Vertical Oscillation of Railway Vehicle Chassis with Asymmetry Effect Consideration
<p>Simple general model of the vehicle.</p> "> Figure 2
<p>The scheme of the model.</p> "> Figure 3
<p>Chassis support: (<b>a</b>) Original springs; (<b>b</b>) substituted springs.</p> "> Figure 4
<p>(<b>a</b>) Bogie fixed to the car platform; (<b>b</b>) loading unit.</p> "> Figure 5
<p>Wedge locations at rail.</p> "> Figure 6
<p>Sensor locations.</p> "> Figure 7
<p>Acceleration sensor location: (<b>a</b>) at frame of backward car; (<b>b</b>) at platform of car—transversal axis.</p> "> Figure 8
<p>Measured combination of loading and kinematic excitation.</p> "> Figure 9
<p>Location of relative vertical deflection and vertical acceleration sensors at selected points. B—handbrake, 1L/R—chassis frame vertical deflection sensor, first wheelset, left/right side, 2L/R—chassis frame and body vertical deflection sensor, left/right side, 3L/R—car body vertical acceleration sensor, left/right side.</p> "> Figure 10
<p>Relative vertical displacement between chassis frame and wheelset—variant A–I.</p> "> Figure 11
<p>Relative displacement between car body and chassis frame—variant A–I.</p> "> Figure 12
<p>Relative displacement between chassis frame and wheelset—variant A–IV.</p> "> Figure 13
<p>Relative displacement between car body and chassis frame—variant A-IV.</p> "> Figure 14
<p>Relative displacement between chassis frame and wheelset—variant D-I.</p> "> Figure 15
<p>Relative displacement between car body and chassis frame—variant D-I.</p> "> Figure 16
<p>Relative displacement between chassis frame and wheelset—variant D-IV.</p> "> Figure 17
<p>Relative displacement between car body and chassis frame—variant D-IV.</p> "> Figure 18
<p>Relative displacement between chassis frame and wheelset—variant B-III.</p> "> Figure 19
<p>Relative deflections between car body and chassis frame—variant B-III.</p> "> Figure 20
<p>Vertical acceleration in the middle of the car body on the left and right side—variant B-III.</p> ">
Abstract
:1. Introduction
- Asymmetry of the vehicle weight distribution with respect to the axes of geometric symmetry, the position of the centre of gravity, the directions of the main central axes of inertia, both of the vehicle structure itself and of the loaded vehicle
- Asymmetry of the geometry of the distribution of elastic and dissipative elements of the couplings of the individual bodies of the vehicle system, their mechanical properties, spring stiffnesses, intensity of viscous damping assuming linear couplings of the individual quantities, and small displacements and rotations of the parts of the system
- Asymmetry of kinematic excitation, i.e., the field of unevenness of the road or track surface, which define the kinematic excitation of the system at the point of contact between wheel-vehicle or wheel-track.
2. Theoretical Solution
2.1. Individual Models Motion Equations
2.1.1. Spatial Model
2.1.2. Planar Model
- Mass matrix M is diagonal and unit, and for mass distribution is valid Dxy = Dyx = 0, => S23 = S32 = 0, ey = 0.
- The geometry of support is defined by dimensions ly1 = ly4, ly2 = ly3, lx1 = lx4, lx2 = lx3.
- Damping intensity b1 = b4, b2 = b3.
- Stiffness of elastic support is given by formulas k1 = k4, k2 = k3.
2.1.3. Quarter Model
- Mass distribution Dxy = Dyx = 0 → S23 = S32 = 0, ex = 0, ey = 0.
- Mass matric M is unit, the centre of gravity of the system is identical to the centre of geometric gravity C, the main central axes of inertia are identical to axes of geometrical symmetry.
- The support geometry is determined by dimensions lxj = lx, lyj = ly for j = 1, 2, 3, 4.
- Damping intensity j = b, for j = 1, 2, 3, 4.
- Stiffness of elastic support is given by kj = k.
2.1.4. Models Discussion
2.2. Simple Model of Four Axles Wagon
Point | Vertical displacement | Stiffness constant | |
A111 | (19) | ||
A121 | |||
A131 | |||
A141 |
Point | Vertical displacement | Stiffness constant | |
A211 | (20) | ||
A221 | |||
A231 | |||
A241 |
Point | Vertical displacement | Stiffness constant | |
B011 | (21) | ||
B014 | |||
B021 | |||
B024 |
3. Experimental Methods
3.1. Description of Vehicle Arrangement
3.2. Methodology
3.3. Experimental Results
- (a)
- (b)
- (c)
- (d)
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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Klimenda, F.; Skocilas, J.; Skocilasova, B.; Soukup, J.; Cizek, R. Vertical Oscillation of Railway Vehicle Chassis with Asymmetry Effect Consideration. Sensors 2022, 22, 4033. https://doi.org/10.3390/s22114033
Klimenda F, Skocilas J, Skocilasova B, Soukup J, Cizek R. Vertical Oscillation of Railway Vehicle Chassis with Asymmetry Effect Consideration. Sensors. 2022; 22(11):4033. https://doi.org/10.3390/s22114033
Chicago/Turabian StyleKlimenda, Frantisek, Jan Skocilas, Blanka Skocilasova, Josef Soukup, and Roman Cizek. 2022. "Vertical Oscillation of Railway Vehicle Chassis with Asymmetry Effect Consideration" Sensors 22, no. 11: 4033. https://doi.org/10.3390/s22114033
APA StyleKlimenda, F., Skocilas, J., Skocilasova, B., Soukup, J., & Cizek, R. (2022). Vertical Oscillation of Railway Vehicle Chassis with Asymmetry Effect Consideration. Sensors, 22(11), 4033. https://doi.org/10.3390/s22114033