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INA333 Datasheet(PDF) 39 Page - Texas Instruments

Part # INA333
Description  PGA280 Zerø-Drift, High-Voltage, Programmable Gain Instrumentation Amplifier
PDF  49 Pages
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Manufacturer  TI2 [Texas Instruments]
Direct Link  https://www.ti.com
Logo TI2 - Texas Instruments

INA333 Datasheet(HTML) 39 Page - Texas Instruments

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39
PGA280
www.ti.com
SBOS487B – JUNE 2009 – REVISED MARCH 2020
Product Folder Links: PGA280
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Copyright © 2009–2020, Texas Instruments Incorporated
9 Power Supply Recommendations
The PGA280 can connect to three supply voltages: the high-voltage analog supply, the low-voltage output
amplifier supply, and the digital I/O supply. This architecture allows an optimal interface (level-shift) to the
different supply domains.
The high-voltage analog supply, VSP and VSN, powers the high-voltage input section. The substrate of the IC is
connected to VSN; therefore, VCN must be connected to the most negative potential.
The low-voltage analog output supply, VSOP and VSON, can operate within the high-voltage supply boundaries
with two minimal limitations:
1. The usable range for VSON is from a minimum 5 V below VSP to as low as VSN. This 5 V provides the
headroom for the output supply voltage of 2.7 V to 5 V. Even with less than 5V supply, this voltage difference
is required for proper operation.
2. The common-mode control input, VOCM, requires a voltage at least 2 V from VSP, in order to support
internal rail-to-rail performance.
These limits may only come into consideration when using a minimum supply or an extremely asymmetrical high-
voltage supply. In most practical cases, VSON is connected to the ground of the system 3-V or 5-V supply.
VSOP can be turned on first or can be higher than VSP without harm, but operation fails if VSP and VSN are not
present.
Observe the maximum voltage applied between VSOP and VSON, because there is no internal protection. This
consideration is the same as with other standard operational amplifier devices.
The digital supply, DGND and DVDD, can also be set within the boundaries of VSP and VSN. Only the positive
supply, DVDD, cannot be closer than 1 V less than VSP. DVDD can be turned on without the analog supply
being present and is operational, but limited to digital functions in this case. The maximum supply voltage must
be observed because there is no internal protection. VSOP and VSON can be connected with DVDD and DGND,
if desired.
Current consumption of the digital supply is very low under static conditions, but increases with communications
activity. Assuming no external load except the 20 pF load to SDO, with an SCLK = 10 MHz and a 3-V supply, the
current momentarily increases by approximately 0.6 mA when reading a register. With a 5-V digital supply, the
increase is in the range of 0.8 mA. This additional current is only required during communication; a larger bypass
capacitor can supply this current. Driving current into SDO would further increase the current demand.
VSN is connected to the substrate; therefore, the voltage at VSON or DGND must not turn on the substrate
diode to VSN. Use external Schottky diodes from VSON to VSN and from DGND to VSN (see Figure 70) to
prevent such a condition.
The PGA280 uses an internal chopper technology, and therefore works best with good supply decoupling. Series
resistors in the supply are recommended to build an RC low-pass filter. With the small supply current, these
series resistors can be in the range of 15
Ω to 22 Ω. The RC filter also prevents a very fast rise time of the
supply voltage, thus avoiding parasitic currents in the device. Connecting supply wires into an already-turned on
supply (very fast rise time) without such a filter can damage the device as a result of voltage overshoot and
parasitic charge currents. Figure 70 shows an example of a supply connection using RC bypass filters. DVDD
may not need decoupling, but if the digital supply is noisy, a filter is recommended at C4 and R4.
NOTE
Rise and fall times for the high-voltage supplies must be slower than 1 V/μs.



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