Attached is an LTspice model. Strip the .txt extension to run the simulation.
To make model plots easier I redefined power supplies (0V,+5V,+10V) to (-5V,0V,+5V).
Use any op-amp you have. Op-amp inputs are close to mid-supply.
You could even use comparators in place of the op-amps.
A "Threshold" of about 10mV is set by R2 with the 200 ohm trim-pot, R3.
Mid-position is about 10mV.
The offset voltages of U1 and U2 are also eliminated from the threshold value by the setting of R3.
Slow changes in pot voltage are followed in C1.
When stable, the voltage at bottom of C1 = "tracking", will be close to the "threshold" voltage.
Slew rate of "tracking" is limited by 5V/R1 = 50uA, with C1 = 500uF, it sets 100 mV/sec.
C2 and R4 quieten the U1 op-amp output when pot voltage is stable.
Otherwise U1 produces a +/-5V signal while following a changing pot voltage.
C2 and R4 are not needed if a comparator is used for U1.
Any positive pot voltage step over 10mV will be immediately detected by U2 going high.
Any pot slew rate rising faster than +100 mV/sec will outrun "tracking".
Once that "tracking" error has accumulated to greater than 10mV, the output of U2 will go high.
Note that for slowly rising voltages, eg for +120mV per sec, it will take 0.5 sec before detection.
50uA will flow in C1. It needs a simple non-inverting follower or buffer from the pot to C1.
Since the input voltage might be close to +5V, a rail-to-rail op-amp is probably needed for the buffer.