Redesign of a Disc-on-Disc Computer Numerical Control Tribometer for a Wide-Range and Shudder-Resistant Operation
Abstract
:1. Introduction
2. Current Tribometer Design
2.1. Design Outline
2.2. Design of Mechanical Subsystem
2.3. Design of Control Subsystem
2.4. Limitations on Stable Machine Operation
2.5. Analysis of Vertical Axis Vibration Model
3. Tribometer Redesign
3.1. Redesign Concept
- Applying three circumferentially equidistantly positioned three-axial piezoelectric force sensors instead of a single two-axial force/torque sensor positioned in the central vertical axis;
- Implementing three radially distanced linear guides instead of one placed in the main axis of the machine;
- Reducing the bending torque of lateral forces on the linear axis guides and the leaf springs by reducing the length of the force cantilever through placing the linear guides and the leaf springs in the same horizontal plane with the friction contact surface (albeit at a greater radius).
- Reduction of the cooling disc radius and thickness at the expense of somewhat lowered thermal inertia;
- Redesign of the thermal insulation to go from full disc to small pads, which also increases thermal resistances by means of a small contact surface between the cooling disc and vertical axis.
3.2. Redesign of Mechanical Components
3.3. Normal Force and Torque Measurement System
4. Mechanical Adjustments
4.1. Adjustments of Parallelism between Rotary Table and Pressure Plate
4.2. Increase in Stiffness of Cooling Fluid Pipelines
4.3. Reduction in Leaf Spring Stiffness
5. Control System Adjustments
5.1. Initial Wear Characterization Experiments at High Torque/Power Level
5.2. Implementation of Clutch Locking during Cooling Delay Interval
5.3. Implementation of Non-Zero Lower Cooling Delay Limit
5.4. Implementation of Upper Normal Force Demand Limit
6. Wear Characterization Results
6.1. Organization of Experiments
6.2. Wear Rate Characterization Results
6.3. Model with Surrogate Power as Input
+ β33 x32 + β123 x1 x2 x3 + β112 x12 x2 + β113 x12 x3 + β122 x1 x22 + β133 x1 x32
+ β223 x22 x3 + β233 x2 x32 + β111 x13 + β222 x23 + β333 x33
7. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Control Variable | Controller Type | Commanded Variable | Response Time | Comment |
---|---|---|---|---|
Torque (Mz) | Cascade controller (three levels) | Vertical axis motor torque reference | 3–5 clutch closing cycles | I-, P-, and PI-type torque (Mz); normal force (Fz); and (slip) speed (ωr) controllers |
Slip speed (ωr) | Proportional-integral (PI) controller | Rotational axis motor torque reference | Up to 1.5 s (large signal mode) | Applied only until initial (slip) speed is achieved (Phase 1) |
Pressure plate temperature (Td)—primary control | Nonlinear integral (I) controller | Cooling delay (td) | Up to 10 min (large signal/heating up mode) | Apart from temperature control error, previous-cycle temperature fall rate is used as input |
Pressure plate temperature (Td)—secondary control | On–off controller with hysteresis | Pressure plate cooling valve state and pump speed reference | N/A | Valve is set off and pump speed reference is set to low level if t2 command falls to its lower limit of 0 s |
Closing time (t2) | Integral (I) controller | Rotational axis motor torque reference | 3–5 closing cycles | Commanded torque is applied only in closing interval t2 (Phase 4) |
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Hoić, M.; Hrgetić, M.; Kranjčević, N.; Deur, J.; Tissot, A. Redesign of a Disc-on-Disc Computer Numerical Control Tribometer for a Wide-Range and Shudder-Resistant Operation. Machines 2024, 12, 14. https://doi.org/10.3390/machines12010014
Hoić M, Hrgetić M, Kranjčević N, Deur J, Tissot A. Redesign of a Disc-on-Disc Computer Numerical Control Tribometer for a Wide-Range and Shudder-Resistant Operation. Machines. 2024; 12(1):14. https://doi.org/10.3390/machines12010014
Chicago/Turabian StyleHoić, Matija, Mario Hrgetić, Nenad Kranjčević, Joško Deur, and Andreas Tissot. 2024. "Redesign of a Disc-on-Disc Computer Numerical Control Tribometer for a Wide-Range and Shudder-Resistant Operation" Machines 12, no. 1: 14. https://doi.org/10.3390/machines12010014
APA StyleHoić, M., Hrgetić, M., Kranjčević, N., Deur, J., & Tissot, A. (2024). Redesign of a Disc-on-Disc Computer Numerical Control Tribometer for a Wide-Range and Shudder-Resistant Operation. Machines, 12(1), 14. https://doi.org/10.3390/machines12010014