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    • 1. 发明授权
    • Narrow bandpass reflective optical filter
    • 窄带通反射式滤光片
    • US5124859A
    • 1992-06-23
    • US705477
    • 1991-05-24
    • Frederick MartinTimothy Fohl
    • Frederick MartinTimothy Fohl
    • G02B5/24
    • G02B5/24
    • A narrow passband, reflective optical filter at a wavelength L, has a container filled with a pressurized gas, the pressurized gas having a ground state transition corresponding to the wavelength L and transparent to all other wavelengths. The container has at least one optically transparent major planar surface serving as the face thereof, whereby incoming broadband light is absorbed by the gas, except at its resonance wavelength L, which is specularly reflected. The optically transparent face of the container optionally has a broadband anti-reflective coating to improve its out-of-band rejection of unwanted wavelengths of the light signal. An optical system utilizing this narrow passband, reflective optical filter has at least one optical element to focus incoming broadband optical signals on the optically transparent face of the narrow passband, reflective optical filter and an optical signal detection component positioned to detect reflected narrowband light of wavelength L specularly reflected from the filter. An optical imaging system utilizing this narrow passband, reflective optical filter has at least one narrow passband, reflective optical filter, at least one optical element to focus incoming broadband optical signals on the optically transparent face of the filter, and an imaging optical signal detection component positioned to detect and view reflected narrowband light of wavelength L specularly reflected from the filter, thereby providing an image of the source of the optical signals.
    • 波长为L的窄通带反射式滤光器具有填充有加压气体的容器,该加压气体具有对应于波长L的基态状态转变并对所有其它波长透明。 容器具有至少一个用作其表面的光学透明主平面,由此,入射宽带光被除了被镜面反射的谐振波长L之外的气体吸收。 容器的光学透明表面可选地具有宽带抗反射涂层,以改善其对光信号的不需要的波长的带外抑制。 利用这种窄通带的光学系统,反射式光学滤波器具有至少一个光学元件,用于将入射的宽带光信号聚焦在窄通带的光学透明面上,反射光学滤波器和光信号检测元件,其被定位成检测波长的反射窄带光 L镜像反射从过滤器。 利用这种窄通带的光学成像系统,反射型滤光器具有至少一个窄通带,反射式滤光器,至少一个光学元件,用于将入射的宽带光信号聚焦在滤光器的光学透明面上,以及成像光信号检测部件 定位成检测和观察从滤波器镜面反射的波长L的反射窄带光,从而提供光信号源的图像。
    • 2. 发明申请
    • Communication device
    • 通讯设备
    • US20050105595A1
    • 2005-05-19
    • US10715222
    • 2003-11-17
    • Frederick MartinEdgar CallawayPaul GordayDavid Taubenheim
    • Frederick MartinEdgar CallawayPaul GordayDavid Taubenheim
    • H04B1/707H04L27/22H04B1/713H04B7/216
    • H04L27/22H04B1/707H04B1/709H04B2201/70707
    • A direct sequence spread spectrum (DSSS) receiver (100) consistent with certain embodiments has a frequency generator (112) that generates a local oscillator signal without use of a piezoelectric crystal. A frequency converter (108) receives the local oscillator signal and mixes the local oscillator signal with a received DSSS signal to produce a down-converted signal. The received DSSS signal is encoded using a first set of DSSS code. A differential chip detector (116) receives the down-converted signal and converts the down-converted signal to a differentially detected signal. A correlator (120) receives the differentially detected signal and correlates the detected signal with a set of DSSS codes that are time-shifted from the first set of DSSS codes. This abstract is not to be considered limiting, since other embodiments may deviate from the features described in this abstract.
    • 与某些实施例一致的直接序列扩频(DSSS)接收机(100)具有在不使用压电晶体的情况下产生本地振荡器信号的频率发生器(112)。 变频器(108)接收本地振荡器信号,并将本地振荡器信号与接收到的DSSS信号进行混频,产生下变频信号。 接收的DSSS信号使用第一组DSSS码进行编码。 差分芯片检测器(116)接收下变频信号并将下变频信号转换成差分检测信​​号。 相关器(120)接收差分检测信​​号,并将检测到的信号与从第一组DSSS码进行时移的一组DSSS码进行相关。 该摘要不被认为是限制性的,因为其他实施例可能偏离本摘要中描述的特征。
    • 7. 发明授权
    • Secure two-way submarine communication system
    • 安全双向海底通信系统
    • US5038406A
    • 1991-08-06
    • US409174
    • 1989-09-19
    • Paul J. TittertonFrederick MartinDan J. RadeckiRobert W. Cotterman
    • Paul J. TittertonFrederick MartinDan J. RadeckiRobert W. Cotterman
    • H04B10/22
    • H04B13/02H04B10/11
    • An arrangement for secure two-way tactical laser communications between a submarine submerged in an ocean and an airborne platform. During an initital acquisition mode, the airborne transceiver sends a downlink pulse-modulated blue-green laser beam to the ocean surface and below using a predetermined IFF code to identify the transceiver to the submarine. In the preferred embodiment the transmit optics spread the beam out into an elongated elliptically-shaped pattern to maximize coverage of the search area. When the downlink beam energy is within range of the submarine, an optical receiver on the submarine detects the beam, filters out the background light with a very narrow-band filter, and converts the light pulses to equivalent electrical pulse. A signal processor in the submarine receiver decodes the electrical pulses and verifies the IFF code to prevent the submarine from responding to a laser beam from an unfriendly source. If the IFF is verified, the submarine laser transceiver transmits a pulse-modulated uplink beam response at the same wavelength, but timed so that the light pulses are time interleaved with the downlink pulses. The uplink beam power is carefully controlled to the minimum power level required by the airborne receiver to recover the uplink beam. As soon as the airborne receiver verifies the uplink IFF code, communications being over the laser link for the duration of time that the airborne platform receiver is within range of the uplink beam. In one embodiment of this invention, both receivers employ a Cesium filled atomic resonance filter (ARF) to separate the blue-green beam from any background light.
    • 海底潜艇与机载平台之间的安全双向战术激光通信安排。 在初始采集模式下,机载收发器使用预定的IFF码向下游脉冲调制的蓝绿色激光束发射到海洋表面及以下,以识别潜艇的收发信机。 在优选实施例中,发射光学器件将光束扩展成细长的椭圆形图案以最大化搜索区域的覆盖。 当下游光束能量在潜艇的范围内时,潜艇上的光接收器检测光束,用非常窄带滤波器滤出背景光,并将光脉冲转换成等效的电脉冲。 潜艇接收器中的信号处理器解码电脉冲并验证IFF码,以防止潜艇响应来自不友好源的激光束。 如果IFF被验证,则海底激光收发器以相同的波长发送脉冲调制的上行链路波束响应,但是被定时,使得光脉冲与下行链路脉冲进行时间交织。 上行链路波束功率被小心地控制到机载接收机所需的恢复上行链路波束所需的最小功率电平。 一旦机载接收机验证上行链路IFF代码,通信正在激光链路上,持续时间,机载平台接收机在上行链路波束的范围内。 在本发明的一个实施例中,两个接收机采用铯填充的原子共振滤波器(ARF)来将蓝绿光束与任何背景光分离。
    • 8. 发明授权
    • Tracking telescope using an atomic resonance filter
    • 使用原子共振滤波器跟踪望远镜
    • US5079414A
    • 1992-01-07
    • US594771
    • 1990-10-09
    • Frederick Martin
    • Frederick Martin
    • G01S3/786
    • G01S3/786
    • A tracking system to enable a tracking telescope follow a light source, utilizes an atomic resonance filter positioned in close proximity to said telescope, and imaging optics positioned between the light source and the atomic resonance filter. The atomic resonance filter is positioned such that light signals from the light source pass through the imaging optics and are focused in a region within its interior. A plurality of optical sensors are positioned to detect re-emitted light signals from the atomic resonance filter. The optical sensors convert the detected re-emitted light signals to electrical signals proportional to the intensity of said re-emitted light signals. The telescope is repositioned by using these differences in electrical signals to equalize the re-emitted light signals detected by each of the optical sensors, thereby pointing the telescope directly at incoming light from the light source. Several configurations of the imaging optics, the atomic resonance filter and the optical sensors are possible.
    • 跟踪系统能够使跟踪望远镜遵循光源,利用位于所述望远镜附近的原子共振滤波器以及位于光源和原子共振滤波器之间的成像光学元件。 原子共振滤波器被定位成使得来自光源的光信号通过成像光学器件并聚焦在其内部的区域中。 定位多个光学传感器以检测来自原子共振滤波器的再发射的光信号。 光学传感器将检测到的再发射光信号转换成与所述重新发射的光信号的强度成比例的电信号。 通过使用电信号中的这些差异来重新定位望远镜,以平衡由每个光学传感器检测到的再发射光信号,从而将望远镜直接指向来自光源的入射光。 成像光学元件,原子共振滤光器和光学传感器的几种配置是可能的。
    • 10. 发明授权
    • Secure two-way communications with submerged submarines
    • 与潜水艇保持双向通信
    • US4995101A
    • 1991-02-19
    • US409208
    • 1989-09-19
    • Paul J. TittertonFrederick MartinDan J. RadeckiRobert W. Cotterman
    • Paul J. TittertonFrederick MartinDan J. RadeckiRobert W. Cotterman
    • H04B10/22
    • H04B13/02H04B10/11
    • A method of providing secure tactical communications between a submerged submarine and an airborne platform using a pulse-modulated blue-green laser beam. During an initial acquisition mode, the airborne transceiver sends out a downlink laser beam to the ocean surface and below using a predetermined IFF code to identify the transceiver to the submarine. In the preferred embodiment the transmit optics spread the beam out into an elongated elliptically-shaped pattern to maximize coverage of the search area. When the downlink beam energy is within range of the submarine, an optical receiver on the submarine detects the beam, filters out the background light with a very narrow-band filter, and converts the light pulses to equivalent electrical pulses. A signal processor in the submarine receiver decodes the electrical pulses and verifies the IFF code to prevent the submarine from responding to a laser beam from an unfriendly source. If the IFF is verified, the submarine laser transceiver transmits a pulse-modulated uplink beam response at the same wavelength, but timed so that the light pulses are time interleaved with the downlink pulses. The uplink beam power is carefully controlled to the minimum power level required by the airborne receiver to recover the uplink beam. As soon as the airborne receiver verifies the uplink IFF code, communications begin over the laser link for the duration of time that the airborne platform receiver is within range of the uplink beam. In one embodiment of this invention, both receivers employ a Cesium filled atomic resonance filter (ARF) to separate the blue-green beam from any background light.
    • 一种使用脉冲调制的蓝 - 绿激光束在潜水艇和机载平台之间提供安全的战术通信的方法。 在初始采集模式期间,机载收发器使用预定的IFF码将下行链路激光束发送到海洋表面及以下,以识别潜艇的收发信机。 在优选实施例中,发射光学器件将光束扩展成细长的椭圆形图案以最大化搜索区域的覆盖。 当下游光束能量在潜艇的范围内时,潜艇上的光接收器检测光束,用非常窄带滤波器滤出背景光,并将光脉冲转换成等效的电脉冲。 潜艇接收器中的信号处理器解码电脉冲并验证IFF码,以防止潜艇响应来自不友好源的激光束。 如果IFF被验证,则海底激光收发器以相同的波长发送脉冲调制的上行链路波束响应,但是被定时,使得光脉冲与下行链路脉冲进行时间交织。 上行链路波束功率被小心地控制到机载接收机所需的恢复上行链路波束所需的最小功率电平。 一旦机载接收机验证上行链路IFF码,通信将在激光链路上开始,持续时间,机载平台接收机在上行链路波束的范围内。 在本发明的一个实施例中,两个接收机采用铯填充的原子共振滤波器(ARF)来将蓝绿光束与任何背景光分离。