Bone screws, bone treatment devices equipped therewith, and bone treatment devices for the distal radius
The bone screw with a tapered head and cutting edge minimizes interference by allowing stable, multi-angle fixation to bone plates, addressing engagement instability and protrusion issues.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-05-10
- Publication Date
- 2026-04-07
AI Technical Summary
Existing bone screws with angle-adjustable mechanisms for fixation to bone plates experience unstable engagement and potential interference with bones when the screw head protrudes below the plate, leading to issues like the plate floating away from the bone surface.
A bone screw design featuring a tapered head with male threads and recesses, allowing fixation at multiple angles while minimizing interference by incorporating a cutting edge and relief portion to prevent protrusion-related issues.
The design ensures stable fixation at various angles without bone interference, enabling a thinner bone plate configuration and reducing the risk of the screw head protruding below the plate.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to a bone screw that can be fixed immovably in the axial direction and non-rotatably at a plurality of angles with respect to a bone plate having a through-hole provided with an internal thread groove on its inner surface, a bone treatment instrument including the same, and a bone treatment instrument for the distal end of the radius.
Background Art
[0002] Fractures at the ends (distal end and proximal end) of bones or in the vicinity thereof may result in many fracture fragments that require reconnection. In the treatment of such fracture sites, after restoring the position and posture of the fracture fragments, a bone plate that is cross-mounted to the fracture fragments and the bone body is used to fix the fracture fragments and the bone body. Some of these bone plates have an opening for fixing a bone screw. And, as in JP-T-2012-502687 (Patent Document 1) and JP-A-2006-130317 (Patent Document 2), there are bone plates provided with an internal thread portion on the inner surface of the opening for screw fixation. For such bone plates, a bone screw having a male thread portion that can be screwed with the above internal thread portion provided on the head (see FIG. 29 of Patent Document 1 and FIG. 5 of Patent Document 2) is used. As a bone screw, those having the above male thread portion have a higher fixing effect on the bone plate.
[0003] The above-mentioned bone screw can be fixed to the bone plate with the longitudinal axis of the bone screw aligned with the axis of the opening of the bone plate, but this angle (the relative angle between the bone plate and the bone screw) may not be optimal. For example, depending on the shape of the bone at the application site, the force applied to the bone, and other intended fixation states, an angle different from the initial setting may be desired. Therefore, in recent years, there has been a demand for an angle-adjustable fixing mechanism (also called a polyaxial locking mechanism) that can fix bone screws to bone plates while allowing for freedom of movement in the insertion direction. When such a mechanism is adopted, it is possible to insert or fix bone screws at multiple angles, making it possible to fix bone fragments in desired positions. For example, Japanese Patent Publication No. 2016-512711 (Patent Document 3) and Japanese Patent Publication No. 2019-526375 (Patent Document 4) disclose configurations for fixing bone screws to bone plates at an angle-adjustable position. [Prior art documents] [Patent Documents]
[0004] [Patent Document 1] Special Publication 2012-502687 [Patent Document 2] Japanese Patent Publication No. 2006-130317 [Patent Document 3] Special Publication 2016-512711 [Patent Document 4] Special Publication 2019-526375 [Overview of the Initiative] [Problems that the invention aims to solve]
[0005] In the configurations described in Patent Documents 3 and 4, the threaded portion (thread) formed in the hole on the plate side is divided by at least one recess extending in the axial direction of the hole, and the divided threaded portion is engaged (bite) with the threaded portion formed on the head of the bone screw, thereby fixing the bone screw to the bone plate at multiple angles. However, when such a configuration is adopted, the engagement between the bone screw and the bone plate becomes unstable (it is difficult to reliably engage them at the intended location) compared to a mechanism that fixes the bone screw to the bone plate in a single insertion direction (also called a monoaxial locking mechanism). As a result, as shown in Figures 3C, 3D, and 3F of Patent Document 3, and Figures 7 and 8 of Patent Document 4, the head of the bone screw or the male threaded portion formed on the head may unintentionally protrude below the bone plate. The inventors have found that in such cases, a part of the bone screw that protrudes below the bone plate (the head or the male threaded portion formed on the head) may interfere with the bone, potentially causing problems such as the bone plate floating away from the bone surface. Therefore, the object of the present invention is to provide a bone screw that can be fixed to a bone plate having a through hole with a female screw portion having a screw groove on its inner surface at multiple angles, so as to be immovable and immovable in the axial direction of the through hole, as well as a bone treatment device and a distal radius bone treatment device equipped therewith, which can reduce interference with the bone when the head protrudes below the bone plate, as well as a bone treatment device and a distal radius bone treatment device equipped therewith. [Means for solving the problem]
[0006] The following will achieve the above objectives: (1) A bone screw that can be fixed to a bone plate having a through hole with a female threaded portion having a screw groove on its inner surface at multiple angles, so as to be immovable and immovable in the axial direction of the through hole, The bone screw comprises a shaft portion that can pass through the through hole of the bone plate, and a head portion provided at the base end of the shaft portion, having a male thread on its outer surface that can be screwed into the female thread portion of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. The head portion is substantially tapered, with the diameter decreasing towards the tip, and the male thread portion and multiple recesses are formed in the tapered portion. The head comprises an upright surface formed on the inner surface of the recess on the rear side in the rotational direction of the male screw portion, and an edge portion located at the outer edge of the upright surface. In the axial direction of the bone screw, the base end of the recess and the edge portion is located between the base end and the tip of the male thread portion, and the tip of the recess and the edge portion is located closer to the tip than the tip of the male thread portion. Furthermore, the head is provided with a relief portion formed on the tip side of the edge portion on the rear side in the direction of rotation, and the head is provided with a cutting edge portion for cutting bone formed by the edge portion, the upright surface and the relief portion, at least a part of the tip side of the edge portion.
[0007] (2) The bone screw according to (1) above, wherein the relief portion is a groove portion that extends in the axial direction of the bone screw and is formed on the rear side in the rotational direction of the edge portion. (3) The bone screw according to (1) or (2) above, wherein in the axial direction of the bone screw, the tip of the male thread portion is located between the base end and the tip of the cutting edge portion. (4) The tapered portion comprises a first tapered portion formed on the base end side of the tapered portion and a second tapered portion extending from the tip of the first tapered portion and having a larger taper angle than the first tapered portion. The male thread portion has its base end located on the base end side of the first tapered portion, and its tip located on the second tapered portion. The formation area of the second tapered portion, including the base and tip It extends to, The cutting edge portion is a bone screw according to any one of (1) to (3) above, wherein the base end is located in the second tapered portion and the tip is located on the tip side of the tip of the male thread portion.
[0008] Furthermore, the following items will achieve the above objectives. (5) A bone screw that can be fixed to a bone plate having a through hole with a female threaded portion having a screw groove on its inner surface at multiple angles, so as to be immovable and immovable in the axial direction of the through hole, The bone screw comprises a shaft portion that can pass through the through hole of the bone plate, and a head portion provided at the base end of the shaft portion, having a male thread on its outer surface that can be screwed into the female thread portion of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. The head portion is substantially tapered, with the diameter decreasing towards the tip, and the male thread portion and multiple recesses are formed in the tapered portion. The head comprises an upright surface formed on the inner surface of the recess on the rear side in the rotational direction of the male screw portion, and an edge portion located at the outer edge of the upright surface. In the axial direction of the bone screw, the base end of the recess and the edge portion is located between the base end and the tip of the male thread portion, and the tip of the recess and the edge portion is located closer to the tip than the tip of the male thread portion. Furthermore, the tapered portion comprises a first tapered portion formed on the base end side of the tapered portion, and a second tapered portion extending from the tip of the first tapered portion and having a larger taper angle than the first tapered portion. The male thread portion has its base end located on the base end side of the first tapered portion, and its tip located on the second tapered portion. The formation area of the second tapered portion, including the base and tip It extends to, In the axial direction of the bone screw, the tip of the male thread portion is located between the base and tip of the edge portion, and the bone screw is capable of cutting bone at least in the tip portion of the edge portion.
[0009] (6) The bone screw according to any one of (1) to (5) above, wherein the axial length from the base end to the tip of the recess is 1 / 3 or less of the axial length from the base end of the head to the tip of the recess. (7) The bone screw according to any one of (1) to (6) above, wherein the imaginary line connecting the tip and base of the edge portion when the bone screw is viewed from the tip side is parallel to the imaginary line and is located on the rear side in the rotational direction of the male screw portion with respect to the imaginary line passing through the central axis of the bone screw. (8) The bone screw according to any one of (1) to (6) above, wherein the imaginary line connecting the tip and base of the edge portion when the bone screw is viewed from the tip side passes through the central axis of the bone screw. (9) The bone screw according to any one of (1) to (8) above, wherein the upright surface of the recess is perpendicular to the bottom surface of the recess or is inclined forward or backward in the rotational direction. (10) The bone screw according to any one of (1) to (9) above, wherein the male thread portion of the head has multiple threads, and the number of threads of the male thread portion of the head is the same as the number of recesses. (11) The bone screw according to (4) or (5) above, wherein the taper angle of the first tapered portion is 30 to 40° and the taper angle of the second tapered portion is 80 to 100°.
[0010] Furthermore, the following items will achieve the above objectives. (12) A bone treatment device comprising a bone plate having a through hole with a female screw portion having a screw groove on its inner surface, and a bone screw as described in any of (1) to (11) above, A bone treatment device capable of fixing the bone screw to the bone plate at multiple angles, so as to be immovable and immovable in the axial direction of the through hole.
[0011] (13) The bone plate comprises a base portion, a through hole penetrating the base portion, and a plate-side threaded portion formed within the through hole, The plate-side threaded portion comprises a first thread groove formed on the inner surface of the through hole and extending axially in the through hole in one rotational direction, a second thread groove formed on the inner surface of the through hole and extending axially in the through hole in a rotational direction opposite to the first rotational direction, intersecting the first thread groove at least at one point, and a thread-dividing portion formed by the intersection of the first thread groove and the second thread groove. The first thread groove of the plate-side threaded portion is capable of being screwed into the male threaded portion formed on the bone screw, The thread segmentation part formed by the intersection of the first thread groove and the second thread groove of the plate-side thread part can be pressure-bonded or engaged with the male thread part formed on the bone screw, and by the pressure-bonding or engagement of the male thread part formed on the bone screw to the thread segmentation part, the bone screw can be fixed in a plurality of angles in the axial direction of the through hole so as not to move and not to rotate. The bone treatment tool according to the above (12).
[0012] Also, what achieves the above object is as follows. (14) A bone plate having a through hole provided with an internal thread part having a thread groove on its inner surface, and a bone screw according to any one of the above (1) to (11), which is a bone treatment tool for the distal end of the radius used for the treatment of a fracture at the distal end of the radius, The bone plate includes a substrate part and the through hole penetrating the substrate part, The substrate part includes a head part and a plate main body part, the head part and the plate main body part are connected in an inclined manner, and the through hole is provided in the head part. A bone treatment tool for the distal end of the radius.
Advantages of the Invention
[0013] In the bone screw of the present invention, the bone treatment tool including the same, and the bone treatment tool for the distal end of the radius, a plurality of concave parts (including the rising surface and the edge part) are formed at an appropriate position of the head (taper part) of the bone screw, and at the tip side part of the head, a cutting edge part for cutting the bone formed by the edge part, the rising surface, and the relief part, or an edge part capable of cutting the bone is provided. Thereby, when fixing the bone screw to the bone plate, even if a part of the bone screw (the head or the male thread part formed on the head) protrudes below the bone plate unintentionally, interference between the part of the bone screw and the bone can be avoided or reduced. Further, in such a bone screw, the bone treatment tool including the same, and the bone treatment tool for the distal end of the radius, it is possible to allow a part of the bone screw (the head or the male thread part formed on the head) to slightly protrude below the bone plate, and it becomes possible to design the bone plate for fixing the bone screw to be as thin as possible. [Brief explanation of the drawing]
[0014] [Figure 1] Figure 1 is a front view showing an embodiment of the bone screw of the present invention. [Figure 2] Figure 2 is a magnified diagram illustrating the head of the bone screw shown in Figure 1. [Figure 3] Figure 3 is an enlarged bottom view of the bone screw shown in Figure 1. [Figure 4] Figure 4 is an explanatory diagram illustrating the manufacturing process of the bone screw shown in Figure 1. [Figure 5] Figure 5 is an explanatory diagram illustrating the manufacturing process of the bone screw shown in Figure 1. [Figure 6] Figure 6 is a schematic diagram illustrating the state in which the bone screw shown in Figure 1 is fixed to the bone plate. [Figure 7] Figure 7 is a front view showing another embodiment of the bone screw of the present invention. [Figure 8] Figure 8 is a magnified diagram illustrating the head of the bone screw shown in Figure 7. [Figure 9] Figure 9 is an explanatory diagram of the AA section in Figure 7. [Figure 10] Figure 10 is a front view showing another embodiment of the bone screw of the present invention. [Figure 11] Figure 11 is a magnified diagram illustrating the head of the bone screw shown in Figure 10. [Figure 12] Figure 12 is a plan view showing an example of a bone plate in the bone treatment device of the present invention. [Figure 13] Figure 13 is a side view showing an example of a bone treatment device including the bone plate shown in Figure 12. [Figure 14] Figure 14 is a plan view illustrating a magnified view of the through-hole portion of the bone plate shown in Figure 12. [Figure 15] Figure 15 is an explanatory diagram of the BB cross-section shown in Figure 14. [Figure 16] Figure 16 is an explanatory diagram of the CC cross-section shown in Figure 14. [Figure 17]Figure 17 is a cross-sectional diagram corresponding to Figure 16, illustrating the formation process of the female thread portion (plate-side thread portion) in the bone plate shown in Figure 12. [Figure 18] Figure 18 is a cross-sectional diagram corresponding to Figure 16, illustrating the formation process of the female thread portion (plate-side thread portion) in the bone plate shown in Figure 12. [Modes for carrying out the invention]
[0015] The bone screw of the present invention will be described using the embodiment shown in the drawings. In this specification, the upper side of Figure 1 will be referred to as the proximal end and the lower side as the tip end. The bone screw 10 of the present invention is a bone screw that can be fixed to a bone plate having a through hole with a female threaded portion (hereinafter also referred to as the plate-side threaded portion) having a screw groove on its inner surface, at multiple angles, so as to be immovable and immovable in the axial direction of the through hole. The bone screw 10 comprises a shaft portion 11 that can pass through the through hole of the bone plate, and a head portion 13 provided at the base end of the shaft portion 11, which has a male threaded portion (hereinafter also referred to as the bone screw-side threaded portion) 12 on its outer surface that can be screwed into the female threaded portion of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. The head portion 13 is substantially the entire tapered portion 14 that becomes smaller in diameter towards the tip, and the male threaded portion 12 and multiple (in this case, three) recesses 15 are formed in the tapered portion 14. The head portion 13 comprises an upright surface 16 formed on the inner surface of the recesses 15 on the rear side in the rotational direction of the male threaded portion 12, and an edge portion 17 located on the outer edge of the upright surface 16. In the axial direction of the bone screw 10, the base ends of the recess 15 and the edge portion 17 are located between the base and tip of the male thread portion 12, and the tips of the recess 15 and the edge portion 17 are located closer to the tip than the tip of the male thread portion 12. Furthermore, the head 13 is provided with a relief portion 18 (in this embodiment, a groove extending in the axial direction) formed on the tip side portion and on the rotational rear side of the edge portion 17, and the head 13 is provided with a cutting edge portion 19 for cutting bone formed by the edge portion 17, the upright surface 16, and the relief portion 18, at least in a part of the tip side portion of the edge portion 17.
[0016] More specifically, as shown in Figures 1 to 6, the bone screw 10 of this embodiment has a shaft portion 11 and a head portion 13. The surface of the shaft portion 11 is smooth and is capable of passing through the through hole of the bone plate. As with the bone screw 10a described later, a screw portion 20 may be formed on the shaft portion 11 (see Figure 7). The shaft portion 11 is also capable of entering the bone (the pre-drilled hole formed in the target bone), and its outer diameter varies depending on the area to be treated, but is preferably 2.0 mm to 7.5 mm, and particularly preferably 2.5 to 4.0 mm.
[0017] The head 13 of the bone screw 10 in this embodiment is connected to the base end of the shaft 11 and is a tapered portion 14 that becomes smaller in diameter towards the tip. In this embodiment, as shown in Figure 2, the tapered portion 14 is formed almost entirely on the base end portion of the head 13 (the portion that has a curved shape or the like to prevent damage to the surrounding area). This makes it easier to fix the bone screw 10 to the bone plate at multiple angles, so that it cannot move or rotate in the axial direction of the through hole in the bone plate. As shown in Figure 6, it is preferable that the bone screw 10 can be fixed to the bone plate (31) at multiple angles (θ) from 0° to 15° with respect to the axial direction (Q) of the through hole (32). As shown in Figure 6, a recess 21 for connecting a rotating jig (e.g., a screwdriver) is formed on the base end surface of the head 13. The recess 21 for connecting a rotating jig is formed in a shape that corresponds to the tip shape of the rotating jig.
[0018] In this embodiment, the tapered portion 14 comprises a first tapered portion 22 formed on the base end side of the tapered portion 14, and a second tapered portion 23 extending from the tip of the first tapered portion 22 and having a larger taper angle than the first tapered portion 22. Specifically, as shown in Figure 4, the taper angle (θ2) of the second tapered portion 23 (second tapered portion forming portion 25) is set to be larger than the taper angle (θ1) of the first tapered portion 22 (first tapered portion forming portion 24). It is preferable that the taper angle (θ1) of the first tapered portion 22 (first tapered portion forming portion 24) be set in the range of 30 to 40° (here, 35°), and the taper angle (θ2) of the second tapered portion 23 (second tapered portion forming portion 25) be set in the range of 80 to 100° (here, 90°). Furthermore, it is preferable that the axial length (L2) of the second tapered portion 23 (second tapered portion forming portion 25) is set shorter than the axial length (L1) of the first tapered portion 22 (first tapered portion forming portion 24), and it is more preferable that the axial length (L2) of the second tapered portion 23 (second tapered portion forming portion 25) is set in the range of 3 / 9 to 4 / 9 of the axial length (L1) of the first tapered portion 22 (first tapered portion forming portion 24).
[0019] The head 13 of the bone screw 10 in this embodiment is provided with a male threaded portion (bone screw side threaded portion) 12 on its outer surface. In this embodiment, the male threaded portion 12 is formed in the tapered portion 14 of the head 13. More specifically, the base end of the male threaded portion 12 is located on the base end side of the first tapered portion 22, and the tip extends to the second tapered portion 23. In other words, the male threaded portion 12 is formed in the tapered portion 14 of the head 13 of the bone screw 10, covering substantially the entire length of the first tapered portion 22 (especially without interruption at the tip of the first tapered portion 22), and its tip (end) extends to the second tapered portion 23. As a result, the male threaded portion (bone screw side threaded portion) 12 can screw or engage (for example, press-fit or engage) with the female threaded portion (plate side threaded portion) of the through hole in the bone plate over substantially the entire length of the first tapered portion 22, making it easier to fix the bone screw 10 to the bone plate. Furthermore, it is preferable that the tip of the male threaded portion 12 does not extend to the tip of the head 13. In other words, it is preferable that the head 13 has a non-male threaded portion at its tip.
[0020] The male threaded portion 12 has a helical thread that constitutes a so-called right-hand thread, which progresses axially in a clockwise rotation when viewed from the side of the head 13 (base end side) in the axial direction of the bone screw 10 in a plan view. The male threaded portion 12 is a tapered thread formed on a tapered portion 14 (first tapered portion 22 and second tapered portion 23) formed on the head 13 of the bone screw 10, which becomes smaller in diameter towards the tip. Furthermore, the male threaded portion 12 can be screwed into or engage with (for example, press-fit or engage) the female threaded portion of the bone plate.
[0021] More specifically, as shown in Figure 2, the male threaded portion 12 has multiple threads (in this case, 3 threads) 26, 27, and 28 that can be screwed into the female threaded portion of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. Therefore, in the male threaded portion 12, the lead (the distance advanced when the screw rotates once) is three times the pitch (the distance between adjacent threads (screw grooves) in the axial direction). The number of threads in the male threaded portion 12 is preferably the same as the number of threads (number of screw grooves) in the female threaded portion of the bone plate to which the bone screw 10 is fixed, preferably 1 to 4, and particularly preferably 2 or 3.
[0022] Furthermore, the cross-sectional shapes of the three threads 26, 27, and 28 constituting the male thread portion 12 are identical. For example, they may be triangular, trapezoidal, or rectangular, but triangular or trapezoidal shapes are preferred. In addition, it is preferable that the cross-sectional shapes of the three threads 26, 27, and 28 constituting the male thread portion 12 correspond to the groove cross-sectional shape of the female thread portion (thread groove) of the bone plate to which the bone screw 10 is fixed.
[0023] In this embodiment, the tip portion of the head 13 (tapered portion 14) of the bone screw 10 has multiple (in this case, 3) recesses 15 and a cutting edge portion 19, which will be described later. Preferably, the tips of the recesses 15 extend to the tip or near the tip of the head 13. As shown in Figure 3, the three recesses 15 are positioned at equal intervals in the circumferential direction (arranged at equal angles with respect to the central axis of the bone screw 10), specifically, at 120° intervals. The number of recesses 15 is preferably 1 to 4, and particularly preferably 2 or 3. Also, as in this embodiment, when the male thread portion 12 of the head 13 of the bone screw 10 has multiple threads (26, 27, 28), it is preferable that the number of threads of the male thread portion 12 of the head 13 (in this case, 3) and the number of recesses 15 (in this case, 3) are the same.
[0024] Furthermore, as shown in Figure 2, it is preferable that the axial length (H2) from the base to the tip of the recess 15 is 1 / 3 or less of the axial length (H1) from the base to the tip of the recess 15. This ensures that the axial length of the complete male thread portion (the portion where the male thread portion 12 is effective around the entire circumference, in other words, the portion where the male thread portion 12 is not divided by the recess 15) is secured in the head 13 (tapered portion 14), making it easier to fix the bone screw 10 to the bone plate.
[0025] The inner surface (surface) of the recess 15, on the side of the male screw portion 12 that is rear in the direction of rotation, is an upright surface 16. Here, the forward and rear directions of rotation are defined according to the direction of rotation when the bone screw 10 (male screw portion 12) is advanced in the axial direction. In Figure 3 (when the bone screw 10 is viewed from the tip side), the counterclockwise direction is called the forward direction of rotation, and the clockwise direction is called the rear direction of rotation. In this embodiment, the recess 15 has a bottom surface and the upright surface 16 that rises from the base end of the bottom surface in the direction of rotation. The upright surface 16 is preferably an upright surface perpendicular to the bottom surface of the recess 15, as shown in the illustrated embodiment, but it may be slightly tilted forward or backward in the direction of rotation.
[0026] In this embodiment, the upright surface 16 is a flat surface extending in the axial direction. The upright surface may also be a curved surface. Furthermore, in this embodiment, as shown in Figure 3, the imaginary line X connecting the tip and base of the edge portion 17 when the bone screw 10 is viewed from the tip side is located on the rear side in the rotational direction of the male thread portion 12 (right side in Figure 3) with respect to the imaginary line Y which is parallel to the imaginary line X and passes through the central axis P of the bone screw 10. In other words, the imaginary line X is offset (d) to the rear side in the rotational direction with respect to the imaginary line Y. To put it another way, as shown in Figure 3, the upright surface 16 is inclined at an angle θ3 with respect to the diameter of the bone screw 10 (a straight line passing through the central axis P). This allows for appropriate bone cutting performance at the cutting edge portion 19 (described later) and prevents damage to the cutting edge portion 19. The offset amount (d) is preferably 0.2 mm or less. However, as with the bone screw 10a described later, the bone screw 10 does not necessarily have an offset (d) (see Figure 9).
[0027] The outer edge of the upright surface 16 (the portion that follows the outer shape of the bone screw 10) is an axially extending edge portion 17. Preferably, the edge portion 17 does not have an R shape or chamfered shape, and the bone screw 10 may be capable of cutting bone at the edge portion 17. In this embodiment, as shown in Figure 2, in the axial direction of the bone screw 10, the base end of the recess 15 and the edge portion 17 are located between the base end and the tip of the male thread portion 12, and the tip of the recess 15 and the edge portion 17 are located closer to the tip than the tip of the male thread portion 12.
[0028] In this embodiment, the bone screw 10 has a relief portion 18 (a groove extending in the axial direction) formed on the tip side of the head 13 and on the rotational rear side of the upright surface 16. The relief portion 18 is formed by cutting the outer shape (outer surface) of the bone screw 10 (here, the second tapered portion 23). That is, in the relief portion 18, in the cross-section on a plane perpendicular to the central axis of the bone screw 10, the distance from the center of the bone screw 10 is smaller than the portion of the bone screw 10 (here, the second tapered portion 23) that does not have a relief portion (especially the edge portion 17), including the edge portion 17. In this embodiment, as shown in Figure 3, the relief portion 18 is provided around the entire circumference in the circumferential direction, excluding the portion where the recess 15 is formed.
[0029] In the bone screw 10 of this embodiment, the head 13 has a cutting edge portion 19 formed by the edge portion 17, the upright surface 16, and the relief portion 18, at least in a part of the tip portion of the edge portion 17. In other words, the cutting edge portion 19 refers to a part of the edge portion 17 that exists between the upright surface 16 and the relief portion 18, and is a part in which the bone cutting ability is improved. The width (thickness) of the edge portion 17 in the rotational direction is preferably 0.3 mm or less, and particularly preferably 0.1 mm or less. The axial length of the edge portion 17 is preferably 0.45 to 0.75 mm, and particularly preferably 0.5 to 0.65 mm.
[0030] In the bone screw 10 of this embodiment, as shown in Figure 2, the tip of the male thread portion 12 is located between the base and tip of the cutting edge portion 19 in the axial direction of the bone screw 10. More specifically, the base of the cutting edge portion 19 is located on the base side of the second tapered portion 23 and the tip of the male thread portion 12, and the tip is located on the tip side of the tip of the male thread portion 12. As a result, even if a part of the bone screw 10 (the male thread portion 12 formed on the head 13) protrudes below the bone plate, the cutting edge portion 19 is more likely to be able to cut (remove) the bone, and the possibility of avoiding or reducing interference between the part of the bone screw 10 and the bone is increased.
[0031] Preferred materials for forming the bone screw 10 include titanium alloy (specifically, Ti-6Al-4V of JIS T7401-2, ASTM F-136 Ti-6Al-4V ELI), pure titanium (specifically, JIS T7401-1), and stainless steel (specifically, SUS304 and SUS316 of JIS G4303).
[0032] The bone screw 10 has a tapered section 14 (first tapered section 22 and second tapered section 23) where almost the entire head 13 becomes smaller in diameter towards the tip, making it easy to fix the bone plate at multiple angles so that it cannot move or rotate in the axial direction of the through hole in the bone plate. On the other hand, the engagement between the bone screw 10 and the bone plate is more likely to be unstable (it is difficult to reliably engage it at the intended location) compared to a mechanism that fixes the bone screw to the bone plate at a single angle (monoaxial locking mechanism). In contrast, the bone screw 10 of this embodiment has a plurality of recesses 15 (including an upright surface 16 and an edge portion 17) formed at appropriate positions on the head 13 (tapered portion 14), and the tip portion of the head 13 is equipped with a cutting blade portion 19 for cutting bone, which is formed by the edge portion 17, the upright surface 16, and the relief portion 18. This makes it possible to avoid or reduce interference between the bone screw 10 and the bone, even if a part of the bone screw 10 (the head 13 or the male threaded portion 12 formed on the head 13) unintentionally protrudes below the bone plate when fixing the bone screw 10 to the bone plate. Furthermore, by using such a bone screw 10, it becomes possible to allow a part of the bone screw 10 (the head 13 or the male threaded portion 12 formed on the head 13) to protrude slightly below the bone plate, and to design the bone plate for fixing the bone screw 10 to be as thin as possible.
[0033] Here, the process for manufacturing the bone screw 10 of this embodiment will be briefly explained with reference to the examples shown in Figures 2, 4, and 5. First, as shown in Figure 4, the outer shape of the bone screw (primary intermediate body 41) is formed. Here, the head forming portion 42 of the primary intermediate body 41 is equipped with a tapered portion forming portion 43 (first tapered portion forming portion 24 and second tapered portion forming portion 25). Next, as shown in Figure 5, a plurality of recesses 15 (including the upright surface 16 and edge portion 17) are formed in the head forming portion 42 (tapered portion forming portion 43 (first tapered portion forming portion 24 and second tapered portion forming portion 25)) of the primary intermediate body 41 (secondary intermediate body 44). After that, a relief portion 18 (cutting edge portion 19) is formed. Finally, by forming a male thread portion 12 on the head forming portion 42 (tapered portion forming portion 43 (first tapered portion forming portion 24 and second tapered portion forming portion 25)) of the secondary intermediate body 44 on which the relief portion 18 (cutting edge portion 19) is formed, the bone screw 10 of this embodiment, which has a head 13 as shown in Figure 2, can be manufactured.
[0034] Furthermore, the bone screw of the present invention may have a screw portion 20 formed on the shaft portion 11, as shown in Figures 7 to 9, for example, with the bone screw 10a. In addition, a self-tapping portion 29 is provided at the tip of the shaft portion 11 (screw portion 20) of the bone screw 10a. Furthermore, as shown in Figure 9, in the bone screw 10a, the imaginary line X connecting the tip and base of the edge portion 17 when the bone screw 10a is viewed from the tip side passes through the central axis P of the bone screw 10a. In other words, the imaginary line X is not offset with respect to the central axis P of the bone screw 10a. This makes it easier to fix the bone screw 10a (male thread portion 12) to the female thread portion. Note that, as with the bone screw 10 described above, an offset (d) may be provided in the bone screw 10a (see Figure 3).
[0035] Figures 10 and 11 show another embodiment of the bone screw of the present invention. The bone screw 10b has a different head shape from the bone screw 10 described above. Unless otherwise specified, the bone screw 10b has substantially the same configuration as the bone screw 10 described above, and such configurations are given the same names and reference numerals (sometimes with a suffix of 'b'), and detailed explanations are omitted.
[0036] The bone screw 10b of this embodiment is a bone screw that can be fixed to a bone plate having a through hole equipped with a female threaded portion (plate-side threaded portion) having a screw groove on its inner surface, at multiple angles, so as to be immovable and immovable in the axial direction of the through hole. The bone screw 10b comprises a shaft portion 11 that can pass through the through hole of the bone plate, and a head portion 13b provided at the base end of the shaft portion 11, which has a male thread portion 12b on its outer surface that can be screwed into the female thread portion (plate-side thread portion) of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. The head 13b is substantially the entire tapered portion 14b, which becomes smaller in diameter towards the tip, and a male threaded portion 12b and several (in this case, three) recesses 15b are formed in the tapered portion 14b. The head 13b includes an upright surface 16b formed on the inner surface of the recesses 15b and on the rear side in the rotational direction of the male threaded portion 12b, and an edge portion 17b located on the outer edge of the upright surface 16b. In the axial direction of the bone screw 10b, the base ends of the recesses 15b and the edge portion 17b are located between the base end and the tip of the male threaded portion 12b, and the tips of the recesses 15b and the edge portion 17b are located closer to the tip than the tip of the male threaded portion 12b. Furthermore, the tapered portion 14b comprises a first tapered portion 22b formed on the base end side of the tapered portion 14b, and a second tapered portion 23b extending from the tip of the first tapered portion 22b and having a larger taper angle than the first tapered portion 22b. The male threaded portion 12b has its base end located on the base end side of the first tapered portion 22b and its tip extending to the second tapered portion 23b. In the axial direction of the bone screw 10b, the tip of the male threaded portion 12b is located between the base end and the tip of the edge portion 17b, and bone can be cut at least on the tip side of the edge portion 17b.
[0037] In this embodiment, the bone screw 10b has a tapered portion 14b (first tapered portion 22b and second tapered portion 23b) where almost the entire head 13b becomes smaller in diameter towards the tip, making it easy to fix the bone plate at multiple angles so that it cannot move or rotate in the axial direction of the through hole in the bone plate. On the other hand, compared to a mechanism that fixes the bone screw to the bone plate at a single angle (monoaxial locking mechanism), the engagement between the bone screw 10b and the bone plate tends to be unstable (it is difficult to reliably engage it at the intended location). In contrast, the bone screw 10b of this embodiment has multiple recesses 15b (including the upright surface 16b and the edge portion 17b) formed at appropriate positions on the head 13b (tapered portion 14b), the tip of the male thread portion 12b is located between the base and tip of the edge portion 17b, and bone can be cut at least on the tip side of the edge portion 17b. As a result, even if a part of the bone screw 10b (the head 13b or the male threaded portion 12b formed on the head 13b) unintentionally protrudes below the bone plate when fixing the bone screw 10b to the bone plate, interference between the part of the bone screw 10b and the bone can be avoided or reduced. Furthermore, by using such a bone screw 10b, it becomes possible to allow a part of the bone screw 10b (the head 13b or the male threaded portion 12b formed on the head 13b) to protrude slightly below the bone plate, and to design the bone plate for fixing the bone screw 10b to be as thin as possible.
[0038] The bone screw of the present invention can also be used as a bone treatment device together with a bone plate having a through hole with a female threaded portion having a screw groove on its inner surface. That is, the bone treatment device of the present invention is a bone treatment device comprising a bone plate having a through hole with a female threaded portion having a screw groove on its inner surface and the bone screw described above, wherein the bone screw can be fixed to the bone plate at multiple angles so as to be immovable and immovable in the axial direction of the through hole.
[0039] Furthermore, the bone treatment device of the present invention may also be a distal radius bone treatment device used for treating fractures at the distal end of the radius, comprising a bone plate having a through hole with a female screw portion having a screw groove on its inner surface, and a bone screw as described above. The bone plate of the distal radius bone treatment device comprises a base portion and a through hole penetrating the base portion, the base portion comprises a head portion and a plate body portion, the head portion and the plate body portion are connected at an angle, and preferably the head portion has a through hole.
[0040] The bone plates that can be used in the bone treatment device (bone treatment device for the distal radius) of the present invention will be explained by the examples shown in Figures 12 to 18. The bone plate 50 of this embodiment comprises a base portion 51, a through hole 52 penetrating the base portion 51, and a plate-side threaded portion (female threaded portion) 53 formed within the through hole 52. The plate-side threaded portion 53 comprises a first thread groove 54 formed on the inner surface of the through hole 52 and extending in the axial direction of the through hole 52 in one rotational direction, a second thread groove 55 formed on the inner surface of the through hole 52 and extending in the axial direction of the through hole 52 in a rotational direction opposite to the one rotational direction, intersecting the first thread groove 54 at at least one location, and a thread-divided portion 56 formed by the intersection of the first thread groove 54 and the second thread groove 55. The first thread groove 54 of the plate-side threaded portion 53 can be screwed into the male threaded portion (bone screw-side threaded portion) formed on the bone screw as described above, and the thread division portion 56 formed by the intersection of the first thread groove 54 and the second thread groove 55 of the plate-side threaded portion 53 can be pressed against or engaged with the male threaded portion formed on the bone screw, and by pressing against or engaging (biting) the thread division portion 56 of the male threaded portion formed on the bone screw with the thread division portion 56, the bone screw can be fixed at multiple angles so as not to move or rotate in the axial direction of the through hole 52.
[0041] Specifically, as shown in Figures 12 and 13, the bone plate 50 has a base portion 51 that is formed in a thin, "T" shape in plan view. The base portion 51 comprises a head portion 57 and a plate body portion 58. The head portion 57 and the plate body portion 58 are connected at an angle, and the base portion 51 is bent at the boundary between the head portion 57 and the plate body portion 58. Such a bone plate 50 is used, for example, to treat fractures at the distal end of the radius.
[0042] The main body portion 58 of the bone plate 50 is provided with a rectangular fixing hole 59 that has rounded corners in a plan view. The fixing hole 59 does not have a female thread on its inner surface. In a normal procedure, the initial fixation of the bone plate 50 to the target site is performed using this fixing hole 59 and a bone screw (which does not have a threaded portion (male thread) on its head).
[0043] Multiple (in this case, two) screw holes 60 for fixing bone screws are provided on both longitudinal sides of the fixing hole 59 of the plate body 58. The inner surface of the screw hole 60 is provided with a female thread portion (in this case, having the same structure as the plate-side screw portion (female thread portion 53) described later. Note that it may be a different female thread portion from the plate-side screw portion (female thread portion 53)). The female thread portion is formed parallel to the axial direction of the screw hole 60. The female thread portion can be screwed into a male thread portion provided on the head of a bone screw (a bone screw different from the bone screw of the present invention) (not shown). The bone screw is attached and fixed to the bone plate 50 (plate body 58) by being screwed into the female thread portion.
[0044] The head portion 57 of the bone plate 50 is provided with multiple (seven in this case) through holes 52. As shown in Figures 14 to 16, each of these through holes 52 has a constant inner diameter in the axial direction, and their axes are formed at mutually inclined angles. In addition, an upper recess 61 that widens upward and a lower recess 62 that widens downward are formed on the upper and lower sides of the through holes 52, respectively. The upper recess 61 and the lower recess 62 are capable of accommodating all or part of the head 13 of the bone screw 10 (10a, 10b) of the above-described embodiment. The through-hole 52 may also be provided in the plate body portion 58 of the bone plate 50.
[0045] Furthermore, the head 13 of the bone screw 10 described above has a tapered portion 14 that becomes smaller in diameter towards the tip. Correspondingly, as shown in Figure 17, it is preferable that the opening angle θ5 of the lower recess 62 is set to be smaller than the opening angle θ4 of the upper recess 61. In addition, it is preferable that the opening angle θ5 of the lower recess 62 be set in the range of 20 to 30° (30° in this case), and the opening angle θ4 of the upper recess 61 be set in the range of 35 to 55° (55° in this case). Furthermore, as shown in Figure 17, the axial length H3 of the upper recess 61 is preferably set in the range of 0.6 to 1.0 mm, the axial length H4 of the female thread portion 53 is preferably set in the range of 0.6 to 1.2 mm, and the axial length H5 of the lower recess 62 is preferably set in the range of 0.1 to 0.4 mm. When used in combination with the bone screws 10 (10a, 10b) of this embodiment, the bone plate 50 does not necessarily have to have a lower recess 62, but it is preferable to have a lower recess 62 in order to avoid direct contact between the shaft portion 11 of the bone screw and the female thread portion 53 of the bone plate 50, and / or to avoid direct contact between the bone and the female thread portion 53 of the bone plate 50. Furthermore, it is preferable that the axial length H5 of the lower recess 62 be set in the range of 1 / 25 to 1 / 3 of the axial length (H3 + H4 + H5) of the through hole 52. This makes it possible to effectively provide the lower recess 62 while keeping the overall thickness of the bone plate 50 down.
[0046] Within each through-hole 52 of the bone plate 50, a plate-side threaded portion (female threaded portion) 53 is formed. In the plate-side threaded portion 53, a first threaded groove 54 is formed on the inner surface of the through-hole 52 and extends in the axial direction of the through-hole 52 in one rotational direction. Here, the first threaded groove 54 consists of a helical groove that constitutes a so-called right-hand thread, which advances axially with clockwise rotation in a plan view.
[0047] Specifically, as shown in Figure 16, the first screw groove 54 consists of multiple helical grooves. Here, the first screw groove 54 consists of three (three-groove) screw grooves (helical grooves) 63, 64, and 65. Therefore, in the first screw groove 54, the lead (the distance advanced when the screw makes one rotation) is three times the pitch (the distance between adjacent screw grooves (threads) in the axial direction). The number of helical grooves in the first screw groove 54 is preferably the same as the number of threads (threads) in the male screw portion 12 of the bone screw 10 described above (here, 3), preferably 1 to 4, and particularly preferably 2 or 3.
[0048] In the plate-side threaded portion 53, the three threaded grooves 63, 64, and 65 constituting the first threaded groove 54 have identical cross-sectional shapes, and in this case, they are triangular. Note that the cross-sectional shapes of the threaded grooves 63, 64, and 65 are not limited to triangular shapes; they may also be trapezoidal or rectangular. However, for reasons described later, triangular or trapezoidal shapes are preferred. Furthermore, the first threaded groove 54 constitutes a so-called triple-start thread, and the threaded grooves 63, 64, and 65 constituting the first threaded groove 54 each have starting ends at equally spaced positions in the circumferential direction at the upper end of the through hole 52 (arranged at equal angles with respect to the central axis of the through hole), specifically, at 120° intervals. (In Figure 14, the starting ends of the threaded grooves 63, 64, and 65 are indicated by S1, S2, and S3, respectively.)
[0049] Furthermore, in the plate-side threaded portion 53, a second threaded groove 55 is formed on the inner surface of the through hole 52. This second threaded groove 55 extends in the axial direction of the through hole 52 in a rotational direction opposite to the rotational direction of the first threaded groove 54 (clockwise rotation), and intersects with the first threaded groove 54 at least at one point. The second threaded groove 55 consists of a helical groove that forms a so-called left-hand thread, progressing axially with counterclockwise rotation in a plan view. In this embodiment, the central axis of the first threaded groove 54 (the female threaded portion formed in the through hole 52 by the formation of the first threaded groove 54) and the central axis of the second threaded groove 55 (the female threaded portion formed in the through hole 52 by the formation of the second threaded groove 55) coincide.
[0050] Specifically, as shown in Figure 16, the second screw groove 55 consists of multiple helical grooves. Here, the second screw groove 55 consists of three (three-groove) screw grooves (helical grooves) 66, 67, and 68. Therefore, in the second screw groove 55, the lead (the distance advanced when the screw makes one rotation) is three times the pitch (the distance between adjacent screw grooves (threads) in the axial direction). The number of helical grooves in the second screw groove 55 is preferably 1 to 4, and particularly preferably 2 or 3.
[0051] In the plate-side threaded portion 53, the groove cross-sectional shapes of the three threaded grooves 66, 67, and 68 constituting the second threaded groove 55 are identical, and in this case, they are triangular in shape. The groove cross-sectional shapes of the threaded grooves 66, 67, and 68 are not limited to triangular shapes, but may be trapezoidal or rectangular in shape, however, for reasons to be described later, it is preferable that they be triangular or trapezoidal in shape. Furthermore, the second threaded groove 55 constitutes a so-called triple thread, and the threaded grooves 66, 67, and 68 constituting the second threaded groove 55 each have starting ends S4, S5, and S6 positioned at equally spaced positions in the circumferential direction (equal angles with respect to the central axis of the through hole) at the upper end of the through hole 52, specifically, at 120° intervals. (In Figure 14, the starting points of screw grooves 66, 67, and 68 are indicated by S4, S5, and S6, respectively.) In this embodiment, the starting point S1 of screw groove 63 and the starting point S4 of screw groove 66, the starting point S2 of screw groove 64 and the starting point S5 of screw groove 67, and the starting point S3 of screw groove 65 and the starting point S6 of screw groove 68 are all at the same position. However, the positions of the starting points S4, S5, and S6 of screw grooves 66, 67, and 68 relative to the starting points S1, S2, and S3 of screw grooves 63, 64, and 65 may be offset in the circumferential direction.
[0052] In this embodiment, the first screw groove 54 and the second screw groove 55 have opposite directions of rotation, and the number of threads, pitch, lead, and groove cross-sectional shape are the same.
[0053] Furthermore, in this embodiment, the plate-side threaded portion 53 of the bone plate 50 is configured as a so-called parallel threaded portion (straight threaded portion) by having a through hole 52 with a constant inner diameter in the axial direction, and by having the first threaded groove 54 and the second threaded groove 55, respectively, with a constant groove depth in the axial direction and coaxially.
[0054] In the bone plate 50, as shown in Figures 15 and 16, multiple thread division portions 56 are formed within the through hole 52 by the intersection of the first thread groove 54 and the second thread groove 55 of the plate-side thread portion 53. That is, the thread division portions 56 are formed when the threads formed by forming the first thread groove 54 on the inner surface of the through hole 52 are divided by the second thread groove 55. In other words, the thread division portions 56 can be said to be the parts of the threads formed by forming the first thread groove 54 on the inner surface of the through hole 52 that remain even after the second thread groove 55 has been formed. In this embodiment, since the first thread groove 54 and the second thread groove 55 have a triangular groove cross-section, the thickness (wall thickness) in the axial direction of the through hole 52 of such thread division portions 56 becomes thinner (weaker in strength) towards the circumferential (rotational) end.
[0055] Preferred materials for forming the bone plate 50 include titanium alloy (specifically, Ti-6Al-4V of JIS T7401-2, ASTM F-136 Ti-6Al-4V ELI), pure titanium (specifically, JIS T7401-1), and stainless steel (specifically, SUS304 and SUS316 of JIS G4303).
[0056] To describe the configuration of the thread-cut portion 56 in more detail, the process of forming the plate-side thread portion 53 on the bone plate 50 will be explained, as shown in Figures 16 to 18.
[0057] First, as shown in Figure 17, a circular through-hole 52 is formed as a pilot hole in the base portion 51 (head portion 57) of the bone plate 50. Next, as shown in Figure 18, a first screw groove 54 (screw grooves 63, 64, 65) is formed on the inner surface of the through-hole 52. The first screw groove 54 can be formed by cutting using a known tap.
[0058] As the first screw groove 54 is formed, threads 69, 70, and 71 are formed between adjacent screw grooves 63, 64, and 65. The cross-sectional shape of the threads 69, 70, and 71 is trapezoidal, with the inner surface of the through hole 52 as its upper base. At this point, it can be said that the through hole 52 has a female threaded portion with screw grooves 63, 64, and 65 and threads 69, 70, and 71. The first screw groove 54 (in other words, the female threaded portion formed in the through hole 52 by the formation of the first screw groove 54) is designed to be screwable with the male threaded portion (bone screw side threaded portion) 12 of the bone screw 10 described above.
[0059] Next, as shown in Figure 16, a second screw groove 55 (screw grooves 66, 67, 68) is formed on the inner surface of the through hole 52. The second screw groove 55 can also be formed by cutting using a known tap. In this embodiment, both the first screw groove 54 and the second screw groove 55 are formed coaxially with respect to the through hole 52. Therefore, it is not necessary to change the machining axis (the rotation axis of the tap used for cutting) when forming the first screw groove 54 and the second screw groove 55, making machining easier. Alternatively, the first screw groove 54 and the second screw groove 55 may be formed by using the same machining axis and rotating the tap in opposite directions; in this case, machining is also easy.
[0060] Within the through hole 52, the second screw groove 55 intersects the first screw groove 54 at least at one point. In this embodiment, multiple thread division portions 56 are formed by the intersection of the first screw groove 54 and the second screw groove 55 at multiple points. In other words, the threads 69, 70, 71 formed in conjunction with the formation of the first screw groove 54 (threads 63, 64, 65) are divided by the thread grooves 66, 67, 68 of the second screw groove 55, thereby forming the thread division portions 56. The ends of the thread division portions 56 are exposed at the intersection of the first screw groove 54 and the second screw groove 55. The thread division portions 56 can also be described as the parts that remained in the through hole 52 (where no thread grooves were formed) when the first screw groove 54 and the second screw groove 55 were formed.
[0061] In this embodiment, the first screw groove 54 and the second screw groove 55 are formed such that their groove cross-sectional shape is triangular. Therefore, in the thread-divided portion 56, the thickness (wall thickness) in the axial direction of the through hole 52 decreases (the strength decreases) toward the circumferential (rotational) end. In other words, the wall thickness of the thread-divided portion 56 decreases toward the portion where the first screw groove 54 and the second screw groove 55 intersect. This embodiment can be realized when the groove cross-sectional shape of the first screw groove 54 and / or the second screw groove 55 is triangular or trapezoidal, and therefore, it is preferable that the groove cross-sectional shape of the first screw groove 54 and / or the second screw groove 55 is triangular or trapezoidal.
[0062] Furthermore, the formation (processing) of the first screw groove 54 and the second screw groove 55 is not limited to cutting using known taps as described above, but may also be formed by rolling, turning, or a combination of these processes including cutting.In addition, in this embodiment, in order to clearly explain the process of forming the thread division portion 56, the first screw groove 54 is formed first on the inner surface of the through hole 52, and then the second screw groove 55 is formed later, but the second screw groove 55 may be formed first.Even in this case, the threads 69, 70, and 71 formed in conjunction with the formation of the first screw groove 54 will be divided in the part where the second screw groove 55 is formed first, and the plate-side thread portion 53 will ultimately have the same shape, including the thread division portion 56.
[0063] Next, we will briefly describe how the bone screw 10 is fixed to the bone plate 50 in the bone treatment device comprising the bone screw 10 and bone plate 50 as illustrated above. With the axis (central axis) of the bone screw 10 (male threaded portion (bone screw side threaded portion) 12) approximately aligned with the axis (central axis) of the through hole 52 of the bone plate 50, the bone screw 10 is rotated (here, clockwise in a plan view), causing the male threaded portion (bone screw side threaded portion) 12 to enter or screw into the first thread groove 54 of the female threaded portion (plate side threaded portion) 53. In this embodiment, since the male threaded portion 12 is a tapered threaded portion, as the male threaded portion 12 enters the first thread groove 54, the male threaded portion 12 engages (screws) with the plate side threaded portion 53 in the first thread groove 54. In this way, by screwing the male threaded portion 12 and the first threaded groove 54 of the plate-side threaded portion 53, the bone screw 10 can be fixed to the bone plate 50 at an angle along the axial direction of the through hole 52 (an angle of 0° with respect to the axial direction of the through hole 52), so that it cannot move or rotate in the axial direction of the through hole 52.
[0064] Furthermore, when the bone screw 10 is inserted into the bone plate 50 at multiple angles:θ (where θ is the angle between the axis of the through hole 52:Q and the axis of the bone screw 10:P (see Figure 6)), the male threaded portion 12 and the thread-divided portion 56 formed by the intersection of the first thread groove 54 and the second thread groove 55 of the plate-side threaded portion 53 are pressed together or engaged (the male threaded portion 12 and the female threaded portion 53 (thread-divided portion 56) are jammed together), thereby fixing the bone screw 10 to the bone plate 50 at multiple angles (angles different from the fixing angle by screwing the male threaded portion 12 and the first thread groove 54) so that it cannot move or rotate in the axial direction of the through hole 52.
[0065] More specifically, within the through hole 52 of the bone plate 50, the first screw groove 54 and the second screw groove 55 intersect, thereby forming a thread-divided portion 56. Therefore, when the bone screw 10 is inserted into the bone plate 50 at multiple angles, the bone screw 10 enters the through hole 52 with the relatively small diameter tip portion of the head 13 (tapered portion 14), and at a certain point, the male screw portion 12 (threads 26, 27, 28) enters the intersection of the first screw groove 54 and the second screw groove 55, causing the male screw portion 12 (threads 26, 27, 28) to press against or engage (bite) the thread-divided portion 56 from its end side.
[0066] In this embodiment, as described above, the thread-divided portion 56 has a thinner (weaker) thickness in the axial direction of the through hole 52 toward its circumferential (rotational) end. Therefore, when the male thread portion 12 (threads 26, 27, 28) enters the intersection of the first thread groove 54 and the second thread groove 55 and comes into contact with the end of the thread-divided portion 56, the resistance force (the reaction force generated when the male thread portion 12 comes into contact with the thread-divided portion 56) is initially small, gradually increases, and eventually reaches a state of pressure contact or engagement (biting). Consequently, when the male thread portion 12 and the thread-divided portion 56 come into contact, the insertion angle of the bone screw 10 is not shifted by the resistance force, and the insertion angle of the bone screw 10 can be adjusted more precisely. Furthermore, during the process of pressure contact or engagement between the male thread portion 12 and the thread-breaking portion 56, plastic deformation (deformation beyond elastic deformation) of the thread-breaking portion 56 may occur.
[0067] In the bone treatment device (distal radius bone treatment device) comprising the bone screws 10 (10a, 10b) and bone plate 50 as described above, the bone screws 10 can be easily fixed to the bone plate 50 at multiple angles, so as to be immovable and immovable in the axial direction of the through hole 52 of the bone plate 50. On the other hand, if the bone screw 10 is inserted at an angle relative to the bone plate 50 (at an angle different from the fixing angle by screwing the male threaded portion 12 and the first thread groove 54), the male threaded portion (bone screw side threaded portion) 12 of the bone screw 10 and the thread division portion 56 of the bone plate 50 will be pressed against or engaged (bite) together, making it difficult to securely fix the bone screw 10 and the bone plate 50 in the intended location. Furthermore, even when the axis (central axis) of the bone screw 10 and the axis (central axis) of the through hole 52 of the bone plate 50 are approximately aligned, and the male threaded portion 12 is inserted into or screwed into the first thread groove 54 of the plate-side threaded portion (female threaded portion) 53, a part of the bone screw 10 (the head 13 and the male threaded portion 12 formed on the head 13) may protrude downward from the bone plate 50. In contrast, the bone screws 10 (10a, 10b) of this embodiment have a plurality of recesses 15 (including the upright surface 16 and the edge portion 17) formed at appropriate positions on the head 13 (tapered portion 14), and the tip portion of the head 13 is equipped with a cutting blade portion 19 for cutting bone or an edge portion 17 capable of cutting bone. As a result, even if a part of the bone screw 10 (the head 13 or the male threaded portion 12 formed on the head 13) inevitably protrudes downward from the bone plate 50 when fixing the bone screw 10 to the bone plate 50, interference between the part of the bone screw 10 and the bone can be avoided or reduced.
[0068] Furthermore, in the bone plate 50 described above, the axes of the multiple through holes 52 are formed at mutually inclined angles. As a result, the axial lengths of the through holes 52 differ, and even the same through hole 52 may have different axial lengths depending on its circumferential portion, increasing the likelihood that a part of the bone screw 10 (the head 13 or the male thread portion 12 formed on the head 13) may unintentionally protrude downward from the bone plate. In contrast, the bone screw 10 (10a, 10b) of this embodiment has multiple recesses 15 (including the upright surface 16 and the edge portion 17) formed at appropriate positions on the head 13 (tapered portion 14), and the tip portion of the head 13 is equipped with a cutting blade portion 19 for cutting bone or an edge portion 17 capable of cutting bone. As a result, even if a part of the bone screw 10 (the head 13 or the male threaded portion 12 formed on the head 13) inevitably protrudes downward from the bone plate 50 when fixing the bone screw 10 to the bone plate 50, interference between the part of the bone screw 10 and the bone can be avoided or reduced.
[0069] Furthermore, the bone treatment device and the distal radius bone treatment device of the present invention are not limited to those comprising the illustrated bone plate 50.
[0070] Furthermore, the bone screw of the present invention and the bone treatment device equipped therewith are not limited to the treatment of the distal end of the radius as exemplified, but can be used, for example, for the treatment (repair) of CHS (proximal femoral fracture), the spine, clavicle, ankle joint, fingers and toes, tooth formation, artificial joints, etc. [Explanation of Symbols]
[0071] 10, 10a, 10b bone screws 11 Shaft 12 Male threaded portion (threaded portion on the bone-use screw side) 13 Head 14 Tapered section 15 recesses 16 Erection surface 17 Edge section 18. Escape Department 19 Cutting edge 22 First tapered section 23. Second tapered section 50 Bone Plates 51 Circuit board section 52 Through hole 53 Female threaded section (threaded section on the bone plate side) 54 First thread groove 55 Second thread groove 56 Thread break 57 Head section 58 Plate body 61 Upper recess 62 Lower recess
Claims
1. A bone screw that can be fixed to a bone plate having a through hole with a female threaded portion having a screw groove on its inner surface, at multiple angles, so as to be immovable and immovable in the axial direction of the through hole, The bone screw comprises a shaft portion that can pass through the through hole of the bone plate, and a head portion provided at the base end of the shaft portion, having a male thread on its outer surface that can be screwed into the female thread portion of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. The head portion is substantially tapered, with the diameter decreasing towards the tip, and the male thread portion and multiple recesses are formed in the tapered portion. The head comprises an upright surface formed on the inner surface of the recess on the rear side in the rotational direction of the male screw portion, and an edge portion located at the outer edge of the upright surface. In the axial direction of the bone screw, the base end of the recess and the edge portion is located between the base end and the tip of the male thread portion, and the tip of the recess and the edge portion is located closer to the tip than the tip of the male thread portion. Furthermore, the head is provided with a relief portion formed on the tip side of the edge portion on the rear side in the rotational direction, and the head is provided with a cutting edge portion for cutting bone formed by the edge portion, the upright surface and the relief portion, at least in a part of the tip side of the edge portion.
2. The bone screw according to claim 1, wherein the relief portion is a groove portion extending in the axial direction of the bone screw and formed on the rear side in the rotational direction of the edge portion.
3. The bone screw according to claim 1, wherein in the axial direction of the bone screw, the tip of the male thread portion is located between the base end and the tip of the cutting edge portion.
4. The tapered portion comprises a first tapered portion formed on the base end side of the tapered portion, and a second tapered portion extending from the tip of the first tapered portion and having a larger taper angle than the first tapered portion. The male thread portion has its base end located on the base end side of the first tapered portion, and its tip extends to the portion that forms the second tapered portion, including the base end and tip of the second tapered portion. The bone screw according to claim 1, wherein the cutting edge portion has its base end located at the second tapered portion and its tip located further forward than the tip of the male threaded portion.
5. A bone screw that can be fixed to a bone plate having a through hole with a female threaded portion having a screw groove on its inner surface, at multiple angles, so as to be immovable and immovable in the axial direction of the through hole, The bone screw comprises a shaft portion that can pass through the through hole of the bone plate, and a head portion provided at the base end of the shaft portion, having a male thread on its outer surface that can be screwed into the female thread portion of the through hole of the bone plate and can be fixed by engaging at an angle different from the fixing angle by screwing. The head portion is substantially tapered, with the diameter decreasing towards the tip, and the male thread portion and multiple recesses are formed in the tapered portion. The head comprises an upright surface formed on the inner surface of the recess on the rear side in the rotational direction of the male screw portion, and an edge portion located at the outer edge of the upright surface. In the axial direction of the bone screw, the base end of the recess and the edge portion is located between the base end and the tip of the male thread portion, and the tip of the recess and the edge portion is located closer to the tip than the tip of the male thread portion. Furthermore, the tapered portion comprises a first tapered portion formed on the base end side of the tapered portion, and a second tapered portion extending from the tip of the first tapered portion and having a larger taper angle than the first tapered portion. The male thread portion has its base end located on the base end side of the first tapered portion, and its tip extends to the portion that forms the second tapered portion, including the base end and tip of the second tapered portion. A bone screw characterized in that, in the axial direction of the bone screw, the tip of the male thread portion is located between the base end and the tip of the edge portion, and at least the tip portion of the edge portion is capable of cutting bone.
6. The bone screw according to any one of claims 1 to 5, wherein the axial length from the base end to the tip of the recess is 1 / 3 or less of the axial length from the base end of the head to the tip of the recess.
7. The bone screw according to any one of claims 1 to 5, wherein, when the bone screw is viewed from the tip side, the imaginary line connecting the tip and base of the edge portion is located on the rear side in the rotational direction of the male thread portion with respect to an imaginary line that is parallel to the imaginary line and passes through the central axis of the bone screw.
8. The bone screw according to any one of claims 1 to 5, wherein the imaginary line connecting the tip and base of the edge portion when the bone screw is viewed from the tip side passes through the central axis of the bone screw.
9. The bone screw according to claims 1 to 5, wherein the upright surface of the recess is perpendicular to the bottom surface of the recess or inclined forward or backward in the rotational direction.
10. The bone screw according to any one of claims 1 to 5, wherein the male thread portion of the head has multiple threads, and the number of threads in the male thread portion of the head is the same as the number of recesses.
11. The bone screw according to claim 4 or 5, wherein the taper angle of the first tapered portion is 30 to 40° and the taper angle of the second tapered portion is 80 to 100°.
12. A bone treatment device comprising a bone plate having a through hole with a female screw portion having screw grooves on its inner surface, and a bone screw according to any one of claims 1 to 5, A bone treatment device characterized in that the bone screw can be fixed to the bone plate at multiple angles, so as to be immovable and immovable in the axial direction of the through hole.
13. The bone plate comprises a base portion, a through hole penetrating the base portion, and a plate-side threaded portion formed within the through hole. The plate-side threaded portion comprises a first thread groove formed on the inner surface of the through hole and extending axially in the through hole in one rotational direction, a second thread groove formed on the inner surface of the through hole and extending axially in the through hole in a rotational direction opposite to the first rotational direction, intersecting the first thread groove at at least one location, and a thread-dividing portion formed by the intersection of the first thread groove and the second thread groove. The first thread groove of the plate-side threaded portion is capable of being screwed into the male threaded portion formed on the bone screw, The thread-divided portion formed by the intersection of the first thread groove and the second thread groove of the plate-side thread portion is press-fitted with or engageable with the male thread portion formed on the bone screw, and the bone screw can be fixed at multiple angles in a manner that prevents movement and rotation in the axial direction of the through hole, as described in claim 12.
14. A bone treatment device for distal radius, comprising a bone plate having a through hole with a female screw portion having a screw groove on its inner surface, and a bone screw according to any one of claims 1 to 5, used for treating fractures at the distal radius, The bone plate comprises a base portion and a through hole penetrating the base portion. The aforementioned substrate portion comprises a head portion and a plate body portion, the head portion and the plate body portion are connected at an inclination, and the head portion is provided with the through hole, characterized in that the distal radius bone treatment device.
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