Minimally invasive ultrasonic osteotome head and minimally invasive ultrasonic bone power system
11490919 ยท 2022-11-08
Assignee
Inventors
Cpc classification
A61B2017/0034
HUMAN NECESSITIES
A61B2017/320072
HUMAN NECESSITIES
A61B17/320068
HUMAN NECESSITIES
International classification
A61B34/00
HUMAN NECESSITIES
Abstract
A minimally invasive ultrasonic osteotome head and a minimally invasive ultrasonic powered system for bone; the minimally invasive ultrasonic osteotome head comprises an osteotome rod (11, 21, 31, 41, 51, 61) and a head end (12, 22, 32, 42, 52, 62), the head end (12, 22, 32, 42, 52, 62) being located at a front end of the osteotome rod(11, 21, 31, 41, 51, 61), and the head end (12, 22, 32, 42, 52, 62) being bent laterally at a certain angle, wherein knurled teeth or skewed teeth are provided on the bent portion. By means of bending the head end (12, 22, 32, 42, 52, 62), bone tissue around the transforaminal endoscope may be removed. Therefore, a surgeon may, as much as possible, have more operation space under the limited endoscope channel, thereby increasing bone removal efficiency.
Claims
1. A minimally invasive ultrasonic osteotome head comprising an osteotome rod (11, 21, 31, 41, 51, 61) and a head end (12, 22, 32, 42, 52, 62), the head end being located at a front end of the osteotome rod, and bending laterally at a certain angle at a bending portion thereof, being characterized in that the osteotome head is configured to be used together with a transforaminal endoscope (10) having a channel through which the head end (12, 22, 32, 42, 52, 62) cannot pass, wherein the osteotome rod (11, 21, 31, 41, 51, 61) comprises two detachable portions, a front portion connected with the head end and a rear portion connected with an ultrasonic handle so that the front portion of the osteotome rod is fitted into the channel from the front of the transforaminal endoscope and the rear portion of the osteotome rod is fitted into the channel from the rear of the transforaminal endoscope.
2. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the bending portion is provided with knurled teeth or skewed teeth.
3. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that a bottom surface (121) of the bending portion is a square arc surface, and upper and lower inclined surfaces of a transverse surface (122) of the bending portion are provided with knurled teeth.
4. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the head end (22) is rake-shaped, and a transverse surface (222) of the bending portion is provided with skewed teeth.
5. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the head end (22) is spoon-shaped, and a top surface (324) of the bending portion is provided with knurled teeth.
6. The minimally invasive ultrasonic osteotome head of claim 5, being characterized in that a transverse surface (322) and a side surface (323) of the bending portion are provided with skewed teeth.
7. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the head end (42) is sheet-shaped, and a transverse surface (422) of the bending portion is provided with skewed teeth.
8. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the head end (42) is in a shape of a beveled square file, and a transverse surface (522) of the bending portion is provided with knurled teeth.
9. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the head end (62) is a prismatic cylinder, a transverse surface (622) of the bending portion is provided with knurled teeth, and a side surface (621) of the bending portion is provided with a spiral skewed slot.
10. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that the entire osteotome rod is of a hollow structure.
11. The minimally invasive ultrasonic osteotome head of claim 1, being characterized in that only part of the osteotome rod is of a hollow structure, and water is discharged through side holes in the middle of the osteotome rod.
12. A minimally invasive ultrasonic bone power system comprising the minimally invasive ultrasonic osteotome head of claim 1.
13. The minimally invasive ultrasonic bone power system of claim 12, further comprising a transforaminal endoscope, the osteotome rod of the minimally invasive ultrasonic osteotome head being fitted in a channel of the transforaminal endoscope.
14. The minimally invasive ultrasonic bone power system of claim 12, further comprising a main unit, an ultrasonic handle and a foot switch, the minimally invasive ultrasonic osteotome head being connected to the ultrasonic handle via a connecting device, and the ultrasonic handle and the foot switch being respectively electrically connected with the main unit.
15. The minimally invasive ultrasonic bone power system of claim 14, being characterized in that the main unit comprises an osteotome head detection module, a human-machine interaction module, an ultrasonic signal generator, a high voltage driver, a frequency tracking and failure detection module, and voltage, current and phase samplers.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(10) In the following embodiments, detailed description by text together with the drawings illustrate how the disclosed embodiments are implemented. It is to be understood that other embodiments are feasible, and the embodiments may be modified structurally or logically without deviating from the scope disclosed in the present disclosure.
(11) The present disclosure will be further described in detail below with reference to specific embodiments as well as the drawings.
Embodiment 1
(12) As shown in
(13) In the assembly procedure, since the bending head end cannot pass through the channel of the transforaminal endoscope, in order to enable the minimally invasive ultrasonic osteotome head 1 to operate together with the transforaminal endoscope, as shown in
(14) The osteotome rod 11 may be of a hollow structure through the entire rod to discharge water for perfusion directly at the head end; or only part of the osteotome rod is of a hollow structure, so that water is discharged through side holes in the middle of the osteotome rod 11.
(15) The minimally invasive ultrasonic osteotome head 1 can be used, together with a transforaminal endoscope, in a minimally invasive ultrasonic bone power system. As shown in
(16) As shown in
Embodiment 2
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(18) Similar to Embodiment 1, in order to facilitate assembly, the osteotome rod 21 is also configured as two portions, a front portion connected to the head end 22 and a rear portion connected to the handle, the two portions being connected by means of threads. The osteotome rod 21 may be of a hollow structure through the entire rod to discharge water for perfusion directly at the head end; or only part of the osteotome rod is of a hollow structure, so that water is discharged through side holes in the middle of the rod.
(19) The minimally invasive ultrasonic osteotome head 2 may also be used, together with a transforaminal endoscope, in a minimally invasive ultrasonic bone power system. When in use, the osteotome rod of the minimally invasive ultrasonic osteotome 2 is fitted in an operation channel of the transforaminal endoscope and is connected to the ultrasonic handle via a connecting device. The ultrasonic handle is electrically connected with a main unit, and a foot switch is further provided and also electrically connected with the main unit. Since the head end 22 of the minimally invasive ultrasonic osteotome head 2 has a laterally bending arc section, the bone tissues around the transforaminal endoscope can be removed, so that the operator has as much operating space as possible even under a limited channel of the endoscope, thereby improving the bone removal efficiency. In addition, the transverse surface 222 of the bending portion is provided with skewed teeth, which help to cut the bone tissues around the transforaminal endoscope, thereby further improving the efficiency.
Embodiment 3
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(21) Similar to Embodiment 1, in order to facilitate assembly, the osteotome rod 31 is also configured as two portions, a front portion connected to the head end 32 and a rear portion connected to the handle, the two portions being connected by means of threads. The osteotome rod 31 may be of a hollow structure through the entire rod to discharge water for perfusion directly at the head end; or only part of the osteotome rod is of a hollow structure, so that water is discharged through side holes in the middle of the osteotome rod.
(22) The minimally invasive ultrasonic osteotome head 3 can be used, together with a transforaminal endoscope, in an ultrasonic bone tissue surgical system. When in use, the osteotome rod 31 of the minimally invasive ultrasonic osteotome 3 is fitted in an operation channel of the transforaminal endoscope and is connected to the ultrasonic handle via a connecting device. The ultrasonic handle is electrically connected with a main unit, and a foot switch is further provided and also electrically connected with the main unit. Since the head end 32 of the minimally invasive ultrasonic osteotome head 3 bends laterally and has a trapezoidal bottom surface, the bone tissues around the transforaminal endoscope can be removed, so that the operator has as much operating space as possible even under a limited channel of the endoscope, thereby improving the bone removal efficiency. In addition, the top surface 324 of the bending portion is provided with knurled teeth, which help to grind the bone tissues around the endoscope. Further, the transverse surface 322 and the side surface 323 of the bending portion are provided with skewed teeth, which help to cut the bone tissues around the endoscope. The above configuration can improve the bone removal efficiency to a greater extent, thereby providing a larger operating space.
Embodiment 4
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(24) Similar to Embodiment 1, in order to facilitate assembly, the osteotome rod 41 is also configured as two portions, a front portion connected to the head end 42 and a rear portion connected to the handle, the two portions being connected by means of threads. The osteotome rod 41 may be of a hollow structure through the entire rod to discharge water for perfusion directly at the head end; or only part of the osteotome rod is of a hollow structure, so that water is discharged through side holes in the middle of the osteotome rod.
(25) The minimally invasive ultrasonic osteotome head 4 can be used, together with a transforaminal endoscope, in an ultrasonic bone tissue surgical system. When in use, the osteotome rod 41 of the minimally invasive ultrasonic osteotome 4 is fitted in an operation channel of the transforaminal endoscope and is connected to the ultrasonic handle via a connecting device. The ultrasonic handle is electrically connected with a main unit, and a foot switch is further provided and also electrically connected with the main unit. Since the head end 42 of the minimally invasive ultrasonic osteotome head 4 bends laterally, the bone tissues around the transforaminal endoscope can be removed, so that the operator has as much operating space as possible even under a limited channel of the endoscope, thereby improving the bone removal efficiency. In addition, a bottom surface 421 and a transverse surface 422 of the bending portion are provided with skewed teeth, which help to cut the bone tissues around the transforaminal endoscope, thereby further improving the bone removal efficiency.
Embodiment 5
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(27) Similar to Embodiment 1, in order to facilitate assembly, the osteotome rod 51 is also configured as two portions, a front portion connected to the head end 52 and a rear portion connected to the handle, the two portions being connected by means of threads. The osteotome rod 51 may be of a hollow structure through the entire rod to discharge water for perfusion directly at the head end; or only part of the osteotome rod is of a hollow structure, so that water is discharged through side holes in the middle of the osteotome rod.
(28) The minimally invasive ultrasonic osteotome head 5 can be used, together with a transforaminal endoscope, in an ultrasonic bone tissue surgical system. When in use, the osteotome rod 51 of the minimally invasive ultrasonic osteotome 5 is fitted in an operation channel of the transforaminal endoscope and is connected to the ultrasonic handle via a connecting device. The ultrasonic handle is electrically connected with a main unit, and a foot switch is further provided and also electrically connected with the main unit. Since the head end 52 of the minimally invasive ultrasonic osteotome head 5 bends laterally, the bone tissues around the transforaminal endoscope can be removed, so that the operator has as much operating space as possible even under a limited channel of the endoscope, thereby improving the bone removal efficiency. In addition, the transverse surface 522 of the bending portion is provided with knurled teeth, which help to grind the bone tissues around the endoscope, thereby further improving the bone removal efficiency.
Embodiment 6
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(30) Similar to Embodiment 1, in order to facilitate fitting, the osteotome rod 61 is also configured as two portions, a front portion connected to the head end 62 and a rear portion connected to the handle, the two portions being connected by means of threads. The osteotome rod 61 may be of a hollow structure through the entire rod to discharge water for perfusion directly at the head end; or only part of the osteotome rod is of a hollow structure, so that water is discharged through side holes in the middle of the osteotome rod.
(31) The minimally invasive ultrasonic osteotome head 6 can be used, together with a transforaminal endoscope, in an ultrasonic bone tissue surgical system. When in use, the osteotome rod 61 of the minimally invasive ultrasonic osteotome 6 is fitted in an operation channel of the transforaminal endoscope and is connected to the ultrasonic handle via a connecting device. The ultrasonic handle is electrically connected with a main unit, and a foot switch is further provided and also electrically connected with the main unit. Since the head end 62 of the minimally invasive ultrasonic osteotome head 6 bends laterally, the bone tissues around the transforaminal endoscope can be removed, so that the operator has as much operating space as possible even under a limited channel of the endoscope, thereby improving the bone removal efficiency. In addition, the transverse surface 622 of the bending portion is provided with knurled teeth, which help to grind the bones tissue around the endoscope, thereby further improving the bone removal efficiency.
(32) Although various embodiments have been described in detail above, those skilled in the art will appreciate that various alternative and/or equivalent embodiments may be used to substitute for the specific disclosure of the embodiments mentioned above without departing from the present disclosure. This application is intended to cover any modification and variations of the various embodiments discussed herein.