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ADA4433-1BCPZ-R2 bảng dữ liệu(PDF) 17 Page - Analog Devices |
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ADA4433-1BCPZ-R2 bảng dữ liệu(HTML) 17 Page - Analog Devices |
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17 / 25 page ![]() Data Sheet ADA4432-1/ADA4433-1 Rev. E | Page 17 of 25 APPLICATIONS INFORMATION METHODS OF TRANSMISSION Pseudo Differential Mode (Unbalanced Source Termination) The ADA4432-1 can be used as a pseudo differential driver with an unbalanced transmission line. Pseudo differential mode uses a single conductor to carry an unbalanced data signal from the driver to the receiver, while a second conductor is used as a ground reference signal. The positive conductor connects the ADA4432-1 output to the positive input of a differential receiver, such as ADA4830-1. The negative wire or ground conductor from the source circuitry connects to the negative input of the receiver. Match the impedance of the input termination at the receiver to the output termination of the ADA4432-1 (see Figure 43). Figure 43. Pseudo Differential Mode Pseudo Differential Mode (Balanced Source Impedance) Pseudo differential signaling is typically implemented using unbalanced source termination, as shown in Figure 43. With this arrangement, however, common-mode signals on the positive and negative inputs receive different attenuation due to unbalanced termination at the source. This effectively converts some of the common-mode signal into a differential mode signal, degrading the overall common-mode rejection of the system. System common-mode rejection can be improved by balancing the output impedance of the driver, as shown in Figure 44. Splitting the source termination resistance evenly between the hot and cold conductors results in matched attenuation of the common-mode signals, ensuring maximum rejection. Figure 44. Pseudo Differential Mode with Balanced Source Impedance Fully Differential Mode The ADA4433-1 is designed to be used as a fully differential driver. The differential outputs of the ADA4433-1 allow fully balanced transmission using twisted or untwisted pair cable. In this configuration, the differential output termination consists of two source resistors, one on each output, and each equal to half the receiver input termination. For example, in a 75 Ω system, each output of the ADA4433-1 is back terminated with 37.5 Ω resistors that are connected to a differential resistance of 75 Ω at the receiver. An illustration of this arrangement is shown in Figure 45. Figure 45. Fully Differential Mode PRINTED CIRCUIT BOARD (PCB) LAYOUT As with all high speed applications, attention to PCB layout is of paramount importance. Adhere to standard high speed layout practices when designing with the ADA4432-1 and ADA4433-1. A solid ground plane is recommended. Place a 0.1 μF surface- mount, ceramic power supply decoupling capacitor as close as possible to the supply pin. Connect the GND pin(s) to the ground plane with a trace that is as short as possible. Use controlled impedance traces of the shortest length possible to connect to the signal I/O pins and do not run the traces over any voids in the ground plane. A 75 Ω impedance level is typically used in video applications. All signal outputs of the ADA4432-1 and ADA4433-1 should include series termination resistors when driving transmission lines. When the ADA4432-1 or the ADA4433-1 receives its inputs from a device with current outputs, the required load resistor value for the output current is most often different from the characteristic impedance of the signal traces. In this case, if the interconnections are sufficiently short (less than 2 inches), the trace does not need to be terminated in its characteristic impedance. INN INP ADA4830-1 75Ω − + 75Ω POSITIVE WIRE NEGATIVE WIRE DRIVER PCB ADA4432-1 INN INP ADA4830-1 75Ω − + 37.5Ω 37.5Ω POSITIVE WIRE NEGATIVE WIRE DRIVER PCB ADA4432-1 INN INP ADA4830-1 75Ω − + 37.5Ω 37.5Ω POSITIVE WIRE NEGATIVE WIRE DRIVER PCB ADA4433-1 |
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