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TS612 Folha de dados(PDF) 8 Page - STMicroelectronics |
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TS612 Folha de dados(HTML) 8 Page - STMicroelectronics |
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8 / 10 page ![]() TS612 8/10 For the ADSL upstream path, a lowpass filter is absolutely necessary to cutoff the higher frequen- cies from the DAC analog output. In this simple non-inverting amplification configuration, it will be easy to implement a Sallen-Key lowpass filter by using the TS612. For ADSL over POTS, a maxi- mum frequency of 135kHz is reached. For ADSL over ISDN, the maximum frequency will be 276kHz. INCREASING THE LINE LEVEL BY USING AN ACTIVE IMPEDANCE MATCHING With passive matching, the output signal ampli- tude of the driver must be twice the amplitude on the load. To go beyond this limitation an active maching impedance can be used. With this tech- nique it is possible to keep good impedance matching with an amplitude on the load higher than the half of the ouput driver amplitude. This concept is shown in figure3 for a differential line. Component calculation: Let us consider the equivalent circuit for a single ended configuration, figure4. Let us consider the unloaded system. Assuming the currents through R1, R2 and R3 as respectively: As Vo° equals Vo without load, the gain in this case becomes : The gain, for the loaded system will be (1): As shown in figure5, this system is an ideal gener- ator with a synthesized impedance as the internal impedance of the system. From this, the output voltage becomes: with Ro the synthesized impedance and Iout the output current. On the other hand Vo can be ex- pressed as: By identification of both equations (2) and (3), the synthesized impedance is, with Rs1=Rs2=Rs: Figure 3 : TS612 as a differential line driver with an active impedance matching R4 R2 Vi Vi Vo Vo RL 100 Ω 1:n Hybrid & Transformer GND Vcc+ 10 µ 100n 100n 100n 1k 1k Rs1 Rs2 10n 1 µ R3 R5 Vo° Vo° GND Vcc+ Vcc+ + _ + _ GND 1/2 R1 1/2 R1 Vcc/2 Figure 4 : Single ended equivalent circuit 1/2R1 R2 R3 + _ Vi Vo Rs1 -1 Vo° 1/2RL 2Vi R1 --------- Vi Vo ° – () R2 --------------------------and Vi Vo + () R3 ------------------------ , G Vo noload () Vi ------------------------------- 1 2R2 R1 ----------- R 2 R 3 ------- ++ 1 R2 R3 ------- – ----------------------------------- == GL Vo withload () Vi ------------------------------------ 1 2 --- 1 2R2 R1 ----------- R2 R3 ------- ++ 1 R2 R3 ------- – ----------------------------------- 1 () , == Vo ViG () RoIout () – = 2 () , Vo Vi 1 2R2 R1 ----------- R2 R3 ------- ++ 1 R2 R3 ------- – ----------------------------------------------- Rs1Iout 1 R2 R3 ------- – --------------------- 3 () , – = Ro Rs 1 R2 R3 ------- – ----------------- 4 () , = |
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