USRE47963E1 - Electric motor driven tool for orthopedic impacting - Google Patents

Electric motor driven tool for orthopedic impacting Download PDF

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Publication number
USRE47963E1
USRE47963E1 US14/850,620 US201514850620A USRE47963E US RE47963 E1 USRE47963 E1 US RE47963E1 US 201514850620 A US201514850620 A US 201514850620A US RE47963 E USRE47963 E US RE47963E
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Prior art keywords
striker
impact
tool
impactor
adapter
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US14/850,620
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Christopher Pedicini
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DePuy Synthes Products Inc
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DePuy Synthes Products Inc
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Priority claimed from US12/980,329 external-priority patent/US8695726B2/en
Priority claimed from US13/466,870 external-priority patent/US8393409B2/en
Application filed by DePuy Synthes Products Inc filed Critical DePuy Synthes Products Inc
Priority to US14/850,620 priority Critical patent/USRE47963E1/en
Assigned to MEDICAL ENTERPRISES DISTRIBUTION, LLC reassignment MEDICAL ENTERPRISES DISTRIBUTION, LLC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MEDICAL ENTERPRISES, LLC
Assigned to DePuy Synthes Products, Inc. reassignment DePuy Synthes Products, Inc. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: MEDICAL ENTERPRISES DISTRIBUTION, LLC
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25DPERCUSSIVE TOOLS
    • B25D11/00Portable percussive tools with electromotor or other motor drive
    • B25D11/06Means for driving the impulse member
    • B25D11/12Means for driving the impulse member comprising a crank mechanism
    • B25D11/125Means for driving the impulse member comprising a crank mechanism with a fluid cushion between the crank drive and the striking body
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/16Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans
    • A61B17/1604Chisels; Rongeurs; Punches; Stamps
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25DPERCUSSIVE TOOLS
    • B25D17/00Details of, or accessories for, portable power-driven percussive tools
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/16Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
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    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/16Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans
    • A61B17/1659Surgical rasps, files, planes, or scrapers
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
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    • A61B17/56Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor
    • A61B17/58Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor for osteosynthesis, e.g. bone plates, screws, setting implements or the like
    • A61B17/88Osteosynthesis instruments; Methods or means for implanting or extracting internal or external fixation devices
    • A61B17/92Impactors or extractors, e.g. for removing intramedullary devices
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F2/00Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
    • A61F2/02Prostheses implantable into the body
    • A61F2/30Joints
    • A61F2/46Special tools or methods for implanting or extracting artificial joints, accessories, bone grafts or substitutes, or particular adaptations therefor
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25DPERCUSSIVE TOOLS
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    • B25D11/005Arrangements for adjusting the stroke of the impulse member or for stopping the impact action when the tool is lifted from the working surface
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25DPERCUSSIVE TOOLS
    • B25D11/00Portable percussive tools with electromotor or other motor drive
    • B25D11/06Means for driving the impulse member
    • B25D11/12Means for driving the impulse member comprising a crank mechanism
    • BPERFORMING OPERATIONS; TRANSPORTING
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    • B25DPERCUSSIVE TOOLS
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    • B25D17/06Hammer pistons; Anvils ; Guide-sleeves for pistons
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    • A61B17/1613Component parts
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    • AHUMAN NECESSITIES
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    • A61B17/1613Component parts
    • A61B17/1628Motors; Power supplies
    • AHUMAN NECESSITIES
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    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
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    • A61B17/16Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans
    • A61B17/1662Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans for particular parts of the body
    • A61B17/1664Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans for particular parts of the body for the hip
    • A61B17/1668Bone cutting, breaking or removal means other than saws, e.g. Osteoclasts; Drills or chisels for bones; Trepans for particular parts of the body for the hip for the upper femur
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
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    • A61B2017/00535Surgical instruments, devices or methods, e.g. tourniquets pneumatically or hydraulically operated
    • A61B2017/00544Surgical instruments, devices or methods, e.g. tourniquets pneumatically or hydraulically operated pneumatically
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    • A61B2017/00681Aspects not otherwise provided for
    • A61B2017/00734Aspects not otherwise provided for battery operated
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
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    • A61B17/56Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor
    • A61B17/58Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor for osteosynthesis, e.g. bone plates, screws, setting implements or the like
    • A61B17/88Osteosynthesis instruments; Methods or means for implanting or extracting internal or external fixation devices
    • A61B17/92Impactors or extractors, e.g. for removing intramedullary devices
    • A61B2017/922Devices for impaction, impact element
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/56Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor
    • A61B17/58Surgical instruments or methods for treatment of bones or joints; Devices specially adapted therefor for osteosynthesis, e.g. bone plates, screws, setting implements or the like
    • A61B17/88Osteosynthesis instruments; Methods or means for implanting or extracting internal or external fixation devices
    • A61B17/92Impactors or extractors, e.g. for removing intramedullary devices
    • A61B2017/922Devices for impaction, impact element
    • A61B2017/924Impact element driving means
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B90/00Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
    • A61B90/30Devices for illuminating a surgical field, the devices having an interrelation with other surgical devices or with a surgical procedure
    • A61B2090/309Devices for illuminating a surgical field, the devices having an interrelation with other surgical devices or with a surgical procedure using white LEDs
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61FFILTERS IMPLANTABLE INTO BLOOD VESSELS; PROSTHESES; DEVICES PROVIDING PATENCY TO, OR PREVENTING COLLAPSING OF, TUBULAR STRUCTURES OF THE BODY, e.g. STENTS; ORTHOPAEDIC, NURSING OR CONTRACEPTIVE DEVICES; FOMENTATION; TREATMENT OR PROTECTION OF EYES OR EARS; BANDAGES, DRESSINGS OR ABSORBENT PADS; FIRST-AID KITS
    • A61F2/00Filters implantable into blood vessels; Prostheses, i.e. artificial substitutes or replacements for parts of the body; Appliances for connecting them with the body; Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
    • A61F2/02Prostheses implantable into the body
    • A61F2/30Joints
    • A61F2/46Special tools or methods for implanting or extracting artificial joints, accessories, bone grafts or substitutes, or particular adaptations therefor
    • A61F2/4603Special tools or methods for implanting or extracting artificial joints, accessories, bone grafts or substitutes, or particular adaptations therefor for insertion or extraction of endoprosthetic joints or of accessories thereof
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25DPERCUSSIVE TOOLS
    • B25D2250/00General details of portable percussive tools; Components used in portable percussive tools
    • B25D2250/195Regulation means
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B25HAND TOOLS; PORTABLE POWER-DRIVEN TOOLS; MANIPULATORS
    • B25DPERCUSSIVE TOOLS
    • B25D2250/00General details of portable percussive tools; Components used in portable percussive tools
    • B25D2250/221Sensors

Definitions

  • the present disclosure relates to electric tools for impacting in orthopedic applications, and, more particularly, to an electric motor driven tool for orthopedic impacting that is capable of providing controlled impacts to a broach or other end effector.
  • prosthetic devices such as artificial joints
  • a prosthetic device In the field of orthopedics, prosthetic devices, such as artificial joints, are often implanted or seated in a patient's body by seating the prosthetic device in a cavity of a bone of the patient.
  • the cavity must be created before the prosthesis is seated or implanted, and traditionally, a physician removes and or compacts bone to form this cavity.
  • a prosthesis usually includes a stem or other protrusion that serves as the particular portion of the prosthesis that is inserted into the cavity.
  • a physician may use a broach, which broach conforms to the shape of the stem of the prosthesis.
  • Solutions known in the art include providing a handle with the broach, which handle the physician may grasp while hammering the broach into the implant area.
  • this approach is clumsy and unpredictable as being subject to the skill of the particular physician. This approach almost will always inevitably result in inaccuracies in the location and configuration of the cavity. Additionally, the surgeon suffers from fatigue in this approach due to the constant hammering. Finally, this approach carries with it the risk that the physician will damage bone structure in unintended areas.
  • Another technique for creating the prosthetic cavity is to drive the broach pneumatically, that is, by compressed air.
  • This approach is disadvantageous in that it prevents portability of an impacting tool, for instance, because of the presence of a tethering air line, air being exhausted from a tool into the sterile operating field and fatigue of the physician operating the tool.
  • this approach does not allow for precise control of the impact force or frequency and instead functions very much like a jackhammer when actuated. Again, this lack of any measure of precise control makes accurate broaching of the cavity more difficult.
  • a third technique relies on computer-controlled robotic arms for creating the cavity. While this approach overcomes the fatiguing and accuracy issues, it suffers from having a very high capital cost and additionally removes the tactile feedback that a surgeon can get from a manual approach.
  • a fourth technique relies on the author's own prior disclosures to use a linear compressor to compress air on a single stroke basis and then, after a sufficient pressure is created, to release the air through a valve and onto a striker. This then forces the striker to travel down a guide tube and impact an anvil, which holds the broach and or other surgical tool.
  • This invention works quite well, but, in the process of testing it, does not allow for a simple method to reverse the broach should it become stuck in the soft tissue. Further, the pressure of the air results in large forces in the gear train and linear motion converter components, which large forces lead to premature wear on components.
  • an electric motor-driven orthopedic impacting tool configured to include all the advantages of the prior art and to overcome the drawbacks inherent therein.
  • the tool may be used by orthopedic surgeons for orthopedic impacting in hips, knees, shoulders and the like.
  • the tool is capable of holding a broach, chisel, or other end effector and gently tapping the broach, chisel or other end effector into the cavity with controlled percussive impacts, resulting in a better fit for the prosthesis or the implant.
  • the control afforded by such an electrically manipulated broach, chisel, or other end effector allows adjustment of the impact settings according to a particular bone type or other profile of a patient.
  • the tool additionally enables proper seating or removal of the prosthesis or the implant into or out of an implant cavity and advantageously augments the existing surgeon's skill in guiding the instrument.
  • an electric motor-driven orthopedic impacting tool comprises a power source (such as a battery), a motor, a control means, a housing, a method for converting the rotary motion of the motor to a linear motion (hereafter referred to as a linear motion converter), at least one reducing gear, a striker, a detent and an energy storage means, which energy storage means can include either compressed air or a vacuum.
  • the tool may further include an LED, a handle portion with at least one handgrip for the comfortable gripping of the tool, an adapter configured to accept a surgical tool, a battery and at least one sensor. At least some of the various components are preferably contained within the housing.
  • the tool is capable of applying cyclic impact forces on a broach, chisel, or other end effector, or an implant and of finely tuning an impact force to a plurality of levels.
  • the handle may be repositionable or foldable back to the tool to present an inline tool wherein the surgeon pushes or pulls on the tool co-linearly with the direction of the broach. This has the advantage of limiting the amount of torque the surgeon may put on the tool while it is in operation.
  • the broach, chisel or other end effector can be rotated to a number of positions while still maintaining axial alignment. This facilitates the use of the broach for various anatomical presentations during surgery.
  • the energy storage means comprises a chamber, which is under at least a partial vacuum during a portion of an impact cycle.
  • the linear motion converter uses one of a slider crank, linkage mechanism, cam, screw, rack and pinion, friction drive or belt and pulley.
  • the linear motion converter and rotary motor may be replaced by a linear motor, solenoid or voice coil motor.
  • the tool further comprises a control means, which control means includes an energy adjustment element, and which energy adjustment element may control the impact force of the tool and reduce or avoid damage caused by uncontrolled impacts.
  • the energy may be regulated electronically or mechanically.
  • the energy adjustment element may be analog or have fixed settings. This control means allows for the precise control of the broach machining operation.
  • an anvil of the tool includes at least one of two points of impact and a guide that constrains the striker to move in a substantially axial direction.
  • the movement of the striker along the guide continues in the forward direction.
  • a reversing mechanism can be used to change the point of impact of the striker and the resulting force on the surgical tool. Use of such a reversing mechanism results in either a forward or a rearward force being exerted on the anvil and/or the broach or other surgical attachment.
  • forward direction connotes movement of the striker toward a broach, chisel or patient
  • “rearward direction” connotes movement of the striker away from the broach, chisel or patient.
  • the selectivity of either bidirectional or unidirectional impacting provides flexibility to a surgeon in either cutting or compressing material within the implant cavity in that the choice of material removal or material compaction is often a critical decision in a surgical procedure. Furthermore, it was discovered in the use of the author's prior disclosure that the tool would often get stuck during the procedure and that the method of reversal in that tool was insufficient to dislodge the surgical implement. This new embodiment overcomes these limitations.
  • the impact points to communicate either a forward or rearward force are at least two separate and distinct points.
  • anvil and the adapter comprise a single element, or one may be integral to the other.
  • the tool is further capable of regulating the frequency of the striker's impacting movement.
  • the tool may, for example, impart a greater total time-weighted percussive impact, while maintaining the same impact magnitude.
  • This allows for the surgeon to control the cutting speed of the broach or chisel.
  • the surgeon may choose cutting at a faster rate (higher frequency impacting) during the bulk of the broach or chisel movement and then slow the cutting rate as the broach or chisel approaches a desired depth.
  • typical impactors as shown in U.S. Pat. No. 6,938,705, as used in demolition work, varying the speed varies the impact force, making it impossible to maintain constant (defined as +/ ⁇ 20%) impact energy in variable speed operation.
  • the direction of impacting is controlled by the biasing force placed by a user on the tool.
  • biasing the tool in the forward direction gives forward impacting and biasing the tool in the rearward direction gives rear impacting.
  • the tool may have a lighting element to illuminate a work area and accurately position the broach, chisel, or other end effector on a desired location on the prosthesis or the implant.
  • the tool may also include a feedback system that warns the user when a bending or off-line orientation beyond a certain magnitude is detected at a broach, chisel, or other end effector or implant interface.
  • the tool may also include a detent that retains the striker and which may be activated by a mechanical or electrical means such that the energy per impact from the tool to the surgical end effector is increased.
  • the characteristics of this detent are such that within 30% of striker movement, the retention force exerted by the detent on the striker is reduced by 50%.
  • FIG. 1 shows a perspective view of an orthopedic impacting tool in accordance with an exemplary embodiment of the present disclosure in which a motor, linear motion converter, and vacuum as energy storage means are used;
  • FIG. 2 shows an exemplary position of the piston wherein the vacuum has been created
  • FIG. 3 shows the striker being released and the striker moving towards impacting the anvil in a forward direction
  • FIG. 4 shows the striker being released and the striker moving such that the anvil will be impacted in a reverse direction
  • FIG. 5 shows the vacuum piston moving back towards a first position and resetting the striker
  • FIG. 6 shows an exemplary embodiment of a tool in which a compression chamber is used to create an impacting force
  • FIG. 7 shows an exemplary embodiment of a tool in which a valve is used to adjust the energy of the impact of the striker
  • FIG. 8 shows an exemplary embodiment of a tool in which the striker imparts a surface imparting a rearward force on the anvil
  • FIG. 9 shows an exemplary embodiment of a tool in which the striker imparts a forward acting force on the anvil.
  • FIG. 10 shows a comparison of the force vs. time curve between a sharp impact and a modified impact using a compliance mechanism in accordance with an exemplary embodiment of the present disclosure.
  • the present disclosure provides an electric motor-driven orthopedic impacting tool with controlled percussive impacts.
  • the tool includes the capability to perform single and multiple impacts as well as impacting of variable and varying directions, forces and frequencies.
  • the impact force is adjustable.
  • a detent may be provided, which detent facilitates the generation of a higher energy impact.
  • the impact is transferred to a broach, chisel, or other end effector connected to the tool.
  • the tool may further include a housing.
  • the housing may securely cover and hold at least one component of the tool.
  • the housing contains a motor, at least one reducing gear, a linear motion converter, a gas chamber, a striker, a force adjuster, a control means, an anvil, a forward impact surface and a different surface for rearward impact.
  • the tool further may include a handle portion with at least one hand grip for comfortable and secure holding of the tool while in use, and an adapter, a battery, a positional sensor, a directional sensor, and a torsional sensor.
  • the tool may further comprise a lighting element such as an LED to provide light in the work area in which a surgeon employs the tool.
  • the anvil may be coupled to a broach, chisel or other end effector through the use of an adapter, which adapter may have a quick connect mechanism to facilitate rapid change of different broaching sizes.
  • the anvil may further include a locking rotational feature to allow the broach to be presented to and configured at different anatomical configurations without changing the orientation of the tool in the surgeon's hands.
  • the linear motion converter 12 comprises a slider crank mechanism, which slider crank is operatively coupled to the motor 8 and reducing gears 7 .
  • the tool further comprises a vacuum chamber 23 that accepts a piston 24 which may be actuated by the linear motion converter 12 . It will be apparent that the piston 24 may be actuated in more than one direction.
  • the vacuum is created in the vacuum chamber 23 by the movement of piston 24 away from striker 25 .
  • the vacuum created in the vacuum chamber 23 is defined as a pressure of less than 9 psia for at least a portion of the operational cycle.
  • the motor 8 of the tool causes the linear motion converter 12 to move, which pulls a vacuum on the face of the striker 25 and creates at least a partial vacuum in the vacuum chamber 23 , as is shown in FIG. 2 .
  • the piston 24 continues to move increasing the size of the vacuum chamber 23 until it hits a forward portion of the striker 25 (i.e., a portion of the strike that is proximate to the end effector or patient), which dislodges the striker 25 from its detent 10 and allows it to rapidly accelerate towards the end of the tool that is proximate to the end effector or patient.
  • the detent may be mechanical, electrical, or a combination thereof, with the preferred detent shown in the figures as a magnet.
  • a characteristic of the detent 10 is that once the detent 10 is released or overcome, the retention force of the detent 10 on the striker 25 reduces by at least 50% within the first 30% movement of the striker 25 .
  • the impact of the striker 25 on the anvil 14 communicates a force to the adapter 1 and the broach, chisel or other orthopedic instrument.
  • the direction of the force on the anvil is controlled by the user's (such as a surgeon) force on the tool and a stroke limiter 13 . It has been determined that prior art tools may occasionally get stuck in a cavity and the impact of the striker in the aforementioned paragraph may be insufficient to dislodge the tool. In this present embodiment, when the tool is being pulled away from the cavity, the striker 25 will not impact the anvil 14 , but will impact an alternate surface and thereby communicate a rearward force on the anvil 14 . This impact surface is shown in an exemplary embodiment as actuation pin 27 .
  • Actuation pin 27 communicates a force to lever arm 17 , which communicates a rearward force on the anvil 14 , and specifically on the anvil retract impact surface 26 .
  • This embodiment has the unexpected benefit of easily dislodging tools and instruments that have become stuck in a surgical cavity, while retaining all the benefits of the existing tool in terms of precision-controlled impacting.
  • a further advantage of this tool was discovered as it can be seen that the surgeon can control the direction of the impacting by a bias that he or she may place on the tool and, in so doing, can reduce the likelihood of the broach, chisel or other end effector from getting stuck in a patient or surgical cavity.
  • an electromagnet may be incorporated as the detent 10 and released at an appropriate point in the operation cycle to allow the striker 25 to impact the anvil 14 .
  • the air pressure on the rearward side of the striker 25 propels it forward to impact the anvil 14 or other strike surface.
  • the resultant force may be communicated through an end of the anvil 14 that is proximate to the anvil forward impact surface 16 and, optionally, through the adapter 1 to which a broach, chisel, or other end effector for seating or removing an implant or prosthesis may be attached.
  • the striker guide 11 may also have striker guide vent holes 20 , which allow the air in front of the striker 25 to escape, thus increasing the impact force of the striker 25 on the anvil 14 .
  • the striker guide vent holes 20 may vent within the cavity of the tool body, thus creating a self-contained air cycle preventing air from escaping from the tool and allowing for better sealing of the tool.
  • the position and the size of the striker guide vent holes 20 can also be used to regulate the impact force. Further, it was unexpectedly found that adding the striker guide vent holes 20 increases the impact force of the striker 25 on the anvil 14 .
  • the piston 24 continues through its stroke it moves towards the rear direction, which movement brings it in contact with rear striker face 28 of striker 25 and moves it towards the rear of the tool. This allows the detent 10 to lock or retain the striker 25 in position for the next impact.
  • the piston 24 completes its rearward stroke and preferably activates a sensor 22 that signals the motor 8 to stop such that the piston 24 rests at or near bottom dead center of the vacuum chamber 23 .
  • the vacuum chamber 23 preferably has a relief or check valve 9 or other small opening, which, in an embodiment, is part of the piston 24 .
  • the valve 9 may also be located at other points in the vacuum chamber 23 and allows for any air which may have accumulated in the vacuum chamber 23 to be purged out of the vacuum chamber 23 during each cycle.
  • this valve effect could be accomplished with a cup seal instead of an o-ring seal.
  • This ensures that approximately atmospheric pressure is present in the vacuum chamber 23 at a starting point in the operational cycle, thus ensuring that each impact utilizes the same amount of energy, as is important in orthopedic impacting for at least the reason that it assures of a substantially consistent force and impact rate in multi-impact situations.
  • a forward or a rearward impacting force may be applied on the broach, chisel, or other end effector, or on the implant or prosthesis.
  • the motor 8 of the tool causes the linear motion converter 12 to move the piston 24 until the piston 24 moves a sufficient distance such that the forward portion of the piston impacts a portion of the striker and overcomes the detent 10 that retains the striker in the rear position.
  • the vacuum in the vacuum chamber 23 exerts a force on the striker, which accelerates the striker, causing the striker to slide axially down a cavity internal to the tool housing and strike the anvil forward impact surface 16 .
  • the anvil forward impact surface 16 causes a forward movement of the anvil 14 and/or tool holder, and, in FIG.
  • the anvil retract impact surface 26 causes a rearward movement of the anvil 14 and/or tool holder.
  • the resultant force is communicated through an end of the anvil 14 that is proximate to the anvil forward impact surface 16 and, optionally, through the adapter 1 to which a broach, chisel, or other end effector for seating or removing an implant or prosthesis may be attached.
  • the impact force may be generated using a compressed air chamber 5 in conjunction with a piston 6 and striker 4 , as shown in FIGS. 6 through 9 .
  • the motor 8 of the tool causes the linear motion converter 12 to move the piston 6 until sufficient pressure is built within the compressed air chamber 5 that is disposed between the distal end of the piston 6 and the proximate end of the striker 4 to overcome a detent 10 that otherwise retains the striker 4 in a rearward position and or the inertia and frictional force that holds the striker 4 in that rearward position.
  • an air passageway 19 is opened and the air pressure accelerates the striker 4 , which striker 4 slides axially down a cavity and strikes the anvil 14 .
  • the air passageway 19 has a cross sectional area of preferably less than 50% of the cross sectional area of the striker 4 so as to reduce the amount of retaining force required from detent 10 .
  • the resultant force is communicated through the end of the anvil 14 that is proximate to the anvil forward impact surface 16 and, optionally, through the adapter 1 to which a broach, chisel, or other device for seating or removing an implant or prosthesis may be attached.
  • the striker 4 will not impact the anvil 14 , but may instead impact an alternate surface and thereby communicate a rearward force on the anvil 14 .
  • This impact surface is shown in an exemplary embodiment as actuation pin 27 .
  • Actuation pin 27 communicates a force to lever arm 17 , which communicates a rearward force on the anvil 14 , and specifically on the anvil retract impact surface 26 .
  • the tool may further facilitate controlled continuous impacting, which impacting is dependent on a position of a start switch (which start switch may be operatively coupled to the power source or motor, for example.) For such continuous impacting, after the start switch is activated, and depending on the position of the start switch, the tool may go through complete cycles at a rate proportional to the position of the start switch, for example.
  • a start switch which start switch may be operatively coupled to the power source or motor, for example.
  • a sensor 22 coupled operatively to the control means 21 may be provided to assist in regulating a preferred cyclic operation of the linear motion converter 12 .
  • the sensor 22 may communicate at least one position to the control means 21 , allowing the linear motion converter 12 to stop at or near a position in which at least 75% of a full power stroke is available for the next cycle. This position is referred to as a rest position. This has been found to be advantageous over existing tools in that it allows the user to ensure that the tool impacts with the same amount of energy per cycle. Without this level of control, the repeatability of single cycle impacting is limited, reducing the confidence the surgeon has in the tool.
  • the tool is further capable of tuning the amount of impact energy per cycle by way of, for example, an energy control element 18 .
  • an energy control element 18 By controlling the impact energy the tool can avoid damage caused by uncontrolled impacts or impacts of excessive energy.
  • a surgeon may reduce the impact setting in the case of an elderly patent with osteoporosis, or may increase the impact setting for more resilient or intact athletic bone structures.
  • the energy control element 18 preferably comprises a selectable release setting on the detent 10 that holds the striker 25 . It will be apparent that the striker 25 will impact the anvil 14 with greater energy in the case where the pressure needed to dislodge the striker 25 from the detent 10 is increased.
  • the detent 10 may comprise an electrically controlled element. The electrically controlled element can be released at different points in the cycle, thus limiting the size of the vacuum chamber 23 , which is acting on the striker 25 .
  • the electrically controlled element is an electromagnet.
  • the vacuum chamber 23 or compressed air chamber 5 may include an energy control element 18 , which takes the form of an adjustable leak, such as an adjustable valve.
  • the leakage reduces the amount of energy accelerating the striker 4 or 25 , thus reducing the impact energy on the anvil 14 .
  • adjusting the leak to maximum may give the lowest impact energy from the striker 4 or 25
  • adjusting to shut the leak off may give the highest impact energy from the striker 4 or 25 .
  • the tool may further comprise a compliance means inserted between the striker 4 or 25 and the surgical end effector, which purpose is to spread the impact force out over a longer time period, thus achieving the same total energy per impact, but at a reduced force.
  • This type of compliance means can limit the peak force during impact to preclude such peaks from causing fractures in the patient's bone.
  • this compliance means may be adjustable and in a still further embodiment the compliance means may be inserted between striker 4 or 25 and the anvil 14 or surgical tool. In this manner and otherwise, the tool facilitates consistent axial broaching and implant seating.
  • the compliance means increases the time of impact from the striker to at least 4 milliseconds and preferable 10 milliseconds. This contrasts to impacting in which a very high force is generated due to the comparatively high strengths of the striker 4 or 25 and the anvil 14 (both steel, for example).
  • the compliance means comprises a resilient material such as urethane, rubber or other elastic material that recovers well from impact and imparts minimal damping on the total energy.
  • the adapter 1 may comprise a linkage arrangement or other adjustment means such that the position of the broach, chisel or other end effector can be modified without requiring the surgeon to rotate the tool.
  • the adapter 1 may receive a broach for anterior or posterior joint replacement through either an offset mechanism or by a rotational or pivotal coupling between the tool and the patient. The adapter 1 may thereby maintain the broach or surgical end effector in an orientation that is parallel or co-linear to the body of the tool and the striker 25 .
  • the adapter 1 may also comprise clamps, a vice, or any other fastener that may securely hold the broach, chisel, or other end effector during operation of the tool.
  • a surgeon firmly holds the tool by the handle grip or grips and utilizes light emitted by the LED to illuminate a work area and accurately position a broach, chisel or other end effector that has been attached to the tool on a desired location on the prosthesis or implant.
  • the reciprocating movement imparted by the tool upon the broach, chisel or other end effector allows for shaping a cavity and for seating or removal of a prosthesis.
  • the tool disclosed herein provides various advantages over the prior art. It facilitates controlled impacting at a surgical site, which minimizes unnecessary damage to a patient's body and which allows precise shaping of an implant or prosthesis seat.
  • the tool also allows the surgeon to modulate the direction, force and frequency of impacts, which improves the surgeon's ability to manipulate the tool.
  • the force and compliance control adjustments of the impact settings allow a surgeon to set the force of impact according to a particular bone type or other profile of a patient.
  • the improved efficiency and reduced linear motion converter loads allow use of smaller batteries and lower cost components.
  • the tool thereby enables proper seating or removal of the prosthesis or implant into or out of an implant cavity.

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Abstract

An orthopedic impacting tool comprises a motor, an energy storage chamber, a striker, and an anvil. The motor stores energy in the energy storage chamber and then releases it, causing the striker to apply a controlled force on an adapter to create a precise impact for use in a surgical setting. The tool may further comprise a combination anvil and adapter. The tool further allows forward or backward impacting for expanding the size or volume of the opening or for facilitating removal of a broach, implant, or other surgical implement from the opening. An energy adjustment control of the tool allows a surgeon to increase or decrease the impact energy. A light source and hand grips improve ease of operation of the tool.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS
It is noted that more than one application for reissue of U.S. Pat. No. 8,602,124 has been filed. Each of copending U.S. patent application Ser. Nos. 14/850,588; 14/850,620; 14/850,639; 14/850,660; 14/850,674; and 14/850,695 were filed on Sep. 10, 2015 for reissue of U.S. Pat. No. 8,602,124.
The present application is a reissue of U.S. Pat. No. 8,602,124 issued Dec. 10, 2013 from U.S. patent application Ser. No. 13/790,870, filed on Mar. 8, 2013, which is a continuation of and claims priority under 35 U.S.C. §120 on the pending U.S. patent application Ser. No. 13/759,813, filed on Feb. 5, 2013, now abandoned, the disclosure of which is incorporated by reference, which '813 application is a continuation-in-part of and claims priority under 35 U.S.C. §120 on the pending U.S. patent application Ser. Nos. No. 12/980,329, filed on Dec. 29, 2010, now U.S. Pat. No. 8,695,726, and is a continuation of and claims priority under 35 U.S.C. § 120 on U.S. patent application Ser. No. 13/466,870, filed on May 8, 2012, now U.S. Pat. No. 8,393,409, as well as under 35 USC U.S.C. § 119 on U.S. Provisional Patent Application 61/603,320, filed on Feb. 26, 2012, U.S. Provisional Patent Application 61/682,915, filed on Aug. 14, 2012, and U.S. Provisional Patent Application 61/734,539, filed on Dec. 7, 2012, the disclosures of which are incorporated by reference. The present '870 application is also a continuation-in-part of and claims priority under 35 U.S.C. § 120 on the pending U.S. patent application Ser. Nos. 12/980,329, filed on Dec. 29, 2010, now U.S. Pat. No. 8,695,726, and 13/466,870, filed on May 8, 2012, now U.S. Pat. No. 8,393,409, the disclosures of which are incorporated by reference. Additionally, the present application claims priority under the benefit of 35 USC U.S.C. § 119 for pending U.S. Provisional Patent Application Ser. Nos. 61/734,539, filed on Dec. 7, 2012, and 61/682,915, filed on Aug. 14, 2012, the disclosures of which are incorporated by reference.
FIELD OF THE DISCLOSURE
The present disclosure relates to electric tools for impacting in orthopedic applications, and, more particularly, to an electric motor driven tool for orthopedic impacting that is capable of providing controlled impacts to a broach or other end effector.
BACKGROUND
In the field of orthopedics, prosthetic devices, such as artificial joints, are often implanted or seated in a patient's body by seating the prosthetic device in a cavity of a bone of the patient. Typically, the cavity must be created before the prosthesis is seated or implanted, and traditionally, a physician removes and or compacts bone to form this cavity. A prosthesis usually includes a stem or other protrusion that serves as the particular portion of the prosthesis that is inserted into the cavity.
To create such a cavity, a physician may use a broach, which broach conforms to the shape of the stem of the prosthesis. Solutions known in the art include providing a handle with the broach, which handle the physician may grasp while hammering the broach into the implant area. Unfortunately, this approach is clumsy and unpredictable as being subject to the skill of the particular physician. This approach almost will always inevitably result in inaccuracies in the location and configuration of the cavity. Additionally, the surgeon suffers from fatigue in this approach due to the constant hammering. Finally, this approach carries with it the risk that the physician will damage bone structure in unintended areas.
Another technique for creating the prosthetic cavity is to drive the broach pneumatically, that is, by compressed air. This approach is disadvantageous in that it prevents portability of an impacting tool, for instance, because of the presence of a tethering air line, air being exhausted from a tool into the sterile operating field and fatigue of the physician operating the tool. Further, this approach, as exemplified in U.S. Pat. No. 5,057,112, does not allow for precise control of the impact force or frequency and instead functions very much like a jackhammer when actuated. Again, this lack of any measure of precise control makes accurate broaching of the cavity more difficult.
A third technique relies on computer-controlled robotic arms for creating the cavity. While this approach overcomes the fatiguing and accuracy issues, it suffers from having a very high capital cost and additionally removes the tactile feedback that a surgeon can get from a manual approach.
A fourth technique relies on the author's own prior disclosures to use a linear compressor to compress air on a single stroke basis and then, after a sufficient pressure is created, to release the air through a valve and onto a striker. This then forces the striker to travel down a guide tube and impact an anvil, which holds the broach and or other surgical tool. This invention works quite well, but, in the process of testing it, does not allow for a simple method to reverse the broach should it become stuck in the soft tissue. Further, the pressure of the air results in large forces in the gear train and linear motion converter components, which large forces lead to premature wear on components.
Consequently, there exists a need for an impacting tool that overcomes the various disadvantages of the prior art.
SUMMARY OF THE INVENTION
In view of the foregoing disadvantages of the prior art, an electric motor-driven orthopedic impacting tool configured to include all the advantages of the prior art and to overcome the drawbacks inherent therein is provided. The tool may be used by orthopedic surgeons for orthopedic impacting in hips, knees, shoulders and the like. The tool is capable of holding a broach, chisel, or other end effector and gently tapping the broach, chisel or other end effector into the cavity with controlled percussive impacts, resulting in a better fit for the prosthesis or the implant. Further, the control afforded by such an electrically manipulated broach, chisel, or other end effector allows adjustment of the impact settings according to a particular bone type or other profile of a patient. The tool additionally enables proper seating or removal of the prosthesis or the implant into or out of an implant cavity and advantageously augments the existing surgeon's skill in guiding the instrument.
In an embodiment, an electric motor-driven orthopedic impacting tool comprises a power source (such as a battery), a motor, a control means, a housing, a method for converting the rotary motion of the motor to a linear motion (hereafter referred to as a linear motion converter), at least one reducing gear, a striker, a detent and an energy storage means, which energy storage means can include either compressed air or a vacuum. The tool may further include an LED, a handle portion with at least one handgrip for the comfortable gripping of the tool, an adapter configured to accept a surgical tool, a battery and at least one sensor. At least some of the various components are preferably contained within the housing. The tool is capable of applying cyclic impact forces on a broach, chisel, or other end effector, or an implant and of finely tuning an impact force to a plurality of levels.
In a further embodiment, the handle may be repositionable or foldable back to the tool to present an inline tool wherein the surgeon pushes or pulls on the tool co-linearly with the direction of the broach. This has the advantage of limiting the amount of torque the surgeon may put on the tool while it is in operation. In a further refinement of the hand grip, there may be an additional hand grip for guiding the surgical instrument and providing increased stability during the impacting operation.
In a further embodiment, the broach, chisel or other end effector can be rotated to a number of positions while still maintaining axial alignment. This facilitates the use of the broach for various anatomical presentations during surgery.
In a further embodiment, the energy storage means comprises a chamber, which is under at least a partial vacuum during a portion of an impact cycle.
In a further embodiment the linear motion converter uses one of a slider crank, linkage mechanism, cam, screw, rack and pinion, friction drive or belt and pulley.
In an embodiment, the linear motion converter and rotary motor may be replaced by a linear motor, solenoid or voice coil motor.
In an embodiment, the tool further comprises a control means, which control means includes an energy adjustment element, and which energy adjustment element may control the impact force of the tool and reduce or avoid damage caused by uncontrolled impacts. The energy may be regulated electronically or mechanically. Furthermore, the energy adjustment element may be analog or have fixed settings. This control means allows for the precise control of the broach machining operation.
In an embodiment, an anvil of the tool includes at least one of two points of impact and a guide that constrains the striker to move in a substantially axial direction. In operation, the movement of the striker along the guide continues in the forward direction. A reversing mechanism can be used to change the point of impact of the striker and the resulting force on the surgical tool. Use of such a reversing mechanism results in either a forward or a rearward force being exerted on the anvil and/or the broach or other surgical attachment. As used in this context, “forward direction” connotes movement of the striker toward a broach, chisel or patient, and “rearward direction” connotes movement of the striker away from the broach, chisel or patient. The selectivity of either bidirectional or unidirectional impacting provides flexibility to a surgeon in either cutting or compressing material within the implant cavity in that the choice of material removal or material compaction is often a critical decision in a surgical procedure. Furthermore, it was discovered in the use of the author's prior disclosure that the tool would often get stuck during the procedure and that the method of reversal in that tool was insufficient to dislodge the surgical implement. This new embodiment overcomes these limitations. In an embodiment the impact points to communicate either a forward or rearward force are at least two separate and distinct points.
In an embodiment the anvil and the adapter comprise a single element, or one may be integral to the other.
In an embodiment the tool is further capable of regulating the frequency of the striker's impacting movement. By regulating the frequency of the striker, the tool may, for example, impart a greater total time-weighted percussive impact, while maintaining the same impact magnitude. This allows for the surgeon to control the cutting speed of the broach or chisel. For example, the surgeon may choose cutting at a faster rate (higher frequency impacting) during the bulk of the broach or chisel movement and then slow the cutting rate as the broach or chisel approaches a desired depth. In typical impactors, as shown in U.S. Pat. No. 6,938,705, as used in demolition work, varying the speed varies the impact force, making it impossible to maintain constant (defined as +/−20%) impact energy in variable speed operation.
In an embodiment the direction of impacting is controlled by the biasing force placed by a user on the tool. For example, biasing the tool in the forward direction gives forward impacting and biasing the tool in the rearward direction gives rear impacting.
In an embodiment the tool may have a lighting element to illuminate a work area and accurately position the broach, chisel, or other end effector on a desired location on the prosthesis or the implant.
In an embodiment the tool may also include a feedback system that warns the user when a bending or off-line orientation beyond a certain magnitude is detected at a broach, chisel, or other end effector or implant interface.
In an embodiment the tool may also include a detent that retains the striker and which may be activated by a mechanical or electrical means such that the energy per impact from the tool to the surgical end effector is increased. In an embodiment, the characteristics of this detent are such that within 30% of striker movement, the retention force exerted by the detent on the striker is reduced by 50%.
These together with other aspects of the present disclosure, along with the various features of novelty that characterize the present disclosure, are pointed out with particularity in the claims annexed hereto and form a part of the present disclosure. For a better understanding of the present disclosure, its operating advantages, and the specific objects attained by its uses, reference should be made to the accompanying drawings and detailed description in which there are illustrated and described exemplary embodiments of the present disclosure.
DESCRIPTION OF THE DRAWINGS
The advantages and features of the present invention will become better understood with reference to the following detailed description and claims taken in conjunction with the accompanying drawings, wherein like elements are identified with like symbols, and in which:
FIG. 1 shows a perspective view of an orthopedic impacting tool in accordance with an exemplary embodiment of the present disclosure in which a motor, linear motion converter, and vacuum as energy storage means are used;
FIG. 2 shows an exemplary position of the piston wherein the vacuum has been created;
FIG. 3 shows the striker being released and the striker moving towards impacting the anvil in a forward direction;
FIG. 4 shows the striker being released and the striker moving such that the anvil will be impacted in a reverse direction;
FIG. 5 shows the vacuum piston moving back towards a first position and resetting the striker;
FIG. 6 shows an exemplary embodiment of a tool in which a compression chamber is used to create an impacting force;
FIG. 7 shows an exemplary embodiment of a tool in which a valve is used to adjust the energy of the impact of the striker;
FIG. 8 shows an exemplary embodiment of a tool in which the striker imparts a surface imparting a rearward force on the anvil;
FIG. 9 shows an exemplary embodiment of a tool in which the striker imparts a forward acting force on the anvil; and
FIG. 10 shows a comparison of the force vs. time curve between a sharp impact and a modified impact using a compliance mechanism in accordance with an exemplary embodiment of the present disclosure.
DETAILED DESCRIPTION OF THE DISCLOSURE
The best mode for carrying out the present disclosure is presented in terms of its preferred embodiments, herein depicted in the accompanying figures. The preferred embodiments described herein detail for illustrative purposes are subject to many variations. It is understood that various omissions and substitutions of equivalents are contemplated as circumstances may suggest or render expedient, but are intended to cover the application or implementation without departing from the spirit or scope of the present disclosure.
The terms “a” and “an” herein do not denote a limitation of quantity, but rather denote the presence of at least one of the referenced items.
The present disclosure provides an electric motor-driven orthopedic impacting tool with controlled percussive impacts. The tool includes the capability to perform single and multiple impacts as well as impacting of variable and varying directions, forces and frequencies. In an embodiment the impact force is adjustable. In another embodiment a detent may be provided, which detent facilitates the generation of a higher energy impact. In yet another embodiment the impact is transferred to a broach, chisel, or other end effector connected to the tool.
The tool may further include a housing. The housing may securely cover and hold at least one component of the tool. In an embodiment, the housing contains a motor, at least one reducing gear, a linear motion converter, a gas chamber, a striker, a force adjuster, a control means, an anvil, a forward impact surface and a different surface for rearward impact.
The tool further may include a handle portion with at least one hand grip for comfortable and secure holding of the tool while in use, and an adapter, a battery, a positional sensor, a directional sensor, and a torsional sensor. The tool may further comprise a lighting element such as an LED to provide light in the work area in which a surgeon employs the tool. The anvil may be coupled to a broach, chisel or other end effector through the use of an adapter, which adapter may have a quick connect mechanism to facilitate rapid change of different broaching sizes. The anvil may further include a locking rotational feature to allow the broach to be presented to and configured at different anatomical configurations without changing the orientation of the tool in the surgeon's hands.
Referring now to FIGS. 1 through 5, in an embodiment, the linear motion converter 12 comprises a slider crank mechanism, which slider crank is operatively coupled to the motor 8 and reducing gears 7. The tool further comprises a vacuum chamber 23 that accepts a piston 24 which may be actuated by the linear motion converter 12. It will be apparent that the piston 24 may be actuated in more than one direction. The vacuum is created in the vacuum chamber 23 by the movement of piston 24 away from striker 25. The vacuum created in the vacuum chamber 23 is defined as a pressure of less than 9 psia for at least a portion of the operational cycle.
In an embodiment, the motor 8 of the tool causes the linear motion converter 12 to move, which pulls a vacuum on the face of the striker 25 and creates at least a partial vacuum in the vacuum chamber 23, as is shown in FIG. 2. The piston 24 continues to move increasing the size of the vacuum chamber 23 until it hits a forward portion of the striker 25 (i.e., a portion of the strike that is proximate to the end effector or patient), which dislodges the striker 25 from its detent 10 and allows it to rapidly accelerate towards the end of the tool that is proximate to the end effector or patient. In an embodiment, the detent may be mechanical, electrical, or a combination thereof, with the preferred detent shown in the figures as a magnet. A characteristic of the detent 10 is that once the detent 10 is released or overcome, the retention force of the detent 10 on the striker 25 reduces by at least 50% within the first 30% movement of the striker 25. The impact of the striker 25 on the anvil 14 communicates a force to the adapter 1 and the broach, chisel or other orthopedic instrument.
In an embodiment, the direction of the force on the anvil is controlled by the user's (such as a surgeon) force on the tool and a stroke limiter 13. It has been determined that prior art tools may occasionally get stuck in a cavity and the impact of the striker in the aforementioned paragraph may be insufficient to dislodge the tool. In this present embodiment, when the tool is being pulled away from the cavity, the striker 25 will not impact the anvil 14, but will impact an alternate surface and thereby communicate a rearward force on the anvil 14. This impact surface is shown in an exemplary embodiment as actuation pin 27. Actuation pin 27 communicates a force to lever arm 17, which communicates a rearward force on the anvil 14, and specifically on the anvil retract impact surface 26. This embodiment has the unexpected benefit of easily dislodging tools and instruments that have become stuck in a surgical cavity, while retaining all the benefits of the existing tool in terms of precision-controlled impacting. Thus, a further advantage of this tool was discovered as it can be seen that the surgeon can control the direction of the impacting by a bias that he or she may place on the tool and, in so doing, can reduce the likelihood of the broach, chisel or other end effector from getting stuck in a patient or surgical cavity.
In a further embodiment, an electromagnet may be incorporated as the detent 10 and released at an appropriate point in the operation cycle to allow the striker 25 to impact the anvil 14. Once the striker 25 has been released from the detent 10, the air pressure on the rearward side of the striker 25, propels it forward to impact the anvil 14 or other strike surface. The resultant force may be communicated through an end of the anvil 14 that is proximate to the anvil forward impact surface 16 and, optionally, through the adapter 1 to which a broach, chisel, or other end effector for seating or removing an implant or prosthesis may be attached.
The striker guide 11 may also have striker guide vent holes 20, which allow the air in front of the striker 25 to escape, thus increasing the impact force of the striker 25 on the anvil 14. The striker guide vent holes 20 may vent within the cavity of the tool body, thus creating a self-contained air cycle preventing air from escaping from the tool and allowing for better sealing of the tool. The position and the size of the striker guide vent holes 20 can also be used to regulate the impact force. Further, it was unexpectedly found that adding the striker guide vent holes 20 increases the impact force of the striker 25 on the anvil 14.
In an embodiment, as the piston 24 continues through its stroke it moves towards the rear direction, which movement brings it in contact with rear striker face 28 of striker 25 and moves it towards the rear of the tool. This allows the detent 10 to lock or retain the striker 25 in position for the next impact. The piston 24 completes its rearward stroke and preferably activates a sensor 22 that signals the motor 8 to stop such that the piston 24 rests at or near bottom dead center of the vacuum chamber 23. The vacuum chamber 23 preferably has a relief or check valve 9 or other small opening, which, in an embodiment, is part of the piston 24. The valve 9 may also be located at other points in the vacuum chamber 23 and allows for any air which may have accumulated in the vacuum chamber 23 to be purged out of the vacuum chamber 23 during each cycle. In a further embodiment this valve effect could be accomplished with a cup seal instead of an o-ring seal. This ensures that approximately atmospheric pressure is present in the vacuum chamber 23 at a starting point in the operational cycle, thus ensuring that each impact utilizes the same amount of energy, as is important in orthopedic impacting for at least the reason that it assures of a substantially consistent force and impact rate in multi-impact situations. Thus, in one complete cycle, a forward or a rearward impacting force may be applied on the broach, chisel, or other end effector, or on the implant or prosthesis.
In a further embodiment, the motor 8 of the tool causes the linear motion converter 12 to move the piston 24 until the piston 24 moves a sufficient distance such that the forward portion of the piston impacts a portion of the striker and overcomes the detent 10 that retains the striker in the rear position. Once the striker has been released from the detent 10, the vacuum in the vacuum chamber 23 exerts a force on the striker, which accelerates the striker, causing the striker to slide axially down a cavity internal to the tool housing and strike the anvil forward impact surface 16. In FIG. 3, the anvil forward impact surface 16 causes a forward movement of the anvil 14 and/or tool holder, and, in FIG. 4, the anvil retract impact surface 26 causes a rearward movement of the anvil 14 and/or tool holder. The resultant force is communicated through an end of the anvil 14 that is proximate to the anvil forward impact surface 16 and, optionally, through the adapter 1 to which a broach, chisel, or other end effector for seating or removing an implant or prosthesis may be attached.
In another embodiment, the impact force may be generated using a compressed air chamber 5 in conjunction with a piston 6 and striker 4, as shown in FIGS. 6 through 9. In this embodiment, the motor 8 of the tool causes the linear motion converter 12 to move the piston 6 until sufficient pressure is built within the compressed air chamber 5 that is disposed between the distal end of the piston 6 and the proximate end of the striker 4 to overcome a detent 10 that otherwise retains the striker 4 in a rearward position and or the inertia and frictional force that holds the striker 4 in that rearward position. Once this sufficient pressure is reached, an air passageway 19 is opened and the air pressure accelerates the striker 4, which striker 4 slides axially down a cavity and strikes the anvil 14. The air passageway 19 has a cross sectional area of preferably less than 50% of the cross sectional area of the striker 4 so as to reduce the amount of retaining force required from detent 10. The resultant force is communicated through the end of the anvil 14 that is proximate to the anvil forward impact surface 16 and, optionally, through the adapter 1 to which a broach, chisel, or other device for seating or removing an implant or prosthesis may be attached.
As the piston 6 continues through its stroke, it moves towards the rear direction, pulling a slight vacuum in compressed air chamber 5. This vacuum may be communicated through an air passageway 19 to the back side of the striker 4, creating a returning force on the striker 4, which returning force causes the striker 4 to move in a rear direction, i.e., a direction away from the point of impact of the striker 4 on the anvil forward impact surface 16. In the event that an adapter 1 is attached to the anvil 14, a force may be communicated through the adapter 1 to which the broach, chisel, or other end effector for seating or removing an implant or prosthesis is attached.
Further, when the tool is being pulled away from the cavity, the striker 4 will not impact the anvil 14, but may instead impact an alternate surface and thereby communicate a rearward force on the anvil 14. This impact surface is shown in an exemplary embodiment as actuation pin 27. Actuation pin 27 communicates a force to lever arm 17, which communicates a rearward force on the anvil 14, and specifically on the anvil retract impact surface 26.
The tool may further facilitate controlled continuous impacting, which impacting is dependent on a position of a start switch (which start switch may be operatively coupled to the power source or motor, for example.) For such continuous impacting, after the start switch is activated, and depending on the position of the start switch, the tool may go through complete cycles at a rate proportional to the position of the start switch, for example. Thus, with either single impact or continuous impacting operational modes, the creation or shaping of the surgical area is easily controlled by the surgeon.
A sensor 22 coupled operatively to the control means 21 may be provided to assist in regulating a preferred cyclic operation of the linear motion converter 12. For example, the sensor 22 may communicate at least one position to the control means 21, allowing the linear motion converter 12 to stop at or near a position in which at least 75% of a full power stroke is available for the next cycle. This position is referred to as a rest position. This has been found to be advantageous over existing tools in that it allows the user to ensure that the tool impacts with the same amount of energy per cycle. Without this level of control, the repeatability of single cycle impacting is limited, reducing the confidence the surgeon has in the tool.
The tool is further capable of tuning the amount of impact energy per cycle by way of, for example, an energy control element 18. By controlling the impact energy the tool can avoid damage caused by uncontrolled impacts or impacts of excessive energy. For example, a surgeon may reduce the impact setting in the case of an elderly patent with osteoporosis, or may increase the impact setting for more resilient or intact athletic bone structures.
In an embodiment, the energy control element 18 preferably comprises a selectable release setting on the detent 10 that holds the striker 25. It will be apparent that the striker 25 will impact the anvil 14 with greater energy in the case where the pressure needed to dislodge the striker 25 from the detent 10 is increased. In another embodiment, the detent 10 may comprise an electrically controlled element. The electrically controlled element can be released at different points in the cycle, thus limiting the size of the vacuum chamber 23, which is acting on the striker 25. In an embodiment, the electrically controlled element is an electromagnet.
In another embodiment, the vacuum chamber 23 or compressed air chamber 5 may include an energy control element 18, which takes the form of an adjustable leak, such as an adjustable valve. The leakage reduces the amount of energy accelerating the striker 4 or 25, thus reducing the impact energy on the anvil 14. In the case of the adjustable leak, adjusting the leak to maximum may give the lowest impact energy from the striker 4 or 25, and adjusting to shut the leak off (zero leak) may give the highest impact energy from the striker 4 or 25.
The tool may further comprise a compliance means inserted between the striker 4 or 25 and the surgical end effector, which purpose is to spread the impact force out over a longer time period, thus achieving the same total energy per impact, but at a reduced force. This can be seen clearly as a result of two load cell tests on the instrument as shown in FIG. 10. This type of compliance means can limit the peak force during impact to preclude such peaks from causing fractures in the patient's bone. In a further embodiment, this compliance means may be adjustable and in a still further embodiment the compliance means may be inserted between striker 4 or 25 and the anvil 14 or surgical tool. In this manner and otherwise, the tool facilitates consistent axial broaching and implant seating. Preferably, the compliance means increases the time of impact from the striker to at least 4 milliseconds and preferable 10 milliseconds. This contrasts to impacting in which a very high force is generated due to the comparatively high strengths of the striker 4 or 25 and the anvil 14 (both steel, for example). Preferably, the compliance means comprises a resilient material such as urethane, rubber or other elastic material that recovers well from impact and imparts minimal damping on the total energy.
In a further embodiment, the adapter 1 may comprise a linkage arrangement or other adjustment means such that the position of the broach, chisel or other end effector can be modified without requiring the surgeon to rotate the tool. In an embodiment, the adapter 1 may receive a broach for anterior or posterior joint replacement through either an offset mechanism or by a rotational or pivotal coupling between the tool and the patient. The adapter 1 may thereby maintain the broach or surgical end effector in an orientation that is parallel or co-linear to the body of the tool and the striker 25. The adapter 1 may also comprise clamps, a vice, or any other fastener that may securely hold the broach, chisel, or other end effector during operation of the tool.
In use, a surgeon firmly holds the tool by the handle grip or grips and utilizes light emitted by the LED to illuminate a work area and accurately position a broach, chisel or other end effector that has been attached to the tool on a desired location on the prosthesis or implant. The reciprocating movement imparted by the tool upon the broach, chisel or other end effector allows for shaping a cavity and for seating or removal of a prosthesis.
The tool disclosed herein provides various advantages over the prior art. It facilitates controlled impacting at a surgical site, which minimizes unnecessary damage to a patient's body and which allows precise shaping of an implant or prosthesis seat. The tool also allows the surgeon to modulate the direction, force and frequency of impacts, which improves the surgeon's ability to manipulate the tool. The force and compliance control adjustments of the impact settings allow a surgeon to set the force of impact according to a particular bone type or other profile of a patient. The improved efficiency and reduced linear motion converter loads allow use of smaller batteries and lower cost components. The tool thereby enables proper seating or removal of the prosthesis or implant into or out of an implant cavity.
The foregoing descriptions of specific embodiments of the present disclosure have been presented for purposes of illustration and description. They are not intended to be exhaustive or to limit the present disclosure to the precise forms disclosed, and obviously many modifications and variations are possible in light of the above teaching. The exemplary embodiment was chosen and described in order to best explain the principles of the present disclosure and its practical application, to thereby enable others skilled in the art to best utilize the disclosure and various embodiments with various modifications as are suited to the particular use contemplated.

Claims (26)

What is claimed is:
1. An orthopedic impacting tool for striking an object, the tool comprising:
a motor;
a linear motion converter;
an energy storage means;
a detent;
a control means;
an adapter, said adapter capable of holding a broach, chisel or other surgical implement; and
a striker, said striker capable of impacting at least two distinct impact surfaces, wherein a first impact surface moves said adapter forward and a second impact surface moves said adapter rearward,
wherein said control means directs said motor to store an energy in said energy storage means and said energy storage means thereafter releases the energy onto said striker causing said striker to move from a first position to a second position such that said striker is capable of imparting a force upon said adapter in a direction that is dependent at least in part on which surface said striker impacts.
2. The tool as claimed in claim 1, wherein said impact surface being impacted is controlled by a bias that a user puts on the tool.
3. The tool as claimed in claim 1, wherein said energy storage means includes a chamber operating at less than 9 psia or a pressure in excess of 50 psia at or near the point of peak energy storage.
4. The tool as claimed in claim 1, wherein said detent retains said striker in said first position until said detent is released or overcome thus allowing said energy storage means to release the energy onto said striker.
5. The tool as claimed in claim 1, wherein said energy storage means further comprises a valve.
6. The tool as claimed in claim 1, wherein the tool further comprises an energy control element, said energy control element used to adjust the impact energy said striker exerts on said adapter.
7. The tool as claimed in claim 1, wherein the tool further comprises a stroke limiter, said stroke limiter limiting a stroke of said adapter to less than fifty percent of a stroke of said striker.
8. A portable, battery powered surgical impactor for striking an object with a repeatable, controlled striking force to impel a surgical implement in one of at least two opposing directions, the impactor comprising:
a drive mechanism configured to produce the striking force;
an integral battery source powering the drive mechanism of the portable impactor;
an energy controller configured to control storage and release of energy output from the drive mechanism to an energy storage mechanism to produce the repeatable, controlled striking force responsive to the drive mechanism;
an adapter configured to releasably receive the surgical implement for interfacing the object;
a striker operable to impact a first surface of an actuator and a different second surface of an anvil responsive to the repeatable, controllable striking force delivered thereto, the impact of the striker on the first surface of the actuator impelling the adapter in a first direction and the impact of the striker on the second surface of the anvil impelling the adapter in a direction opposite the first direction; and
a detent mechanism configured to retain the striker in position.
9. The impactor of claim 8, wherein a selection of a direction of impact on the first and second surfaces is based upon a user bias force applied to the impactor.
10. The impactor of claim 9, wherein the user bias force in a direction of the object causes the striker to impact the second surface.
11. The impactor of claim 9, wherein the user bias force in a direction away from the object causes the striker to impact the first surface.
12. The impactor of claim 8, wherein the energy storage mechanism includes a chamber operating between 0 and 9 psia for a portion of a storage cycle.
13. The impactor of claim 8, wherein the energy storage mechanism includes a chamber that is under at least a partial vacuum when the striker impacts the first surface to impel the surgical implement in the first direction.
14. The impactor of claim 8, wherein the energy storage mechanism is a compressed air storage chamber.
15. The impactor of claim 8, further comprising:
an energy adjustment mechanism to adjust the striking force the striker delivers to the adapter in accordance with a patient profile.
16. The impactor of claim 8, further comprising:
a linear motion conversion mechanism to convert the output of the drive mechanism to a linear motion.
17. The impactor of claim 16, further comprising:
a sensor operably linked to the energy controller to regulate the linear motion conversion mechanism to a preferred cyclic operation.
18. The impactor of claim 17, wherein the sensor detects a position of the linear motion conversion mechanism to limit a stroke to a percentage less than full power.
19. The impactor of claim 8, wherein upon release of the detent mechanism, a retention force of the detent mechanism on the striker is reduced by at least fifty percent within a first thirty percent of a stroke of the striker.
20. The impactor of claim 8, wherein the striker is operably linked to the adapter by the impact of the striker on the first and second surfaces.
21. The impactor of claim 8, wherein the striker moves in a substantially axial direction along a guide portion having openings therein for venting of air during operation.
22. A portable, battery powered surgical impactor for striking an object with a repeatable, controlled striking force to impel a surgical implement in one of at least two opposing directions, the impactor comprising:
a drive mechanism configured to drive the impactor;
an integral battery source powering the drive mechanism;
an energy controller configured to control storage and release of energy output from the drive mechanism to an energy storage device to produce the repeatable, controlled striking force;
an adapter having a mount configured to receive the surgical implement;
a striker operable to impact a first surface and a different second surface of an anvil, responsive to the repeatable, controllable striking force delivered thereto, the impact of the surface of the striker on the first surface of the actuator impelling the adapter in a first direction and the impact of the striker on the second surface of the anvil impelling the adapter in a direction opposite the first direction; and
a detent mechanism configured to retain the striker in position.
23. The impactor of claim 22, wherein a user bias force in a direction away from the object causes the surface of the striker to impact the first surface.
24. The impactor of claim 22, wherein a user bias force in a direction of the object causes the striker to impact the second surface.
25. The impactor of claim 8, wherein the actuator is a pin, and the impact of the striker on the first surface of the pin causes a rearward force to be communicated to the anvil.
26. The impactor of claim 8, wherein a distal surface of the striker is operable to impact the first surface of the actuator and the second surface of the anvil responsive to the repeatable, controllable striking force delivered thereto.
US14/850,620 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting Active USRE47963E1 (en)

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US12/980,329 US8695726B2 (en) 2010-12-29 2010-12-29 Electric motor driven tool for orthopedic impacting
US201113337075A 2011-12-24 2011-12-24
US201261603320P 2012-02-26 2012-02-26
US13/466,870 US8393409B2 (en) 2010-12-29 2012-05-08 Electric motor driven tool for orthopedic impacting
US201261682915P 2012-08-14 2012-08-14
US201261734539P 2012-12-07 2012-12-07
US201313759813A 2013-02-05 2013-02-05
US13/790,870 US8602124B2 (en) 2010-12-29 2013-03-08 Electric motor driven tool for orthopedic impacting
US14/850,620 USRE47963E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting

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US14/850,695 Active USRE47997E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US14/850,588 Active USRE48184E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US14/850,660 Active USRE46979E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US14/850,639 Active USRE46954E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US14/850,620 Active USRE47963E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US15/677,933 Active USRE48387E1 (en) 2010-12-29 2017-08-15 Electric motor driven tool for orthopedic impacting
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US14/850,695 Active USRE47997E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US14/850,588 Active USRE48184E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
US14/850,660 Active USRE46979E1 (en) 2010-12-29 2015-09-10 Electric motor driven tool for orthopedic impacting
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Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE48387E1 (en) 2010-12-29 2021-01-12 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting
USRE48388E1 (en) 2010-12-29 2021-01-12 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting
US11918268B2 (en) 2020-10-09 2024-03-05 Additive Instruments Limited Impactor
US11925359B2 (en) 2021-01-29 2024-03-12 Zimmer, Inc. Rotary electric surgical hammer impact tool
US11925402B2 (en) 2017-12-15 2024-03-12 Depuy Synthes Products, Inc Orthopedic adapter for an electric impacting tool
US11957395B2 (en) 2021-03-31 2024-04-16 DePuy Synthes Products, Inc. Orthopedic instrument adapters
US12004793B2 (en) 2021-02-26 2024-06-11 Zimmer, Inc. Bi-Spring surgical hammer impact tools
US12011203B2 (en) 2021-05-07 2024-06-18 DePuy Synthes Products, Inc. Offset acetabular shell impactor adapter
US12023045B2 (en) 2021-06-29 2024-07-02 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting

Families Citing this family (30)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
TW201117930A (en) * 2009-11-19 2011-06-01 De Poan Pneumatic Corp Driving device for resetting a nail hitting bar the a pneumatic nail gun
US8936105B2 (en) * 2010-12-29 2015-01-20 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US8936106B2 (en) * 2010-12-29 2015-01-20 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US10149711B2 (en) 2012-03-30 2018-12-11 Depuy Mitek, Llc Surgical impact tool
US8733610B2 (en) * 2012-08-21 2014-05-27 Tricord Solutions, Inc. Fastener driving apparatus
WO2014074676A2 (en) 2012-11-09 2014-05-15 Blue Belt Technologies, Inc. Systems and methods for navigation and control of an implant positioning device
US9931151B2 (en) * 2014-01-16 2018-04-03 Archer Sciences, LLC Impactor and remover devices
CN107635495B (en) * 2015-01-09 2020-05-01 麦迪克药业分布有限责任公司 Motor-driven tool for orthopedic impacting
USD806493S1 (en) 2015-07-22 2018-01-02 Tti (Macao Commercial Offshore) Limited Tool adapter
USD780548S1 (en) 2015-07-22 2017-03-07 Ac (Macao Commercial Offshore) Limited Power tool
US10028754B2 (en) * 2015-07-22 2018-07-24 Tti (Macao Commercial Offshore) Limited Medical impactor tool
JP7074671B2 (en) * 2016-08-31 2022-05-24 デピュイ・シンセス・プロダクツ・インコーポレイテッド Orthopedic device that delivers controlled and repeatable impact
US11083512B2 (en) 2016-08-31 2021-08-10 DePuy Synthes Products, Inc. Orthopedic device delivering a controlled, repeatable impact
AU2017320579B2 (en) * 2016-08-31 2023-08-10 DePuy Synthes Products, Inc. Orthopedic impacting device having a launched mass delivering a controlled, repeatable and reversible impacting force
US11033341B2 (en) 2017-05-10 2021-06-15 Mako Surgical Corp. Robotic spine surgery system and methods
EP3621545B1 (en) 2017-05-10 2024-02-21 MAKO Surgical Corp. Robotic spine surgery system
US11013503B2 (en) * 2017-05-26 2021-05-25 DePuy Synthes Products, Inc. Orthopedic device delivering a controlled, repeatable impact
EP3743004A1 (en) 2018-01-26 2020-12-02 Mako Surgical Corp. End effectors, systems, and methods for impacting prosthetics guided by surgical robots
KR102179492B1 (en) * 2019-04-10 2020-11-16 경북대학교 산학협력단 Apparatus for testing durability of member for in dental implant
CN110251223B (en) * 2019-06-20 2024-01-30 苏州点合医疗科技有限公司 Rotary table type leakage-free cone forming equipment
CN112296947A (en) * 2020-02-27 2021-02-02 杨新军 Slider striking formula electric impact drill
CN111641325B (en) * 2020-04-15 2024-05-07 齐齐哈尔永力科技有限公司 Single-stroke magnetic energy power machine
AU2022212126A1 (en) * 2021-01-29 2023-08-10 Zimmer, Inc. Orthopedic impactor tool
US11864808B2 (en) 2021-04-01 2024-01-09 DePuy Synthes Products, Inc. Gas spring surgical impacting tools
US11903592B2 (en) 2021-05-10 2024-02-20 DePuy Synthes Products, Inc. Data modules for surgical instruments
US20220361934A1 (en) 2021-05-13 2022-11-17 DePuy Synthes Products, Inc. Surgical impacting tool interfaces
CN114425733B (en) * 2021-12-14 2022-12-06 上海工程技术大学 Two-degree-of-freedom force control end effector
CN114654430B (en) * 2022-03-09 2023-05-19 永康市晓诚电器有限公司 Double-speed multifunctional electric hammer and use method thereof
DE102022116409A1 (en) * 2022-06-30 2024-01-04 Endocon Gmbh Surgical instrument
WO2024105546A1 (en) 2022-11-16 2024-05-23 DePuy Synthes Products, Inc. Surgical impacting tool couplings

Citations (76)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US974267A (en) 1908-10-12 1910-11-01 John J Hennessy Drilling apparatus.
US1920765A (en) 1929-05-07 1933-08-01 Rasch Ludvik Percussion tool
US3712390A (en) * 1971-02-26 1973-01-23 L Berg High energy impact tool assembly
US4143585A (en) 1976-05-03 1979-03-13 Hydroacoustics, Inc. Impact tool
FR2455006A1 (en) 1979-04-26 1980-11-21 Jenaer Glaswerk Schott & Gen OPTICAL GLASS STABLE TO CRYSTALLIZATION AND SUITABLE FOR MANUFACTURING IN LARGE SERIES
US4298074A (en) 1976-08-09 1981-11-03 American Safety Equipment Corporation Surgical device using impulse motor
US4442906A (en) * 1980-11-18 1984-04-17 Black & Decker Inc. Percussive drills
JPS60263678A (en) 1984-06-08 1985-12-27 芝浦メカトロニクス株式会社 Impact tool
JPS61219583A (en) 1985-03-25 1986-09-29 松下電工株式会社 Impact tool
US5057112A (en) * 1990-01-04 1991-10-15 Intermedics Orthopedics, Inc. Pneumatically powered orthopedic broach
US5108400A (en) 1988-01-21 1992-04-28 Aesculap Ag Striking tool for surgical instruments
US5145369A (en) 1990-04-23 1992-09-08 L. Paul Lustig Dental tool driving apparatus having rotating and roto-reciprocating motions
US5163519A (en) 1992-02-10 1992-11-17 Florida Pneumatic Manufacturing Corp. Pneumatically driven reverse impact device
US5167043A (en) 1991-04-04 1992-12-01 Lopez Gabriel A Hand-held forcible entry tool
US5352230A (en) 1992-02-19 1994-10-04 Biomet, Inc. Pneumatic impulse tool
JPH06283217A (en) 1993-03-29 1994-10-07 Ngk Insulators Ltd Heat insulated container for high-temperature battery
JPH07226230A (en) 1994-02-09 1995-08-22 Kubota Corp Heat insulation container for high temperature battery
WO1995022934A1 (en) 1994-02-23 1995-08-31 Synvasive Technology, Inc. Surgical chisel tool and method
US5485887A (en) * 1993-03-30 1996-01-23 Imt Integral Medizintechnik Ag Pneumatic impact tool and piston for a pneumatic impact tool
US5553675A (en) * 1994-06-10 1996-09-10 Minnesota Mining And Manufacturing Company Orthopedic surgical device
US5601149A (en) 1994-02-25 1997-02-11 Hitachi Koki Company Limited Noise reduction mechanism for percussion tools
US5975217A (en) 1997-04-07 1999-11-02 Hilti Aktiengesellschaft Tool for drilling and/or chiseling
US5980528A (en) 1997-05-01 1999-11-09 Salys; Scott Casimer Hand operable pneumatically driver controllable pulse medical actuator
US5984027A (en) * 1995-11-13 1999-11-16 Maruzen Kogyo Company Ltd. Engine-driven breaker
WO2000016948A1 (en) 1998-09-23 2000-03-30 Wacker-Werke Gmbh & Co. Kg Pneumatic percussion power tool with pneumatic returning spring
US6112830A (en) * 1998-11-11 2000-09-05 Metabowerke Gmbh & Co. Drill hammer
US6264660B1 (en) 1996-06-19 2001-07-24 Ferton Holding Surgical instrument for mechanical removal of bone cement, and process for production of shock waves
US6413230B1 (en) 1997-06-17 2002-07-02 Ferton Holding Medical instrument for treating biological tissue
US6520266B2 (en) * 2000-07-14 2003-02-18 Hilti Aktiengesellschaft Percussion electrical hand-held tool
US6644418B2 (en) * 2001-11-16 2003-11-11 Hitachi Koki Co., Ltd. Hammer drill
WO2004079214A1 (en) 2003-03-04 2004-09-16 Sony Corporation Bearing unit and rotation and drive device
JP2004299036A (en) 2003-04-01 2004-10-28 Makita Corp Working tool
DE10319350A1 (en) 2003-04-29 2004-11-18 Akkumulatorenfabrik Moll Gmbh & Co. Kg Battery box with robust case and cover, has double-walled construction for vacuum insulation which can be switched between thermally-conducting and insulating states
US20050057112A1 (en) 2003-09-16 2005-03-17 Edward Lopatinsky High reliability electric drive
US20050096661A1 (en) 2003-10-31 2005-05-05 Medtronic, Inc. Insulated battery pack and method of manufacturing same
US20050108400A1 (en) 2001-12-27 2005-05-19 Clemens Kujawski Optoacoustic operator's guide for mobile radio telephones
US6899715B1 (en) 1996-07-18 2005-05-31 Implant Innovations, Inc. Power-driven osteotome tools for compaction of bone tissue
US20050154431A1 (en) 2003-12-30 2005-07-14 Liposonix, Inc. Systems and methods for the destruction of adipose tissue
US6938705B2 (en) 2003-12-18 2005-09-06 Hitachi Koki Co., Ltd. Striking tool
US20050247462A1 (en) 2004-05-07 2005-11-10 Gerhard Meixner Hand machine tool with a hammer mechanism
US7001393B2 (en) 2003-11-10 2006-02-21 Rush University Medical Center Servo-controlled impacting device for orthopedic implants
US20060180631A1 (en) 2005-02-16 2006-08-17 Chris Pedicini Electric motor driven energy storage device for impacting
JP2006218228A (en) 2005-02-14 2006-08-24 Olympus Corp Battery unit, battery device having the same, medical instrument and endoscope
US20060254785A1 (en) 2005-05-16 2006-11-16 Makita Corporation Power impact tool
EP1754575A2 (en) 2005-08-19 2007-02-21 Makita Corporation Impact power tool
US7189241B2 (en) 2003-11-26 2007-03-13 Korea Advanced Institute Of Science And Technology Apparatus for preparing femoral cavity using vibration under operation of fixing guide unit
US20070085496A1 (en) 2005-06-28 2007-04-19 Christopher Philipp Powered surgical tool with control module that contains a sensor for remotely monitoring the tool power generating unit
US20070264485A1 (en) 2006-05-15 2007-11-15 Aspen-Aerogels, Inc. Aerogel-based enclosure systems
US7318485B2 (en) 2004-12-15 2008-01-15 C. & E. Fein Gmbh Method of Controlling the direction of rotation of a power tool
US20080181794A1 (en) 2007-01-26 2008-07-31 Steinfels Craig R Mobile pneumatic compressor
US20080215056A1 (en) 2002-05-31 2008-09-04 Miller Larry J Powered Drivers, Intraosseous Devices And Methods To Access Bone Marrow
US20080234711A1 (en) 2007-03-22 2008-09-25 Houser Kevin L Surgical instruments
US7569057B2 (en) 2003-09-11 2009-08-04 Warsaw Orthopedic, Inc. Impulsive percussion instruments for endplate preparation
US7708083B2 (en) 2003-10-07 2010-05-04 Robert Bosch Gmbh Hand power tool with a percussion merchanism, and as a method of operating the hand power tool
US7708739B2 (en) 2005-03-31 2010-05-04 Depuy Products, Inc. Controlled force impacting device
US7784562B2 (en) * 2007-05-14 2010-08-31 Makita Corporation Impact tool
US7861799B2 (en) * 2008-03-21 2011-01-04 Makita Corporation Impact tool
US7926584B2 (en) * 2007-09-12 2011-04-19 Hilti Aktiengesellschaft Hand-held power tool with air spring percussion mechanism, linear motor, and control process
US20110118779A1 (en) 2001-07-16 2011-05-19 Immersion Corporation Surgical Instrument Providing Haptic Feedback
US8069929B2 (en) 2008-03-10 2011-12-06 Makita Corporation Impact tool
US20110307060A1 (en) 2008-06-02 2011-12-15 Zimmer, Inc. Implant sensors
US20120041557A1 (en) 2010-08-10 2012-02-16 Robert Frigg Expandable implant
EP2455006A2 (en) 2008-01-10 2012-05-23 Ethicon Endo-Surgery, Inc. Surgical stapling instrument with a firing member return mechanism
US8292909B1 (en) 2010-06-30 2012-10-23 Laurimed, Llc Devices and methods for cutting tissue
US8393409B2 (en) * 2010-12-29 2013-03-12 Ortho Technologies, Llc Electric motor driven tool for orthopedic impacting
US8465491B2 (en) 2006-06-01 2013-06-18 Osteo Innovations Llc Bone drill
US20130261681A1 (en) 2012-03-30 2013-10-03 Depuy Mitek, Inc. Surgical impact tool
US8636647B2 (en) 2009-04-03 2014-01-28 Transcend Medical, Inc. Ocular implant delivery systems and methods
US8695726B2 (en) 2010-12-29 2014-04-15 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US8926625B2 (en) 2009-03-27 2015-01-06 Alain Lebet Surgical device
US8936604B2 (en) 2011-03-07 2015-01-20 Frederic Mani Pneumatic surgical instrument and corresponding methods for implanting, extracting and reorienting orthopedic implants
US8936106B2 (en) 2010-12-29 2015-01-20 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US8936105B2 (en) 2010-12-29 2015-01-20 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US8968326B2 (en) 2012-02-07 2015-03-03 Frederic Mani Pneumatic surgical instrument and corresponding methods for implanting orthopedic implants in bone
US20150182233A1 (en) 2013-12-26 2015-07-02 Tenjin LLC Percussive surgical devices, systems, and methods of use thereof
US20150289886A1 (en) 2014-04-14 2015-10-15 Efraim Kfir Assembly for manipulating bones

Family Cites Families (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4828046A (en) * 1988-04-28 1989-05-09 Vladimir Pyatov Vacuum-compression type percussion power tool with an auxiliary chamber
CH681362A5 (en) 1990-04-20 1993-03-15 Integral Medizintechnik
AU681770B2 (en) * 1994-05-18 1997-09-04 Stanley-Bostitch, Inc. Adjustable energy control valve for a fastener driving device
US6975908B1 (en) * 1999-07-02 2005-12-13 Medi-Direct Uk Limited Handheld piezoelectric acupuncture stimulator
GB0100605D0 (en) * 2001-01-10 2001-02-21 Black & Decker Inc Hammer
KR200294253Y1 (en) * 2002-07-10 2002-11-04 임병덕 hammer bit hitting apparatus for digging
US20050116673A1 (en) 2003-04-18 2005-06-02 Rensselaer Polytechnic Institute Methods and systems for controlling the operation of a tool
DE102004047606A1 (en) * 2004-09-30 2006-04-06 Hilti Ag Drill and / or chisel hammer
CN101410058A (en) * 2006-04-03 2009-04-15 泉株式会社 Lancet assembly
JP5103234B2 (en) * 2008-03-21 2012-12-19 株式会社マキタ Impact tool
WO2010045158A2 (en) 2008-10-13 2010-04-22 Piezo Resonance Innovations, Inc. Tool for incising tissue
ES2724623T3 (en) * 2010-12-29 2019-09-12 Depuy Synthes Products Inc Tool powered by electric motor for orthopedic impact
US9089345B2 (en) 2011-07-28 2015-07-28 David M. Funnell Rongeur with vented T-slide and/or increased strength
JP6283217B2 (en) 2013-12-20 2018-02-21 住友ゴム工業株式会社 Truck / Bus Tire

Patent Citations (81)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US974267A (en) 1908-10-12 1910-11-01 John J Hennessy Drilling apparatus.
US1920765A (en) 1929-05-07 1933-08-01 Rasch Ludvik Percussion tool
US3712390A (en) * 1971-02-26 1973-01-23 L Berg High energy impact tool assembly
US4143585A (en) 1976-05-03 1979-03-13 Hydroacoustics, Inc. Impact tool
US4298074A (en) 1976-08-09 1981-11-03 American Safety Equipment Corporation Surgical device using impulse motor
FR2455006A1 (en) 1979-04-26 1980-11-21 Jenaer Glaswerk Schott & Gen OPTICAL GLASS STABLE TO CRYSTALLIZATION AND SUITABLE FOR MANUFACTURING IN LARGE SERIES
US4442906A (en) * 1980-11-18 1984-04-17 Black & Decker Inc. Percussive drills
JPS60263678A (en) 1984-06-08 1985-12-27 芝浦メカトロニクス株式会社 Impact tool
JPS61219583A (en) 1985-03-25 1986-09-29 松下電工株式会社 Impact tool
US5108400A (en) 1988-01-21 1992-04-28 Aesculap Ag Striking tool for surgical instruments
US5057112A (en) * 1990-01-04 1991-10-15 Intermedics Orthopedics, Inc. Pneumatically powered orthopedic broach
US5145369A (en) 1990-04-23 1992-09-08 L. Paul Lustig Dental tool driving apparatus having rotating and roto-reciprocating motions
US5167043A (en) 1991-04-04 1992-12-01 Lopez Gabriel A Hand-held forcible entry tool
US5163519A (en) 1992-02-10 1992-11-17 Florida Pneumatic Manufacturing Corp. Pneumatically driven reverse impact device
US5352230A (en) 1992-02-19 1994-10-04 Biomet, Inc. Pneumatic impulse tool
JPH06283217A (en) 1993-03-29 1994-10-07 Ngk Insulators Ltd Heat insulated container for high-temperature battery
US5485887A (en) * 1993-03-30 1996-01-23 Imt Integral Medizintechnik Ag Pneumatic impact tool and piston for a pneumatic impact tool
EP0617926B1 (en) 1993-03-30 1998-08-05 Imt Integral Medizintechnik Ag Pneumatic percussion tool
JPH07226230A (en) 1994-02-09 1995-08-22 Kubota Corp Heat insulation container for high temperature battery
WO1995022934A1 (en) 1994-02-23 1995-08-31 Synvasive Technology, Inc. Surgical chisel tool and method
US5601149A (en) 1994-02-25 1997-02-11 Hitachi Koki Company Limited Noise reduction mechanism for percussion tools
US5553675A (en) * 1994-06-10 1996-09-10 Minnesota Mining And Manufacturing Company Orthopedic surgical device
US5984027A (en) * 1995-11-13 1999-11-16 Maruzen Kogyo Company Ltd. Engine-driven breaker
US6264660B1 (en) 1996-06-19 2001-07-24 Ferton Holding Surgical instrument for mechanical removal of bone cement, and process for production of shock waves
US6899715B1 (en) 1996-07-18 2005-05-31 Implant Innovations, Inc. Power-driven osteotome tools for compaction of bone tissue
US5975217A (en) 1997-04-07 1999-11-02 Hilti Aktiengesellschaft Tool for drilling and/or chiseling
US5980528A (en) 1997-05-01 1999-11-09 Salys; Scott Casimer Hand operable pneumatically driver controllable pulse medical actuator
US6413230B1 (en) 1997-06-17 2002-07-02 Ferton Holding Medical instrument for treating biological tissue
WO2000016948A1 (en) 1998-09-23 2000-03-30 Wacker-Werke Gmbh & Co. Kg Pneumatic percussion power tool with pneumatic returning spring
US6112830A (en) * 1998-11-11 2000-09-05 Metabowerke Gmbh & Co. Drill hammer
US6520266B2 (en) * 2000-07-14 2003-02-18 Hilti Aktiengesellschaft Percussion electrical hand-held tool
US20110118779A1 (en) 2001-07-16 2011-05-19 Immersion Corporation Surgical Instrument Providing Haptic Feedback
US6644418B2 (en) * 2001-11-16 2003-11-11 Hitachi Koki Co., Ltd. Hammer drill
US20050108400A1 (en) 2001-12-27 2005-05-19 Clemens Kujawski Optoacoustic operator's guide for mobile radio telephones
US20080215056A1 (en) 2002-05-31 2008-09-04 Miller Larry J Powered Drivers, Intraosseous Devices And Methods To Access Bone Marrow
WO2004079214A1 (en) 2003-03-04 2004-09-16 Sony Corporation Bearing unit and rotation and drive device
JP2004299036A (en) 2003-04-01 2004-10-28 Makita Corp Working tool
DE10319350A1 (en) 2003-04-29 2004-11-18 Akkumulatorenfabrik Moll Gmbh & Co. Kg Battery box with robust case and cover, has double-walled construction for vacuum insulation which can be switched between thermally-conducting and insulating states
US7569057B2 (en) 2003-09-11 2009-08-04 Warsaw Orthopedic, Inc. Impulsive percussion instruments for endplate preparation
US20050057112A1 (en) 2003-09-16 2005-03-17 Edward Lopatinsky High reliability electric drive
US7708083B2 (en) 2003-10-07 2010-05-04 Robert Bosch Gmbh Hand power tool with a percussion merchanism, and as a method of operating the hand power tool
US20050096661A1 (en) 2003-10-31 2005-05-05 Medtronic, Inc. Insulated battery pack and method of manufacturing same
US7001393B2 (en) 2003-11-10 2006-02-21 Rush University Medical Center Servo-controlled impacting device for orthopedic implants
US7189241B2 (en) 2003-11-26 2007-03-13 Korea Advanced Institute Of Science And Technology Apparatus for preparing femoral cavity using vibration under operation of fixing guide unit
US6938705B2 (en) 2003-12-18 2005-09-06 Hitachi Koki Co., Ltd. Striking tool
US20050154431A1 (en) 2003-12-30 2005-07-14 Liposonix, Inc. Systems and methods for the destruction of adipose tissue
US20050247462A1 (en) 2004-05-07 2005-11-10 Gerhard Meixner Hand machine tool with a hammer mechanism
US7318485B2 (en) 2004-12-15 2008-01-15 C. & E. Fein Gmbh Method of Controlling the direction of rotation of a power tool
JP2006218228A (en) 2005-02-14 2006-08-24 Olympus Corp Battery unit, battery device having the same, medical instrument and endoscope
US20060180631A1 (en) 2005-02-16 2006-08-17 Chris Pedicini Electric motor driven energy storage device for impacting
US7708739B2 (en) 2005-03-31 2010-05-04 Depuy Products, Inc. Controlled force impacting device
US20060254785A1 (en) 2005-05-16 2006-11-16 Makita Corporation Power impact tool
US20070085496A1 (en) 2005-06-28 2007-04-19 Christopher Philipp Powered surgical tool with control module that contains a sensor for remotely monitoring the tool power generating unit
US7383895B2 (en) * 2005-08-19 2008-06-10 Makita Corporation Impact power tool
EP1754575A2 (en) 2005-08-19 2007-02-21 Makita Corporation Impact power tool
US20070264485A1 (en) 2006-05-15 2007-11-15 Aspen-Aerogels, Inc. Aerogel-based enclosure systems
US8465491B2 (en) 2006-06-01 2013-06-18 Osteo Innovations Llc Bone drill
US20080181794A1 (en) 2007-01-26 2008-07-31 Steinfels Craig R Mobile pneumatic compressor
US20080234711A1 (en) 2007-03-22 2008-09-25 Houser Kevin L Surgical instruments
US7784562B2 (en) * 2007-05-14 2010-08-31 Makita Corporation Impact tool
US7926584B2 (en) * 2007-09-12 2011-04-19 Hilti Aktiengesellschaft Hand-held power tool with air spring percussion mechanism, linear motor, and control process
EP2455006A2 (en) 2008-01-10 2012-05-23 Ethicon Endo-Surgery, Inc. Surgical stapling instrument with a firing member return mechanism
US8069929B2 (en) 2008-03-10 2011-12-06 Makita Corporation Impact tool
US7861799B2 (en) * 2008-03-21 2011-01-04 Makita Corporation Impact tool
US20110307060A1 (en) 2008-06-02 2011-12-15 Zimmer, Inc. Implant sensors
US8926625B2 (en) 2009-03-27 2015-01-06 Alain Lebet Surgical device
US8636647B2 (en) 2009-04-03 2014-01-28 Transcend Medical, Inc. Ocular implant delivery systems and methods
US8292909B1 (en) 2010-06-30 2012-10-23 Laurimed, Llc Devices and methods for cutting tissue
US20120041557A1 (en) 2010-08-10 2012-02-16 Robert Frigg Expandable implant
US8695726B2 (en) 2010-12-29 2014-04-15 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US8393409B2 (en) * 2010-12-29 2013-03-12 Ortho Technologies, Llc Electric motor driven tool for orthopedic impacting
US8936106B2 (en) 2010-12-29 2015-01-20 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US8936105B2 (en) 2010-12-29 2015-01-20 Medical Enterprises LLC Electric motor driven tool for orthopedic impacting
US9901354B2 (en) 2010-12-29 2018-02-27 Medical Enterprises, Llc Electric motor driven tool for orthopedic impacting
US8936604B2 (en) 2011-03-07 2015-01-20 Frederic Mani Pneumatic surgical instrument and corresponding methods for implanting, extracting and reorienting orthopedic implants
US8936603B2 (en) 2011-03-07 2015-01-20 Frederic Mani Pneumatic surgical instrument and corresponding methods for penetrating, resecting and microfracturing bone
US20150127013A1 (en) 2011-03-07 2015-05-07 Biomet Global Supply Chain Center B.V. Pneumatic Surgical Instrument and Corresponding Methods for Implanting, Extracting and Reorienting Orthopedic Implants
US8968326B2 (en) 2012-02-07 2015-03-03 Frederic Mani Pneumatic surgical instrument and corresponding methods for implanting orthopedic implants in bone
US20130261681A1 (en) 2012-03-30 2013-10-03 Depuy Mitek, Inc. Surgical impact tool
US20150182233A1 (en) 2013-12-26 2015-07-02 Tenjin LLC Percussive surgical devices, systems, and methods of use thereof
US20150289886A1 (en) 2014-04-14 2015-10-15 Efraim Kfir Assembly for manipulating bones

Non-Patent Citations (16)

* Cited by examiner, † Cited by third party
Title
Canadian Office Action for CA Application No. 2,872,182 dated Apr. 8, 2019.
Canadian Search Results in CA Application No. 2,823,207 dated Jun. 16, 2017.
Extended European Search Report for EP App. No. 16193018.5 dated Mar. 30, 2017.
Extended European Search Report for EP App. No. 17199731.5 dated Feb. 13, 2018.
Extended European Search Report for EP App. No. 19150701.1 dated Oct. 21, 2019.
International Preliminary Report on Patentability issued in PCT Application No. PCT/US2011/067626 dated Jul. 2, 2013.
International Search Report and Written Opinion dated Nov. 2, 2016 in International Application No. PCT/US2016/015380.
International Search Report and Written Opinion issued in PCT Application No. PCT/US2011/067626 dated Jun. 29, 2012.
International Search Report and Written Opinion issued in PCT Application No. PCT/US2013/029944 dated Jul. 18, 2013.
Japanese Office Action issued in JP Application No. 2013-547652 dated Sep. 9, 2015 (english translation included).
Japanese Office Action issued in JP Application No. 2016-210624 dated Aug. 18, 2017 (english translation included).
Japanese Office Action issued in JP Application No. 2017-195035 dated Jul. 8, 2018 (english translation included).
Japanese Office Action issued in JP Application No. 2018-153615 on Aug. 20, 2019 (english translation included).
Non-Final Office Action issued in U.S. Appl. No. 12/980,329 dated Jun. 10, 2013.
Non-Final Office Action issued in U.S. Appl. No. 14/250,102 dated May 11, 2017.
Office Action dated May 24, 2016 in Japanese Patent Application No. 2013-547652, along with its English translation.

Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE48387E1 (en) 2010-12-29 2021-01-12 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting
USRE48388E1 (en) 2010-12-29 2021-01-12 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting
US11076867B2 (en) 2010-12-29 2021-08-03 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting
USRE49666E1 (en) 2010-12-29 2023-09-26 Depuy Synthes Products, Inc Electric motor driven tool for orthopedic impacting
US11925402B2 (en) 2017-12-15 2024-03-12 Depuy Synthes Products, Inc Orthopedic adapter for an electric impacting tool
US11918268B2 (en) 2020-10-09 2024-03-05 Additive Instruments Limited Impactor
US11925359B2 (en) 2021-01-29 2024-03-12 Zimmer, Inc. Rotary electric surgical hammer impact tool
US12004793B2 (en) 2021-02-26 2024-06-11 Zimmer, Inc. Bi-Spring surgical hammer impact tools
US11957395B2 (en) 2021-03-31 2024-04-16 DePuy Synthes Products, Inc. Orthopedic instrument adapters
US12011203B2 (en) 2021-05-07 2024-06-18 DePuy Synthes Products, Inc. Offset acetabular shell impactor adapter
US12023045B2 (en) 2021-06-29 2024-07-02 DePuy Synthes Products, Inc. Electric motor driven tool for orthopedic impacting

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