Drill with radiographically visible depth indicator
The drill component with fluoroscopic indicia addresses inaccuracies in conventional depth measurement by enabling direct bone alignment, ensuring precise implant size selection and reducing surgical complications.
Patent Information
- Application Number
- JP2023513941
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-09-03
- Filing Date
- 2021-08-26
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2041-08-26
AI Technical Summary
Conventional methods for determining the insertion depth of a drill into bone for implant placement are inaccurate due to reliance on external measurements that may not account for the exact bone contact, leading to potential overhangs and complications.
A drill component with radiological or fluoroscopic visualization indicia allows for direct measurement of insertion depth by capturing images during drilling, enabling precise alignment with bone cortex markings.
Enhances accuracy and consistency in determining implant size by allowing direct measurement within the bone, reducing surgical complications like proud implants.
Smart Images

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Abstract
Description
[Technical Field]
[0001] Priority claims This application claims priority to and the benefit of U.S. Provisional Application No. 63 / 074,099, filed September 3, 2020, which is incorporated herein by reference in its entirety.
[0002] This application relates generally to medical instruments. More specifically, this application provides a drill part including radiological or fluoroscopically visualized indicia that can be used to determine the insertion depth of the drill part into bone. [Background technology]
[0003] Various surgical procedures involve drilling a bone hole and inserting an implantable device (e.g., a screw, a bushing) into the hole. Determining the appropriate length of an implantable device for a procedure involves determining the insertion depth of a drill into the bone. Measurements are typically performed by laser marking the drill against a cannula or by laser marking a guidewire. Both of these measurement techniques are performed external to the bone, and the cannula may not always be flush with the bone but rather at an angle, which can lead to inaccuracies. Therefore, the reference point for the measurement may be shifted to the most prominent contact area of the bone and cannula, which may not necessarily be the exact depth of the implant. Further errors may occur if the cannula rests on soft tissue without contacting the bone surface. If the cannula rests on soft tissue, this may lead to an increased length measurement, potentially resulting in the selection of an implant that is too long.
[0004] Therefore, what is needed is a drill component and measurement method for determining insertion depth that overcomes the above-mentioned drawbacks. Summary of the Invention
[0005] The present disclosure provides a drill part that includes radiological or fluoroscopic visualization indicia that can be used to determine the insertion depth of the drill part into bone, which can be used to determine implant size with greater consistency and accuracy compared to conventional measurement techniques.
[0006] In light of the technical features described herein, but not limited to, a first aspect of the present disclosure, which can be combined with any other aspect unless otherwise specified, a method for determining an insertion depth of a drill element includes selecting a drill element having a shaft with a distal end including a cutting tip and a plurality of radiological or fluoroscopic visualization indications. A hole may be drilled into the bone using the selected drill element as the drill element advances through the bone. The insertion depth of the drill element is determined based on the plurality of radiological or fluoroscopic visualization indications using radiological or fluoroscopic images while the drill element continues to advance through the bone.
[0007] In a second aspect of the present disclosure, which may be combined with any other aspect (e.g., the first aspect) unless otherwise specified, determining the insertion depth of the drill component includes identifying a position on the shaft that aligns near the cortex corresponding to the bone, and counting the number of radiological or fluoroscopically visualized markings between the cutting tip and the position on the shaft.
[0008] In a third aspect of the present disclosure, which may be combined with any other aspect (e.g., the first or second aspect) unless otherwise specified, a hole is drilled into the bone to a desired depth before determining the insertion depth of the drill component.
[0009] In a fourth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to third aspects) unless otherwise specified, the method further includes a step of viewing fluoroscopic images that are continuously generated while drilling the bone.
[0010] In a fifth aspect of the present disclosure, which may be combined with any other aspect (e.g., the fourth aspect) unless otherwise specified, the step of advancing the drill element into the bone to drill a hole ends when an insertion depth is determined to be the desired insertion depth.
[0011] In a sixth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to fifth aspects) unless otherwise specified, each of the multiple indications visualized by radiation or fluoroscopy corresponds to a length measurement value.
[0012] In a seventh aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to fifth aspects) unless otherwise specified, each of the multiple indications visualized by radiation or fluoroscopy corresponds to a size of the implant.
[0013] In an eighth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to seventh aspects) unless otherwise specified, the method further includes a step of selecting an implant size based on the determined insertion depth of the drill part.
[0014] In a ninth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to eighth aspects) unless otherwise specified, each of the multiple indications visualized by radiation or fluoroscopy is a groove in a drill part.
[0015] In a tenth aspect of the present disclosure, which may be combined with any other aspect (e.g., the ninth aspect) unless otherwise specified, one or more of the grooves extend around the entire circumference of the drill part.
[0016] In an eleventh aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to tenth aspects) unless otherwise specified, the drill part is made of a first material having a first density, and each of the multiple indications visualized by radiation or fluoroscopy is made of a second material having a second density greater than the first density.
[0017] In a twelfth aspect of the present disclosure, which may be combined with any other aspect (e.g., the eleventh aspect) unless otherwise specified, the second material is a radiopaque ink.
[0018] In a thirteenth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to twelfth aspects) unless otherwise specified, the multiple displays visualized by radiation or fluoroscopy are evenly spaced from each other.
[0019] In a fourteenth aspect of the present disclosure, which can be combined with any other aspect unless otherwise specified, a drill component includes a shaft having an insertion end including a cutting tip and a plurality of spaced apart radiological or fluoroscopically visible indicia, each of which is at least one of: (1) a groove in the shaft; and (2) a first material that is denser than a second material that constitutes the shaft.
[0020] In a fifteenth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to fourteenth aspects) unless otherwise specified, each of the multiple indications visualized by radiation or fluoroscopy extends continuously around the entire circumference of the shaft.
[0021] In a sixteenth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to ninth aspects and the eleventh to fourteenth aspects) unless otherwise specified, one or more of the multiple indications visualized by radiation or fluoroscopy extend less than all portions of the entire circumference of the shaft.
[0022] In a seventeenth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to eighth aspects and the twelfth to sixteenth aspects) unless otherwise specified, the adjacent radiological or fluoroscopically visible indicia may be a groove or a first material that is denser than a second material from which the shaft is constructed.
[0023] In an eighteenth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to seventeenth aspects) unless otherwise specified, the multiple displays visualized by radiation or fluoroscopy are evenly spaced from each other.
[0024] In a 19th aspect of the present disclosure, which may be combined with any other aspect (e.g., the 1st to 18th aspects) unless otherwise specified, the shaft has an insertion end and a rear end opposite, and the rear end is configured to be removably coupled to a torsion generating device.
[0025] In a twentieth aspect of the present disclosure, which may be combined with any other aspect (e.g., the first to eighteenth aspects) unless otherwise specified, the shaft has an insertion end and a rear end opposite, and the rear end is connected to a torsion generating device.
[0026] Additional features and advantages of the disclosed method and apparatus will be described in, and will be apparent from, the following detailed description and figures. The features and advantages described herein are not all-inclusive, and in particular, many additional features and advantages will be apparent to those skilled in the art in view of the figures and description. Furthermore, it should be noted that the language used herein has been chosen primarily for ease of reading and for explanatory purposes, and not to limit the scope of the inventive subject matter. [Brief explanation of the drawings]
[0027] [Figure 1A] 1 illustrates a perspective view of drill pieces rotated relative to one another along the longitudinal axes of the drill pieces according to one aspect of the present disclosure. [Figure 1B]10 illustrates another perspective view of drill parts rotated relative to one another along the longitudinal axes of the drill parts, according to one aspect of the present disclosure. [Figure 1C] 10 illustrates yet another perspective view of drill parts rotated relative to one another along the longitudinal axes of the drill parts, according to one aspect of the present disclosure.
[0028] [Figure 2] 1 illustrates a perspective view of an insertion end of a drill piece having flutes according to one aspect of the present disclosure.
[0029] [Figure 3] 1 illustrates a perspective view of an insertion end of a drill piece having markings that extend continuously around the entire circumference of the shaft of the drill piece, according to one aspect of the present disclosure.
[0030] [Figure 4] 1 illustrates a perspective view of an insertion end of a drill part having markings that extend continuously partially around the entire circumference of the shaft of the drill part, according to one aspect of the present disclosure.
[0031] [Figure 5] 1 illustrates a flowchart of an exemplary method for determining an insertion depth of a drill component, according to one aspect of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0032] A drill component is provided that allows the insertion depth of the drill component into bone to be determined with greater accuracy than conventional insertion depth measurement methods. The determined insertion depth corresponds to the size or length of the implant to be selected by a surgeon for a procedure. The drill component includes a shaft. One end of the shaft is an insertion end including a cutting tip for driving into bone to create a bone hole. In some cases, the opposite rear end of the shaft is configured to be removably coupled to a driver (e.g., a drill) or other twist generating device. In other examples, the opposite rear end of the shaft may be connected to a driver or other twist generating device. The insertion end of the shaft further includes multiple indicia or markings that are visible by radiography or fluoroscopy. The multiple indicia or markings do not absorb x-rays and are therefore visible in radiographic and fluoroscopic images.
[0033] The surgeon can use the drill element to drill a bone hole, thereby advancing its insertion end into the bone. Following or simultaneously with drilling the bone hole, the surgeon can capture one or more radiological or fluoroscopic images of the patient, including the bone with the drilled hole. As the drill element continues to advance through the bone, the image(s) are captured. As the indicia or markings appear in the images, the surgeon can count the indicia or markings on the drill element from the captured radiological or fluoroscopic images to determine the insertion depth of the drill element into the bone. For example, the surgeon can identify where the proximal cortex of the bone aligns with the indicia or markings and count the number of indicia or markings between the proximal cortex and the insertion end of the drill element. Based on the determined insertion depth, the surgeon can select the size of the implant for the procedure.
[0034] The provided drill element and method therefore enable direct measurement of the insertion depth of the drill element into the bone, compared to typical indirect measurement methods that rely on a cannula outside the bone, which may not always be flush with the bone or may rest on soft tissue. Therefore, the provided drill element and method enable more stable and accurate insertion depth measurements. More stable and accurate measurement of the insertion depth of the drill element may help surgeons more consistently determine the correct or appropriate implant size for a procedure, compared to typical methods, and may help reduce surgical complications such as proud implants. A proud implant is an implant in which either end of the implant overhangs the bone, which can lead to soft tissue irritation, such as tendon chafing, and ultimately tendon damage, which may require a second surgery to repair the damaged tendon.
[0035] 1A-1C show perspective views of the drill element 100 rotated relative to one another along the longitudinal axis of the drill element 100. FIG. 1B is rotated 90 degrees relative to FIG. 1A, and FIG. 1C is rotated 90 degrees relative to FIG. 1B. The drill element 100 includes a shaft 102. The shaft 102 has an insertion end 104 and a rear end 106. In some embodiments, the rear end 106 may be configured to removably couple the drill element 100 to a driver or other twist generating device. For example, in FIGS. 1A-1C, the rear end 106 is configured as an AO driver feature and includes a concave surface 108 and a groove 110 typical of AO driver features. In other embodiments, the rear end 106 may be connected to a driver or other twist generating device such that the drill element 100 is not removable. The insertion end 104 is configured for insertion into bone to create a bone hole. The insertion end 104 further includes a plurality of indicia or markings for visualization by radiology or fluoroscopy.
[0036] The shaft 102 of the drill component 100 may be constructed of a suitable medical-grade material. For example, the shaft 102 may be constructed of stainless steel, cobalt-chromium alloy, titanium, titanium alloy, carbon fiber reinforced plastic, PEEK, polyetherimide (Ultem®), or polyoxymethylene (Delrin®).
[0037] 2 illustrates a perspective view of an exemplary insertion end 104 of the drill component 100. The insertion end 104 includes a cutting tip 202. The cutting tip 202 may have any suitable structure to enable the drill component 100 to be inserted into bone when driven by a driver or other twist generating device. The insertion end 104 further includes a plurality of indicia or markings 200. In this example, the plurality of indicia or markings 200 are grooves 204-214 in the shaft 102 of the drill component 100. In some cases, the grooves 204-214 may each extend around the entire circumference of the shaft 102. In other examples, one or more of the grooves 204-214 may cover less than the entire circumference of the shaft 102.
[0038] While the shaft 102 absorbs X-rays, each of the grooves 204-214 does not absorb X-rays due to the lack of material. On a radiographic or fluoroscopic image of the exemplary insertion tip 104 inserted into a patient, the lack of material in each of the grooves 204-214 distinguishes it from the shaft 102, allowing a surgeon to trace the outline of each of the grooves 204-214 on the radiographic or fluoroscopic image. In this manner, the grooves 204-214 are visualized by radiography or fluoroscopy. In other examples, the plurality of indicia or markings 200 may be a lack of suitable material other than the grooves 204-214. For example, the plurality of indicia or markings 200 may be cross-bores extending through the shaft 102 perpendicular to the longitudinal axis of the drill component 100. For example, each of the grooves 204-214 may instead be a plurality of cross-bores (e.g., each cross-bores converging into a cavity at the center of the shaft 102).
[0039] In an alternative example, the plurality of indicia or markings 200 may instead be provided in a material having a different density than the shaft 102. FIG. 3 shows a perspective view of an exemplary insertion end 300 of the drill component 100, where the plurality of indicia or markings 200 are markings 302-312. The markings 302-312 may be printed on the shaft 102. The markings 302-312 are composed of a material that is denser than the material from which the shaft 102 is constructed. For example, in certain embodiments of the present disclosure, the markings 302-312 may be composed of a radiopaque ink (e.g., an ink containing barium, silver, etc.) or other suitable medical-grade material, depending on the material of the shaft 102. The high-density material of the markings 302-312 absorbs more X-rays than the low-density material of the shaft 102. The markings 302-312 are therefore distinguishable from the shaft 102 on a radiological or fluoroscopic image of the exemplary insertion tip 300 inserted into a patient, allowing a surgeon to trace the outline of each of the markings 302-312 on the radiological or fluoroscopic image. In this manner, the markings 302-312 are visualized by radiology or fluoroscopy.
[0040] Like grooves 204-214, markings 302-312 may extend continuously around the entire circumference of shaft 102, or may extend less than the entire circumference. FIG. 4 shows a perspective view of insertion end 400 having exemplary markings 402-412 that extend less than the entire circumference of shaft 102. Markings 402-412 on insertion end 400 are dotted or dashed markings. It should be understood that markings 402-412 may each be of any suitable shape or form to delineate a discrete marking along shaft 102.
[0041] In some embodiments of the present disclosure, the drilling component 100 may have an insertion end including multiple indicia or markings 200 that combine features of any of the exemplary insertion ends 104, 300, and 400. For example, the drilling component 100 may have an insertion end 104 that includes grooves 204-214 and further includes markings 302-312 on the inner diameter of the shaft 102 in each of the grooves 204-214. In another example, the multiple indicia or markings 200 may be grooves or markings. For example, with respect to the insertion end 104, grooves 206, 210, and 214 of the insertion end 104 may instead be markings 304, 308, and 312. With respect to the insertion end 300, markings 302, 306, and 310 of the insertion end 300 may instead be markings 302, 306, and 310 of the insertion end 300. 402, 406, and 410 may be.
[0042] The plurality of indicia or markings 200 can include any suitable number (e.g., four, five, six, seven) of individual indicia or markings. For example, the exemplary insertion ends 104, 300, and 400 include six individual indicia or markings. Each of the plurality of indicia or markings 200 can be evenly spaced from one another. In some embodiments, at least some of the plurality of indicia or markings 200 can be unevenly spaced from one another.
[0043] 5 shows a flowchart of an example method 500 for determining the insertion depth of a drill part. Although the example method 500 is described with reference to the flowchart shown in FIG. 5, it will be understood that many other ways of performing the operations associated with the method 500 may be used. For example, the order of some of the blocks may be changed, certain blocks may be combined with other blocks, and some of the described blocks are optional.
[0044] In the exemplary method 500, a drill element may be selected (block 502) having a distal end including a cutting tip and a plurality of indicia for radiological or fluoroscopic visualization. For example, the drill element 100 described above may be selected. A hole may be drilled into the bone using the selected drill element (block 504) such that the drill element advances through the bone. In some embodiments, fluoroscopic images of the bone may be continuously captured while the hole is being drilled, allowing the surgeon to view a real-time moving image of the drill element 100 advancing through the bone. In other embodiments, fluoroscopic or radiological image(s) of the bone may be periodically captured, allowing the surgeon to confirm the position of the drill element 100 within the bone.
[0045] As the drill element continues to advance through the bone, the insertion depth of the drill element is determined based on multiple radiological or fluoroscopic visualization views using radiological or fluoroscopic images (block 506). In some cases, the hole may be drilled to a desired depth before the insertion depth of the drill element 100 is determined. In other examples, the radiological or fluoroscopic images may be used to drill the hole until it is determined that the drill element 100 has reached a particular target (e.g., contacted the distal cortex) or is otherwise at the desired insertion depth.
[0046] As described above, the multiple indicia or markings 200 on the drill component 100 appear on a radiographic or fluoroscopic image. Therefore, a surgeon can determine the insertion depth of the drill component 100 by counting the individual indicia or markings 200. For example, a surgeon may identify where the proximal cortex of the bone aligns with the indicia or markings on the radiographic or fluoroscopic image and count the number of indicia or markings between the proximal cortex and the insertion end of the drill component 100. The multiple markings 200 may be spaced apart by a predetermined distance (e.g., 2 mm), thereby allowing the surgeon to determine a depth measurement by counting the number of indicia or markings. In some cases, the proximal cortex of the bone may align between two indicia or markings, and the surgeon may estimate the value between the two indicia or markings.
[0047] An implant (e.g., screw, bushing) size may be selected for a procedure based on the determined insertion depth of the drill component 100. In some embodiments, each of the plurality of indicia or markings 200 corresponds to a particular insertion depth of the drill component 100 (e.g., 6 mm, 8 mm, 10 mm). In such embodiments, the implant size may be selected using the determined particular insertion depth. In other embodiments, each of the plurality of indicia or markings 200 corresponds to a particular implant size. In such other embodiments, determining the insertion depth of the drill component 100 also determines the implant size to be selected.
[0048] Thus, the exemplary method 500 allows a surgeon to determine the insertion depth of the drill element 100 and the size of the implant for a procedure by using radiographic or fluoroscopic images to perform direct measurements with the drill element 100 inside the bone. The direct measurements of method 500 help to increase the reliability of accurate depth measurements compared to typical indirect measurements using a cannula outside the bone.
[0049] As used in this specification and the appended claims, singular forms of words include plurals unless the context clearly dictates otherwise. Thus, the words "a," "an," and "the" generally encompass the plural of the respective words. For example, the word "indicating" or "marking" includes a plurality of such "indicating" or "marking." The word "and / or" used in the context of "X and / or Y" should be interpreted as "X," or "Y," or "X and Y."
[0050] Without further elaboration, it is believed that one skilled in the art can use the preceding description to make full use of the claimed invention. The examples and embodiments disclosed herein should be construed as merely illustrative and in no way limit the scope of the present disclosure. It will be apparent to those skilled in the art that changes can be made to the details of the above-described examples without departing from the basic principles described. In other words, various modifications and improvements of the examples specifically disclosed in the above description are within the scope of the appended claims. For example, any suitable combination of features of the various examples described is contemplated.
Claims
1. a cutting tip and a plurality of spaced apart indicia for visualization by radiography or x-ray fluoroscopy; 1. A drill component comprising a shaft having an insertion end including: each of the plurality of indicia visualized by radiation or X-ray fluoroscopy is at least one of (1) a groove in the shaft and (2) a first material having a higher density than a second material constituting the shaft; A drill component, wherein at least one of the plurality of radiological or fluoroscopically visualized indicia corresponds to an implant size.
2. The drill component of claim 1 , wherein each of the plurality of radiological or fluoroscopically visible indicia extends continuously around the shaft.
3. The drill component of claim 1 , wherein one or more of the plurality of radiological or fluoroscopically visible indicia extend less than all the way around the shaft.
4. 2. The drill component of claim 1, wherein adjacent indicia visualized by radiology or x-ray alternate between being grooves and being a first material having a higher density than a second material comprising the shaft.
5. The drill component of claim 1 , wherein the radiological or fluoroscopically visible indicia are evenly spaced from one another.
6. The drill component of claim 1 , wherein the shaft has a rear end opposite the insertion end, the rear end configured to be removably coupled to a twist generating device.
7. The drill component of claim 1 , wherein the shaft has a rear end opposite the insertion end, the rear end being connected to a twist generator.
Citation Information
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