The actual device utilizes TP27-SR op-amps at all position.
It is a chopper amp, isn't it?
Cheers
AlexThe TP27-SR datasheet does not explicitly mention 'chopper' or 'zero-drift' architecture, but its specifications clearly indicate that one of these topologies is being used. In any case, their real-world performance is an excellent fit for this circuit and will not become a bottleneck. Among the more common op-amps, the OPA189 would be my first choice to consider.
From the TP-xx DS they look like China clones of the OP07..27 series (and my bet when you order OPxx on Ali you get them like a sanded_off/rebadged TPxx). Do you have some practical experience/measurements with those opamps??
Interesting approach. I like the idea too.
I try to figure out how the circuit works but i did not succeeded
e.g U8A seems on input to be gnd and another tied to zenner positive side let say +7V . Is this the intention?
do you vant to have ADR1399 Pin 1 close to GND and ADR Pin2 close = -7V
On the schematic, there is an internal diode between heater's -15V and zener's anode. As I understand, zener's anode is at about -7V. Wouldn't the built-in diode start conducting?
Interesting approach. I like the idea too.
I try to figure out how the circuit works but i did not succeeded
e.g U8A seems on input to be gnd and another tied to zenner positive side let say +7V . Is this the intention?
do you vant to have ADR1399 Pin 1 close to GND and ADR Pin2 close = -7V
Yes, your assumption in the last sentence is absolutely correct. That is exactly how the circuit is intended to work. In this topology, the traditional biasing is inverted:ADR1399 Pin 1 (Cathode) is actively held at a dynamic virtual ground (0V) by the U8A bootstrap loop.ADR1399 Pin 2 (Anode) is driven down to a stable about -7V relative to the system GND. The primary objective of this inverted configuration is the complete isolation of the ADR1399 Zener from the system ground (GND). This stops any return currents or ground loops from affecting the reference core. As a nice additional bonus, keeping the cathode at 0V eliminates voltage differentials across that part of the PCB layout, effectively reducing surface leakage currents to zero.
When I'm not in the lab, the voltage plot is very predictable. But just me walking around and using my computer causes quite some disturbance.
. Here are the latest jumps from my K34970A (LM399) , measuring 10V output from Fluke 731B overnight, in parallel to K34465AM (ADR1399) and HIOKI DM7275 (LTZ1000), (10h in 0.5s intervals, NPLC10 on all three meters). The reference in the K34970A has quieten a lot since I received it, almost no jumps visible, however in this particular measurements not onlyYep, and when you will measure your 34465AM with the ADR1399 inside for a longer period you will get a jump too.. Below last 5 days of the 1399 with none jump..
. I am pretty sure it might and most likely will jump at some point in the future, however so far it didn't do it for 18 months straight. As I've said, I have seen ADR1399 jump, just not in this unit, working 24x7 and logging most of the time. before after change
spread (σ) 0.741 µV 0.506 µV −32 %
sample-to-sample noise 0.518 µV 0.383 µV −26 %
peak-to-peak 6.13 µV 2.64 µV −57 %
! When the reference votlage changes, one may want a new adjustment of the µC internal ADC scale. Ideally the µC inernal ADC would also scale with the reference voltage, but there may be some offsets. A not perfect adjustment there could cause some extra error for the 1 PLC case. I don't remember which CAL part also does the adjustment of the µC internal ADC.
The ADR1399 without the RC is likely no working well - if at all it would be adding a 2nd RC element (e.g. 10 µF + 10 ohms) for even more damping.
The 100 PLC may want a few more than 60 s worth of data to calculation the noise. Just some 15 readings is a bit low for that.
replaced R409 with 1K0 MMELF (to provide required 3mA for the ADR1399)
But using a 1 kΩ resistor for R409 will not give 3 mA in this circuit.
We also need to take the R441/R442 divider into account. With these resistor values, the approximate current left for the Zener will be around 2.8 mA, which is somewhat low for the ADR1399.
A more suitable value for R409 would be 920 Ω.



..Don't think ADI is going to reveal much tho, for sure TI will be watching
..Don't think ADI is going to reveal much tho, for sure TI will be watching
The product manager of the 1399 said at the Metrology meeting (2022?) the 1399 is the same 399 die/layout with small changes in the resistor values here and there (internally it has got 8x higher Iz therefore lower noise - 399 has got 250uA, the 1399 2mA, afaik).
Did @Noopy make a die shot of the 1399, btw.??
I have one 1399 here which died - when Noopy would need one..