Manifold For Gas Enhanced Surgical Instruments
There is disclosed a fluid supply manifold for use with various surgical instruments, such as, electrosurgical instruments. The fluid supply manifold includes two or more connection ports for receipt of sources of fluid supply by either bulk sources or sources contained within canisters. The manifold may include a mixing chamber for mixing the various sources of fluids within the manifold or may include flow tubes for providing the sources of fluid directly to the surgical instrument to be mixed within the surgical instrument. Control valves are associated with each of the connection ports to control the flow of fluids through the manifold. The manifold may also include a gas inlet to facilitate drawing the fluids out of the various sources as well as mixing the fluids within the manifold.
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The present application is a divisional of U.S. patent application Ser. No. 11/367,724, filed Mar. 3, 2006, the disclosure of which is incorporated by reference herein in its entirety.
BACKGROUND1. Technical Field
The present disclosure relates generally to gas enhanced electrosurgical instruments. More particularly, the present disclosure relates to a supply manifold for use with a gas enhanced electrosurgical instrument having multiple material supply cylinders.
2. Background Of Related Art
Various surgical instruments are known for treating tissue. For example, surgical instruments used for tissue division, dissection, ablation, or for arresting blood loss and coagulation are well-known. In a particular application, for example in a coagulation instrument, an electrode is used in conjunction with a heated probe to arrest bleeding.
Some prior art devices include a tube-like coagulation instrument in which an ionizable gas is supplied to the instrument and ionized by the electrode. The provision of an atmosphere of ionized gases is beneficial because it helps focus the energy adjacent the electrode and it displaces oxygen from the area and reduces oxidative stress of the tissue. The gas is propelled from the instrument toward the tissue.
Many surgical procedures are enhanced by the use of wound mediating substances to assist in the healing of tissue. The substances may include blood clotting factors, wound closing adhesives, growth factors, interleukins, cytokines, inflammatory mediating factors, chemokines, meta-metalloproteinase or other biochemicals known to mediate wound healing.
In certain surgeries it may be advantageous to provide other fluids, such as, for example, saline, various dyes, etc. to the surgical instrument for application to tissue. In some instances, it may be advisable to provide one or more of these fluids to the tissue at the same time.
SUMMARYThe present disclosure relates to a fluid supply manifold for use with a surgical instrument to provide various fluids from balk or canister fluid supply sources to the surgical instrument. The fluid supply manifold generally includes a housing having at least two connection ports for receipt of sources of fluid supply. A flow port is provided on each of the connection ports to pass the fluid through the housing. In one embodiment, the housing defines a mixing chamber that is in fluid communication with each of the flow ports so as to mix the fluids supplied through the connection ports. The housing also includes a discharge tube that is in fluid communication with the mixing chamber. Control valves are associated with the connection ports to regulate the flow of fluid into the housing. The control valves are operated by an actuator associated with a surgical instrument assembly. The housing may also include a gas inlet port that is in fluid communication with the mixing chamber.
Needles, defining fluid flow paths, are associated with the connection ports for piercing a septum associated with various fluid supply sources. The fluid supply sources may include bulk sources or individual fluid supply canisters. The connection ports include O-rings for sealing engagement with the fluid supply sources. In one embodiment, the connection ports are threaded to receive a corresponding thread on a fluid supply source. In an alternative embodiment, the external fluid supply source is affixed within the connection port in a press fit fashion such that the needle is forced through a septum of the fluid supply source.
In an alternative embodiment of the manifold, each connection port includes a flow tube passing through the housing. Control valves are positioned between a flow port of the connection port and the flow tubes. The flow tubes exit the housing through a neck, which is also used to connect the manifold to a surgical instrument or an actuator assembly.
The present disclosure also relates to a fluid supply manifold for use with a surgical instrument. The manifold includes a housing configured to operably couple the surgical instrument to at least a first source of pressurized gas, at least two connection ports configured to receive fluid from a fluid supply, and an individual flow port provided on each of the at least two connection ports. In one embodiment, the manifold is configured such that release of pressurized gas from the at least first source of pressurized gas draws fluid from the fluid supply.
Various embodiments of the presently disclosed supply manifold for use with a gas enhanced electrosurgical instrument are disclosed herein with reference to the drawings, wherein:
Embodiments of the presently disclosed manifolds for use with gas enhanced instruments will now be described in detail with reference to the drawings wherein like numerals designate identical or corresponding elements in each of the several views. As is common in the art, the term “proximal” refers to that part or component closer to the user or operator, i.e. surgeon or physician, while the term “distal” refers to that part or component further away from the user.
Referring initially to
Electrosurgical instrument 12 generally includes a housing 18 having an opening 20 at a distal end 22 thereof. The energy provided by energy generator 14 ionizes the gas supplied by actuator assembly 16 such that the ionized gas is propelled out of opening 20 to form an energy stream ES as electrosurgical instrument 12 is used to apply energy to tissue. A flow tube 24 extends between actuator 16 and distal end 22 of housing 18 to conduct the flow of fluids between actuator assembly 16 and electrosurgical instrument 12. Flow tube 24 has a fluid discharge port 26 at a distal end 28 of flow tube 24 which is positioned adjacent opening 20 electrosurgical instrument 12. While not specifically shown, an electrode is provided within electrosurgical instrument adjacent opening 20 so as to ionize the gas flowing through opening 20 and facilitate application of energy to tissue T. Flow tube 24 extends through a proximal end 30 electrosurgical instrument 12 such that a proximal end 32 of flow tube 24 is connected to actuator assembly 16. In this disclosed embodiment, the source of gas may be entirely contained within actuator assembly 16 or may be provided by an external source routed through actuator assembly 16. Additionally, the source of gas may be provided from a manifold associated with actuator assembly 16 or directly with electrosurgical instrument 12 in a manner described in more detail hereinbelow.
Generator 14 is of the type used to provide sources of energy, such as RF energy, to various electrosurgical instruments for use in cutting or coagulating tissue. Particularly useful generators 14 are the types available from ValleyLab—a division of Tyco Healthcare Group LP. Generator 14 is connected to electrosurgical instrument 12 by an energy cable 34. An energy return path 36 extends between generator 14 and a return pad 38. In use, return pad 38 is typically affixed to a portion of a patient to provide a complete flow of energy from generator 14 through electrosurgical instrument 12 to cut or coagulate tissue at a wound W, passed through underlying tissue T and into return pad 38 and thus back through return path 36 to generator 14. A control wire 40 extends between actuator 16 and generator 14 such that the energy provided by generator 14 to electrosurgical instrument 12 is controlled by actuator assembly 16. In some applications, a pressure relief valve 42 may be provided on electrosurgical instrument 10 to purge any built up fluid pressure within flow tube 24 prior to or during surgery.
Referring now to
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As best shown in
In one particular embodiment, manifold 50 is provided with a gas inlet 90 for receipt of a pressurized source of gas. Gas flowing through gas inlet 90 will assist in atomizing any liquid supplied by the various supply sources affixed to connection ports 54, 56, 58 and 60. As shown, by orienting gas inlet 90 at a substantially 90° angle to flow ports 66, 68, 70 and 72, the flow of pressurized gas through gas inlet 90 creates a Venturi effect to assist in drawing the fluids out of various non-pressurized supply sources and atomize the fluids within the gas stream.
Referring to
In this particular embodiment, the connection port by the manifold 50 is in the form of a connection port body 104, which may be integral with manifold 50 or may be a separate part that is threaded or otherwise attached to manifold 50. Connection port body 104 includes a threaded bore 106 that is configured to mate with threaded surface 100 of supply canister 92. Connection port body 104 further includes a needle 108 for piercing septum 102 on supply canister 92. A fluid flow path 110 is provided through connection port body 104 and needle 108 to allow fluids to flow from fluid chamber 96 after septum 102 has been pierced. As noted hereinabove, various control valves are provided on manifold 50 in order to control the flow of fluids out of supply canister 92 and through fluid flow path 110. An O-ring may be provided within connection port body 104 in order to seal septum 102 within connection port body 104.
In use, neck 98 of supply canister 92 is inserted toward connector port body 104 and supply canister 92 is rotated such that threaded surface 100 matingly engages with threaded bore 106 of connector port body 104. Supply canister 92 is continued to be rotated until needle 108 pierces septum 102 and septum 102 engages O-ring 112 to seal supply canister 92 within connection port 104. In this manner, a supply canister 92 is inserted into manifold 50 such that the fluids contained within fluid chamber 96 are available for supply into manifold 50 through the various control valves and thus into electrosurgical instrument 10.
Referring now to
Similar to connection port 104 disclosed hereinabove, connection port 114 also includes a needle 132 defining a fluid flow path 134 to transfer fluids contained within supply canister 116 to manifold 50. An O-ring 136 is provided about needle 132 to seal against septum 124 of supply canister 116. An L-shaped proximal end 138 of connection port 114 supports a driver 144 engagement with supply canister 116 in order to move supply canister 116 into engagement with needle 132. A cam bar 142 is connected to driver 140 at a pivot point 144. An opposed end of cam bar 142 from pivot point 144 defines a handle 146. In order to move cam bar 142, and thus drive driver 140 against supply canister 116, connection port 114 also includes a link 148 affixed the proximal end 138 at a pivot point 150. An opposed end of link 148 is connected to cam bar 142 at a second pivot point 152.
Referring now to
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Referring to
In this embodiment, fluids provided by various supply canisters attached to connection ports 54, 56, 58, and 60 are initially mixed within mixing chamber 64 of manifold 50. As the propellant gas is forced through flow tube 24, the propellant gas moves and mixes with the combination of fluids mixed within mixing chamber 64, as they pass through discharge tube 62 and into second mixing chamber 162.
Referring now to
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Housing 174 of manifold 172 includes a tapered neck 200 to channel individual supply tubes 202, 204, 206 and 208, from respective control valves 192, 194, 196 and 198, through neck 200 to an electrosurgical instrument. As shown, neck 200 is configured to mate with an electrosurgical instrument assembly port 210 of an associated electrosurgical instrument assembly.
Referring now to
Electrosurgical instrument 12 is used in known fashion to cauterize or otherwise treat tissue in known fashion. The various fluids provided by various supply canisters are mixed with the propellant gas within flow tube 24. The propellant gas also serves as an ionizing agent as well as a propellant for fluids provided through the remaining connection ports.
Referring now to
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Various modifications may be made to the embodiments disclosed herein. For example, more or less than the disclose connection ports may be provided for receipt of various fluid supply canisters. Further, the disclose manifolds may be affixed to the electrosurgical instrument assembly at locations other than the actuator or electrosurgical instrument itself. Additionally, the disclose manifolds may be utilized with other surgical instruments other than the disclosed electrosurgical instrument to provide a combination of fluid medicines to tissue during the surgical operations. Therefore, the above description should not be construed as limiting, but merely as exemplifications of particular embodiments. Those skilled in the art will envision other modifications within the scope and spirit of the claims appended hereto.
Claims
1. A fluid supply manifold for use with a surgical instrument, the fluid supply manifold comprising:
- a housing;
- at least two connection ports for receipt of sources of fluid supply; and
- an individual flow port provided on each of the at least two connection ports.
2. The fluid supply manifold as recited in claim 1, wherein the housing defines a mixing chamber in fluid communication with each of the individual flow ports.
3. The fluid supply manifold as recited in claim 2, wherein at least one of the at least two connection ports includes a control valve to regulate the flow of fluid through the housing.
4. The fluid supply manifold as recited in claim 3, wherein the control valve is operated by an actuator associated with a surgical instrument assembly.
5. The fluid supply manifold as recited in claim 2, wherein the housing includes a gas inlet port defined therein, the gas inlet port being in fluid communication with the mixing chamber.
6. The fluid supply manifold as recited in claim 1, wherein at least one of the connection ports includes a needle defining a fluid flow path into the housing, the needle configured to pierce a septum of an associated fluid supply canister.
7. The fluid supply manifold as recited in claim 6, wherein each connection port includes an O-ring seated therein dimensioned to provide a fluid-tight seal with an external fluid supply source.
8. The fluid supply manifold as recited in claim 6, wherein the connection ports are threaded to receive a corresponding thread on a fluid supply source.
9. The fluid supply manifold as recited in claim 6, wherein the external fluid supply source is affixed within the connection port by a press fit such that the needle is forced through a septum of the external fluid supply source.
10. The fluid supply manifold as recited in claim 2, wherein the housing includes a discharge tube in fluid communication with the mixing chamber.
11. The fluid supply manifold as recited in claim 1, wherein each connection port includes a flow tube passing through the housing.
12. The fluid supply manifold as recited in claim 11, further comprising a control valve position intermediate the flow port and the flow tube.
13. The fluid supply manifold as recited in claim 11, wherein the housing includes a neck for connection with an associated flow tube port on a surgical instrument.
14. A fluid supply manifold for use with a surgical instrument, the manifold comprising:
- a housing configured to operably couple the surgical instrument to at least a first source of pressurized gas;
- at least two connection ports configured to receive fluid from a fluid supply; and
- an individual flow port provided on each of the at least two connection ports, wherein the manifold is configured such that release of pressurized gas from the at least first source of pressurized gas draws fluid from the fluid supply.
Type: Application
Filed: Mar 3, 2010
Publication Date: Jun 24, 2010
Applicant:
Inventors: Ronald J. Podhajsky (Boulder, CO), Arlan J. Reschke (Longmont, CO)
Application Number: 12/716,966
International Classification: F16L 41/00 (20060101);