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    • 5. 发明授权
    • Phase modulation laser communication system
    • 相位调制激光通信系统
    • US3654473A
    • 1972-04-04
    • US3654473D
    • 1969-04-28
    • HUGHES AIRCRAFT CO
    • NUSSMEIER THOMAS A
    • H03C3/36H04B10/142H04B9/00
    • H03C3/36H04B10/548H04B10/671
    • In the disclosed laser communication system, at a transmitter a linearly polarized laser carrier beam is phase modulated with an informational signal such that when the resultant beam is resolved into two linearly polarized component beams in mutually perpendicular planes the respective component beams are shifted forwardly and backwardly in phase by an amount proportional to the informational signal. In a receiver the received phase modulated beam is combined with a local oscillator laser beam which is linearly polarized in a plane parallel to the plane of polarization of the carrier beam, and the resultant beam is separated into a pair of linearly polarized laser beams in respective planes parallel to the planes of the aforementioned transmitter component beams. These linearly polarized laser beams are converted into respective intermediate frequency electrical signals, and a reproduction of the informational signal is obtained by phase comparing these electrical signals.
    • 在所公开的激光通信系统中,在发射机处,线偏振激光载波波束用信号信号进行相位调制,使得当所得到的光束在相互垂直的平面中被分解为两个线性偏振分量波束时,各分量光束向前和向后移动 与信号信号成比例的数量的同相。 在接收机中,接收的相位调制光束与在平行于载波束的偏振平面的平面中线偏振的本地振荡器激光束组合,并且所得到的光束分成一对线性偏振激光束 平行于上述发射机部件光束的平面的平面。 这些线性偏振激光束被转换成各自的中频电信号,通过对这些电信号进行相位比较来获得信息信号的再现。
    • 9. 发明授权
    • FM modulation device
    • FM调制装置
    • US5973820A
    • 1999-10-26
    • US080312
    • 1998-05-18
    • Masaru FuseKuniaki UtsumiSeiichiro KawashimaKoji Kikushima
    • Masaru FuseKuniaki UtsumiSeiichiro KawashimaKoji Kikushima
    • G02F2/00H03C3/36H04B10/2507H04B10/516H04B10/54H04B10/548H04B10/564H04B10/572H04B10/61G02F1/23
    • H03C3/36
    • A branch portion 107 branches a modulating signal into two signals in opposite phases. One of them is inputted to an FM laser element 102. The other one is adjusted in propagation delay and in amplitude and then is inputted to an IM suppressing laser element 110. The FM laser element 102 outputs an optical-frequency-modulated signal around a wavelength .lambda.1, whose optical intensity is also modulated. A local light source 104 outputs light at a wavelength .lambda.0, which is different from the oscillation wavelength .lambda.1 of the FM laser element 102 by .DELTA..lambda.. The IM suppressing laser element 110 outputs an optical-intensity-modulated signal. The three lights are combined and inputted to a photodetection portion 106. The photodetection portion 106 applies a heterodyne detection to inputted lights to output an FM modulated signal corresponding to a beat signal of the outputted optical signal from the FM laser element 102 and the outputted light from the local light source 104 at frequency corresponding to the difference .DELTA..lambda. between the original two wavelengths, and also cancels the average-value variation component in the FM modulated signal with an electrical signal produced by square-law detecting the optical-intensity-modulated signal from the IM suppressing laser element 110, thereby producing an ideal FM modulated signal.
    • 分支部分107将调制信号分成相反相位的两个信号。 其中一个被输入到FM激光元件102.另一个被调整为传播延迟和幅度,然后被输入到IM抑制激光元件110.MF激光元件102输出一个光频调制信号 波长λ1,其光强度也被调制。 局部光源104输出波长λ0的光,其与FM激光元件102的振荡波长λ1不同,通过DELTAλ。 IM抑制激光元件110输出光强度调制信号。 三个光被组合并输入到光检测部分106.光检测部分106对输入的光进行外差检测,以输出对应于来自FM激光元件102的输出光信号的拍频信号的FM调制信号和输出的光 从本地光源104以与原始两个波长之间的差ΔTAλ相对应的频率,并且还利用通过检测光强度调制的平方律产生的电信号来消除FM调制信号中的平均值变化分量 来自IM抑制激光元件110的信号,从而产生理想的FM调制信号。