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LMP2022MA/NOPB Datasheet(PDF) 24 Page - Texas Instruments |
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LMP2022MA/NOPB Datasheet(HTML) 24 Page - Texas Instruments |
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24 / 42 page ![]() 0.0 0.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 -12 -10 -8 -6 -4 -2 0 2 4 6 8 10 12 DIFFERENTIAL INPUT (mV) C001 24 LMP2021, LMP2022 SNOSAY9G – SEPTEMBER 2008 – REVISED FEBRUARY 2016 www.ti.com Product Folder Links: LMP2021 LMP2022 Submit Documentation Feedback Copyright © 2008–2016, Texas Instruments Incorporated Typical Application (continued) Bridge sensor measurements are usually done up to 10s of Hz. Placing a 300 Hz filter on the LMP2022 helps removing the higher frequency noise from this circuit. This filter is created by placing two capacitors in the feedback path of the LMP2022 amplifiers. This amplified signal is then fed into the ADC161S626. The ADC161S626 is a 16-bit, 50 kSPS to 250 kSPS 5V ADC. In order to utilize the maximum number of bits of the ADC161S626 in this configuration, a 2.5V reference voltage is used. This 2.5V reference is also used to power the bridge sensor and the inverting input of the ADC. Using the same voltage source for these three points helps reducing the total system error by eliminating error due to source variations. With this system, the output signal of the bridge sensor which can be up to ±13.3 mV and is accurately scaled to the full scale range of the ADC and then digitized for further processing. The LMP202x introduced minimal error to the system and improved the signal quality by removing common mode signals and high frequency noise. 8.2.3 Application Curve Figure 47. Single Ended Output Results for Bridge Circuit 9 Power Supply Recommendations The LMP202x is specified for operation from 2.2 V to 5.5 V (±1.1 V to ±2.75 V) over a –40°C to +125°C temperature range. Parameters that can exhibit significant variance with regard to operating voltage or temperature are presented in the Typical Characteristics. CAUTION Supply voltages larger than 6 V can permanently damage the device. 10 Layout 10.1 Layout Guidelines For best operational performance of the device, use good printed circuit board (PCB) layout practices, including: • Noise can propagate into analog circuitry through the power pins of the circuit as a whole and op amp itself. Bypass capacitors are used to reduce the coupled noise by providing low-impedance power sources local to the analog circuitry. • Connect low-ESR, 0.1- μF ceramic bypass capacitors between each supply pin and ground, placed as close to the device as possible. A single bypass capacitor from V+ to ground is applicable for single supply applications. • Separate grounding for analog and digital portions of circuitry is one of the simplest and most-effective |
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