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LTC1860 Datasheet(PDF) 13 Page - Linear Technology |
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LTC1860 Datasheet(HTML) 13 Page - Linear Technology |
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13 / 16 page ![]() LTC2453 13 2453f INPUT SIGNAL FREQUENCY (MHz) 0 –40 0 1.00 1.25 1.50 2453 F12 –60 –80 –20 –100 2.5 5.0 7.5 INPUT SIGNAL FREQUENCY (Hz) 0 –20 –10 0 480 2453 F13 –30 –40 –25 –15 –5 –35 –45 –50 120 60 240 180 360 420 540 300 600 Figure 12. LTC2453 Input Signal Attentuation vs Frequency Figure 13. LTC2453 Input Signal Attenuation vs Frequency (Low Frequencies) Signal Bandwidth, Transition Noise and Noise Equivalent Input Bandwidth The LTC2453 includes a sinc1 type digital filter with the first notch located at f0 = 60Hz. As such, the 3dB input signal bandwidth is 26.54Hz. The calculated LTC2453 input signal attenuation vs frequency over a wide frequency range is shown in Figure 12. The calculated LTC2453 input signal attenuation vs frequency at low frequencies is shown in Figure 13. The converter noise level is about 1.4μVRMS and can be modeled by a white noise source connected at the input of a noise-free converter. On a related note, the LTC2453 uses two separate A/D converters to digitize the positive and negative inputs. Each of these A/D converters has 1.4μVRMS transition noise. If one of the input voltages is within this small transition noise band, then the output will fluctuate one bit, regardless of the value of the other input voltage. If both of the input voltages are within their transition noise bands, the output can fluctuate 2 bits. For a simple system noise analysis, the VIN drive circuit can be modeled as a single-pole equivalent circuit character- ized by a pole location fi and a noise spectral density ni. If the converter has an unlimited bandwidth, or at least a bandwidth substantially larger than fi, then the total noise contribution of the external drive circuit would be: Vn f ni i =π /• 2 Then, the total system noise level can be estimated as the square root of the sum of (Vn2) and the square of the LTC2453 noise floor (~1.4 μV2). APPLICATIONS INFORMATION |
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