F4F wildcat uptaded
44.3k rexzion
4.1 years ago
Auto Credit Based on rexzion's is in testing - F4F Wildcat DT
unlisted I decided to post cuz idk
VTOL for flaps
cam 1 is cool
AG1 for combat mode
don't exceed 750 kph
the pilot does not like pulling more than 7.5G's so please to not go loopy loopy and kill him
Specifications
General Characteristics
- Predecessor is in testing - F4F Wildcat DT
- Created On Windows
- Wingspan 36.5ft (11.1m)
- Length 28.5ft (8.7m)
- Height 12.5ft (3.8m)
- Empty Weight N/A
- Loaded Weight 6,254lbs (2,836kg)
Performance
- Horse Power/Weight Ratio 0.007
- Wing Loading 12.4lbs/ft2 (60.8kg/m2)
- Wing Area 502.5ft2 (46.7m2)
- Drag Points 1604
Parts
- Number of Parts 75
- Control Surfaces 9
- Performance Cost 477
@Inuyasha8215 tenks
Congrats on 10k
@KnightOfRen k
@rexrexThezion
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@KnightOfRen why
I'm your 100th follower
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The missile knows where it is at all times. It knows this because it knows where it isn't. By subtracting where it is from where it isn't, or where it isn't from where it is (whichever is greater), it obtains a difference, or deviation. The guidance subsystem uses deviations to generate corrective commands to drive the missile from a position where it is to a position where it isn't, and arriving at a position where it wasn't, it now is. Consequently, the position where it is, is now the position that it wasn't, and it follows that the position that it was, is now the position that it isn't.
In the event that the position that it is in is not the position that it wasn't, the system has acquired a variation, the variation being the difference between where the missile is, and where it wasn't. If variation is considered to be a significant factor, it too may be corrected by the GEA. However, the missile must also know where it was.
The missile guidance computer scenario works as follows. Because a variation has modified some of the information the missile has obtained, it is not sure just where it is. However, it is sure where it isn't, within reason, and it knows where it was. It now subtracts where it should be from where it wasn't, or vice-versa, and by differentiating this from the algebraic sum of where it shouldn't be, and where it was, it is able to obtain the deviation and its variation, which is called error.
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