Claims
- 1. A magnetic resonance (MR) system comprising:
(a) an intracavity probe insertable within a cavity of a patient, said intracavity probe having (i) a shaft, (ii) an inflatable balloon connected to an end of said shaft and (iii) a coil loop secured within said inflatable balloon approximate an underside of an anterior surface thereof, said inflatable balloon having said anterior surface thereof conformable to a contour of said cavity and a posterior surface thereof for use in positioning said inflatable balloon within said cavity such that when said inflatable balloon is inflated said posterior surface presses against a wall of said cavity generally opposite a region of interest within said cavity thus forcing said anterior surface of said inflatable balloon against said contour of said cavity thereby bringing said coil loop approximate said region of interest for optimal reception of MR signals therefrom, said coil loop having a plurality of capacitors including:
(A) a first drive capacitor and a second drive capacitor of approximately equal value serially connected within said coil loop and at a junction node thereof forming a virtual ground for electrically balancing and impedance matching said coil loop; and (B) a tuning capacitor serially connected within said coil loop diametrically opposite said junction node of said drive capacitors and having a value selected to resonate said coil loop at an operating frequency of said MR system; (b) an MR scanner for generating at least one of an image and a spectra of said region of interest using said MR signals received by said coil loop from said region of interest; and (c) an interface device having a probe interface circuit for electrically interconnecting said intracavity probe and said MR system, said probe interface circuit having a PIN diode capable of being biased by said MR system so that said coil loop of said intracavity probe can be (i) coupled to a probe input port of said MR system during a receive cycle of said MR system and (ii) decoupled from said probe input port during a transmit cycle of said MR system.
- 2. The MR system of claim 1 wherein said intracavity probe further comprises an output cable for connecting said coil loop to said probe interface circuit, said output cable at one end thereof being connected across one of said drive capacitors and at an other end thereof being connectable across said PIN diode of said interface device.
- 3. The MR system of claim 2 wherein said output cable has an electrical length of n(λ/2)+SL wherein n is an integer, λ is a wavelength of said operating frequency of said MR system, and SL is a supplemental length whose reactance is of a same magnitude as a reactance of one of said drive capacitors.
- 4. The MR system of claim 1 wherein said first and said second drive capacitors each have a value in a range of approximately 62 pF to 82 pF and said tuning capacitor has a value in a range of approximately 12 pF to 15 pF.
- 5. The MR system of claim 1 wherein at least one of said first and said second drive capacitors also functions to match an output impedance of said coil loop with an impedance required by said interface device.
- 6. The MR system of claim 1 wherein said probe interface circuit further includes a preamplifier for providing gain and impedance matching between an anode of said PIN diode and said probe input port of said MR system so that with enhancement of signal-to-noise ratio said MR signals are passed to said probe input port of said MR system.
- 7. The MR system of claim 6 wherein said preamplifier includes:
(a) a GASFET having a gate, a source and a drain; and (b) a series resonant input circuit for coupling said intracavity probe to said gate of said GASFET so as to broaden a frequency response of said coil loop, said series resonant input circuit comprising an input capacitor and an input inductor at a junction of which said gate of said GASFET is connected, said series resonant input circuit during said receive cycle of said MR system for providing an optimum impedance to said GASFET when said coil loop is loaded.
- 8. The MR system of claim 7 wherein said GASFET at said source thereof is connected to a biasing resistor therefor and at said drain thereof is connected to a coupling capacitor and an RF choke; such that when said interface device is connected to said MR system said drain connects to said probe input port via said coupling capacitor and to a DC power source in said MR system via said RF choke.
- 9. The MR system of claim 1 wherein said probe interface circuit further includes:
(a) a probe cable for connecting an output of said probe interface circuit to said probe input port of said MR system; and (b) a cable trap for preventing undesired current from flowing on a shield conductor of said probe cable.
- 10. The MR system of claim 1 wherein said probe interface circuit further comprises:
(a) a probe cable having a shield conductor and a center conductor insulatively disposed therein such that at an end of said probe cable said shield conductor is connected to a cathode of said PIN diode and said center conductor is connected to an anode of said PIN diode, said probe cable having an electrical length of n(λ/2) wherein n is an integer and λ is a wavelength of said operating frequency of said MR system; and (b) a cable trap for preventing undesired current from flowing on said shield conductor of said probe cable.
- 11. The MR system of claim 1 wherein said interface device further includes an array interface circuit for electrically interconnecting a phased array coil system and said MR system, said array interface circuit comprising:
(a) a first series resonant network for conveying MR signals from a first coil of said phased array coil system to a first coil input port of said MR system; (b) a second series resonant network for conveying MR signals from a second coil of said phased array coil system to a second coil input port of said MR system; (c) a pair of ¼ wavelength networks, one of said pair for receiving MR signals from a third coil of said phased array coil system and an other of said pair for receiving MR signals from a fourth coil of said phased array coil system; and (d) a ¼ wavelength combiner for combining such MR signals received from said pair of ¼ wavelength networks and conveying such combined MR signals to a third coil input port of said MR system.
- 12. The MR system of claim 11 wherein said ¼ wavelength combiner is a Wilkinson combiner.
- 13. The MR system of claim 11 wherein each of said first and said second series resonant networks are series resonant at said operating frequency of said MR system to thereby render an electrical length thereof effectively zero.
- 14. The MR system of claim 11 wherein said ¼ wavelength combiner and said ¼ wavelength networks connected thereto provide for such MR signals conveyed therethrough an electrical length of effectively zero at said operating frequency of said MR system.
- 15. An intracavity probe for use with a magnetic resonance (MR) system for obtaining images or spectra of a region of interest within a cavity of a patient, said intracavity probe comprising:
(a) a coil loop for receiving MR signals from said region of interest, said coil loop having a plurality of capacitors therein, said plurality of capacitors including (i) a first drive capacitor and a second drive capacitor of approximately equal value serially connected within said coil loop and at a junction node thereof forming a virtual ground for electrically balancing and impedance matching said coil loop and (ii) a tuning capacitor serially connected within said coil loop diametrically opposite said junction node of said drive capacitors and having a value selected to resonate said coil loop at an operating frequency of said MR system; and (b) an output cable for connecting said coil loop to an interface device for said intracavity probe, said output cable at one end thereof being connected across one of said drive capacitors and at an other end thereof having a plug for connection to said interface device, said output cable having an electrical length of n(λ/2)+SL wherein n is an integer, λ is a wavelength of said operating frequency of said MR system, and SL is a supplemental length whose reactance is of a same magnitude as a reactance of one of said drive capacitors.
- 16. The intracavity probe of claim 15 further comprising:
(a) a flexible shaft having a tip at a distal end thereof, said tip being substantially more flexible than a remainder of said flexible shaft; (b) an inner balloon connected to said distal end of said flexible shaft and enclosing said tip thereof; (c) a non-stretchable material for securing said coil loop to an anterior surface of said inner balloon; and (d) an outer balloon connected to said distal end of said shaft enclosing both said inner balloon and said coil loop secured thereto, said outer balloon for use in positioning said inner balloon within said cavity of said patient; such that said non-stretchable material affects inflation of said inner balloon within said outer balloon to enable said coil loop therein to be positioned approximate said region of interest for optimal reception of said MR signals therefrom.
- 17. The intracavity probe of claim 16 wherein said non-stretchable material focuses inflation of said inner balloon to force a posterior surface of said outer balloon against a wall of said cavity then forcing an anterior surface of said outer balloon against a correspondingly-shaped interior contour of said cavity thereby bringing said coil loop approximate said region of interest for optimal reception of said MR signals therefrom.
- 18. The intracavity probe of claim 16 wherein said outer balloon has an anterior surface for conformably fitting to a correspondingly-shaped interior contour of said cavity.
- 19. The intracavity probe of claim 18 wherein said outer balloon has a posterior surface, opposite said anterior surface thereof, comprising at least a pair of undulating folds.
- 20. The intracavity probe of claim 19 further comprising a means for controlling inflation of said inner balloon, said inflation control means being connected to said flexible shaft through which a gas can be conveyed to inflate and deflate said inner balloon.
- 21. The intracavity probe of claim 20 wherein said inflation control means includes a stop cock for controlling passage of said gas therethrough and release of said gas therefrom.
- 22. The intracavity probe of claim 20 wherein said flexible shaft includes:
(a) a first lumen for interconnecting said inflation control means and said inner balloon; and (b) a second lumen through which said output cable is routed from said coil loop to be made available for connection to said interface device for said intracavity probe.
- 23. The intracavity probe of claim 22 wherein said inflation control means comprises a compressible inflator cuff and a tube therewith connected to said first lumen of said flexible shaft to deliver said gas to said inner balloon upon compression of said inflator cuff.
- 24. The intracavity probe of claim 19 wherein said non-stretchable material focuses inflation of said inner balloon to force said undulating folds of said outer balloon posteriorly against a wall of said cavity then forcing said anterior surface of said outer balloon anteriorly against said correspondingly-shaped interior contour of said cavity thereby bringing said coil loop approximate said region of interest for optimal reception of said MR signals therefrom.
- 25. The intracavity probe of claim 24 wherein said anterior surface of said outer balloon is saddle-shaped and said correspondingly-shaped interior contour of said cavity is a rectal prostatic bulge of said patient.
- 26. The intracavity probe of claim 16 wherein said flexible shaft includes a scale printed on an outer surface thereof.
- 27. The intracavity probe of claim 16 wherein said inner and said outer balloons each comprise a non-paramagnetic, flame retardant, biocompatible medical grade material having low dielectric loss characteristics.
- 28. The intracavity probe of claim 16 further comprising an anti-migration disc attachable to said flexible shaft for preventing unwanted movement of said intracavity probe relative to said cavity of said patient.
- 29. The intracavity probe of claim 28 wherein said anti-migration means is a disc having a semi-spherical shape, said disc defining a slot for allowing said disc to be snapped onto said flexible shaft.
- 30. The intracavity probe of claim 16 further comprising a dilator element slidably mounted on said flexible shaft for dilating an orifice leading to said cavity to allow easy positioning of said intracavity probe within said cavity.
- 31. The intracavity probe of claim 16 wherein said outer balloon further comprises lateral indentations therein on which said coil loop at least partially rests when said outer balloon is uninflated.
- 32. The intracavity probe of claim 15 further comprising:
(a) a flexible shaft; (b) an inflatable balloon connected to a distal end of said flexible shaft, said inflatable balloon having (i) an anterior surface conformable to a correspondingly-shaped interior contour of said cavity and (ii) a posterior surface comprising at least a pair of undulating folds; and (c) said coil loop secured within said inflatable balloon approximate an underside of said anterior surface thereof; such that when said inflatable balloon is inserted into said cavity and inflated said undulating folds thereof press against a wall of said cavity generally opposite said region of interest thus forcing said anterior surface of said inflatable balloon against said correspondingly-shaped interior contour of said cavity thereby bringing said coil loop approximate said region of interest for optimal reception of said MR signals therefrom.
- 33. The intracavity probe of claim 15 wherein said first and said second drive capacitors each have a value in a range of approximately 62 pF to 82 pF and said tuning capacitor has a value in a range of approximately 12 pF to 15 pF.
- 34. The intracavity probe of claim 15 wherein said interface device includes a PIN diode capable of being biased by said MR system so that said coil loop via said output cable can be (i) coupled to a signal processing port of said MR system during a receive cycle of said MR system and (ii) decoupled from said signal processing port during a transmit cycle of said MR system.
- 35. The intracavity probe of claim 34 wherein forward biasing of said PIN diode causes resonance of an inductance of said output cable and a capacitance of one of said drive capacitors to open circuit effectively said coil loop and thereby decouple said intracavity probe from said signal processing port of said MR system during said transmit cycle.
- 36. An interface device for interfacing an intracavity probe with a magnetic resonance (MR) system, said intracavity probe having a output cable for connecting a coil loop of said intracavity probe to said interface device, said interface device comprising:
(a) a PIN diode capable of being biased by said MR system so that said coil loop can be (i) coupled to a probe input port of said MR system during a receive cycle of said MR system and (ii) decoupled from said probe input port during a transmit cycle of said MR system; and (b) a preamplifier for providing gain and impedance matching between an anode of said PIN diode and said probe input port of said MR system so that with enhancement of signal-to-noise ratio said MR signals are passed to said probe input port of said MR system.
- 37. The interface device of claim 36 wherein said preamplifier includes:
(a) a GASFET having a gate, a source and a drain; and (b) a series resonant input circuit for coupling said intracavity probe to said gate of said GASFET so as to broaden a frequency response of said coil loop, said series resonant input circuit comprising an input capacitor and an input inductor at a junction of which said gate of said GASFET is connected, said series resonant input circuit during said receive cycle of said MR system for providing an optimum impedance to said GASFET when said coil loop is loaded.
- 38. The interface device of claim 37 wherein said GASFET at said source thereof is connected to a biasing resistor therefor and at said drain thereof is connected to a coupling capacitor and an RF choke; such that when said interface device is connected to said MR system said drain connects to said probe input port via said coupling capacitor and to a DC power source in said MR system via said RF choke.
- 39. The interface device of claim 36 wherein further including:
(a) a probe cable for connecting an output of said interface device to said probe input port of said MR system; and (b) a cable trap for preventing undesired current from flowing on a shield conductor of said probe cable.
- 40. The interface device of claim 36 further comprising:
(a) a bypass capacitor connected between a ground and a biasing line with which said MR system is able to bias said PIN diode; and (b) an RF choke connected between said anode of said PIN diode and said bypass capacitor.
- 41. The interface device of claim 36 further comprising a preamp protection diode for protecting said preamplifier during said transmit cycle of said MR system.
- 42. The interface device of claim 36 further comprising a circuitry for preventing said MR system from performing a scanning procedure when said intracavity probe is disconnected from said interface device.
- 43. An interface device for interfacing an intracavity probe and a coil system with a magnetic resonance (MR) system, said intracavity probe having a output cable for connecting a coil loop of said intracavity probe to said interface device, said interface device comprising:
(a) a PIN diode for biasing by said MR system so that said coil loop can be (i) coupled to a probe input port of said MR system during a receive cycle of said MR system and (ii) decoupled from said probe input port during a transmit cycle of said MR system; and (b) an array interface circuit for electrically interconnecting said coil system and said MR system, said array interface circuit comprising:
(i) a first series resonant network for conveying MR signals from a first coil of said coil system to a first coil input port of said MR system; (ii) a second series resonant network for conveying MR signals from a second coil of said coil system to a second coil input port of said MR system; (iii) a pair of ¼ wavelength networks, one of said pair for receiving MR signals from a third coil of said coil system and an other of said pair for receiving MR signals from a fourth coil of said coil system; and (iv) a ¼ wavelength combiner for combining such MR signals received from said pair of ¼ wavelength networks and conveying such combined MR signals to a third coil input port of said MR system.
- 44. The interface device of claim 43 wherein said ¼ wavelength combiner is a Wilkinson combiner.
- 45. The interface device of claim 43 wherein each of said first and said second series resonant networks are series resonant at said operating frequency of said MR system to thereby render an electrical length thereof effectively zero.
- 46. The interface device of claim 43 wherein said ¼ wavelength combiner and said ¼ wavelength networks connected thereto provide for such MR signals conveyed therethrough an electrical length of effectively zero at said operating frequency of said MR system.
- 47. The interface device of claim 43 further including:
(a) a probe cable having a shield conductor and a center conductor insulatively disposed therein such that at an end of said probe cable said shield conductor is connected to a cathode of said PIN diode and said center conductor is connected to an anode of said PIN diode, said probe cable having an electrical length of n(λ/2) wherein n is an integer and λ is a wavelength of said operating frequency of said MR system; and (b) a cable trap for preventing undesired current from flowing on said shield conductor of said probe cable.
- 48. The interface device of claim 43 further comprising a circuitry for preventing said MR system from performing a scanning procedure when said intracavity probe is disconnected from said interface device.
- 49. A method of obtaining images or spectra of a region of interest within a cavity of a patient using a magnetic resonance (MR) system, said method comprising the steps of:
(a) providing an intracavity probe having (i) a flexible shaft, (ii) an inflatable balloon and (iii) a coil loop, said inflatable balloon being connected to an end of said flexible shaft and having an anterior surface conformable to a contour of said cavity and a posterior surface comprising at least a pair of undulating folds, said coil loop being secured within said inflatable balloon approximate an underside of said anterior surface thereof and being capable of receiving MR signals from said region of interest, said coil loop having a plurality of capacitors including:
(A) a first drive capacitor and a second drive capacitor of approximately equal value serially connected within said coil loop and at a junction node thereof forming a virtual ground for electrically balancing and impedance matching said coil loop; and (B) a tuning capacitor serially connected within said coil loop diametrically opposite said junction node of said drive capacitors and having a value selected to resonate said coil loop at an operating frequency of said MR system; (b) providing an output cable for connecting said coil loop to an external circuit with which said intracavity probe is connected to said MR system; (c) inserting said intracavity probe into a position within said cavity of said patient so that said anterior surface of said inflatable balloon is in proximity to said region of interest; (d) inflating said inflatable balloon and thereby force said undulating folds to unfold against a wall of said cavity generally opposite said region of interest thus forcing said anterior surface of said inflatable balloon against said contour of said cavity and securely positioning said coil loop approximate said region of interest for optimal reception of said MR signals therefrom; (e) inducing said region of interest to emit said MR signals; (f) using said coil loop to sense said MR signals induced within said region of interest; and (g) generating at least one of said images and said spectra of said region of interest using said MR signals received therefrom.
- 50. The method of claim 49 wherein at least one of said first and said second drive capacitors also functions to match an output impedance of said coil loop with an impedance required by said external circuit.
- 51. The method of claim 49 wherein said output cable at one end thereof is connected across one of said drive capacitors and at an other end thereof has a plug for connection to said external circuit, said output cable having an electrical length of n(λ/2)+SL wherein n is an integer, λ is a wavelength of said operating frequency, and SL is a supplemental length whose reactance is of a same magnitude as a reactance of one of said drive capacitors.
- 52. The method of claim 49 wherein said external circuit is an interface device for said intracavity probe.
- 53. A method of making an intracavity probe for use with a magnetic resonance (MR) system with which to obtain images or spectra of a region of interest from within a cavity of a patient, said method comprising the steps of:
(a) choosing a size of a coil loop of said intracavity probe to permit said intracavity probe to be suitable for insertion into said cavity; (b) temporarily inserting a variable capacitor in serial connection within said coil loop; (c) subjecting said coil loop to an operating frequency of said MR system; (d) adjusting said variable capacitor to a resonance value at which said coil loop resonates at said operating frequency whereat a capacitive reactance of said coil loop equals in magnitude an inductive reactance of said coil loop; (e) measuring a quality factor Q of said coil loop when said coil loop is loaded; (f) determining a series resistance RS of said coil loop using said quality factor Q so measured and an inductive reactance of said coil loop when loaded; (g) calculating a matching value for a matching capacitor for said coil loop to match an output impedance of said intracavity probe with an impedance required by an external circuit with which said intracavity probe shall interface; (h) inserting two drive capacitors of said matching value into said coil loop in series with each other to form a junction node whereat said drive capacitors connect, said junction node being connectable to a shield conductor of an output cable, and an opposite node of one of said drive capacitors being connectable to a center conductor of said output cable; (i) selecting a tuning capacitor so that a total capacitance of said coil loop is equal to said resonance value; and (j) replacing said variable capacitor with said tuning capacitor, with said tuning capacitor being serially connected within said coil loop diametrically opposite said junction node of said drive capacitors, said junction node thus forming a virtual ground for electrically balancing said coil loop.
- 54. The method of claim 53 further comprising the steps of:
(a) providing a flexible shaft having a tip at a distal end thereof, said tip being substantially more flexible than a remainder of said flexible shaft; (b) connecting an inner balloon to said distal end of said flexible shaft and enclosing said tip thereof; (c) using a non-stretchable material for securing said coil loop to an anterior surface of said inner balloon; and (d) connecting an outer balloon to said distal end of said shaft enclosing both said inner balloon and said coil loop secured thereto, said outer balloon for use in positioning said inner balloon within said cavity of said patient; such that said non-stretchable material affects inflation of said inner balloon within said outer balloon to enable said coil loop therein to be positioned approximate said region of interest for optimal reception of MR signals therefrom.
- 55. The method of claim 54 wherein said non-stretchable material focuses inflation of said inner balloon to force a posterior surface of said outer balloon against a wall of said cavity then forcing an anterior surface of said outer balloon against a correspondingly-shaped interior contour of said cavity thereby bringing said coil loop approximate said region of interest for optimal reception of said MR signals therefrom.
- 56. The method of claim 54 wherein said outer balloon has an anterior surface for conformably fitting to a correspondingly-shaped interior contour of said cavity.
- 57. The method of claim 56 wherein said outer balloon has a posterior surface, opposite said anterior surface thereof, comprising at least a pair of undulating folds.
- 58. The method of claim 57 further comprising the step of providing a means for controlling inflation of said inner balloon, said inflation control means being connected to said flexible shaft through which a gas can be conveyed to inflate and deflate said inner balloon.
- 59. The method of claim 58 wherein said inflation control means includes a stop cock for controlling passage of said gas therethrough and release of said gas therefrom.
- 60. The method of claim 58 wherein said flexible shaft includes:
(a) a first lumen for interconnecting said inflation control means and said inner balloon; and (b) a second lumen through which said output cable is routed from said coil loop to be made available for connection to said external circuit for said intracavity probe.
- 61. The method of claim 54 further comprising the step of providing lateral indentations within said outer balloon on which said coil loop at least partially rests when said outer balloon is uninflated.
- 62. The method of claim 53 further comprising the steps of:
(a) providing a flexible shaft; (b) connecting an inflatable balloon to a distal end of said flexible shaft, said inflatable balloon having an anterior surface conformable to a correspondingly-shaped interior contour of said cavity and a posterior surface comprising at least a pair of undulating folds; and (c) securing said coil loop within said inflatable balloon approximate an underside of said anterior surface thereof; such that when said inflatable balloon is inserted into said cavity and inflated said undulating folds thereof press against a wall of said cavity generally opposite said region of interest thus forcing said anterior surface of said inflatable balloon against said correspondingly-shaped interior contour of said cavity thereby bringing said coil loop approximate said region of interest for optimal reception of MR signals therefrom.
- 63. The method of claim 53 wherein said operating frequency is appropriate for said MR system having a 3 Tesla main magnet, and first and said second drive capacitors each have a value in a range of approximately 62 pF to 82 pF and said tuning capacitor has a value in a range of approximately 12 pF to 15 pF.
- 64. The method of claim 53 wherein said external circuit is an interface device for said intracavity probe.
- 65. The method of claim 53 further comprising the step of providing an output cable connected at one end thereof across one of said drive capacitors and having at an other end thereof a plug for connection to said external circuit, said output cable having an electrical length of n(λ/2)+SL wherein n is an integer, λ is a wavelength of said operating frequency, and SL is a supplemental length whose reactance is of a same magnitude as a reactance of one of said drive capacitors.
- 66. An intracavity probe for use with a magnetic resonance (MR) system for obtaining images or spectra of a region of interest within a cavity of a patient, said intracavity probe comprising:
(a) a coil loop for receiving MR signals from said region of interest, said coil loop having a plurality of capacitors therein, said plurality of capacitors including (i) a first drive capacitor and a second drive capacitor of approximately equal value serially connected within said coil loop and at a junction node thereof forming a virtual ground for electrically balancing and impedance matching said coil loop and (ii) a tuning capacitor serially connected within said coil loop diametrically opposite said junction node of said drive capacitors and having a value selected to resonate said coil loop at an operating frequency of said MR system; and (b) an output cable for connecting said coil loop to an interface device for said intracavity probe, said output cable at one end thereof being connected across one of said drive capacitors and at a proximal end thereof being connectable to said interface device, said output cable having an electrical length of n(λ/2) wherein n is an integer and λ is a wavelength of said operating frequency of said MR system.
- 67. The intracavity probe of claim 66 wherein said electrical length of said output cable also includes a supplemental length, SL, so that a reactance thereof is of a same magnitude as a reactance of one of said drive capacitors.
- 68. The intracavity probe of claim 67 wherein at least two of said coil loops are arranged in a phased array configuration over said region of interest.
- 69. The intracavity probe of claim 68 wherein said at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 70. The intracavity probe of claim 67 wherein at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 71. The intracavity probe of claim 66 wherein said output cable is balanced with first and second center conductors of said output cable connected across said first and said second drive capacitors, respectively, of said coil loop and a shield conductor of said output cable connected to said junction node of said coil loop.
- 72. The intracavity probe of claim 66 wherein at least two of said coil loops are arranged in a phased array configuration over said region of interest.
- 73. The intracavity probe of claim 72 wherein said at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 74. The intracavity probe of claim 66 wherein at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 75. An intracavity probe for use with a magnetic resonance (MR) system for obtaining images or spectra of a region of interest within a cavity of a patient, said intracavity probe comprising:
(a) a coil loop for receiving MR signals from said region of interest, said coil loop having a plurality of capacitors serially connected therein, said plurality of capacitors including (i) a drive capacitor for electrically balancing and impedance matching said coil loop and (ii) a tuning capacitor positioned diametrically opposite said drive capacitor and having a value selected to resonate said coil loop at an operating frequency of said MR system; and (b) an output cable for connecting said coil loop to an interface device for said intracavity probe, said output cable at one end thereof being connected across said drive capacitor and at a proximal end thereof being connectable to said interface device, said output cable having an electrical length of n(λ/2) wherein n is an integer and λ is a wavelength of said operating frequency of said MR system.
- 76. The intracavity probe of claim 75 wherein said electrical length of said output cable also includes a supplemental length, SL, so that a reactance thereof is of a same magnitude as a reactance of said drive capacitor.
- 77. The intracavity probe of claim 76 wherein at least two of said coil loops are arranged in a phased array configuration over said region of interest.
- 78. The intracavity probe of claim 77 wherein said at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 79. The intracavity probe of claim 76 wherein at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 80. The intracavity probe of claim 75 wherein said output cable is balanced with first and second center conductors of said output cable connected across said drive capacitor and a shield conductor of said output cable connected to ground.
- 81. The intracavity probe of claim 75 wherein at least two of said coil loops are arranged in a phased array configuration over said region of interest.
- 82. The intracavity probe of claim 81 wherein said at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 83. The intracavity probe of claim 75 wherein at least two of said coil loops are oriented cooperatively to provide quadrature coverage of said region of interest.
- 84. An interface device for interfacing an intracavity probe with a magnetic resonance (MR) system, said intracavity probe having a output cable for connecting a coil loop of said intracavity probe to said interface device, said interface device comprising:
(a) an input socket to which a plug of said output cable is connectable; (b) a PIN diode connected across said input socket with an electrical length from an input of said input socket to said PIN diode having a reactance equal in magnitude to a reactance of a drive capacitor of said coil loop, said PIN diode for biasing by said MR system so that said coil loop can be (i) coupled to a probe input port of said MR system during a receive cycle of said MR system and (ii) decoupled from said probe input port during a transmit cycle of said MR system; and (c) a preamplifier for providing gain and impedance matching between an anode of said PIN diode and said probe input port of said MR system so that with enhancement of signal-to-noise ratio said MR signals are passed to said probe input port of said MR system.
- 85. An interface device for interfacing an intracavity probe and a coil system with a magnetic resonance (MR) system, said intracavity probe having a output cable for connecting a coil loop of said intracavity probe to said interface device, said interface device comprising:
(a) an input socket to which a plug of said output cable is connectable; (b) a PIN diode connected across said input socket with an electrical length from an input of said input socket to said PIN diode having a reactance equal in magnitude to a reactance of a drive capacitor of said coil loop, said PIN diode for biasing by said MR system so that said coil loop can be (i) coupled to a probe input port of said MR system during a receive cycle of said MR system and (ii) decoupled from said probe input port during a transmit cycle of said MR system; and (c) an array interface circuit for electrically interconnecting said coil system and said MR system, said array interface circuit comprising:
(i) a first series resonant network for conveying MR signals from a first coil of said coil system to a first coil input port of said MR system; (ii) a second series resonant network for conveying MR signals from a second coil of said coil system to a second coil input port of said MR system; (iii) a pair of ¼ wavelength networks, one of said pair for receiving MR signals from a third coil of said coil system and an other of said pair for receiving MR signals from a fourth coil of said coil system; and (iv) a ¼ wavelength combiner for combining such MR signals received from said pair of ¼ wavelength networks and conveying such combined MR signals to a third coil input port of said MR system.
CROSS-REFERENCE TO RELATED APPLICATION(S)
[0001] This application claims the benefit of U.S. Provisional Applications 60/429,257 and 60/381,727, titled System And Method Of Obtaining Images And Spectra Of Intracavity Structures Using 3.0 Tesla Magnetic Resonance Systems and 3.0 Tesla Endorectal Coil And Interface For Single Receiver And Phased Array MR Scanning Of The Prostate And Other Pelvic Anatomy, respectively, filed on Nov. 26, 2002, and May 16, 2002, respectively. These provisional applications have been assigned to the assignee of the invention disclosed below, and their teachings are incorporated into this document by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US03/07774 |
3/13/2003 |
WO |
|
Provisional Applications (2)
|
Number |
Date |
Country |
|
60381727 |
May 2002 |
US |
|
60429257 |
Nov 2002 |
US |