ASSEMBLEABLE ARTIFICIAL BONE PLATE AND ARTIFICIAL BONE PLATE UNIT
20240225701 ยท 2024-07-11
Inventors
- TUNG-KUO TSAI (New Taipei City, TW)
- Keng-Liang Ou (Kaohsiung City, TW)
- Yung-Kang SHEN (New Taipei City, TW)
- Yin-Chung HUANG (New Taipei City, TW)
- Kuo-Sheng HUNG (New Taipei City, TW)
- Yu-Sin OU (Kaohsiung City, TW)
Cpc classification
A61F2310/00023
HUMAN NECESSITIES
A61B17/8085
HUMAN NECESSITIES
A61F2/30942
HUMAN NECESSITIES
A61F2002/30677
HUMAN NECESSITIES
A61F2002/30607
HUMAN NECESSITIES
A61F2002/30736
HUMAN NECESSITIES
A61F2002/30354
HUMAN NECESSITIES
International classification
A61B17/68
HUMAN NECESSITIES
A61B17/80
HUMAN NECESSITIES
Abstract
An artificial bone plate unit and an assembleable artificial bone plate are provided. The artificial bone plate unit includes a plate body, multiple connecting pins, connecting holes, drug cavities, and drug-releasing openings. The plate body has two main surfaces and a peripheral surface connected between the two main surfaces. The connecting pins and the connecting holes are formed on the plate body and arranged along the peripheral surface on the plate body. The connecting holes correspond in shape to the connecting pins. The drug cavities are formed in the artificial bone plate unit and are connected to the drug-releasing openings. The artificial bone plate units are connected using the connecting pins and the connecting holes to form the assembleable artificial bone plate. The assembleable artificial bone plate can be bent into the shape of a defect area of the skull, which saves material and time.
Claims
1. An artificial bone plate unit comprising: a plate body having two main surfaces; a peripheral surface connected between the two main surfaces; multiple connecting pins formed on the plate body and arranged along the peripheral surface on the plate body; multiple connecting holes formed in the plate body and arranged along the peripheral surface in the plate body; the connecting holes corresponding in shape to the connecting pins; multiple drug cavities formed in the artificial bone plate unit; and multiple drug-releasing openings formed on the artificial bone plate unit; each of the drug-releasing openings connected to a respective one of the drug cavities.
2. The artificial bone plate unit as claimed in claim 1, wherein: a maximum area of a cross section of each of the drug cavities is greater than an area of a corresponding one of the drug-releasing openings; and a normal direction of the cross section of each of the drug cavities is parallel to an opening direction of the corresponding drug-releasing opening.
3. The artificial bone plate unit as claimed in claim 1, comprising multiple drug-releasing channels; each of the drug-releasing channels connecting a respective one of the drug-releasing openings and a respective one of the drug cavities.
4. The artificial bone plate unit as claimed in claim 1, wherein: a shape of a longitudinal section of each of the drug cavities is a circle, an ellipse, an ovoid, or a triangle; and a normal direction of the longitudinal section of each of the drug cavities is perpendicular to an opening direction of the corresponding drug-releasing opening.
5. The artificial bone plate unit as claimed in claim 1, wherein: an area of a cross section of each of the drug cavities increases as a cutting plane of the cross section moves away from the corresponding drug-releasing opening; and a normal direction of the cross section of each of the drug cavities is parallel to an opening direction of the corresponding drug-releasing opening.
6. The artificial bone plate unit as claimed in claim 1, wherein the connecting pins and the connecting holes are located on the peripheral surface of the plate body.
7. The artificial bone plate unit as claimed in claim 6, wherein the plate body is an N-sided polygon such that the peripheral surface comprises N connecting faces; a number of the connecting pins is N, and each of the connecting pins is formed on a respective one of the N connecting faces; a number of the connecting holes is N, and each of the connecting holes is formed in a respective one of the N connecting faces; wherein N is an integer greater than two.
8. The artificial bone plate unit as claimed in claim 1, wherein the connecting pins are formed on one of the two main surfaces; the connecting holes are formed through the two main surfaces.
9. The artificial bone plate unit as claimed in claim 1, wherein the connecting pins are formed on the two main surfaces; the connecting holes are formed through the two main surfaces.
10. The artificial bone plate unit as claimed in claim 8, wherein multiple screw holes are formed through the two main surfaces and are arranged along the peripheral surface.
11. The artificial bone plate unit as claimed in claim 1, wherein the plate body is polygonal, such that the peripheral surface comprises multiple corner portions; each of the connecting pins is disposed adjacent to one of the corner portions; each of the connecting holes is disposed adjacent to one of the corner portions.
12. The artificial bone plate unit as claimed in claim 1, wherein the plate body is an N-sided polygon, such that the peripheral surface comprises N connecting faces; a sum of a number of the connecting pins and a number of the connecting holes is N; N is an integer greater than 2.
13. The artificial bone plate unit as claimed in claim 8, wherein a thickness of the plate body is less than 1 mm.
14. The artificial bone plate unit as claimed in claim 1, wherein the artificial bone plate unit is made of titanium, Ti-6Al-4V, 316L stainless steel, polyether ether ketone, or aluminum.
15. The artificial bone plate unit as claimed in claim 1, wherein multiple drug pins formed on one of the main surfaces of the plate body; each of the drug pins has one of the drug cavities formed in the drug pin; one of the drug-releasing openings formed on a distal end of the drug pin and connected to the corresponding drug cavity.
16. An assembleable artificial bone plate being bendable and comprising multiple said artificial bone plate units as claimed in claim 1; the artificial bone plate units connected to each other; among any two of the artificial bone plate units that are connected to each other, at least one of the connecting pins on one of said two artificial bone plate units mounted inside a respective one of the connecting holes in the other one of said two artificial bone plate units.
17. An artificial bone plate unit comprising: a plate body having two main surfaces; a peripheral surface connected between the two main surfaces; multiple connecting pins formed on the plate body and arranged along the peripheral surface on the plate body; and multiple drug cavities formed in the artificial bone plate unit; and multiple drug-releasing openings formed on the artificial bone plate unit; each of the drug-releasing openings connected to a respective one of the drug cavities.
18. An artificial bone plate unit comprising: a plate body having two main surfaces; a peripheral surface connected between the two main surfaces; multiple connecting holes formed in the plate body and arranged along the peripheral surface in the plate body; and multiple drug cavities formed in the artificial bone plate unit; and multiple drug-releasing openings formed on the artificial bone plate unit; each of the drug-releasing openings connected to a respective one of the drug cavities.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0031] With reference to
[0032] The connecting pins 30 and the connecting holes 40 are formed on the plate body and arranged along the peripheral surface 20 on the plate body. The connecting holes 40 correspond in shape to the connecting pins 30, which means two artificial bone plate units in accordance with the present invention can be assembled together by engaging one of the connecting pins 30 of one plate unit with one of the connecting holes 40 of the other plate unit.
[0033] The drug cavities 50 (as shown in
[0034] In the preferred embodiment, the drug cavities 50 are formed in the plate body and the connecting pins 30; the drug-releasing openings 60 are formed on the two main surfaces 10, the peripheral surface 20, and all outer surfaces of the connecting pins 30; that is, the drug-releasing openings 60 and the drug cavities 50 are disposed on all outer surfaces of the artificial bone plate unit. In another preferred embodiment, the drug-releasing openings 60 and the drug cavities 50 are disposed only on the plate body. The drug cavities 50 and the drug-releasing openings 60 are preferably formed together by etching.
[0035] Moreover, the artificial bone plate unit preferably has multiple drug-releasing channels 70. Each of the drug-releasing channels 70 connects a respective one of the drug-releasing openings 60 and a respective one of the drug cavities 50; that is, the drug-releasing openings 60 and the drug cavities 50 are connected via the drug-releasing channels 70. In another preferred embodiment, the drug-releasing channels 70 are omitted, and the drug-releasing openings 60 and the drug cavities 50 are directly connected.
[0036] With reference to
[0037] In the preferred embodiment, a maximum area of the cross section of each of the drug cavities 50 is greater than an area of a corresponding one of the drug-releasing openings 60. As a result, drug in the drug cavity 50 will be released slowly for a longer period of time due to the relatively small drug-releasing opening 60. Shape of a longitudinal section of each of the drug cavities 50 is a circle (as shown in
[0038] With reference to
[0039] With reference to
[0040] The plate body in a preferred embodiment is a six-sided polygon, and to be precise, the plate body is a regular hexagon, such that the six connecting faces 21 are formed on the peripheral surface 20. A number of the connecting pins 30 is six, and each of the six connecting pins 30 is formed on a respective one of the six connecting faces. A number of the connecting holes 40 is six, and each of the six connecting holes 40 is formed in a respective one of the six connecting faces 21.
[0041] In another preferred embodiment, the plate body can be an N-sided polygon other than hexagon, where N is an integer greater than 2. When the plate body is the N-sided polygon other than hexagon, a number of the connecting faces 21, the number of the connecting pins 30, and the number of the connecting holes 40 are N. Each of the N connecting pins 30 is formed on a respective one of the N connecting faces 21, and each of the N connecting holes 40 is formed in a respective one of the N connecting faces 21. In other words, each side of the N-sided polygonal plate body has a connecting pin 30 and a connecting hole 40.
[0042] Moreover, a number of the connecting pin 30 on each connecting face 21 and a number of the connecting hole 40 on each connecting face 21 are not limited to one. For example, in a second embodiment in accordance with the present invention (as shown in
[0043] A shape of the connecting pin 30 is cylindrical, while the connecting hole 40 is a round recess, which corresponds to the shape of the connecting pin 30. However, the shapes of the connecting pin 30 and connecting hole 40 are not limited to the abovementioned, and can be of other shapes depending on the application. For example, the connecting pin 30B can be a quadrilateral prism as shown in
[0044] In another preferred embodiment, a round connecting ball 50E is connected to the tip of the connecting pin 30E (as shown in
[0045] With reference to
[0046] With reference to
[0047] With reference to
[0048] The connecting pins 30F are formed on one of the two main surfaces 10F. The connecting holes 40F are formed through the two main surfaces 10F of the artificial bone plate unit. In a preferred embodiment, multiple screw holes 11F are formed through the two main surfaces 10F, and the screw holes 11F are arranged along the peripheral face 20F of the plate body. However, positions of the screw holes 11F are not limited by abovementioned positions, and the plate body may optionally have no screw holes 11F.
[0049] In a preferred embodiment, the plate body is polygonal, such that multiple corner portions 22F are formed on the peripheral surface 20F. Each of the connecting pins 30F is disposed adjacent to one of the corner portions 22F, and each of the connecting holes 40F is disposed adjacent to one of the corner portions 22F. To be precise, the plate body is a six-sided polygon, and the corner portions 22F are located adjacent to the corner positions of the polygonal plate body. However, positions of the connecting pins 30F and the connecting holes 40F are not limited by abovementioned positions. For example, the connecting pins 30F and the connecting holes 40F can be located in the middle of two of the adjacent corner portions 22F.
[0050] In a preferred embodiment, the plate body is an N-sided polygon, such that the peripheral surface 20F comprises N connecting faces 21F. A sum of a number of the connecting pins 30F and a number of the connecting holes 40F is N. To be precise, N is six, and the plate body is hexagonal, such that the peripheral surface 20F comprises N connecting faces 21F. Three connecting pins 30F and three connecting holes 40F are formed on the plate body, making the sum of the number of the connecting pins 30F and the number of the connecting holes 40F be six, through which a polygonal plate body can be securely connected to an adjacent polygonal plate body. However, the sum of the number of the connecting pins 30F and the number of the connecting holes 40F is not limited by the abovementioned. For example, the sum of the number of the connecting pins 30F and the number of the connecting holes 40F in the polygonal plate body can be twelve.
[0051] With reference to
[0052] A distance between the two main surfaces 10F is defined as a thickness of the plate body. The thickness of the plate body in the aforementioned eighth and ninth embodiments of the artificial bone plate unit is less than 1 mm, but the thickness of the plate body in the embodiment wherein the connecting pins 30F and the connecting holes 40F are formed on the main surface 10F is not limited by abovementioned as long as the plate body can be deformed when bended to satisfy the need of a surgical repair.
[0053] In all the abovementioned embodiments of the artificial bone plate unit, the artificial bone plate unit can be made of a material with good biocompatibility and mechanical strength, such as titanium, Ti-6Al-4V, 316L stainless steel or polyether ether ketone (PEEK). The artificial bone plate unit can also be made of aluminum for reduced weight and cost. Moreover, all the abovementioned embodiments of the artificial bone plate unit comprise the drug cavities 50 and the drug-releasing openings 60 for releasing the drugs.
[0054] With reference to
[0055] To use the present invention, first connect several artificial bone plate units together to form a larger piece of the assembleable artificial bone plate, and then bend the assembleable artificial bone plate to make the shape of the assembleable artificial bone plate correspond to the shape of a defect area of a skull.
[0056] When the assembleable artificial bone plate is of the second embodiment (as shown
[0057] When the assembleable artificial bone plate is of the first embodiment (as shown
[0058] Even though numerous characteristics and advantages of the present invention have been set forth in the foregoing description, together with details of the structure and features of the invention, the disclosure is illustrative only. Changes may be made in the details, especially in matters of shape, size, and arrangement of parts within the principles of the invention to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed.