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An analysis has been presented pertaining to the use of a convex
bottom tank shape instead of an elliptical, for a road tanker.
Two analyses have been made, concerning the static and the dynamic
relative performance expectations of such tank shape when compared
with the elliptical shape performance.
The outputs of both analyses suggest that the level of average benefit
due to using the proposed shape, is around 10%, with a maximum
benefit observed in the dynamic performance in the case of the
minimum fill level.
Correlation between static and dynamic outputs. Manufacturing.
The potential benefits to the roll stability of a road tanker, derived from using a convex-bottom tank, instead of a concave-bottom one, are assessed. The convex-bottom tank consists of a modified elliptical figure to which the concave bottom is substituted by a convex one. The concave-bottom consists of an elliptical shape. Static and dynamic analyses are performed, for which the proposed shape revels enhancements on the order of 10%. The static rollover stability factor, and the lateral load transfer ratio, are used as performance measures for the static and the dynamic analysis, respectively. The dynamic analysis derives from a simplified model, for which the sloshing mass is substituted by a calibrated simple pendulum. Other potential benefits of the proposed tank shape are discussed, including a reduction in the aerodynamic drag, and a longer life for the vehicle components.
Longitudinal Load transfer light sensitivity to cargo type, fill level and the impact distance.
Maximum sloshing effect for the case of the lowest fill level 12
while for half fill level the sloshing cargo performs as a dynamic damper, with a maximum effect of 6 in the case of medium impact input
The sloshing effect for the highest fill level yielded a mixed output, with the maximum impact distance producing a positive but moderate effect.
The interaction between the sloshing cargo and the carrying vehicle has been predominantly studied from the perspective of road safety, aiming at characterizing the effects of cargo motion on both, the lateral stability of the vehicles and the respective braking performance. In this regard, one main issue is to objectively clarify the potential effects of the sloshing cargoes, when compared with solid or non-sloshing cargoes. While there are abundant theoretical studies about the comparative effects of one substance and the other on the vehicle performance, only few experimental studies have been reported with that approach. In this paper, the outputs from an experimental study involving the longitudinal load transfer of sloshing and non-sloshing cargoes, is presented. The longitudinal load transfer is characterized in this paper on the basis of the moment of the reaction forces at the wheel-support interface, with respect to the impact spot. Results suggest that for one-quarter fill level, the sloshing cargo produces an amplification of the performance measure (12% maximum) while at half fill level the sloshing cargo damps the outputs (6.31 % reduction), while at high fill levels, the sloshing effect is mixed, as a function of the impact input, from -1.1% at low impact distance, to +6.6 for large impact distance.
A simplified formulation is proposed in this paper to assess the proximity of the earthquake-related Perturbation frequencies to the natural sloshing frequencies of the liquid contained in vertical cylindrical tanks. The methodology is based upon an existing gravity-waves approach, which was developed for rectangular cross-section reservoirs, and is extended in this paper to analyze circular cross-section tanks.
The experimental outputs of this paper show that the existing methodology correlates at 100% with experimental data in the case of rectangular containers; while the corresponding average error in the case of a conical container and a cylindrical container is 7% and 9.1 %, respectively. The full diameter of the cross section was considered. The use of sovalidated methodology to full scale tanks, suggests that cylindrical vertical tanks with a capacity lower than 700 m3, could be exposed to a resonance excitation when subjected to
earthquake motions, regardless of the fill level.
An experimental model has been proposed to measure the energy losses due to the centre plate friction. The physical principles of the testing are based upon the loss of potential energy during turning.
The testing rig includes a variable friction centre plate. A stick
slide model was proposed for the centre plate, whose results suggest significant losses of potential energy due to centre plate friction, around 20 %.
Turning maneuvers performed by railway cars, imply the development of steering forces at the wheel-track interface, whose magnitude depends on a set of properties and operating conditions related to the vehicle and to the infrastructure, including track´s turning radius and vehicle´s yaw resistance.
Yaw resistance integrates two components. On the one hand, there is the yaw stiffness, as a function of the different vehicle suspension components. On the other hand, there is the dry friction at the centre plate. Such yaw resistance of the car´s bogies, has a two-contradictory effect on railway performance, as a flexible bogie reduces the level of the steering forces, but at the same time, it increases the probability of having hunting instability. A variable yaw resistance, with high values at straight track segments and low values at curved tracks, seems to be an interesting design. In this paper, a variable friction Center plate is proposed, aiming at maximizing the yaw resistance on straight track segments, and minimizing such resistance at curved tracks. The conceptual design of this device is described, together with its ability to reduce the yaw torque. Benefits of this device, regarding the transport energy consumption and the magnitude of the steering forces, are estimated on the order of 1 to 10, when comparing the proposed design with the standard center plate design.