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    • 5. 发明申请
    • WAVELENGTH MULTIPLEXING ENDOSCOPE
    • 波长多重内窥镜
    • US20090292168A1
    • 2009-11-26
    • US12535439
    • 2009-08-04
    • Mina Farr
    • Mina Farr
    • A61B1/06A61B1/04
    • A61B1/00193A61B1/00179A61B1/00186A61B1/0607A61B1/0615A61B1/0638A61B1/0676A61B1/0684
    • Various embodiments for providing solid state illumination in conjunction with wavelength multiplexing imaging schemes for mono and stereo endoscopy or borescopy are provided. In one embodiment, the current disclosure provides a device configured for insertion into a body cavity. The device can include a tubular portion having a proximal end and a distal end. The distal end of the tubular portion can be configured to be at least partially inserted into the body cavity. The device can also include a solid state electro-optic element located on the tubular portion. Furthermore, the device can include a power source electrically coupled to the solid state electro-optic element.
    • 提供了用于提供用于单声道和立体声内窥镜检查或孔镜的波长多路复用成像方案的固态照明的各种实施例。 在一个实施例中,本公开提供了构造成用于插入体腔的装置。 该装置可以包括具有近端和远端的管状部分。 管状部分的远端可构造成至少部分地插入体腔中。 该装置还可以包括位于管状部分上的固态电光元件。 此外,该装置可以包括电耦合到固态电光元件的电源。
    • 6. 发明申请
    • ENDOSCOPE
    • US20090270683A1
    • 2009-10-29
    • US12479163
    • 2009-06-05
    • Mina FarrWolfgang Braxmeier
    • Mina FarrWolfgang Braxmeier
    • A61B1/06
    • A61B1/055A61B1/00188A61B1/00193A61B1/042G02B23/2446G02B25/001
    • Improved optical devices and methods transmit optical images along elongate optical paths with relatively limited cross-sectional dimensions using an improved objective, relay, and ocular systems. In a first aspect, at least one intermediate image formed within an optical component, rather than being formed in a gap between optical components. In a preferred embodiment, a first intermediate image is formed within glass of the most proximal objective lens, with the first intermediate image extending axially along a curved image location within the glass. The last intermediate image may similarly be disposed within a distal lens of the ocular system. By making use of a first and/or last intermediate image disposed in this manner within a lens, endoscopes can exhibit a significantly larger Numerical Aperture than known endoscopes having similar cross-sectional dimensions. In a second aspect, the ocular system allows independent adjustment of diopters, magnification, X-Y positioning, and rotation orientation of the captured image while introducing minimal aberrations.
    • 改进的光学装置和方法使用改进的物镜,继电器和眼睛系统,沿着具有相对有限横截面尺寸的细长光学路径传输光学图像。 在第一方面,在光学部件内形成至少一个中间图像,而不是形成在光学部件之间的间隙中。 在优选实施例中,第一中间图像形成在最近端物镜的玻璃内,第一中间图像沿着玻璃内的弯曲图像位置轴向延伸。 最后的中间图像可以类似地设置在眼睛系统的远侧镜片内。 通过利用以这种方式设置在透镜内的第一和/或最后一个中间图像,与已知具有相似横截面尺寸的内窥镜相比,内窥镜可以显示出显着更大的数值孔径。 在第二方面,眼睛系统允许独立调整拍摄图像的屈光度,放大倍率,X-Y定位和旋转方位,同时引入最小的像差。
    • 7. 发明授权
    • Micro-module with micro-lens
    • 微型模块与微透镜
    • US07422377B2
    • 2008-09-09
    • US10882448
    • 2004-06-30
    • Mina Farr
    • Mina Farr
    • G02B6/36
    • G02B6/4204G02B6/4206G02B6/4225
    • Optical micro-modules include an integrated lens holder and microlens for passive coupling of optical signals into an optical fiber. The microlens includes a mounting surface and a curved section having an optical axis. The microlens curved section may be an aspheric silicon lens. The microlens mounting surface is attached to the lens holder mounting surface such that the microlens optical axis is centered with the optical fiber and aligned at a desired focal length from the optical fiber. The lens holder may, for example, be either in mechanical communication with a cable receptacle or be attached to a submount that has a silicon v-groove thereon for receiving an optical fiber. The optical micro-module may be part of other optical devices, for example a transmitter optical sub-assembly or a receiver optical sub-assembly.
    • 光学微模块包括集成透镜架和微透镜,用于将光信号无源耦合到光纤中。 微透镜包括安装表面和具有光轴的弯曲部分。 微透镜弯曲部分可以是非球面硅透镜。 微透镜安装表面附接到透镜保持器安装表面,使得微透镜光轴与光纤居中并且以与来自光纤的所需焦距对准。 透镜保持器可以例如与电缆插座机械连接,或者连接到其上具有硅V形槽的基座,用于接收光纤。 光学微模块可以是其他光学装置的一部分,例如发射器光学子组件或接收器光学子组件。
    • 10. 发明授权
    • Holographic demultiplexor
    • 全息解复用器
    • US06778270B2
    • 2004-08-17
    • US10243305
    • 2002-09-13
    • Mina Farr
    • Mina Farr
    • G01J314
    • G02B5/203G01J3/14G01J3/18G02B5/32H04Q2011/0028
    • A holographic demultiplexor for filtering and spatially positioning individual optical channels, wavelengths, or sets of wavelengths. The holographic demultiplexor includes a volume hologram that includes holograms for redirecting wavelengths included in a light signal. A diffraction grating linearly disperses the light signal and the individual holograms included in the volume hologram spatially reflect the one or more wavelengths back to the diffraction grating as specific angles. The volume hologram spatially reflects the one or more wavelengths such that they are dispersed in two dimensions. The diffraction grating then reflects the two dimensionally dispersed wavelengths to a two dimensional detector array. The detectors of the detector array for adjacent wavelengths can be interleaved to reduce interference. Alternatively, the volume hologram can redirect sets of wavelengths directly to the detector array and the light is not linearly dispersed by a diffraction grating first.
    • 全息解复用器,用于对各个光通道,波长或波长组进行滤波和空间定位。 全息解复用器包括体积全息图,其包括用于重定向包括在光信号中的波长的全息图。 衍射光栅线性地分散光信号,并且包含在体积全息图中的各个全息图在特定角度上空间地将一个或多个波长反射回衍射光栅。 体积全息图在空间上反映一个或多个波长,使得它们分散在二维中。 衍射光栅然后将二维分散的波长反射到二维检测器阵列。 用于相邻波长的检测器阵列的检测器可以交错以减少干扰。 或者,体积全息图可以将波长的组直接重定向到检测器阵列,并且光不首先由衍射光栅线性地分散。