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TS616IDW Datasheet(PDF) 26 Page - STMicroelectronics |
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TS616IDW Datasheet(HTML) 26 Page - STMicroelectronics |
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26 / 36 page ![]() Power supply bypassing TS616 26/36 8 Power supply bypassing Correct power supply bypassing is very important for optimizing performance in high- frequency ranges. Bypass capacitors should be placed as close as possible to the IC pins to improve high-frequency bypassing. A capacitor greater than 1µF is necessary to minimize the distortion. For better quality bypassing, a capacitor of 10nF is added using the same implementation conditions. Bypass capacitors must be incorporated for both the negative and the positive supply. Figure 63. Circuit for power supply bypassing 8.1 Single power supply The TS616 can operate with power supplies ranging from 12V to 5V. The power supply can either be single (12V or 5V referenced to ground), or dual (such as ±6V and ±2.5V). In the event that a single supply system is used, new biasing is necessary to assume a positive output dynamic range between 0 V and +VCC supply rails. Considering the values of VOH and VOL, the amplifier will provide an output dynamic from +0.5V to 10.6V on 25Ω load for a 12V supply and from 0.45V to 3.8V on 10 Ω load for a 5V supply. The amplifier must be biased with a mid-supply (nominally +VCC/2), in order to maintain the DC component of the signal at this value. Several options are possible to provide this bias supply, such as a virtual ground using an operational amplifier or a two-resistance divider (which is the cheapest solution). A high resistance value is required to limit the current consumption. On the other hand, the current must be high enough to bias the non-inverting input of the amplifier. If we consider this bias current (30µA max.) as the 1% of the current through the resistance divider to keep a stable mid-supply, two resistances of 2.2k Ω can be used in the case of a 12V power supply and two resistances of 820 Ω can be used in the case of a 5V power supply. The input provides a high-pass filter with a break frequency below 10Hz which is necessary to remove the original 0 volt DC component of the input signal, and to fix it at +VCC/2. Figure 64 shows a schematic of a 5V single power supply configuration. + -VCC +VCC 10 μF + 10nF TS616 10 μF + 10nF - + -VCC +VCC 10 μF + 10nF TS616 10 μF + 10nF - |
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