5F-8
Developed for Training Purposes
Citation Bravo
March 2009
CAE SimuFlite
The inboard end of this line is open
and provides an entry for air if the
check valves and float valves fail in
the closed position. The check valves
connect to the vent line: one midway
in the line, and the other near the surge
tank. The lines, tank, and vent provide
venting for the wing in all normal atti-
tudes of pitch and roll. If the fuel tank
vent is blocked, a negative pressure
may build up in the wing causing the
tank to collapse.
When parked on a sloping ramp, such
that a vent float valve is closed, fuel
expansion will force fuel through the
open end of the vent tube, or the
siphon hole, and out the vent scoop,
thus pre-venting pressure buildup.
Fuel Probes
A series of six capacitance-type fuel
probes
(Figure 5F-2)
and one tem-
perature compensator (or fill level
sensors) in each wing tank (cell)
supply information to the vertical
scale fuel quantity gauge in the
cockpit. The indicator converts these
signals into fuel weight and displays
it in pounds per cell.
The six fuel tank probes have con-
centric metal tubes that act as plates
of a capacitor. The value of the
capacitance at each probe is propor-
tional to the height of the dielectric
medium (fuel) between the plates;
that is, the higher the fuel is at a
given probe, the greater the signal
the probe produces.
The probes in each tank are perpen-
dicular to the wing dihedral (adja-
cent to the wing ribs) and are
connected in parallel. Each sensor
has an integral electronic module
that converts the capacitance of the
probe to a current signal.
A temperature compensator (sensor
number seven) is farthest inboard at
the bottom of the fuel sump in each
tank and adjusts for the dielectric
change of the fuel as temperature
changes. When there is more than 10
gallons in either sump, it is used as a
dielectric sensor to adjust the signal
conditioner. The result is that the
compensator corrects for the density
of the fuel.
5F-2
Summary of Contents for Citation Bravo
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