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    • 2. 发明授权
    • Method for detection of cavitations during medical application of high
sonic energy
    • 在高声波能量医疗应用过程中检测空穴的方法
    • US4819621A
    • 1989-04-11
    • US17752
    • 1987-02-24
    • Friedrich UeberleRainer Riedlinger
    • Friedrich UeberleRainer Riedlinger
    • A61B17/22A61B17/225G01S7/52A61H1/00A61B10/00
    • G01S7/5205A61B17/22004A61B17/2256A61B2017/22008
    • A method and apparatus are described for the detection of possible tissue injuries caused by cavitation during the medical application to a patient's body of high sonic energy which is generated extraneously by means of a sonic transducer for destruction of an element--for example a concretion--which is present in a target area. To detect the possible occurrence of cavitation the target area is acted upon by an acoustic test signal and a reception signal is generated from at least an initial reflection of the test signal. This signal is then examined by comparison with the test signal to detect the presence of an impedance jump leading to an attenuated reflection, so that a control signal may be generated upon detection of an impedance jump of this nature. Audible or visible warning signals may be engendered among others, and the sonic transducer may be deactivated if need be, by means of this control signal.
    • 描述了一种方法和装置,用于检测在医疗应用期间由空气引起的可能的组织损伤,所述组织损伤是通过用于破坏元件的声音换能器(例如凝结物)而外部产生的高声能的身体 存在于目标区域。 为了检测气蚀的可能发生,目标区域由声学测试信号作用,并且从测试信号的至少初始反射产生接收信号。 然后通过与测试信号进行比较来检查该信号,以检测导致衰减反射的阻抗跳跃的存在,使得可以在检测到这种性质的阻抗跳跃时产生控制信号。 可能会产生声音或可见的警告信号,如果需要,声音换能器可以通过该控制信号来停用。
    • 3. 发明授权
    • Spark gap unit for lithotripsy
    • 用于石灰石的SPARK GAP单元
    • US5195508A
    • 1993-03-23
    • US701817
    • 1991-05-17
    • Michael MullerPeter BuchbauerHarald EizenhoferFriedrich UeberleHerbert WeilerReiner Schultheiss
    • Michael MullerPeter BuchbauerHarald EizenhoferFriedrich UeberleHerbert WeilerReiner Schultheiss
    • A61B17/22G10K15/06
    • G10K15/06
    • A spark gap unit that is easy to manufacture and significantly lighter than previously used spark gap units for generating underwater shock waves, particularly for non-invasive lithotrispy, has an internal conductor with an inner electrode, an insulation which at least partially envelops the internal conductor, and an external conductor with a bow and an outer electrode. The internal conductor is significantly shorter than the external conductor, and the external conductor at the rearward end of the spark gap unit projects beyond the internal conductor. The internal conductor, the insulation, and the external conductor are coaxially arranged. An outside diameter of the internal conductor is relatively small in comparison to an inside diameter of the external conductor. The spark gap unit has a hollow space inside the insulation, this hollow space being open in the direction of a rearward end of the spark gap unit. In the opposite direction from the rearward end, the hollow space is bounded by the internal conductor itself and the envelopment of the internal conductor by the insulation.
    • 易于制造和比以前使用的用于产生水下冲击波的火花隙单元明显更轻的火花隙单元,特别是用于非侵入性碎石的火花隙单元具有内部导体,其具有内部电极,至少部分地包围内部导体的绝缘体 ,以及具有弓形和外部电极的外部导体。 内部导体明显短于外部导体,并且火花隙单元后端的外部导体超出内部导体。 内部导体,绝缘体和外部导体同轴布置。 与外部导体的内径相比,内部导体的外径相对较小。 火花隙单元在绝缘体内部具有中空空间,该中空空间在火花隙单元的后端方向上敞开。 在与后端相反的方向上,中空空间由内部导体本身和内部导体的绝缘体包围。
    • 5. 发明授权
    • Thermal therapy with tissue protection
    • 热疗与组织保护
    • US06640139B1
    • 2003-10-28
    • US09786805
    • 2001-03-07
    • Friedrich Ueberle
    • Friedrich Ueberle
    • A61F200
    • A61B18/18A61B18/1815A61B2017/00084A61B2017/00132A61B2017/00274A61B2017/22072A61B2018/00547A61B2018/1861A61F7/12A61N5/06A61N7/02
    • A thermotherapy device for treatment of diseased biological tissues includes an outer lumen and at least one inner lumen. Preheating of non-target tissue is carried out during a desensitizing mode of the thermotherapy process at a temperature that is sublethal to cells of the non-target tissue structure but is high enough to provoke the building of heat shock proteins for protecting non-target tissue structures during the thermotherapy process. Then during a destructive mode of the thermotherapy process, an energy source is insertable into one of the lumens in carry out a heating protocol to treat the enlarged tissue while the non-target tissue is protected by shock proteins produced during the desensitizing mode of the process. The energy source can be microwave, ultrasound or other energy source, and a temperature sensing device can be used in controlling the energy source for effective treatment.
    • 用于治疗患病生物组织的热疗装置包括外腔和至少一个内腔。 非目标组织的预热在热疗过程的脱敏模式期间在与非靶组织结构的细胞亚致死的温度下进行,但是足够高以引发用于保护非靶组织的热休克蛋白的构建 结构在热疗过程中。 然后在热疗过程的破坏性模式期间,能量源可插入其中一个内腔,以执行加热方案来治疗扩大的组织,同时非靶组织受到在该过程的脱敏模式期间产生的休克蛋白的保护 。 能源可以是微波,超声波或其他能源,温度感测装置可用于控制能量源进行有效的治疗。