The present disclosure relates to a method for designing an implant for a finger bone. In more detail, the present disclosure relates to a method for designing an implant for finger bones, the method including a finger bone image collection step of collecting 3D images of several human finger bones, a finger bone measurement step of measuring the length, cross-sectional width, and thickness of each of the finger bones from the 3D images of the finger bones, and an implant shape derivation step of calculating average values of the lengths, cross-sectional widths, and thicknesses of the finger bones and deriving and storing the shapes of implants for finger bones into a database on the basis of the calculated average values of the cross-sectional widths and thicknesses and shapes of cut surfaces.
In generally, the bones of a human hand have complicated structures and, as shown in
When a bone of a hand is injured such as cutting or breaking, a surgery of artificially making an artificial hand by inserting an implant (artificial prosthesis) having a shape similar to the proximal phalange and the metacarpal of the finger into the finger bone is performed, and technologies of such implants for finger bones have been disclosed in Korean Patent Application Publication Nos. 1994-7001237 and 2011-0139229.
Meanwhile, when a lost point of a finger bone is any one of a proximal phalange and a metacarpal, a surgery is performed in the way of inserting implants in the upper portion and the lower portion of the lost point of the proximal phalange or the metacarpal and connecting the implant to each other through a connector.
However, since the finger bones of people have different shapes, it is required to design the shapes of implants to be maximally matched to such various shapes.
The present disclosure has been made in an effort to solve the problems in the related art described above and an objective of the present disclosure is to provide a configuration of a designing method that can easily design shapes of implants, which are used for finger bone surgeries, to corresponding to various shapes.
The configuration of a method for designing an implant for finger bones of the present disclosure for achieving the objectives includes: a finger bone image collection step of collecting 3D images of several human finger bones, a finger bone measurement step of measuring the length, cross-sectional width, and thickness of each of the finger bones from the 3D images of the finger bones; and an implant shape derivation step of calculating average values of the lengths, cross-sectional widths, and thicknesses of the finger bones and deriving and storing the shapes of implants for finger bones into a database on the basis of the calculated average values of the cross-sectional widths and thicknesses and shapes of cut surfaces.
It was very difficult to fit an implant to a phalange or a metacarpal of a finger bone in the related art, but according to the method for designing an implant for finger bones of the present disclosure, it is possible to easily implement an implant suitable for the shape of a finger bone of a patient, so an effect that it is possible to provide an implant optimized in a patient finger bone-fit type is achieved.
Hereinafter, the configuration of a method for designing an implant for a finger bone according to the present disclosure will be described with reference to the accompanying drawings.
However, the disclosed drawings are provided as examples so that the spirit of the present disclosure can be sufficiently transmitted to those skilled in the art. Accordingly, the present disclosure is not limited to the proposed drawings and may be implemented by other ways.
Further, unless stated otherwise, the terms used herein have meanings that those skilled in the art generally understand, and well-known functions and configurations that may make the main idea of the present disclosure unclear in the following description and the drawings are not described in detail.
A method for designing an implant for a finger bone of an embodiment of the present disclosure (hereafter, briefly referred to as a ‘designing method’) is for easily forming the shape of an implant that is inserted into a finger bone, thereby providing an implant optimized in a patient finger bone-fit type.
To this end, the designing method of the present disclosure is implemented in the system shown in
Referring to the figure, in order to implement of the designing method of the present disclosure, the system includes: a finger bone image input unit 20 that receives 3D images of the finger bones of several people taken by a medical imaging device 10 and stores the 3D images in an interlocked database 60; a finger bone data measurer 30 that measures the length L, the width W, and the thickness T of each of finger bones from the input 3D images of the finger bones; an implant shape deriver 40 that calculates average values of the measured lengths L, widths W, and thicknesses T of the finger bones, and derives and stores the shapes of implants for the finger bones in the database 60 on the basis of the calculated average values of the measured lengths L, widths W, and thicknesses T of the finger bones, and the shapes of cut surfaces; and a product output unit 50 that manufactures implants in accordance with the derived shapes of implants.
As the medical imaging device 10, well-known imaging devices such as a Magnetic Resonance Imaging (MRI) device, a Computed Tomography (CT) device, and an X-ray device may be used, and a CT device is used in an embodiment of the present disclosure.
It is preferable that the finger bone image input unit 20, the finger bone data measurer 30, and the implant shape deriver 40 are implemented by a common computer (not shown) having a monitor, and in detail, it is preferable that the components 20, 30, and 40 are implemented by installing and executing programs in a computer.
Further, it is preferable that a common 3D (3 Dimensions) printer is used as the product output unit 50.
Further, it is preferable to use a storage medium such as a common hard disk or a solid state driver (SSD) installed in a computer as the database 60.
Hereafter, a method for designing an implant for a finger bone of the present disclosure that is implemented by the system of the present disclosure described above is described.
Finger Bone Image Collection Step (S1)
This is a step of collecting 3D images of finger bones of several people by inputting 3D images of finger bones created by imaging finger bones of at least two or more people through the medical imaging device 10 into the finger bone image input unit 20, and by storing the 3D images in the interlocked database 60.
In an embodiment of the present disclosure, one man and one woman who are the shortest (a total of two people) and one man and one woman who are the tallest (a total of two people) were selected from 57 adult men and 55 adult women, three men and three women (a total of six people) who have heights in a range between the largest height and the smallest height were freely selected, whereby 3D images of finger bones were created by imaging the finger bones of a total of 10 men and women through a CT device that is the medical imaging device, and the created 3D images were stored in the interlocked database 60.
The following Table 1 shows the sex and height of collected data and remarks.
2) Finger Bone Measurement Step (S2)
This is a step in which the finger bone data measurer 30 measures the length L, cross-sectional width W, and thickness T of each finger bone from the 3D images of finger bones input and stored in the database 60.
In an embodiment of the present disclosure, the lengths L of osseointegration implants of the proximal phalange of the index finger, the metacarpal of the index finger, and the metacarpal of the thumb of the finger bones of each of the selected 10 adult men and women (5 men and 5 women) described in Table 1 were measured.
The following Table 2 is a table showing the entire length L, a cross-sectional width W, and a thickness T of each finger bone measured on the 3D images of the finger bones of the selected people in Table 1 in an embodiment of the present disclosure.
3) Implant Shape Derivation Step (S3)
This is a step in which the implant shape deriver 40 calculates average values of the measured lengths L, cross-sectional widths W, and thicknesses T of the finger bones, and derives and stores shapes of implants for the finger bones in the database 60 on the basis of the calculated average values of the lengths L, cross-sectional widths W, and thicknesses T, and the shapes of cut surfaces.
In an embodiment of the present disclosure, a length average, a width average, and a thickness average of corresponding finger bones were calculated by adding up all data of the lengths L, cross-sectional widths, and thicknesses T obtained through Table 2 for each kind, and then dividing the data by the number of the people.
The following shows the calculated largest length Max Length, smallest length Min Length, and average of lengths Length average of each finger bone, and the largest cross-sectional width Max Width, the smallest cross-sectional width Min Width, and the average of the cross-sectional widths Width average of the fingers, and the largest thickness Max Thickness, the smallest thickness Min Thickness, and the average of the thicknesses Thickness average.
Next, as described above, the average value of the entire lengths L, the average value of the cross- sectional widths W, and the average value of the thicknesses T are obtained, and then the implant shape deriver 40 derives shapes of implants for the finger bones on the basis of the average values and the shapes of the cut surfaces of the finger bones.
In this case, the implant shape deriver 40 derives shapes of implants on the basis of the average values and the shapes of the cut surfaces, and this derivation process is composed to the following two processes.
3-1) Process of Setting Outline Line Shape of Cut Surface of Implant (S31)
This is a process of setting an outline line shape of a cut surface of a finger bone, in which the implant shape deriver 40 creates a standardization model having the average values of the measured lengths L, cross-sectional widths W of the cut surfaces, and thicknesses T of the finger bones.
Referring to
Referring to
Further, when the outline shape of the implant is set as described above, in order to manufacture the shape of the implant into a patient-fit type, the values of the cross-sectional width W and the thickness T of the cut surface are made into variables x and y such that the values of the cross-sectional width W and the thickness can be adjusted while a constant outline shape is provided.
The offset distance ‘c’ is used as a constant when a curvature according to the entire length L of an implant to be described above is calculated, and is for keeping a remaining thickness for forming threads (M2.5 threads) of an implant.
3-2) Process of Setting Curvature in Sagittal Direction of Implant (S32)
This is a process in which the implant shape deriver 40 sets a curvature in a sagittal direction of a standardization model of a finger bone.
Referring to
In this case, as shown in
The diameters of the top t1 and the bottom t2 of the body of an implant are different by the offset distance ‘c’ described above, and the following Equation 1 can be derived under the assumption that the entire length L of the body t can be infinitely increased.
tan θ/2=L/(2(R−c))=1/L (Equation 1)
c: offset distance (mm)
The following Equation 2 can be obtained by arranging Equation 1 as a relational expression about R.
R=L
2/2+c (Equation 2)
c: offset distance (mm)
Accordingly, when R shown in
Accordingly, it is possible to create a standardization model of an implant through the process of setting an outline shape of a cut surface of an implant (S31) and the process of setting a curvature in a sagittal direction of an implant (S32).
Number | Date | Country | Kind |
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10-2021-0143325 | Oct 2021 | KR | national |
Filing Document | Filing Date | Country | Kind |
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PCT/KR2022/008250 | 6/10/2022 | WO |