US2014042154A1PendingUtilityA1

Microwave Application

Assignee: ANGIODYNAMICS INCPriority: Oct 10, 2002Filed: Oct 16, 2013Published: Feb 13, 2014
Est. expiryOct 10, 2022(expired)· nominal 20-yr term from priority
Inventors:Nigel Cronin
A61B 18/18A61B 18/1815H05B 6/80
53
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Claims

Abstract

A microwave applicator comprising a coaxial electrical input ( 4 ) and a waveguide ( 1 ) filled with dielectric ( 2 ), an inner conductor ( 7 ) of the coaxial input extending longitudinally within one end of the waveguide to launch microwaves in the TM 01 mode to travel to the distal end face ( 8 ) of the waveguide so that microwaves are transmitted when the distal end face is contacted by the biological tissue to be treated.

Claims

exact text as granted — not AI-modified
1 . A microwave applicator comprising a coaxial electrical input and a waveguide filled with dielectric, an inner conductor of the coaxial input extending longitudinally within one end of the waveguide to launch microwaves in the TM01 mode to travel to the distal end face of the waveguide so that microwaves are transmitted when the distal end face is contacted by biological tissue to be treated. 
     
     
         2 . A microwave applicator as claimed in  claim 1  in which the inner conductor is axially aligned with the waveguide. 
     
     
         3 . A microwave applicator as claimed in  claim 1  in which the waveguide is a circular waveguide. 
     
     
         4 . A microwave applicator as claimed in  claim 1  in which the distal end face is substantially flat and normal to the axis of the waveguide. 
     
     
         5 . A microwave applicator as claimed in  claim 1  in which the distal end face is fiat or slightly domed and centred on the axis of the waveguide. 
     
     
         6 . A microwave applicator as claimed in  claim 1  in which the distal end face has a polymer coating. 
     
     
         7 . A microwave applicator as claimed in  claim 1  in which the length and diameter of the waveguide, the length of the inner conductor within the waveguide, and the permittivity of the dielectric material are selected so that at the designed operating frequency, the waveguide is in resonance, 
     
     
         8 . A microwave applicator as claimed in  claim 1  in which the waveguide is adapted so that in operation., when the distal end face is in contact with biological tissue to be treated, forwards transmission from the distal end face is enhanced by the relative phase of reflections from the distal end face and the input to the waveguide; and when the distal end face is in air or gas, reflections to the input are enhanced by the relative phase of reflections from the distal end face and the input to the waveguide. 
     
     
         9 . A microwave applicator comprising a waveguide, a coaxial electrical input with an inner conductor extending longitudinally within one end of the waveguide to launch microwaves in the TM01 mode that travel to the distal end of the waveguide and are transmitted into biological tissue to be treated, a diaphragm of low loss dielectric material being provided within the waveguide so as to extend laterally of the waveguide to reflect the microwaves travelling along it, the longitudinal location of the diaphragm being selected in relation to the ends of the waveguide so that the phase of reflections from the diaphragm and said ends serve to reduce or cancel rearward reflections in the coaxial input. 
     
     
         10 . A microwave applicator as claimed in  claim 9  in which the thickness of the diaphragm, and the permittivity of the dielectric material from which it is made are selected to determine the magnitude of the rearward reflection of microwaves from the diaphragm for optimum cancellation of the rearward reflection in the coaxial input. 
     
     
         11 . A microwave applicator as claimed in  claim 9  which is air-filled. 
     
     
         12 . A method of heat treating surface tissue using the microwave applicator of  claim 1  in which the end face of the waveguide is brought into contact with the surface tissue. 
     
     
         13 . A method as claimed in  claim 12  in which the surface tissue is internal tissue and the applicator is inserted into a body for treatment. 
     
     
         14 . A method as claimed in  claim 13  in which the insertion of the applicator is via a Trocar. 
     
     
         15 . A method as claimed in  claim 12  in which the surface tissue is the external skin of the body. 
     
     
         16 . A method of treating a liver in a body comprising providing a microwave applicator having a treatment head at one end capable of emitting microwave radiation from an emitting face, inserting the microwave applicator through an incision into the body positioning the head of the microwave applicator in contact with a surface of the liver with the emitting face adjacent to a region to be treated, and powering the microwave applicator so that the emitting face emits microwave radiation that heats said region to be treated. 
     
     
         17 . A method of treating biological tissue to stop bleeding comprising providing a microwave applicator having a treatment head at one end capable of emitting microwave radiation from an emitting face, positioning the head of the microwave applicator in contact with a surface of the biological tissue to be treated with the emitting face adjacent to bleeding tissue to be treated, and powering the microwave applicator so that the emitting face emits radiation that heats the bleeding tissue to be treated. 
     
     
         18 . A method of treating a skin condition such as psoriasis using a microwave applicator having a microwave emitting window which is brought into contact with, or into close proximity of, skin to be treated and is powered so as to emit microwave radiation and irradiate the skin to be treated.

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