1. Technical Field
The present disclosure relates generally to ablation systems. More particularly, the present disclosure is directed to a system and method for coupling a flexible conduit to ablation probes, liquid supplies, gas supplies, etc.
2. Background of Related Art
Treatment of certain diseases requires destruction of malignant tissue growths (e.g., tumors). It is known that tumor cells denature at elevated temperatures that are slightly lower than temperatures injurious to surrounding healthy cells. Therefore, known treatment methods, such as hyperthermia therapy, heat tumor cells to temperatures above 41° C., while maintaining adjacent healthy cells at lower temperatures to avoid irreversible cell damage. Such methods involve applying electromagnetic radiation to heat tissue and include ablation and coagulation of tissue. In particular, microwave or radiofrequency energy is used to coagulate and/or ablate tissue to denature or kill the cancerous cells. Energy is applied via ablation antenna probes which penetrate tissue to reach tumors. There are several types of ablation probes.
In certain procedures it is desirable to provide liquid to the ablation probe. The liquid may be used as a coolant to reduce the temperature at the tip of the probe in order to maintain the desired ablation temperature. In addition, the liquid may be used a dielectric to provide for dynamic matching of a microwave ablation probe. The liquid is usually provided to the probe via tubing.
According to one aspect of the present disclosure a wedge coupling for coupling a tubing to a nozzle adapter within a housing is disclosed. The wedge coupling includes a base having an opening defined therein and configured to receive a portion of the tubing therethrough and a plurality of prongs disposed on the base and around an inner periphery of the opening. The plurality of prongs are configured to slidably engage the housing and to deflect inwardly to secure the tubing to a nozzle adapter disposed within the housing.
According to another aspect of the present disclosure an ablation probe is disclosed. The probe includes a housing having a funnel-shaped inner surface and a nozzle adapter connected thereto and a tubing configured to slide into the funnel-shaped inner surface and over the nozzle adapter. The probe also includes a wedge coupling having a base with an opening defined therein and configured to receive a portion of the tubing therethrough and a plurality of prongs disposed on the base and around an inner periphery of the opening. The plurality of prongs are configured to slidably engage the housing and to deflect inwardly to secure the tubing to a nozzle adapter disposed within the housing.
A method for securing a tubing to a housing is also contemplated by the present disclosure. The method includes the steps of inserting a tubing into a wedge coupling that includes a base having an opening defined therein and configured to receive a portion of the tubing therethrough. The coupling also includes a plurality of prongs disposed on the base and around an inner periphery of the opening. The method also includes the step of inserting the tubing with the wedge coupling disposed thereon into a housing having a funnel-shaped inner surface and a nozzle adapter connected thereto, such that the tubing slides into the funnel-shaped inner surface and over the nozzle adapter and the plurality of prongs slidably engage the housing and deflect inwardly thereby securing the tubing to the nozzle adapter.
The above and other aspects, features, and advantages of the present disclosure will become more apparent in light of the following detailed description when taken in conjunction with the accompanying drawings in which:
Particular embodiments of the present disclosure will be described herein below with reference to the accompanying drawings. In the following description, well-known functions or constructions are not described in detail to avoid obscuring the present disclosure in unnecessary detail.
The present disclosure provides for a system and method to couple various types of flexible tubing to input and/or output ports of various ablation apparatuses (e.g., a microwave probe, electrosurgical monopolar electrodes, pump, etc.). In particular, the tubing may be used in cooling systems which circulate cooling liquid through the microwave probe.
Assembly 10 includes a dipole ablation probe assembly. Other antenna assemblies, e.g., monopole or leaky wave antenna assemblies, may also be utilized. Distal portion 22 of radiating portion 12 may include a tapered end 26 that terminates at a tip 28 to allow for insertion into tissue with minimal resistance. In those cases where the radiating portion 12 is inserted into a pre-existing opening, tip 28 may be rounded or flat.
Proximal portion 24 is located proximally of distal portion 22, and junction member 20 is located between both portions such that a compressive force is applied by distal and proximal portions 22, 24 upon junction member 20. Placing distal and proximal portions 22, 24 in a pre-stressed condition prior to insertion into tissue enables assembly 10 to maintain a stiffness that is sufficient to allow for unaided insertion into the tissue while maintaining a minimal antenna diameter, as described in detail below.
Feedline 14 may electrically connect antenna assembly 10 via conduit 16 to generator 30 and usually includes a coaxial cable made of a conductive metal, which may be semi-rigid or flexible. Feedline 14 may also have a variable length from a proximal end of radiating portion 12 to a distal end of conduit 16 ranging between about 1 to 15 inches. The feedline 14 may be constructed of copper, gold, stainless steel or other conductive metals with similar conductivity values. The metals may also be plated with other materials, e.g., other conductive materials, to improve their properties, e.g., to improve conductivity or decrease energy loss, etc.
As shown in
The cooling fluid may be pumped using positive pressure through inflow tubing 17; alternatively, negative pressure may also be used to draw the fluid out of the region through outflow tubing 19. Negative pressure through outflow tubing 19 may be utilized either alone or in conjunction with positive pressure through inflow tubing 17. Alternatively, positive pressure through inflow tubing 17 may be utilized either alone or in conjunction with negative pressure through outflow tubing 19. In pumping the cooling fluid, the cooling fluid may be passed at a constant and uniform flow rate. In another variation, the flow may be intermittent such that a volume of cooling fluid may be pumped into the radiating portion 12 and allowed to warm up by absorbing heat from the antenna. Once the temperature of the fluid reaches a predetermined level below temperatures where thermal damage to tissue occurs, the warmed fluid may be removed and displaced by additional cooling fluids. Temperature sensors (such as thermistors, thermocouples, etc.) may be incorporated within or upon radiating portion 12 to sense the fluid and/or outer jacket temperatures. The system may be configured to automatically pump additional cooling fluid from the supply tank 41 once the sensed temperature reaches the predetermined level or it may be configured to notify the user via, e.g., an audible or visual alarm.
The cooling fluid used may vary depending upon desired cooling rates and the desired tissue impedance matching properties. Biocompatible fluids may be included which have sufficient specific heat values for absorbing heat generated by radio frequency ablation probes, e.g., liquids including, but not limited to, water, saline, liquid chlorodifluoromethane, etc. In another variation, gases (such as nitrous oxide, nitrogen, carbon dioxide, etc.) may also be utilized as the cooling fluid. For instance, an aperture within the radiating portion 12 may be configured to take advantage of the cooling effects from the Joule-Thompson effect, in which case a gas, e.g., nitrous oxide, may be passed through the aperture to expand and cool the radiating portion 12. In yet another variation, a combination of liquids and/or gases, as mentioned above, may be utilized as the cooling medium.
Antenna cooling assembly 100 includes a cooling handle assembly 102 and an elongate outer jacket 108 extending from handle assembly 102. Outer jacket 108 may extend and terminate at tip 110, which may be tapered to a sharpened point to facilitate insertion into and manipulation within tissue, if necessary. Ablation probe 104 may be positioned within handle assembly 102 such that the radiating portion 106 of antenna 104 extends distally into outer jacket 108 towards tip 110. Inflow tubing 17 may extend into a proximal end of handle body 112 and distally into a portion of outer jacket 108. Inflow tubing 17 may also extend from within handle body 112 such that the distal ends of inflow tubing 17 and outflow tubing 19 are in fluid communication with one another, as described in further detail below.
As shown, handle body 112 may be comprised of proximal handle hub 122, which encloses a proximal end of antenna 104, and distal handle hub 124, which may extend distally into outer jacket 108. Proximal handle hub 122 and distal handle hub 124 may each be configured to physically interfit with one another at hub interface 130 to form a fluid tight seal. Accordingly, proximal handle hub 122 may be configured to be received and secured within a correspondingly configured distal handle hub 124 (seen in
The distal ends of inflow tubing 17 and outflow tubing 19 may be positioned within handle body 112 such that fluid is pumped into handle body 112 via the pump 40 through inflow tubing 17. Fluid entering handle body 112 may come into direct contact with at least a portion of the shaft of antenna 104 to allow for convective cooling of the antenna shaft to occur. The fluid may be allowed to exit handle body 112 via inflow outflow tubing 19. In one embodiment, the outer jacket 108 may remain in direct fluid communication with inflow tubing 17 and outflow tubing 19 such that fluid contacts the antenna 104 directly along a portion of the length, or a majority of the length, or the entire length of antenna 104. Thus, the cooling assembly 100 is effective in cooling the antenna 104 directly rather than cooling the tissue surrounding the antenna 104, although the surrounding tissue may also be conductively cooled via assembly 100.
The inflow and outflow tubing 17 and 19 are inserted into their respective nozzle adapters 200. The inflow and outflow tubing 17 and 19 are secured to the adapters 200 by a wedge coupling 202 which is shown in
With reference to
The nozzle adapter 202 is connected to an inner surface 216 of the housing 201 via a housing base 214. The outer surface 218 of the base 214 includes troughs 220 at the point where the adapter 202 and the inner surface 216 meet the base 214. In one embodiment, when the tubing 17 is inserted into housing 201, the pressure applied to the tubing 17 by the wedge coupling 202 forces the edges of the tubing 17 at a distal end thereof to push into the base 214. This, in turn, results in the tubing 17 separating from the adapter 202. The troughs 220 provide room for the edges of the tubing 17 to spread when the tubing 17 is pushed into the housing 201 thereby relieving the pressure. This provides for a secure seal between the tubing 17 and the adapter 202.
With reference to
With reference to
The wedge coupling 202 is secured to the housing 201 to prevent the wedge coupling 202 from sliding out due to the deflection of the prongs 206 by the housing 201. As shown in
The described embodiments of the present disclosure are intended to be illustrative rather than restrictive, and are not intended to represent every embodiment of the present disclosure. Various modifications and variations can be made without departing from the spirit or scope of the disclosure as set forth in the following claims both literally and in equivalents recognized in law.
This application claims the benefit of priority to U.S. Provisional Application Ser. No. 60/990,542 entitled “WEDGE COUPLING” filed Nov. 27, 2007 by Arnold V. DeCarlo, which is incorporated by reference herein.
| Number | Name | Date | Kind |
|---|---|---|---|
| 1911229 | Gleim | May 1933 | A |
| 2874981 | Sherwood | Feb 1959 | A |
| 3189370 | Marshail | Jun 1965 | A |
| 3195933 | Jacobs | Jul 1965 | A |
| 3631363 | Miller | Dec 1971 | A |
| 3942528 | Loeser | Mar 1976 | A |
| 4253686 | Aitken et al. | Mar 1981 | A |
| 4397313 | Vaguine | Aug 1983 | A |
| 4435174 | Redmond et al. | Mar 1984 | A |
| D273993 | Schulte et al. | May 1984 | S |
| 4462412 | Turner | Jul 1984 | A |
| 4508374 | Kantor | Apr 1985 | A |
| 4572190 | Azam et al. | Feb 1986 | A |
| 4645492 | Weeks | Feb 1987 | A |
| 4798215 | Turner | Jan 1989 | A |
| 4802864 | Michaels et al. | Feb 1989 | A |
| 5097844 | Turner | Mar 1992 | A |
| D350201 | Hirsch et al. | Aug 1994 | S |
| 5354282 | Bierman | Oct 1994 | A |
| 5388873 | Enayati | Feb 1995 | A |
| 5417210 | Funda et al. | May 1995 | A |
| 5456671 | Bierman | Oct 1995 | A |
| 5578013 | Bierman | Nov 1996 | A |
| 5640476 | Womack et al. | Jun 1997 | A |
| 5672847 | Piatt | Sep 1997 | A |
| 5690616 | Mogg | Nov 1997 | A |
| 5702371 | Bierman | Dec 1997 | A |
| 5710851 | Walter et al. | Jan 1998 | A |
| 5860952 | Quinn | Jan 1999 | A |
| 5890926 | Pauza et al. | Apr 1999 | A |
| 5910128 | Quinn | Jun 1999 | A |
| 5916199 | Miles | Jun 1999 | A |
| 5947931 | Bierman | Sep 1999 | A |
| 6001081 | Collen | Dec 1999 | A |
| 6013875 | Fridenberg et al. | Jan 2000 | A |
| 6031375 | Atalar et al. | Feb 2000 | A |
| 6036673 | Quinn | Mar 2000 | A |
| 6159198 | Gardeski et al. | Dec 2000 | A |
| 6375606 | Garibaldi et al. | Apr 2002 | B1 |
| 6427953 | Dickens | Aug 2002 | B1 |
| 6428515 | Bierman et al. | Aug 2002 | B1 |
| 6477770 | Dickens | Nov 2002 | B1 |
| 6544247 | Gardeski et al. | Apr 2003 | B1 |
| 6554489 | Kent et al. | Apr 2003 | B2 |
| 6603994 | Wallace et al. | Aug 2003 | B2 |
| 6634801 | Waldron et al. | Oct 2003 | B1 |
| 6695490 | Shirakawa et al. | Feb 2004 | B2 |
| 6725080 | Melkent et al. | Apr 2004 | B2 |
| 6808315 | Asada | Oct 2004 | B2 |
| 6817780 | Ngo | Nov 2004 | B2 |
| 6878136 | Fleury et al. | Apr 2005 | B2 |
| 6918894 | Fleury et al. | Jul 2005 | B2 |
| 6932515 | Ngo | Aug 2005 | B2 |
| D525359 | Stephens | Jul 2006 | S |
| 7198066 | Kagenow | Apr 2007 | B2 |
| D543277 | White | May 2007 | S |
| 7229051 | Mailhot, Jr. | Jun 2007 | B2 |
| 7270351 | Chelchowski et al. | Sep 2007 | B2 |
| 7312407 | Case | Dec 2007 | B2 |
| 7354421 | Bierman | Apr 2008 | B2 |
| 7439736 | Meaney et al. | Oct 2008 | B2 |
| 7467015 | Van der Weide | Dec 2008 | B2 |
| 7565207 | Turner et al. | Jul 2009 | B2 |
| 20020022836 | Goble et al. | Feb 2002 | A1 |
| 20040097805 | Verard et al. | May 2004 | A1 |
| 20040195831 | Ohya | Oct 2004 | A1 |
| 20040239110 | Pedersen et al. | Dec 2004 | A1 |
| 20040242992 | Hareyama | Dec 2004 | A1 |
| 20060264911 | Nelson | Nov 2006 | A1 |
| Number | Date | Country |
|---|---|---|
| 390937 | Mar 1924 | DE |
| 1099658 | Feb 1961 | DE |
| 1139927 | Nov 1962 | DE |
| 1149832 | Jun 1963 | DE |
| 1439302 | Jan 1969 | DE |
| 2439587 | Feb 1975 | DE |
| 2455174 | May 1975 | DE |
| 2407559 | Aug 1975 | DE |
| 2415263 | Oct 1975 | DE |
| 2429021 | Jan 1976 | DE |
| 2460481 | Jun 1976 | DE |
| 2602517 | Jul 1976 | DE |
| 2504280 | Aug 1976 | DE |
| 2627679 | Jan 1977 | DE |
| 2540968 | Mar 1977 | DE |
| 2820908 | Nov 1978 | DE |
| 2803275 | Aug 1979 | DE |
| 2823291 | Nov 1979 | DE |
| 2946728 | May 1981 | DE |
| 3143421 | May 1982 | DE |
| 3045996 | Jul 1982 | DE |
| 3120102 | Dec 1982 | DE |
| 3510586 | Oct 1986 | DE |
| 3604823 | Aug 1987 | DE |
| 8712328 | Mar 1988 | DE |
| 3711511 | Jun 1988 | DE |
| 3904558 | Aug 1990 | DE |
| 3942998 | Jul 1991 | DE |
| 4238263 | May 1993 | DE |
| 4303882 | Aug 1994 | DE |
| 4339049 | May 1995 | DE |
| 29616210 | Jan 1997 | DE |
| 19608716 | Apr 1997 | DE |
| 19751106 | May 1998 | DE |
| 19717411 | Nov 1998 | DE |
| 19751108 | May 1999 | DE |
| 19801173 | Jul 1999 | DE |
| 19848540 | May 2000 | DE |
| 10224154 | Dec 2003 | DE |
| 10328514 | Mar 2005 | DE |
| 102004022206 | Dec 2005 | DE |
| 202005015147 | Mar 2006 | DE |
| 0 246 350 | Nov 1987 | EP |
| 0 481 685 | Apr 1992 | EP |
| 0 521 264 | Jan 1993 | EP |
| 0 541 930 | May 1993 | EP |
| 0 556 705 | Aug 1993 | EP |
| 0 558 429 | Sep 1993 | EP |
| 0 572 131 | Dec 1993 | EP |
| 0 836 868 | Apr 1998 | EP |
| 1 159 926 | May 2001 | EP |
| 1 278 007 | Jan 2003 | EP |
| 1 810 627 | Jul 2007 | EP |
| 179607 | Nov 1906 | FR |
| 1 275 415 | Sep 1960 | FR |
| 1 347 865 | Nov 1963 | FR |
| 2 276 027 | Jun 1974 | FR |
| 2 235 669 | Jan 1975 | FR |
| 2 313 708 | Dec 1976 | FR |
| 2 502 935 | Oct 1982 | FR |
| 2 517 953 | Jun 1983 | FR |
| 2 573 301 | Nov 1984 | FR |
| 2 862 813 | May 2005 | FR |
| 2 864 439 | Jul 2005 | FR |
| 5-5106 | Jan 1993 | JP |
| 05-40112 | Feb 1993 | JP |
| 06343644 | Dec 1994 | JP |
| 07265328 | Oct 1995 | JP |
| 08252263 | Oct 1996 | JP |
| 09010223 | Jan 1997 | JP |
| 11244298 | Sep 1999 | JP |
| 2000342599 | Dec 2000 | JP |
| 2000350732 | Dec 2000 | JP |
| 2001008944 | Jan 2001 | JP |
| 2001029356 | Feb 2001 | JP |
| 2001128990 | May 2001 | JP |
| 166452 | Nov 1964 | SU |
| 401367 | Nov 1974 | SU |
| 727201 | Apr 1980 | SU |
| WO9741924 | Nov 1997 | WO |
| WO9743971 | Nov 1997 | WO |
| WO0048672 | Aug 2000 | WO |
| WO0051513 | Sep 2000 | WO |
| WO0101847 | Jan 2001 | WO |
| WO0174252 | Oct 2001 | WO |
| WO0245790 | Jun 2002 | WO |
| WO02061880 | Aug 2002 | WO |
| WO2004112628 | Dec 2004 | WO |
| WO2005016119 | Feb 2005 | WO |
| Entry |
|---|
| Esterline Product Literature, “Light Key: Visualize a Virtual Keyboard. One With No Moving Parts”, Nov. 1, 2003; 4 pages. |
| H. Schwarzmaier et al., “Magnetic Resonance Imaging of Microwave Induced Tissue Heating” Dept. of Laser Medicine & Dept. of Diagnostic Radiology; Heinrich-Heine-University, Duesseldorf, Germany; Dec. 8, 1994; pp. 729-731. |
| European Search Report EP 08011282 dated Aug. 14, 2009. |
| European Search Report EP 04778192.7 dated Jul. 1, 2009. |
| European Search Report EP 05810523 dated Jan. 29, 2009. |
| European Search Report EP 08011705 dated Aug. 20, 2009. |
| European Search Report EP 08012829.1 dated Oct. 29, 2008. |
| European Search Report EP 08019920.1 dated Mar. 27, 2009. |
| European Search Report EP 08169973.8 dated Apr. 6, 2009. |
| European Search Report EP 09156861.8 dated Aug. 4, 2009. |
| European Search Report EP 09161502.1 dated Sep. 2, 2009. |
| European Search Report EP 09166708 dated Oct. 15, 2009. |
| International Search Report PCT/US05/36168 dated Aug. 28, 2006. |
| International Search Report PCT/US08/052460 dated Apr. 24, 2008. |
| International Search Report PCT/US09/31658 dated Mar. 11, 2009. |
| U.S. Appl. No. 08/483,742, filed Jun. 7, 1995. |
| U.S. Appl. No. 08/136,098, filed Oct. 14, 1993. |
| U.S. Appl. No. 09/195,118, filed Nov. 18, 1998. |
| U.S. Appl. No. 10/244,346, filed Sep. 16, 2002. |
| U.S. Appl. No. 11/053,987, filed Feb. 8, 2005. |
| U.S. Appl. No. 12/023,606, filed Jan. 31, 2008. |
| U.S. Appl. No. 12/129,482, filed May 29, 2008. |
| U.S. Appl. No. 12/135,425, filed Jun. 9, 2008. |
| U.S. Appl. No. 12/135,690, filed Jun. 9, 2008. |
| U.S. Appl. No. 12/147,093, filed Jun. 26, 2008. |
| U.S. Appl. No. 12/181,504, filed Jul. 29, 2008. |
| U.S. Appl. No. 12/184,556, filed Aug. 1, 2008. |
| U.S. Appl. No. 12/194,254, filed Aug. 19, 2008. |
| U.S. Appl. No. 12/197,601, filed Aug. 25, 2008. |
| U.S. Appl. No. 12/197,405, filed Aug. 25, 2008. |
| U.S. Appl. No. 12/197,473, filed Aug. 25, 2008. |
| U.S. Appl. No. 12/199,935, filed Aug. 28, 2008. |
| U.S. Appl. No. 12/203,474, filed Sep. 3, 2008. |
| U.S. Appl. No. 12/236,686, filed Sep. 24, 2008. |
| U.S. Appl. No. 12/244,850, filed Oct. 3, 2008. |
| U.S. Appl. No. 12/250,110, filed Oct. 13, 2008. |
| U.S. Appl. No. 12/250,171, filed Oct. 13, 2008. |
| U.S. Appl. No. 12/253,457, filed Oct. 17, 2008. |
| U.S. Appl. No. 12/277,951, filed Nov. 25, 2008. |
| U.S. Appl. No. 12/350,292, filed Jan. 8, 2009. |
| U.S. Appl. No. 12/351,633, filed Jan. 9, 2009. |
| U.S. Appl. No. 12/353,623, filed Jan. 14, 2009. |
| U.S. Appl. No. 12/353,617, filed Jan. 14, 2009. |
| U.S. Appl. No. 12/356,650, filed Jan. 21, 2009. |
| U.S. Appl. No. 12/366,298, filed Feb. 5, 2009. |
| U.S. Appl. No. 12/389,906, filed Feb. 20, 2009. |
| U.S. Appl. No. 12/389,915, filed Feb. 20, 2009. |
| U.S. Appl. No. 12/395,034, filed Feb. 27, 2009. |
| U.S. Appl. No. 12/399,222, filed Mar. 6, 2009. |
| U.S. Appl. No. 12/401,268, filed Mar. 10, 2009. |
| U.S. Appl. No. 12/413,011, filed Mar. 27, 2009. |
| U.S. Appl. No. 12/413,023, filed Mar. 27, 2009. |
| U.S. Appl. No. 12/416,583, filed Apr. 1, 2009. |
| U.S. Appl. No. 12/419,395, filed Apr. 7, 2009. |
| U.S. Appl. No. 12/423,609, filed Apr. 14, 2009. |
| U.S. Appl. No. 12/434,903, filed May 4, 2009. |
| U.S. Appl. No. 12/436,237, filed May 6, 2009. |
| U.S. Appl. No. 12/436,239, filed May 6, 2009. |
| U.S. Appl. No. 12/436,231, filed May 6, 2009. |
| U.S. Appl. No. 12/472,831, filed May 27, 2009. |
| U.S. Appl. No. 12/475,082, filed May 29, 2009. |
| U.S. Appl. No. 12/476,960, filed Jun. 2, 2009. |
| Alexander et al., “Magnetic Resonance Image-Directed Stereotactic Neurosurgery: Use of Image Fusion with Computerized Tomography to Enhance Spatial Accuracy” Journal Neurosurgery, 83 (1995), pp. 271-276. |
| Anderson et al., “A Numerical Study of Rapid Heating for High Temperature Radio Frequency Hyperthermia” International Journal of Bio-Medical Computing, 35 (1994), pp. 297-307. |
| Anonymous. (1999) Auto Suture MIBB Site Marker: Single Use Clip Applier, United States Surgical (Product instructions), 2 pages. |
| Anonymous. (2001) Disposable Chiba Biopsy Needles and Trays, Biopsy and Special Purpose Needles Cook Diagnostic and Interventional Products Catalog (products list), 4 pages. |
| Anonymous. (1987) Homer Mammalok™ Breast Lesion Needle/Wire Localizer, Namic® Angiographic Systems Division, Glens Falls, New York, (Hospital products price list), 4 pages. |
| Anonymous. (1999) MIBB Site Marker, United States Surgical (Sales brochure), 4 pages. |
| Anonymous. Blunt Tubes with Finished Ends. Pointed Cannula, Popper & Sons Biomedical Instrument Division, (Products Price List), one page, Jul. 19, 2000. |
| Anonymous. Ground Cannulae, ISPG, New Milford, CT, (Advertisement) one page, Jul. 19, 2000. |
| B. Levy M.D. et al., “Update on Hysterectomy New Technologies and Techniques” OBG Management, Feb. 2003. |
| B. Levy M.D., “Use of a New Vessel Ligation Device During Vaginal Hysterectomy” FIGO 2000, Washington, D.C. |
| B. Levy M.D. et al., “Randomized Trial of Suture Versus Electrosurgical Bipolar Vessel Sealing in Vaginal Hysterectomy” Obstetrics & Gynecology, vol. 102, No. 1, Jul. 2003. |
| B. F. Mullan et al., (May 1999) “Lung Nodules: Improved Wire for CT-Guided Localization,” Radiology 211:561-565. |
| B. T. Heniford M.D. et al., “Initial Research and Clinical Results with an Electrothermal Bipolar Vessel Sealer” Oct. 1999. |
| Bergdahl et al., “Studies on Coagulation and the Development of an Automatic Computerized Bipolar Coagulator” Journal of Neurosurgery 75:1 (Jul. 1991), pp. 148-151. |
| Bulletin of the American Physical Society, vol. 47, No. 5, Aug. 2002, p. 41. |
| C. F. Gottlieb et al., “Interstitial Microwave Hyperthermia Applicators having Submillimetre Diameters”, Int. J. Hyperthermia, vol. 6, No. 3, pp. 707-714, 1990. |
| C. H. Durney et al., “Antennas for Medical Applications”, Antenna Handbook: Theory Application and Design, p. 24-40, Van Nostrand Reinhold, 1988 New York, V.T. Lo, S.W. Lee. |
| Carbonell et al., “Comparison of the Gyrus PlasmaKinetic Sealer and the Valleylab LigaSure™ Device in the Hemostasis of Small, Medium, and Large-Sized Arteries” Carolinas Laparoscopic and Advanced Surgery Program, Carolinas Medical Center, Charlotte, NC 2003. |
| Carus et al., “Initial Experience With the LigaSure™ Vessel Sealing System in Abdominal Surgery” Innovations That Work, Jun. 2002. |
| Chicharo et al., “A Sliding Goertzel Algorithm” Aug. 1996 DOS pp. 283-297 Signal Processing, Elsevier Science Publishers B.V. Amsterdam, NL, vol. 52, No. 3. |
| Chou, C.K., (1995) “Radiofrequency Hyperthermia in Cancer Therapy,” Chapter 941n Biologic Effects of Nonionizing Electromagnetic Fields, CRC Press, Inc., pp. 1424-1428. |
| Chung et al., “Clinical Experience of Sutureless Closed Hemorrhoidectomy with LigaSure™” Diseases of the Colon & Rectum, vol. 46, No. 1, Jan. 2003. |
| Cosman et al., “Radiofrequency Lesion Generation and its Effect on Tissue Impedence”, Applied Neurophysiology, 51:230-242, 1988. |
| Cosman et al., “Theoretical Aspects of Radiofrequency Lesions in the Dorsal Root Entry Zone” Neurosurgery 15:(1984), pp. 945-950. |
| Cosman et al., “Methods of Making Nervous System Lesions” In William RH, Rengachary SS (eds): Neurosurgery, New York: McGraw-Hill, vol. 111, (1984), pp. 2490-2499. |
| Crawford et al., “Use of the LigaSure™ Vessel Sealing System in Urologic Cancer Surger” Grand Rounds in Urology 1999, vol. 1, Issue 4, pp. 1 0-17. |
| Dulemba et al., “Use of a Bipolar Electrothermal Vessel Sealer in Laparoscopically Assisted Vaginal Hysterectomy” Sales/Product Literature; Jan. 2004. |
| E. David Crawford, “Evaluation of a New Vessel Sealing Device in Urologic Cancer Surgery” Sales/Product Literature 2000. |
| E. David Crawford, “Use of a Novel Vessel Sealing Technology in Management of the Dorsal Veinous Complex” Sales/Product Literature 2000. |
| Esterline, “Light Key Projection Keyboard” 2004 Advanced Input Systems, located at: <http://www.advanced-input.com/lightkey> last visited on Feb. 10, 2005. |
| Geddes et al., “The Measurement of Physiologic Events by Electrical Impedence” Am. J. MI, Jan. Mar. 1964, pp. 16-27. |
| Goldberg et al., “Image-guided Radiofrequency Tumor Ablation: Challenges and Opportunities—Part I”, (2001) J Vasc. Interv. Radiol, vol. 12, pp. 1021-1032. |
| Goldberg et al., “Tissue Ablation with Radiofrequency: Effect of Probe Size, Gauge, Duration, and Temperature on Lesion Volume” Acad Radio (1995) vol. 2, No. 5, pp. 399-404. |
| Heniford et al., “Initial Results with an Electrothermal Bipolar Vessel Sealer” Surgical Endoscopy (2001) 15:799-801. |
| Herman at al., “Laparoscopic Intestinal Resection With the LigaSure™ Vessel Sealing System: A Case Report” Innovations That Work, Feb. 2002. |
| Ian D. McRury et al., The Effect of Ablation Sequence and Duration on Lesion Shape Using Rapidly Pulsed Radiofrequency Energy Through Electrodes, Feb. 2000, Springer Netherlands, vol. 4; No. 1, pp. 307-320. |
| Johnson et al., “Evaluation of a Bipolar Electrothermal Vessel Sealing Device in Hemorrhoidectomy” Sales/Product Literature, Jan. 2004. |
| Jarrett et al., “Use of the LigaSure™ Vessel Sealing System for Peri-Hilar Vessels in Laparoscopic Nephrectomy” Sales/Product Literature 2000. |
| Johnson, “Evaluation of the LigaSure™ Vessel Sealing System in Hemorrhoidectormy” American College of Surgeons (ACS) Clinic La Congress Poster (2000). |
| Johnson, “Use of the LigaSure™ Vessel Sealing System in Bloodless Hemorrhoidectomy” Innovations That Work, Mar. 2000. |
| Joseph G. Andriole M.D. et al., “Biopsy Needle Characteristics Assessed in the Laboratory”, Radiology 148: 659-662, Sep. 1983. |
| Joseph Ortenberg, “LigaSure™ System Used in Laparoscopic 1st and 2nd Stage Orchiopexy” Innovations That Work, Nov. 2002. |
| K. Ogata, Modern Control Engineering, Prentice-HaIl, Englewood Cliffs, N.J., 1970. |
| Kennedy et al., “High-burst-strength, feedback-controlled bipolar vessel sealing” Surgical Endoscopy (1998) 12: 876-878. |
| Kopans, D.B. et al., (Nov. 1985) “Spring Hookwire Breast Lesion LocalizerUse with Rigid-Compression. Mammographic Systems,” Radiology 157(2):537-538. |
| Koyle et al., “Laparoscopic Palomo Varicocele Ligation in Children and Adolescents” Pediatric Endosurgery & Innovative Techniques, vol. 6, No. 1, 2002. |
| LigaSure™ Vessel Sealing System, the Seal of Confidence in General , Gynecologic, Urologic, and Laparaoscopic Surgery, Sales/Product Literature, Jan. 2004. |
| Livraghi.et al., (1995) “Saline-enhanced RF Tissue Ablation in the Treatment of Liver Metastases”, Radiology, pp. 205-210. |
| Lyndon B. Johnson Space Center, Houston, Texas, “Compact Directional Microwave Antenna for Localized Heating,” NASA Tech Briefs, Mar. 2008. |
| M. A. Astrahan, “A Localized Current Field Hyperthermia System for Use with 192-Iridium Interstitial Implants” Medical Physics. 9(3), May/Jun. 1982. |
| Magdy F. Iskander et al., “Design Optimization of Interstitial Antennas”, IEEE Transactions on Biomedical Engineering, vol. 36, No. 2, Feb. 1989, pp. 238-246. |
| McGahan et al., (1995) “Percutaneous Ultrasound-guided Radiofrequency Electrocautery Ablation of Prostate Tissue in Dogs”, Acad Radiol, vol. 2, No. 1: pp. 61-65. |
| McLellan et al., “Vessel Sealing for Hemostasis During Pelvic Surgery” Int'l Federation of Gynecology and Obstetrics FIGO World Congress 2000, Washington, DC. |
| MDTECH product literature (Mar. 2000) I'D Wire: product description, 1 page. |
| MDTECH product literature (Dec. 1999) “FlexStrand”: product description, 1 page. |
| Medtrex Brochure “The O.R. Pro 300” 1 page, Sep. 1998. |
| Michael.Choti, “Abdominoperineal Resection with the LigaSure™ Vessel Sealing System and LigaSure™ Atlas 20 cm Open Instrument” Innovations That Work, Jun. 2003. |
| Muller et al., “Extended Left Hemicolectomy Using the LigaSure™ Vessel Sealing System” Innovations That Work. LJ, Sep. 1999. |
| Murakami, R. et al., (1995). “Treatment of Hepatocellular Carcinoma: Value of Percutaneous Microwave Coagulation,” American Journal of Radiology (AJR) 164:1159-1164. |
| Ni Wei et al., “A Signal Processing Method for the Coriolis Mass Flowmeter Based on a Normalized . . . ” Journal of Applied Sciences—Yingyong Kexue Xuebao, Shangha CN, vol. 23, No. 2:(Mar. 2005); pp. 160-184. |
| Ogden, “Goertzel Alternative to the Fourier Transform” Jun. 1993 pp. 485-487 Electronics World; Reed Business Publishing, Sutton, Surrey, BG, vol. 99, No. 9, 1687. |
| Olsson M.D. et al., “Radical Cystectomy in Females” Current Surgical Techniques in Urology, vol. 14, Issue 3, 2001. |
| Organ, L W., “Electrophysiologic Principles of Radiofrequency Lesion Making” Appl. Neurophysiol, vol. 39: pp. 69-76 (1976/77). |
| P.R. Stauffer et al., “Interstitial Heating Technologies”, Thermoradiotheray and Thermochemotherapy (1995) vol. I, Biology, Physiology, Physics, pp. 279-320. |
| Palazzo et al., “Randomized clinical trial of LigaSure™ versus open haemorrhoidectomy” British Journal of Surgery 2002,89,154-157 “Innovations in Electrosurgery” Sales/Product Literature; Dec. 31, 2000. |
| Paul G. Horgan, “A Novel Technique for Parenchymal Division During Hepatectomy” The American Journal of Surgery, vol. 181, No. 3, Oapril 2001, pp. 236-237. |
| Peterson et al., “Comparison of Healing Process Following Ligation with Sutures and Bipolar Vessel Sealing” Surgical Technology International (2001). |
| R. Gennari et al., (Jun. 2000) “Use of Technetium-99m-Labeled Colloid Albumin for Preoperative and Intraoperative Localization of Non palpable Breast Lesions,” American College of Surgeons. 190(6):692-699. |
| Valleylab Brochure, “Reducing Needlestick Injuries in the Operating Room” 1 page, Mar. 2001. |
| Reidenbach, (1995) “First Experimental Results with Special Applicators for High-Frequency Interstitial Thermotherapy”, Society Minimally Invasive Therapy, 4(Suppl 1):40 (Abstr). |
| Richard Wolf Medical Instruments Corp. Brochure, “Kleppinger Bipolar Forceps & Bipolar Generator” 3 pages, Jan. 1989. |
| Rothenberg et al., “Use of the LigaSure™ Vessel Sealing System in Minimally Invasive Surgery in Children” Int'l Pediatric Endosurgery Group (I PEG) 2000. |
| Sayfan et al., “Sutureless Closed Hemorrhoidectomy: A New Technique” Annals of Surgery, vol. 234, No. 1, Jul. 2001, pp. 21-24. |
| Sengupta et al., “Use of a Computer-Controlled Bipolar Diathermy System in Radical Proitatectomies and Other Open Urological Surgery” ANZ Journal of Surgery (2001) 71.9 pp. 538-540. |
| Sigel et al., “The Mechanism of Blood Vessel Closure by High Frequency Electrocoagulation” Surgery Gynecology & Obstetrics, Oct. 1965 pp. 823-831. |
| Solbiati et al., (2001) “Percutaneous Radio-frequency Ablation of Hepatic Metastases from Colorectal Cancer: Long-term Results in 117 Patients”, Radiology, vol. 221, pp. 159-166. |
| Strasberg et al., “Use of a Bipolar Vassel-Sealing Device for Parenchymal Transection Duiing Liver Surgery” Journal of Gastrointestinal Surgery, vol. 6, No. 4, Jul./Aug. 2002 pp. 569-574. |
| Stuart W. Young, Nuclear Magnetic Resonance Imaging—Basic Principles, Raven Press, New York, 1984. |
| Sugita et al., “Bipolar Coagulator with Automatic Thermocontrol” J. Neurosurg., vol. 41, Dec. 1944, pp. 777-779. |
| Sylvain Labonte et al., “Monopole Antennas for Microwave Catheter Ablation”, IEEE Trans. on Microwave Theory and Techniques, vol. 44, No. 10, pp. 1832-1840, Oct. 1995. |
| T. Matsukawa et al., “Percutaneous Microwave Coagulation Therapy in Liver Tumors”, Acta Radiologica, vol. 38, pp. 410-415, 1997. |
| T. Seki et al., (1994) “Ultrasonically Guided Percutaneous Microwave Coagulation Therapy for Small Hepatocellular Carcinoma,” Cancer 74(3):817.825. |
| S. Humphries Jr. et al., “Finite-Element Codes to Model Electrical Heating and Non-Linear Thermal Transport in Biological Media”, Proc. ASME HTD-355, 131 (1997). |
| Urologix, Inc.-Medical Professionals: Targis™ Technology (Date Unknown). “Overcoming the Challenge” located at: <http://www.urologix.com!medicaUtechnology.html > last visited on Apr. 27, 2001, 3 pages. |
| Urrutia et al., (1988). “Retractable-Barb Needle for Breast Lesion Localization: Use in 60 Cases,” Radiology 169(3):845-847. |
| Valleylab Brochure, “Valleylab Electroshield Monitoring System” 2 pages, Nov. 1995. |
| ValleyLab Brochure, “Electosurgery: A Historical Overview”, Innovations in Electrosurgery, 1999. |
| Vallfors et al., “Automatically Controlled Bipolar Electrocoagulation-‘COA-COMP’” Neurosurgical Review 7:2-3 (1984) pp. 187-190. |
| W. Scott Helton, “LigaSure™ Vessel Sealing System: Revolutionary Hemostasis Product for General Surgery” Sales/Product Literature 1999. |
| Wald et al., “Accidental Burns”, JAMA, Aug. 16, 1971, vol. 217, No. 7, pp. 916-921. |
| Walt Boyles, “Instrumentation Reference Book”, 2002, Butterworth-Heinemann, pp. 262-264. |
| European Search Report EP 03721482 dated Feb. 6, 2006. |
| European Search Report EP 04009964 dated Jul. 28, 2004. |
| European Search Report EP 04013772 dated Apr. 11, 2005. |
| European Search Report EP 04015980 dated Nov. 3, 2004. |
| European Search Report EP 04015981.6 dated Oct. 25, 2004. |
| European Search Report EP 04027314 dated Mar. 31, 2005. |
| European Search Report EP 04027479 dated Mar. 17, 2005. |
| European Search Report EP 04027705 dated Feb. 10, 2005. |
| European Search Report EP 04710258 dated Oct. 15, 2004. |
| European Search Report EP 04752343.6 dated Jul. 31, 2007. |
| European Search Report EP 05002027.0 dated May 12, 2005. |
| European Search Report EP 05002769.7 dated Jun. 19, 2006. |
| European Search Report EP 05013463.4 dated Oct. 7, 2005. |
| European Search Report EP 05013895 dated Oct. 21, 2005. |
| European Search Report EP 05014156.3 dated Jan. 4, 2006. |
| European Search Report EP 05016399 dated Jan. 13, 2006. |
| European Search Report EP 05017281 dated Nov. 24, 2005. |
| European Search Report EP 05019130.3 dated Oct. 27, 2005. |
| European Search Report EP 05019882 dated Feb. 16, 2006. |
| European Search Report EP 05020665.5 dated Feb. 27, 2006. |
| European Search Report EP 05020666.3 dated Feb. 27, 2006. |
| European Search Report EP 05021025.1 dated Mar. 13, 2006. |
| European Search Report EP 05021197.8 dated Feb. 20, 2006. |
| European Search Report EP 05021777 dated Feb. 23, 2006. |
| European Search Report EP 05021779.3 dated Feb. 2, 2006. |
| European Search Report EP 05021780.1 dated Feb. 23, 2006. |
| European Search Report EP 05021935 dated Jan. 27, 2006. |
| European Search Report EP 05021936.9 dated Feb. 6, 2006. |
| European Search Report EP 05021937.7 dated Jan. 23, 2006. |
| European Search Report EP 05021939 dated Jan. 27, 2006. |
| European Search Report EP 05021944.3 dated Jan. 25, 2006. |
| European Search Report EP 05022350.2 dated Jan. 30, 2006. |
| European Search Report EP 05023017.6 dated Feb. 24, 2006. |
| European Search Report EP 05025423.4 dated Jan. 19, 2007. |
| European Search Report EP 05025424 dated Jan. 30, 2007. |
| European Search Report EP 06000708.5 dated May 15, 2006. |
| European Search Report EP 06002279.5 dated Mar. 30, 2006. |
| European Search Report EP 06005185.1 dated May 10, 2006. |
| European Search Report EP 06005540 dated Sep. 24, 2007. |
| European Search Report EP 06006717.0 dated Aug. 11, 2006. |
| European Search Report EP 06006961 dated Oct. 22, 2007. |
| European Search Report EP 06006963 dated Jul. 25, 2006. |
| European Search Report EP 06008779.8 dated Jul. 13, 2006. |
| European Search Report EP 06009435 dated Jul. 13, 2006. |
| European Search Report EP 06010499.9 dated Jan. 29, 2008. |
| European Search Report EP 06014461.5 dated Oct. 31, 2006. |
| European Search Report EP 06018206.0 dated Oct. 20, 2006. |
| European Search Report EP 06019768 dated Jan. 17, 2007. |
| European Search Report EP 06020574.7 dated Oct. 2, 2007. |
| European Search Report EP 06020583.8 dated Feb. 7, 2007. |
| European Search Report EP 06020584.6 dated Feb. 1, 2007. |
| European Search Report EP 06020756.0 dated Feb. 16, 2007. |
| European Search Report EP 06022028.2 dated Feb. 13, 2007. |
| European Search Report EP 06023756.7 dated Feb. 21, 2008. |
| European Search Report EP 06024122.1 dated Apr. 16, 2007. |
| European Search Report EP 06024123.9 dated Mar. 6, 2007. |
| European Search Report EP 06025700.3 dated Apr. 12, 2007. |
| European Search Report EP 07000885.9 dated May 15, 2007. |
| European Search Report EP 07001480.8 dated Apr. 19, 2007. |
| European Search Report EP 07001481.6 dated May 2, 2007. |
| European Search Report EP 07001485.7 dated May 23, 2007. |
| European Search Report EP 07001488.1 dated Jun. 5, 2007. |
| European Search Report EP 07001489.9 dated Dec. 20, 2007. |
| European Search Report EP 07001491 dated Jun. 6, 2007. |
| European Search Report EP 07001527.6 dated May 18, 2007. |
| European Search Report EP 07007783.9 dated Aug. 14, 2007. |
| European Search Report EP 07008207.8 dated Sep. 13, 2007. |
| European Search Report EP 07009026.1 dated Oct. 8, 2007. |
| European Search Report EP 07009028 dated Jul. 16, 2007. |
| European Search Report EP 07009029.5 dated Jul. 20, 2007. |
| European Search Report EP 07009321.6 dated Aug. 28, 2007. |
| European Search Report EP 07009322.4 dated Jan. 14, 2008. |
| European Search Report EP 07010672.9 dated Oct. 16, 2007. |
| European Search Report EP 07010673.7 dated Oct. 5, 2007. |
| European Search Report EP 07013779.9 dated Oct. 26, 2007. |
| European Search Report EP 07015191.5 dated Jan. 23, 2007. |
| European Search Report EP 07015601.3 dated Jan. 4, 2007. |
| European Search Report EP 07015602.1 dated Dec. 20, 2007. |
| European Search Report EP 07018375.1 dated Jan. 8, 2008. |
| European Search Report EP 07018821 dated Jan. 14, 2008. |
| European Search Report EP 07019173.9 dated Feb. 12, 2008. |
| European Search Report EP 07019174.7 dated Jan. 29, 2008. |
| European Search Report EP 07019178.8 dated Feb. 12, 2008. |
| European Search Report EP 07020283.3 dated Feb. 5, 2008. |
| European Search Report EP 07253835.8 dated Dec. 20, 2007. |
| European Search Report EP 08001019 dated Sep. 23, 2008. |
| European Search Report EP 08004975 dated Jul. 24, 2008. |
| European Search Report EP 08006731.7 dated Jul. 29, 2008. |
| European Search Report EP 08006733 dated Jul. 7, 2008. |
| European Search Report EP 08006734.1 dated Aug. 18, 2008. |
| European Search Report EP 08006735.8 dated Jan. 8, 2009. |
| European Search Report EP 08015842 dated Dec. 5, 2008. |
| European Search Report EP 98300964.8 dated Dec. 13, 2000. |
| European Search Report EP 98944778 dated Nov. 7, 2000. |
| European Search Report EP 98958575.7 dated Oct. 29, 2002. |
| International Search Report PCT/US01/11218 dated Aug. 14, 2001. |
| International Search Report PCT/US01/11224 dated Nov. 13, 2001. |
| International Search Report PCT/US01/11340 dated Aug. 16, 2001. |
| International Search Report PCT/US01/11420 dated Oct. 16, 2001. |
| International Search Report PCT/US02/01890 dated Jul. 25, 2002. |
| International Search Report PCT/US02/11100 dated Jul. 16, 2002. |
| International Search Report PCT/US03/09483 dated Aug. 13, 2003. |
| International Search Report PCT/US03/22900 dated Dec. 2, 2003. |
| International Search Report PCT/US03/37110 dated Jul. 25, 2005. |
| International Search Report PCT/US03/37111 dated Jul. 28, 2004. |
| International Search Report PCT/US03/37310 dated Aug. 13, 2004. |
| International Search Report PCT/USO4/04685 dated Aug. 27, 2004. |
| International Search Report PCT/US04/13273 dated Dec. 15, 2004. |
| International Search Report PCT/US04/15311 dated Jan. 12, 2004. |
| International Search Report PCT/US98/18640 dated Jan. 29, 1998. |
| International Search Report PCT/US98/23950 dated Jan. 14, 1998. |
| International Search Report PCT/US99/24869 dated Feb. 11, 2000. |
| Esterline Product Literature, “Light Key:Visualize A Virtual Keyboard. One With No Moving Parts”, 2004 Advanced Input Systems, located at: <http://www.advanced-input.com/lightkey>. |
| Number | Date | Country | |
|---|---|---|---|
| 20090138010 A1 | May 2009 | US |
| Number | Date | Country | |
|---|---|---|---|
| 60990542 | Nov 2007 | US |