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STV0502 Fiches technique(PDF) 4 Page - STMicroelectronics |
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STV0502 Fiches technique(HTML) 4 Page - STMicroelectronics |
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4 / 15 page ![]() CDS_IN FCDS t1 t2 t4 t3 t PROP t DADC Pixel N 3 CLK Pipe-Line Delay FS CDS_OUT ADC_IN ADC_CLOCK DATA_OUT Sampling Period Pixel N+1 Pixel N+2 Pixel N+3 Pixel N+4 Pixel N+5 Pixel N-4 Pixel N-3 Pixel N-2 Pixel N-1 Pixel N Pixel N+1 Pixel N Pixel N+1 Pixel N+2 Pixel N+3 Pixel N+4 Notation : - t1 is the delay between the falling edge of FCDS and the beginning of the active pixel level from the CCD. - t2 is the delay between the falling edge of FS and the end of the active pixel level from the CCD. t1, t2, t3 and t4 must be kept > 0 in the Application. -tPROP is the propagation delay between CDS_OUT and ADC_IN signals (within the AGC block). -tDADC is the delay on the ADC outputs between the rising edge of the clock and data output. Figure 1 FUNCTIONAL DESCRIPTION (continued) It is followed by a Voltage Controlled Amplifier (range 8dB - 34dB), that can be switched into a fixed 26dB gain amplifier. The VCA output is differential and 2 buffers are driving the two output pins, with a load impedance down to 5k Ω. A bias circuitry and an external capacitor (ACC) form a DC feedback loop on the VCA DC bias, in order to correct any DC offset on the VCA output. Finally, a peak detector (double alternance) is used to compare the output signal with the reference threshold, to be regulated at. An external capacitor (CAGC) is used for the AGC time constants. If the signal goes above the threshold, a 500 µA current is charging the capacitor with a fast reponse time(attack). In case of very big signals, a second charge cureent of about 5mA is given, in order to reduce the period during which the output signal is saturated. Otherwise, a constant 1 µA current dis- charges the capacitor with a slow response time (decay). The capacitor voltage controls the VCA gain. This constitues the AGC loop. FS CDS_OUT FCDS CDS_IN = CCD Signal Feedtrough Level Signal Level Figure 2 STV0502 4/15 |
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