Torque limiter
11597063 ยท 2023-03-07
Inventors
Cpc classification
F16D43/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B90/03
HUMAN NECESSITIES
F16C17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D7/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B25B23/141
PERFORMING OPERATIONS; TRANSPORTING
International classification
B25B23/142
PERFORMING OPERATIONS; TRANSPORTING
F16D43/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B17/88
HUMAN NECESSITIES
Abstract
A torque limiter for a surgical screwdriver that includes an outer sleeve (1); a snap sleeve (3), which is arranged in and rotates with the outer sleeve; a rolling element cage (6), which is arranged in the snap sleeve; an inner sleeve (10), which is arranged in the rolling element cage; and a force-transmitting shaft (11), which is received in and rotates with the inner sleeve. The inner wall of the outer sleeve is provided with recesses (8) that extend parallel to a rotational axis of the force-transmitting shaft. The rolling element cage is provided with a plurality of rolling element receiving areas (5), each of which holds a rolling element (4), and with a number of noses (7), which engage into the recesses. The inner sleeve is provided with a plurality of notches (9), which extend in a V-shape parallel to the axis and which receive the rolling elements.
Claims
1. A torque limiter for a surgical screwdriver comprising: an outer sleeve; a snap sleeve which is arranged in the outer sleeve and which is fixed to rotate with the outer sleeve; a rolling element cage which is arranged in the snap sleeve; an inner sleeve which is arranged in the rolling element cage; and a force-transmitting shaft which is received within the inner sleeve and which is fixed to rotate with the inner sleeve; wherein an inner wall of the outer sleeve is provided with a number of recesses that extend parallel to an axis of rotation of the force-transmitting shaft, wherein the rolling element cage is provided with a plurality of rolling element receiving areas, each of which holds a rolling element such that the rolling element extends parallel to the axis of rotation of the force-transmitting shaft, wherein a part of each rolling element is adjacent to the snap sleeve and another part of each rolling element extends beyond the snap sleeve, wherein the rolling element cage is also provided with a number of noses, said number of noses corresponding to the number of recesses provided in the inner wall of the outer sleeve, wherein the noses are configured to engage into the recesses provided in the inner wall of the outer sleeve, wherein the noses have a width that is less than an open width of the recesses, wherein the inner sleeve is provided with a plurality of V-shaped notches which extend parallel to the axis and which receive the rolling elements; wherein, when a torque is applied to the outer sleeve in a screwing direction, sides of the noses of the rolling element cage are pressed against sides of walls of the recesses and the part of each rolling element that extends beyond the snap sleeve is flush with one of the number of recesses, wherein when the torque applied to the outer sleeve in the screwing direction exceeds the ability of the snap sleeve to hold the rolling elements in the V-shaped notches of the inner sleeve, each part of the rolling element beyond the snap sleeve that is flush with one of the number of recesses exits the respective V-shaped notch of the inner sleeve into the one of the number of recesses of the outer sleeve while the part of each rolling element adjacent to the snap sleeve bears against and spreads apart the snap sleeve thereby uncoupling the inner sleeve from the outer sleeve, when a torque is applied to the outer sleeve in an unscrewing direction, opposite sides of the noses of the rolling element cage are pressed against opposite sides of the walls of the recesses and the parts of each rolling element that extend beyond the snap sleeve are flush with webs remaining between the recesses, wherein said webs prevent the rolling elements from exiting the V-shaped notches of the inner sleeve when the torque is applied to the outer sleeve in the unscrewing direction thereby maintaining the coupling of the inner sleeve to the outer sleeve, and wherein a tip of the shaft is provided with a cone supported in a bearing cap.
2. The torque limiter as claimed in claim 1, wherein the snap sleeve is fixed to rotate with the outer sleeve by a drive element provided on the inner wall of the outer sleeve, said drive element protruding radially inwardly and engaging in a slot in the snap sleeve.
3. The torque limiter as claimed in claim 1, wherein the rolling elements are pins and the rolling element receiving areas are slots.
4. The torque limiter as claimed in claim 1, wherein the snap sleeve is made of a polyetheretherketone (PEEK).
5. The torque limiter as claimed in claim 1, wherein the torque limiter comprises a receptacle designed to receive a medical instrument, wherein, by means of a plain bearing and a slide sleeve, the receptacle is integrated angular-stable into the torque limiter and is supported almost frictionless in the outer sleeve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention is described hereinafter with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
(13) The figures show a torque limiter, in particular for a surgical screwdriver. The figures marked with (a) denote the torque limiter in the position when torque is applied in the starting direction 18, also known as the screwing direction 18. The figures marked with (b) denote the torque limiter in the position when torque is applied in the release direction 19, also known as the unscrewing direction 19.
(14) The inner wall of the outer sleeve 1 is provided with recesses 8 extending parallel to the axis of rotation of the force-transmitting shaft, as shown in
(15) A torque applied to the outer sleeve 1 in the screwing direction 18 presses one side 20 of the noses 7 of the rolling element cage 6 against one of the walls 22 of the recesses 8 into a position in which part of the rolling elements 4 (being the portion to the right of line III-III in
(16) A torque applied to the outer sleeve 1 in the unscrewing direction 19 presses the other side 21 of the noses 7 of the rolling element cage 6 against the other wall 23 of the recesses 8 into a position in which part of the rolling elements 4 (being the portion to the right of the line III-III in
(17) In the exemplary embodiment shown, the rotational fixing between the outer sleeve 1 and the snap sleeve 3 is effected by the provision of a drive element 2 on the inner wall of the outer sleeve 1, said drive element protruding radially inwardly and engaging in the slot 24 in the snap sleeve 3, as shown in
(18) In this case, the rolling elements 4 are configured as pins and the rolling element receiving areas 5 are configured as slots.
(19) The shaft 11, which when used for a surgical instrument receives the instrument at its end 25 protruding the outer sleeve 1, is provided at its other end with a cone 12 mounted in a bearing cap 17. In this case, the tip of the cone 12 is oriented counter to the bearing cap and in practical use comes into contact therewith.
(20) When using the torque limiter, a virtually friction-free mounting between the outer sleeve 1 and the inner sleeve 10 is achieved by means of the cone 12 mounted in the bearing cap. This structural feature minimizes the friction torques and enables a greater accuracy and thus reduced scattering of the adjusted torque.
(21) Polyetheretherketone PEEK lends itself as the material for the snap sleeve 3, this plastics material being able to be easily sterilized whilst maintaining its elasticity.
(22) A sealing nut 13 is positioned nearby the cone 12. A sealing disc 14 is also shown in
(23) Connection systems known on the market, which are used to connect a medical instrument to a torque limiter, are frequently arranged as a separate coupling system outside of the torque limiter. This design entails many disadvantages. For example, contaminations can occur and bending torques are not compensated, which results in the occurrence of torque inaccuracies.
(24) In order to avoid these disadvantages, the end 25 of the shaft 11 comprises a receptacle 31 designed to receive a medical instrument, as can be seen in
(25) The medical instrument inserted in the receptacle 31 is secured by means of a locking element 28, preventing the medical instrument from falling out of the receptacle 31. The plain bearing 26 comprises two parts, wherein a spring element 30 is arranged in between these two parts. The spring element 30 allows the locking element 28 to be locked and unlocked. In addition, a safety element 29 of the receptacle 31 is provided as rotation lock of the inserted medical instrument.
(26) In this way an accidental uncoupling of the medical instrument is prevented and the receptacle 31 can be adjusted for all connection geometries of medical instruments.
(27) The described integration of the receptacle 31 in the housing of the torque limiter allows for a compact, ergonomic design and protects the connection system from contaminations.
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(31) Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and illustrative examples shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.