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Systematic biases in laser ranging measurements

机译:激光测距中的系统偏差

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Abstract: Avalanche photo diodes operated in the Geiger mode in an laser ranging application can be considered almost as digital detectors. The output signal amplitude does not show any dependence on the input light level. On the other hand the incoming light intensity accounts for the characteristic delay in the response time of this semiconductor detector. Once a break down of the bias voltage occurs, the amplitude steeply increases to a preset voltage level until the avalanche is being quenched by the electronic circuit. However the evaluation of the signal risetime makes a correction of the observed delay caused by a variant transit time inside the avalanche diode possible. A simple simulation model was made and matched to experimentally obtained measurements in order to understand the basic mechanism of the observed timewalk. A linear relationship between the characteristic delay of the detector response and the measurable output pulse risetime can be exploited for a correction to the measured range between a laser ranging tracking station and the target satellite. An electronic circuit was designed for an automatic shot by shot correction of the SLR-measurements, where large fluctuations in the receive signal intensity are commonplace because of the turbulent atmospheric propagation path. This unit has been evaluated under laboratory conditions and in the satellite ranging application.!13
机译:摘要:在激光测距应用中,以盖革模式工作的雪崩光电二极管几乎可以视为数字检测器。输出信号幅度与输入光水平无关。另一方面,入射光强度解释了该半导体检测器响应时间的特征延迟。一旦发生偏置电压击穿,振幅就会急剧增加到预设的电压水平,直到雪崩被电子电路淬灭为止。然而,信号上升时间的评估使得可以纠正由雪崩二极管内部变化的传输时间引起的观察到的延迟。制作了一个简单的仿真模型,并将其与实验获得的测量值进行了匹配,以了解所观察到的时间步移的基本机理。可以利用检测器响应的特征延迟与可测量的输出脉冲上升时间之间的线性关系来校正激光测距跟踪站与目标卫星之间的测量范围。一种电子电路被设计用于通过SLR测量的自动校正来自动发射,由于大气传播路径的紊乱,接收信号强度的大波动是司空见惯的。已在实验室条件和卫星测距应用中对该装置进行了评估。!13

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