I'd tend to agree the data looks like boostcreep.
I was hoping the 21mm port would eliminate the creep, I guess porting only eliminates the overboost.
The machinist that did the porting was recommending 20 mm because of clearances, he was hesitant to go the full 21.
The reason I ordered the PCE instead of the Piper downpipe was to have controllable boost at 0.65 bar.
The outside air temp was 0 degC / 32 degF.
Public roads, freezing temps, and summer tires make me hesitant to take the car out for much more testing.
When the temperatures warm up to a level more suitable for the tires I'm sure we'll be out collecting more data.
Unfortunately the warmer temperatures also decrease the air density, which decreases the propensity for boost creep.
I filtered out some data from a collection of scans I have in my Elanscan thread.
See here:
viewtopic.php?p=276698#p276698Attached is the filtered data and some graphs.
The data was filtered to show full throttle in 3rd and 5th gear.
This dataset was considerably larger than the dataset graphed in the post above.
interstate run 0.png
As you can see in 3rd gear the boost reaches ~0.65 at ~3000 RPM and the wastegate is able to maintain that level of boost with a 35% duty cycle until 4000 RPM.
After 4000 RPM the boost climbs to ~0.9 bar with the wastegate duty cycle dropping to 0% at ~5700 RPM.
After 5700 RPM the boost begins to drop and the wastegate duty cycle stays at 0%.
We then run out of revs...
If the deadband were narrower and the wastegate duty cycle dropped to 0 quicker, I think the boost would be easier to control to 0.65 bar.
Anyone want to replace the discrete controller with a PID controller for the wastegate?

You do not have the required permissions to view the files attached to this post.