| Electronic Components Datasheet Search |
|
LTC2412IGN Datasheet(PDF) 30 Page - Linear Technology |
|
|
|||||||||||||||||||||||||||||
LTC2412IGN Datasheet(HTML) 30 Page - Linear Technology |
|
30 / 36 page ![]() LTC2412 30 2412f APPLICATIO S I FOR ATIO Input Bandwidth The combined effect of the internal Sinc4 digital filter and of the analog and digital autocalibration circuits deter- mines the LTC2412 input bandwidth. When the internal oscillator is used with the notch set at 60Hz (FO = LOW), the 3dB input bandwidth is 3.63Hz. When the internal oscillator is used with the notch set at 50Hz (FO = HIGH), the 3dB input bandwidth is 3.02Hz. If an external conver- sion clock generator of frequency fEOSC is connected to the FO pin, the 3dB input bandwidth is 0.236 • 10–6 • fEOSC. Due to the complex filtering and calibration algorithms utilized, the converter input bandwidth is not modeled very accurately by a first order filter with the pole located at the 3dB frequency. When the internal oscillator is used, the shape of the LTC2412 input bandwidth is shown in Fig- ure 31 for FO = LOW and FO = HIGH. When an external oscillator of frequency fEOSC is used, the shape of the LTC2412 input bandwidth can be derived from Figure 31, FO = LOW curve in which the horizontal axis is scaled by fEOSC/153600. The conversion noise (800nVRMS typical for VREF = 5V) can be modeled by a white noise source connected to a noise free converter. The noise spectral density is 62.75nV/ √Hz for an infinite bandwidth source and 86.1nV/ √Hz for a single 0.5MHz pole source. From these numbers, it is clear that particular attention must be given to the design of external amplification circuits. Such circuits face the simultaneous requirements of very low bandwidth (just a few Hz) in order to reduce the output referred noise and relatively high bandwidth (at least 500kHz) necessary to drive the input switched-capacitor network. A possible solution is a high gain, low bandwidth amplifier stage followed by a high bandwidth unity-gain buffer. When external amplifiers are driving the LTC2412, the ADC input referred system noise calculation can be simpli- fied by Figure 32. The noise of an amplifier driving the LTC2412 input pin can be modeled as a band limited white noise source. Its bandwidth can be approximated by the bandwidth of a single pole lowpass filter with a corner frequency fi. The amplifier noise spectral density is ni. From Figure 32, using fi as the x-axis selector, we can find on the y-axis the noise equivalent bandwidth freqi of the Figure 29. Resolution (NoiseRMS ≤ 1LSB) vs Output Data Rate and Reference Voltage Figure 30. Resolution (INLMAX ≤ 1LSB) vs Output Data Rate and Reference Voltage Figure 31. Input Signal Bandwidth Using the Internal Oscillator OUTPUT DATA RATE (READINGS/SEC) 0 102030405060708090 100 2412 F29 24 23 22 21 20 19 18 17 16 15 14 13 12 VREF = 5V VCC = 5V REF – = GND VINCM = 2.5V VIN = 0V FO = EXTERNAL OSCILLATOR TA = 25°C RESOLUTION = LOG2(VREF/NOISERMS) VREF = 2.5V OUTPUT DATA RATE (READINGS/SEC) 0 102030405060708090 100 2412 F30 22 20 18 16 14 12 10 8 TA = 25°C VCC = 5V REF – = GND VINCM = 0.5 • REF + –0.5V • VREF < VIN < 0.5 • VREF FO = EXTERNAL OSCILLATOR VREF = 2.5V VREF = 5V RESOLUTION = LOG2(VREF/INLMAX) DIFFERENTIAL INPUT SIGNAL FREQUENCY (Hz) 0 0.5 1 1.5 2 2.5 3 3.5 4 4.5 5 2412 F31 0.0 –0.5 –1.0 –1.5 –2.0 –2.5 –3.0 –3.5 –4.0 –4.5 –5.0 –5.5 –6.0 FO = HIGH FO = LOW |
|
Link URL |
| Does ALLDATASHEET help your business so far? [ DONATE ] |
About Alldatasheet | Advertisement | Contact us | Privacy Policy | Link to Datasheet | Link Exchange | Manufacturer List All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |