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    • 4. 发明申请
    • Injector system having a front loading pressure jacket assembly
    • 具有前装载压力套管组件的喷射器系统
    • US20050059932A1
    • 2005-03-17
    • US10911863
    • 2004-08-05
    • David ReillyEugene Gelblum
    • David ReillyEugene Gelblum
    • A61M5/145A61M1/00
    • A61M5/14546A61M5/14566A61M2005/14553A61M2205/581A61M2205/582A61M2205/583Y10S128/01
    • An injector system includes an injector and a syringe. The injector includes a housing having a front wall, a drive member moveable through the front wall of the housing, and a pressure jacket assembly for operably associating the syringe with the housing. The pressure jacket assembly includes a rearward end mounted on the front wall of the housing and a forward open end for receiving the syringe therethrough. The syringe includes a body having a main section, a conical section in fluid communication with the main section and a fluid discharge section in fluid communication with the conical section. The syringe further includes a plunger movably disposed in the body. The plunger includes one or more hook members extending rearward from the plunger for connecting the plunger to the drive member of the injector. The syringe also includes a protrusion for facilitating handling of the syringe. Preferably, the protrusion is operably associated with and extends forwardly from the conical section of the body.
    • 注射器系统包括注射器和注射器。 注射器包括壳体,其具有前壁,可移动穿过壳体的前壁的驱动构件和用于将注射器与壳体可操作地相关联的压力套组合件。 压力套组件包括安装在壳体的前壁上的后端和用于通过其接纳注射器的前开口端。 注射器包括主体,其具有主部分,与主部分流体连通的锥形部分和与锥形部分流体连通的流体排出部分。 注射器还包括可移动地设置在主体中的柱塞。 柱塞包括从柱塞向后延伸的一个或多个钩构件,用于将柱塞连接到喷射器的驱动构件。 注射器还包括用于便于处理注射器的突起。 优选地,突出部可操作地与主体的锥形部分相关联并向前延伸。
    • 6. 发明申请
    • Solar Blind Ultraviolet Communication System for Unattended Ground Sensor Network
    • US20070253713A1
    • 2007-11-01
    • US11630656
    • 2005-10-25
    • David ReillyDaniel MoriartyWarren ClarkJohn Maynard
    • David ReillyDaniel MoriartyWarren ClarkJohn Maynard
    • H04J14/02
    • H04B10/1125
    • Solar blind ultraviolet communication systems can provide short to medium range non line-of-sight and line-of-sight links which are covert and insensitive to meteorological conditions. Operation in the solar blind region provides zero background conditions and strong scattering interactions. Scattering provides the basis for transferring information when non line-of-sight conditions exist. Zero background conditions are a result of strong absorption of solar radiation in the upper atmosphere. These conditions make it possible to operate very sensitive wide field-of-view quantum noise limited photon counting receivers, and provide communication systems that perform very differently than free space optical systems that operate in other spectral regions. These systems may be compact and require very low primary power for operation. Non line-of-sight ultraviolet communication systems can provide reliable inter-nodal communications for unattended ground sensor networks. This type of system is particularly attractive when non line-of-sight conditions exist between nodes, covert operation is required, and insensitivity to positioning and ground proximity are desired. Light emitting diode technology being developed under the DARPA SUVOS program represents an enabling technology for these systems. Small, low power and low cost systems compatible with unattended ground sensor networks will be available as a result of this program. Data rates of hundreds of kbps with bit error rates (BER) of 10−7 and inter-nodal ranges of hundreds of meters are consistent with phenomenology and technology. Line-of-sight ultraviolet communications systems also offer some unique characteristics for exfiltration of data from an unattended ground sensor network. The absence of background radiation makes it possible to operate with wide field-of-view receivers and large transmitter cone angles. This capability significantly reduces acquisition/pointing/tracking requirements that are traditionally associated with free space optical links. In addition, strong forward aerosol scatter in the ultraviolet reduces dependence on meteorological conditions. The operational range of line-of-sight solar blind communication systems is on the order of kilometers. By selection of operating wavelength within the solar blind region, performance can be optimized to provide reliable communications and at the same time provide covert operation. Data rates on the order of megabits per second are possible with line-of-sight systems.