A Numerical Study on the Effect of Various Baffle Systems on Fuel Oil Sloshing in Partially Filled Cargo Tanker Trucks at Cornering Condition
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Abstract
Ethiopia imports all fuel, and crude oils from abroad at high-cost, transportation of these fluids
has been carried out by using various capacity of road transportation heavy duty truck vehicle.
During transportation, sloshing of fuel happens when a vehicle with partially filled fuel tank
experiences accelerating, braking or turning. Due to the sloshing, a truck reduces their stability
which in turn can cause accidents. Therefore, in order to reduce the sloshing effect inside the
tank, there are baffles that are inserted in it. In Ethiopian fuel transporting vehicle have
transverse baffles to reduce the sloshing effect only during braking, but at cornering this is not
efficient. Therefore, the main aim of this thesis work is studying the effect of various baffle
systems on reducing lateral sloshing. These baffle systems design and its arrangement namely;
transverse baffles, bottom-mounted longitudinal baffles, upper-mounted longitudinal baffles,
longitudinal baffles with two holes and four holes with same(inline) and varying(staggered) hole
position arrangements and finally with curved longitudinal baffles were considered for this work.
The best baffle configuration and its arrangements for modified-oval tank geometry at 50% and
80% fill levels were attempted in this work, and studied the dynamic analysis of tanker truck. For
the numerical analysis, the baffle system and tanker truck are modeled in CATIA V5 and the
CFD analysis is carried out in ANSYS Fluent 2021.R2. The simulations are based on the
Reynolds Average Navier-Stokes equations with standard SST k-ε as turbulence model together
with the volume of a fluid method describing the two-phased flow of both diesel fuel and air in a
tanker, and the dynamic analysis is carried out in LS_DYNA to study the stability of truck. When
comparing all baffle designs, transverse baffles with four holes longitudinal baffle with hole
varying position is found the best baffle types. The greatest reduction of maximum lateral force
and roll-moment is 47.76% and 58.66% at 50% fill level, and 58.08% and 22.52% at 80% fill level
respectively. Thus, inclusion of these improved design baffle to the case tanker truck will be of
paramount importance for improved roll-over stability during cornering.
