranged as a kind of radial protrusion in the cylindrical bore 14a. In another embodiment (not shown), the control cam is instead arranged axially offset relative to the through-hole 14a in the upper surface of the drive wheel 9a. The support section 10a is formed by a radial recess in the cylindrical side surface 16a of the plug cylinder. In another embodiment (not shown), the support section may be formed at a location separate from the plug cylinder.

[0046] The plug cylinder formed by the driven element 7a is inserted vertically downwards into the cylindrical bore 14a along a first rotation axis 8a, which in the illustrated embodiment therefore coincides with the plug axis 17a of the plug connection.

[0047] Due to the mirror-symmetrical configuration of this embodiment, a plug connection between the upper part 3 and the lower part 2 is additionally formed, in this example, between the additional driving wheel 6b and the additional driven element 7b. In this respect, the description regarding the plug connection between the driving wheel 6a and the driven element 7a applies analogously. For the sake of brevity, a separate description of the sections required for the motion transmission and plug connection formation regarding the additional driving wheel 6b and the additional driven element 7b will be omitted. Instead, the relevant description regarding the driving wheel 6a and the driven element 7a will be provided.

[0048] In this embodiment, the height adjustment mechanism E further comprises worm gears 18, 19a, 19b in front of the cam gears. The worm gears 18, 19a, 19b comprise a worm drive shaft 18 and an outer peripheral section 19a of the drive wheel 6a that is toothed complementarily to the worm drive shaft 18.

[0049] The worm drive shaft 18a is mounted to the lower part 2 for rotation about a second rotation axis 20 (FIG. 2) oriented perpendicular to the height direction Z and interacts with a toothed outer circumferential section 19a (FIG. 4) for motion and force transmission. In the illustrated embodiment, the worm drive shaft 18 further interacts with a complementarily toothed outer circumferential section 19b of an additional drive wheel 6b. The worm drive shaft 18 projects in the longitudinal direction X between the two drive wheels 6a, 6b. During rotational movement of the worm drive shaft 18 about the third rotation axis 20, the two drive wheels 6a, 6b are driven in opposite directions about their respective first rotation axes 8a, 8b.

[0050] The worm gears 18, 19a, 19b thus formed are self-retaining and can therefore only be driven by the rotational movement of the drive side of the worm drive shaft 18. Conversely, driving by the movement originating from one of the drive wheels 6a, 6b is not possible because friction and / or transmission would prevent this.

[0051] In the illustrated embodiment, the worm drive shaft 18 includes a rotary manipulation section 21 that includes a tool face 22. The tool face 22 is a hex socket surface configured to interact with a conventional hex key provided for medical use. In one embodiment (not shown), the tool face 22 is replaced by a crank formed by a rotary manipulation section, a manipulation wheel, or the like. The rotary manipulation section 21 is located at one end of the worm drive shaft 18 and is externally accessible in the assembled state of the ready-to-use tibial trial implant 1. At the other end, the worm drive shaft 18 includes a toothed section 23 that interacts with the toothed circumferential sections 19a, 19b during rotational movement of the worm drive shaft 18. A stem section 24 extends axially between the toothed section 23 and the rotary manipulation section 21.

[0052] The drive wheel 6a, the additional drive wheel 6b, and the worm drive shaft 18 are held between the upper and lower shells 2a and 2b of the lower part 2, and corresponding sliding bearing surfaces are provided, in particular for mounting the drive wheels 6a and 6b. For simplicity of illustration, the sliding bearing surface is shown only for the additional drive wheel 6b in the drawings. The same applies to the sliding bearing of the drive wheel 6a as described for the additional drive wheel 6b. The sliding bearing surface assigned to the additional drive wheel 6b is formed by a through-hole 25b extending coaxially through the lower part 2 with the additional rotation axis 8b. The through-hole 25b has a number of radial projections 26b, each starting from an imaginary cylindrical shape. The projections 26b, sometimes called cleaning projections, allow for easy and particularly hygienic cleaning of the lower part 2 with a liquid. The additional drive wheel 6b comprises a lower radial hub 27b and an upper radial hub 28b which are mounted for sliding contact with corresponding sliding bearing surfaces of the upper and lower shells 2a, 2b, respectively.

[0053] Furthermore, a scale display S is provided, which is formed between the drive wheel 6a and the lower part 2, the arrangement of which can be seen in Figure 5. The scale display S comprises display elements configured as display indicators, which are arranged on both the upper shell 2a and the lower shell 2b. Furthermore, a scale with a number sequence is provided, which can be seen in Figure 6. The scale display S allows the adjustment position of the upper part to be read.

[0054] Additionally, an embodiment (not shown) is provided in which the trial implant is provided for use in (general) joint replacement surgery, but not necessarily for knee replacement surgery. Thus, the lower portion of this embodiment is generally provided for bone fixation and / or bone support, but not necessarily for tibial fixation. In this embodiment, the sliding surface located on the upper surface of the upper portion is provided for sliding interaction with an additional component fixed to the bone, which in this case is not necessarily a femoral component.

[0055] 10 to 18 show a further embodiment of a tibial trial implant 100 according to the present application. The basic configuration and function of the tibial trial implant 100 largely correspond to the configuration and function of the tibial trial implant 1 of FIGS. 1 to 9. Therefore, in the following, the main essential differences of the tibial trial implant 100 will be discussed. In other respects, reference is made to the description of the tibial trial implant 1 to avoid repetition.

[0056] The tibial trial implant 100 also includes a lower portion 102, an upper portion 103, and a height adjustment mechanism E'.

[0057] In this embodiment, the lower part 102 (FIG. 14) is configured for indirect tibial fixation and therefore interacts with a tibial trial plateau P. In the ready-to-use state, the lower part 102, together with its lower surface 104, is pre-fitted into a receiving recess (not shown in detail) of the tibial trial plateau P configured for the lower part 102.

[0058] Like the lower part 2, the lower part 102 has a plate-like basic shape and a two-shell construction with an upper shell 102a and a lower shell 102b.

[0059] Like the upper part 3, the upper part 103 comprises a slide 105 arranged on its upper surface and having two partial slides 105a, 105b spaced apart from each other in the lateral direction Y.

[0060] The height adjustment mechanism E' is essentially the same as the height adjustment mechanism E, being actively connected to the upper portion 103 on the one hand and the lower portion 102 on the other hand, allowing for relative displacement of the upper portion 103 with respect to the lower portion 102 along the height direction Z. In this embodiment, FIG. 10 shows, by way of example, a first adjustment position, which may also be referred to as a lower end position. In the lower end position, the tibial trial implant 100 has a minimum overall height and / or thickness. FIG. 11 shows a second adjustment position, which may also be referred to as a higher end position. In this position, the tibial trial implant 100 has a maximum overall height and / or thickness.

[0061] The height adjustment mechanism E' also comprises at least one drive wheel 106a and at least one driven element 107a. The drive wheel 106a is mounted on the lower part 102 rotatably about a rotation axis (not shown in detail) oriented parallel to the height direction Z and comprises a control cam 109a rising in the height direction Z. In the illustrated embodiment, the control cam 109a is formed by a control surface 111a that extends helically at a constant pitch coaxially about said rotation axis.

[0062] In this embodiment, the control cam 109a and / or the control surface 111a are formed with an internal thread IG. The internal thread IG is introduced into a cylindrical bore 114a of the drive wheel 106a. The cylindrical bore 114a extends coaxially with the rotation axis of the drive wheel 106a.

[0063] At least one driven element 107a is rigidly connected to the upper part 103. In contrast to the driven element 7a of the tibial trial implant 1, the driven element 107a is not, for example, formed integrally with the upper part 103. Instead, there is a connecting element V (FIG. 12) assigned to the upper part 103, on which the driven element 107a is formed. The connecting element V is inserted into the upper part 103 in a manner known per se to those skilled in the art so as to be removably longitudinally and form-fitting in the transverse direction Y and the height direction Z. The at least one driven element 107a, like the driven element 7a, basically comprises a support section 110a slidably supported on the control cam 109a. In the illustrated embodiment, the support section 110a is formed by a bearing surface 112a extending helically with a constant pitch.

[0064] The support section 110a and / or the support surface 112a are configured as an external thread AG, which is complementary to the internal thread IG. Simply put, the internal thread IG and the external thread AG form a kind of threaded spindle, by means of which the rotational movement of the drive wheel 106a can be converted into a translational movement of the driven element 107a and thus of the upper part 103.

[0065] Simply put, the driven element 107a may be considered a screw and the drive wheel 106a may be considered a nut.

[0066] The height adjustment mechanism E' is configured at least substantially, preferably completely, mirror-symmetrically to the height adjustment mechanism E. The height adjustment mechanism E' also comprises at least two drive wheels 106a, 106b and at least two driven elements 107a, 107b, which will hereinafter also be referred to as the first drive wheel 106a, the second drive wheel 106b, the first driven element 107a, and the second driven element 107b. With regard to the configuration and function of the second drive wheel 106b, the above description of the first drive wheel 106a applies analogously. Correspondingly, the same also applies to the function and configuration of the second driven element 107b. To avoid repetition, reference is made to the disclosures regarding the first drive wheel 106a and the first driven element 107a.

[0067] The control wheel 118 is located in front of the drive wheels 106a and 106b. The control wheel 118 is mounted on the lower part 102 so as to be rotatable about an axis of rotation oriented parallel to the axes of rotation of the drive wheels 106a and 106b. The two drive wheels 106a and 106b and the control wheel 118 each have spur teeth 119a, 119b, and 119b. The spur teeth 119 of the control wheel 118 mesh with the spur teeth 119a of the first drive wheel 106a and the spur teeth 119b of the second drive wheel 106b. In this way, their respective rotational movements are forcibly coupled and / or synchronized with each other. Counterclockwise rotation of the control wheel 118 causes clockwise rotation of the first drive wheel 106a and the second drive wheel 106b.

[0068] In the illustrated embodiment, the spur teeth 119a, 119b of the two drive wheels 106a, 106b are identical in terms of number of teeth and other tooth characteristics. The spur teeth 119 of the control wheel 118 have a greater number of teeth than the spur teeth 119a, 119b. The outer diameter of the control wheel 118 (not shown in detail) is larger than the outer diameter of the drive wheels 106a, 106b.

[0069] In the illustrated embodiment, the control wheel 118 is configured for indirect manual actuation, as described in more detail below. In a further embodiment, the control wheel is configured for direct manual rotational actuation.

[0070] The control wheel 118 in this example, like the drive wheels 106a, 106b, is provided with an internal thread IG'. Like the internal thread IG, the internal thread IG' is provided with a control cam (not shown in detail), more precisely with a control surface extending helically with a constant pitch. The internal thread IG' of the control wheel 118 interacts with an external thread AG' of the additional driven element 107c, which will also be referred to below as the third driven element 110c. The external thread AG' of the third driven element 107c also forms a support section, more precisely with a control surface extending helically with a constant pitch.

[0071] The control wheel 118 in this case serves as an additional, third drive wheel. The internal thread IG' and the external thread AG' are complementary to each other. The rotational direction of the internal thread IG' is opposite to the rotational direction of the internal thread IG of the drive wheels 106a, 106b. The same applies analogously to the rotational direction of the external thread AG'. Furthermore, the internal thread IG' has a thread pitch that is different from the thread pitch of the internal threads IG of the two drive wheels 106a, 106b. Therefore, the thread pitch of the external thread AG' is also different from the thread pitch of the external threads AG of the driven elements 107a, 107b.

[0072] The control wheel 118 is centrally located in the lateral direction Y between the first drive wheel 106a and the second drive wheel 106b.

[0073] The tibial trial implant 100 includes a first display wheel 130a and a second display wheel 130b. The first display wheel 130a is assigned to the first drive wheel 106a and is coupled to the first drive wheel 106a to transmit motion. The second display wheel 130b is assigned to the second drive wheel 106b and is coupled to the second drive wheel 106b to transmit motion. In a further embodiment, there is only one display wheel. Because the display wheels 130a, 130b are identical in configuration and function, to avoid repetition, only the first display wheel 130a will be described below. The disclosure in this regard also applies mutatis mutandis to the second display wheel 130b.

[0074] The first display wheel 130a is rotatably attached to the lower part 102 and includes a scale S' (not shown in detail). The scale S' is arranged on the outer periphery 131a of the first display wheel 130a. The scale S' may be formed, for example, by a series of graduated lines or numbers. The scale S' allows the adjustment position of the upper part 103 to be read, similar to the scale S of the tibial trial implant 1 (FIG. 5).

[0075] The motion transmission linkage converts the rotational motion of the first drive wheel 106a into the rotational motion of the first display wheel 130a. The motion transmission may be configured to be continuous or intermittent, i.e., stepwise. In the illustrated embodiment, the latter applies.

[0076] By means of intermittent motion transmission, which will be described in more detail below, continuous rotational motion of the first drive wheel 106a causes stepwise rotational motion of the display wheel 130a. In this embodiment, the intermittent motion transmission is performed by a first catch element 132a. A second catch element 132b is assigned to the second drive wheel 106b and the second display wheel 130b.

[0077] The first catch element 132a is connected to the first drive wheel 106a so as not to rotate. In this embodiment, the first catch element 132a is annular, coaxially aligned with the first drive wheel 106a, and fixed to the underside of the first drive wheel 106a by form-fitting, force-fitting, and / or material-fitting (not shown in detail). The first catch element 132a interacts with a section of the display wheel 130a provided for motion transmission. In this embodiment, the first catch element 132a has at least one, more precisely, two protrusions 133 protruding radially outward. In this embodiment, these are offset 180 degrees from each other in the circumferential direction of the first catch element 132a. The first display wheel 130a has a radially recessed recess 134 (not shown in detail) on its underside (FIG. 16). The protrusions 133 engage with the recesses 134 for intermittent motion transmission.

[0078] In the illustrated embodiment, one 360° (continuous) rotation of the first drive wheel 106a results in two incremental rotational movements of the first display wheel 130a. In this example, there are exactly six recesses 134 positioned offset from one another by 60°, so the first display wheel 130a rotates in two increments of 60° each.

[0079] It should be understood that the above description applies equally with respect to the configuration and function of the second catch element 132b and the second display wheel 130b.

[0080] The control wheel 118 is assigned a latch element 135. As will be explained in more detail below, the latch element forms a releasable latch connection with the lower part 102, more precisely with its lower shell 102b. The latch connection can be defeated and is established when the control wheel 118, and thus the two drive wheels 106a, 106b, are in a predetermined rotational position. In this way, the user receives haptic and / or acoustic feedback during adjustment of the height adjustment mechanism E' as soon as a predetermined rotational position and thus the height adjustment of the upper part 103 is reached.

[0081] In the illustrated embodiment, the latch element 135 is annular and connected to the underside of the control wheel 118 by force, form, and / or material (not shown). In this example, the latch element 135 is coaxially aligned with the control wheel 118 and is rotatable together with the control wheel 118 about its axis of rotation. The latch element 135 interacts with a complementary latch mating element 139 (FIG. 12), which in this example is formed as a cylindrical recess located on the underside. The cylindrical recess is recessed in the upper surface of the lower shell 102b. In the assembled, ready-to-use state, the catch element 135 is received in the cylindrical recess 139. In the illustrated embodiment, the catch element 135 includes two spring arms 136 offset by 180°, each of which terminates in a latch protrusion 137. The latch protrusions 137 are radially resiliently movable and interact with the latch recesses 140 for latching.

[0082] The tibial trial implant 100 further comprises a handle G, shown with the aid of Figures 17 and 18, which is detachably connected (in a manner not described in detail) to the lower part 102. On the one hand, the handle G is used to easily handle the lower part 102. On the other hand, the handle G comprises an operating mechanism B, which is used to easily and particularly ergonomically operate the height adjustment mechanism E'.

[0083] The handle G extends longitudinally between a proximal end 150 and a distal end 151. In this embodiment, the operating mechanism B is arranged in the region of the distal end 151. For releasable connection with the lower part 102, the handle G in this embodiment comprises two connection elements, each in the form of a latch element 152 arranged at the distal end 151. In one embodiment (not shown), there is only one latch element. The two latch elements 152 are arranged spaced apart from one another in the lateral direction Y and, in the connected state to the lower part 102, interact with complementary connection elements in the form of latch mating elements 153. The latch mating elements 153 are therefore arranged spaced apart from one another in the lateral direction Y and, in this embodiment, on either side of the control wheel 118.

[0084] In the illustrated embodiment, each latch element 152 is configured as a male latch element and each latch mating element 153 is configured as a female latch element or latch slot. The latch elements 152 protrude distally from the distal end 151 of the handle G. Complementary latch elements 153 extend distally of the handle G into the lower portion 102. The latch mating elements 153 are formed on the upper shell 102a.

[0085] The operating mechanism B includes an operating wheel 154 that is actively connected to the drive wheels 106a, 106b at least indirectly to transmit force and motion when the handle G is connected to the lower part 102. The operating wheel 154 is rotatably attached to the handle G about an axis of rotation (not shown in detail) and is sometimes referred to as a thumbwheel. Rotating the operating wheel 154 rotates the drive wheels 106a, 106b, which correspondingly adjusts the height of the upper part 103.

[0086] In the illustrated embodiment, the operating wheel is actively indirectly connected to the drive wheels 106a, 106b by a transmission wheel 155 rotatably mounted on the handle G and a control wheel 118. To this end, the operating wheel 154 is provided with spur teeth (not shown in detail) that engage with spur teeth on the transmission wheel 155. The spur teeth on the transmission wheel 155 mesh with spur teeth 119 on the control wheel 118. When the handle G is latched to the lower part 102, the teeth on the transmission wheel 155 engage with the teeth 119 on the control wheel 118. When the handle G is pulled away from the lower part 102, the meshing between the transmission wheel 155 and the control wheel 118 is released. The items listed below were included in the claims of the original patent application. (Item 1) A tibial trial implant (1,100) for use in knee replacement surgery, comprising: a lower part (2, 102) provided for tibial fixation; an upper part (3, 103) arranged above the lower part (2, 102) in a height direction (Z), the upper part (3, 103) having a sliding surface (5, 105) arranged on its upper surface and provided for sliding interaction with a femoral component; a height adjustment mechanism (E, E') actively connected to the upper part (3, 103) and the lower part (2, 102), by which the upper part (3, 103) is guided displaceably in the height direction (Z) relative to the lower part (2, 102) between a first adjustment position in which the sliding surface (5, 105) is located at a first height (H1) above the lower part (2, 102) and a second adjustment position in which the sliding surface (5, 105) is located at a second height (H2) above the lower part (2, 102), The height adjustment mechanism (E, E') includes a cam gear, The cam gear is at least one drive wheel (6a, 6b, 106a, 106b) attached to the lower part (2, 102) so as to be rotatable about a first rotation axis (8a, 8b) oriented parallel to the height direction (Z) and having a control cam (9a, 9b, 109a, 109b) rising in the height direction (Z); at least one driven element (7a, 7b, 107a, 107b) rigidly connected to said upper part (3, 103) and comprising a support section (10a, 10b, 110a, 110b) slidably supported on said control cam (9a, 9b, 109a, 109b), A tibial trial implant (1, 100) in which the upper part (3, 103) can be displaced between the first adjustment position and the second adjustment position by rotational movement of the drive wheels (6a, 6b, 106a, 106b). (Item 2) The tibial trial implant (1, 100) according to item 1, wherein the control cam (9a, 109a) is formed by a control surface (11a, 111a) extending spirally at a constant pitch coaxially around the first rotation axis (8a). (Item 3) A tibial trial implant (1, 100) according to item 1 or 2, wherein the support section (10a, 110a) is formed by a support surface (12a, 112a) extending spirally at a constant pitch coaxially around the first rotation axis (8a, 108a). (Item 4) the upper part (3) and the lower part (2) are detachably connected by a plug connection formed between at least one of the driving wheels (6a) and at least one of the driven elements (7a) and are slidable relative to each other along a plug axis (17a); 4. The tibial trial implant (1) according to any one of items 1 to 3, wherein the plug axis (17a) is oriented coaxially with the first rotation axis (8a). (Item 5) At least one of the drive wheels (6a) has a cylindrical bore (14a) extending coaxially with the first rotation shaft (8a); 5. The tibial trial implant (1) according to item 4, wherein a complementary plug cylinder (16a) of at least one of the driven elements (7a) is removably inserted into the cylindrical hole (14a) to form the plug connection. (Item 6) 6. The tibial trial implant (1) according to any one of items 1 to 5, wherein the height adjustment mechanism (E) comprises a worm gear (18, 19a, 19b) in front of the cam gear. (Item 7) 7. The tibial trial implant (1) according to item 6, wherein the worm gears (18, 19a, 19b) are self-retaining. (Item 8) the worm gears (18, 19a, 19b) comprise a worm drive shaft (18) mounted on the lower part (2) so as to be rotatable about a second rotation axis (20) oriented perpendicular to the height direction (Z); 8. The tibial trial implant (1) according to item 6 or 7, wherein the worm drive shaft (18) interacts with a toothed outer peripheral section (19a, 19b) of at least one of the drive wheels (6a, 6b) or with a worm wheel in front of at least one of the drive wheels (6a, 6b). (Item 9) The worm drive shaft (18) has at one end a rotary operating section (21); Item 9. The tibial trial implant (1) according to item 8, wherein the rotational manipulation section (21) is configured for manual and / or tool-driven rotational manipulation of the worm drive shaft (18) about the second rotational axis (20). (Item 10) at least one of the drive wheels (6a, 6b) and / or the worm drive shaft (18) is slidably and rotatably mounted on a sliding bearing surface (25b) of the lower part (2); 10. The tibial trial implant (1) according to any one of items 1 to 9, wherein the sliding bearing surface (25b) comprises a plurality of radial cleaning protrusions (26b). (Item 11) a scale display (S) is formed between the lower part (2) and at least one of the drive wheels (6a, 6b); 11. A tibial trial implant (1) according to any one of items 1 to 10, wherein the scale display (S) has a display element and a scale, allowing the reading of the adjustment position of the upper part (3) and / or the height (H1, H2) of the sliding surface (5). (Item 12) The lower part (2, 102) is configured as two shells, comprising an upper shell (2a, 102a) and a lower shell (2b, 102b); 12. The tibial trial implant (1, 100) according to any one of items 1 to 11, wherein at least one of the drive wheels (6a, 6b, 106a, 106b) and / or the worm drive shaft (18) is held between the upper shell (2a, 102a) and the lower shell (2b, 102b). (Item 13) The height adjustment mechanism (E, E') is configured at least substantially, preferably completely, mirror-symmetrically with respect to the vertical median plane (XZ), 13. A tibial trial implant (1,100) according to any one of items 1 to 12, comprising at least two drive wheels (6a, 6b, 106a, 106b) and at least two driven elements (7a, 7b, 107a, 107b). (Item 14) There are at least two drive wheels (106a, 106b) and at least one control wheel (118), each having spur teeth (119a, 119b, 119b); 14. The tibial trial implant (100) according to any one of items 1 to 13, wherein the control wheel (118) is in spur tooth mesh with the two drive wheels (106a, 106b). (Item 15) Item 15. The tibial trial implant (100) according to item 14, wherein at least one of the control wheels (118) comprises an additional control cam (109c) that interacts with an additional support section (110c) of an additional driven element (107c). (Item 16) at least one of the drive wheels (106a, 106b) is coupled to transmit motion to at least one display wheel (130a, 130b) rotatably mounted on the lower part (102); A tibial trial implant (100) according to any one of items 1 to 15, wherein the display rings (130a, 130b) are provided with a scale (S') that allows reading of the adjustment position of the upper part (103) and / or the height of the sliding surface (105). (Item 17) there is at least one catch element (132a, 132b) non-rotatably connected to at least one of said drive wheels (106a, 106b); Item 17. The tibial trial implant (100) of item 16, wherein at least one of the catch elements (132a, 132b) intermittently interacts with the display wheels (130a, 130b) such that continuous rotational movement of the drive wheels (106a, 106b) results in gradual rotational movement of the display wheels (130a, 130b). (Item 18) a latch device comprising a latch element (135) operatively connected to at least one of said drive wheels (106a, 106b) to prevent rotation and a complementary latch mating element (139) disposed on said lower portion (102); A tibial trial implant (100) according to any one of items 1 to 17, wherein the latch element (135) and the latch mating element (139) interact to form a deactivatable latch connection when at least one of the drive wheels (106a, 106b) is in a predetermined rotational position. (Item 19) a handle (G) having an operating mechanism (B) and removably connectable to the lower part (102); A tibial trial implant (100) according to any one of items 1 to 18, wherein the operating mechanism (B) comprises an operating wheel (154) actively connected to at least one of the drive wheels (106a, 106b) with the handle (G) connected to the lower part (102). (Item 20) the handle (G) comprises at least one connecting element (152) disposed at its distal end (151); 20. The tibial trial implant (100) of item 19, wherein at least one of the connection elements (152) is removably connected to a complementary connection element (153) of the lower portion (102) to connect the handle (G) to the lower portion (102).

Claims

1. A tibial trial implant (1,100) for use in knee replacement surgery, comprising: a lower part (2, 102) provided for tibial fixation; an upper part (3, 103) arranged above the lower part (2, 102) in a height direction (Z), the upper part (3, 103) having a sliding surface (5, 105) arranged on its upper surface and provided for sliding interaction with a femoral component; a height adjustment mechanism (E, E') actively connected to the upper part (3, 103) and the lower part (2, 102), by which the upper part (3, 103) is guided displaceably in the height direction (Z) relative to the lower part (2, 102) between a first adjustment position in which the sliding surface (5, 105) is located at a first height (H1) above the lower part (2, 102) and a second adjustment position in which the sliding surface (5, 105) is located at a second height (H2) above the lower part (2, 102), The height adjustment mechanism (E, E') includes a cam gear, The cam gear is at least one drive wheel (6a, 6b, 106a, 106b) attached to the lower part (2, 102) so as to be rotatable about a first rotation axis (8a, 8b) oriented parallel to the height direction (Z) and having a control cam (9a, 9b, 109a, 109b) rising in the height direction (Z); at least one driven element (7a, 7b, 107a, 107b) rigidly connected to said upper part (3, 103) and comprising a support section (10a, 10b, 110a, 110b) slidably supported on said control cam (9a, 9b, 109a, 109b), a rotational movement of the drive wheels (6a, 6b, 106a, 106b) allows the upper part (3, 103) to be displaced between the first and second adjustment positions, a scale display (S) is formed between the lower part (2) and at least one of the drive wheels (6a, 6b), the scale display (S) comprising a display element and a scale, allowing the readout of the adjustment position of the upper part (3) and / or the height (H1, H2) of the slide (5), or At least one of the drive wheels (106a, 106b) is connected to transmit motion to at least one display wheel (130a, 130b) rotatably mounted on the lower part (102), and the display wheel (130a, 130b) is provided with a scale (S') that allows reading of the adjustment position of the upper part (103) and / or the height of the sliding surface (105).

2. The tibial trial implant (1, 100) according to claim 1, wherein the control cam (9a, 109a) is formed by a control surface (11a, 111a) extending helically at a constant pitch coaxially around the first rotation axis (8a).

3. 3. The tibial trial implant (1, 100) according to claim 1 or 2, wherein the support section (10a, 110a) is formed by a support surface (12a, 112a) extending helically at a constant pitch coaxially around the first rotation axis (8a, 108a).

4. the upper part (3) and the lower part (2) are detachably connected by a plug connection formed between at least one of the driving wheels (6a) and at least one of the driven elements (7a) and are slidable relative to each other along a plug axis (17a); 4. The tibial trial implant (1) according to any one of claims 1 to 3, wherein the plug axis (17a) is oriented coaxially with the first rotation axis (8a).

5. At least one of the drive wheels (6a) has a cylindrical bore (14a) extending coaxially with the first rotation axis (8a); 5. The tibial trial implant (1) according to claim 4, wherein a complementary plug cylinder (16a) of at least one driven element (7a) is removably inserted into the cylindrical hole (14a) to form the plug connection.

6. 6. The tibial trial implant (1) according to any one of claims 1 to 5, wherein the height adjustment mechanism (E) comprises a worm gear (18, 19a, 19b) in front of the cam gear.

7. The tibial trial implant (1) according to claim 6, wherein the worm gear (18, 19a, 19b) is self-retaining.

8. the worm gear (18, 19a, 19b) comprises a worm drive shaft (18) mounted on the lower part (2) so as to be rotatable about a second axis of rotation (20) oriented perpendicular to the height direction (Z); 8. The tibial trial implant (1) according to claim 6 or 7, wherein the worm drive shaft (18) interacts with a toothed outer peripheral section (19a, 19b) of at least one of the drive wheels (6a, 6b) or with a worm wheel in front of at least one of the drive wheels (6a, 6b).

9. The worm drive shaft (18) comprises at one end a rotary operating section (21); 9. The tibial trial implant (1) according to claim 8, wherein the rotational manipulation section (21) is configured for manual and / or tool-driven rotational manipulation of the worm drive shaft (18) about the second rotational axis (20).

10. at least one of the drive wheels (6a, 6b) and / or the worm drive shaft (18) is slidably and rotatably mounted on a sliding bearing surface (25b) of the lower part (2); 10. The tibial trial implant (1) according to claim 8 or 9, wherein the sliding bearing surface (25b) comprises a plurality of radial cleaning protrusions (26b).

11. The lower part (2, 102) is configured as two shells, comprising an upper shell (2a, 102a) and a lower shell (2b, 102b); 11. The tibial trial implant (1, 100) according to any one of claims 8 to 10, wherein at least one of the drive wheels (6a, 6b, 106a, 106b) and / or the worm drive shaft (18) is held between the upper shell (2a, 102a) and the lower shell (2b, 102b).

12. The height adjustment mechanisms (E, E') are configured at least substantially mirror-symmetrically with respect to a vertical median plane (X-Z), 12. The tibial trial implant (1, 100) according to any one of claims 1 to 11, wherein at least two drive wheels (6a, 6b, 106a, 106b) and at least two driven elements (7a, 7b, 107a, 107b) are provided.

13. There are at least two drive wheels (106a, 106b) and at least one control wheel (118), each of which has spur teeth (119a, 119b, 119b); The tibial trial implant (100) according to any one of claims 1 to 12, wherein the control wheel (118) is in spur tooth mesh with the two drive wheels (106a, 106b).

14. The tibial trial implant (100) according to claim 13, wherein at least one of the control wheels (118) comprises an additional control cam (109c) that interacts with an additional support section (110c) of an additional driven element (107c).

15. there is at least one catch element (132a, 132b) connected non-rotatably to at least one of said drive wheels (106a, 106b); 15. The tibial trial implant (100) according to any one of claims 1 to 14, wherein at least one of the catch elements (132a, 132b) intermittently interacts with the display wheel (130a, 130b) such that continuous rotational movement of the drive wheel (106a, 106b) results in gradual rotational movement of the display wheel (130a, 130b).

16. a latch device comprising a latch element (135) operatively connected to at least one of said drive wheels (106a, 106b) so as not to rotate and a complementary latch mating element (139) disposed on said lower portion (102); 16. The tibial trial implant (100) according to any one of claims 1 to 15, wherein the latch element (135) and the latch mating element (139) interact with each other to form a deactivatable latch connection when at least one of the drive wheels (106a, 106b) is in a predetermined rotational position.

17. a handle (G) having an operating mechanism (B) and removably connectable to the lower part (102); The tibial trial implant (100) according to any one of claims 1 to 16, wherein the operating mechanism (B) comprises an operating wheel (154) actively connected to at least one of the drive wheels (106a, 106b) with the handle (G) connected to the lower part (102).

18. said handle (G) comprising at least one connecting element (152) arranged at its distal end (151); 18. The tibial trial implant (100) of claim 17, wherein at least one of the connection elements (152) is removably connected to a complementary connection element (153) of the lower portion (102) for connecting the handle (G) to the lower portion (102).

Citation Information

Patent Citations

  • Trial prostheses, adjustment devices, and related methods for arthroplasty.

    JP1999513274A

  • distractor

    US20130138112A1