Claims
- 1. A method of characterizing a tissue present in a predetermined location of a body of a subject, the method comprising:
generating mechanical vibrations at a position adjacent to the predetermined location, said mechanical vibrations are at a frequency ranging from 10 Hz to 10 kHz; scanning said frequency of said mechanical vibrations; and measuring a frequency response spectrum from the predetermined location, thereby characterizing the tissue.
- 2. The method of claim 1, wherein the tissue forms a part of an organ.
- 3. The method of claim 1, wherein the tissue forms a part of an internal organ.
- 4. The method of claim 1, wherein the tissue forms a portion of a tumor.
- 5. The method of claim 1, wherein the tissue forms a portion of an internal tumor.
- 6. The method of claim 1, wherein the tissue is a pathological tissue.
- 7. The method of claim 1, wherein the tissue forms a part of, or is associated with, a blood vessel tissue.
- 8. The method of claim 7, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 9. The method of claim 1, wherein the tissue forms a portion of a bone.
- 10. The method of claim 1, wherein the tissue is a stenotic tissue.
- 11. The method of claim 1, wherein said measuring said frequency response spectrum comprises measuring an amplitude as a function of said frequency.
- 12. The method of claim 1, wherein said measuring said frequency response spectrum comprises measuring a phase angle as a function of said frequency.
- 13. The method of claim 1, further comprising calculating at least one mechanical property of the tissue from said frequency response spectrum.
- 14. The method of claim 13, wherein said mechanical property is an elastic constant.
- 15. The method of claim 13, wherein said mechanical property is selected from the group consisting of an elastic modulus, a Poisson's ratio, a shear modulus, a bulk modulus and a first Lamé coefficient.
- 16. The method of claim 1, wherein said position is on a skin of the body.
- 17. The method of claim 1, wherein said position is close to a blood vessel-of-interest.
- 18. The method of claim 17, wherein said blood vessel-of-interest is selected from the group consisting of a carotid, a femoral vessel and an abdominal aorta.
- 19. The method of claim 1, wherein said position is close to a lesion selected from the group consisting of a dermal lesion, a sub-dermal lesion and an internal lesion.
- 20. The method of claim 1, wherein said position is close to a bone.
- 21. The method of claim 1, wherein said position is close to a thorax.
- 22. The method of claim 1, wherein said mechanical vibrations are perpendicular to the body.
- 23. The method of claim 1, further comprising endoscopically inserting an endoscopic device having an imaging device into the subject, and using said imaging device for imaging the subject so as to determine a position of the tissue.
- 24. The method of claim 23, wherein said generating said mechanical vibrations is performed within the subject by said endoscopic device.
- 25. The method of claim 23, wherein said imaging device is selected from the group consisting of an intra vascular ultra sound device, an intra vascular magnetic resonance device and a camera.
- 26. The method of claim 1, wherein said generating said mechanical vibrations is performed such that said mechanical vibrations are inclined to the body, by a predetermined inclination angle.
- 27. The method of claim 26, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 28. The method of claim 26, wherein said step of generating mechanical vibrations is repeated a plurality of times, each time with a different inclination angle.
- 29. The method of claim 1, wherein said step of generating mechanical vibrations is repeated a plurality of times, each time in a different location.
- 30. The method of claim 1, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 31. The method of claim 1, wherein said generating said mechanical vibrations is by a mechanical vibrations generating assembly.
- 32. The method of claim 1, wherein said mechanical vibrations generating assembly is constructed and designed so as to minimize effects of environmental noise.
- 33. The method of claim 31, wherein said mechanical vibrations generating assembly comprises a at least one mechanical linkage device for transferring said mechanical vibrations to the body.
- 34. The method of claim 33, wherein at least one of a size and a natural frequency of said at least one mechanical linkage device is selected so as to increase dynamical interactions between the tissue and said at least one mechanical linkage device.
- 35. The method of claim 33, wherein said at least one mechanical linkage device is characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than said frequency of said mechanical vibrations.
- 36. The method of claim 33, wherein said at least one mechanical linkage device comprises a variable width beam spring.
- 37. The method of claim 33, wherein said at least one mechanical linkage device comprises a strain gage for measuring displacement of said at least one mechanical linkage device.
- 38. The method of claim 33, wherein said at least one mechanical linkage device comprises a proximity sensor for measuring displacement of said at least one mechanical linkage device.
- 39. The method of claim 1, wherein said generating said mechanical vibrations is by transmitting mechanical vibration from a first mechanical linkage device to a second mechanical linkage device via at least one mechanical sensor.
- 40. The method of claim 39, wherein said first and said second mechanical linkage devices are each independently membranes.
- 41. The method of claim 40, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 42. The method of claim 40, wherein said membranes are piezo-polymeric membranes.
- 43. The method of claim 32, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 44. The method of claim 31, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 45. The method of claim 44, further comprising bulging said at least one contact-tip out of an encapsulation of said mechanical vibrations generating assembly so as to touch the tissue.
- 46. The method of claim 44, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 47. The method of claim 44, wherein said at least one contact-tip is sterilizable.
- 48. The method of claim 44, wherein said at least one contact-tip comprises at least one sterilizable cover.
- 49. The method of claim 44, wherein said at least one contact-tip is disposable.
- 50. The method of claim 31, wherein said mechanical vibrations generating assembly comprises a mechanical vibrations generating transducer assembly, said mechanical vibrations generating transducer assembly is operable to convert electrical signals into mechanical motions.
- 51. The method of claim 50, wherein said mechanical vibrations generating transducer assembly is selected from the group consisting of a piezoelectric mechanical vibrations generating transducer assembly, an electric mechanical vibrations generating transducer assembly, an electrostrictive mechanical vibrations generating transducer assembly, a magnetic mechanical vibrations generating transducer assembly, a magnetostrictive mechanical vibrations generating transducer assembly, an electromagnetic mechanical vibrations generating transducer assembly, a micro electro mechanical system (MEMS) vibrating generating transducer assembly and an electrostatic mechanical vibrations generating transducer assembly.
- 52. The method of claim 31, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 53. The method of claim 52, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 54. The method of claim 52, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 55. The method of claim 31, wherein said mechanical vibrations generating assembly comprises a mechanism for isolating said mechanical vibrations generating assembly from environmental vibrations.
- 56. The method of claim 55, wherein said mechanism is operable to independently move in three orthogonal directions.
- 57. The method of claim 55, wherein said mechanism is operable to independently rotate in at least two orthogonal directions.
- 58. The method of claim 31, further comprising transmitting an electrical signal to said mechanical vibrations generating assembly.
- 59. The method of claim 31, wherein said measuring is by receiving an electrical signal transmitted from said mechanical vibrations generating assembly.
- 60. The method of claim 59, further comprising displaying said electrical signal transmitted from said mechanical vibrations generating assembly on a display.
- 61. The method of claim 60, wherein said display is selected from the group consisting of an oscilloscope, a spectrum analyzer, a processor display and a printer.
- 62. The method of claim 1, further comprising classifying said frequency response spectrum.
- 63. The method of claim 62, wherein said classifying said frequency response spectrum comprises:
(a) identifying resonance peak maxima of said frequency response spectrum; (b) from said resonance peak maxima, determining a first type of maximum being indicative of a first type of tissue, and a second type of maximum being indicative of a second type of tissue; and (c) using said first type of maximum and said second type of maximum to classify said first and said types of tissue.
- 64. The method of claim 63, wherein said step (c) comprises calculating a ratio between said first type of maximum and said second type of maximum.
- 65. The method of claim 63, further comprising averaging said resonance peak maxima.
- 66. The method of claim 63, wherein said first and said second types of maxima are determined by absolute values of said resonance peak maxima.
- 67. The method of claim 63, wherein said first and said second types of maxima are determined by shapes of said resonance peak maxima.
- 68. The method of claim 63, wherein said first and said second types of maxima are determined by frequency shifts of said resonance peak maxima.
- 69. The method of claim 62, wherein said classifying comprises:
(a) constructing a physical model of a plurality of harmonic oscillators, said physical model comprises a set of parameters and being characterized by a plurality of equations of motion; (b) simultaneously solving said plurality of equations of motion so as to provide at least one frequency response; and (c) comparing said at least one frequency response with said frequency response spectrum; thereby classifying said frequency response spectrum.
- 70. The method of claim 69, wherein said physical model is an N degree-of-freedom physical model, said N is a positive integer.
- 71. The method of claim 69, wherein said plurality of harmonic oscillators are coupled harmonic oscillators.
- 72. The method of claim 69, wherein at least a portion of said plurality of harmonic oscillators are damped harmonic oscillators.
- 73. The method of claim 69, wherein at least a portion of said plurality of harmonic oscillators are forced harmonic oscillators.
- 74. The method of claim 69, wherein said set of parameters comprises at least one constant of inertia and at least one elastic constant.
- 75. The method of claim 74, wherein said constant of inertia is mass and further wherein said elastic constant is a spring constant.
- 76. The method of claim 74, wherein said constant of inertia is inductance and further wherein said elastic constant is a reciprocal of capacitance.
- 77. The method of claim 69, further comprising repeating said steps (a)-(c) at least once, each time using different set of parameters.
- 78. The method of claim 69, wherein said set of parameters represent dynamic stiffness and density of the structural material.
- 79. A system for characterizing a tissue present in a predetermined location of a body of a subject, the system comprising:
a mechanical vibrations generating assembly for generating mechanical vibrations at a position adjacent to the predetermined location, said mechanical vibrations are at a frequency ranging from 10 Hz to 10 kHz; and a control unit for scanning said frequency of said mechanical vibrations, and for measuring a frequency response spectrum from the predetermined location, thereby to characterize the tissue.
- 80. The system of claim 79, wherein the tissue forms a part of an organ.
- 81. The system of claim 79, wherein the tissue forms a part of an internal organ.
- 82. The system of claim 79, wherein the tissue forms a portion of a tumor.
- 83. The system of claim 79, wherein the tissue forms a portion of an internal tumor.
- 84. The system of claim 79, wherein the tissue is a pathological tissue.
- 85. The system of claim 79, wherein the tissue forms a part of, or is associated with, a blood vessel tissue.
- 86. The system of claim 85, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 87. The system of claim 79, wherein the tissue forms a portion of a bone.
- 88. The system of claim 79, wherein the tissue is a stenotic tissue.
- 89. The method of claim 1, wherein said control unit is operable to measure an amplitude as a function of said frequency.
- 90. The method of claim 1, wherein said control unit is operable to measure a phase angle as a function of said frequency.
- 91. The system of claim 1, wherein said control unit is operable to calculate at least one mechanical property of the tissue from said frequency response spectrum.
- 92. The system of claim 91, wherein said mechanical property is an elastic constant.
- 93. The system of claim 91, wherein said mechanical property is selected from the group consisting of an elastic modulus, a Poisson's ratio, a shear modulus, a bulk modulus and a first Lamé coefficient.
- 94. The system of claim 79, wherein said position is on a skin of the body.
- 95. The system of claim 79, wherein said position is close to a blood vessel-of-interest.
- 96. The system of claim 95, wherein said blood vessel-of-interest is selected from the group consisting of a carotid, a femoral vessel and an abdominal aorta.
- 97. The system of claim 79, wherein said position is close to a lesion selected from the group consisting of a dermal lesion, a sub-dermal lesion and an internal lesion.
- 98. The system of claim 79, wherein said position is close to a bone.
- 99. The system of claim 79, wherein said position is close to a thorax.
- 100. The system of claim 79, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are perpendicular to the body.
- 101. The system of claim 79, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are inclined to the body by a predetermined inclination angle.
- 102. The system of claim 26, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 103. The system of claim 79, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 104. The system of claim 79, wherein said mechanical vibrations generating assembly is constructed and designed so as to minimize effects of environmental noise.
- 105. The system of claim. 79, wherein said mechanical vibrations generating assembly comprises a mechanical linkage device for transferring said mechanical vibrations to the body.
- 106. The system of claim 105, wherein at least one of a size and a natural frequency of said mechanical linkage device is selected so as to increase dynamical interactions between the tissue and said at least one mechanical linkage device.
- 107. The system of claim 105, wherein said mechanical linkage device is characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than said frequency of said mechanical vibrations.
- 108. The system of claim 105, wherein said mechanical linkage device comprises a variable width beam spring.
- 109. The system of claim 105, wherein said mechanical linkage device comprises a strain gage for measuring displacement of said plurality of mechanical linkage devices.
- 110. The system of claim 105, wherein said mechanical linkage device comprises a proximity sensor for measuring displacement of said plurality of mechanical linkage devices.
- 111. The system of claim 79, further comprising at least one additional mechanical vibrations generating assembly having a plurality of mechanical linkage devices being in mutual communication, and operable to generate mechanical vibrations at a position adjacent to the predetermined location
- 112. The system of claim 111, wherein said plurality of mechanical linkage devices comprises a first mechanical linkage device and a second mechanical linkage device.
- 113. The system of claim 112, wherein said first and said second mechanical linkage devices are connected by at least one mechanical sensor, capable of receiving mechanical vibration therebetween.
- 114. The system of claim 112, wherein said first and said second mechanical linkage devices are connected by at least one connection rod.
- 115. The system of claim 112, wherein said first and said second mechanical linkage devices are each independently membranes.
- 116. The system of claim 115, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 117. The system of claim 115, wherein said membranes are piezo-polymeric membranes.
- 118. The system of claim 79, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 119. The system of claim 118, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 120. The system of claim 118, wherein said at least one contact-tip is sterilizable.
- 121. The system of claim 118, wherein said at least one contact-tip comprises at least one sterilizable cover.
- 122. The system of claim 118, wherein said at least one contact-tip is disposable.
- 123. The system of claim 79, wherein said mechanical vibrations generating assembly comprises a mechanical vibrations generating transducer assembly, said mechanical vibrations generating transducer assembly is operable to convert electrical signals into mechanical motions.
- 124. The system of claim 123, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 125. The system of claim 111, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 126. The system of claim 125, wherein said plurality of mechanical linkage devices comprises a first mechanical linkage device connected to a first end of said tubular transducer and a second mechanical linkage device connected to a second end of said tubular transducer.
- 127. The system of claim 123, wherein said mechanical vibrations generating transducer assembly is selected from the group consisting of a piezoelectric mechanical vibrations generating transducer assembly, an electric mechanical vibrations generating transducer assembly, an electrostrictive mechanical vibrations generating transducer assembly, a magnetic mechanical vibrations generating transducer assembly, a magnetostrictive mechanical vibrations generating transducer assembly, an electromagnetic mechanical vibrations generating transducer assembly, a micro electro mechanical system (MEMS) vibrating generating transducer assembly and an electrostatic mechanical vibrations generating transducer assembly.
- 128. The system of claim 79, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 129. The system of claim 128, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 130. The system of claim 128, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 131. The system of claim 79, wherein said mechanical vibrations generating assembly comprises a mechanism for isolating said mechanical vibrations generating assembly from environmental vibrations.
- 132. The system of claim 131, wherein said mechanism is operable to independently move in three orthogonal directions.
- 133. The system of claim 131, wherein said mechanism is operable to independently rotate in at least two orthogonal directions.
- 134. The system of claim 79, wherein said mechanical vibrations generating assembly is sizewise compatible with an anatomical system selected from the group consisting of the vascular system, the cardio-vascular system and the urinary system.
- 135. The system of claim 79, further comprising an imaging device for imaging the tissue.
- 136. The system of claim 135, wherein said imaging device is selected from the group consisting of an intra vascular ultra sound device, an intra vascular magnetic resonance device, a camera, a computer tomography device, and a magnetic resonance device.
- 137. The system of claim 135, wherein said imaging device is in communication with said control unit.
- 138. The system of claim 136, wherein said communication is selected from the group consisting of optical communication, electrical communication and acoustical communication.
- 139. The system of claim 135, wherein said imaging device is connected to said mechanical vibrations generating assembly.
- 140. The system of claim 134, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 141. The system of claim 140, wherein said mechanical vibrations generating assembly comprises a posing mechanism for bulging said at least one contact-tip out of an encapsulation of said mechanical vibrations generating assembly so as to touch the tissue.
- 142. The system of claim 141, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 143. The system of claim 142, wherein said mechanical vibrations generating assembly comprises a preamplifier, for at least partially amplifying electrical signals received from said at least one mechanical sensor.
- 144. The system of claim 79, wherein said control unit comprises a transmission unit for transmitting an electrical signal to said mechanical vibrations generating assembly.
- 145. The system of claim 133, wherein said transmission unit comprises a computerized synthesizer for generating a synthesized electrical pulse.
- 146. The system of claim 145, wherein said transmission unit further comprises a power amplifier for amplifying said synthesized electrical pulse.
- 147. The system of claim 79, wherein said control unit comprises a receiver for receiving an electrical signal from said mechanical vibrations generating assembly.
- 148. The system of claim 147, wherein said receiver comprises a preamplifier and a line amplifier, said preamplifier and said line amplifier configured and designed to amplify said electrical signal transmitted from said mechanical vibrations generating assembly.
- 149. The system of claim 148, wherein said receiver further comprises a display for displaying said electrical signal transmitted from said mechanical vibrations generating assembly.
- 150. The system of claim 149, wherein said display is selected from the group consisting of an oscilloscope, a spectrum analyzer, a processor display and a printer.
- 151. An endoscopic device for in vivo characterization of a tissue of a subject, the device comprising:
at least one imaging device for imaging the subject so as to determine a position of the tissue; and at least one mechanical vibrations generating assembly for generating mechanical vibrations at said position of the tissue, and for measuring a frequency response spectrum of the tissue, said mechanical vibrations are at a frequency ranging from 10 Hz to 10 kHz.
- 152. The device of claim 151, wherein the tissue forms a part of, or is associated with, a blood vessel tissue.
- 153. The device of claim 152, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 154. The device of claim 151, wherein the tissue forms a part of, or is associated with, the urinary system of the subject.
- 155. The device of claim 151, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are perpendicular to the tissue.
- 156. The device of claim 151, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are inclined to the tissue by a predetermined inclination angle.
- 157. The device of claim 156, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 158. The device of claim 151, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 159. The device of claim 151, wherein said mechanical vibrations generating assembly is constructed and designed so as to minimize effects of environmental noise.
- 160. The device of claim 151, wherein said mechanical vibrations generating assembly comprises at least one mechanical linkage device for transferring said mechanical vibrations to the tissue.
- 161. The device of claim 160, wherein at least one of a size and a natural frequency of said at least one mechanical linkage device is selected so as to increase dynamical interactions between the tissue and said at least one mechanical linkage device.
- 162. The device of claim 160, wherein said at least one mechanical linkage device is characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than said frequency of said mechanical vibrations.
- 163. The device of claim 160, wherein said at least one mechanical linkage device comprises a variable width beam spring.
- 164. The device of claim 160, wherein said at least one mechanical linkage device comprises a strain gage for measuring displacement of said at least one mechanical linkage device.
- 165. The device of claim 160, wherein said at least one mechanical linkage device comprises a proximity sensor for measuring displacement of said at least one mechanical linkage device.
- 166. The device of claim 160, wherein said at least one mechanical linkage device comprises a first mechanical linkage device and a second mechanical linkage device.
- 167. The device of claim 166, wherein said first and said second mechanical linkage devices are each independently membranes.
- 168. The device of claim 167, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 169. The device of claim 167, wherein said membranes are piezo-polymeric membranes.
- 170. The device of claim 151, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 171. The device of claim 170, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 172. The device of claim 151, wherein said mechanical vibrations generating assembly comprises a mechanical vibrations generating transducer assembly, said mechanical vibrations generating transducer assembly is operable to convert electrical signals into mechanical motions.
- 173. The device of claim 172, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 174. The device of claim 173, further comprising a first mechanical linkage device connected to a first end of said tubular transducer and a second mechanical linkage device connected to a second end of said tubular transducer.
- 175. The device of claim 174, wherein said first and said second mechanical linkage devices are connected by at least one mechanical sensor, capable of receiving mechanical vibration therebetween.
- 176. The device of claim 174, wherein said first and said second mechanical linkage devices are connected by at least one connection rod.
- 177. The device of claim 172, wherein said mechanical vibrations generating transducer assembly is selected from the group consisting of a piezoelectric mechanical vibrations generating transducer assembly, an electric mechanical vibrations generating transducer assembly, an electrostrictive mechanical vibrations generating transducer assembly, a magnetic mechanical vibrations generating transducer assembly, a magnetostrictive mechanical vibrations generating transducer assembly, an electromagnetic mechanical vibrations generating transducer assembly, a micro electro mechanical device (MEMS) vibrating generating transducer assembly and an electrostatic mechanical vibrations generating transducer assembly.
- 178. The device of claim 151, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 179. The device of claim 178, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 180. The device of claim 178, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 181. The device of claim 200, wherein said imaging device is selected from the group consisting of an intra vascular ultra sound device, an intra vascular magnetic resonance device and a camera.
- 182. The device of claim 151, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 183. The device of claim 182, wherein said mechanical vibrations generating assembly comprises a posing mechanism for bulging said at least one contact-tip out of an encapsulation of said mechanical vibrations generating assembly so as to touch the tissue.
- 184. The device of claim 183, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 185. The device of claim 184, wherein said mechanical vibrations generating assembly comprises a preamplifier, for at least partially amplifying electrical signals received from said at least one mechanical sensor.
- 186. A system for in vivo characterization of a tissue of a subject, the system comprising:
an endoscopic device having at least one imaging device and at least one mechanical vibrations generating assembly, said at least one imaging device being for imaging the subject and said at least one mechanical vibrations generating assembly being for generating mechanical vibrations at a position of the tissue, said mechanical vibrations are at a frequency ranging from 10 Hz to 10 kHz; and a control unit for scanning said frequency of said mechanical vibrations, and for measuring a frequency response spectrum from the tissue, thereby to characterize the tissue.
- 187. The system of claim 186, wherein the tissue forms a part of, or is associated with, a blood vessel tissue.
- 188. The system of claim 187, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 189. The system of claim 186, wherein the tissue forms a part of, or is associated with, the urinary system of the subject.
- 190. The system of claim 186, wherein said control unit is operable to measure an amplitude as a function of said frequency.
- 191. The system of claim 186, wherein said control unit is operable to measure a phase angle as a function of said frequency.
- 192. The system of claim 186, wherein said control unit is operable to calculate at least one mechanical property of the tissue from said frequency response spectrum.
- 193. The system of claim 192, wherein said mechanical property is an elastic constant.
- 194. The system of claim 192, wherein said mechanical property is selected from the group consisting of an elastic modulus, a Poisson's ratio, a shear modulus, a bulk modulus and a first Lamé coefficient.
- 195. The system of claim 186, wherein said position is close to a blood vessel-of-interest.
- 196. The system of claim 195, wherein said blood vessel-of-interest is selected from the group consisting of a carotid, a femoral vessel and an abdominal aorta.
- 197. The system of claim 186, wherein said position is close to an internal lesion.
- 198. The system of claim 186, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are perpendicular to the tissue.
- 199. The system of claim 186, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are inclined to the tissue by a predetermined inclination angle.
- 200. The system of claim 199, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 201. The system of claim 186, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 202. The system of claim 186, wherein said mechanical vibrations generating assembly comprises at least one mechanical linkage device for transferring said mechanical vibrations to the tissue.
- 203. The system of claim 202, wherein at least one of a size and a natural frequency of said at least one mechanical linkage device is selected so as to increase dynamical interactions between the tissue and said at least one mechanical linkage device.
- 204. The system of claim 202, wherein said at least one mechanical linkage device is characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than said frequency of said mechanical vibrations.
- 205. The system of claim 202, wherein said at least one mechanical linkage device comprises a variable width beam spring.
- 206. The system of claim 202, wherein said at least one mechanical linkage device comprises a strain gage for measuring displacement of said at least one mechanical linkage device.
- 207. The system of claim 202, wherein said at least one mechanical linkage device comprises a proximity sensor for measuring displacement of said at least one mechanical linkage device.
- 208. The system of claim 202, wherein said at least one mechanical linkage device comprises a first mechanical linkage device and a second mechanical linkage device.
- 209. The system of claim 208, wherein said first and said second mechanical linkage devices are each independently membranes.
- 210. The system of claim 209, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 211. The system of claim 209, wherein said membranes are piezo-polymeric membranes.
- 212. The system of claim 186, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 213. The system of claim 212, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 214. The system of claim 186, wherein said mechanical vibrations generating assembly comprises a mechanical vibrations generating transducer assembly, said mechanical vibrations generating transducer assembly is operable to convert electrical signals into mechanical motions.
- 215. The system of claim 214, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 216. The system of claim 215, further comprising a first mechanical linkage device connected to a first end of said tubular transducer and a second mechanical linkage device connected to a second end of said tubular transducer.
- 217. The system of claim 216, wherein said first and said second mechanical linkage devices are connected by at least one mechanical sensor, capable of receiving mechanical vibration therebetween.
- 218. The system of claim 214, wherein said mechanical vibrations generating transducer assembly is selected from the group consisting of a piezoelectric mechanical vibrations generating transducer assembly, an electric mechanical vibrations generating transducer assembly, an electrostrictive mechanical vibrations generating transducer assembly, a magnetic mechanical vibrations generating transducer assembly, a magnetostrictive mechanical vibrations generating transducer assembly, an electromagnetic mechanical vibrations generating transducer assembly, a micro electro mechanical system (MEMS) vibrating generating transducer assembly and an electrostatic mechanical vibrations generating transducer assembly.
- 219. The system of claim 186, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 220. The system of claim 219, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 221. The system of claim 219, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 222. The system of claim 186, wherein said imaging device is selected from the group consisting of an intra vascular ultra sound device, an intra vascular magnetic resonance device and a camera.
- 223. The system of claim 186, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 224. The system of claim 223, wherein said mechanical vibrations generating assembly comprises a posing mechanism for bulging said at least one contact-tip out of an encapsulation of said mechanical vibrations generating assembly so as to touch the tissue.
- 225. The system of claim 224, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 226. The system of claim 225, wherein said mechanical vibrations generating assembly comprises a preamplifier, for at least partially amplifying electrical signals received from said at least one mechanical sensor.
- 227. The system of claim 186, wherein said control unit comprises a transmission unit for transmitting an electrical signal to said mechanical vibrations generating assembly.
- 228. The system of claim 227, wherein said transmission unit comprises a computerized synthesizer for generating a synthesized electrical pulse.
- 229. The system of claim 228, wherein said transmission unit further comprises a power amplifier for amplifying said synthesized electrical pulse.
- 230. The system of claim 186, wherein said control unit comprises a receiver for receiving an electrical signal from said mechanical vibrations generating assembly.
- 231. The system of claim 230, wherein said receiver comprises a preamplifier and a line amplifier, said preamplifier and said line amplifier configured and designed to amplify said electrical signal transmitted from said mechanical vibrations generating assembly.
- 232. The system of claim 231, wherein said receiver further comprises a display for displaying said electrical signal transmitted from said mechanical vibrations generating assembly.
- 233. The system of claim 232, wherein said display is selected from the group consisting of an oscilloscope, a spectrum analyzer, a processor display and a printer.
- 234. A method of characterizing a tissue of a subject, the method comprising:
(a) endoscopically inserting an endoscopic device into the subject, and using said endoscopic device for (i) imaging the subject so as to determine a position of the tissue; and (ii) generating mechanical vibrations at said position, said mechanical vibrations being at a frequency ranging from 10 Hz to 10 kHz; (b) scanning said frequency of said mechanical vibrations; and (c) measuring a frequency response spectrum from the tissue; thereby characterizing the tissue.
- 235. The method of claim 234, wherein the tissue forms a part of, or is associated with, a blood vessel tissue.
- 236. The method of claim 235, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 237. The method of claim 234, wherein the tissue forms a part of, or is associated with, the urinary system of the subject.
- 238. The method of claim 234, further comprising measuring an amplitude as a function of said frequency.
- 239. The method of claim 234, further comprising measuring a phase angle as a function of said frequency.
- 240. The method of claim 234, further comprising calculating at least one mechanical property of the tissue from said frequency response spectrum.
- 241. The method of claim 240, wherein said mechanical property is an elastic constant.
- 242. The method of claim 240, wherein said mechanical property is selected from the group consisting of an elastic modulus, a Poisson's ratio, a shear modulus, a bulk modulus and a first Lamé coefficient.
- 243. The method of claim 234, wherein said position is close to a blood vessel-of-interest.
- 244. The method of claim 243, wherein said blood vessel-of-interest is selected from the group consisting of a carotid, a femoral vessel and an abdominal aorta.
- 245. The method of claim 234, wherein said position is close to an internal lesion.
- 246. The method of claim 234, wherein said mechanical vibrations are perpendicular to the tissue.
- 247. The method of claim 234, wherein said mechanical vibrations are inclined to the tissue by a predetermined inclination angle.
- 248. The method of claim 247, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 249. The method of claim 234, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 250. The method of claim 234, wherein said generating said mechanical vibrations is by a mechanical vibrations generating assembly.
- 251. The method of claim 234, wherein said mechanical vibrations generating assembly comprises at least one mechanical linkage device for transferring said mechanical vibrations to the tissue.
- 252. The method of claim 251, wherein at least one of a size and a natural frequency of said at least one mechanical linkage device is selected so as to increase dynamical interactions between the tissue and said at least one mechanical linkage device.
- 253. The method of claim 251, wherein said at least one mechanical linkage device is characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than said frequency of said mechanical vibrations.
- 254. The method of claim 251, wherein said at least one mechanical linkage device comprises a variable width beam spring.
- 255. The method of claim 251, wherein said at least one mechanical linkage device comprises a strain gage for measuring displacement of said at least one mechanical linkage device.
- 256. The method of claim 251, wherein said at least one mechanical linkage device comprises a proximity sensor for measuring displacement of said at least one mechanical linkage device.
- 257. The method of claim 234, wherein said generating said mechanical vibrations is by transmitting mechanical vibration from a first mechanical linkage device to a second mechanical linkage device via at least one mechanical sensor.
- 258. The method of claim 257, wherein said first and said second mechanical linkage devices are each independently membranes.
- 259. The method of claim 258, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 260. The method of claim 258, wherein said membranes are piezo-polymeric membranes.
- 261. The method of claim 234, further comprising converting electrical signals into mechanical motions using a mechanical vibrations generating transducer assembly.
- 262. The method of claim 261, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 263. The method of claim 250, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 264. The method of claim 263, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 265. The method of claim 263, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 266. The method of claim 234, wherein said endoscopic device comprises an imaging device, selected from the group consisting of an intra vascular ultra sound device, an intra vascular magnetic resonance device and a camera.
- 267. The method of claim 250, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 268. The method of claim 267, further comprising bulging said at least one contact-tip out of an encapsulation of said mechanical vibrations generating assembly so as to touch the tissue.
- 269. The method of claim 268, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 270. The method of claim 269, further comprising at least partially amplifying electrical signals received from said at least one mechanical sensor.
- 271. The method of claim 250, further comprising transmitting an electrical signal to said mechanical vibrations generating assembly.
- 272. The method of claim 271, wherein said transmitting said electrical comprises generating a synthesized electrical pulse.
- 273. The method of claim 272, further comprising amplifying said synthesized electrical pulse.
- 274. The method of claim 250, further comprising amplifying electrical signal transmitted from said mechanical vibrations generating assembly.
- 275. The method of claim 274, further comprising displaying said electrical signal transmitted from said mechanical vibrations generating assembly.
- 276. The method of claim 275, wherein said display is selected from the group consisting of an oscilloscope, a spectrum analyzer, a processor display and a printer.
- 277. The method of claim 234, further comprising classifying said frequency response spectrum.
- 278. The method of claim 277, wherein said classifying said frequency response spectrum comprises:
(a) identifying resonance peak maxima of said frequency response spectrum; (b) from said resonance peak maxima, determining a first type of maximum being indicative of a first type of tissue, and a second type of maximum being indicative of a second type of tissue. (c) using said first type of maximum and said second type of maximum to classify said first and said types of tissue.
- 279. The method of claim 278, wherein said step (c) comprises calculating a ratio between said first type of maximum and said second type of maximum.
- 280. The method of claim 278, further comprising averaging said resonance peak maxima.
- 281. The method of claim 278, wherein said first and said second types of maxima are determined by absolute values of said resonance peak maxima.
- 282. The method of claim 278, wherein said first and said second types of maxima are determined by shapes of said resonance peak maxima.
- 283. The method of claim 278, wherein said first and said second types of maxima are determined by frequency shifts of said resonance peak maxima.
- 284. A system for characterizing a tissue present in a predetermined location of a body of a subject, the system comprising:
at least one mechanical vibrations generating assembly each having a plurality of mechanical linkage devices being in mutual communication, and operable to generate mechanical vibrations at a position adjacent to the predetermined location, said mechanical vibrations being at a frequency ranging from 10 Hz to 10 kHz; and a control unit for scanning said frequency of said mechanical vibrations, and for measuring a frequency response spectrum from the tissue, thereby to characterize the tissue.
- 285. The system of claim 284, wherein the tissue forms a part of an organ.
- 286. The system of claim 284, wherein the tissue forms a part of an internal organ.
- 287. The system of claim 284, wherein the tissue forms a portion of a tumor.
- 288. The system of claim 284, wherein the tissue forms a portion of an internal tumor.
- 289. The system of claim 284, wherein the tissue is a pathological tissue.
- 290. The system of claim 284, wherein the tissue forms a part of, or is associated with, a blood vessel tissue.
- 291. The system of claim 290, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 292. The system of claim 284, wherein the tissue forms a portion of a bone.
- 293. The system of claim 284, wherein the tissue is a stenotic tissue.
- 294. The system of claim 284, wherein at least one of a size and a natural frequency of said plurality of mechanical linkage devices is selected so as to increase dynamical interactions between the tissue and said at least one mechanical linkage device.
- 295. The system of claim 284, wherein said at least one mechanical linkage device is characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than said frequency of said mechanical vibrations.
- 296. The system of claim 284, wherein said plurality of mechanical linkage devices comprises a variable width beam spring.
- 297. The system of claim 284, wherein said plurality of mechanical linkage devices comprises a strain gage for measuring displacement of said plurality of mechanical linkage devices.
- 298. The system of claim 284, wherein said plurality of mechanical linkage devices comprises a proximity sensor for measuring displacement of said plurality of mechanical linkage devices.
- 299. The system of claim 284, wherein said control unit is operable to measure an amplitude as a function of said frequency.
- 300. The system of claim 284, wherein said control unit is operable to measure a phase angle as a function of said frequency.
- 301. The system of claim 284, wherein said control unit is operable to calculate at least one mechanical property of the tissue from said frequency response spectrum.
- 302. The system of claim 301, wherein said mechanical property is an elastic constant.
- 303. The system of claim 301, wherein said mechanical property is selected from the group consisting of an elastic modulus, a Poisson's ratio, a shear modulus, a bulk modulus and a first Lamé coefficient.
- 304. The system of claim 284, wherein said position is on a skin of the body.
- 305. The system of claim 284, wherein said position is close to a blood vessel-of-interest.
- 306. The system of claim 305, wherein said blood vessel-of-interest is selected from the group consisting of a carotid, a femoral vessel and an abdominal aorta.
- 307. The system of claim 284, wherein said position is close to a lesion selected from the group consisting of a dermal lesion, a sub-dermal lesion and an internal lesion.
- 308. The system of claim 284, wherein said position is close to a bone.
- 309. The system of claim 284, wherein said position is close to a thorax.
- 310. The system of claim 284, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are perpendicular to the body.
- 311. The system of claim 284, wherein said mechanical vibrations generating assembly is operable to generate mechanical vibrations which are inclined to the body by a predetermined inclination angle.
- 312. The system of claim 311, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 313. The system of claim 284, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 314. The system of claim 284, wherein said mechanical vibrations generating assembly is constructed and designed so as to minimize effects of environmental noise.
- 315. The system of claim 284, wherein said plurality of mechanical linkage devices comprises a first mechanical linkage device and a second mechanical linkage device.
- 316. The system of claim 315, wherein said first and said second mechanical linkage devices are connected by at least one mechanical sensor, capable of receiving mechanical vibration therebetween.
- 317. The system of claim 315, wherein said first and said second mechanical linkage devices are connected by at least one connection rod.
- 318. The system of claim 315, wherein said first and said second mechanical linkage devices are each independently membranes.
- 319. The system of claim 318, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 320. The system of claim 318, wherein said membranes are piezo-polymeric membranes.
- 321. The system of claim 284, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 322. The system of claim 321, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 323. The system of claim 321, wherein said at least one contact-tip is sterilizable.
- 324. The system of claim 321, wherein said at least one contact-tip comprises at least one sterilizable cover.
- 325. The system of claim 321, wherein said at least one contact-tip is disposable.
- 326. The system of claim 284, wherein said mechanical vibrations generating assembly comprises a mechanical vibrations generating transducer assembly, said mechanical vibrations generating transducer assembly is operable to convert electrical signals into mechanical motions.
- 327. The system of claim 326, wherein said mechanical vibrations generating transducer assembly comprises a tubular transducer.
- 328. The system of claim 327, wherein said plurality of mechanical linkage devices comprises a first mechanical linkage device connected to a first end of said tubular transducer and a second mechanical linkage device connected to a second end of said tubular transducer.
- 329. The system of claim 326, wherein said mechanical vibrations generating transducer assembly is selected from the group consisting of a piezoelectric mechanical vibrations generating transducer assembly, an electric mechanical vibrations generating transducer assembly, an electrostrictive mechanical vibrations generating transducer assembly, a magnetic mechanical vibrations generating transducer assembly, a magnetostrictive mechanical vibrations generating transducer assembly, an electromagnetic mechanical vibrations generating transducer assembly, a micro electro mechanical system (MEMS) vibrating generating transducer assembly and an electrostatic mechanical vibrations generating transducer assembly.
- 330. The system of claim 284, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 331. The system of claim 284, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 332. The system of claim 284, wherein said mechanical vibrations generating assembly comprises a mechanism for isolating said mechanical vibrations generating assembly from environmental vibrations.
- 333. The system of claim 332, wherein said mechanism is operable to independently move in three orthogonal directions.
- 334. The system of claim 332, wherein said mechanism is operable to independently rotate in at least two orthogonal directions.
- 335. The system of claim 284, wherein said mechanical vibrations generating assembly is sizewise compatible with an anatomical system selected from the group consisting of the vascular system, the cardio-vascular system and the urinary system.
- 336. The system of claim 284, further comprising an imaging device for imaging the tissue.
- 337. The system of claim 336, wherein said imaging device is selected from the group consisting of an intra vascular ultra sound device, an intra vascular magnetic resonance device, a camera, a computer tomography device, and a magnetic resonance device.
- 338. The system of claim 336, wherein said imaging device is in communication with said control unit.
- 339. The system of claim 338, wherein said communication is selected from the group consisting of optical communication, electrical communication and acoustical communication.
- 340. The system of claim 336, wherein said imaging device is connected to said mechanical vibrations generating assembly.
- 341. The system of claim 335, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 342. The system of claim 341, wherein said mechanical vibrations generating assembly comprises a posing mechanism for bulging said at least one contact-tip out of an encapsulation of said mechanical vibrations generating assembly so as to touch the tissue.
- 343. The system of claim 342, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 344. The system of claim 343, wherein said mechanical vibrations generating assembly comprises a preamplifier, for at least partially amplifying electrical signals received from said at least one mechanical sensor.
- 345. The system of claim 284, wherein said control unit comprises a transmission unit for transmitting an electrical signal to said mechanical vibrations generating assembly.
- 346. The system of claim 334, wherein said transmission unit comprises a computerized synthesizer for generating a synthesized electrical pulse.
- 347. The system of claim 346, wherein said transmission unit further comprises a power amplifier for amplifying said synthesized electrical pulse.
- 348. The system of claim 284, wherein said control unit comprises a receiver for receiving an electrical signal from said mechanical vibrations generating assembly.
- 349. The system of claim 348, wherein said receiver comprises a preamplifier and a line amplifier, said preamplifier and said line amplifier configured and designed to amplify said electrical signal transmitted from said mechanical vibrations generating assembly.
- 350. The system of claim 349, wherein said receiver further comprises a display for displaying said electrical signal transmitted from said mechanical vibrations generating assembly.
- 351. The system of claim 350, wherein said display is selected from the group consisting of an oscilloscope, a spectrum analyzer, a processor display and a printer.
- 352. A mechanical vibrations generating assembly for generating mechanical vibrations at a position of a body of a subject, comprising a transducer assembly, a first mechanical linkage device, connected to a first end of said transducer assembly, and a second mechanical linkage device, connected to a second end of said transducer assembly;
wherein said transducer assembly, said first mechanical linkage device and said second mechanical linkage device are constructed and designed so that when electrical signals are inputted to said transducer assembly, said electrical signals are converted into mechanical motions, and said first and said second mechanical linkage devices generates the mechanical vibrations.
- 353. The mechanical vibrations generating assembly of claim 352, further comprising at least one additional mechanical linkage device, mechanically communicating with said transducer assembly.
- 354. The mechanical vibrations generating assembly of claim 352, wherein said first and said second mechanical linkage devices are each independently membranes.
- 355. The mechanical vibrations generating assembly of claim 352, wherein said membranes are made of a material selected from the group consisting of a plastic and a metal.
- 356. The mechanical vibrations generating assembly of claim 352, wherein said membranes are piezo-polymeric membranes.
- 357. The mechanical vibrations generating assembly of claim 352, further comprising at least one contact-tip, connected to at least one of said mechanical linkage devices.
- 358. The mechanical vibrations generating assembly of claim 352, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 359. The mechanical vibrations generating assembly of claim 352, wherein said at least one contact-tip is sterilizable.
- 360. The mechanical vibrations generating assembly of claim 352, wherein said at least one contact-tip comprises at least one sterilizable cover.
- 361. The mechanical vibrations generating assembly of claim 352, wherein said at least one contact-tip is disposable.
- 362. The mechanical vibrations generating assembly of claim 352, wherein at least one of a size and a natural frequency of said mechanical linkage devices is selected so as to increase dynamical interactions between the a portion of the body and said mechanical linkage devices.
- 363. The mechanical vibrations generating assembly of claim 352, wherein said mechanical linkage devices are characterized by a plurality of natural frequencies, and further wherein at least one frequency of said plurality of natural frequencies is higher than a frequency of the mechanical vibrations.
- 364. The mechanical vibrations generating assembly of claim 352, wherein said plurality of mechanical linkage devices comprises a strain gage for measuring displacement of said mechanical linkage devices.
- 365. The mechanical vibrations generating assembly of claim 352, wherein said mechanical linkage devices comprises a proximity sensor for measuring displacement of said mechanical linkage devices.
- 366. The mechanical vibrations generating assembly of claim 352, wherein said transducer assembly comprises a tubular transducer.
- 367. The mechanical vibrations generating assembly of claim 352, further comprising at least one mechanical sensor.
- 368. The mechanical vibrations generating assembly of claim 352, further comprising at least one mechanical sensor connecting said first mechanical linkage device and said mechanical linkage device, said at least one mechanical sensor being capable of receiving mechanical vibration therethrough.
- 369. The mechanical vibrations generating assembly of claim 367, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 370. The mechanical vibrations generating assembly of claim 367, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 371. A method of classifying a frequency response spectrum of a structural material, the method is executable by a data processor and comprising;
(a) constructing a physical model of a plurality of harmonic oscillators, said physical model comprises a set of parameters and being characterized by a plurality of equations of motion; (b) simultaneously solving said plurality of equations of motion so as to provide at least one frequency response; and (c) comparing said at least one frequency response with the frequency response spectrum of the structural material, thereby classifying the frequency response spectrum of the structural material.
- 372. The method of claim 371, wherein said physical model is an N degree-of-freedom physical model, said N is a positive integer.
- 373. The method of claim 371, wherein said plurality of harmonic oscillators are coupled harmonic oscillators.
- 374. The method of claim 371, wherein at least a portion of said plurality of harmonic oscillators are damped harmonic oscillators.
- 375. The method of claim 371, wherein at least a portion of said plurality of harmonic oscillators are forced harmonic oscillators.
- 376. The method of claim 371, wherein said set of parameters comprises at least one constant of inertia and at least one elastic constant.
- 377. The method of claim 376, wherein said constant of inertia is mass and further wherein said elastic constant is a spring constant.
- 378. The method of claim 376, wherein said constant of inertia is inductance and further wherein said elastic constant is a reciprocal of capacitance.
- 379. The method of claim 371, further comprising repeating said steps (a)-(c) at least once, each time using a different set of parameters.
- 380. The method of claim 371, wherein said set of parameters represent dynamic stiffness and density of the structural material.
- 381. An apparatus for classifying a frequency response spectrum of a structural material, the apparatus comprising;
(a) a constructor for constructing a physical model of a plurality of harmonic oscillators, said physical model comprises a set of parameters and being characterized by a plurality of equations of motion; (b) a solver for simultaneously solving said plurality of equations of motion so as to provide at least one frequency response; and (c) a comparing unit for comparing said at least one frequency response with the frequency response spectrum of the structural material, thereby to classify the frequency response spectrum of the structural material.
- 382. The apparatus of claim 381, wherein said physical model is an N degree-of-freedom physical model, said N is a positive integer.
- 383. The apparatus of claim 381, wherein said plurality of harmonic oscillators are coupled harmonic oscillators.
- 384. The apparatus of claim 381, wherein at least a portion of said plurality of harmonic oscillators are damped harmonic oscillators.
- 385. The apparatus of claim 381, wherein at least a portion of said plurality of harmonic oscillators are forced harmonic oscillators.
- 386. The apparatus of claim 381, wherein said set of parameters comprises at least one constant of inertia and at least one elastic constant.
- 387. The apparatus of claim 386, wherein said constant of inertia is mass and further wherein said elastic constant is a spring constant.
- 388. The apparatus of claim 386, wherein said constant of inertia is inductance and further wherein said elastic constant is a reciprocal of capacitance.
- 389. The apparatus of claim 381, wherein said set of parameters represent dynamic stiffness and density of the structural material.
- 390. A method of constructing a frequency resonance spectra library the frequency resonance spectra characterizing a plurality of tissues of a plurality of subjects, the method comprising, for each subject:
(a) selecting a tissue of said subject and generating mechanical vibrations at a position adjacent to said tissue, said mechanical vibrations are at a frequency ranging from 10 Hz to 10 kHz; (b) scanning said frequency of said mechanical vibrations; (c) measuring a frequency response spectrum from of said tissue; and (d) recording said frequency response spectrum; thereby providing a frequency response spectrum entry of the library, said frequency response spectrum entry characterizing said tissue, thereby constructing the frequency resonance spectra library.
- 391. The method of claim 390, wherein said tissue forms a part of an organ.
- 392. The method of claim 390, wherein said tissue forms a part of an internal organ.
- 393. The method of claim 390, wherein said tissue forms a portion of a tumor.
- 394. The method of claim 390, wherein said tissue forms a portion of an internal tumor.
- 395. The method of claim 390, wherein said tissue is a pathological tissue.
- 396. The method of claim 390, wherein said tissue forms a part of, or is associated with, a blood vessel tissue.
- 397. The method of claim 396, wherein said blood vessel tissue is selected from the group consisting of a blood clot, an occlusive plaque and a vulnerable plaque.
- 398. The method of claim 397, wherein said blood vessel is selected from the group consisting of a carotid, a femoral, and an abdominal aorta.
- 399. The method of claim 390, wherein said tissue forms a portion of a bone.
- 400. The method of claim 390, wherein said tissue is a stenotic tissue.
- 401. The method of claim 390, wherein said tissue is a lesion.
- 402. The method of claim 390, wherein said lesion is selected from the group consisting of a dermal lesion, a sub-dermal lesion and an internal lesion.
- 403. The method of claim 390, wherein said adjacent to said tissue is on a skin of said body.
- 404. The method of claim 390, wherein said mechanical vibrations are perpendicular to said body.
- 405. The method of claim 390, wherein said generating said mechanical vibrations is performed such that said mechanical vibrations are inclined to said body, by a predetermined inclination angle.
- 406. The method of claim 405, wherein said predetermined inclination angle is selected so as to enhance data acquisition.
- 407. The method of claim 405, wherein said step of generating mechanical vibrations is repeated a plurality of times, each time with a different inclination angle.
- 408. The method of claim 390, wherein said step of generating mechanical vibrations is repeated a plurality of times, each time for a different tissue.
- 409. The method of claim 390, wherein said frequency of said mechanical vibrations is selected from the group consisting of a single frequency, a superposition of a plurality of frequencies, a continuous frequency scan (chirp), and a band-limited white noise frequency.
- 410. The method of claim 390, wherein said generating said mechanical vibrations is by a mechanical vibrations generating assembly.
- 411. The method of claim 390, wherein said mechanical vibrations generating assembly is constructed and designed so as to minimize effects of environmental noise.
- 412. The method of claim 411, wherein said mechanical vibrations generating assembly comprises a mechanical linkage device for transferring said mechanical vibrations to said body.
- 413. The method of claim 390, wherein said mechanical vibrations generating assembly comprises at least one contact-tip.
- 414. The method of claim 413, wherein said at least one contact-tip comprises a plurality of contact-tips arranged in a matrix-like arrangement.
- 415. The method of claim 413, wherein said at least one contact-tip is sterilizable.
- 416. The method of claim 413, wherein said at least one contact-tip comprises at least one sterilizable cover.
- 417. The method of claim 413, wherein said at least one contact-tip is disposable.
- 418. The method of claim 410, wherein said mechanical vibrations generating assembly comprises a mechanical vibrations generating transducer assembly, said mechanical vibrations generating transducer assembly is operable to convert electrical signals into mechanical motions.
- 419. The method of claim 418, wherein said mechanical vibrations generating transducer assembly is selected from the group consisting of a piezoelectric mechanical vibrations generating transducer assembly, an electric mechanical vibrations generating transducer assembly, an electrostrictive mechanical vibrations generating transducer assembly, a magnetic mechanical vibrations generating transducer assembly, a magnetostrictive mechanical vibrations generating transducer assembly, an electromagnetic mechanical vibrations generating transducer assembly, a micro electro mechanical system (MEMS) vibrating generating transducer assembly, and an electrostatic mechanical vibrations generating transducer assembly.
- 420. The method of claim 410, wherein said mechanical vibrations generating assembly comprises at least one mechanical sensor.
- 421. The method of claim 420, wherein said at least one mechanical sensor is selected from the group consisting of a contact sensor and a remote sensor.
- 422. The method of claim 420, wherein said at least one mechanical sensor is selected from the group consisting of an acceleration sensor, a force sensor, a pressure sensor and a displacement sensor.
- 423. The method of claim 410, wherein said mechanical vibrations generating assembly comprises a mechanism for isolating said mechanical vibrations generating assembly from environmental vibrations.
- 424. The method of claim 423, wherein said mechanism is operable to independently move in three orthogonal directions.
- 425. The method of claim 423, wherein said mechanism is operable to independently rotate in at least two orthogonal directions.
- 426. The method of claim 410, further comprising transmitting an electrical signal to said mechanical vibrations generating assembly.
- 427. The method of claim 410, wherein said measuring is by receiving an electrical signal transmitted from said mechanical vibrations generating assembly.
- 428. The method of claim 426, further comprising displaying said electrical signal transmitted from said mechanical vibrations generating assembly on a display.
- 429. The method of claim 428, wherein said display is selected from the group consisting of an oscilloscope, a spectrum analyzer, a processor display and a printer.
- 430. A resonance spectra library produced by the method of claim 390, the resonance spectra of the library are stored, in a retrievable and/or displayable format, on a memory media.
- 431. A memory media, storing in a retrievable and/or displayable format the resonance spectra of the resonance spectra library of claim 430.
Parent Case Info
[0001] This application claims the benefit of priority from U.S. Provisional Patent Application No. 60/406,056, filed Aug. 27, 2002 and U.S. Provisional Patent Application No. 60/381,354, filed May 20, 2002, the contents of which is hereby incorporated by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60406056 |
Aug 2002 |
US |
|
60381354 |
May 2002 |
US |