A surgical equipment auxiliary registration device based on augmented reality navigation technology
Through the surgical equipment auxiliary registration device with augmented reality navigation technology, the rapid connection and angle adjustment of the calibration device and the surgical instrument are realized, solving the problem of angle unadjustment in the prior art, and improving the efficiency and accuracy of surgical operations.
Patent Information
- Application Number
- CN202411905210.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2044-12-23
AI Technical Summary
The existing calibration devices and surgical instrument fixation methods cannot adjust the angle, which leads to difficulties in operation of medical staff and affects the accuracy of positioning of surgical instruments and works efficiency.
A surgical equipment auxiliary registration device based on augmented reality navigation technology is designed. The installation mechanism and adjustment mechanism are used to quickly connect and disassemble the small calibration device body and the tubular surgical instrument body, and the angle can be adjusted, which is suitable for instruments of different inner diameters.
It improves the work efficiency of medical staff, simplifies the operation process, avoids the impact of calibrating devices being blocked in different scenarios, and enhances the positioning accuracy and flexibility of surgical instruments.
Smart Images

Figure CN119908838B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of surgical instrument positioning, and in particular to a surgical instrument auxiliary registration device based on augmented reality navigation technology. Background Art
[0002] During navigation surgery, the surgeon secures the relative position of the surgical instrument and a calibration device, a step often referred to as instrument registration. The registration device enables highly precise instrument registration, ensuring the accuracy and safety of the surgical navigation system.
[0003] However, the existing calibration device and surgical instrument are generally fixed together by gluing or screwing, and cannot be installed or disassembled. Therefore, under normal circumstances, a calibration device can only be used in conjunction with a specific surgical instrument, and the angle direction between the existing calibration device and the surgical instrument is unique after the two are fixed. However, in different surgical operations, medical staff need to perform surgical operations at different operating angles. Since the angle between the calibration device and the surgical instrument cannot be adjusted, the medical staff cannot adjust the direction during the operation, which makes it difficult to use and affects the work efficiency of the medical staff. At the same time, when the operating angle is not good, it will also cause obstruction to the calibration device, thereby affecting the accuracy of the calibration device positioning, thereby affecting the positioning of the surgical instrument accordingly. Therefore, the present application provides a surgical equipment auxiliary registration device based on augmented reality navigation technology to meet the needs. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a surgical equipment auxiliary registration device based on augmented reality navigation technology. By setting up an installation mechanism, the small calibration device body and the tubular surgical instrument body can be quickly fixed together during the medical staff's surgical operation, and the operation is convenient and quick. At the same time, it is also convenient to separate the small calibration device body and the tubular surgical instrument body. The structural design effectively improves the work efficiency of medical staff. The above setting can solve the problem of inconvenient connection and adjustment between the calibration device and the surgical instrument.
[0005] In order to solve the above technical problems, the present invention provides the following technical solutions:
[0006] A surgical instrument registration device based on augmented reality navigation technology includes a small calibration device body with a mounting hole defined on one side, a tubular surgical instrument body disposed on one side of the small calibration device body; a mounting mechanism for connecting the small calibration device body to the tubular surgical instrument body, the mounting mechanism being connected to the small calibration device body; and an adjustment mechanism for adjusting the tightness and angle of the tubular surgical instrument body, the adjustment mechanism being connected to the tubular surgical instrument body.
[0007] Optionally, the installation mechanism includes a connecting tube installed on the small calibration device body, the connecting tube is fixedly connected to an outer shell on the side away from the small calibration device body, an inner tube is installed in the connecting tube, a second limiting portion is provided on the side of the inner tube close to the small calibration device body, and a first limiting portion is provided on the side of the connecting tube close to the small calibration device body.
[0008] Optionally, a first lightweight groove is formed in an annular manner and equidistantly on a side of the connecting pipe close to the small calibration device body, and a first protrusion is formed on a side of the connecting pipe away from the first limiting portion.
[0009] Optionally, first through holes are formed on both sides of the first protrusion, and a second through hole is formed on the connecting tube.
[0010] Optionally, a second convex portion is provided on a side of the inner tube away from the second limiting portion, second lightweight grooves are equidistantly provided in an annular shape on the inner tube, and a guide portion is provided on a side of the inner tube away from the second limiting portion.
[0011] Optionally, the adjustment mechanism includes an inner shell mounted on the tubular surgical instrument body, the outer wall of the connecting tube is sleeved with a threaded block, the outer wall of the threaded block is sleeved with a sleeve block, the sleeve block is fixedly connected to a connecting strip on the side away from the small calibration device body, the connecting strip is fixedly connected to a connecting plate on the side away from the sleeve block, a threaded hole is opened on one side of the inner shell, a threaded rod matching the shape of the threaded hole is installed on the side of the inner shell away from the connecting plate, and the threaded rod is fixedly connected to a rotating block on the side away from the inner shell.
[0012] Optionally, the connecting piece and the inner shell are integrally formed.
[0013] Optionally, the shell and the connecting pipe are integrally formed, the shell and the connecting pipe are made of plastic material, and third lightweight grooves are equidistantly provided in an annular shape on the top of the shell.
[0014] Optionally, the inner wall of the sleeve block is provided with an internal thread, the outer wall of the sleeve block is provided with an anti-slip groove with a depth of two millimeters, and the inner shell is provided with a through-slot matched with the shape of the connecting piece.
[0015] Optionally, a limiting plate is annularly fixedly connected to the outer wall of the inner shell, an end plate is provided at the opening of the inner shell, a guide plate is fixedly connected to the bottom of the inner shell, and reinforcement parts are provided on both sides of the inner wall of the inner shell.
[0016] Compared with the prior art, the present invention has at least the following beneficial effects:
[0017] In the above scheme, by setting up the installation mechanism, not only can the small calibration device body and the tubular surgical instrument body be quickly fixed together during the medical staff's surgical operation, but the operation is also convenient and quick. At the same time, it is also convenient to separate the small calibration device body and the tubular surgical instrument body. The structural design effectively improves the work efficiency of medical staff. In addition, the device can be adjusted to adapt to tubular surgical instrument bodies with different inner diameters using an adjustment mechanism, and the adjustment is convenient and quick. At the same time, the angle of the tubular surgical instrument body can be flexibly adjusted through adjustment, which further makes the operation of medical staff more convenient. See the detailed description below for details. The scope of application of this device is relatively wide, and the device has good practicality.
[0018] By providing a first limiting portion and a second limiting portion in the mounting mechanism, not only can the first limiting portion on the connecting tube be first pressed against one side of the mounting hole on the small calibration device body, and then the inner tube can be inserted into the connecting tube after passing through the mounting hole, during which the wider side of the inner tube is first squeezed and deformed, when the wider side of the inner tube slides to the wider side of the connecting tube, the elastic force generated by the rebound of the inner tube causes the connecting tube and the inner tube to be tightly connected together until the second limiting portion rests against the other side of the mounting hole on the small calibration device body, so that the second limiting portion and the first limiting portion are in a clamping posture to fix the small calibration device body, so that the mounting structure can cooperate with the use of other components in the device to quickly and stably install and connect the small calibration device body and the tubular surgical instrument body together, and the structure is simple, and the use of the structure further makes the use effect of the mounting mechanism better.
[0019] By arranging a threaded block and a sleeve block in the adjusting mechanism, not only can the sleeve block drive the threaded block to slide on the connecting tube when the connecting piece pulls the connecting strip, but during the sliding period, when the threaded block slides to the specified maximum range, the threaded block stops sliding, and after one end of the tubular surgical instrument body is completely inserted into the inner shell, the sleeve block on the threaded block is rotated to move the sleeve block toward the main body of the small calibration device. During this period, the sleeve block pulls the connecting strip around the connecting tube to produce tensile deformation, thereby tightening the inner shell connected to the other side of the connecting piece. At the same time, the influence of the interaction force causes the threaded block to further squeeze the connecting tube, and after tightening the inner shell to tightly fix the tubular surgical instrument body, the sleeve block is stopped from being rotated. By adjusting the position of the threaded block and the sleeve block, the inner shell can be tightened to different inner diameters. The structure makes the device suitable for use with tubular surgical instrument bodies of different inner diameters, thereby increasing the range of use of the device, and the structure is simple. The use of the structure further makes the use effect of the adjusting mechanism better.
[0020] By providing a second protrusion and a guide portion in the installation mechanism, not only can the setting of the guide portion make it easier to insert the inner tube into the connecting tube, thereby facilitating the connection between the connecting tube and the inner tube, the second protrusion provided on the inner tube generates pressure against the inner wall of one side of the connecting tube during the installation and connection process of the connecting tube and the inner tube, thereby making the connection between the connecting tube and the inner tube tighter, thereby making the connection between the small calibration device body and the tubular surgical instrument body more stable, and the structure is simple, and the structure further makes the use effect of the installation mechanism better.
[0021] By providing a guide plate and a reinforcement part in the adjustment mechanism, not only can the guide plate be used to assist in the insertion of the tubular surgical instrument body and play a good guiding role, but the reinforcement part provided on the inner shell can cause a certain degree of deformation when the side of the inner shell close to the reinforcement part is subjected to pressure, thereby making the angle adjustment range of the tubular surgical instrument body larger, and the structure is simple, which further makes the use effect of the adjustment mechanism better.
[0022] By providing a connecting tube and a threaded rod, after the tubular surgical instrument body is installed, the tubular surgical instrument body, the connecting tube and the threaded rod form a T-shaped structure. The formation of the T-shaped structure allows medical staff to hook the connecting tube and the threaded rod with two fingers during the surgical operation, and then use other fingers to assist in limiting the small calibration device body, the tubular surgical instrument body and the related structures for connection. The device can be stably placed in the hand for use, and the coordinated use of the structures further makes the surgical operation more convenient for medical staff.
[0023] To sum up, this device can realize the rapid connection and disassembly of the small calibration device body and the tubular surgical instrument body through the installation mechanism and the adjustment mechanism, as well as the coordinated use of the various components therein, and the device can be made suitable for use with tubular surgical instrument bodies of different inner diameters within a certain range through adjustment, and the angle between the tubular surgical instrument body and the small calibration device body can also be adjusted through adjustment. The coordinated use of the structures facilitates the surgical operations of medical staff, and the structure of the device is simple and the production cost is low. At the same time, the device can avoid the problem that the calibration device is easily blocked in different scenarios, affecting the shooting or recognition of the binocular camera, and the device has good practicality, while effectively improving the work efficiency of surgical operations, and the production cost of the device is low, which is convenient for promotion and use. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] The accompanying drawings, which are incorporated herein and constitute a part of the specification, illustrate embodiments of the invention and, together with the description, further serve to explain the principles of the invention and to enable one skilled in the art to make and use the invention.
[0025] Figure 1 This is a schematic diagram of the three-dimensional structure of a surgical instrument auxiliary registration device based on augmented reality navigation technology;
[0026] Figure 2 A schematic diagram of the three-dimensional structure of a surgical instrument auxiliary registration device based on augmented reality navigation technology;
[0027] Figure 3 A schematic diagram of the three-dimensional structure of the outer shell and the inner shell;
[0028] Figure 4 for Figure 3 A in the middle is an enlarged structural diagram;
[0029] Figure 5 for Figure 1 The enlarged structural diagram at B in the middle;
[0030] Figure 6 It is a schematic diagram of the cross-sectional three-dimensional structure of the outer shell and the inner shell;
[0031] Figure 7 for Figure 6 The enlarged structural diagram at C in the middle;
[0032] Figure 8 Schematic diagram of the cross-sectional structure of the outer shell and the inner shell;
[0033] Figure 9 for Figure 8 Enlarged structural diagram at point D in the middle.
[0034] [Reference Signs]
[0035] 1. Small calibration device body; 2. Tubular surgical instrument body; 3. Outer shell; 4. Connecting tube; 5. First lightweight groove; 6. First limiting portion; 7. First convex portion; 8. First through-hole; 9. Second through-hole; 10. Inner tube; 11. Second limiting portion; 12. Second convex portion; 13. Second lightweight groove; 14. Guide portion; 15. Threaded block; 16. Sleeve block; 17. Connecting strip; 18. Connecting piece; 19. Inner shell; 20. End piece; 21. Limiting piece; 22. Guide piece; 23. Reinforcement portion; 24. Threaded hole; 25. Threaded rod; 26. Rotating block; 27. Third lightweight groove.
[0036] As shown in the figure, in order to clearly implement the structure of the embodiment of the present invention, specific structures and devices are marked in the figure, but this is only for illustrative purposes and is not intended to limit the present invention to the specific structure, device and environment. According to specific needs, ordinary technicians in this field can adjust or modify these devices and environments. DETAILED DESCRIPTION
[0037] The following describes in detail, with reference to the accompanying drawings and specific embodiments, a surgical instrument registration device based on augmented reality navigation technology, provided by the present invention. It is also noted that, for the sake of completeness, the following embodiments are best and preferred embodiments, and those skilled in the art may employ alternative implementations for known technologies. Furthermore, the accompanying drawings are intended only to provide a more detailed description of the embodiments and are not intended to limit the present invention.
[0038] It should be noted that references in the specification to "one embodiment," "an embodiment," "an exemplary embodiment," "some embodiments," etc. indicate that the described embodiments may include specific features, structures, or characteristics, but not necessarily every embodiment includes such specific features, structures, or characteristics. In addition, when specific features, structures, or characteristics are described in conjunction with an embodiment, it is within the knowledge of persons skilled in the relevant art to implement such features, structures, or characteristics in conjunction with other embodiments, regardless of whether such features, structures, or characteristics are explicitly described.
[0039] In general, terms can be understood, at least in part, from their use in context. For example, depending at least in part on the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in the singular sense, or can be used to describe a combination of features, structures, or characteristics in the plural sense. Additionally, the term "based on" can be understood as not necessarily intended to convey an exclusive set of factors, but can instead, depending at least in part on the context, allow for the presence of other factors that are not necessarily explicitly described.
[0040] It will be understood that the meanings of “on,” “over,” and “above” in the present invention should be interpreted in the broadest manner, so that “on” means not only “directly on” something but also includes the meaning of being “on” something with intervening features or layers, and “on” or “above” means not only “on” or “above” something but also includes the meaning of being “on” or “above” something with no intervening features or layers.
[0041] Additionally, spatially relative terms such as "below," "beneath," "lower," "above," and "upper" may be used herein for descriptive convenience to describe the relationship of one element or feature to another element or features, as illustrated in the accompanying drawings. Spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the accompanying drawings. The device may be oriented in other ways, and the spatially relative descriptors used herein should be similarly interpreted accordingly.
[0042] like Figure 1 and Figure 2 As shown, an embodiment of the present invention provides a surgical equipment auxiliary registration device based on augmented reality navigation technology, including a small calibration device body 1, a mounting hole is opened on one side of the small calibration device body 1, and a tubular surgical instrument body 2 is provided on one side of the small calibration device body 1; an installation mechanism, the installation mechanism is used to connect the small calibration device body 1 and the tubular surgical instrument body 2, and the installation mechanism is connected to the small calibration device body 1. The adjustment mechanism is used to adjust the tightness and angle of the tubular surgical instrument body 2. The adjustment mechanism is connected to the tubular surgical instrument body 2. The device can quickly fix the small calibration device body 1 and the tubular surgical instrument body 2 together by utilizing the installation mechanism during the medical staff's surgical operation, and the operation is convenient and quick. At the same time, it is also convenient to separate the small calibration device body 1 and the tubular surgical instrument body 2. The structural design effectively improves the work efficiency of medical staff. In addition, the device can use the adjustment mechanism to adjust the device to adapt to tubular surgical instrument bodies 2 with different inner diameters, and the adjustment is convenient and quick. At the same time, the angle of the tubular surgical instrument body 2 can be flexibly adjusted through adjustment, which further makes the operation of medical staff more convenient. See the detailed description below for details. The scope of application of this device is relatively wide, and the practicality of the device is good.
[0043] like Figures 3 to 5As shown, the installation mechanism includes a connecting tube 4 installed on the small calibration device body 1, and the connecting tube 4 is fixedly connected to the shell 3 on the side away from the small calibration device body 1. The shell 3 and the connecting tube 4 are integrally formed, and the shell 3 and the connecting tube 4 are made of plastic material. A third lightweight groove 27 is equidistantly provided in an annular shape on the top of the shell 3. An inner tube 10 is installed in the connecting tube 4, and a second limiting portion 11 is provided on the side of the inner tube 10 close to the small calibration device body 1, and a first limiting portion 6 is provided on the side of the connecting tube 4 close to the small calibration device body 1. The shape of the connecting tube 4 is adapted to that of the inner tube 10, and both are narrower on the side close to the small calibration device body 1 and wider on the side away from the small calibration device body 1. The connecting tube 4 and the inner tube 10 are both made of plastic material. The outer diameter of the inner tube 10 close to the small calibration device body 1 is the same as the inner diameter of the mounting hole on the small calibration device body 1. This structure is achieved by first pressing the first limiting portion 6 on the connecting tube 4 against On one side of the mounting hole on the small calibration device body 1, the inner tube 10 is passed through the mounting hole and inserted into the connecting tube 4. During this period, the wider side of the inner tube 10 is first squeezed and deformed. When the wider side of the inner tube 10 slides to the wider side of the connecting tube 4, the elastic force generated by the rebound of the inner tube 10 makes the connecting tube 4 and the inner tube 10 tightly connected together until the second limiting part 11 is against the other side of the mounting hole on the small calibration device body 1, so that the second limiting part 11 and the first limiting part 6 are in a clamping posture to fix the small calibration device body 1, so that the installation structure can be used in conjunction with other components in the device to quickly and stably install and connect the small calibration device body 1 and the tubular surgical instrument body 2. The specific method of use is described in detail below. Similarly, the small calibration device body 1 and the tubular surgical instrument body 2 can be separated by pulling out the inner tube 10 from the connecting tube 4. The structure is simple and easy to use, which effectively improves the work efficiency of the staff.
[0044] like Figures 6 to 9As shown, the adjustment mechanism includes an inner shell 19 installed on the tubular surgical instrument body 2, the outer wall of the connecting tube 4 is provided with a threaded block 15, the outer wall of the threaded block 15 is provided with a sleeve block 16, the sleeve block 16 is fixedly connected to the side of the small calibration device body 1 away from the sleeve block 16 with a connecting strip 17, the connecting strip 17 is fixedly connected to the side of the sleeve block 16 away from the sleeve block 16, a threaded hole 24 is opened on one side of the inner shell 19, a threaded rod 25 that matches the shape of the threaded hole 24 is installed on the side of the inner shell 19 away from the connecting piece 18, and a rotating block 26 is fixedly connected to the side of the threaded rod 25 away from the inner shell 19. The initial position of the sleeve block 16 is on the side of the threaded block 15 close to the inner shell 19, and the initial position of the threaded block 15 is on the side of the connecting tube 4 close to the small calibration device body 1. The initial state of the inner shell 19 is to be retracted to the minimum inner diameter state within the adjustable range, and the inner shell 19 is open. The mouth fits together, at this time the connecting strip 17 and the connecting piece 18 connecting the sleeve block 16 and the inner shell 19 are in a naturally stretched state, the outer wall edge of the threaded rod 25 close to the inner shell 19 is arc-shaped, and lightweight grooves are equidistantly provided on the rotating block 26, and hand buckle grooves are equidistantly provided on the outer wall of the rotating block 26, and the outer wall of the rotating block 26 is provided with anti-slip grooves. When the tubular surgical instrument body 2 is installed, the tubular surgical instrument body 2, the connecting tube 4 and the threaded rod 25 form a T-shaped structure. The formation of the T-shaped structure allows the medical staff to hook the connecting tube 4 and the threaded rod 25 with two fingers during the surgical operation, and then use other fingers to assist in limiting the small calibration device body 1 and the tubular surgical instrument body 2 and the related structures for connection, so that the device can be stably placed in the hand for use, and the coordinated use of the structures further makes the medical staff's surgical operation more convenient.
[0045] In addition, by inserting the tubular surgical instrument body 2 into the inner shell 19, the present structure makes the minimum inner diameter of the tubular surgical instrument body 2 applicable to the present device larger than the inner diameter of the inner shell 19 in its natural state. During the period when the tubular surgical instrument body 2 is inserted into the inner shell 19, the inner shell 19 expands along the opening, causing the connecting piece 18 to pull the connecting strip 17, thereby causing the sleeve block 16 to drive the threaded block 15 to slide on the connecting tube 4. During the sliding period, since the inner diameter of the connecting tube 4 is fixed, when the connecting tube 4 slides to a part of the connecting tube 4 that is larger than its inner diameter, the connecting tube 4 is squeezed and deformed. In conjunction with the use of the inner tube 10 therein, the inner tube 10 is tightly confined in the connecting tube 4, thereby further strengthening the connection between the small calibration device body 1 and the tubular surgical instrument body 2. After moving to the specified maximum range, the threaded block 15 stops sliding. After one end of the tubular surgical instrument body 2 is completely inserted into the inner shell 19, the sleeve 16 on the threaded block 15 is rotated to move the sleeve 16 toward the small calibration device body 1. During this period, the sleeve 16 pulls the connecting strip 17 around the connecting tube 4 to produce tensile deformation, thereby tightening the inner shell 19 connected to the other side of the connecting piece 18. At the same time, the influence of the interaction force causes the threaded block 15 to further squeeze the connecting tube 4, and after tightening the inner shell 19 to tightly fix the tubular surgical instrument body 2, the sleeve 16 is stopped from being rotated. By adjusting the positions of the threaded block 15 and the sleeve 16, the inner shell 19 can be tightened to different inner diameters. The structure enables the device to be suitable for tubular surgical instrument bodies 2 with different inner diameters, thereby increasing the range of use of the device.
[0046] After tightening and fixing the inner shell 19, the tubular surgical instrument body 2 can be adjusted to the desired angle by rotating the tubular surgical instrument body 2. Then, after fine-tuning the sleeve block 16, the rotating block 26 drives the threaded rod 25 to rotate, and the threaded action of the threaded hole 24 causes one side of the threaded rod 25 to approach the inner shell 19, tightly pressing one side of the inner shell 19 against the inner wall of one side of the outer shell 3, further limiting the angle of the inner shell 19. When the structure is used in combination, the tubular surgical instrument body 2 can flexibly adjust the angle under different usage conditions, and the coordinated use of the threaded rod 25 and the sleeve block 16 further makes the fixing effect of the inner shell 19 on the tubular surgical instrument body 2 better, and the structure is simple and easy to operate, and the structure makes the device more practical.
[0047] like Figures 1 to 9As shown, a first lightweight groove 5 is equidistantly provided in an annular manner on one side of the connecting tube 4 close to the small calibration device body 1, a first convex portion 7 is provided on the side of the connecting tube 4 away from the first limiting portion 6, a first through-hole 8 is provided on both sides of the first convex portion 7, a second through-hole 9 is provided on the connecting tube 4, a second convex portion 12 is provided on the side of the inner tube 10 away from the second limiting portion 11, a second lightweight groove 13 is equidistantly provided in an annular manner on the inner tube 10, and a guide portion 14 is provided on the side of the inner tube 10 away from the second limiting portion 11. This structure utilizes the first lightweight groove 5 to make it easier for the inner tube 10 to be inserted into the connecting tube 4 when the inner tube 10 is inserted into the connecting tube 4. The deformation of the inner tube 10 itself cooperates with the slight deformation of the connecting tube 4 close to the first lightweight groove 5, so that the inner tube 10 can be more easily pushed into the connecting tube 4, thereby making the connection operation of the small calibration device body 1 and the tubular surgical instrument body 2 more convenient. The setting of the through hole 8 limits the threaded block 15. After the connecting strip 17 passes through the first through hole 8, it passes through the second through hole 9 and is connected to the connecting piece 18. As a result, when the connecting strip 17 pulls the threaded block 15 to slide on the connecting tube 4, it will not continue to move toward the tubular surgical instrument body 2 on the connecting tube 4 after sliding to the maximum at the first protrusion 7. The setting of the guide part 14 makes it easier to insert the inner tube 10 into the connecting tube 4, thereby facilitating the connection between the connecting tube 4 and the inner tube 10. The second lightweight groove 13 on the inner tube 10 makes it easier for the inner tube 10 to deform when squeezed. The second protrusion 12 provided on the inner tube 10 is pressed against the inner wall of one side of the connecting tube 4 during the installation and connection process of the connecting tube 4 and the inner tube 10, thereby making the connection between the connecting tube 4 and the inner tube 10 tighter, thereby making the connection between the small calibration device body 1 and the tubular surgical instrument body 2 more stable.
[0048] like Figures 6 to 9As shown, the connecting piece 18 and the inner shell 19 are integrally formed, the inner wall of the sleeve block 16 is provided with an internal thread, the outer wall of the sleeve block 16 is provided with an anti-slip groove with a depth of two millimeters, and a through slot that matches the shape of the connecting piece 18 is opened on the inner shell 19. The outer wall of the inner shell 19 is annularly fixedly connected to the limiting piece 21, and an end piece 20 is provided at the opening of the inner shell 19. The bottom of the inner shell 19 is fixedly connected with a guide piece 22, and the inner walls on both sides of the inner shell 19 are provided with a reinforcement part 23. The integral structure makes the connection between the structures tighter and more stable. The structure can finely adjust the tightness of the inner shell 19 through the use of the sleeve block 16 and the threaded block 15, so that the inner shell 19 will not be clamped too tightly to cause serious squeezing of the outer wall of the tubular surgical instrument body 2, and at the same time, the tubular surgical instrument body 2 can be stably fixed in the inner shell 19 for use, and the rotation process is more convenient. No side slip will occur during the process, and the limiting piece 21 tends to be straight in its natural state. When the inner shell 19 is deformed, the side of the limiting piece 21 away from the inner shell 19 is tightly pressed against the inner wall of the outer shell 3. As the extrusion pressure changes, the limiting piece 21 changes to varying degrees. The setting of the limiting piece 21 can keep the outer shell 3 and the inner shell 19 in a relatively stable state. The limiting piece 21 cooperates with the use of the outer shell 3 to provide good auxiliary support for the inner shell 19. The setting of the end piece 20 ensures that there will be no serious mutual friction when the openings of the inner shell 19 contact each other. The setting of the guide piece 22 is used to assist the insertion of the tubular surgical instrument body 2, and plays a good guiding role. The reinforcement part 23 provided on the inner shell 19 can make the side of the inner shell 19 close to the reinforcement part 23 deform to a certain extent when it is under pressure, thereby making the angle adjustment range of the tubular surgical instrument body 2 larger.
[0049] The specific workflow of the technical solution of the present invention is as follows:
[0050] When in use, first press the first limiting portion 6 on the connecting tube 4 against one side of the mounting hole on the small calibration device body 1, and then insert the inner tube 10 into the connecting tube 4 after passing through the mounting hole. During the insertion process, the guide portion 14 on one side of the inner tube 10 plays a guiding role. At the same time, the wider side of the inner tube 10 is squeezed and deformed first. The second lightweight groove 13 is used to make the inner tube 10 easier to deform. When the wider side of the inner tube 10 slides to the wider side of the connecting tube 4, the elastic force generated by the rebound of the inner tube 10 makes the connecting tube 4 and the inner tube 10 tightly connected together. The second convex portion 12 provided on the inner tube 10 makes the extrusion force generated by the connecting tube 4 and the inner tube 10 stronger, thereby making the connection between the small calibration device body 1 and the tubular surgical instrument body 2 tighter, until the second limiting portion 11 presses against the small On the other side of the mounting hole on the small calibration device body 1, the second limiting part 11 and the first limiting part 6 are in a clamping posture to fix the small calibration device body 1, so that the small calibration device body 1 and the tubular surgical instrument body 2 are quickly and stably installed and connected together, and then the tubular surgical instrument body 2 is inserted into the inner shell 19, and the minimum inner diameter of the tubular surgical instrument body 2 applicable to this device is specified to be larger than the inner diameter of the inner shell 19 in the natural state. During the insertion of the tubular surgical instrument body 2 into the inner shell 19, the guide piece 22 first guides the insertion of the tubular surgical instrument body 2, and the limiting piece 21 plays an auxiliary limiting role on the inner shell 19. The inner shell 19 expands along the opening, causing the connecting piece 18 to pull the connecting strip 17, and then the sleeve block 16 drives the threaded block 15 to slide on the connecting pipe 4.
[0051] During the sliding period, since the inner diameter of the connecting tube 4 is fixed, when the connecting tube 4 slides to a portion of the connecting tube 4 that is larger than its inner diameter, the connecting tube 4 is squeezed and deformed. The inner tube 10 therein is deformed, so that the inner tube 10 is tightly confined in the connecting tube 4, thereby further strengthening the connection between the small calibration device body 1 and the tubular surgical instrument body 2. When the threaded block 15 slides to the prescribed maximum range, the threaded block 15 stops sliding. At this time, the threaded block 15 stops near the first protrusion 7. The first protrusion 7 and the connecting strip 17 inserted in the first through-hole 8 are used to limit the threaded block 15, and one end of the tubular surgical instrument body 2 is completely fixed. After being inserted into the inner shell 19, the sleeve block 16 on the threaded block 15 is rotated to move the sleeve block 16 toward the small calibration device body 1. During this period, the sleeve block 16 pulls the connecting strip 17 around the connecting tube 4 to produce tensile deformation, thereby tightening the inner shell 19 connected to the other side of the connecting piece 18. At the same time, the influence of the interaction force causes the threaded block 15 to further squeeze the connecting tube 4, and after tightening the inner shell 19 to tightly fix the tubular surgical instrument body 2, the sleeve block 16 is stopped from being rotated. By adjusting the position of the threaded block 15 and the sleeve block 16, the inner shell 19 can be tightened to different inner diameters, so that the device can be used with tubular surgical instrument bodies 2 with different inner diameters, thereby increasing the range of use of the device.
[0052] The screw thread 25 is then pulled out of the sleeve 16 so that the inner tube 10 can be pulled out of the sleeve 16 and the inner tube 10 can be pulled out of the sleeve 16 to separate the small calibration device body 1 and the tubular surgical instrument body 2.
[0053] The present invention encompasses any alternatives, modifications, equivalents, and solutions that fall within the spirit and scope of the present invention. To provide a thorough understanding of the present invention, specific details are described in detail below in connection with the preferred embodiments of the present invention, but those skilled in the art will be able to fully understand the present invention without these detailed descriptions. Furthermore, to avoid unnecessary confusion regarding the essence of the present invention, well-known methods, processes, procedures, components, and circuits have not been described in detail.
[0054] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as within the scope of protection of the present invention.
Claims
1. A surgical equipment auxiliary registration device based on augmented reality navigation technology, characterized in that: It comprises a small calibration device body, a mounting hole is opened on one side of the small calibration device body, and a tubular surgical instrument body is provided on one side of the small calibration device body; a mounting mechanism, the mounting mechanism being used to connect the small calibration device body and the tubular surgical instrument body, the mounting mechanism being connected to the small calibration device body; An adjustment mechanism, the adjustment mechanism is used to adjust the tightness and angle of the tubular surgical instrument body, and the adjustment mechanism is connected to the tubular surgical instrument body; The installation mechanism includes a connecting tube installed on the small calibration device body, the connecting tube is fixedly connected to the outer shell on the side away from the small calibration device body, an inner tube is installed in the connecting tube, the inner tube is provided with a second limiting portion on the side close to the small calibration device body, and the connecting tube is provided with a first limiting portion on the side close to the small calibration device body.
2. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 1, characterized in that: A first lightweight groove is formed in an annular manner and equidistantly on one side of the connecting pipe close to the body of the small calibration device, and a first convex portion is formed on the side of the connecting pipe away from the first limiting portion.
3. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 2, characterized in that: A first through hole is formed on both sides of the first protrusion, and a second through hole is formed on the connecting pipe.
4. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 1, characterized in that: A second convex portion is provided on a side of the inner tube away from the second limiting portion, second lightweight grooves are equidistantly provided in an annular pattern on the inner tube, and a guide portion is provided on a side of the inner tube away from the second limiting portion.
5. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 1, characterized in that: The adjustment mechanism includes an inner shell installed on the tubular surgical instrument body, the outer wall of the connecting tube is provided with a threaded block, the outer wall of the threaded block is provided with a sleeve block, the sleeve block is fixedly connected to a connecting strip on the side away from the small calibration device body, the connecting strip is fixedly connected to a connecting plate on the side away from the sleeve block, a threaded hole is opened on one side of the inner shell, a threaded rod adapted to the shape of the threaded hole is installed on the side of the inner shell away from the connecting plate, and the threaded rod is fixedly connected to a rotating block on the side away from the inner shell.
6. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 5, characterized in that: The connecting piece and the inner shell are integrally formed.
7. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 1, characterized in that: The shell and the connecting pipe are integrally formed and made of plastic material. A third lightweight groove is equidistantly provided in a circular shape on the top of the shell.
8. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 5, characterized in that: The inner wall of the sleeve block is provided with an internal thread, the outer wall of the sleeve block is provided with an anti-slip groove with a depth of two millimeters, and the inner shell is provided with a through-slot matched with the shape of the connecting piece.
9. The surgical equipment auxiliary registration device based on augmented reality navigation technology according to claim 5, characterized in that: The outer wall of the inner shell is annularly fixedly connected with a limit plate, the opening of the inner shell is provided with an end plate, the bottom of the inner shell is fixedly connected with a guide plate, and the inner walls on both sides of the inner shell are provided with reinforcement parts.
Citation Information
Patent Citations
Navigation device
CN111743630A
Tubular pile positioning device
CN220080014U