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LT6236 Datasheet(PDF) 17 Page - Linear Technology |
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LT6236 Datasheet(HTML) 17 Page - Linear Technology |
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17 / 50 page ![]() LTC2372-16 17 237216f For more information www.linear.com/LTC2372-16 applicaTions inForMaTion OVERVIEW The LTC2372-16 is a low noise, high speed, highly con- figurable 8-channel 16-bit successive approximation register (SAR) ADC. The LTC2372-16 features a low crosstalk 8-channel input multiplexer (MUX) and a high performance 16-bit accurate ADC core that can be con- figured to accept fully-differential, pseudo-differential unipolar and pseudo-differential bipolar input signals. The input range of the ADC core can be set independently of the MUX input channel configuration. The outputs of the MUX and inputs of the ADC core are pinned out, allowing flexibility in how the MUX is connected to the ADC core. The MUX may be wired directly to the ADC core or signal conditioning circuitry may be inserted between the MUX andADCcore,dependingontheapplication.TheLTC2372- 16 also has a selectable digital gain compression (DGC) feature. The LTC2372-16 has a programmable sequencer that can be programmed with configuration words ranging from a depth of one up to a maximum depth of 16 configuration words. The LTC2372-16 has an onboard low drift reference and a single-shot capable reference buffer. The LTC2372-16 also has a high speed SPI-compatible serial interface that supports 1.8V, 2.5V, 3.3V and 5V logic. The LTC2372-16 automatically naps between conversions, leading to reduced power dissipation that scales with the sampling rate. A sleep mode is also provided for further power savings during inactive periods. CONVERTER OPERATION The LTC2372-16 operates in two phases. During the ac- quisition phase when MUXOUT+/– is wired to ADCIN+/–, the charge redistribution capacitor D/A converter (CDAC) is connected through the MUX to the selected MUX analog input pins. A rising edge on the CNV pin initiates a conversion. During the conversion phase, the 16-bit CDAC is sequenced through a successive approximation algorithm, effectively comparing the sampled input with binary-weighted fractions of the reference voltage (e.g. VREFBUF/2, VREFBUF/4 … VREFBUF/65536) using a differ- ential comparator. At the end of conversion, the CDAC output approximates the sampled analog input. The ADC control logic then prepares the 16-bit digital output code for serial transfer. Figure 2. LTC2372-16 Two’s Complement Transfer Function. Straight Binary Transfer Function Can Be Obtained by Inverting the Most Significant Bit (MSB) of Each Output Code TRANSFER FUNCTION The LTC2372-16 digitizes the full-scale voltage of 2 × REFBUF in fully differential mode and REFBUF in pseudo- differential mode into 216 levels. With REFBUF = 4.096V, the resulting LSB sizes in fully differential and pseudo- differential modes are 125μV and 62.5μV, respectively. The binary format of the conversion result depends on the converter input range as described in Table 6. The ideal two’s complement transfer function is shown in Figure 2, while the ideal straight binary transfer function is shown in Figure 3. The ideal straight binary transfer function can be obtained from the two’s complement transfer function by invertingthemostsignificantbit(MSB)ofeachoutputcode. Figure 3. LTC2372-16 Straight Binary Transfer Function INPUT VOLTAGE (V) 0V –1 LSB 237216 F02 011...111 011...110 000...001 000...000 100...000 100...001 111...110 1 LSB BIPOLAR ZERO 111...111 FSR/2 – 1LSB –FSR/2 FSR = +FS – –FS 1LSB = FSR/65536 INPUT VOLTAGE (V) 237218 F03 111...111 111...110 100...001 100...000 000...000 000...001 011...110 UNIPOLAR ZERO 011...111 FSR – 1LSB 0V FSR = +FS 1LSB = FSR/65536 |
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