[미국특허]
End effector identification by mechanical features
원문보기
IPC분류정보
국가/구분
United States(US) Patent
등록
국제특허분류(IPC7판)
A61B-017/10
A61B-017/04
출원번호
US-0773176
(2010-05-04)
등록번호
US-8733614
(2014-05-27)
발명자
/ 주소
Ross, Adam
Zemlok, Michael
Marczyk, Stanislaw
출원인 / 주소
Covidien LP
인용정보
피인용 횟수 :
308인용 특허 :
68
초록▼
According to one aspect of the present disclosure, a surgical instrument is disclosed. The instrument includes a handle portion, a body portion extending distally from the handle portion and defining a first longitudinal axis and a loading unit. The loading unit includes a tool assembly, the loading
According to one aspect of the present disclosure, a surgical instrument is disclosed. The instrument includes a handle portion, a body portion extending distally from the handle portion and defining a first longitudinal axis and a loading unit. The loading unit includes a tool assembly, the loading adapted to be coupled to the body portion. The instrument also includes a sensor tube movably positioned within the body portion, the sensor tube adapted to engage the loading unit and a load switch coupled to a microcontroller. The load switch is adapted to be actuated by the sensor tube when the sensor tube is engaged by the loading unit being inserted into the body portion.
대표청구항▼
1. A surgical instrument, comprising: a handle portion;a body portion extending distally from the handle portion and defining a first longitudinal axis;a loading unit, the loading unit including a tool assembly, the loading unit adapted to be coupled to the body portion;a sensor tube having a ferrom
1. A surgical instrument, comprising: a handle portion;a body portion extending distally from the handle portion and defining a first longitudinal axis;a loading unit, the loading unit including a tool assembly, the loading unit adapted to be coupled to the body portion;a sensor tube having a ferromagnetic core portion and movably positioned within the body portion, the sensor tube adapted to engage the loading unit;a linear variable differential transducer disposed about the ferromagnetic core portion and adapted to be actuated by the sensor tube when the sensor tube is engaged by the loading unit being inserted into the body portion and to generate a sensor signal reflective of the sensor tube being engaged therewith, the linear variable differential transducer comprising:a primary coil disposed about the sensor tube;a first secondary coil disposed about the sensor tube and positioned distally of the primary coil; anda second secondary coil disposed about the sensor tube and positioned proximally of the primary coil; anda microcontroller configured to determine a type of the loading unit engaged with the body portion based on the sensor signal. 2. A surgical instrument according to claim 1, wherein upon actuation, the linear variable differential transducer signals the microcontroller to activate the surgical instrument. 3. A surgical instrument according to claim 1, wherein the sensor tube may only be engaged by a loading unit including an articulating tool assembly. 4. A surgical instrument according to claim 3, further comprising: an articulation mechanism configured to articulate the articulating tool assembly. 5. A surgical instrument according to claim 4, wherein upon engagement by the loading unit including the articulating tool assembly, the sensor tube actuates the linear variable differential transducer, which enables the articulation mechanism. 6. A surgical instrument, comprising: a handle portion;a body portion extending distally from the handle portion and defining a first longitudinal axis, the body portion having a distal end adapted to releasably engage both articulating and non-articulating loading units;an articulation mechanism configured to articulate an articulating tool assembly coupled to the articulating loading unit;a sensor tube having a ferromagnetic core portion and movably positioned within the body portion, the sensor tube adapted to engage the articulating loading unit;a linear variable differential transducer disposed about the ferromagnetic core portion and adapted to be actuated by the sensor tube when the sensor tube is engaged by the articulating loading unit, wherein upon actuation, the linear variable differential transducer generates a sensor signal reflective of the sensor tube being engaged therewith, the linear variable differential transducer comprising:a primary coil disposed about the sensor tube;a first secondary coil disposed about the sensor tube and positioned distally of the primary coil; anda second secondary coil disposed about the sensor tube and positioned proximally of the primary coil; anda microcontroller configured to activate the articulation mechanism based on the sensor signal. 7. A surgical instrument according to claim 6, wherein the sensor tube is movable to a first position in response to engagement of the non-articulating loading unit with the body portion and to a second position in response to engagement of the articulating loading unit with the body portion. 8. A surgical instrument according to claim 7, wherein movement of the sensor tube to the second position engages the linear variable differential transducer. 9. A surgical instrument according to claim 7, wherein movement of the sensor tube to the first position signals the microcontroller to activate the surgical instrument without the activation of the articulation mechanism. 10. A surgical instrument, comprising: a handle portion;a body portion extending distally from the handle portion and defining a first longitudinal axis, the body portion having a distal end adapted to releasably engage a plurality of loading unit types;a sensor tube having a ferromagnetic core portion and movably positioned within the body portion, the sensor tube adapted to engage each of the plurality of loading unit types and to move a predetermined distance in response thereto;a linear variable differential transducer adapted to determine a type of a loading unit engaged with the body portion based on the predetermined distance the sensor tube has been displaced and to generate a sensor signal reflective thereof, the linear variable differential transducer comprising:a primary coil disposed about the sensor tube;a first secondary coil disposed about the sensor tube and positioned distally of the primary coil; anda second secondary coil disposed about the sensor tube and positioned proximally of the primary coil; anda microcontroller configured to determine the type of a loading unit engaged with the body portion based on the sensor signal. 11. A surgical instrument according to claim 10, further comprising: an articulation mechanism configured to articulate an articulating tool assembly coupled to an articulating loading unit, the articulating tool assembly defining a second longitudinal axis and having a proximal end, the articulating tool assembly being movable from a first position in which the second longitudinal axis is substantially aligned with the first longitudinal axis to at least a second position in which the second longitudinal axis is disposed at an angle with respect to the first longitudinal axis. 12. A surgical instrument according to claim 11, wherein the microcontroller is configured to adjust at least one operating parameter of the instrument based on the type of loading unit engaged with the body portion. 13. A surgical instrument according to claim 12, wherein the at least one operating parameter is selected from the group consisting of firing stroke length, firing speed and degree of articulation. 14. A surgical instrument according to claim 12, wherein the microcontroller is further configured to activate the articulation mechanism when the loading unit is of the articulating type.
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Shelton, IV, Frederick E.; Baxter, III, Chester O.; Dunki-Jacobs, Adam R., Fastener cartridge comprising a firing member configured to directly engage and eject fasteners from the fastener cartridge.
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Shelton, IV, Frederick E.; Baxter, III, Chester O.; Swayze, Jeffrey S.; Harris, Jason L.; Labhasetwar, Disha V., Staple cartridge assembly including staple guides.
Swayze, Jeffrey S.; Shelton, IV, Frederick E.; Vendely, Michael J.; Baxter, III, Chester O.; Harris, Jason L.; Aronhalt, Taylor W., Staple cartridge assembly without a bottom cover.
Baxter, III, Chester O.; Shelton, IV, Frederick E.; Swayze, Jeffrey S.; Aronhalt, Taylor W.; Schmid, Katherine J., Staple cartridge comprising a compressible layer.
Shelton, IV, Frederick E.; Murray, Michael A.; Hess, Christopher J.; Weisenburgh, II, William B.; Morgan, Jerome R.; Hall, Steven G., Staple cartridge comprising a staple driver arrangement.
Shelton, IV, Frederick E.; Weaner, Lauren S.; Morgan, Jerome R.; Vendely, Michael J.; Aronhalt, Taylor W.; Baxter, III, Chester O.; Zeiner, Mark S., Staple cartridge comprising a tissue thickness compensator.
Shelton, IV, Frederick E.; Baxter, III, Chester O.; Swayze, Jeffrey S.; Morgan, Jerome R.; Rhee, Sora; Aronhalt, Taylor W., Staple cartridge comprising a variable thickness compressible portion.
Shelton, IV, Frederick E.; Weaner, Lauren S.; Morgan, Jerome R.; Vendely, Michael J.; Aronhalt, Taylor W., Staple cartridge comprising an adjunct material.
Baxter, III, Chester O.; Shelton, IV, Frederick E.; Swayze, Jeffrey S.; Aronhalt, Taylor W.; Schmid, Katherine J., Staple cartridge comprising an implantable layer.
Shelton, IV, Frederick E.; Baxter, III, Chester O.; Aronhalt, Taylor W.; Morgan, Jerome R.; Young, Joseph E., Staple cartridge comprising multiple regions.
Hess, Christopher J.; Morgan, Jerome R.; Shelton, IV, Frederick E.; Weisenburgh, II, William B., Staple cartridge comprising staples including a lateral base.
Schmid, Katherine J.; Baxter, III, Chester O.; Aronhalt, Taylor W.; Young, Joseph E.; Shelton, IV, Frederick E., Staple cartridge including collapsible deck arrangement.
Swayze, Jeffrey S.; Hueil, Joseph C.; Morgan, Jerome R.; Shelton, IV, Frederick E., Stapling assembly configured to produce different formed staple heights.
Weisenburgh, II, William B.; Morgan, Jerome R.; Moore, Kyle P.; Hueil, Geoffrey C.; Ortiz, Mark S.; Hoffman, Douglas B.; Weizman, Patrick A.; Bruewer, Dean B.; Blair, Gregory B.; Shelton, IV, Frederick E., Stapling system comprising a lockout.
Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D.; Swensgard, Brett E.; Lytle, IV, Thomas W.; Shelton, IV, Frederick E.; Houser, Kevin L., Sterilization verification circuit.
Beckman, Andrew T.; Nalagatla, Anil K.; Hibner, John A.; Shelton, IV, Frederick E., Surgical apparatus configured to assess whether a performance parameter of the surgical apparatus is within an acceptable performance band.
Beckman, Andrew T.; Nalagatla, Anil K.; Koch, Jr., Robert L.; Hibner, John A.; Shelton, IV, Frederick E., Surgical apparatus configured to track an end-of-life parameter.
Morgan, Jerome R.; Shelton, IV, Frederick E., Surgical cutting and fastening instrument with apparatus for determining cartridge and firing motion status.
Huitema, Thomas W.; Scheib, Charles J.; Henderson, Cortney E.; Shelton, IV, Frederick E.; Harris, Jason L., Surgical end effectors with firing element monitoring arrangements.
Huitema, Thomas W.; Schellin, Emily A.; Hueil, Geoffrey C.; Shelton, IV, Frederick E., Surgical fastener cartridges with driver stabilizing arrangements.
Shelton, IV, Frederick E.; Swayze, Jeffrey S.; Baxter, III, Chester O., Surgical fastening apparatus with a rotary end effector drive shaft for selective engagement with a motorized drive system.
Shelton, IV, Frederick E.; Morgan, Jerome R.; Harris, Jason L.; Swayze, Jeffrey S.; Baxter, III, Chester O., Surgical instrument assembly comprising a flexible articulation system.
Baxter, III, Chester O.; Dunki-Jacobs, Adam R.; Swayze, Jeffrey S.; Baber, Daniel L.; Shelton, IV, Frederick E., Surgical instrument assembly comprising a lockable articulation system.
Parihar, Shailendra K.; Kimsey, John S.; Koch, Jr., Robert L.; Nalagatla, Anil K.; Nguyen, Anthony T., Surgical instrument comprising a gap setting system.
Overmyer, Mark D.; Auld, Michael D.; Adams, Shane R.; Shelton, IV, Frederick E.; Harris, Jason L., Surgical instrument comprising a lockable battery housing.
Lytle, IV, Thomas W.; Overmyer, Mark D.; Adams, Shane R.; Leimbach, Richard L.; Shelton, IV, Frederick E.; Swensgard, Brett E.; Houser, Kevin L., Surgical instrument comprising interactive systems.
Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D.; Swensgard, Brett E.; Lytle, IV, Thomas W.; Shelton, IV, Frederick E.; Houser, Kevin L., Surgical instrument control circuit having a safety processor.
Morgan, Jerome R.; Shelton, IV, Frederick E., Surgical instrument system comprising a firing system including a rotatable shaft and first and second actuation ramps.
Kerr, Wendy A.; Lytle, IV, Thomas W.; Overmyer, Mark D.; Swensgard, Brett E.; Sackett, Kevin D.; Leimbach, Richard L.; Houser, Kevin L.; Morgan, Jerome R.; Shelton, IV, Frederick E., Surgical instrument system comprising lockable systems.
Morgan, Jerome R.; Shelton, IV, Frederick E., Surgical instrument system configured to detect resistive forces experienced by a tissue cutting implement.
Lytle, IV, Thomas W.; Shelton, IV, Frederick E.; Morgan, Jerome R., Surgical instrument systems comprising an articulatable end effector and means for adjusting the firing stroke of a firing member.
Shelton, IV, Frederick E.; Baxter, III, Chester O., Surgical instrument with an anvil that is selectively movable about a discrete non-movable axis relative to a staple cartridge.
Hunter, Morgan R.; Schultz, Darwin L.; Worthington, Sarah A.; Shelton, IV, Frederick E.; Weaner, Lauren S.; Vendely, Michael J., Surgical instrument with articulating and axially translatable end effector.
Shelton, IV, Frederick E.; Baxter, III, Chester O.; Harris, Jason L.; Swayze, Jeffrey S., Surgical instruments with articulatable end effectors and improved firing beam support arrangements.
Shelton, IV, Frederick E.; Morgan, Jerome R.; Harris, Jason L.; Swayze, Jeffrey S.; Baxter, III, Chester O., Surgical instruments with articulatable end effectors and movable firing beam support arrangements.
Hunter, Morgan R.; Schultz, Darwin L.; Dunki-Jacobs, Adam R.; Baxter, III, Chester O.; Swayze, Jeffrey S., Surgical instruments with tensioning arrangements for cable driven articulation systems.
Harris, Jason L.; Shelton, IV, Frederick E.; Baxter, III, Chester O., Surgical staple cartridges with driver arrangements for establishing herringbone staple patterns.
Overmyer, Mark D.; Yates, David C.; Shelton, IV, Frederick E.; Adams, Shane R.; Leimbach, Richard L., Surgical stapler having motor control based on an electrical parameter related to a motor current.
Overmyer, Mark D.; Yates, David C.; Shelton, IV, Frederick E.; Adams, Shane R.; Harris, Jason L., Surgical stapler having temperature-based motor control.
Schmid, Katherine J.; Baxter, III, Chester O.; Aronhalt, Taylor W.; Young, Joseph E.; Shelton, IV, Frederick E., Surgical stapler with stationary staple drivers.
Hall, Steven G.; Tanguay, Randall J.; Messerly, Jeffrey D.; Robertson, Galen C.; Zwolinski, Andrew M.; Shelton, IV, Frederick E.; Hueil, Geoffrey C.; Ortiz, Mark S.; Hoffman, Douglas B.; Weizman, Patrick A.; Bruewer, Dean B.; Blair, Gregory B., Surgical stapling apparatus including firing force regulation.
Hall, Steven G.; Tanguay, Randall J.; Messerly, Jeffrey D.; Robertson, Galen C.; Zwolinski, Andrew M.; Shelton, IV, Frederick E.; Hueil, Geoffrey C.; Ortiz, Mark S.; Hoffman, Douglas B.; Weizman, Patrick A.; Bruewer, Dean B.; Blair, Gregory B., Surgical stapling apparatus including firing force regulation.
Hall, Steven G.; Tanguay, Randall J.; Messerly, Jeffrey D.; Robertson, Galen C.; Zwolinski, Andrew M.; Shelton, IV, Frederick E., Surgical stapling apparatuses with lockable end effector positioning systems.
Hall, Steven G.; Tanguay, Randall J.; Messerly, Jeffrey D.; Robertson, Galen C.; Zwolinski, Andrew M.; Shelton, IV, Frederick E.; Hueil, Geoffrey C.; Ortiz, Mark S.; Hoffman, Douglas B.; Weizman, Patrick A.; Bruewer, Dean B.; Blair, Gregory B., Surgical stapling assembly comprising a selector arrangement.
Shelton, IV, Frederick E.; Setser, Michael E.; Weisenburgh, II, William B., Surgical stapling instrument configured to apply a compressive pressure to tissue.
Shelton, IV, Frederick E.; Hueil, Joseph C.; Morgan, Jerome R.; Fugikawa, Leslie M., Surgical stapling instrument having a medical substance dispenser.
Hess, Christopher J.; Weisenburgh, II, William B.; Shelton, IV, Frederick E.; Morgan, Jerome R., Surgical stapling instrument having a releasable buttress material.
Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D.; Swensgard, Brett E.; Lytle, IV, Thomas W.; Shelton, IV, Frederick E.; Houser, Kevin L., Surgical stapling instrument system.
Huang, Zhifan F.; Boudreaux, Chad P.; Hueil, Joseph C.; Bruewer, Dean B.; Smith, David B., Surgical stapling instrument with an articulatable end effector.
Shelton, IV, Frederick E.; Setser, Michael E.; Weisenburgh, II, William B., Surgical stapling instrument with lockout features to prevent advancement of a firing assembly unless an unfired surgical staple cartridge is operably mounted in an end effector portion of the instrument.
Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D.; Swensgard, Brett E.; Lytle, IV, Thomas W.; Shelton, IV, Frederick E.; Houser, Kevin L., Systems and methods for controlling a segmented circuit.
Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D.; Swensgard, Brett E.; Lytle, IV, Thomas W.; Shelton, IV, Frederick E.; Houser, Kevin L., Systems and methods for controlling a segmented circuit.
Shelton, IV, Frederick E.; Swensgard, Brett E.; Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D.; Houser, Kevin L., Systems and methods for controlling a segmented circuit.
Shelton, IV, Frederick E.; Harris, Jason L.; Swensgard, Brett E.; Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D., Time dependent evaluation of sensor data to determine stability, creep, and viscoelastic elements of measures.
Shelton, IV, Frederick E.; Harris, Jason L.; Swensgard, Brett E.; Leimbach, Richard L.; Adams, Shane R.; Overmyer, Mark D., Time dependent evaluation of sensor data to determine stability, creep, and viscoelastic elements of measures.
Anim, Jacqueline A.; Onukuri, Samardh; Silvestri, Jr., Anthony; Shelton, IV, Frederick E.; Clem, Michael F.; Vetro-Widenhouse, Tamara S., Tissue stapler having a thickness compensator comprising incorporating a hemostatic agent.
Shelton, IV, Frederick E.; Vetro-Widenhouse, Tamara S.; Yoo, Andrew C., Tissue stapler having a thickness compensator incorporating an anti-inflammatory agent.
Ming, Xintian; Huitema, Thomas W.; Rothenburger, Stephen J.; Shelton, IV, Frederick E., Tissue stapler having a thickness compensator incorporating an anti-microbial agent.
Henderson, Cortney E.; Aronhalt, Taylor W.; Yang, Chunlin; Scheib, Charles J.; Mandakolathur Vasudevan, Venkataramanan; Yoo, Andrew C.; Shelton, IV, Frederick E., Tissue stapler having a thickness compensator incorporating an oxygen generating agent.
Gonzalez, Hamilton E.; Swayze, Jeffrey S.; Cropper, Michael S.; Scheib, Charles J.; Shelton, IV, Frederick E.; Johnson, Gregory W., Tissue thickness compensator comprising a plurality of layers.
Baxter, III, Chester O.; Shelton, IV, Frederick E.; Schmid, Katherine J.; Aronhalt, Taylor W.; Johnson, Gregory W.; Stammen, John L.; Knight, Gary W.; Widenhouse, Christopher W.; Weisenburgh, II, William B.; Mutchler, Stephanie A.; Bedard, Timothy S., Tissue thickness compensators.
Alexander, III, Johnny H.; Henderson, Cortney E.; Miller, Christopher C.; Measamer, John P.; Schmid, Katherine J.; Shelton, IV, Frederick E.; Mutchler, Stephanie A.; Smith, Bret W.; Cropper, Michael S., Tissue thickness compensators for circular surgical staplers.
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